1//===-- ARMInstrMVE.td - MVE support for ARM ---------------*- tablegen -*-===// 2// 3// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4// See https://llvm.org/LICENSE.txt for license information. 5// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6// 7//===----------------------------------------------------------------------===// 8// 9// This file describes the ARM MVE instruction set. 10// 11//===----------------------------------------------------------------------===// 12 13// VPT condition mask 14def vpt_mask : Operand<i32> { 15 let PrintMethod = "printVPTMask"; 16 let ParserMatchClass = it_mask_asmoperand; 17 let EncoderMethod = "getVPTMaskOpValue"; 18 let DecoderMethod = "DecodeVPTMaskOperand"; 19} 20 21// VPT/VCMP restricted predicate for sign invariant types 22def pred_restricted_i_asmoperand : AsmOperandClass { 23 let Name = "CondCodeRestrictedI"; 24 let RenderMethod = "addITCondCodeOperands"; 25 let PredicateMethod = "isITCondCodeRestrictedI"; 26 let ParserMethod = "parseITCondCode"; 27 let DiagnosticString = "condition code for sign-independent integer "# 28 "comparison must be EQ or NE"; 29} 30 31// VPT/VCMP restricted predicate for signed types 32def pred_restricted_s_asmoperand : AsmOperandClass { 33 let Name = "CondCodeRestrictedS"; 34 let RenderMethod = "addITCondCodeOperands"; 35 let PredicateMethod = "isITCondCodeRestrictedS"; 36 let ParserMethod = "parseITCondCode"; 37 let DiagnosticString = "condition code for signed integer "# 38 "comparison must be EQ, NE, LT, GT, LE or GE"; 39} 40 41// VPT/VCMP restricted predicate for unsigned types 42def pred_restricted_u_asmoperand : AsmOperandClass { 43 let Name = "CondCodeRestrictedU"; 44 let RenderMethod = "addITCondCodeOperands"; 45 let PredicateMethod = "isITCondCodeRestrictedU"; 46 let ParserMethod = "parseITCondCode"; 47 let DiagnosticString = "condition code for unsigned integer "# 48 "comparison must be EQ, NE, HS or HI"; 49} 50 51// VPT/VCMP restricted predicate for floating point 52def pred_restricted_fp_asmoperand : AsmOperandClass { 53 let Name = "CondCodeRestrictedFP"; 54 let RenderMethod = "addITCondCodeOperands"; 55 let PredicateMethod = "isITCondCodeRestrictedFP"; 56 let ParserMethod = "parseITCondCode"; 57 let DiagnosticString = "condition code for floating-point "# 58 "comparison must be EQ, NE, LT, GT, LE or GE"; 59} 60 61class VCMPPredicateOperand : Operand<i32>; 62 63def pred_basic_i : VCMPPredicateOperand { 64 let PrintMethod = "printMandatoryRestrictedPredicateOperand"; 65 let ParserMatchClass = pred_restricted_i_asmoperand; 66 let DecoderMethod = "DecodeRestrictedIPredicateOperand"; 67 let EncoderMethod = "getRestrictedCondCodeOpValue"; 68} 69 70def pred_basic_u : VCMPPredicateOperand { 71 let PrintMethod = "printMandatoryRestrictedPredicateOperand"; 72 let ParserMatchClass = pred_restricted_u_asmoperand; 73 let DecoderMethod = "DecodeRestrictedUPredicateOperand"; 74 let EncoderMethod = "getRestrictedCondCodeOpValue"; 75} 76 77def pred_basic_s : VCMPPredicateOperand { 78 let PrintMethod = "printMandatoryRestrictedPredicateOperand"; 79 let ParserMatchClass = pred_restricted_s_asmoperand; 80 let DecoderMethod = "DecodeRestrictedSPredicateOperand"; 81 let EncoderMethod = "getRestrictedCondCodeOpValue"; 82} 83 84def pred_basic_fp : VCMPPredicateOperand { 85 let PrintMethod = "printMandatoryRestrictedPredicateOperand"; 86 let ParserMatchClass = pred_restricted_fp_asmoperand; 87 let DecoderMethod = "DecodeRestrictedFPPredicateOperand"; 88 let EncoderMethod = "getRestrictedCondCodeOpValue"; 89} 90 91// Register list operands for interleaving load/stores 92def VecList2QAsmOperand : AsmOperandClass { 93 let Name = "VecListTwoMQ"; 94 let ParserMethod = "parseVectorList"; 95 let RenderMethod = "addMVEVecListOperands"; 96 let DiagnosticString = "operand must be a list of two consecutive "# 97 "q-registers in range [q0,q7]"; 98} 99 100def VecList2Q : RegisterOperand<QQPR, "printMVEVectorListTwoQ"> { 101 let ParserMatchClass = VecList2QAsmOperand; 102 let PrintMethod = "printMVEVectorList<2>"; 103} 104 105def VecList4QAsmOperand : AsmOperandClass { 106 let Name = "VecListFourMQ"; 107 let ParserMethod = "parseVectorList"; 108 let RenderMethod = "addMVEVecListOperands"; 109 let DiagnosticString = "operand must be a list of four consecutive "# 110 "q-registers in range [q0,q7]"; 111} 112 113def VecList4Q : RegisterOperand<QQQQPR, "printMVEVectorListFourQ"> { 114 let ParserMatchClass = VecList4QAsmOperand; 115 let PrintMethod = "printMVEVectorList<4>"; 116} 117 118// taddrmode_imm7 := reg[r0-r7] +/- (imm7 << shift) 119class TMemImm7ShiftOffsetAsmOperand<int shift> : AsmOperandClass { 120 let Name = "TMemImm7Shift"#shift#"Offset"; 121 let PredicateMethod = "isMemImm7ShiftedOffset<"#shift#",ARM::tGPRRegClassID>"; 122 let RenderMethod = "addMemImmOffsetOperands"; 123} 124 125class taddrmode_imm7<int shift> : MemOperand, 126 ComplexPattern<i32, 2, "SelectTAddrModeImm7<"#shift#">", []> { 127 let ParserMatchClass = TMemImm7ShiftOffsetAsmOperand<shift>; 128 // They are printed the same way as the T2 imm8 version 129 let PrintMethod = "printT2AddrModeImm8Operand<false>"; 130 // This can also be the same as the T2 version. 131 let EncoderMethod = "getT2AddrModeImmOpValue<7,"#shift#">"; 132 let DecoderMethod = "DecodeTAddrModeImm7<"#shift#">"; 133 let MIOperandInfo = (ops tGPR:$base, i32imm:$offsimm); 134} 135 136// t2addrmode_imm7 := reg +/- (imm7) 137class MemImm7ShiftOffsetAsmOperand<int shift> : AsmOperandClass { 138 let Name = "MemImm7Shift"#shift#"Offset"; 139 let PredicateMethod = "isMemImm7ShiftedOffset<" # shift # 140 ",ARM::GPRnopcRegClassID>"; 141 let RenderMethod = "addMemImmOffsetOperands"; 142} 143 144def MemImm7Shift0OffsetAsmOperand : MemImm7ShiftOffsetAsmOperand<0>; 145def MemImm7Shift1OffsetAsmOperand : MemImm7ShiftOffsetAsmOperand<1>; 146def MemImm7Shift2OffsetAsmOperand : MemImm7ShiftOffsetAsmOperand<2>; 147class T2AddrMode_Imm7<int shift> : MemOperand, 148 ComplexPattern<i32, 2, "SelectT2AddrModeImm7<"#shift#">", []> { 149 let EncoderMethod = "getT2AddrModeImmOpValue<7,"#shift#">"; 150 let DecoderMethod = "DecodeT2AddrModeImm7<"#shift#", 0>"; 151 let ParserMatchClass = 152 !cast<AsmOperandClass>("MemImm7Shift"#shift#"OffsetAsmOperand"); 153 let MIOperandInfo = (ops GPRnopc:$base, i32imm:$offsimm); 154} 155 156class t2addrmode_imm7<int shift> : T2AddrMode_Imm7<shift> { 157 // They are printed the same way as the imm8 version 158 let PrintMethod = "printT2AddrModeImm8Operand<false>"; 159} 160 161class MemImm7ShiftOffsetWBAsmOperand<int shift> : AsmOperandClass { 162 let Name = "MemImm7Shift"#shift#"OffsetWB"; 163 let PredicateMethod = "isMemImm7ShiftedOffset<" # shift # 164 ",ARM::rGPRRegClassID>"; 165 let RenderMethod = "addMemImmOffsetOperands"; 166} 167 168def MemImm7Shift0OffsetWBAsmOperand : MemImm7ShiftOffsetWBAsmOperand<0>; 169def MemImm7Shift1OffsetWBAsmOperand : MemImm7ShiftOffsetWBAsmOperand<1>; 170def MemImm7Shift2OffsetWBAsmOperand : MemImm7ShiftOffsetWBAsmOperand<2>; 171 172class t2addrmode_imm7_pre<int shift> : T2AddrMode_Imm7<shift> { 173 // They are printed the same way as the imm8 version 174 let PrintMethod = "printT2AddrModeImm8Operand<true>"; 175 let ParserMatchClass = 176 !cast<AsmOperandClass>("MemImm7Shift"#shift#"OffsetWBAsmOperand"); 177 let DecoderMethod = "DecodeT2AddrModeImm7<"#shift#", 1>"; 178 let MIOperandInfo = (ops rGPR:$base, i32imm:$offsim); 179} 180 181class t2am_imm7shiftOffsetAsmOperand<int shift> 182 : AsmOperandClass { let Name = "Imm7Shift"#shift; } 183def t2am_imm7shift0OffsetAsmOperand : t2am_imm7shiftOffsetAsmOperand<0>; 184def t2am_imm7shift1OffsetAsmOperand : t2am_imm7shiftOffsetAsmOperand<1>; 185def t2am_imm7shift2OffsetAsmOperand : t2am_imm7shiftOffsetAsmOperand<2>; 186 187class t2am_imm7_offset<int shift> : MemOperand, 188 ComplexPattern<i32, 1, "SelectT2AddrModeImm7Offset<"#shift#">", 189 [], [SDNPWantRoot]> { 190 // They are printed the same way as the imm8 version 191 let PrintMethod = "printT2AddrModeImm8OffsetOperand"; 192 let ParserMatchClass = 193 !cast<AsmOperandClass>("t2am_imm7shift"#shift#"OffsetAsmOperand"); 194 let EncoderMethod = "getT2ScaledImmOpValue<7,"#shift#">"; 195 let DecoderMethod = "DecodeT2Imm7<"#shift#">"; 196} 197 198// Operands for gather/scatter loads of the form [Rbase, Qoffsets] 199class MemRegRQOffsetAsmOperand<int shift> : AsmOperandClass { 200 let Name = "MemRegRQS"#shift#"Offset"; 201 let PredicateMethod = "isMemRegRQOffset<"#shift#">"; 202 let RenderMethod = "addMemRegRQOffsetOperands"; 203} 204 205def MemRegRQS0OffsetAsmOperand : MemRegRQOffsetAsmOperand<0>; 206def MemRegRQS1OffsetAsmOperand : MemRegRQOffsetAsmOperand<1>; 207def MemRegRQS2OffsetAsmOperand : MemRegRQOffsetAsmOperand<2>; 208def MemRegRQS3OffsetAsmOperand : MemRegRQOffsetAsmOperand<3>; 209 210// mve_addr_rq_shift := reg + vreg{ << UXTW #shift} 211class mve_addr_rq_shift<int shift> : MemOperand { 212 let EncoderMethod = "getMveAddrModeRQOpValue"; 213 let PrintMethod = "printMveAddrModeRQOperand<"#shift#">"; 214 let ParserMatchClass = 215 !cast<AsmOperandClass>("MemRegRQS"#shift#"OffsetAsmOperand"); 216 let DecoderMethod = "DecodeMveAddrModeRQ"; 217 let MIOperandInfo = (ops GPRnopc:$base, MQPR:$offsreg); 218} 219 220class MemRegQOffsetAsmOperand<int shift> : AsmOperandClass { 221 let Name = "MemRegQS"#shift#"Offset"; 222 let PredicateMethod = "isMemRegQOffset<"#shift#">"; 223 let RenderMethod = "addMemImmOffsetOperands"; 224} 225 226def MemRegQS2OffsetAsmOperand : MemRegQOffsetAsmOperand<2>; 227def MemRegQS3OffsetAsmOperand : MemRegQOffsetAsmOperand<3>; 228 229// mve_addr_q_shift := vreg {+ #imm7s2/4} 230class mve_addr_q_shift<int shift> : MemOperand { 231 let EncoderMethod = "getMveAddrModeQOpValue<"#shift#">"; 232 // Can be printed same way as other reg + imm operands 233 let PrintMethod = "printT2AddrModeImm8Operand<false>"; 234 let ParserMatchClass = 235 !cast<AsmOperandClass>("MemRegQS"#shift#"OffsetAsmOperand"); 236 let DecoderMethod = "DecodeMveAddrModeQ<"#shift#">"; 237 let MIOperandInfo = (ops MQPR:$base, i32imm:$imm); 238} 239 240// A family of classes wrapping up information about the vector types 241// used by MVE. 242class MVEVectorVTInfo<ValueType vec, ValueType dblvec, 243 ValueType pred, ValueType dblpred, 244 bits<2> size, string suffixletter, bit unsigned> { 245 // The LLVM ValueType representing the vector, so we can use it in 246 // ISel patterns. 247 ValueType Vec = vec; 248 249 // The LLVM ValueType representing a vector with elements double the size 250 // of those in Vec, so we can use it in ISel patterns. It is up to the 251 // invoker of this class to ensure that this is a correct choice. 252 ValueType DblVec = dblvec; 253 254 // An LLVM ValueType representing a corresponding vector of 255 // predicate bits, for use in ISel patterns that handle an IR 256 // intrinsic describing the predicated form of the instruction. 257 // 258 // Usually, for a vector of N things, this will be vNi1. But for 259 // vectors of 2 values, we make an exception, and use v4i1 instead 260 // of v2i1. Rationale: MVE codegen doesn't support doing all the 261 // auxiliary operations on v2i1 (vector shuffles etc), and also, 262 // there's no MVE compare instruction that will _generate_ v2i1 263 // directly. 264 ValueType Pred = pred; 265 266 // Same as Pred but for DblVec rather than Vec. 267 ValueType DblPred = dblpred; 268 269 // The most common representation of the vector element size in MVE 270 // instruction encodings: a 2-bit value V representing an (8<<V)-bit 271 // vector element. 272 bits<2> Size = size; 273 274 // For vectors explicitly mentioning a signedness of integers: 0 for 275 // signed and 1 for unsigned. For anything else, undefined. 276 bit Unsigned = unsigned; 277 278 // The number of bits in a vector element, in integer form. 279 int LaneBits = !shl(8, Size); 280 281 // The suffix used in assembly language on an instruction operating 282 // on this lane if it only cares about number of bits. 283 string BitsSuffix = !if(!eq(suffixletter, "p"), 284 !if(!eq(unsigned, 0b0), "8", "16"), 285 !cast<string>(LaneBits)); 286 287 // The suffix used on an instruction that mentions the whole type. 288 string Suffix = suffixletter ## BitsSuffix; 289 290 // The letter part of the suffix only. 291 string SuffixLetter = suffixletter; 292} 293 294// Integer vector types that don't treat signed and unsigned differently. 295def MVE_v16i8 : MVEVectorVTInfo<v16i8, v8i16, v16i1, v8i1, 0b00, "i", ?>; 296def MVE_v8i16 : MVEVectorVTInfo<v8i16, v4i32, v8i1, v4i1, 0b01, "i", ?>; 297def MVE_v4i32 : MVEVectorVTInfo<v4i32, v2i64, v4i1, v4i1, 0b10, "i", ?>; 298def MVE_v2i64 : MVEVectorVTInfo<v2i64, ?, v4i1, ?, 0b11, "i", ?>; 299 300// Explicitly signed and unsigned integer vectors. They map to the 301// same set of LLVM ValueTypes as above, but are represented 302// differently in assembly and instruction encodings. 303def MVE_v16s8 : MVEVectorVTInfo<v16i8, v8i16, v16i1, v8i1, 0b00, "s", 0b0>; 304def MVE_v8s16 : MVEVectorVTInfo<v8i16, v4i32, v8i1, v4i1, 0b01, "s", 0b0>; 305def MVE_v4s32 : MVEVectorVTInfo<v4i32, v2i64, v4i1, v4i1, 0b10, "s", 0b0>; 306def MVE_v2s64 : MVEVectorVTInfo<v2i64, ?, v4i1, ?, 0b11, "s", 0b0>; 307def MVE_v16u8 : MVEVectorVTInfo<v16i8, v8i16, v16i1, v8i1, 0b00, "u", 0b1>; 308def MVE_v8u16 : MVEVectorVTInfo<v8i16, v4i32, v8i1, v4i1, 0b01, "u", 0b1>; 309def MVE_v4u32 : MVEVectorVTInfo<v4i32, v2i64, v4i1, v4i1, 0b10, "u", 0b1>; 310def MVE_v2u64 : MVEVectorVTInfo<v2i64, ?, v4i1, ?, 0b11, "u", 0b1>; 311 312// FP vector types. 313def MVE_v8f16 : MVEVectorVTInfo<v8f16, v4f32, v8i1, v4i1, 0b01, "f", ?>; 314def MVE_v4f32 : MVEVectorVTInfo<v4f32, v2f64, v4i1, v4i1, 0b10, "f", ?>; 315def MVE_v2f64 : MVEVectorVTInfo<v2f64, ?, v4i1, ?, 0b11, "f", ?>; 316 317// Polynomial vector types. 318def MVE_v16p8 : MVEVectorVTInfo<v16i8, v8i16, v16i1, v8i1, 0b11, "p", 0b0>; 319def MVE_v8p16 : MVEVectorVTInfo<v8i16, v4i32, v8i1, v4i1, 0b11, "p", 0b1>; 320 321// --------- Start of base classes for the instructions themselves 322 323class MVE_MI<dag oops, dag iops, InstrItinClass itin, string asm, 324 string ops, string cstr, list<dag> pattern> 325 : Thumb2XI<oops, iops, AddrModeNone, 4, itin, !strconcat(asm, "\t", ops), cstr, 326 pattern>, 327 Requires<[HasMVEInt]> { 328 let D = MVEDomain; 329 let DecoderNamespace = "MVE"; 330} 331 332// MVE_p is used for most predicated instructions, to add the cluster 333// of input operands that provides the VPT suffix (none, T or E) and 334// the input predicate register. 335class MVE_p<dag oops, dag iops, InstrItinClass itin, string iname, 336 string suffix, string ops, vpred_ops vpred, string cstr, 337 list<dag> pattern=[]> 338 : MVE_MI<oops, !con(iops, (ins vpred:$vp)), itin, 339 // If the instruction has a suffix, like vadd.f32, then the 340 // VPT predication suffix goes before the dot, so the full 341 // name has to be "vadd${vp}.f32". 342 !strconcat(iname, "${vp}", 343 !if(!eq(suffix, ""), "", !strconcat(".", suffix))), 344 ops, !strconcat(cstr, vpred.vpred_constraint), pattern> { 345 let Inst{31-29} = 0b111; 346 let Inst{27-26} = 0b11; 347} 348 349class MVE_f<dag oops, dag iops, InstrItinClass itin, string iname, 350 string suffix, string ops, vpred_ops vpred, string cstr, 351 list<dag> pattern=[]> 352 : MVE_p<oops, iops, itin, iname, suffix, ops, vpred, cstr, pattern> { 353 let Predicates = [HasMVEFloat]; 354} 355 356class MVE_MI_with_pred<dag oops, dag iops, InstrItinClass itin, string asm, 357 string ops, string cstr, list<dag> pattern> 358 : Thumb2I<oops, iops, AddrModeNone, 4, itin, asm, !strconcat("\t", ops), cstr, 359 pattern>, 360 Requires<[HasV8_1MMainline, HasMVEInt]> { 361 let D = MVEDomain; 362 let DecoderNamespace = "MVE"; 363} 364 365class MVE_VMOV_lane_base<dag oops, dag iops, InstrItinClass itin, string asm, 366 string suffix, string ops, string cstr, 367 list<dag> pattern> 368 : Thumb2I<oops, iops, AddrModeNone, 4, itin, asm, 369 !if(!eq(suffix, ""), "", "." # suffix) # "\t" # ops, 370 cstr, pattern>, 371 Requires<[HasV8_1MMainline, HasMVEInt]> { 372 let D = MVEDomain; 373 let DecoderNamespace = "MVE"; 374} 375 376class MVE_ScalarShift<string iname, dag oops, dag iops, string asm, string cstr, 377 list<dag> pattern=[]> 378 : MVE_MI_with_pred<oops, iops, NoItinerary, iname, asm, cstr, pattern> { 379 let Inst{31-20} = 0b111010100101; 380 let Inst{8} = 0b1; 381 382} 383 384class MVE_ScalarShiftSingleReg<string iname, dag iops, string asm, string cstr, 385 list<dag> pattern=[]> 386 : MVE_ScalarShift<iname, (outs rGPR:$RdaDest), iops, asm, cstr, pattern> { 387 bits<4> RdaDest; 388 389 let Inst{19-16} = RdaDest{3-0}; 390} 391 392class MVE_ScalarShiftSRegImm<string iname, bits<2> op5_4> 393 : MVE_ScalarShiftSingleReg<iname, (ins rGPR:$RdaSrc, long_shift:$imm), 394 "$RdaSrc, $imm", "$RdaDest = $RdaSrc", 395 [(set rGPR:$RdaDest, 396 (i32 (!cast<Intrinsic>("int_arm_mve_" # iname) 397 (i32 rGPR:$RdaSrc), (i32 imm:$imm))))]> { 398 bits<5> imm; 399 400 let Inst{15} = 0b0; 401 let Inst{14-12} = imm{4-2}; 402 let Inst{11-8} = 0b1111; 403 let Inst{7-6} = imm{1-0}; 404 let Inst{5-4} = op5_4{1-0}; 405 let Inst{3-0} = 0b1111; 406} 407 408def MVE_SQSHL : MVE_ScalarShiftSRegImm<"sqshl", 0b11>; 409def MVE_SRSHR : MVE_ScalarShiftSRegImm<"srshr", 0b10>; 410def MVE_UQSHL : MVE_ScalarShiftSRegImm<"uqshl", 0b00>; 411def MVE_URSHR : MVE_ScalarShiftSRegImm<"urshr", 0b01>; 412 413class MVE_ScalarShiftSRegReg<string iname, bits<2> op5_4> 414 : MVE_ScalarShiftSingleReg<iname, (ins rGPR:$RdaSrc, rGPR:$Rm), 415 "$RdaSrc, $Rm", "$RdaDest = $RdaSrc", 416 [(set rGPR:$RdaDest, 417 (i32 (!cast<Intrinsic>("int_arm_mve_" # iname) 418 (i32 rGPR:$RdaSrc), (i32 rGPR:$Rm))))]> { 419 bits<4> Rm; 420 421 let Inst{15-12} = Rm{3-0}; 422 let Inst{11-8} = 0b1111; 423 let Inst{7-6} = 0b00; 424 let Inst{5-4} = op5_4{1-0}; 425 let Inst{3-0} = 0b1101; 426 427 let Unpredictable{8-6} = 0b111; 428} 429 430def MVE_SQRSHR : MVE_ScalarShiftSRegReg<"sqrshr", 0b10>; 431def MVE_UQRSHL : MVE_ScalarShiftSRegReg<"uqrshl", 0b00>; 432 433class MVE_ScalarShiftDoubleReg<string iname, dag iops, string asm, 434 string cstr, list<dag> pattern=[]> 435 : MVE_ScalarShift<iname, (outs tGPREven:$RdaLo, tGPROdd:$RdaHi), 436 iops, asm, cstr, pattern> { 437 bits<4> RdaLo; 438 bits<4> RdaHi; 439 440 let Inst{19-17} = RdaLo{3-1}; 441 let Inst{11-9} = RdaHi{3-1}; 442 443 let hasSideEffects = 0; 444} 445 446class MVE_ScalarShiftDRegImm<string iname, bits<2> op5_4, bit op16, 447 list<dag> pattern=[]> 448 : MVE_ScalarShiftDoubleReg< 449 iname, (ins tGPREven:$RdaLo_src, tGPROdd:$RdaHi_src, long_shift:$imm), 450 "$RdaLo, $RdaHi, $imm", "$RdaLo = $RdaLo_src,$RdaHi = $RdaHi_src", 451 pattern> { 452 bits<5> imm; 453 454 let Inst{16} = op16; 455 let Inst{15} = 0b0; 456 let Inst{14-12} = imm{4-2}; 457 let Inst{7-6} = imm{1-0}; 458 let Inst{5-4} = op5_4{1-0}; 459 let Inst{3-0} = 0b1111; 460} 461 462class MVE_ScalarShiftDRegRegBase<string iname, dag iops, string asm, 463 bit op5, bit op16, list<dag> pattern=[]> 464 : MVE_ScalarShiftDoubleReg< 465 iname, iops, asm, "@earlyclobber $RdaHi,@earlyclobber $RdaLo," 466 "$RdaLo = $RdaLo_src,$RdaHi = $RdaHi_src", 467 pattern> { 468 bits<4> Rm; 469 470 let Inst{16} = op16; 471 let Inst{15-12} = Rm{3-0}; 472 let Inst{6} = 0b0; 473 let Inst{5} = op5; 474 let Inst{4} = 0b0; 475 let Inst{3-0} = 0b1101; 476 477 // Custom decoder method because of the following overlapping encodings: 478 // ASRL and SQRSHR 479 // LSLL and UQRSHL 480 // SQRSHRL and SQRSHR 481 // UQRSHLL and UQRSHL 482 let DecoderMethod = "DecodeMVEOverlappingLongShift"; 483} 484 485class MVE_ScalarShiftDRegReg<string iname, bit op5, list<dag> pattern=[]> 486 : MVE_ScalarShiftDRegRegBase< 487 iname, (ins tGPREven:$RdaLo_src, tGPROdd:$RdaHi_src, rGPR:$Rm), 488 "$RdaLo, $RdaHi, $Rm", op5, 0b0, pattern> { 489 490 let Inst{7} = 0b0; 491} 492 493class MVE_ScalarShiftDRegRegWithSat<string iname, bit op5, list<dag> pattern=[]> 494 : MVE_ScalarShiftDRegRegBase< 495 iname, (ins tGPREven:$RdaLo_src, tGPROdd:$RdaHi_src, rGPR:$Rm, saturateop:$sat), 496 "$RdaLo, $RdaHi, $sat, $Rm", op5, 0b1, pattern> { 497 bit sat; 498 499 let Inst{7} = sat; 500} 501 502def MVE_ASRLr : MVE_ScalarShiftDRegReg<"asrl", 0b1, [(set tGPREven:$RdaLo, tGPROdd:$RdaHi, 503 (ARMasrl tGPREven:$RdaLo_src, 504 tGPROdd:$RdaHi_src, rGPR:$Rm))]>; 505def MVE_ASRLi : MVE_ScalarShiftDRegImm<"asrl", 0b10, ?, [(set tGPREven:$RdaLo, tGPROdd:$RdaHi, 506 (ARMasrl tGPREven:$RdaLo_src, 507 tGPROdd:$RdaHi_src, (i32 long_shift:$imm)))]>; 508def MVE_LSLLr : MVE_ScalarShiftDRegReg<"lsll", 0b0, [(set tGPREven:$RdaLo, tGPROdd:$RdaHi, 509 (ARMlsll tGPREven:$RdaLo_src, 510 tGPROdd:$RdaHi_src, rGPR:$Rm))]>; 511def MVE_LSLLi : MVE_ScalarShiftDRegImm<"lsll", 0b00, ?, [(set tGPREven:$RdaLo, tGPROdd:$RdaHi, 512 (ARMlsll tGPREven:$RdaLo_src, 513 tGPROdd:$RdaHi_src, (i32 long_shift:$imm)))]>; 514def MVE_LSRL : MVE_ScalarShiftDRegImm<"lsrl", 0b01, ?, [(set tGPREven:$RdaLo, tGPROdd:$RdaHi, 515 (ARMlsrl tGPREven:$RdaLo_src, 516 tGPROdd:$RdaHi_src, (i32 long_shift:$imm)))]>; 517 518def MVE_SQRSHRL : MVE_ScalarShiftDRegRegWithSat<"sqrshrl", 0b1>; 519def MVE_SQSHLL : MVE_ScalarShiftDRegImm<"sqshll", 0b11, 0b1>; 520def MVE_SRSHRL : MVE_ScalarShiftDRegImm<"srshrl", 0b10, 0b1>; 521 522def MVE_UQRSHLL : MVE_ScalarShiftDRegRegWithSat<"uqrshll", 0b0>; 523def MVE_UQSHLL : MVE_ScalarShiftDRegImm<"uqshll", 0b00, 0b1>; 524def MVE_URSHRL : MVE_ScalarShiftDRegImm<"urshrl", 0b01, 0b1>; 525 526// start of mve_rDest instructions 527 528class MVE_rDest<dag oops, dag iops, InstrItinClass itin, 529 string iname, string suffix, 530 string ops, string cstr, list<dag> pattern=[]> 531// Always use vpred_n and not vpred_r: with the output register being 532// a GPR and not a vector register, there can't be any question of 533// what to put in its inactive lanes. 534 : MVE_p<oops, iops, itin, iname, suffix, ops, vpred_n, cstr, pattern> { 535 536 let Inst{25-23} = 0b101; 537 let Inst{11-9} = 0b111; 538 let Inst{4} = 0b0; 539} 540 541class MVE_VABAV<string suffix, bit U, bits<2> size> 542 : MVE_rDest<(outs rGPR:$Rda), (ins rGPR:$Rda_src, MQPR:$Qn, MQPR:$Qm), 543 NoItinerary, "vabav", suffix, "$Rda, $Qn, $Qm", "$Rda = $Rda_src", 544 []> { 545 bits<4> Qm; 546 bits<4> Qn; 547 bits<4> Rda; 548 549 let Inst{28} = U; 550 let Inst{22} = 0b0; 551 let Inst{21-20} = size{1-0}; 552 let Inst{19-17} = Qn{2-0}; 553 let Inst{16} = 0b0; 554 let Inst{15-12} = Rda{3-0}; 555 let Inst{8} = 0b1; 556 let Inst{7} = Qn{3}; 557 let Inst{6} = 0b0; 558 let Inst{5} = Qm{3}; 559 let Inst{3-1} = Qm{2-0}; 560 let Inst{0} = 0b1; 561 let horizontalReduction = 1; 562} 563 564multiclass MVE_VABAV_m<MVEVectorVTInfo VTI> { 565 def "" : MVE_VABAV<VTI.Suffix, VTI.Unsigned, VTI.Size>; 566 defvar Inst = !cast<Instruction>(NAME); 567 568 let Predicates = [HasMVEInt] in { 569 def : Pat<(i32 (int_arm_mve_vabav 570 (i32 VTI.Unsigned), 571 (i32 rGPR:$Rda_src), 572 (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm))), 573 (i32 (Inst (i32 rGPR:$Rda_src), 574 (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm)))>; 575 576 def : Pat<(i32 (int_arm_mve_vabav_predicated 577 (i32 VTI.Unsigned), 578 (i32 rGPR:$Rda_src), 579 (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm), 580 (VTI.Pred VCCR:$mask))), 581 (i32 (Inst (i32 rGPR:$Rda_src), 582 (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm), 583 ARMVCCThen, (VTI.Pred VCCR:$mask)))>; 584 } 585} 586 587defm MVE_VABAVs8 : MVE_VABAV_m<MVE_v16s8>; 588defm MVE_VABAVs16 : MVE_VABAV_m<MVE_v8s16>; 589defm MVE_VABAVs32 : MVE_VABAV_m<MVE_v4s32>; 590defm MVE_VABAVu8 : MVE_VABAV_m<MVE_v16u8>; 591defm MVE_VABAVu16 : MVE_VABAV_m<MVE_v8u16>; 592defm MVE_VABAVu32 : MVE_VABAV_m<MVE_v4u32>; 593 594class MVE_VADDV<string iname, string suffix, dag iops, string cstr, 595 bit A, bit U, bits<2> size, list<dag> pattern=[]> 596 : MVE_rDest<(outs tGPREven:$Rda), iops, NoItinerary, 597 iname, suffix, "$Rda, $Qm", cstr, pattern> { 598 bits<3> Qm; 599 bits<4> Rda; 600 601 let Inst{28} = U; 602 let Inst{22-20} = 0b111; 603 let Inst{19-18} = size{1-0}; 604 let Inst{17-16} = 0b01; 605 let Inst{15-13} = Rda{3-1}; 606 let Inst{12} = 0b0; 607 let Inst{8-6} = 0b100; 608 let Inst{5} = A; 609 let Inst{3-1} = Qm{2-0}; 610 let Inst{0} = 0b0; 611 let horizontalReduction = 1; 612 let validForTailPredication = 1; 613} 614 615def ARMVADDVs : SDNode<"ARMISD::VADDVs", SDTVecReduce>; 616def ARMVADDVu : SDNode<"ARMISD::VADDVu", SDTVecReduce>; 617 618multiclass MVE_VADDV_A<MVEVectorVTInfo VTI> { 619 def acc : MVE_VADDV<"vaddva", VTI.Suffix, 620 (ins tGPREven:$Rda_src, MQPR:$Qm), "$Rda = $Rda_src", 621 0b1, VTI.Unsigned, VTI.Size>; 622 def no_acc : MVE_VADDV<"vaddv", VTI.Suffix, 623 (ins MQPR:$Qm), "", 624 0b0, VTI.Unsigned, VTI.Size>; 625 626 defvar InstA = !cast<Instruction>(NAME # "acc"); 627 defvar InstN = !cast<Instruction>(NAME # "no_acc"); 628 629 let Predicates = [HasMVEInt] in { 630 if VTI.Unsigned then { 631 def : Pat<(i32 (vecreduce_add (VTI.Vec MQPR:$vec))), 632 (i32 (InstN $vec))>; 633 def : Pat<(i32 (ARMVADDVu (VTI.Vec MQPR:$vec))), 634 (i32 (InstN $vec))>; 635 def : Pat<(i32 (add (i32 (vecreduce_add (VTI.Vec MQPR:$vec))), 636 (i32 tGPREven:$acc))), 637 (i32 (InstA $acc, $vec))>; 638 def : Pat<(i32 (add (i32 (ARMVADDVu (VTI.Vec MQPR:$vec))), 639 (i32 tGPREven:$acc))), 640 (i32 (InstA $acc, $vec))>; 641 } else { 642 def : Pat<(i32 (ARMVADDVs (VTI.Vec MQPR:$vec))), 643 (i32 (InstN $vec))>; 644 def : Pat<(i32 (add (i32 (ARMVADDVs (VTI.Vec MQPR:$vec))), 645 (i32 tGPREven:$acc))), 646 (i32 (InstA $acc, $vec))>; 647 } 648 649 def : Pat<(i32 (int_arm_mve_addv_predicated (VTI.Vec MQPR:$vec), 650 (i32 VTI.Unsigned), 651 (VTI.Pred VCCR:$pred))), 652 (i32 (InstN $vec, ARMVCCThen, $pred))>; 653 def : Pat<(i32 (add (int_arm_mve_addv_predicated (VTI.Vec MQPR:$vec), 654 (i32 VTI.Unsigned), 655 (VTI.Pred VCCR:$pred)), 656 (i32 tGPREven:$acc))), 657 (i32 (InstA $acc, $vec, ARMVCCThen, $pred))>; 658 } 659} 660 661defm MVE_VADDVs8 : MVE_VADDV_A<MVE_v16s8>; 662defm MVE_VADDVs16 : MVE_VADDV_A<MVE_v8s16>; 663defm MVE_VADDVs32 : MVE_VADDV_A<MVE_v4s32>; 664defm MVE_VADDVu8 : MVE_VADDV_A<MVE_v16u8>; 665defm MVE_VADDVu16 : MVE_VADDV_A<MVE_v8u16>; 666defm MVE_VADDVu32 : MVE_VADDV_A<MVE_v4u32>; 667 668class MVE_VADDLV<string iname, string suffix, dag iops, string cstr, 669 bit A, bit U, list<dag> pattern=[]> 670 : MVE_rDest<(outs tGPREven:$RdaLo, tGPROdd:$RdaHi), iops, NoItinerary, iname, 671 suffix, "$RdaLo, $RdaHi, $Qm", cstr, pattern> { 672 bits<3> Qm; 673 bits<4> RdaLo; 674 bits<4> RdaHi; 675 676 let Inst{28} = U; 677 let Inst{22-20} = RdaHi{3-1}; 678 let Inst{19-18} = 0b10; 679 let Inst{17-16} = 0b01; 680 let Inst{15-13} = RdaLo{3-1}; 681 let Inst{12} = 0b0; 682 let Inst{8-6} = 0b100; 683 let Inst{5} = A; 684 let Inst{3-1} = Qm{2-0}; 685 let Inst{0} = 0b0; 686 let horizontalReduction = 1; 687} 688 689def SDTVecReduceL : SDTypeProfile<2, 1, [ // VADDLV 690 SDTCisInt<0>, SDTCisInt<1>, SDTCisVec<2> 691]>; 692def SDTVecReduceLA : SDTypeProfile<2, 3, [ // VADDLVA 693 SDTCisInt<0>, SDTCisInt<1>, SDTCisInt<2>, SDTCisInt<3>, 694 SDTCisVec<4> 695]>; 696def SDTVecReduceLP : SDTypeProfile<2, 2, [ // VADDLVp 697 SDTCisInt<0>, SDTCisInt<1>, SDTCisVec<2>, SDTCisVec<2> 698]>; 699def SDTVecReduceLPA : SDTypeProfile<2, 4, [ // VADDLVAp 700 SDTCisInt<0>, SDTCisInt<1>, SDTCisInt<2>, SDTCisInt<3>, 701 SDTCisVec<4>, SDTCisVec<5> 702]>; 703 704multiclass MVE_VADDLV_A<MVEVectorVTInfo VTI> { 705 def acc : MVE_VADDLV<"vaddlva", VTI.Suffix, 706 (ins tGPREven:$RdaLo_src, tGPROdd:$RdaHi_src, MQPR:$Qm), 707 "$RdaLo = $RdaLo_src,$RdaHi = $RdaHi_src", 708 0b1, VTI.Unsigned>; 709 def no_acc : MVE_VADDLV<"vaddlv", VTI.Suffix, 710 (ins MQPR:$Qm), "", 711 0b0, VTI.Unsigned>; 712 713 defvar InstA = !cast<Instruction>(NAME # "acc"); 714 defvar InstN = !cast<Instruction>(NAME # "no_acc"); 715 716 defvar letter = VTI.SuffixLetter; 717 defvar ARMVADDLV = SDNode<"ARMISD::VADDLV" # letter, SDTVecReduceL>; 718 defvar ARMVADDLVA = SDNode<"ARMISD::VADDLVA" # letter, SDTVecReduceLA>; 719 defvar ARMVADDLVp = SDNode<"ARMISD::VADDLVp" # letter, SDTVecReduceLP>; 720 defvar ARMVADDLVAp = SDNode<"ARMISD::VADDLVAp" # letter, SDTVecReduceLPA>; 721 722 let Predicates = [HasMVEInt] in { 723 def : Pat<(ARMVADDLV (v4i32 MQPR:$vec)), 724 (InstN (v4i32 MQPR:$vec))>; 725 def : Pat<(ARMVADDLVA tGPREven:$acclo, tGPROdd:$acchi, (v4i32 MQPR:$vec)), 726 (InstA tGPREven:$acclo, tGPROdd:$acchi, (v4i32 MQPR:$vec))>; 727 def : Pat<(ARMVADDLVp (v4i32 MQPR:$vec), (VTI.Pred VCCR:$pred)), 728 (InstN (v4i32 MQPR:$vec), ARMVCCThen, (VTI.Pred VCCR:$pred))>; 729 def : Pat<(ARMVADDLVAp tGPREven:$acclo, tGPROdd:$acchi, (v4i32 MQPR:$vec), 730 (VTI.Pred VCCR:$pred)), 731 (InstA tGPREven:$acclo, tGPROdd:$acchi, (v4i32 MQPR:$vec), 732 ARMVCCThen, (VTI.Pred VCCR:$pred))>; 733 } 734} 735 736defm MVE_VADDLVs32 : MVE_VADDLV_A<MVE_v4s32>; 737defm MVE_VADDLVu32 : MVE_VADDLV_A<MVE_v4u32>; 738 739class MVE_VMINMAXNMV<string iname, string suffix, bit sz, 740 bit bit_17, bit bit_7, list<dag> pattern=[]> 741 : MVE_rDest<(outs rGPR:$RdaDest), (ins rGPR:$RdaSrc, MQPR:$Qm), 742 NoItinerary, iname, suffix, "$RdaSrc, $Qm", 743 "$RdaDest = $RdaSrc", pattern> { 744 bits<3> Qm; 745 bits<4> RdaDest; 746 747 let Inst{28} = sz; 748 let Inst{22-20} = 0b110; 749 let Inst{19-18} = 0b11; 750 let Inst{17} = bit_17; 751 let Inst{16} = 0b0; 752 let Inst{15-12} = RdaDest{3-0}; 753 let Inst{8} = 0b1; 754 let Inst{7} = bit_7; 755 let Inst{6-5} = 0b00; 756 let Inst{3-1} = Qm{2-0}; 757 let Inst{0} = 0b0; 758 let horizontalReduction = 1; 759 760 let Predicates = [HasMVEFloat]; 761 let hasSideEffects = 0; 762} 763 764multiclass MVE_VMINMAXNMV_p<string iname, bit notAbs, bit isMin, 765 MVEVectorVTInfo VTI, string intrBaseName, 766 ValueType Scalar, RegisterClass ScalarReg> { 767 def "": MVE_VMINMAXNMV<iname, VTI.Suffix, VTI.Size{0}, notAbs, isMin>; 768 defvar Inst = !cast<Instruction>(NAME); 769 defvar unpred_intr = !cast<Intrinsic>(intrBaseName); 770 defvar pred_intr = !cast<Intrinsic>(intrBaseName#"_predicated"); 771 772 let Predicates = [HasMVEFloat] in { 773 def : Pat<(Scalar (unpred_intr (Scalar ScalarReg:$prev), 774 (VTI.Vec MQPR:$vec))), 775 (COPY_TO_REGCLASS (Inst (COPY_TO_REGCLASS ScalarReg:$prev, rGPR), 776 (VTI.Vec MQPR:$vec)), 777 ScalarReg)>; 778 def : Pat<(Scalar (pred_intr (Scalar ScalarReg:$prev), 779 (VTI.Vec MQPR:$vec), 780 (VTI.Pred VCCR:$pred))), 781 (COPY_TO_REGCLASS (Inst (COPY_TO_REGCLASS ScalarReg:$prev, rGPR), 782 (VTI.Vec MQPR:$vec), 783 ARMVCCThen, (VTI.Pred VCCR:$pred)), 784 ScalarReg)>; 785 } 786} 787 788multiclass MVE_VMINMAXNMV_fty<string iname, bit notAbs, bit isMin, 789 string intrBase> { 790 defm f32 : MVE_VMINMAXNMV_p<iname, notAbs, isMin, MVE_v4f32, intrBase, 791 f32, SPR>; 792 defm f16 : MVE_VMINMAXNMV_p<iname, notAbs, isMin, MVE_v8f16, intrBase, 793 f16, HPR>; 794} 795 796defm MVE_VMINNMV : MVE_VMINMAXNMV_fty<"vminnmv", 1, 1, "int_arm_mve_minnmv">; 797defm MVE_VMAXNMV : MVE_VMINMAXNMV_fty<"vmaxnmv", 1, 0, "int_arm_mve_maxnmv">; 798defm MVE_VMINNMAV: MVE_VMINMAXNMV_fty<"vminnmav", 0, 1, "int_arm_mve_minnmav">; 799defm MVE_VMAXNMAV: MVE_VMINMAXNMV_fty<"vmaxnmav", 0, 0, "int_arm_mve_maxnmav">; 800 801class MVE_VMINMAXV<string iname, string suffix, bit U, bits<2> size, 802 bit bit_17, bit bit_7, list<dag> pattern=[]> 803 : MVE_rDest<(outs rGPR:$RdaDest), (ins rGPR:$RdaSrc, MQPR:$Qm), NoItinerary, 804 iname, suffix, "$RdaSrc, $Qm", "$RdaDest = $RdaSrc", pattern> { 805 bits<3> Qm; 806 bits<4> RdaDest; 807 808 let Inst{28} = U; 809 let Inst{22-20} = 0b110; 810 let Inst{19-18} = size{1-0}; 811 let Inst{17} = bit_17; 812 let Inst{16} = 0b0; 813 let Inst{15-12} = RdaDest{3-0}; 814 let Inst{8} = 0b1; 815 let Inst{7} = bit_7; 816 let Inst{6-5} = 0b00; 817 let Inst{3-1} = Qm{2-0}; 818 let Inst{0} = 0b0; 819 let horizontalReduction = 1; 820} 821 822multiclass MVE_VMINMAXV_p<string iname, bit notAbs, bit isMin, 823 MVEVectorVTInfo VTI, string intrBaseName> { 824 def "": MVE_VMINMAXV<iname, VTI.Suffix, VTI.Unsigned, VTI.Size, 825 notAbs, isMin>; 826 defvar Inst = !cast<Instruction>(NAME); 827 defvar unpred_intr = !cast<Intrinsic>(intrBaseName); 828 defvar pred_intr = !cast<Intrinsic>(intrBaseName#"_predicated"); 829 defvar base_args = (? (i32 rGPR:$prev), (VTI.Vec MQPR:$vec)); 830 defvar args = !if(notAbs, !con(base_args, (? (i32 VTI.Unsigned))), 831 base_args); 832 833 let Predicates = [HasMVEInt] in { 834 def : Pat<(i32 !con(args, (unpred_intr))), 835 (i32 (Inst (i32 rGPR:$prev), (VTI.Vec MQPR:$vec)))>; 836 def : Pat<(i32 !con(args, (pred_intr (VTI.Pred VCCR:$pred)))), 837 (i32 (Inst (i32 rGPR:$prev), (VTI.Vec MQPR:$vec), 838 ARMVCCThen, (VTI.Pred VCCR:$pred)))>; 839 } 840} 841 842multiclass MVE_VMINMAXV_ty<string iname, bit isMin, string intrBaseName> { 843 defm s8 : MVE_VMINMAXV_p<iname, 1, isMin, MVE_v16s8, intrBaseName>; 844 defm s16: MVE_VMINMAXV_p<iname, 1, isMin, MVE_v8s16, intrBaseName>; 845 defm s32: MVE_VMINMAXV_p<iname, 1, isMin, MVE_v4s32, intrBaseName>; 846 defm u8 : MVE_VMINMAXV_p<iname, 1, isMin, MVE_v16u8, intrBaseName>; 847 defm u16: MVE_VMINMAXV_p<iname, 1, isMin, MVE_v8u16, intrBaseName>; 848 defm u32: MVE_VMINMAXV_p<iname, 1, isMin, MVE_v4u32, intrBaseName>; 849} 850 851defm MVE_VMINV : MVE_VMINMAXV_ty<"vminv", 1, "int_arm_mve_minv">; 852defm MVE_VMAXV : MVE_VMINMAXV_ty<"vmaxv", 0, "int_arm_mve_maxv">; 853 854let Predicates = [HasMVEInt] in { 855 def : Pat<(i32 (vecreduce_smax (v16i8 MQPR:$src))), 856 (i32 (MVE_VMAXVs8 (t2MVNi (i32 127)), $src))>; 857 def : Pat<(i32 (vecreduce_smax (v8i16 MQPR:$src))), 858 (i32 (MVE_VMAXVs16 (t2MOVi32imm (i32 -32768)), $src))>; 859 def : Pat<(i32 (vecreduce_smax (v4i32 MQPR:$src))), 860 (i32 (MVE_VMAXVs32 (t2MOVi (i32 -2147483648)), $src))>; 861 def : Pat<(i32 (vecreduce_umax (v16i8 MQPR:$src))), 862 (i32 (MVE_VMAXVu8 (t2MOVi (i32 0)), $src))>; 863 def : Pat<(i32 (vecreduce_umax (v8i16 MQPR:$src))), 864 (i32 (MVE_VMAXVu16 (t2MOVi (i32 0)), $src))>; 865 def : Pat<(i32 (vecreduce_umax (v4i32 MQPR:$src))), 866 (i32 (MVE_VMAXVu32 (t2MOVi (i32 0)), $src))>; 867 868 def : Pat<(i32 (vecreduce_smin (v16i8 MQPR:$src))), 869 (i32 (MVE_VMINVs8 (t2MOVi (i32 127)), $src))>; 870 def : Pat<(i32 (vecreduce_smin (v8i16 MQPR:$src))), 871 (i32 (MVE_VMINVs16 (t2MOVi16 (i32 32767)), $src))>; 872 def : Pat<(i32 (vecreduce_smin (v4i32 MQPR:$src))), 873 (i32 (MVE_VMINVs32 (t2MVNi (i32 -2147483648)), $src))>; 874 def : Pat<(i32 (vecreduce_umin (v16i8 MQPR:$src))), 875 (i32 (MVE_VMINVu8 (t2MOVi (i32 255)), $src))>; 876 def : Pat<(i32 (vecreduce_umin (v8i16 MQPR:$src))), 877 (i32 (MVE_VMINVu16 (t2MOVi16 (i32 65535)), $src))>; 878 def : Pat<(i32 (vecreduce_umin (v4i32 MQPR:$src))), 879 (i32 (MVE_VMINVu32 (t2MOVi (i32 4294967295)), $src))>; 880 881} 882 883multiclass MVE_VMINMAXAV_ty<string iname, bit isMin, string intrBaseName> { 884 defm s8 : MVE_VMINMAXV_p<iname, 0, isMin, MVE_v16s8, intrBaseName>; 885 defm s16: MVE_VMINMAXV_p<iname, 0, isMin, MVE_v8s16, intrBaseName>; 886 defm s32: MVE_VMINMAXV_p<iname, 0, isMin, MVE_v4s32, intrBaseName>; 887} 888 889defm MVE_VMINAV : MVE_VMINMAXAV_ty<"vminav", 1, "int_arm_mve_minav">; 890defm MVE_VMAXAV : MVE_VMINMAXAV_ty<"vmaxav", 0, "int_arm_mve_maxav">; 891 892class MVE_VMLAMLSDAV<string iname, string suffix, dag iops, string cstr, 893 bit sz, bit bit_28, bit A, bit X, bit bit_8, bit bit_0> 894 : MVE_rDest<(outs tGPREven:$RdaDest), iops, NoItinerary, iname, suffix, 895 "$RdaDest, $Qn, $Qm", cstr, []> { 896 bits<4> RdaDest; 897 bits<3> Qm; 898 bits<3> Qn; 899 900 let Inst{28} = bit_28; 901 let Inst{22-20} = 0b111; 902 let Inst{19-17} = Qn{2-0}; 903 let Inst{16} = sz; 904 let Inst{15-13} = RdaDest{3-1}; 905 let Inst{12} = X; 906 let Inst{8} = bit_8; 907 let Inst{7-6} = 0b00; 908 let Inst{5} = A; 909 let Inst{3-1} = Qm{2-0}; 910 let Inst{0} = bit_0; 911 let horizontalReduction = 1; 912} 913 914multiclass MVE_VMLAMLSDAV_A<string iname, string x, MVEVectorVTInfo VTI, 915 bit sz, bit bit_28, bit X, bit bit_8, bit bit_0> { 916 def ""#x#VTI.Suffix : MVE_VMLAMLSDAV<iname # x, VTI.Suffix, 917 (ins MQPR:$Qn, MQPR:$Qm), "", 918 sz, bit_28, 0b0, X, bit_8, bit_0>; 919 def "a"#x#VTI.Suffix : MVE_VMLAMLSDAV<iname # "a" # x, VTI.Suffix, 920 (ins tGPREven:$RdaSrc, MQPR:$Qn, MQPR:$Qm), 921 "$RdaDest = $RdaSrc", 922 sz, bit_28, 0b1, X, bit_8, bit_0>; 923 let Predicates = [HasMVEInt] in { 924 def : Pat<(i32 (int_arm_mve_vmldava 925 (i32 VTI.Unsigned), 926 (i32 bit_0) /* subtract */, 927 (i32 X) /* exchange */, 928 (i32 0) /* accumulator */, 929 (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm))), 930 (i32 (!cast<Instruction>(NAME # x # VTI.Suffix) 931 (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm)))>; 932 933 def : Pat<(i32 (int_arm_mve_vmldava_predicated 934 (i32 VTI.Unsigned), 935 (i32 bit_0) /* subtract */, 936 (i32 X) /* exchange */, 937 (i32 0) /* accumulator */, 938 (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm), 939 (VTI.Pred VCCR:$mask))), 940 (i32 (!cast<Instruction>(NAME # x # VTI.Suffix) 941 (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm), 942 ARMVCCThen, (VTI.Pred VCCR:$mask)))>; 943 944 def : Pat<(i32 (int_arm_mve_vmldava 945 (i32 VTI.Unsigned), 946 (i32 bit_0) /* subtract */, 947 (i32 X) /* exchange */, 948 (i32 tGPREven:$RdaSrc), 949 (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm))), 950 (i32 (!cast<Instruction>(NAME # "a" # x # VTI.Suffix) 951 (i32 tGPREven:$RdaSrc), 952 (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm)))>; 953 954 def : Pat<(i32 (int_arm_mve_vmldava_predicated 955 (i32 VTI.Unsigned), 956 (i32 bit_0) /* subtract */, 957 (i32 X) /* exchange */, 958 (i32 tGPREven:$RdaSrc), 959 (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm), 960 (VTI.Pred VCCR:$mask))), 961 (i32 (!cast<Instruction>(NAME # "a" # x # VTI.Suffix) 962 (i32 tGPREven:$RdaSrc), 963 (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm), 964 ARMVCCThen, (VTI.Pred VCCR:$mask)))>; 965 } 966} 967 968multiclass MVE_VMLAMLSDAV_AX<string iname, MVEVectorVTInfo VTI, bit sz, 969 bit bit_28, bit bit_8, bit bit_0> { 970 defm "" : MVE_VMLAMLSDAV_A<iname, "", VTI, sz, bit_28, 971 0b0, bit_8, bit_0>; 972 defm "" : MVE_VMLAMLSDAV_A<iname, "x", VTI, sz, bit_28, 973 0b1, bit_8, bit_0>; 974} 975 976multiclass MVE_VMLADAV_multi<MVEVectorVTInfo SVTI, MVEVectorVTInfo UVTI, 977 bit sz, bit bit_8> { 978 defm "" : MVE_VMLAMLSDAV_AX<"vmladav", SVTI, 979 sz, 0b0, bit_8, 0b0>; 980 defm "" : MVE_VMLAMLSDAV_A<"vmladav", "", UVTI, 981 sz, 0b1, 0b0, bit_8, 0b0>; 982} 983 984multiclass MVE_VMLSDAV_multi<MVEVectorVTInfo VTI, bit sz, bit bit_28> { 985 defm "" : MVE_VMLAMLSDAV_AX<"vmlsdav", VTI, 986 sz, bit_28, 0b0, 0b1>; 987} 988 989defm MVE_VMLADAV : MVE_VMLADAV_multi<MVE_v16s8, MVE_v16u8, 0b0, 0b1>; 990defm MVE_VMLADAV : MVE_VMLADAV_multi<MVE_v8s16, MVE_v8u16, 0b0, 0b0>; 991defm MVE_VMLADAV : MVE_VMLADAV_multi<MVE_v4s32, MVE_v4u32, 0b1, 0b0>; 992 993defm MVE_VMLSDAV : MVE_VMLSDAV_multi<MVE_v16s8, 0b0, 0b1>; 994defm MVE_VMLSDAV : MVE_VMLSDAV_multi<MVE_v8s16, 0b0, 0b0>; 995defm MVE_VMLSDAV : MVE_VMLSDAV_multi<MVE_v4s32, 0b1, 0b0>; 996 997def SDTVecReduce2 : SDTypeProfile<1, 2, [ // VMLAV 998 SDTCisInt<0>, SDTCisVec<1>, SDTCisVec<2> 999]>; 1000def SDTVecReduce2L : SDTypeProfile<2, 2, [ // VMLALV 1001 SDTCisInt<0>, SDTCisInt<1>, SDTCisVec<2>, SDTCisVec<3> 1002]>; 1003def SDTVecReduce2LA : SDTypeProfile<2, 4, [ // VMLALVA 1004 SDTCisInt<0>, SDTCisInt<1>, SDTCisInt<2>, SDTCisInt<3>, 1005 SDTCisVec<4>, SDTCisVec<5> 1006]>; 1007def ARMVMLAVs : SDNode<"ARMISD::VMLAVs", SDTVecReduce2>; 1008def ARMVMLAVu : SDNode<"ARMISD::VMLAVu", SDTVecReduce2>; 1009def ARMVMLALVs : SDNode<"ARMISD::VMLALVs", SDTVecReduce2L>; 1010def ARMVMLALVu : SDNode<"ARMISD::VMLALVu", SDTVecReduce2L>; 1011def ARMVMLALVAs : SDNode<"ARMISD::VMLALVAs", SDTVecReduce2LA>; 1012def ARMVMLALVAu : SDNode<"ARMISD::VMLALVAu", SDTVecReduce2LA>; 1013 1014let Predicates = [HasMVEInt] in { 1015 def : Pat<(i32 (vecreduce_add (mul (v4i32 MQPR:$src1), (v4i32 MQPR:$src2)))), 1016 (i32 (MVE_VMLADAVu32 $src1, $src2))>; 1017 def : Pat<(i32 (ARMVMLAVs (v16i8 MQPR:$val1), (v16i8 MQPR:$val2))), 1018 (i32 (MVE_VMLADAVs8 (v16i8 MQPR:$val1), (v16i8 MQPR:$val2)))>; 1019 def : Pat<(i32 (ARMVMLAVu (v16i8 MQPR:$val1), (v16i8 MQPR:$val2))), 1020 (i32 (MVE_VMLADAVu8 (v16i8 MQPR:$val1), (v16i8 MQPR:$val2)))>; 1021 def : Pat<(i32 (ARMVMLAVs (v8i16 MQPR:$val1), (v8i16 MQPR:$val2))), 1022 (i32 (MVE_VMLADAVs16 (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)))>; 1023 def : Pat<(i32 (ARMVMLAVu (v8i16 MQPR:$val1), (v8i16 MQPR:$val2))), 1024 (i32 (MVE_VMLADAVu16 (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)))>; 1025 1026 def : Pat<(i32 (add (i32 (vecreduce_add (mul (v4i32 MQPR:$src1), (v4i32 MQPR:$src2)))), 1027 (i32 tGPREven:$src3))), 1028 (i32 (MVE_VMLADAVau32 $src3, $src1, $src2))>; 1029 def : Pat<(i32 (add (ARMVMLAVs (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)), tGPREven:$Rd)), 1030 (i32 (MVE_VMLADAVas16 tGPREven:$Rd, (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)))>; 1031 def : Pat<(i32 (add (ARMVMLAVu (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)), tGPREven:$Rd)), 1032 (i32 (MVE_VMLADAVau16 tGPREven:$Rd, (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)))>; 1033 def : Pat<(i32 (add (ARMVMLAVs (v16i8 MQPR:$val1), (v16i8 MQPR:$val2)), tGPREven:$Rd)), 1034 (i32 (MVE_VMLADAVas8 tGPREven:$Rd, (v16i8 MQPR:$val1), (v16i8 MQPR:$val2)))>; 1035 def : Pat<(i32 (add (ARMVMLAVu (v16i8 MQPR:$val1), (v16i8 MQPR:$val2)), tGPREven:$Rd)), 1036 (i32 (MVE_VMLADAVau8 tGPREven:$Rd, (v16i8 MQPR:$val1), (v16i8 MQPR:$val2)))>; 1037} 1038 1039// vmlav aliases vmladav 1040foreach acc = ["", "a"] in { 1041 foreach suffix = ["s8", "s16", "s32", "u8", "u16", "u32"] in { 1042 def : MVEInstAlias<"vmlav"#acc#"${vp}."#suffix#"\t$RdaDest, $Qn, $Qm", 1043 (!cast<Instruction>("MVE_VMLADAV"#acc#suffix) 1044 tGPREven:$RdaDest, MQPR:$Qn, MQPR:$Qm, vpred_n:$vp)>; 1045 } 1046} 1047 1048// Base class for VMLALDAV and VMLSLDAV, VRMLALDAVH, VRMLSLDAVH 1049class MVE_VMLALDAVBase<string iname, string suffix, dag iops, string cstr, 1050 bit sz, bit bit_28, bit A, bit X, bit bit_8, bit bit_0, 1051 list<dag> pattern=[]> 1052 : MVE_rDest<(outs tGPREven:$RdaLoDest, tGPROdd:$RdaHiDest), iops, NoItinerary, 1053 iname, suffix, "$RdaLoDest, $RdaHiDest, $Qn, $Qm", cstr, pattern> { 1054 bits<4> RdaLoDest; 1055 bits<4> RdaHiDest; 1056 bits<3> Qm; 1057 bits<3> Qn; 1058 1059 let Inst{28} = bit_28; 1060 let Inst{22-20} = RdaHiDest{3-1}; 1061 let Inst{19-17} = Qn{2-0}; 1062 let Inst{16} = sz; 1063 let Inst{15-13} = RdaLoDest{3-1}; 1064 let Inst{12} = X; 1065 let Inst{8} = bit_8; 1066 let Inst{7-6} = 0b00; 1067 let Inst{5} = A; 1068 let Inst{3-1} = Qm{2-0}; 1069 let Inst{0} = bit_0; 1070 let horizontalReduction = 1; 1071 1072 let hasSideEffects = 0; 1073} 1074 1075multiclass MVE_VMLALDAVBase_A<string iname, string x, string suffix, 1076 bit sz, bit bit_28, bit X, bit bit_8, bit bit_0, 1077 list<dag> pattern=[]> { 1078 def ""#x#suffix : MVE_VMLALDAVBase< 1079 iname # x, suffix, (ins MQPR:$Qn, MQPR:$Qm), "", 1080 sz, bit_28, 0b0, X, bit_8, bit_0, pattern>; 1081 def "a"#x#suffix : MVE_VMLALDAVBase< 1082 iname # "a" # x, suffix, 1083 (ins tGPREven:$RdaLoSrc, tGPROdd:$RdaHiSrc, MQPR:$Qn, MQPR:$Qm), 1084 "$RdaLoDest = $RdaLoSrc,$RdaHiDest = $RdaHiSrc", 1085 sz, bit_28, 0b1, X, bit_8, bit_0, pattern>; 1086} 1087 1088 1089multiclass MVE_VMLALDAVBase_AX<string iname, string suffix, bit sz, bit bit_28, 1090 bit bit_8, bit bit_0, list<dag> pattern=[]> { 1091 defm "" : MVE_VMLALDAVBase_A<iname, "", suffix, sz, 1092 bit_28, 0b0, bit_8, bit_0, pattern>; 1093 defm "" : MVE_VMLALDAVBase_A<iname, "x", suffix, sz, 1094 bit_28, 0b1, bit_8, bit_0, pattern>; 1095} 1096 1097multiclass MVE_VRMLALDAVH_multi<string suffix, list<dag> pattern=[]> { 1098 defm "" : MVE_VMLALDAVBase_AX<"vrmlaldavh", "s"#suffix, 1099 0b0, 0b0, 0b1, 0b0, pattern>; 1100 defm "" : MVE_VMLALDAVBase_A<"vrmlaldavh", "", "u"#suffix, 1101 0b0, 0b1, 0b0, 0b1, 0b0, pattern>; 1102} 1103 1104defm MVE_VRMLALDAVH : MVE_VRMLALDAVH_multi<"32">; 1105 1106// vrmlalvh aliases for vrmlaldavh 1107def : MVEInstAlias<"vrmlalvh${vp}.s32\t$RdaLo, $RdaHi, $Qn, $Qm", 1108 (MVE_VRMLALDAVHs32 1109 tGPREven:$RdaLo, tGPROdd:$RdaHi, 1110 MQPR:$Qn, MQPR:$Qm, vpred_n:$vp)>; 1111def : MVEInstAlias<"vrmlalvha${vp}.s32\t$RdaLo, $RdaHi, $Qn, $Qm", 1112 (MVE_VRMLALDAVHas32 1113 tGPREven:$RdaLo, tGPROdd:$RdaHi, 1114 MQPR:$Qn, MQPR:$Qm, vpred_n:$vp)>; 1115def : MVEInstAlias<"vrmlalvh${vp}.u32\t$RdaLo, $RdaHi, $Qn, $Qm", 1116 (MVE_VRMLALDAVHu32 1117 tGPREven:$RdaLo, tGPROdd:$RdaHi, 1118 MQPR:$Qn, MQPR:$Qm, vpred_n:$vp)>; 1119def : MVEInstAlias<"vrmlalvha${vp}.u32\t$RdaLo, $RdaHi, $Qn, $Qm", 1120 (MVE_VRMLALDAVHau32 1121 tGPREven:$RdaLo, tGPROdd:$RdaHi, 1122 MQPR:$Qn, MQPR:$Qm, vpred_n:$vp)>; 1123 1124multiclass MVE_VMLALDAV_multi<string suffix, bit sz, list<dag> pattern=[]> { 1125 defm "" : MVE_VMLALDAVBase_AX<"vmlaldav", "s"#suffix, sz, 0b0, 0b0, 0b0, pattern>; 1126 defm "" : MVE_VMLALDAVBase_A<"vmlaldav", "", "u"#suffix, 1127 sz, 0b1, 0b0, 0b0, 0b0, pattern>; 1128} 1129 1130defm MVE_VMLALDAV : MVE_VMLALDAV_multi<"16", 0b0>; 1131defm MVE_VMLALDAV : MVE_VMLALDAV_multi<"32", 0b1>; 1132 1133let Predicates = [HasMVEInt] in { 1134 def : Pat<(ARMVMLALVs (v4i32 MQPR:$val1), (v4i32 MQPR:$val2)), 1135 (MVE_VMLALDAVs32 (v4i32 MQPR:$val1), (v4i32 MQPR:$val2))>; 1136 def : Pat<(ARMVMLALVu (v4i32 MQPR:$val1), (v4i32 MQPR:$val2)), 1137 (MVE_VMLALDAVu32 (v4i32 MQPR:$val1), (v4i32 MQPR:$val2))>; 1138 def : Pat<(ARMVMLALVs (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)), 1139 (MVE_VMLALDAVs16 (v8i16 MQPR:$val1), (v8i16 MQPR:$val2))>; 1140 def : Pat<(ARMVMLALVu (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)), 1141 (MVE_VMLALDAVu16 (v8i16 MQPR:$val1), (v8i16 MQPR:$val2))>; 1142 1143 def : Pat<(ARMVMLALVAs tGPREven:$Rda, tGPROdd:$Rdb, (v4i32 MQPR:$val1), (v4i32 MQPR:$val2)), 1144 (MVE_VMLALDAVas32 tGPREven:$Rda, tGPROdd:$Rdb, (v4i32 MQPR:$val1), (v4i32 MQPR:$val2))>; 1145 def : Pat<(ARMVMLALVAu tGPREven:$Rda, tGPROdd:$Rdb, (v4i32 MQPR:$val1), (v4i32 MQPR:$val2)), 1146 (MVE_VMLALDAVau32 tGPREven:$Rda, tGPROdd:$Rdb, (v4i32 MQPR:$val1), (v4i32 MQPR:$val2))>; 1147 def : Pat<(ARMVMLALVAs tGPREven:$Rda, tGPROdd:$Rdb, (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)), 1148 (MVE_VMLALDAVas16 tGPREven:$Rda, tGPROdd:$Rdb, (v8i16 MQPR:$val1), (v8i16 MQPR:$val2))>; 1149 def : Pat<(ARMVMLALVAu tGPREven:$Rda, tGPROdd:$Rdb, (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)), 1150 (MVE_VMLALDAVau16 tGPREven:$Rda, tGPROdd:$Rdb, (v8i16 MQPR:$val1), (v8i16 MQPR:$val2))>; 1151} 1152 1153// vmlalv aliases vmlaldav 1154foreach acc = ["", "a"] in { 1155 foreach suffix = ["s16", "s32", "u16", "u32"] in { 1156 def : MVEInstAlias<"vmlalv" # acc # "${vp}." # suffix # 1157 "\t$RdaLoDest, $RdaHiDest, $Qn, $Qm", 1158 (!cast<Instruction>("MVE_VMLALDAV"#acc#suffix) 1159 tGPREven:$RdaLoDest, tGPROdd:$RdaHiDest, 1160 MQPR:$Qn, MQPR:$Qm, vpred_n:$vp)>; 1161 } 1162} 1163 1164multiclass MVE_VMLSLDAV_multi<string iname, string suffix, bit sz, 1165 bit bit_28, list<dag> pattern=[]> { 1166 defm "" : MVE_VMLALDAVBase_AX<iname, suffix, sz, bit_28, 0b0, 0b1, pattern>; 1167} 1168 1169defm MVE_VMLSLDAV : MVE_VMLSLDAV_multi<"vmlsldav", "s16", 0b0, 0b0>; 1170defm MVE_VMLSLDAV : MVE_VMLSLDAV_multi<"vmlsldav", "s32", 0b1, 0b0>; 1171defm MVE_VRMLSLDAVH : MVE_VMLSLDAV_multi<"vrmlsldavh", "s32", 0b0, 0b1>; 1172 1173// end of mve_rDest instructions 1174 1175// start of mve_comp instructions 1176 1177class MVE_comp<InstrItinClass itin, string iname, string suffix, 1178 string cstr, list<dag> pattern=[]> 1179 : MVE_p<(outs MQPR:$Qd), (ins MQPR:$Qn, MQPR:$Qm), itin, iname, suffix, 1180 "$Qd, $Qn, $Qm", vpred_r, cstr, pattern> { 1181 bits<4> Qd; 1182 bits<4> Qn; 1183 bits<4> Qm; 1184 1185 let Inst{22} = Qd{3}; 1186 let Inst{19-17} = Qn{2-0}; 1187 let Inst{16} = 0b0; 1188 let Inst{15-13} = Qd{2-0}; 1189 let Inst{12} = 0b0; 1190 let Inst{10-9} = 0b11; 1191 let Inst{7} = Qn{3}; 1192 let Inst{5} = Qm{3}; 1193 let Inst{3-1} = Qm{2-0}; 1194 let Inst{0} = 0b0; 1195} 1196 1197class MVE_VMINMAXNM<string iname, string suffix, bit sz, bit bit_21, 1198 list<dag> pattern=[]> 1199 : MVE_comp<NoItinerary, iname, suffix, "", pattern> { 1200 1201 let Inst{28} = 0b1; 1202 let Inst{25-24} = 0b11; 1203 let Inst{23} = 0b0; 1204 let Inst{21} = bit_21; 1205 let Inst{20} = sz; 1206 let Inst{11} = 0b1; 1207 let Inst{8} = 0b1; 1208 let Inst{6} = 0b1; 1209 let Inst{4} = 0b1; 1210 1211 let Predicates = [HasMVEFloat]; 1212} 1213 1214def MVE_VMAXNMf32 : MVE_VMINMAXNM<"vmaxnm", "f32", 0b0, 0b0>; 1215def MVE_VMAXNMf16 : MVE_VMINMAXNM<"vmaxnm", "f16", 0b1, 0b0>; 1216 1217let Predicates = [HasMVEFloat] in { 1218 def : Pat<(v4f32 (fmaxnum (v4f32 MQPR:$val1), (v4f32 MQPR:$val2))), 1219 (v4f32 (MVE_VMAXNMf32 (v4f32 MQPR:$val1), (v4f32 MQPR:$val2)))>; 1220 def : Pat<(v8f16 (fmaxnum (v8f16 MQPR:$val1), (v8f16 MQPR:$val2))), 1221 (v8f16 (MVE_VMAXNMf16 (v8f16 MQPR:$val1), (v8f16 MQPR:$val2)))>; 1222 def : Pat<(v4f32 (int_arm_mve_max_predicated (v4f32 MQPR:$val1), (v4f32 MQPR:$val2), (i32 0), 1223 (v4i1 VCCR:$mask), (v4f32 MQPR:$inactive))), 1224 (v4f32 (MVE_VMAXNMf32 (v4f32 MQPR:$val1), (v4f32 MQPR:$val2), 1225 ARMVCCThen, (v4i1 VCCR:$mask), 1226 (v4f32 MQPR:$inactive)))>; 1227 def : Pat<(v8f16 (int_arm_mve_max_predicated (v8f16 MQPR:$val1), (v8f16 MQPR:$val2), (i32 0), 1228 (v8i1 VCCR:$mask), (v8f16 MQPR:$inactive))), 1229 (v8f16 (MVE_VMAXNMf16 (v8f16 MQPR:$val1), (v8f16 MQPR:$val2), 1230 ARMVCCThen, (v8i1 VCCR:$mask), 1231 (v8f16 MQPR:$inactive)))>; 1232} 1233 1234def MVE_VMINNMf32 : MVE_VMINMAXNM<"vminnm", "f32", 0b0, 0b1>; 1235def MVE_VMINNMf16 : MVE_VMINMAXNM<"vminnm", "f16", 0b1, 0b1>; 1236 1237let Predicates = [HasMVEFloat] in { 1238 def : Pat<(v4f32 (fminnum (v4f32 MQPR:$val1), (v4f32 MQPR:$val2))), 1239 (v4f32 (MVE_VMINNMf32 (v4f32 MQPR:$val1), (v4f32 MQPR:$val2)))>; 1240 def : Pat<(v8f16 (fminnum (v8f16 MQPR:$val1), (v8f16 MQPR:$val2))), 1241 (v8f16 (MVE_VMINNMf16 (v8f16 MQPR:$val1), (v8f16 MQPR:$val2)))>; 1242 def : Pat<(v4f32 (int_arm_mve_min_predicated (v4f32 MQPR:$val1), (v4f32 MQPR:$val2), 1243 (i32 0), (v4i1 VCCR:$mask), (v4f32 MQPR:$inactive))), 1244 (v4f32 (MVE_VMINNMf32 (v4f32 MQPR:$val1), (v4f32 MQPR:$val2), 1245 ARMVCCThen, (v4i1 VCCR:$mask), 1246 (v4f32 MQPR:$inactive)))>; 1247 def : Pat<(v8f16 (int_arm_mve_min_predicated (v8f16 MQPR:$val1), (v8f16 MQPR:$val2), 1248 (i32 0), (v8i1 VCCR:$mask), (v8f16 MQPR:$inactive))), 1249 (v8f16 (MVE_VMINNMf16 (v8f16 MQPR:$val1), (v8f16 MQPR:$val2), 1250 ARMVCCThen, (v8i1 VCCR:$mask), 1251 (v8f16 MQPR:$inactive)))>; 1252} 1253 1254 1255class MVE_VMINMAX<string iname, string suffix, bit U, bits<2> size, 1256 bit bit_4, list<dag> pattern=[]> 1257 : MVE_comp<NoItinerary, iname, suffix, "", pattern> { 1258 1259 let Inst{28} = U; 1260 let Inst{25-24} = 0b11; 1261 let Inst{23} = 0b0; 1262 let Inst{21-20} = size{1-0}; 1263 let Inst{11} = 0b0; 1264 let Inst{8} = 0b0; 1265 let Inst{6} = 0b1; 1266 let Inst{4} = bit_4; 1267 let validForTailPredication = 1; 1268} 1269 1270multiclass MVE_VMINMAX_m<string iname, bit bit_4, MVEVectorVTInfo VTI, 1271 SDNode unpred_op, Intrinsic pred_int> { 1272 def "" : MVE_VMINMAX<iname, VTI.Suffix, VTI.Unsigned, VTI.Size, bit_4>; 1273 defvar Inst = !cast<Instruction>(NAME); 1274 1275 let Predicates = [HasMVEInt] in { 1276 // Unpredicated min/max 1277 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn))), 1278 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>; 1279 1280 // Predicated min/max 1281 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 1282 (i32 VTI.Unsigned), (VTI.Pred VCCR:$mask), 1283 (VTI.Vec MQPR:$inactive))), 1284 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 1285 ARMVCCThen, (VTI.Pred VCCR:$mask), 1286 (VTI.Vec MQPR:$inactive)))>; 1287 } 1288} 1289 1290multiclass MVE_VMAX<MVEVectorVTInfo VTI> 1291 : MVE_VMINMAX_m<"vmax", 0b0, VTI, !if(VTI.Unsigned, umax, smax), int_arm_mve_max_predicated>; 1292multiclass MVE_VMIN<MVEVectorVTInfo VTI> 1293 : MVE_VMINMAX_m<"vmin", 0b1, VTI, !if(VTI.Unsigned, umin, smin), int_arm_mve_min_predicated>; 1294 1295defm MVE_VMINs8 : MVE_VMIN<MVE_v16s8>; 1296defm MVE_VMINs16 : MVE_VMIN<MVE_v8s16>; 1297defm MVE_VMINs32 : MVE_VMIN<MVE_v4s32>; 1298defm MVE_VMINu8 : MVE_VMIN<MVE_v16u8>; 1299defm MVE_VMINu16 : MVE_VMIN<MVE_v8u16>; 1300defm MVE_VMINu32 : MVE_VMIN<MVE_v4u32>; 1301 1302defm MVE_VMAXs8 : MVE_VMAX<MVE_v16s8>; 1303defm MVE_VMAXs16 : MVE_VMAX<MVE_v8s16>; 1304defm MVE_VMAXs32 : MVE_VMAX<MVE_v4s32>; 1305defm MVE_VMAXu8 : MVE_VMAX<MVE_v16u8>; 1306defm MVE_VMAXu16 : MVE_VMAX<MVE_v8u16>; 1307defm MVE_VMAXu32 : MVE_VMAX<MVE_v4u32>; 1308 1309// end of mve_comp instructions 1310 1311// start of mve_bit instructions 1312 1313class MVE_bit_arith<dag oops, dag iops, string iname, string suffix, 1314 string ops, string cstr, list<dag> pattern=[]> 1315 : MVE_p<oops, iops, NoItinerary, iname, suffix, ops, vpred_r, cstr, pattern> { 1316 bits<4> Qd; 1317 bits<4> Qm; 1318 1319 let Inst{22} = Qd{3}; 1320 let Inst{15-13} = Qd{2-0}; 1321 let Inst{5} = Qm{3}; 1322 let Inst{3-1} = Qm{2-0}; 1323} 1324 1325def MVE_VBIC : MVE_bit_arith<(outs MQPR:$Qd), (ins MQPR:$Qn, MQPR:$Qm), 1326 "vbic", "", "$Qd, $Qn, $Qm", ""> { 1327 bits<4> Qn; 1328 1329 let Inst{28} = 0b0; 1330 let Inst{25-23} = 0b110; 1331 let Inst{21-20} = 0b01; 1332 let Inst{19-17} = Qn{2-0}; 1333 let Inst{16} = 0b0; 1334 let Inst{12-8} = 0b00001; 1335 let Inst{7} = Qn{3}; 1336 let Inst{6} = 0b1; 1337 let Inst{4} = 0b1; 1338 let Inst{0} = 0b0; 1339 let validForTailPredication = 1; 1340} 1341 1342class MVE_VREV<string iname, string suffix, bits<2> size, bits<2> bit_8_7, string cstr=""> 1343 : MVE_bit_arith<(outs MQPR:$Qd), (ins MQPR:$Qm), iname, 1344 suffix, "$Qd, $Qm", cstr> { 1345 1346 let Inst{28} = 0b1; 1347 let Inst{25-23} = 0b111; 1348 let Inst{21-20} = 0b11; 1349 let Inst{19-18} = size; 1350 let Inst{17-16} = 0b00; 1351 let Inst{12-9} = 0b0000; 1352 let Inst{8-7} = bit_8_7; 1353 let Inst{6} = 0b1; 1354 let Inst{4} = 0b0; 1355 let Inst{0} = 0b0; 1356} 1357 1358def MVE_VREV64_8 : MVE_VREV<"vrev64", "8", 0b00, 0b00, "@earlyclobber $Qd">; 1359def MVE_VREV64_16 : MVE_VREV<"vrev64", "16", 0b01, 0b00, "@earlyclobber $Qd">; 1360def MVE_VREV64_32 : MVE_VREV<"vrev64", "32", 0b10, 0b00, "@earlyclobber $Qd">; 1361 1362def MVE_VREV32_8 : MVE_VREV<"vrev32", "8", 0b00, 0b01>; 1363def MVE_VREV32_16 : MVE_VREV<"vrev32", "16", 0b01, 0b01>; 1364 1365def MVE_VREV16_8 : MVE_VREV<"vrev16", "8", 0b00, 0b10>; 1366 1367let Predicates = [HasMVEInt] in { 1368 def : Pat<(v8i16 (bswap (v8i16 MQPR:$src))), 1369 (v8i16 (MVE_VREV16_8 (v8i16 MQPR:$src)))>; 1370 def : Pat<(v4i32 (bswap (v4i32 MQPR:$src))), 1371 (v4i32 (MVE_VREV32_8 (v4i32 MQPR:$src)))>; 1372} 1373 1374multiclass MVE_VREV_basic_patterns<int revbits, list<MVEVectorVTInfo> VTIs, 1375 Instruction Inst> { 1376 defvar unpred_op = !cast<SDNode>("ARMvrev" # revbits); 1377 1378 foreach VTI = VTIs in { 1379 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$src))), 1380 (VTI.Vec (Inst (VTI.Vec MQPR:$src)))>; 1381 def : Pat<(VTI.Vec (int_arm_mve_vrev_predicated (VTI.Vec MQPR:$src), 1382 revbits, (VTI.Pred VCCR:$pred), (VTI.Vec MQPR:$inactive))), 1383 (VTI.Vec (Inst (VTI.Vec MQPR:$src), ARMVCCThen, 1384 (VTI.Pred VCCR:$pred), (VTI.Vec MQPR:$inactive)))>; 1385 } 1386} 1387 1388let Predicates = [HasMVEInt] in { 1389 defm: MVE_VREV_basic_patterns<64, [MVE_v4i32, MVE_v4f32], MVE_VREV64_32>; 1390 defm: MVE_VREV_basic_patterns<64, [MVE_v8i16, MVE_v8f16], MVE_VREV64_16>; 1391 defm: MVE_VREV_basic_patterns<64, [MVE_v16i8 ], MVE_VREV64_8>; 1392 1393 defm: MVE_VREV_basic_patterns<32, [MVE_v8i16, MVE_v8f16], MVE_VREV32_16>; 1394 defm: MVE_VREV_basic_patterns<32, [MVE_v16i8 ], MVE_VREV32_8>; 1395 1396 defm: MVE_VREV_basic_patterns<16, [MVE_v16i8 ], MVE_VREV16_8>; 1397} 1398 1399def MVE_VMVN : MVE_bit_arith<(outs MQPR:$Qd), (ins MQPR:$Qm), 1400 "vmvn", "", "$Qd, $Qm", ""> { 1401 let Inst{28} = 0b1; 1402 let Inst{25-23} = 0b111; 1403 let Inst{21-16} = 0b110000; 1404 let Inst{12-6} = 0b0010111; 1405 let Inst{4} = 0b0; 1406 let Inst{0} = 0b0; 1407 let validForTailPredication = 1; 1408} 1409 1410let Predicates = [HasMVEInt] in { 1411 foreach VTI = [ MVE_v16i8, MVE_v8i16, MVE_v4i32, MVE_v2i64 ] in { 1412 def : Pat<(VTI.Vec (vnotq (VTI.Vec MQPR:$val1))), 1413 (VTI.Vec (MVE_VMVN (VTI.Vec MQPR:$val1)))>; 1414 def : Pat<(VTI.Vec (int_arm_mve_mvn_predicated (VTI.Vec MQPR:$val1), 1415 (VTI.Pred VCCR:$pred), (VTI.Vec MQPR:$inactive))), 1416 (VTI.Vec (MVE_VMVN (VTI.Vec MQPR:$val1), ARMVCCThen, 1417 (VTI.Pred VCCR:$pred), (VTI.Vec MQPR:$inactive)))>; 1418 } 1419} 1420 1421class MVE_bit_ops<string iname, bits<2> bit_21_20, bit bit_28> 1422 : MVE_bit_arith<(outs MQPR:$Qd), (ins MQPR:$Qn, MQPR:$Qm), 1423 iname, "", "$Qd, $Qn, $Qm", ""> { 1424 bits<4> Qn; 1425 1426 let Inst{28} = bit_28; 1427 let Inst{25-23} = 0b110; 1428 let Inst{21-20} = bit_21_20; 1429 let Inst{19-17} = Qn{2-0}; 1430 let Inst{16} = 0b0; 1431 let Inst{12-8} = 0b00001; 1432 let Inst{7} = Qn{3}; 1433 let Inst{6} = 0b1; 1434 let Inst{4} = 0b1; 1435 let Inst{0} = 0b0; 1436 let validForTailPredication = 1; 1437} 1438 1439def MVE_VEOR : MVE_bit_ops<"veor", 0b00, 0b1>; 1440def MVE_VORN : MVE_bit_ops<"vorn", 0b11, 0b0>; 1441def MVE_VORR : MVE_bit_ops<"vorr", 0b10, 0b0>; 1442def MVE_VAND : MVE_bit_ops<"vand", 0b00, 0b0>; 1443 1444// add ignored suffixes as aliases 1445 1446foreach s=["s8", "s16", "s32", "u8", "u16", "u32", "i8", "i16", "i32", "f16", "f32"] in { 1447 def : MVEInstAlias<"vbic${vp}." # s # "\t$QdSrc, $QnSrc, $QmSrc", 1448 (MVE_VBIC MQPR:$QdSrc, MQPR:$QnSrc, MQPR:$QmSrc, vpred_r:$vp)>; 1449 def : MVEInstAlias<"veor${vp}." # s # "\t$QdSrc, $QnSrc, $QmSrc", 1450 (MVE_VEOR MQPR:$QdSrc, MQPR:$QnSrc, MQPR:$QmSrc, vpred_r:$vp)>; 1451 def : MVEInstAlias<"vorn${vp}." # s # "\t$QdSrc, $QnSrc, $QmSrc", 1452 (MVE_VORN MQPR:$QdSrc, MQPR:$QnSrc, MQPR:$QmSrc, vpred_r:$vp)>; 1453 def : MVEInstAlias<"vorr${vp}." # s # "\t$QdSrc, $QnSrc, $QmSrc", 1454 (MVE_VORR MQPR:$QdSrc, MQPR:$QnSrc, MQPR:$QmSrc, vpred_r:$vp)>; 1455 def : MVEInstAlias<"vand${vp}." # s # "\t$QdSrc, $QnSrc, $QmSrc", 1456 (MVE_VAND MQPR:$QdSrc, MQPR:$QnSrc, MQPR:$QmSrc, vpred_r:$vp)>; 1457} 1458 1459multiclass MVE_bit_op<MVEVectorVTInfo VTI, SDNode unpred_op, Intrinsic pred_int, MVE_bit_ops instruction> { 1460 let Predicates = [HasMVEInt] in { 1461 // Unpredicated operation 1462 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn))), 1463 (VTI.Vec (instruction (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>; 1464 // Predicated operation 1465 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 1466 (VTI.Pred VCCR:$mask), (VTI.Vec MQPR:$inactive))), 1467 (VTI.Vec (instruction 1468 (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 1469 ARMVCCThen, (VTI.Pred VCCR:$mask), 1470 (VTI.Vec MQPR:$inactive)))>; 1471 } 1472} 1473 1474defm : MVE_bit_op<MVE_v16i8, and, int_arm_mve_and_predicated, MVE_VAND>; 1475defm : MVE_bit_op<MVE_v8i16, and, int_arm_mve_and_predicated, MVE_VAND>; 1476defm : MVE_bit_op<MVE_v4i32, and, int_arm_mve_and_predicated, MVE_VAND>; 1477defm : MVE_bit_op<MVE_v2i64, and, int_arm_mve_and_predicated, MVE_VAND>; 1478 1479defm : MVE_bit_op<MVE_v16i8, or, int_arm_mve_orr_predicated, MVE_VORR>; 1480defm : MVE_bit_op<MVE_v8i16, or, int_arm_mve_orr_predicated, MVE_VORR>; 1481defm : MVE_bit_op<MVE_v4i32, or, int_arm_mve_orr_predicated, MVE_VORR>; 1482defm : MVE_bit_op<MVE_v2i64, or, int_arm_mve_orr_predicated, MVE_VORR>; 1483 1484defm : MVE_bit_op<MVE_v16i8, xor, int_arm_mve_eor_predicated, MVE_VEOR>; 1485defm : MVE_bit_op<MVE_v8i16, xor, int_arm_mve_eor_predicated, MVE_VEOR>; 1486defm : MVE_bit_op<MVE_v4i32, xor, int_arm_mve_eor_predicated, MVE_VEOR>; 1487defm : MVE_bit_op<MVE_v2i64, xor, int_arm_mve_eor_predicated, MVE_VEOR>; 1488 1489multiclass MVE_bit_op_with_inv<MVEVectorVTInfo VTI, SDNode unpred_op, Intrinsic pred_int, MVE_bit_ops instruction> { 1490 let Predicates = [HasMVEInt] in { 1491 // Unpredicated operation 1492 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qm), (vnotq (VTI.Vec MQPR:$Qn)))), 1493 (VTI.Vec (instruction (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>; 1494 // Predicated operation 1495 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 1496 (VTI.Pred VCCR:$mask), (VTI.Vec MQPR:$inactive))), 1497 (VTI.Vec (instruction 1498 (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 1499 ARMVCCThen, (VTI.Pred VCCR:$mask), 1500 (VTI.Vec MQPR:$inactive)))>; 1501 } 1502} 1503 1504defm : MVE_bit_op_with_inv<MVE_v16i8, and, int_arm_mve_bic_predicated, MVE_VBIC>; 1505defm : MVE_bit_op_with_inv<MVE_v8i16, and, int_arm_mve_bic_predicated, MVE_VBIC>; 1506defm : MVE_bit_op_with_inv<MVE_v4i32, and, int_arm_mve_bic_predicated, MVE_VBIC>; 1507defm : MVE_bit_op_with_inv<MVE_v2i64, and, int_arm_mve_bic_predicated, MVE_VBIC>; 1508 1509defm : MVE_bit_op_with_inv<MVE_v16i8, or, int_arm_mve_orn_predicated, MVE_VORN>; 1510defm : MVE_bit_op_with_inv<MVE_v8i16, or, int_arm_mve_orn_predicated, MVE_VORN>; 1511defm : MVE_bit_op_with_inv<MVE_v4i32, or, int_arm_mve_orn_predicated, MVE_VORN>; 1512defm : MVE_bit_op_with_inv<MVE_v2i64, or, int_arm_mve_orn_predicated, MVE_VORN>; 1513 1514class MVE_bit_cmode<string iname, string suffix, bit halfword, dag inOps> 1515 : MVE_p<(outs MQPR:$Qd), inOps, NoItinerary, 1516 iname, suffix, "$Qd, $imm", vpred_n, "$Qd = $Qd_src"> { 1517 bits<12> imm; 1518 bits<4> Qd; 1519 1520 let Inst{28} = imm{7}; 1521 let Inst{27-23} = 0b11111; 1522 let Inst{22} = Qd{3}; 1523 let Inst{21-19} = 0b000; 1524 let Inst{18-16} = imm{6-4}; 1525 let Inst{15-13} = Qd{2-0}; 1526 let Inst{12} = 0b0; 1527 let Inst{11} = halfword; 1528 let Inst{10} = !if(halfword, 0, imm{10}); 1529 let Inst{9} = imm{9}; 1530 let Inst{8} = 0b1; 1531 let Inst{7-6} = 0b01; 1532 let Inst{4} = 0b1; 1533 let Inst{3-0} = imm{3-0}; 1534} 1535 1536multiclass MVE_bit_cmode_p<string iname, bit opcode, 1537 MVEVectorVTInfo VTI, Operand imm_type, SDNode op> { 1538 def "" : MVE_bit_cmode<iname, VTI.Suffix, VTI.Size{0}, 1539 (ins MQPR:$Qd_src, imm_type:$imm)> { 1540 let Inst{5} = opcode; 1541 let validForTailPredication = 1; 1542 } 1543 1544 defvar Inst = !cast<Instruction>(NAME); 1545 defvar UnpredPat = (VTI.Vec (op (VTI.Vec MQPR:$src), timm:$simm)); 1546 1547 let Predicates = [HasMVEInt] in { 1548 def : Pat<UnpredPat, (VTI.Vec (Inst (VTI.Vec MQPR:$src), imm_type:$simm))>; 1549 def : Pat<(VTI.Vec (vselect (VTI.Pred VCCR:$pred), 1550 UnpredPat, (VTI.Vec MQPR:$src))), 1551 (VTI.Vec (Inst (VTI.Vec MQPR:$src), imm_type:$simm, 1552 ARMVCCThen, (VTI.Pred VCCR:$pred)))>; 1553 } 1554} 1555 1556multiclass MVE_VORRimm<MVEVectorVTInfo VTI, Operand imm_type> { 1557 defm "": MVE_bit_cmode_p<"vorr", 0, VTI, imm_type, ARMvorrImm>; 1558} 1559multiclass MVE_VBICimm<MVEVectorVTInfo VTI, Operand imm_type> { 1560 defm "": MVE_bit_cmode_p<"vbic", 1, VTI, imm_type, ARMvbicImm>; 1561} 1562 1563defm MVE_VORRimmi16 : MVE_VORRimm<MVE_v8i16, nImmSplatI16>; 1564defm MVE_VORRimmi32 : MVE_VORRimm<MVE_v4i32, nImmSplatI32>; 1565defm MVE_VBICimmi16 : MVE_VBICimm<MVE_v8i16, nImmSplatI16>; 1566defm MVE_VBICimmi32 : MVE_VBICimm<MVE_v4i32, nImmSplatI32>; 1567 1568def MVE_VORNimmi16 : MVEInstAlias<"vorn${vp}.i16\t$Qd, $imm", 1569 (MVE_VORRimmi16 MQPR:$Qd, nImmSplatNotI16:$imm, vpred_n:$vp), 0>; 1570def MVE_VORNimmi32 : MVEInstAlias<"vorn${vp}.i32\t$Qd, $imm", 1571 (MVE_VORRimmi32 MQPR:$Qd, nImmSplatNotI32:$imm, vpred_n:$vp), 0>; 1572 1573def MVE_VANDimmi16 : MVEInstAlias<"vand${vp}.i16\t$Qd, $imm", 1574 (MVE_VBICimmi16 MQPR:$Qd, nImmSplatNotI16:$imm, vpred_n:$vp), 0>; 1575def MVE_VANDimmi32 : MVEInstAlias<"vand${vp}.i32\t$Qd, $imm", 1576 (MVE_VBICimmi32 MQPR:$Qd, nImmSplatNotI32:$imm, vpred_n:$vp), 0>; 1577 1578def MVE_VMOV : MVEInstAlias<"vmov${vp}\t$Qd, $Qm", 1579 (MVE_VORR MQPR:$Qd, MQPR:$Qm, MQPR:$Qm, vpred_r:$vp)>; 1580 1581class MVE_VMOV_lane_direction { 1582 bit bit_20; 1583 dag oops; 1584 dag iops; 1585 string ops; 1586 string cstr; 1587} 1588def MVE_VMOV_from_lane : MVE_VMOV_lane_direction { 1589 let bit_20 = 0b1; 1590 let oops = (outs rGPR:$Rt); 1591 let iops = (ins MQPR:$Qd); 1592 let ops = "$Rt, $Qd$Idx"; 1593 let cstr = ""; 1594} 1595def MVE_VMOV_to_lane : MVE_VMOV_lane_direction { 1596 let bit_20 = 0b0; 1597 let oops = (outs MQPR:$Qd); 1598 let iops = (ins MQPR:$Qd_src, rGPR:$Rt); 1599 let ops = "$Qd$Idx, $Rt"; 1600 let cstr = "$Qd = $Qd_src"; 1601} 1602 1603class MVE_VMOV_lane<string suffix, bit U, dag indexop, 1604 MVE_VMOV_lane_direction dir> 1605 : MVE_VMOV_lane_base<dir.oops, !con(dir.iops, indexop), NoItinerary, 1606 "vmov", suffix, dir.ops, dir.cstr, []> { 1607 bits<4> Qd; 1608 bits<4> Rt; 1609 1610 let Inst{31-24} = 0b11101110; 1611 let Inst{23} = U; 1612 let Inst{20} = dir.bit_20; 1613 let Inst{19-17} = Qd{2-0}; 1614 let Inst{15-12} = Rt{3-0}; 1615 let Inst{11-8} = 0b1011; 1616 let Inst{7} = Qd{3}; 1617 let Inst{4-0} = 0b10000; 1618 1619 let hasSideEffects = 0; 1620} 1621 1622class MVE_VMOV_lane_32<MVE_VMOV_lane_direction dir> 1623 : MVE_VMOV_lane<"32", 0b0, (ins MVEVectorIndex<4>:$Idx), dir> { 1624 bits<2> Idx; 1625 let Inst{22} = 0b0; 1626 let Inst{6-5} = 0b00; 1627 let Inst{16} = Idx{1}; 1628 let Inst{21} = Idx{0}; 1629 1630 let Predicates = [HasFPRegsV8_1M]; 1631} 1632 1633class MVE_VMOV_lane_16<string suffix, bit U, MVE_VMOV_lane_direction dir> 1634 : MVE_VMOV_lane<suffix, U, (ins MVEVectorIndex<8>:$Idx), dir> { 1635 bits<3> Idx; 1636 let Inst{22} = 0b0; 1637 let Inst{5} = 0b1; 1638 let Inst{16} = Idx{2}; 1639 let Inst{21} = Idx{1}; 1640 let Inst{6} = Idx{0}; 1641} 1642 1643class MVE_VMOV_lane_8<string suffix, bit U, MVE_VMOV_lane_direction dir> 1644 : MVE_VMOV_lane<suffix, U, (ins MVEVectorIndex<16>:$Idx), dir> { 1645 bits<4> Idx; 1646 let Inst{22} = 0b1; 1647 let Inst{16} = Idx{3}; 1648 let Inst{21} = Idx{2}; 1649 let Inst{6} = Idx{1}; 1650 let Inst{5} = Idx{0}; 1651} 1652 1653def MVE_VMOV_from_lane_32 : MVE_VMOV_lane_32< MVE_VMOV_from_lane>; 1654def MVE_VMOV_to_lane_32 : MVE_VMOV_lane_32< MVE_VMOV_to_lane>; 1655def MVE_VMOV_from_lane_s16 : MVE_VMOV_lane_16<"s16", 0b0, MVE_VMOV_from_lane>; 1656def MVE_VMOV_from_lane_u16 : MVE_VMOV_lane_16<"u16", 0b1, MVE_VMOV_from_lane>; 1657def MVE_VMOV_to_lane_16 : MVE_VMOV_lane_16< "16", 0b0, MVE_VMOV_to_lane>; 1658def MVE_VMOV_from_lane_s8 : MVE_VMOV_lane_8 < "s8", 0b0, MVE_VMOV_from_lane>; 1659def MVE_VMOV_from_lane_u8 : MVE_VMOV_lane_8 < "u8", 0b1, MVE_VMOV_from_lane>; 1660def MVE_VMOV_to_lane_8 : MVE_VMOV_lane_8 < "8", 0b0, MVE_VMOV_to_lane>; 1661 1662let Predicates = [HasMVEInt] in { 1663 def : Pat<(extractelt (v2f64 MQPR:$src), imm:$lane), 1664 (f64 (EXTRACT_SUBREG MQPR:$src, (DSubReg_f64_reg imm:$lane)))>; 1665 def : Pat<(insertelt (v2f64 MQPR:$src1), DPR:$src2, imm:$lane), 1666 (INSERT_SUBREG (v2f64 (COPY_TO_REGCLASS MQPR:$src1, MQPR)), DPR:$src2, (DSubReg_f64_reg imm:$lane))>; 1667 1668 def : Pat<(extractelt (v4i32 MQPR:$src), imm:$lane), 1669 (COPY_TO_REGCLASS 1670 (i32 (EXTRACT_SUBREG MQPR:$src, (SSubReg_f32_reg imm:$lane))), rGPR)>; 1671 def : Pat<(insertelt (v4i32 MQPR:$src1), rGPR:$src2, imm:$lane), 1672 (MVE_VMOV_to_lane_32 MQPR:$src1, rGPR:$src2, imm:$lane)>; 1673 1674 def : Pat<(vector_insert (v16i8 MQPR:$src1), rGPR:$src2, imm:$lane), 1675 (MVE_VMOV_to_lane_8 MQPR:$src1, rGPR:$src2, imm:$lane)>; 1676 def : Pat<(vector_insert (v8i16 MQPR:$src1), rGPR:$src2, imm:$lane), 1677 (MVE_VMOV_to_lane_16 MQPR:$src1, rGPR:$src2, imm:$lane)>; 1678 1679 def : Pat<(ARMvgetlanes (v16i8 MQPR:$src), imm:$lane), 1680 (MVE_VMOV_from_lane_s8 MQPR:$src, imm:$lane)>; 1681 def : Pat<(ARMvgetlanes (v8i16 MQPR:$src), imm:$lane), 1682 (MVE_VMOV_from_lane_s16 MQPR:$src, imm:$lane)>; 1683 def : Pat<(ARMvgetlaneu (v16i8 MQPR:$src), imm:$lane), 1684 (MVE_VMOV_from_lane_u8 MQPR:$src, imm:$lane)>; 1685 def : Pat<(ARMvgetlaneu (v8i16 MQPR:$src), imm:$lane), 1686 (MVE_VMOV_from_lane_u16 MQPR:$src, imm:$lane)>; 1687 1688 def : Pat<(v16i8 (scalar_to_vector GPR:$src)), 1689 (MVE_VMOV_to_lane_8 (v16i8 (IMPLICIT_DEF)), rGPR:$src, (i32 0))>; 1690 def : Pat<(v8i16 (scalar_to_vector GPR:$src)), 1691 (MVE_VMOV_to_lane_16 (v8i16 (IMPLICIT_DEF)), rGPR:$src, (i32 0))>; 1692 def : Pat<(v4i32 (scalar_to_vector GPR:$src)), 1693 (MVE_VMOV_to_lane_32 (v4i32 (IMPLICIT_DEF)), rGPR:$src, (i32 0))>; 1694 1695 // Floating point patterns, still enabled under HasMVEInt 1696 def : Pat<(extractelt (v4f32 MQPR:$src), imm:$lane), 1697 (COPY_TO_REGCLASS (f32 (EXTRACT_SUBREG MQPR:$src, (SSubReg_f32_reg imm:$lane))), SPR)>; 1698 def : Pat<(insertelt (v4f32 MQPR:$src1), (f32 SPR:$src2), imm:$lane), 1699 (INSERT_SUBREG (v4f32 (COPY_TO_REGCLASS MQPR:$src1, MQPR)), SPR:$src2, (SSubReg_f32_reg imm:$lane))>; 1700 1701 def : Pat<(insertelt (v8f16 MQPR:$src1), HPR:$src2, imm:$lane), 1702 (MVE_VMOV_to_lane_16 MQPR:$src1, (COPY_TO_REGCLASS HPR:$src2, rGPR), imm:$lane)>; 1703 def : Pat<(extractelt (v8f16 MQPR:$src), imm_even:$lane), 1704 (EXTRACT_SUBREG MQPR:$src, (SSubReg_f16_reg imm_even:$lane))>; 1705 def : Pat<(extractelt (v8f16 MQPR:$src), imm_odd:$lane), 1706 (COPY_TO_REGCLASS 1707 (VMOVH (EXTRACT_SUBREG MQPR:$src, (SSubReg_f16_reg imm_odd:$lane))), 1708 HPR)>; 1709 1710 def : Pat<(v4f32 (scalar_to_vector SPR:$src)), 1711 (INSERT_SUBREG (v4f32 (IMPLICIT_DEF)), SPR:$src, ssub_0)>; 1712 def : Pat<(v4f32 (scalar_to_vector GPR:$src)), 1713 (MVE_VMOV_to_lane_32 (v4f32 (IMPLICIT_DEF)), rGPR:$src, (i32 0))>; 1714 def : Pat<(v8f16 (scalar_to_vector HPR:$src)), 1715 (INSERT_SUBREG (v8f16 (IMPLICIT_DEF)), HPR:$src, ssub_0)>; 1716 def : Pat<(v8f16 (scalar_to_vector GPR:$src)), 1717 (MVE_VMOV_to_lane_16 (v8f16 (IMPLICIT_DEF)), rGPR:$src, (i32 0))>; 1718} 1719 1720// end of mve_bit instructions 1721 1722// start of MVE Integer instructions 1723 1724class MVE_int<string iname, string suffix, bits<2> size, list<dag> pattern=[]> 1725 : MVE_p<(outs MQPR:$Qd), (ins MQPR:$Qn, MQPR:$Qm), NoItinerary, 1726 iname, suffix, "$Qd, $Qn, $Qm", vpred_r, "", pattern> { 1727 bits<4> Qd; 1728 bits<4> Qn; 1729 bits<4> Qm; 1730 1731 let Inst{22} = Qd{3}; 1732 let Inst{21-20} = size; 1733 let Inst{19-17} = Qn{2-0}; 1734 let Inst{15-13} = Qd{2-0}; 1735 let Inst{7} = Qn{3}; 1736 let Inst{6} = 0b1; 1737 let Inst{5} = Qm{3}; 1738 let Inst{3-1} = Qm{2-0}; 1739} 1740 1741class MVE_VMULt1<string iname, string suffix, bits<2> size, 1742 list<dag> pattern=[]> 1743 : MVE_int<iname, suffix, size, pattern> { 1744 1745 let Inst{28} = 0b0; 1746 let Inst{25-23} = 0b110; 1747 let Inst{16} = 0b0; 1748 let Inst{12-8} = 0b01001; 1749 let Inst{4} = 0b1; 1750 let Inst{0} = 0b0; 1751 let validForTailPredication = 1; 1752} 1753 1754multiclass MVE_VMUL_m<string iname, MVEVectorVTInfo VTI, 1755 SDNode unpred_op, Intrinsic pred_int> { 1756 def "" : MVE_VMULt1<iname, VTI.Suffix, VTI.Size>; 1757 defvar Inst = !cast<Instruction>(NAME); 1758 1759 let Predicates = [HasMVEInt] in { 1760 // Unpredicated multiply 1761 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn))), 1762 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>; 1763 1764 // Predicated multiply 1765 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 1766 (VTI.Pred VCCR:$mask), (VTI.Vec MQPR:$inactive))), 1767 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 1768 ARMVCCThen, (VTI.Pred VCCR:$mask), 1769 (VTI.Vec MQPR:$inactive)))>; 1770 } 1771} 1772 1773multiclass MVE_VMUL<MVEVectorVTInfo VTI> 1774 : MVE_VMUL_m<"vmul", VTI, mul, int_arm_mve_mul_predicated>; 1775 1776defm MVE_VMULi8 : MVE_VMUL<MVE_v16i8>; 1777defm MVE_VMULi16 : MVE_VMUL<MVE_v8i16>; 1778defm MVE_VMULi32 : MVE_VMUL<MVE_v4i32>; 1779 1780class MVE_VQxDMULH_Base<string iname, string suffix, bits<2> size, bit rounding, 1781 list<dag> pattern=[]> 1782 : MVE_int<iname, suffix, size, pattern> { 1783 1784 let Inst{28} = rounding; 1785 let Inst{25-23} = 0b110; 1786 let Inst{16} = 0b0; 1787 let Inst{12-8} = 0b01011; 1788 let Inst{4} = 0b0; 1789 let Inst{0} = 0b0; 1790} 1791 1792multiclass MVE_VQxDMULH_m<string iname, MVEVectorVTInfo VTI, 1793 SDNode unpred_op, Intrinsic pred_int, 1794 bit rounding> { 1795 def "" : MVE_VQxDMULH_Base<iname, VTI.Suffix, VTI.Size, rounding>; 1796 defvar Inst = !cast<Instruction>(NAME); 1797 1798 let Predicates = [HasMVEInt] in { 1799 // Unpredicated multiply 1800 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn))), 1801 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>; 1802 1803 // Predicated multiply 1804 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 1805 (VTI.Pred VCCR:$mask), (VTI.Vec MQPR:$inactive))), 1806 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 1807 ARMVCCThen, (VTI.Pred VCCR:$mask), 1808 (VTI.Vec MQPR:$inactive)))>; 1809 } 1810} 1811 1812multiclass MVE_VQxDMULH<string iname, MVEVectorVTInfo VTI, bit rounding> 1813 : MVE_VQxDMULH_m<iname, VTI, !if(rounding, int_arm_mve_vqrdmulh, 1814 int_arm_mve_vqdmulh), 1815 !if(rounding, int_arm_mve_qrdmulh_predicated, 1816 int_arm_mve_qdmulh_predicated), 1817 rounding>; 1818 1819defm MVE_VQDMULHi8 : MVE_VQxDMULH<"vqdmulh", MVE_v16s8, 0b0>; 1820defm MVE_VQDMULHi16 : MVE_VQxDMULH<"vqdmulh", MVE_v8s16, 0b0>; 1821defm MVE_VQDMULHi32 : MVE_VQxDMULH<"vqdmulh", MVE_v4s32, 0b0>; 1822 1823defm MVE_VQRDMULHi8 : MVE_VQxDMULH<"vqrdmulh", MVE_v16s8, 0b1>; 1824defm MVE_VQRDMULHi16 : MVE_VQxDMULH<"vqrdmulh", MVE_v8s16, 0b1>; 1825defm MVE_VQRDMULHi32 : MVE_VQxDMULH<"vqrdmulh", MVE_v4s32, 0b1>; 1826 1827class MVE_VADDSUB<string iname, string suffix, bits<2> size, bit subtract, 1828 list<dag> pattern=[]> 1829 : MVE_int<iname, suffix, size, pattern> { 1830 1831 let Inst{28} = subtract; 1832 let Inst{25-23} = 0b110; 1833 let Inst{16} = 0b0; 1834 let Inst{12-8} = 0b01000; 1835 let Inst{4} = 0b0; 1836 let Inst{0} = 0b0; 1837 let validForTailPredication = 1; 1838} 1839 1840multiclass MVE_VADDSUB_m<string iname, MVEVectorVTInfo VTI, bit subtract, 1841 SDNode unpred_op, Intrinsic pred_int> { 1842 def "" : MVE_VADDSUB<iname, VTI.Suffix, VTI.Size, subtract>; 1843 defvar Inst = !cast<Instruction>(NAME); 1844 1845 let Predicates = [HasMVEInt] in { 1846 // Unpredicated add/subtract 1847 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn))), 1848 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>; 1849 1850 // Predicated add/subtract 1851 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 1852 (VTI.Pred VCCR:$mask), (VTI.Vec MQPR:$inactive))), 1853 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 1854 ARMVCCThen, (VTI.Pred VCCR:$mask), 1855 (VTI.Vec MQPR:$inactive)))>; 1856 } 1857} 1858 1859multiclass MVE_VADD<MVEVectorVTInfo VTI> 1860 : MVE_VADDSUB_m<"vadd", VTI, 0b0, add, int_arm_mve_add_predicated>; 1861multiclass MVE_VSUB<MVEVectorVTInfo VTI> 1862 : MVE_VADDSUB_m<"vsub", VTI, 0b1, sub, int_arm_mve_sub_predicated>; 1863 1864defm MVE_VADDi8 : MVE_VADD<MVE_v16i8>; 1865defm MVE_VADDi16 : MVE_VADD<MVE_v8i16>; 1866defm MVE_VADDi32 : MVE_VADD<MVE_v4i32>; 1867 1868defm MVE_VSUBi8 : MVE_VSUB<MVE_v16i8>; 1869defm MVE_VSUBi16 : MVE_VSUB<MVE_v8i16>; 1870defm MVE_VSUBi32 : MVE_VSUB<MVE_v4i32>; 1871 1872class MVE_VQADDSUB<string iname, string suffix, bit U, bit subtract, 1873 bits<2> size> 1874 : MVE_int<iname, suffix, size, []> { 1875 1876 let Inst{28} = U; 1877 let Inst{25-23} = 0b110; 1878 let Inst{16} = 0b0; 1879 let Inst{12-10} = 0b000; 1880 let Inst{9} = subtract; 1881 let Inst{8} = 0b0; 1882 let Inst{4} = 0b1; 1883 let Inst{0} = 0b0; 1884 let validForTailPredication = 1; 1885} 1886 1887class MVE_VQADD_<string suffix, bit U, bits<2> size> 1888 : MVE_VQADDSUB<"vqadd", suffix, U, 0b0, size>; 1889class MVE_VQSUB_<string suffix, bit U, bits<2> size> 1890 : MVE_VQADDSUB<"vqsub", suffix, U, 0b1, size>; 1891 1892multiclass MVE_VQADD_m<MVEVectorVTInfo VTI, 1893 SDNode unpred_op, Intrinsic pred_int> { 1894 def "" : MVE_VQADD_<VTI.Suffix, VTI.Unsigned, VTI.Size>; 1895 defvar Inst = !cast<Instruction>(NAME); 1896 1897 let Predicates = [HasMVEInt] in { 1898 // Unpredicated saturating add 1899 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn))), 1900 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>; 1901 1902 // Predicated saturating add 1903 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 1904 (i32 VTI.Unsigned), (VTI.Pred VCCR:$mask), 1905 (VTI.Vec MQPR:$inactive))), 1906 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 1907 ARMVCCThen, (VTI.Pred VCCR:$mask), 1908 (VTI.Vec MQPR:$inactive)))>; 1909 } 1910} 1911 1912multiclass MVE_VQADD<MVEVectorVTInfo VTI, SDNode unpred_op> 1913 : MVE_VQADD_m<VTI, unpred_op, int_arm_mve_qadd_predicated>; 1914 1915defm MVE_VQADDs8 : MVE_VQADD<MVE_v16s8, saddsat>; 1916defm MVE_VQADDs16 : MVE_VQADD<MVE_v8s16, saddsat>; 1917defm MVE_VQADDs32 : MVE_VQADD<MVE_v4s32, saddsat>; 1918defm MVE_VQADDu8 : MVE_VQADD<MVE_v16u8, uaddsat>; 1919defm MVE_VQADDu16 : MVE_VQADD<MVE_v8u16, uaddsat>; 1920defm MVE_VQADDu32 : MVE_VQADD<MVE_v4u32, uaddsat>; 1921 1922multiclass MVE_VQSUB_m<MVEVectorVTInfo VTI, 1923 SDNode unpred_op, Intrinsic pred_int> { 1924 def "" : MVE_VQSUB_<VTI.Suffix, VTI.Unsigned, VTI.Size>; 1925 defvar Inst = !cast<Instruction>(NAME); 1926 1927 let Predicates = [HasMVEInt] in { 1928 // Unpredicated saturating subtract 1929 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn))), 1930 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>; 1931 1932 // Predicated saturating subtract 1933 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 1934 (i32 VTI.Unsigned), (VTI.Pred VCCR:$mask), 1935 (VTI.Vec MQPR:$inactive))), 1936 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 1937 ARMVCCThen, (VTI.Pred VCCR:$mask), 1938 (VTI.Vec MQPR:$inactive)))>; 1939 } 1940} 1941 1942multiclass MVE_VQSUB<MVEVectorVTInfo VTI, SDNode unpred_op> 1943 : MVE_VQSUB_m<VTI, unpred_op, int_arm_mve_qsub_predicated>; 1944 1945defm MVE_VQSUBs8 : MVE_VQSUB<MVE_v16s8, ssubsat>; 1946defm MVE_VQSUBs16 : MVE_VQSUB<MVE_v8s16, ssubsat>; 1947defm MVE_VQSUBs32 : MVE_VQSUB<MVE_v4s32, ssubsat>; 1948defm MVE_VQSUBu8 : MVE_VQSUB<MVE_v16u8, usubsat>; 1949defm MVE_VQSUBu16 : MVE_VQSUB<MVE_v8u16, usubsat>; 1950defm MVE_VQSUBu32 : MVE_VQSUB<MVE_v4u32, usubsat>; 1951 1952class MVE_VABD_int<string suffix, bit U, bits<2> size, 1953 list<dag> pattern=[]> 1954 : MVE_int<"vabd", suffix, size, pattern> { 1955 1956 let Inst{28} = U; 1957 let Inst{25-23} = 0b110; 1958 let Inst{16} = 0b0; 1959 let Inst{12-8} = 0b00111; 1960 let Inst{4} = 0b0; 1961 let Inst{0} = 0b0; 1962 let validForTailPredication = 1; 1963} 1964 1965multiclass MVE_VABD_m<MVEVectorVTInfo VTI, 1966 Intrinsic unpred_int, Intrinsic pred_int> { 1967 def "" : MVE_VABD_int<VTI.Suffix, VTI.Unsigned, VTI.Size>; 1968 defvar Inst = !cast<Instruction>(NAME); 1969 1970 let Predicates = [HasMVEInt] in { 1971 // Unpredicated absolute difference 1972 def : Pat<(VTI.Vec (unpred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 1973 (i32 VTI.Unsigned))), 1974 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>; 1975 1976 // Predicated absolute difference 1977 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 1978 (i32 VTI.Unsigned), (VTI.Pred VCCR:$mask), 1979 (VTI.Vec MQPR:$inactive))), 1980 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 1981 ARMVCCThen, (VTI.Pred VCCR:$mask), 1982 (VTI.Vec MQPR:$inactive)))>; 1983 } 1984} 1985 1986multiclass MVE_VABD<MVEVectorVTInfo VTI> 1987 : MVE_VABD_m<VTI, int_arm_mve_vabd, int_arm_mve_abd_predicated>; 1988 1989defm MVE_VABDs8 : MVE_VABD<MVE_v16s8>; 1990defm MVE_VABDs16 : MVE_VABD<MVE_v8s16>; 1991defm MVE_VABDs32 : MVE_VABD<MVE_v4s32>; 1992defm MVE_VABDu8 : MVE_VABD<MVE_v16u8>; 1993defm MVE_VABDu16 : MVE_VABD<MVE_v8u16>; 1994defm MVE_VABDu32 : MVE_VABD<MVE_v4u32>; 1995 1996class MVE_VRHADD_Base<string suffix, bit U, bits<2> size, list<dag> pattern=[]> 1997 : MVE_int<"vrhadd", suffix, size, pattern> { 1998 1999 let Inst{28} = U; 2000 let Inst{25-23} = 0b110; 2001 let Inst{16} = 0b0; 2002 let Inst{12-8} = 0b00001; 2003 let Inst{4} = 0b0; 2004 let Inst{0} = 0b0; 2005 let validForTailPredication = 1; 2006} 2007 2008multiclass MVE_VRHADD_m<MVEVectorVTInfo VTI, 2009 SDNode unpred_op, Intrinsic pred_int> { 2010 def "" : MVE_VRHADD_Base<VTI.Suffix, VTI.Unsigned, VTI.Size>; 2011 defvar Inst = !cast<Instruction>(NAME); 2012 2013 let Predicates = [HasMVEInt] in { 2014 // Unpredicated rounding add-with-divide-by-two 2015 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 2016 (i32 VTI.Unsigned))), 2017 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>; 2018 2019 // Predicated add-with-divide-by-two 2020 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 2021 (i32 VTI.Unsigned), (VTI.Pred VCCR:$mask), 2022 (VTI.Vec MQPR:$inactive))), 2023 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 2024 ARMVCCThen, (VTI.Pred VCCR:$mask), 2025 (VTI.Vec MQPR:$inactive)))>; 2026 } 2027} 2028 2029multiclass MVE_VRHADD<MVEVectorVTInfo VTI> 2030 : MVE_VRHADD_m<VTI, int_arm_mve_vrhadd, int_arm_mve_rhadd_predicated>; 2031 2032defm MVE_VRHADDs8 : MVE_VRHADD<MVE_v16s8>; 2033defm MVE_VRHADDs16 : MVE_VRHADD<MVE_v8s16>; 2034defm MVE_VRHADDs32 : MVE_VRHADD<MVE_v4s32>; 2035defm MVE_VRHADDu8 : MVE_VRHADD<MVE_v16u8>; 2036defm MVE_VRHADDu16 : MVE_VRHADD<MVE_v8u16>; 2037defm MVE_VRHADDu32 : MVE_VRHADD<MVE_v4u32>; 2038 2039class MVE_VHADDSUB<string iname, string suffix, bit U, bit subtract, 2040 bits<2> size, list<dag> pattern=[]> 2041 : MVE_int<iname, suffix, size, pattern> { 2042 2043 let Inst{28} = U; 2044 let Inst{25-23} = 0b110; 2045 let Inst{16} = 0b0; 2046 let Inst{12-10} = 0b000; 2047 let Inst{9} = subtract; 2048 let Inst{8} = 0b0; 2049 let Inst{4} = 0b0; 2050 let Inst{0} = 0b0; 2051 let validForTailPredication = 1; 2052} 2053 2054class MVE_VHADD_<string suffix, bit U, bits<2> size, 2055 list<dag> pattern=[]> 2056 : MVE_VHADDSUB<"vhadd", suffix, U, 0b0, size, pattern>; 2057class MVE_VHSUB_<string suffix, bit U, bits<2> size, 2058 list<dag> pattern=[]> 2059 : MVE_VHADDSUB<"vhsub", suffix, U, 0b1, size, pattern>; 2060 2061multiclass MVE_VHADD_m<MVEVectorVTInfo VTI, 2062 SDNode unpred_op, Intrinsic pred_int> { 2063 def "" : MVE_VHADD_<VTI.Suffix, VTI.Unsigned, VTI.Size>; 2064 defvar Inst = !cast<Instruction>(NAME); 2065 2066 let Predicates = [HasMVEInt] in { 2067 // Unpredicated add-and-divide-by-two 2068 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), (i32 VTI.Unsigned))), 2069 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>; 2070 2071 // Predicated add-and-divide-by-two 2072 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), (i32 VTI.Unsigned), 2073 (VTI.Pred VCCR:$mask), (VTI.Vec MQPR:$inactive))), 2074 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 2075 ARMVCCThen, (VTI.Pred VCCR:$mask), 2076 (VTI.Vec MQPR:$inactive)))>; 2077 } 2078} 2079 2080multiclass MVE_VHADD<MVEVectorVTInfo VTI> 2081 : MVE_VHADD_m<VTI, int_arm_mve_vhadd, int_arm_mve_hadd_predicated>; 2082 2083defm MVE_VHADDs8 : MVE_VHADD<MVE_v16s8>; 2084defm MVE_VHADDs16 : MVE_VHADD<MVE_v8s16>; 2085defm MVE_VHADDs32 : MVE_VHADD<MVE_v4s32>; 2086defm MVE_VHADDu8 : MVE_VHADD<MVE_v16u8>; 2087defm MVE_VHADDu16 : MVE_VHADD<MVE_v8u16>; 2088defm MVE_VHADDu32 : MVE_VHADD<MVE_v4u32>; 2089 2090multiclass MVE_VHSUB_m<MVEVectorVTInfo VTI, 2091 SDNode unpred_op, Intrinsic pred_int> { 2092 def "" : MVE_VHSUB_<VTI.Suffix, VTI.Unsigned, VTI.Size>; 2093 defvar Inst = !cast<Instruction>(NAME); 2094 2095 let Predicates = [HasMVEInt] in { 2096 // Unpredicated subtract-and-divide-by-two 2097 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 2098 (i32 VTI.Unsigned))), 2099 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>; 2100 2101 // Predicated subtract-and-divide-by-two 2102 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 2103 (i32 VTI.Unsigned), (VTI.Pred VCCR:$mask), 2104 (VTI.Vec MQPR:$inactive))), 2105 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 2106 ARMVCCThen, (VTI.Pred VCCR:$mask), 2107 (VTI.Vec MQPR:$inactive)))>; 2108 } 2109} 2110 2111multiclass MVE_VHSUB<MVEVectorVTInfo VTI> 2112 : MVE_VHSUB_m<VTI, int_arm_mve_vhsub, int_arm_mve_hsub_predicated>; 2113 2114defm MVE_VHSUBs8 : MVE_VHSUB<MVE_v16s8>; 2115defm MVE_VHSUBs16 : MVE_VHSUB<MVE_v8s16>; 2116defm MVE_VHSUBs32 : MVE_VHSUB<MVE_v4s32>; 2117defm MVE_VHSUBu8 : MVE_VHSUB<MVE_v16u8>; 2118defm MVE_VHSUBu16 : MVE_VHSUB<MVE_v8u16>; 2119defm MVE_VHSUBu32 : MVE_VHSUB<MVE_v4u32>; 2120 2121class MVE_VDUP<string suffix, bit B, bit E, list<dag> pattern=[]> 2122 : MVE_p<(outs MQPR:$Qd), (ins rGPR:$Rt), NoItinerary, 2123 "vdup", suffix, "$Qd, $Rt", vpred_r, "", pattern> { 2124 bits<4> Qd; 2125 bits<4> Rt; 2126 2127 let Inst{28} = 0b0; 2128 let Inst{25-23} = 0b101; 2129 let Inst{22} = B; 2130 let Inst{21-20} = 0b10; 2131 let Inst{19-17} = Qd{2-0}; 2132 let Inst{16} = 0b0; 2133 let Inst{15-12} = Rt; 2134 let Inst{11-8} = 0b1011; 2135 let Inst{7} = Qd{3}; 2136 let Inst{6} = 0b0; 2137 let Inst{5} = E; 2138 let Inst{4-0} = 0b10000; 2139 let validForTailPredication = 1; 2140} 2141 2142def MVE_VDUP32 : MVE_VDUP<"32", 0b0, 0b0>; 2143def MVE_VDUP16 : MVE_VDUP<"16", 0b0, 0b1>; 2144def MVE_VDUP8 : MVE_VDUP<"8", 0b1, 0b0>; 2145 2146let Predicates = [HasMVEInt] in { 2147 def : Pat<(v16i8 (ARMvdup (i32 rGPR:$elem))), 2148 (MVE_VDUP8 rGPR:$elem)>; 2149 def : Pat<(v8i16 (ARMvdup (i32 rGPR:$elem))), 2150 (MVE_VDUP16 rGPR:$elem)>; 2151 def : Pat<(v4i32 (ARMvdup (i32 rGPR:$elem))), 2152 (MVE_VDUP32 rGPR:$elem)>; 2153 2154 def : Pat<(v4i32 (ARMvduplane (v4i32 MQPR:$src), imm:$lane)), 2155 (MVE_VDUP32 (MVE_VMOV_from_lane_32 MQPR:$src, imm:$lane))>; 2156 // For the 16-bit and 8-bit vduplanes we don't care about the signedness 2157 // of the lane move operation as we only want the lowest 8/16 bits anyway. 2158 def : Pat<(v8i16 (ARMvduplane (v8i16 MQPR:$src), imm:$lane)), 2159 (MVE_VDUP16 (MVE_VMOV_from_lane_u16 MQPR:$src, imm:$lane))>; 2160 def : Pat<(v16i8 (ARMvduplane (v16i8 MQPR:$src), imm:$lane)), 2161 (MVE_VDUP8 (MVE_VMOV_from_lane_u8 MQPR:$src, imm:$lane))>; 2162 2163 def : Pat<(v8f16 (ARMvdup (i32 rGPR:$elem))), 2164 (MVE_VDUP16 rGPR:$elem)>; 2165 def : Pat<(v4f32 (ARMvdup (i32 rGPR:$elem))), 2166 (MVE_VDUP32 rGPR:$elem)>; 2167 2168 def : Pat<(v4f32 (ARMvduplane (v4f32 MQPR:$src), imm:$lane)), 2169 (MVE_VDUP32 (MVE_VMOV_from_lane_32 MQPR:$src, imm:$lane))>; 2170 def : Pat<(v8f16 (ARMvduplane (v8f16 MQPR:$src), imm:$lane)), 2171 (MVE_VDUP16 (MVE_VMOV_from_lane_u16 MQPR:$src, imm:$lane))>; 2172 2173 // Match a vselect with an ARMvdup as a predicated MVE_VDUP 2174 def : Pat<(v16i8 (vselect (v16i1 VCCR:$pred), 2175 (v16i8 (ARMvdup (i32 rGPR:$elem))), 2176 (v16i8 MQPR:$inactive))), 2177 (MVE_VDUP8 rGPR:$elem, ARMVCCThen, (v16i1 VCCR:$pred), 2178 (v16i8 MQPR:$inactive))>; 2179 def : Pat<(v8i16 (vselect (v8i1 VCCR:$pred), 2180 (v8i16 (ARMvdup (i32 rGPR:$elem))), 2181 (v8i16 MQPR:$inactive))), 2182 (MVE_VDUP16 rGPR:$elem, ARMVCCThen, (v8i1 VCCR:$pred), 2183 (v8i16 MQPR:$inactive))>; 2184 def : Pat<(v4i32 (vselect (v4i1 VCCR:$pred), 2185 (v4i32 (ARMvdup (i32 rGPR:$elem))), 2186 (v4i32 MQPR:$inactive))), 2187 (MVE_VDUP32 rGPR:$elem, ARMVCCThen, (v4i1 VCCR:$pred), 2188 (v4i32 MQPR:$inactive))>; 2189 def : Pat<(v4f32 (vselect (v4i1 VCCR:$pred), 2190 (v4f32 (ARMvdup (i32 rGPR:$elem))), 2191 (v4f32 MQPR:$inactive))), 2192 (MVE_VDUP32 rGPR:$elem, ARMVCCThen, (v4i1 VCCR:$pred), 2193 (v4f32 MQPR:$inactive))>; 2194 def : Pat<(v8f16 (vselect (v8i1 VCCR:$pred), 2195 (v8f16 (ARMvdup (i32 rGPR:$elem))), 2196 (v8f16 MQPR:$inactive))), 2197 (MVE_VDUP16 rGPR:$elem, ARMVCCThen, (v8i1 VCCR:$pred), 2198 (v8f16 MQPR:$inactive))>; 2199} 2200 2201 2202class MVEIntSingleSrc<string iname, string suffix, bits<2> size, 2203 list<dag> pattern=[]> 2204 : MVE_p<(outs MQPR:$Qd), (ins MQPR:$Qm), NoItinerary, 2205 iname, suffix, "$Qd, $Qm", vpred_r, "", pattern> { 2206 bits<4> Qd; 2207 bits<4> Qm; 2208 2209 let Inst{22} = Qd{3}; 2210 let Inst{19-18} = size{1-0}; 2211 let Inst{15-13} = Qd{2-0}; 2212 let Inst{5} = Qm{3}; 2213 let Inst{3-1} = Qm{2-0}; 2214} 2215 2216class MVE_VCLSCLZ<string iname, string suffix, bits<2> size, 2217 bit count_zeroes, list<dag> pattern=[]> 2218 : MVEIntSingleSrc<iname, suffix, size, pattern> { 2219 2220 let Inst{28} = 0b1; 2221 let Inst{25-23} = 0b111; 2222 let Inst{21-20} = 0b11; 2223 let Inst{17-16} = 0b00; 2224 let Inst{12-8} = 0b00100; 2225 let Inst{7} = count_zeroes; 2226 let Inst{6} = 0b1; 2227 let Inst{4} = 0b0; 2228 let Inst{0} = 0b0; 2229 let validForTailPredication = 1; 2230} 2231 2232multiclass MVE_VCLSCLZ_p<string opname, bit opcode, MVEVectorVTInfo VTI, 2233 SDNode unpred_op> { 2234 def "": MVE_VCLSCLZ<"v"#opname, VTI.Suffix, VTI.Size, opcode>; 2235 2236 defvar Inst = !cast<Instruction>(NAME); 2237 defvar pred_int = !cast<Intrinsic>("int_arm_mve_"#opname#"_predicated"); 2238 2239 let Predicates = [HasMVEInt] in { 2240 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$val))), 2241 (VTI.Vec (Inst (VTI.Vec MQPR:$val)))>; 2242 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$val), (VTI.Pred VCCR:$pred), 2243 (VTI.Vec MQPR:$inactive))), 2244 (VTI.Vec (Inst (VTI.Vec MQPR:$val), ARMVCCThen, 2245 (VTI.Pred VCCR:$pred), (VTI.Vec MQPR:$inactive)))>; 2246 } 2247} 2248 2249defm MVE_VCLSs8 : MVE_VCLSCLZ_p<"cls", 0, MVE_v16s8, int_arm_mve_vcls>; 2250defm MVE_VCLSs16 : MVE_VCLSCLZ_p<"cls", 0, MVE_v8s16, int_arm_mve_vcls>; 2251defm MVE_VCLSs32 : MVE_VCLSCLZ_p<"cls", 0, MVE_v4s32, int_arm_mve_vcls>; 2252 2253defm MVE_VCLZs8 : MVE_VCLSCLZ_p<"clz", 1, MVE_v16i8, ctlz>; 2254defm MVE_VCLZs16 : MVE_VCLSCLZ_p<"clz", 1, MVE_v8i16, ctlz>; 2255defm MVE_VCLZs32 : MVE_VCLSCLZ_p<"clz", 1, MVE_v4i32, ctlz>; 2256 2257class MVE_VABSNEG_int<string iname, string suffix, bits<2> size, bit negate, 2258 bit saturate, list<dag> pattern=[]> 2259 : MVEIntSingleSrc<iname, suffix, size, pattern> { 2260 2261 let Inst{28} = 0b1; 2262 let Inst{25-23} = 0b111; 2263 let Inst{21-20} = 0b11; 2264 let Inst{17} = 0b0; 2265 let Inst{16} = !eq(saturate, 0); 2266 let Inst{12-11} = 0b00; 2267 let Inst{10} = saturate; 2268 let Inst{9-8} = 0b11; 2269 let Inst{7} = negate; 2270 let Inst{6} = 0b1; 2271 let Inst{4} = 0b0; 2272 let Inst{0} = 0b0; 2273 let validForTailPredication = 1; 2274} 2275 2276multiclass MVE_VABSNEG_int_m<string iname, bit negate, bit saturate, 2277 SDNode unpred_op, Intrinsic pred_int, 2278 MVEVectorVTInfo VTI> { 2279 def "" : MVE_VABSNEG_int<iname, VTI.Suffix, VTI.Size, negate, saturate>; 2280 defvar Inst = !cast<Instruction>(NAME); 2281 2282 let Predicates = [HasMVEInt] in { 2283 // VQABS and VQNEG have more difficult isel patterns defined elsewhere 2284 if !eq(saturate, 0) then { 2285 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$v))), (VTI.Vec (Inst $v))>; 2286 } 2287 2288 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$v), (VTI.Pred VCCR:$mask), 2289 (VTI.Vec MQPR:$inactive))), 2290 (VTI.Vec (Inst $v, ARMVCCThen, $mask, $inactive))>; 2291 } 2292} 2293 2294foreach VTI = [ MVE_v16s8, MVE_v8s16, MVE_v4s32 ] in { 2295 defm "MVE_VABS" # VTI.Suffix : MVE_VABSNEG_int_m< 2296 "vabs", 0, 0, abs, int_arm_mve_abs_predicated, VTI>; 2297 defm "MVE_VQABS" # VTI.Suffix : MVE_VABSNEG_int_m< 2298 "vqabs", 0, 1, ?, int_arm_mve_qabs_predicated, VTI>; 2299 defm "MVE_VNEG" # VTI.Suffix : MVE_VABSNEG_int_m< 2300 "vneg", 1, 0, vnegq, int_arm_mve_neg_predicated, VTI>; 2301 defm "MVE_VQNEG" # VTI.Suffix : MVE_VABSNEG_int_m< 2302 "vqneg", 1, 1, ?, int_arm_mve_qneg_predicated, VTI>; 2303} 2304 2305// int_min/int_max: vector containing INT_MIN/INT_MAX VTI.Size times 2306// zero_vec: v4i32-initialized zero vector, potentially wrapped in a bitconvert 2307multiclass vqabsneg_pattern<MVEVectorVTInfo VTI, dag int_min, dag int_max, 2308 dag zero_vec, MVE_VABSNEG_int vqabs_instruction, 2309 MVE_VABSNEG_int vqneg_instruction> { 2310 let Predicates = [HasMVEInt] in { 2311 // The below tree can be replaced by a vqabs instruction, as it represents 2312 // the following vectorized expression (r being the value in $reg): 2313 // r > 0 ? r : (r == INT_MIN ? INT_MAX : -r) 2314 def : Pat<(VTI.Vec (vselect 2315 (VTI.Pred (ARMvcmpz (VTI.Vec MQPR:$reg), ARMCCgt)), 2316 (VTI.Vec MQPR:$reg), 2317 (VTI.Vec (vselect 2318 (VTI.Pred (ARMvcmp (VTI.Vec MQPR:$reg), int_min, ARMCCeq)), 2319 int_max, 2320 (sub (VTI.Vec zero_vec), (VTI.Vec MQPR:$reg)))))), 2321 (VTI.Vec (vqabs_instruction (VTI.Vec MQPR:$reg)))>; 2322 // Similarly, this tree represents vqneg, i.e. the following vectorized expression: 2323 // r == INT_MIN ? INT_MAX : -r 2324 def : Pat<(VTI.Vec (vselect 2325 (VTI.Pred (ARMvcmp (VTI.Vec MQPR:$reg), int_min, ARMCCeq)), 2326 int_max, 2327 (sub (VTI.Vec zero_vec), (VTI.Vec MQPR:$reg)))), 2328 (VTI.Vec (vqneg_instruction (VTI.Vec MQPR:$reg)))>; 2329 } 2330} 2331 2332defm MVE_VQABSNEG_Ps8 : vqabsneg_pattern<MVE_v16i8, 2333 (v16i8 (ARMvmovImm (i32 3712))), 2334 (v16i8 (ARMvmovImm (i32 3711))), 2335 (bitconvert (v4i32 (ARMvmovImm (i32 0)))), 2336 MVE_VQABSs8, MVE_VQNEGs8>; 2337defm MVE_VQABSNEG_Ps16 : vqabsneg_pattern<MVE_v8i16, 2338 (v8i16 (ARMvmovImm (i32 2688))), 2339 (v8i16 (ARMvmvnImm (i32 2688))), 2340 (bitconvert (v4i32 (ARMvmovImm (i32 0)))), 2341 MVE_VQABSs16, MVE_VQNEGs16>; 2342defm MVE_VQABSNEG_Ps32 : vqabsneg_pattern<MVE_v4i32, 2343 (v4i32 (ARMvmovImm (i32 1664))), 2344 (v4i32 (ARMvmvnImm (i32 1664))), 2345 (ARMvmovImm (i32 0)), 2346 MVE_VQABSs32, MVE_VQNEGs32>; 2347 2348class MVE_mod_imm<string iname, string suffix, bits<4> cmode, bit op, 2349 dag iops, list<dag> pattern=[]> 2350 : MVE_p<(outs MQPR:$Qd), iops, NoItinerary, iname, suffix, "$Qd, $imm", 2351 vpred_r, "", pattern> { 2352 bits<13> imm; 2353 bits<4> Qd; 2354 2355 let Inst{28} = imm{7}; 2356 let Inst{25-23} = 0b111; 2357 let Inst{22} = Qd{3}; 2358 let Inst{21-19} = 0b000; 2359 let Inst{18-16} = imm{6-4}; 2360 let Inst{15-13} = Qd{2-0}; 2361 let Inst{12} = 0b0; 2362 let Inst{11-8} = cmode{3-0}; 2363 let Inst{7-6} = 0b01; 2364 let Inst{5} = op; 2365 let Inst{4} = 0b1; 2366 let Inst{3-0} = imm{3-0}; 2367 2368 let DecoderMethod = "DecodeMVEModImmInstruction"; 2369 let validForTailPredication = 1; 2370} 2371 2372let isReMaterializable = 1 in { 2373let isAsCheapAsAMove = 1 in { 2374def MVE_VMOVimmi8 : MVE_mod_imm<"vmov", "i8", {1,1,1,0}, 0b0, (ins nImmSplatI8:$imm)>; 2375def MVE_VMOVimmi16 : MVE_mod_imm<"vmov", "i16", {1,0,?,0}, 0b0, (ins nImmSplatI16:$imm)> { 2376 let Inst{9} = imm{9}; 2377} 2378def MVE_VMOVimmi32 : MVE_mod_imm<"vmov", "i32", {?,?,?,?}, 0b0, (ins nImmVMOVI32:$imm)> { 2379 let Inst{11-8} = imm{11-8}; 2380} 2381def MVE_VMOVimmi64 : MVE_mod_imm<"vmov", "i64", {1,1,1,0}, 0b1, (ins nImmSplatI64:$imm)>; 2382def MVE_VMOVimmf32 : MVE_mod_imm<"vmov", "f32", {1,1,1,1}, 0b0, (ins nImmVMOVF32:$imm)>; 2383} // let isAsCheapAsAMove = 1 2384 2385def MVE_VMVNimmi16 : MVE_mod_imm<"vmvn", "i16", {1,0,?,0}, 0b1, (ins nImmSplatI16:$imm)> { 2386 let Inst{9} = imm{9}; 2387} 2388def MVE_VMVNimmi32 : MVE_mod_imm<"vmvn", "i32", {?,?,?,?}, 0b1, (ins nImmVMOVI32:$imm)> { 2389 let Inst{11-8} = imm{11-8}; 2390} 2391} // let isReMaterializable = 1 2392 2393let Predicates = [HasMVEInt] in { 2394 def : Pat<(v16i8 (ARMvmovImm timm:$simm)), 2395 (v16i8 (MVE_VMOVimmi8 nImmSplatI8:$simm))>; 2396 def : Pat<(v8i16 (ARMvmovImm timm:$simm)), 2397 (v8i16 (MVE_VMOVimmi16 nImmSplatI16:$simm))>; 2398 def : Pat<(v4i32 (ARMvmovImm timm:$simm)), 2399 (v4i32 (MVE_VMOVimmi32 nImmVMOVI32:$simm))>; 2400 def : Pat<(v2i64 (ARMvmovImm timm:$simm)), 2401 (v2i64 (MVE_VMOVimmi64 nImmSplatI64:$simm))>; 2402 2403 def : Pat<(v8i16 (ARMvmvnImm timm:$simm)), 2404 (v8i16 (MVE_VMVNimmi16 nImmSplatI16:$simm))>; 2405 def : Pat<(v4i32 (ARMvmvnImm timm:$simm)), 2406 (v4i32 (MVE_VMVNimmi32 nImmVMOVI32:$simm))>; 2407 2408 def : Pat<(v4f32 (ARMvmovFPImm timm:$simm)), 2409 (v4f32 (MVE_VMOVimmf32 nImmVMOVF32:$simm))>; 2410 2411 def : Pat<(v8i16 (vselect (v8i1 VCCR:$pred), (ARMvmvnImm timm:$simm), 2412 MQPR:$inactive)), 2413 (v8i16 (MVE_VMVNimmi16 nImmSplatI16:$simm, 2414 ARMVCCThen, VCCR:$pred, MQPR:$inactive))>; 2415 def : Pat<(v4i32 (vselect (v4i1 VCCR:$pred), (ARMvmvnImm timm:$simm), 2416 MQPR:$inactive)), 2417 (v4i32 (MVE_VMVNimmi32 nImmSplatI32:$simm, 2418 ARMVCCThen, VCCR:$pred, MQPR:$inactive))>; 2419} 2420 2421class MVE_VMINMAXA<string iname, string suffix, bits<2> size, 2422 bit bit_12, list<dag> pattern=[]> 2423 : MVE_p<(outs MQPR:$Qd), (ins MQPR:$Qd_src, MQPR:$Qm), 2424 NoItinerary, iname, suffix, "$Qd, $Qm", vpred_n, "$Qd = $Qd_src", 2425 pattern> { 2426 bits<4> Qd; 2427 bits<4> Qm; 2428 2429 let Inst{28} = 0b0; 2430 let Inst{25-23} = 0b100; 2431 let Inst{22} = Qd{3}; 2432 let Inst{21-20} = 0b11; 2433 let Inst{19-18} = size; 2434 let Inst{17-16} = 0b11; 2435 let Inst{15-13} = Qd{2-0}; 2436 let Inst{12} = bit_12; 2437 let Inst{11-6} = 0b111010; 2438 let Inst{5} = Qm{3}; 2439 let Inst{4} = 0b0; 2440 let Inst{3-1} = Qm{2-0}; 2441 let Inst{0} = 0b1; 2442 let validForTailPredication = 1; 2443} 2444 2445multiclass MVE_VMINMAXA_m<string iname, MVEVectorVTInfo VTI, 2446 SDNode unpred_op, Intrinsic pred_int, bit bit_12> { 2447 def "" : MVE_VMINMAXA<iname, VTI.Suffix, VTI.Size, bit_12>; 2448 defvar Inst = !cast<Instruction>(NAME); 2449 2450 let Predicates = [HasMVEInt] in { 2451 // Unpredicated v(min|max)a 2452 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qd), (abs (VTI.Vec MQPR:$Qm)))), 2453 (VTI.Vec (Inst (VTI.Vec MQPR:$Qd), (VTI.Vec MQPR:$Qm)))>; 2454 2455 // Predicated v(min|max)a 2456 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qd), (VTI.Vec MQPR:$Qm), 2457 (VTI.Pred VCCR:$mask))), 2458 (VTI.Vec (Inst (VTI.Vec MQPR:$Qd), (VTI.Vec MQPR:$Qm), 2459 ARMVCCThen, (VTI.Pred VCCR:$mask)))>; 2460 } 2461} 2462 2463multiclass MVE_VMINA<MVEVectorVTInfo VTI> 2464 : MVE_VMINMAXA_m<"vmina", VTI, umin, int_arm_mve_vmina_predicated, 0b1>; 2465 2466defm MVE_VMINAs8 : MVE_VMINA<MVE_v16s8>; 2467defm MVE_VMINAs16 : MVE_VMINA<MVE_v8s16>; 2468defm MVE_VMINAs32 : MVE_VMINA<MVE_v4s32>; 2469 2470multiclass MVE_VMAXA<MVEVectorVTInfo VTI> 2471 : MVE_VMINMAXA_m<"vmaxa", VTI, umax, int_arm_mve_vmaxa_predicated, 0b0>; 2472 2473defm MVE_VMAXAs8 : MVE_VMAXA<MVE_v16s8>; 2474defm MVE_VMAXAs16 : MVE_VMAXA<MVE_v8s16>; 2475defm MVE_VMAXAs32 : MVE_VMAXA<MVE_v4s32>; 2476 2477// end of MVE Integer instructions 2478 2479// start of mve_imm_shift instructions 2480 2481def MVE_VSHLC : MVE_p<(outs rGPR:$RdmDest, MQPR:$Qd), 2482 (ins MQPR:$QdSrc, rGPR:$RdmSrc, long_shift:$imm), 2483 NoItinerary, "vshlc", "", "$QdSrc, $RdmSrc, $imm", 2484 vpred_n, "$RdmDest = $RdmSrc,$Qd = $QdSrc"> { 2485 bits<5> imm; 2486 bits<4> Qd; 2487 bits<4> RdmDest; 2488 2489 let Inst{28} = 0b0; 2490 let Inst{25-23} = 0b101; 2491 let Inst{22} = Qd{3}; 2492 let Inst{21} = 0b1; 2493 let Inst{20-16} = imm{4-0}; 2494 let Inst{15-13} = Qd{2-0}; 2495 let Inst{12-4} = 0b011111100; 2496 let Inst{3-0} = RdmDest{3-0}; 2497} 2498 2499class MVE_shift_imm<dag oops, dag iops, string iname, string suffix, 2500 string ops, vpred_ops vpred, string cstr, 2501 list<dag> pattern=[]> 2502 : MVE_p<oops, iops, NoItinerary, iname, suffix, ops, vpred, cstr, pattern> { 2503 bits<4> Qd; 2504 bits<4> Qm; 2505 2506 let Inst{22} = Qd{3}; 2507 let Inst{15-13} = Qd{2-0}; 2508 let Inst{5} = Qm{3}; 2509 let Inst{3-1} = Qm{2-0}; 2510} 2511 2512class MVE_VMOVL<string iname, string suffix, bits<2> sz, bit U, bit top, 2513 list<dag> pattern=[]> 2514 : MVE_shift_imm<(outs MQPR:$Qd), (ins MQPR:$Qm), 2515 iname, suffix, "$Qd, $Qm", vpred_r, "", 2516 pattern> { 2517 let Inst{28} = U; 2518 let Inst{25-23} = 0b101; 2519 let Inst{21} = 0b1; 2520 let Inst{20-19} = sz{1-0}; 2521 let Inst{18-16} = 0b000; 2522 let Inst{12} = top; 2523 let Inst{11-6} = 0b111101; 2524 let Inst{4} = 0b0; 2525 let Inst{0} = 0b0; 2526 let doubleWidthResult = 1; 2527} 2528 2529multiclass MVE_VMOVL_m<bit top, string chr, MVEVectorVTInfo OutVTI, 2530 MVEVectorVTInfo InVTI> { 2531 def "": MVE_VMOVL<"vmovl" # chr, InVTI.Suffix, OutVTI.Size, 2532 InVTI.Unsigned, top>; 2533 defvar Inst = !cast<Instruction>(NAME); 2534 2535 def : Pat<(OutVTI.Vec (int_arm_mve_vmovl_predicated (InVTI.Vec MQPR:$src), 2536 (i32 InVTI.Unsigned), (i32 top), 2537 (OutVTI.Pred VCCR:$pred), 2538 (OutVTI.Vec MQPR:$inactive))), 2539 (OutVTI.Vec (Inst (InVTI.Vec MQPR:$src), ARMVCCThen, 2540 (OutVTI.Pred VCCR:$pred), 2541 (OutVTI.Vec MQPR:$inactive)))>; 2542} 2543 2544defm MVE_VMOVLs8bh : MVE_VMOVL_m<0, "b", MVE_v8s16, MVE_v16s8>; 2545defm MVE_VMOVLs8th : MVE_VMOVL_m<1, "t", MVE_v8s16, MVE_v16s8>; 2546defm MVE_VMOVLu8bh : MVE_VMOVL_m<0, "b", MVE_v8u16, MVE_v16u8>; 2547defm MVE_VMOVLu8th : MVE_VMOVL_m<1, "t", MVE_v8u16, MVE_v16u8>; 2548defm MVE_VMOVLs16bh : MVE_VMOVL_m<0, "b", MVE_v4s32, MVE_v8s16>; 2549defm MVE_VMOVLs16th : MVE_VMOVL_m<1, "t", MVE_v4s32, MVE_v8s16>; 2550defm MVE_VMOVLu16bh : MVE_VMOVL_m<0, "b", MVE_v4s32, MVE_v8u16>; 2551defm MVE_VMOVLu16th : MVE_VMOVL_m<1, "t", MVE_v4s32, MVE_v8u16>; 2552 2553let Predicates = [HasMVEInt] in { 2554 def : Pat<(sext_inreg (v4i32 MQPR:$src), v4i16), 2555 (MVE_VMOVLs16bh MQPR:$src)>; 2556 def : Pat<(sext_inreg (v8i16 MQPR:$src), v8i8), 2557 (MVE_VMOVLs8bh MQPR:$src)>; 2558 def : Pat<(sext_inreg (v4i32 MQPR:$src), v4i8), 2559 (MVE_VMOVLs16bh (MVE_VMOVLs8bh MQPR:$src))>; 2560 2561 def : Pat<(sext_inreg (v8i16 (ARMVectorRegCast (ARMvrev16 (v16i8 MQPR:$src)))), v8i8), 2562 (MVE_VMOVLs8th MQPR:$src)>; 2563 def : Pat<(sext_inreg (v4i32 (ARMVectorRegCast (ARMvrev32 (v8i16 MQPR:$src)))), v4i16), 2564 (MVE_VMOVLs16th MQPR:$src)>; 2565 2566 // zext_inreg 8 -> 16 2567 def : Pat<(ARMvbicImm (v8i16 MQPR:$src), (i32 0xAFF)), 2568 (MVE_VMOVLu8bh MQPR:$src)>; 2569 // zext_inreg 16 -> 32 2570 def : Pat<(and (v4i32 MQPR:$src), (v4i32 (ARMvmovImm (i32 0xCFF)))), 2571 (MVE_VMOVLu16bh MQPR:$src)>; 2572 // Same zext_inreg with vrevs, picking the top half 2573 def : Pat<(ARMvbicImm (v8i16 (ARMVectorRegCast (ARMvrev16 (v16i8 MQPR:$src)))), (i32 0xAFF)), 2574 (MVE_VMOVLu8th MQPR:$src)>; 2575 def : Pat<(and (v4i32 (ARMVectorRegCast (ARMvrev32 (v8i16 MQPR:$src)))), 2576 (v4i32 (ARMvmovImm (i32 0xCFF)))), 2577 (MVE_VMOVLu16th MQPR:$src)>; 2578} 2579 2580 2581class MVE_VSHLL_imm<string iname, string suffix, bit U, bit th, 2582 Operand immtype, list<dag> pattern=[]> 2583 : MVE_shift_imm<(outs MQPR:$Qd), (ins MQPR:$Qm, immtype:$imm), 2584 iname, suffix, "$Qd, $Qm, $imm", vpred_r, "", pattern> { 2585 let Inst{28} = U; 2586 let Inst{25-23} = 0b101; 2587 let Inst{21} = 0b1; 2588 let Inst{12} = th; 2589 let Inst{11-6} = 0b111101; 2590 let Inst{4} = 0b0; 2591 let Inst{0} = 0b0; 2592 2593 // For the MVE_VSHLL_patterns multiclass to refer to 2594 Operand immediateType = immtype; 2595 2596 let doubleWidthResult = 1; 2597} 2598 2599// The immediate VSHLL instructions accept shift counts from 1 up to 2600// the lane width (8 or 16), but the full-width shifts have an 2601// entirely separate encoding, given below with 'lw' in the name. 2602 2603class MVE_VSHLL_imm8<string iname, string suffix, 2604 bit U, bit th, list<dag> pattern=[]> 2605 : MVE_VSHLL_imm<iname, suffix, U, th, mve_shift_imm1_7, pattern> { 2606 bits<3> imm; 2607 let Inst{20-19} = 0b01; 2608 let Inst{18-16} = imm; 2609} 2610 2611class MVE_VSHLL_imm16<string iname, string suffix, 2612 bit U, bit th, list<dag> pattern=[]> 2613 : MVE_VSHLL_imm<iname, suffix, U, th, mve_shift_imm1_15, pattern> { 2614 bits<4> imm; 2615 let Inst{20} = 0b1; 2616 let Inst{19-16} = imm; 2617} 2618 2619def MVE_VSHLL_imms8bh : MVE_VSHLL_imm8 <"vshllb", "s8", 0b0, 0b0>; 2620def MVE_VSHLL_imms8th : MVE_VSHLL_imm8 <"vshllt", "s8", 0b0, 0b1>; 2621def MVE_VSHLL_immu8bh : MVE_VSHLL_imm8 <"vshllb", "u8", 0b1, 0b0>; 2622def MVE_VSHLL_immu8th : MVE_VSHLL_imm8 <"vshllt", "u8", 0b1, 0b1>; 2623def MVE_VSHLL_imms16bh : MVE_VSHLL_imm16<"vshllb", "s16", 0b0, 0b0>; 2624def MVE_VSHLL_imms16th : MVE_VSHLL_imm16<"vshllt", "s16", 0b0, 0b1>; 2625def MVE_VSHLL_immu16bh : MVE_VSHLL_imm16<"vshllb", "u16", 0b1, 0b0>; 2626def MVE_VSHLL_immu16th : MVE_VSHLL_imm16<"vshllt", "u16", 0b1, 0b1>; 2627 2628class MVE_VSHLL_by_lane_width<string iname, string suffix, bits<2> size, 2629 bit U, string ops, list<dag> pattern=[]> 2630 : MVE_shift_imm<(outs MQPR:$Qd), (ins MQPR:$Qm), 2631 iname, suffix, ops, vpred_r, "", pattern> { 2632 let Inst{28} = U; 2633 let Inst{25-23} = 0b100; 2634 let Inst{21-20} = 0b11; 2635 let Inst{19-18} = size{1-0}; 2636 let Inst{17-16} = 0b01; 2637 let Inst{11-6} = 0b111000; 2638 let Inst{4} = 0b0; 2639 let Inst{0} = 0b1; 2640 let doubleWidthResult = 1; 2641} 2642 2643multiclass MVE_VSHLL_lw<string iname, string suffix, bits<2> sz, bit U, 2644 string ops, list<dag> pattern=[]> { 2645 def bh : MVE_VSHLL_by_lane_width<iname#"b", suffix, sz, U, ops, pattern> { 2646 let Inst{12} = 0b0; 2647 } 2648 def th : MVE_VSHLL_by_lane_width<iname#"t", suffix, sz, U, ops, pattern> { 2649 let Inst{12} = 0b1; 2650 } 2651} 2652 2653defm MVE_VSHLL_lws8 : MVE_VSHLL_lw<"vshll", "s8", 0b00, 0b0, "$Qd, $Qm, #8">; 2654defm MVE_VSHLL_lws16 : MVE_VSHLL_lw<"vshll", "s16", 0b01, 0b0, "$Qd, $Qm, #16">; 2655defm MVE_VSHLL_lwu8 : MVE_VSHLL_lw<"vshll", "u8", 0b00, 0b1, "$Qd, $Qm, #8">; 2656defm MVE_VSHLL_lwu16 : MVE_VSHLL_lw<"vshll", "u16", 0b01, 0b1, "$Qd, $Qm, #16">; 2657 2658multiclass MVE_VSHLL_patterns<MVEVectorVTInfo VTI, int top> { 2659 defvar suffix = !strconcat(VTI.Suffix, !if(top, "th", "bh")); 2660 defvar inst_imm = !cast<MVE_VSHLL_imm>("MVE_VSHLL_imm" # suffix); 2661 defvar inst_lw = !cast<MVE_VSHLL_by_lane_width>("MVE_VSHLL_lw" # suffix); 2662 defvar unpred_int = int_arm_mve_vshll_imm; 2663 defvar pred_int = int_arm_mve_vshll_imm_predicated; 2664 defvar imm = inst_imm.immediateType; 2665 2666 def : Pat<(VTI.DblVec (unpred_int (VTI.Vec MQPR:$src), imm:$imm, 2667 (i32 VTI.Unsigned), (i32 top))), 2668 (VTI.DblVec (inst_imm (VTI.Vec MQPR:$src), imm:$imm))>; 2669 def : Pat<(VTI.DblVec (unpred_int (VTI.Vec MQPR:$src), (i32 VTI.LaneBits), 2670 (i32 VTI.Unsigned), (i32 top))), 2671 (VTI.DblVec (inst_lw (VTI.Vec MQPR:$src)))>; 2672 2673 def : Pat<(VTI.DblVec (pred_int (VTI.Vec MQPR:$src), imm:$imm, 2674 (i32 VTI.Unsigned), (i32 top), 2675 (VTI.DblPred VCCR:$mask), 2676 (VTI.DblVec MQPR:$inactive))), 2677 (VTI.DblVec (inst_imm (VTI.Vec MQPR:$src), imm:$imm, 2678 ARMVCCThen, (VTI.DblPred VCCR:$mask), 2679 (VTI.DblVec MQPR:$inactive)))>; 2680 def : Pat<(VTI.DblVec (pred_int (VTI.Vec MQPR:$src), (i32 VTI.LaneBits), 2681 (i32 VTI.Unsigned), (i32 top), 2682 (VTI.DblPred VCCR:$mask), 2683 (VTI.DblVec MQPR:$inactive))), 2684 (VTI.DblVec (inst_lw (VTI.Vec MQPR:$src), ARMVCCThen, 2685 (VTI.DblPred VCCR:$mask), 2686 (VTI.DblVec MQPR:$inactive)))>; 2687} 2688 2689foreach VTI = [MVE_v16s8, MVE_v8s16, MVE_v16u8, MVE_v8u16] in 2690 foreach top = [0, 1] in 2691 defm : MVE_VSHLL_patterns<VTI, top>; 2692 2693class MVE_shift_imm_partial<Operand imm, string iname, string suffix> 2694 : MVE_shift_imm<(outs MQPR:$Qd), (ins MQPR:$QdSrc, MQPR:$Qm, imm:$imm), 2695 iname, suffix, "$Qd, $Qm, $imm", vpred_n, "$Qd = $QdSrc"> { 2696 Operand immediateType = imm; 2697} 2698 2699class MVE_VxSHRN<string iname, string suffix, bit bit_12, bit bit_28, 2700 Operand imm, list<dag> pattern=[]> 2701 : MVE_shift_imm_partial<imm, iname, suffix> { 2702 bits<5> imm; 2703 2704 let Inst{28} = bit_28; 2705 let Inst{25-23} = 0b101; 2706 let Inst{21} = 0b0; 2707 let Inst{20-16} = imm{4-0}; 2708 let Inst{12} = bit_12; 2709 let Inst{11-6} = 0b111111; 2710 let Inst{4} = 0b0; 2711 let Inst{0} = 0b1; 2712 let validForTailPredication = 1; 2713 let retainsPreviousHalfElement = 1; 2714} 2715 2716def MVE_VRSHRNi16bh : MVE_VxSHRN<"vrshrnb", "i16", 0b0, 0b1, shr_imm8> { 2717 let Inst{20-19} = 0b01; 2718} 2719def MVE_VRSHRNi16th : MVE_VxSHRN<"vrshrnt", "i16", 0b1, 0b1, shr_imm8> { 2720 let Inst{20-19} = 0b01; 2721} 2722def MVE_VRSHRNi32bh : MVE_VxSHRN<"vrshrnb", "i32", 0b0, 0b1, shr_imm16> { 2723 let Inst{20} = 0b1; 2724} 2725def MVE_VRSHRNi32th : MVE_VxSHRN<"vrshrnt", "i32", 0b1, 0b1, shr_imm16> { 2726 let Inst{20} = 0b1; 2727} 2728 2729def MVE_VSHRNi16bh : MVE_VxSHRN<"vshrnb", "i16", 0b0, 0b0, shr_imm8> { 2730 let Inst{20-19} = 0b01; 2731} 2732def MVE_VSHRNi16th : MVE_VxSHRN<"vshrnt", "i16", 0b1, 0b0, shr_imm8> { 2733 let Inst{20-19} = 0b01; 2734} 2735def MVE_VSHRNi32bh : MVE_VxSHRN<"vshrnb", "i32", 0b0, 0b0, shr_imm16> { 2736 let Inst{20} = 0b1; 2737} 2738def MVE_VSHRNi32th : MVE_VxSHRN<"vshrnt", "i32", 0b1, 0b0, shr_imm16> { 2739 let Inst{20} = 0b1; 2740} 2741 2742class MVE_VxQRSHRUN<string iname, string suffix, bit bit_28, bit bit_12, 2743 Operand imm, list<dag> pattern=[]> 2744 : MVE_shift_imm_partial<imm, iname, suffix> { 2745 bits<5> imm; 2746 2747 let Inst{28} = bit_28; 2748 let Inst{25-23} = 0b101; 2749 let Inst{21} = 0b0; 2750 let Inst{20-16} = imm{4-0}; 2751 let Inst{12} = bit_12; 2752 let Inst{11-6} = 0b111111; 2753 let Inst{4} = 0b0; 2754 let Inst{0} = 0b0; 2755 let validForTailPredication = 1; 2756 let retainsPreviousHalfElement = 1; 2757} 2758 2759def MVE_VQRSHRUNs16bh : MVE_VxQRSHRUN< 2760 "vqrshrunb", "s16", 0b1, 0b0, shr_imm8> { 2761 let Inst{20-19} = 0b01; 2762} 2763def MVE_VQRSHRUNs16th : MVE_VxQRSHRUN< 2764 "vqrshrunt", "s16", 0b1, 0b1, shr_imm8> { 2765 let Inst{20-19} = 0b01; 2766} 2767def MVE_VQRSHRUNs32bh : MVE_VxQRSHRUN< 2768 "vqrshrunb", "s32", 0b1, 0b0, shr_imm16> { 2769 let Inst{20} = 0b1; 2770} 2771def MVE_VQRSHRUNs32th : MVE_VxQRSHRUN< 2772 "vqrshrunt", "s32", 0b1, 0b1, shr_imm16> { 2773 let Inst{20} = 0b1; 2774} 2775 2776def MVE_VQSHRUNs16bh : MVE_VxQRSHRUN< 2777 "vqshrunb", "s16", 0b0, 0b0, shr_imm8> { 2778 let Inst{20-19} = 0b01; 2779} 2780def MVE_VQSHRUNs16th : MVE_VxQRSHRUN< 2781 "vqshrunt", "s16", 0b0, 0b1, shr_imm8> { 2782 let Inst{20-19} = 0b01; 2783} 2784def MVE_VQSHRUNs32bh : MVE_VxQRSHRUN< 2785 "vqshrunb", "s32", 0b0, 0b0, shr_imm16> { 2786 let Inst{20} = 0b1; 2787} 2788def MVE_VQSHRUNs32th : MVE_VxQRSHRUN< 2789 "vqshrunt", "s32", 0b0, 0b1, shr_imm16> { 2790 let Inst{20} = 0b1; 2791} 2792 2793class MVE_VxQRSHRN<string iname, string suffix, bit bit_0, bit bit_12, 2794 Operand imm, list<dag> pattern=[]> 2795 : MVE_shift_imm_partial<imm, iname, suffix> { 2796 bits<5> imm; 2797 2798 let Inst{25-23} = 0b101; 2799 let Inst{21} = 0b0; 2800 let Inst{20-16} = imm{4-0}; 2801 let Inst{12} = bit_12; 2802 let Inst{11-6} = 0b111101; 2803 let Inst{4} = 0b0; 2804 let Inst{0} = bit_0; 2805 let validForTailPredication = 1; 2806 let retainsPreviousHalfElement = 1; 2807} 2808 2809multiclass MVE_VxQRSHRN_types<string iname, bit bit_0, bit bit_12> { 2810 def s16 : MVE_VxQRSHRN<iname, "s16", bit_0, bit_12, shr_imm8> { 2811 let Inst{28} = 0b0; 2812 let Inst{20-19} = 0b01; 2813 } 2814 def u16 : MVE_VxQRSHRN<iname, "u16", bit_0, bit_12, shr_imm8> { 2815 let Inst{28} = 0b1; 2816 let Inst{20-19} = 0b01; 2817 } 2818 def s32 : MVE_VxQRSHRN<iname, "s32", bit_0, bit_12, shr_imm16> { 2819 let Inst{28} = 0b0; 2820 let Inst{20} = 0b1; 2821 } 2822 def u32 : MVE_VxQRSHRN<iname, "u32", bit_0, bit_12, shr_imm16> { 2823 let Inst{28} = 0b1; 2824 let Inst{20} = 0b1; 2825 } 2826} 2827 2828defm MVE_VQRSHRNbh : MVE_VxQRSHRN_types<"vqrshrnb", 0b1, 0b0>; 2829defm MVE_VQRSHRNth : MVE_VxQRSHRN_types<"vqrshrnt", 0b1, 0b1>; 2830defm MVE_VQSHRNbh : MVE_VxQRSHRN_types<"vqshrnb", 0b0, 0b0>; 2831defm MVE_VQSHRNth : MVE_VxQRSHRN_types<"vqshrnt", 0b0, 0b1>; 2832 2833multiclass MVE_VSHRN_patterns<MVE_shift_imm_partial inst, 2834 MVEVectorVTInfo OutVTI, MVEVectorVTInfo InVTI, 2835 bit q, bit r, bit top> { 2836 defvar inparams = (? (OutVTI.Vec MQPR:$QdSrc), (InVTI.Vec MQPR:$Qm), 2837 (inst.immediateType:$imm), (i32 q), (i32 r), 2838 (i32 OutVTI.Unsigned), (i32 InVTI.Unsigned), (i32 top)); 2839 defvar outparams = (inst (OutVTI.Vec MQPR:$QdSrc), (InVTI.Vec MQPR:$Qm), 2840 (imm:$imm)); 2841 2842 def : Pat<(OutVTI.Vec !setop(inparams, int_arm_mve_vshrn)), 2843 (OutVTI.Vec outparams)>; 2844 def : Pat<(OutVTI.Vec !con(inparams, (int_arm_mve_vshrn_predicated 2845 (InVTI.Pred VCCR:$pred)))), 2846 (OutVTI.Vec !con(outparams, (? ARMVCCThen, VCCR:$pred)))>; 2847} 2848 2849defm : MVE_VSHRN_patterns<MVE_VSHRNi16bh, MVE_v16s8, MVE_v8s16, 0,0,0>; 2850defm : MVE_VSHRN_patterns<MVE_VSHRNi16th, MVE_v16s8, MVE_v8s16, 0,0,1>; 2851defm : MVE_VSHRN_patterns<MVE_VSHRNi32bh, MVE_v8s16, MVE_v4s32, 0,0,0>; 2852defm : MVE_VSHRN_patterns<MVE_VSHRNi32th, MVE_v8s16, MVE_v4s32, 0,0,1>; 2853defm : MVE_VSHRN_patterns<MVE_VSHRNi16bh, MVE_v16u8, MVE_v8u16, 0,0,0>; 2854defm : MVE_VSHRN_patterns<MVE_VSHRNi16th, MVE_v16u8, MVE_v8u16, 0,0,1>; 2855defm : MVE_VSHRN_patterns<MVE_VSHRNi32bh, MVE_v8u16, MVE_v4u32, 0,0,0>; 2856defm : MVE_VSHRN_patterns<MVE_VSHRNi32th, MVE_v8u16, MVE_v4u32, 0,0,1>; 2857defm : MVE_VSHRN_patterns<MVE_VRSHRNi16bh, MVE_v16s8, MVE_v8s16, 0,1,0>; 2858defm : MVE_VSHRN_patterns<MVE_VRSHRNi16th, MVE_v16s8, MVE_v8s16, 0,1,1>; 2859defm : MVE_VSHRN_patterns<MVE_VRSHRNi32bh, MVE_v8s16, MVE_v4s32, 0,1,0>; 2860defm : MVE_VSHRN_patterns<MVE_VRSHRNi32th, MVE_v8s16, MVE_v4s32, 0,1,1>; 2861defm : MVE_VSHRN_patterns<MVE_VRSHRNi16bh, MVE_v16u8, MVE_v8u16, 0,1,0>; 2862defm : MVE_VSHRN_patterns<MVE_VRSHRNi16th, MVE_v16u8, MVE_v8u16, 0,1,1>; 2863defm : MVE_VSHRN_patterns<MVE_VRSHRNi32bh, MVE_v8u16, MVE_v4u32, 0,1,0>; 2864defm : MVE_VSHRN_patterns<MVE_VRSHRNi32th, MVE_v8u16, MVE_v4u32, 0,1,1>; 2865defm : MVE_VSHRN_patterns<MVE_VQSHRNbhs16, MVE_v16s8, MVE_v8s16, 1,0,0>; 2866defm : MVE_VSHRN_patterns<MVE_VQSHRNths16, MVE_v16s8, MVE_v8s16, 1,0,1>; 2867defm : MVE_VSHRN_patterns<MVE_VQSHRNbhs32, MVE_v8s16, MVE_v4s32, 1,0,0>; 2868defm : MVE_VSHRN_patterns<MVE_VQSHRNths32, MVE_v8s16, MVE_v4s32, 1,0,1>; 2869defm : MVE_VSHRN_patterns<MVE_VQSHRNbhu16, MVE_v16u8, MVE_v8u16, 1,0,0>; 2870defm : MVE_VSHRN_patterns<MVE_VQSHRNthu16, MVE_v16u8, MVE_v8u16, 1,0,1>; 2871defm : MVE_VSHRN_patterns<MVE_VQSHRNbhu32, MVE_v8u16, MVE_v4u32, 1,0,0>; 2872defm : MVE_VSHRN_patterns<MVE_VQSHRNthu32, MVE_v8u16, MVE_v4u32, 1,0,1>; 2873defm : MVE_VSHRN_patterns<MVE_VQRSHRNbhs16, MVE_v16s8, MVE_v8s16, 1,1,0>; 2874defm : MVE_VSHRN_patterns<MVE_VQRSHRNths16, MVE_v16s8, MVE_v8s16, 1,1,1>; 2875defm : MVE_VSHRN_patterns<MVE_VQRSHRNbhs32, MVE_v8s16, MVE_v4s32, 1,1,0>; 2876defm : MVE_VSHRN_patterns<MVE_VQRSHRNths32, MVE_v8s16, MVE_v4s32, 1,1,1>; 2877defm : MVE_VSHRN_patterns<MVE_VQRSHRNbhu16, MVE_v16u8, MVE_v8u16, 1,1,0>; 2878defm : MVE_VSHRN_patterns<MVE_VQRSHRNthu16, MVE_v16u8, MVE_v8u16, 1,1,1>; 2879defm : MVE_VSHRN_patterns<MVE_VQRSHRNbhu32, MVE_v8u16, MVE_v4u32, 1,1,0>; 2880defm : MVE_VSHRN_patterns<MVE_VQRSHRNthu32, MVE_v8u16, MVE_v4u32, 1,1,1>; 2881defm : MVE_VSHRN_patterns<MVE_VQSHRUNs16bh, MVE_v16u8, MVE_v8s16, 1,0,0>; 2882defm : MVE_VSHRN_patterns<MVE_VQSHRUNs16th, MVE_v16u8, MVE_v8s16, 1,0,1>; 2883defm : MVE_VSHRN_patterns<MVE_VQSHRUNs32bh, MVE_v8u16, MVE_v4s32, 1,0,0>; 2884defm : MVE_VSHRN_patterns<MVE_VQSHRUNs32th, MVE_v8u16, MVE_v4s32, 1,0,1>; 2885defm : MVE_VSHRN_patterns<MVE_VQRSHRUNs16bh, MVE_v16u8, MVE_v8s16, 1,1,0>; 2886defm : MVE_VSHRN_patterns<MVE_VQRSHRUNs16th, MVE_v16u8, MVE_v8s16, 1,1,1>; 2887defm : MVE_VSHRN_patterns<MVE_VQRSHRUNs32bh, MVE_v8u16, MVE_v4s32, 1,1,0>; 2888defm : MVE_VSHRN_patterns<MVE_VQRSHRUNs32th, MVE_v8u16, MVE_v4s32, 1,1,1>; 2889 2890// end of mve_imm_shift instructions 2891 2892// start of mve_shift instructions 2893 2894class MVE_shift_by_vec<string iname, string suffix, bit U, 2895 bits<2> size, bit bit_4, bit bit_8> 2896 : MVE_p<(outs MQPR:$Qd), (ins MQPR:$Qm, MQPR:$Qn), NoItinerary, 2897 iname, suffix, "$Qd, $Qm, $Qn", vpred_r, "", []> { 2898 // Shift instructions which take a vector of shift counts 2899 bits<4> Qd; 2900 bits<4> Qm; 2901 bits<4> Qn; 2902 2903 let Inst{28} = U; 2904 let Inst{25-24} = 0b11; 2905 let Inst{23} = 0b0; 2906 let Inst{22} = Qd{3}; 2907 let Inst{21-20} = size; 2908 let Inst{19-17} = Qn{2-0}; 2909 let Inst{16} = 0b0; 2910 let Inst{15-13} = Qd{2-0}; 2911 let Inst{12-9} = 0b0010; 2912 let Inst{8} = bit_8; 2913 let Inst{7} = Qn{3}; 2914 let Inst{6} = 0b1; 2915 let Inst{5} = Qm{3}; 2916 let Inst{4} = bit_4; 2917 let Inst{3-1} = Qm{2-0}; 2918 let Inst{0} = 0b0; 2919 let validForTailPredication = 1; 2920} 2921 2922multiclass MVE_shift_by_vec_p<string iname, MVEVectorVTInfo VTI, bit q, bit r> { 2923 def "" : MVE_shift_by_vec<iname, VTI.Suffix, VTI.Unsigned, VTI.Size, q, r>; 2924 defvar Inst = !cast<Instruction>(NAME); 2925 2926 def : Pat<(VTI.Vec (int_arm_mve_vshl_vector 2927 (VTI.Vec MQPR:$in), (VTI.Vec MQPR:$sh), 2928 (i32 q), (i32 r), (i32 VTI.Unsigned))), 2929 (VTI.Vec (Inst (VTI.Vec MQPR:$in), (VTI.Vec MQPR:$sh)))>; 2930 2931 def : Pat<(VTI.Vec (int_arm_mve_vshl_vector_predicated 2932 (VTI.Vec MQPR:$in), (VTI.Vec MQPR:$sh), 2933 (i32 q), (i32 r), (i32 VTI.Unsigned), 2934 (VTI.Pred VCCR:$mask), (VTI.Vec MQPR:$inactive))), 2935 (VTI.Vec (Inst (VTI.Vec MQPR:$in), (VTI.Vec MQPR:$sh), 2936 ARMVCCThen, (VTI.Pred VCCR:$mask), 2937 (VTI.Vec MQPR:$inactive)))>; 2938} 2939 2940multiclass mve_shift_by_vec_multi<string iname, bit bit_4, bit bit_8> { 2941 defm s8 : MVE_shift_by_vec_p<iname, MVE_v16s8, bit_4, bit_8>; 2942 defm s16 : MVE_shift_by_vec_p<iname, MVE_v8s16, bit_4, bit_8>; 2943 defm s32 : MVE_shift_by_vec_p<iname, MVE_v4s32, bit_4, bit_8>; 2944 defm u8 : MVE_shift_by_vec_p<iname, MVE_v16u8, bit_4, bit_8>; 2945 defm u16 : MVE_shift_by_vec_p<iname, MVE_v8u16, bit_4, bit_8>; 2946 defm u32 : MVE_shift_by_vec_p<iname, MVE_v4u32, bit_4, bit_8>; 2947} 2948 2949defm MVE_VSHL_by_vec : mve_shift_by_vec_multi<"vshl", 0b0, 0b0>; 2950defm MVE_VQSHL_by_vec : mve_shift_by_vec_multi<"vqshl", 0b1, 0b0>; 2951defm MVE_VQRSHL_by_vec : mve_shift_by_vec_multi<"vqrshl", 0b1, 0b1>; 2952defm MVE_VRSHL_by_vec : mve_shift_by_vec_multi<"vrshl", 0b0, 0b1>; 2953 2954let Predicates = [HasMVEInt] in { 2955 def : Pat<(v4i32 (ARMvshlu (v4i32 MQPR:$Qm), (v4i32 MQPR:$Qn))), 2956 (v4i32 (MVE_VSHL_by_vecu32 (v4i32 MQPR:$Qm), (v4i32 MQPR:$Qn)))>; 2957 def : Pat<(v8i16 (ARMvshlu (v8i16 MQPR:$Qm), (v8i16 MQPR:$Qn))), 2958 (v8i16 (MVE_VSHL_by_vecu16 (v8i16 MQPR:$Qm), (v8i16 MQPR:$Qn)))>; 2959 def : Pat<(v16i8 (ARMvshlu (v16i8 MQPR:$Qm), (v16i8 MQPR:$Qn))), 2960 (v16i8 (MVE_VSHL_by_vecu8 (v16i8 MQPR:$Qm), (v16i8 MQPR:$Qn)))>; 2961 2962 def : Pat<(v4i32 (ARMvshls (v4i32 MQPR:$Qm), (v4i32 MQPR:$Qn))), 2963 (v4i32 (MVE_VSHL_by_vecs32 (v4i32 MQPR:$Qm), (v4i32 MQPR:$Qn)))>; 2964 def : Pat<(v8i16 (ARMvshls (v8i16 MQPR:$Qm), (v8i16 MQPR:$Qn))), 2965 (v8i16 (MVE_VSHL_by_vecs16 (v8i16 MQPR:$Qm), (v8i16 MQPR:$Qn)))>; 2966 def : Pat<(v16i8 (ARMvshls (v16i8 MQPR:$Qm), (v16i8 MQPR:$Qn))), 2967 (v16i8 (MVE_VSHL_by_vecs8 (v16i8 MQPR:$Qm), (v16i8 MQPR:$Qn)))>; 2968} 2969 2970class MVE_shift_with_imm<string iname, string suffix, dag oops, dag iops, 2971 string ops, vpred_ops vpred, string cstr, 2972 list<dag> pattern=[]> 2973 : MVE_p<oops, iops, NoItinerary, iname, suffix, ops, vpred, cstr, pattern> { 2974 bits<4> Qd; 2975 bits<4> Qm; 2976 2977 let Inst{23} = 0b1; 2978 let Inst{22} = Qd{3}; 2979 let Inst{15-13} = Qd{2-0}; 2980 let Inst{12-11} = 0b00; 2981 let Inst{7-6} = 0b01; 2982 let Inst{5} = Qm{3}; 2983 let Inst{4} = 0b1; 2984 let Inst{3-1} = Qm{2-0}; 2985 let Inst{0} = 0b0; 2986 let validForTailPredication = 1; 2987 2988 // For the MVE_shift_imm_patterns multiclass to refer to 2989 MVEVectorVTInfo VTI; 2990 Operand immediateType; 2991 Intrinsic unpred_int; 2992 Intrinsic pred_int; 2993 dag unsignedFlag = (?); 2994} 2995 2996class MVE_VSxI_imm<string iname, string suffix, bit bit_8, Operand immType> 2997 : MVE_shift_with_imm<iname, suffix, (outs MQPR:$Qd), 2998 (ins MQPR:$Qd_src, MQPR:$Qm, immType:$imm), 2999 "$Qd, $Qm, $imm", vpred_n, "$Qd = $Qd_src"> { 3000 bits<6> imm; 3001 let Inst{28} = 0b1; 3002 let Inst{25-24} = 0b11; 3003 let Inst{21-16} = imm; 3004 let Inst{10-9} = 0b10; 3005 let Inst{8} = bit_8; 3006 let validForTailPredication = 1; 3007 3008 Operand immediateType = immType; 3009} 3010 3011def MVE_VSRIimm8 : MVE_VSxI_imm<"vsri", "8", 0b0, shr_imm8> { 3012 let Inst{21-19} = 0b001; 3013} 3014 3015def MVE_VSRIimm16 : MVE_VSxI_imm<"vsri", "16", 0b0, shr_imm16> { 3016 let Inst{21-20} = 0b01; 3017} 3018 3019def MVE_VSRIimm32 : MVE_VSxI_imm<"vsri", "32", 0b0, shr_imm32> { 3020 let Inst{21} = 0b1; 3021} 3022 3023def MVE_VSLIimm8 : MVE_VSxI_imm<"vsli", "8", 0b1, imm0_7> { 3024 let Inst{21-19} = 0b001; 3025} 3026 3027def MVE_VSLIimm16 : MVE_VSxI_imm<"vsli", "16", 0b1, imm0_15> { 3028 let Inst{21-20} = 0b01; 3029} 3030 3031def MVE_VSLIimm32 : MVE_VSxI_imm<"vsli", "32", 0b1,imm0_31> { 3032 let Inst{21} = 0b1; 3033} 3034 3035multiclass MVE_VSxI_patterns<MVE_VSxI_imm inst, string name, 3036 MVEVectorVTInfo VTI> { 3037 defvar inparams = (? (VTI.Vec MQPR:$QdSrc), (VTI.Vec MQPR:$Qm), 3038 (inst.immediateType:$imm)); 3039 defvar outparams = (inst (VTI.Vec MQPR:$QdSrc), (VTI.Vec MQPR:$Qm), 3040 (inst.immediateType:$imm)); 3041 defvar unpred_int = !cast<Intrinsic>("int_arm_mve_" # name); 3042 defvar pred_int = !cast<Intrinsic>("int_arm_mve_" # name # "_predicated"); 3043 3044 def : Pat<(VTI.Vec !setop(inparams, unpred_int)), 3045 (VTI.Vec outparams)>; 3046 def : Pat<(VTI.Vec !con(inparams, (pred_int (VTI.Pred VCCR:$pred)))), 3047 (VTI.Vec !con(outparams, (? ARMVCCThen, VCCR:$pred)))>; 3048} 3049 3050defm : MVE_VSxI_patterns<MVE_VSLIimm8, "vsli", MVE_v16i8>; 3051defm : MVE_VSxI_patterns<MVE_VSLIimm16, "vsli", MVE_v8i16>; 3052defm : MVE_VSxI_patterns<MVE_VSLIimm32, "vsli", MVE_v4i32>; 3053defm : MVE_VSxI_patterns<MVE_VSRIimm8, "vsri", MVE_v16i8>; 3054defm : MVE_VSxI_patterns<MVE_VSRIimm16, "vsri", MVE_v8i16>; 3055defm : MVE_VSxI_patterns<MVE_VSRIimm32, "vsri", MVE_v4i32>; 3056 3057class MVE_VQSHL_imm<MVEVectorVTInfo VTI_, Operand immType> 3058 : MVE_shift_with_imm<"vqshl", VTI_.Suffix, (outs MQPR:$Qd), 3059 (ins MQPR:$Qm, immType:$imm), "$Qd, $Qm, $imm", 3060 vpred_r, ""> { 3061 bits<6> imm; 3062 3063 let Inst{28} = VTI_.Unsigned; 3064 let Inst{25-24} = 0b11; 3065 let Inst{21-16} = imm; 3066 let Inst{10-8} = 0b111; 3067 3068 let VTI = VTI_; 3069 let immediateType = immType; 3070 let unsignedFlag = (? (i32 VTI.Unsigned)); 3071} 3072 3073let unpred_int = int_arm_mve_vqshl_imm, 3074 pred_int = int_arm_mve_vqshl_imm_predicated in { 3075 def MVE_VQSHLimms8 : MVE_VQSHL_imm<MVE_v16s8, imm0_7> { 3076 let Inst{21-19} = 0b001; 3077 } 3078 def MVE_VQSHLimmu8 : MVE_VQSHL_imm<MVE_v16u8, imm0_7> { 3079 let Inst{21-19} = 0b001; 3080 } 3081 3082 def MVE_VQSHLimms16 : MVE_VQSHL_imm<MVE_v8s16, imm0_15> { 3083 let Inst{21-20} = 0b01; 3084 } 3085 def MVE_VQSHLimmu16 : MVE_VQSHL_imm<MVE_v8u16, imm0_15> { 3086 let Inst{21-20} = 0b01; 3087 } 3088 3089 def MVE_VQSHLimms32 : MVE_VQSHL_imm<MVE_v4s32, imm0_31> { 3090 let Inst{21} = 0b1; 3091 } 3092 def MVE_VQSHLimmu32 : MVE_VQSHL_imm<MVE_v4u32, imm0_31> { 3093 let Inst{21} = 0b1; 3094 } 3095} 3096 3097class MVE_VQSHLU_imm<MVEVectorVTInfo VTI_, Operand immType> 3098 : MVE_shift_with_imm<"vqshlu", VTI_.Suffix, (outs MQPR:$Qd), 3099 (ins MQPR:$Qm, immType:$imm), "$Qd, $Qm, $imm", 3100 vpred_r, ""> { 3101 bits<6> imm; 3102 3103 let Inst{28} = 0b1; 3104 let Inst{25-24} = 0b11; 3105 let Inst{21-16} = imm; 3106 let Inst{10-8} = 0b110; 3107 3108 let VTI = VTI_; 3109 let immediateType = immType; 3110} 3111 3112let unpred_int = int_arm_mve_vqshlu_imm, 3113 pred_int = int_arm_mve_vqshlu_imm_predicated in { 3114 def MVE_VQSHLU_imms8 : MVE_VQSHLU_imm<MVE_v16s8, imm0_7> { 3115 let Inst{21-19} = 0b001; 3116 } 3117 3118 def MVE_VQSHLU_imms16 : MVE_VQSHLU_imm<MVE_v8s16, imm0_15> { 3119 let Inst{21-20} = 0b01; 3120 } 3121 3122 def MVE_VQSHLU_imms32 : MVE_VQSHLU_imm<MVE_v4s32, imm0_31> { 3123 let Inst{21} = 0b1; 3124 } 3125} 3126 3127class MVE_VRSHR_imm<MVEVectorVTInfo VTI_, Operand immType> 3128 : MVE_shift_with_imm<"vrshr", VTI_.Suffix, (outs MQPR:$Qd), 3129 (ins MQPR:$Qm, immType:$imm), "$Qd, $Qm, $imm", 3130 vpred_r, ""> { 3131 bits<6> imm; 3132 3133 let Inst{28} = VTI_.Unsigned; 3134 let Inst{25-24} = 0b11; 3135 let Inst{21-16} = imm; 3136 let Inst{10-8} = 0b010; 3137 3138 let VTI = VTI_; 3139 let immediateType = immType; 3140 let unsignedFlag = (? (i32 VTI.Unsigned)); 3141} 3142 3143let unpred_int = int_arm_mve_vrshr_imm, 3144 pred_int = int_arm_mve_vrshr_imm_predicated in { 3145 def MVE_VRSHR_imms8 : MVE_VRSHR_imm<MVE_v16s8, shr_imm8> { 3146 let Inst{21-19} = 0b001; 3147 } 3148 3149 def MVE_VRSHR_immu8 : MVE_VRSHR_imm<MVE_v16u8, shr_imm8> { 3150 let Inst{21-19} = 0b001; 3151 } 3152 3153 def MVE_VRSHR_imms16 : MVE_VRSHR_imm<MVE_v8s16, shr_imm16> { 3154 let Inst{21-20} = 0b01; 3155 } 3156 3157 def MVE_VRSHR_immu16 : MVE_VRSHR_imm<MVE_v8u16, shr_imm16> { 3158 let Inst{21-20} = 0b01; 3159 } 3160 3161 def MVE_VRSHR_imms32 : MVE_VRSHR_imm<MVE_v4s32, shr_imm32> { 3162 let Inst{21} = 0b1; 3163 } 3164 3165 def MVE_VRSHR_immu32 : MVE_VRSHR_imm<MVE_v4u32, shr_imm32> { 3166 let Inst{21} = 0b1; 3167 } 3168} 3169 3170multiclass MVE_shift_imm_patterns<MVE_shift_with_imm inst> { 3171 def : Pat<(inst.VTI.Vec !con((inst.unpred_int (inst.VTI.Vec MQPR:$src), 3172 inst.immediateType:$imm), 3173 inst.unsignedFlag)), 3174 (inst.VTI.Vec (inst (inst.VTI.Vec MQPR:$src), 3175 inst.immediateType:$imm))>; 3176 3177 def : Pat<(inst.VTI.Vec !con((inst.pred_int (inst.VTI.Vec MQPR:$src), 3178 inst.immediateType:$imm), 3179 inst.unsignedFlag, 3180 (? (inst.VTI.Pred VCCR:$mask), 3181 (inst.VTI.Vec MQPR:$inactive)))), 3182 (inst.VTI.Vec (inst (inst.VTI.Vec MQPR:$src), 3183 inst.immediateType:$imm, 3184 ARMVCCThen, (inst.VTI.Pred VCCR:$mask), 3185 (inst.VTI.Vec MQPR:$inactive)))>; 3186} 3187 3188defm : MVE_shift_imm_patterns<MVE_VQSHLimms8>; 3189defm : MVE_shift_imm_patterns<MVE_VQSHLimmu8>; 3190defm : MVE_shift_imm_patterns<MVE_VQSHLimms16>; 3191defm : MVE_shift_imm_patterns<MVE_VQSHLimmu16>; 3192defm : MVE_shift_imm_patterns<MVE_VQSHLimms32>; 3193defm : MVE_shift_imm_patterns<MVE_VQSHLimmu32>; 3194defm : MVE_shift_imm_patterns<MVE_VQSHLU_imms8>; 3195defm : MVE_shift_imm_patterns<MVE_VQSHLU_imms16>; 3196defm : MVE_shift_imm_patterns<MVE_VQSHLU_imms32>; 3197defm : MVE_shift_imm_patterns<MVE_VRSHR_imms8>; 3198defm : MVE_shift_imm_patterns<MVE_VRSHR_immu8>; 3199defm : MVE_shift_imm_patterns<MVE_VRSHR_imms16>; 3200defm : MVE_shift_imm_patterns<MVE_VRSHR_immu16>; 3201defm : MVE_shift_imm_patterns<MVE_VRSHR_imms32>; 3202defm : MVE_shift_imm_patterns<MVE_VRSHR_immu32>; 3203 3204class MVE_VSHR_imm<string suffix, dag imm> 3205 : MVE_shift_with_imm<"vshr", suffix, (outs MQPR:$Qd), 3206 !con((ins MQPR:$Qm), imm), "$Qd, $Qm, $imm", 3207 vpred_r, ""> { 3208 bits<6> imm; 3209 3210 let Inst{25-24} = 0b11; 3211 let Inst{21-16} = imm; 3212 let Inst{10-8} = 0b000; 3213} 3214 3215def MVE_VSHR_imms8 : MVE_VSHR_imm<"s8", (ins shr_imm8:$imm)> { 3216 let Inst{28} = 0b0; 3217 let Inst{21-19} = 0b001; 3218} 3219 3220def MVE_VSHR_immu8 : MVE_VSHR_imm<"u8", (ins shr_imm8:$imm)> { 3221 let Inst{28} = 0b1; 3222 let Inst{21-19} = 0b001; 3223} 3224 3225def MVE_VSHR_imms16 : MVE_VSHR_imm<"s16", (ins shr_imm16:$imm)> { 3226 let Inst{28} = 0b0; 3227 let Inst{21-20} = 0b01; 3228} 3229 3230def MVE_VSHR_immu16 : MVE_VSHR_imm<"u16", (ins shr_imm16:$imm)> { 3231 let Inst{28} = 0b1; 3232 let Inst{21-20} = 0b01; 3233} 3234 3235def MVE_VSHR_imms32 : MVE_VSHR_imm<"s32", (ins shr_imm32:$imm)> { 3236 let Inst{28} = 0b0; 3237 let Inst{21} = 0b1; 3238} 3239 3240def MVE_VSHR_immu32 : MVE_VSHR_imm<"u32", (ins shr_imm32:$imm)> { 3241 let Inst{28} = 0b1; 3242 let Inst{21} = 0b1; 3243} 3244 3245class MVE_VSHL_imm<string suffix, dag imm> 3246 : MVE_shift_with_imm<"vshl", suffix, (outs MQPR:$Qd), 3247 !con((ins MQPR:$Qm), imm), "$Qd, $Qm, $imm", 3248 vpred_r, ""> { 3249 bits<6> imm; 3250 3251 let Inst{28} = 0b0; 3252 let Inst{25-24} = 0b11; 3253 let Inst{21-16} = imm; 3254 let Inst{10-8} = 0b101; 3255} 3256 3257def MVE_VSHL_immi8 : MVE_VSHL_imm<"i8", (ins imm0_7:$imm)> { 3258 let Inst{21-19} = 0b001; 3259} 3260 3261def MVE_VSHL_immi16 : MVE_VSHL_imm<"i16", (ins imm0_15:$imm)> { 3262 let Inst{21-20} = 0b01; 3263} 3264 3265def MVE_VSHL_immi32 : MVE_VSHL_imm<"i32", (ins imm0_31:$imm)> { 3266 let Inst{21} = 0b1; 3267} 3268 3269multiclass MVE_immediate_shift_patterns_inner< 3270 MVEVectorVTInfo VTI, Operand imm_operand_type, SDNode unpred_op, 3271 Intrinsic pred_int, Instruction inst, list<int> unsignedFlag = []> { 3272 3273 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$src), imm_operand_type:$imm)), 3274 (VTI.Vec (inst (VTI.Vec MQPR:$src), imm_operand_type:$imm))>; 3275 3276 def : Pat<(VTI.Vec !con((pred_int (VTI.Vec MQPR:$src), imm_operand_type:$imm), 3277 !dag(pred_int, unsignedFlag, ?), 3278 (pred_int (VTI.Pred VCCR:$mask), 3279 (VTI.Vec MQPR:$inactive)))), 3280 (VTI.Vec (inst (VTI.Vec MQPR:$src), imm_operand_type:$imm, 3281 ARMVCCThen, (VTI.Pred VCCR:$mask), 3282 (VTI.Vec MQPR:$inactive)))>; 3283} 3284 3285multiclass MVE_immediate_shift_patterns<MVEVectorVTInfo VTI, 3286 Operand imm_operand_type> { 3287 defm : MVE_immediate_shift_patterns_inner<VTI, imm_operand_type, 3288 ARMvshlImm, int_arm_mve_shl_imm_predicated, 3289 !cast<Instruction>("MVE_VSHL_immi" # VTI.BitsSuffix)>; 3290 defm : MVE_immediate_shift_patterns_inner<VTI, imm_operand_type, 3291 ARMvshruImm, int_arm_mve_shr_imm_predicated, 3292 !cast<Instruction>("MVE_VSHR_immu" # VTI.BitsSuffix), [1]>; 3293 defm : MVE_immediate_shift_patterns_inner<VTI, imm_operand_type, 3294 ARMvshrsImm, int_arm_mve_shr_imm_predicated, 3295 !cast<Instruction>("MVE_VSHR_imms" # VTI.BitsSuffix), [0]>; 3296} 3297 3298let Predicates = [HasMVEInt] in { 3299 defm : MVE_immediate_shift_patterns<MVE_v16i8, imm0_7>; 3300 defm : MVE_immediate_shift_patterns<MVE_v8i16, imm0_15>; 3301 defm : MVE_immediate_shift_patterns<MVE_v4i32, imm0_31>; 3302} 3303 3304// end of mve_shift instructions 3305 3306// start of MVE Floating Point instructions 3307 3308class MVE_float<string iname, string suffix, dag oops, dag iops, string ops, 3309 vpred_ops vpred, string cstr, list<dag> pattern=[]> 3310 : MVE_f<oops, iops, NoItinerary, iname, suffix, ops, vpred, cstr, pattern> { 3311 bits<4> Qm; 3312 3313 let Inst{12} = 0b0; 3314 let Inst{6} = 0b1; 3315 let Inst{5} = Qm{3}; 3316 let Inst{3-1} = Qm{2-0}; 3317 let Inst{0} = 0b0; 3318} 3319 3320class MVE_VRINT<string rmode, bits<3> op, string suffix, bits<2> size, 3321 list<dag> pattern=[]> 3322 : MVE_float<!strconcat("vrint", rmode), suffix, (outs MQPR:$Qd), 3323 (ins MQPR:$Qm), "$Qd, $Qm", vpred_r, "", pattern> { 3324 bits<4> Qd; 3325 3326 let Inst{28} = 0b1; 3327 let Inst{25-23} = 0b111; 3328 let Inst{22} = Qd{3}; 3329 let Inst{21-20} = 0b11; 3330 let Inst{19-18} = size; 3331 let Inst{17-16} = 0b10; 3332 let Inst{15-13} = Qd{2-0}; 3333 let Inst{11-10} = 0b01; 3334 let Inst{9-7} = op{2-0}; 3335 let Inst{4} = 0b0; 3336 let validForTailPredication = 1; 3337 3338} 3339 3340multiclass MVE_VRINT_m<MVEVectorVTInfo VTI, string suffix, bits<3> opcode, 3341 SDNode unpred_op> { 3342 def "": MVE_VRINT<suffix, opcode, VTI.Suffix, VTI.Size>; 3343 defvar Inst = !cast<Instruction>(NAME); 3344 defvar pred_int = !cast<Intrinsic>("int_arm_mve_vrint"#suffix#"_predicated"); 3345 3346 let Predicates = [HasMVEFloat] in { 3347 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$val))), 3348 (VTI.Vec (Inst (VTI.Vec MQPR:$val)))>; 3349 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$val), (VTI.Pred VCCR:$pred), 3350 (VTI.Vec MQPR:$inactive))), 3351 (VTI.Vec (Inst (VTI.Vec MQPR:$val), ARMVCCThen, 3352 (VTI.Pred VCCR:$pred), (VTI.Vec MQPR:$inactive)))>; 3353 } 3354} 3355 3356multiclass MVE_VRINT_ops<MVEVectorVTInfo VTI> { 3357 defm N : MVE_VRINT_m<VTI, "n", 0b000, int_arm_mve_vrintn>; 3358 defm X : MVE_VRINT_m<VTI, "x", 0b001, frint>; 3359 defm A : MVE_VRINT_m<VTI, "a", 0b010, fround>; 3360 defm Z : MVE_VRINT_m<VTI, "z", 0b011, ftrunc>; 3361 defm M : MVE_VRINT_m<VTI, "m", 0b101, ffloor>; 3362 defm P : MVE_VRINT_m<VTI, "p", 0b111, fceil>; 3363} 3364 3365defm MVE_VRINTf16 : MVE_VRINT_ops<MVE_v8f16>; 3366defm MVE_VRINTf32 : MVE_VRINT_ops<MVE_v4f32>; 3367 3368class MVEFloatArithNeon<string iname, string suffix, bit size, 3369 dag oops, dag iops, string ops, 3370 vpred_ops vpred, string cstr, list<dag> pattern=[]> 3371 : MVE_float<iname, suffix, oops, iops, ops, vpred, cstr, pattern> { 3372 let Inst{20} = size; 3373 let Inst{16} = 0b0; 3374} 3375 3376class MVE_VMUL_fp<string iname, string suffix, bit size, list<dag> pattern=[]> 3377 : MVEFloatArithNeon<iname, suffix, size, (outs MQPR:$Qd), 3378 (ins MQPR:$Qn, MQPR:$Qm), "$Qd, $Qn, $Qm", vpred_r, "", 3379 pattern> { 3380 bits<4> Qd; 3381 bits<4> Qn; 3382 3383 let Inst{28} = 0b1; 3384 let Inst{25-23} = 0b110; 3385 let Inst{22} = Qd{3}; 3386 let Inst{21} = 0b0; 3387 let Inst{19-17} = Qn{2-0}; 3388 let Inst{15-13} = Qd{2-0}; 3389 let Inst{12-8} = 0b01101; 3390 let Inst{7} = Qn{3}; 3391 let Inst{4} = 0b1; 3392 let validForTailPredication = 1; 3393} 3394 3395multiclass MVE_VMULT_fp_m<string iname, bit bit_21, MVEVectorVTInfo VTI, 3396 SDNode unpred_op, Intrinsic pred_int> { 3397 def "" : MVE_VMUL_fp<iname, VTI.Suffix, VTI.Size{0}>; 3398 defvar Inst = !cast<Instruction>(NAME); 3399 3400 let Predicates = [HasMVEFloat] in { 3401 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn))), 3402 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>; 3403 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 3404 (VTI.Pred VCCR:$mask), (VTI.Vec MQPR:$inactive))), 3405 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 3406 ARMVCCThen, (VTI.Pred VCCR:$mask), 3407 (VTI.Vec MQPR:$inactive)))>; 3408 } 3409} 3410 3411multiclass MVE_VMUL_fp_m<MVEVectorVTInfo VTI> 3412 : MVE_VMULT_fp_m<"vmul", 0, VTI, fmul, int_arm_mve_mul_predicated>; 3413 3414defm MVE_VMULf32 : MVE_VMUL_fp_m<MVE_v4f32>; 3415defm MVE_VMULf16 : MVE_VMUL_fp_m<MVE_v8f16>; 3416 3417class MVE_VCMLA<string suffix, bit size> 3418 : MVEFloatArithNeon<"vcmla", suffix, size, (outs MQPR:$Qd), 3419 (ins MQPR:$Qd_src, MQPR:$Qn, MQPR:$Qm, complexrotateop:$rot), 3420 "$Qd, $Qn, $Qm, $rot", vpred_n, "$Qd = $Qd_src", []> { 3421 bits<4> Qd; 3422 bits<4> Qn; 3423 bits<2> rot; 3424 3425 let Inst{28} = 0b1; 3426 let Inst{25} = 0b0; 3427 let Inst{24-23} = rot; 3428 let Inst{22} = Qd{3}; 3429 let Inst{21} = 0b1; 3430 let Inst{19-17} = Qn{2-0}; 3431 let Inst{15-13} = Qd{2-0}; 3432 let Inst{12-8} = 0b01000; 3433 let Inst{7} = Qn{3}; 3434 let Inst{4} = 0b0; 3435} 3436 3437multiclass MVE_VCMLA_m<MVEVectorVTInfo VTI, bit size> { 3438 def "" : MVE_VCMLA<VTI.Suffix, size>; 3439 defvar Inst = !cast<Instruction>(NAME); 3440 3441 let Predicates = [HasMVEFloat] in { 3442 def : Pat<(VTI.Vec (int_arm_mve_vcmlaq 3443 imm:$rot, (VTI.Vec MQPR:$Qd_src), 3444 (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm))), 3445 (VTI.Vec (Inst (VTI.Vec MQPR:$Qd_src), 3446 (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm), 3447 imm:$rot))>; 3448 3449 def : Pat<(VTI.Vec (int_arm_mve_vcmlaq_predicated 3450 imm:$rot, (VTI.Vec MQPR:$Qd_src), 3451 (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm), 3452 (VTI.Pred VCCR:$mask))), 3453 (VTI.Vec (Inst (VTI.Vec MQPR:$Qd_src), (VTI.Vec MQPR:$Qn), 3454 (VTI.Vec MQPR:$Qm), imm:$rot, 3455 ARMVCCThen, (VTI.Pred VCCR:$mask)))>; 3456 3457 } 3458} 3459 3460defm MVE_VCMLAf16 : MVE_VCMLA_m<MVE_v8f16, 0b0>; 3461defm MVE_VCMLAf32 : MVE_VCMLA_m<MVE_v4f32, 0b1>; 3462 3463class MVE_VADDSUBFMA_fp<string iname, string suffix, bit size, bit bit_4, 3464 bit bit_8, bit bit_21, dag iops=(ins), 3465 vpred_ops vpred=vpred_r, string cstr="", 3466 list<dag> pattern=[]> 3467 : MVEFloatArithNeon<iname, suffix, size, (outs MQPR:$Qd), 3468 !con(iops, (ins MQPR:$Qn, MQPR:$Qm)), "$Qd, $Qn, $Qm", 3469 vpred, cstr, pattern> { 3470 bits<4> Qd; 3471 bits<4> Qn; 3472 3473 let Inst{28} = 0b0; 3474 let Inst{25-23} = 0b110; 3475 let Inst{22} = Qd{3}; 3476 let Inst{21} = bit_21; 3477 let Inst{19-17} = Qn{2-0}; 3478 let Inst{15-13} = Qd{2-0}; 3479 let Inst{11-9} = 0b110; 3480 let Inst{8} = bit_8; 3481 let Inst{7} = Qn{3}; 3482 let Inst{4} = bit_4; 3483 let validForTailPredication = 1; 3484} 3485 3486multiclass MVE_VFMA_fp_multi<string iname, bit fms, MVEVectorVTInfo VTI> { 3487 def "" : MVE_VADDSUBFMA_fp<iname, VTI.Suffix, VTI.Size{0}, 0b1, 0b0, fms, 3488 (ins MQPR:$Qd_src), vpred_n, "$Qd = $Qd_src">; 3489 defvar Inst = !cast<Instruction>(NAME); 3490 defvar pred_int = int_arm_mve_fma_predicated; 3491 defvar m1 = (VTI.Vec MQPR:$m1); 3492 defvar m2 = (VTI.Vec MQPR:$m2); 3493 defvar add = (VTI.Vec MQPR:$add); 3494 defvar pred = (VTI.Pred VCCR:$pred); 3495 3496 let Predicates = [HasMVEFloat] in { 3497 if fms then { 3498 def : Pat<(VTI.Vec (fma (fneg m1), m2, add)), (Inst $add, $m1, $m2)>; 3499 def : Pat<(VTI.Vec (fma m1, (fneg m2), add)), (Inst $add, $m1, $m2)>; 3500 def : Pat<(VTI.Vec (pred_int (fneg m1), m2, add, pred)), 3501 (Inst $add, $m1, $m2, ARMVCCThen, $pred)>; 3502 def : Pat<(VTI.Vec (pred_int m1, (fneg m2), add, pred)), 3503 (Inst $add, $m1, $m2, ARMVCCThen, $pred)>; 3504 } else { 3505 def : Pat<(VTI.Vec (fma m1, m2, add)), (Inst $add, $m1, $m2)>; 3506 def : Pat<(VTI.Vec (pred_int m1, m2, add, pred)), 3507 (Inst $add, $m1, $m2, ARMVCCThen, $pred)>; 3508 } 3509 } 3510} 3511 3512defm MVE_VFMAf32 : MVE_VFMA_fp_multi<"vfma", 0, MVE_v4f32>; 3513defm MVE_VFMAf16 : MVE_VFMA_fp_multi<"vfma", 0, MVE_v8f16>; 3514defm MVE_VFMSf32 : MVE_VFMA_fp_multi<"vfms", 1, MVE_v4f32>; 3515defm MVE_VFMSf16 : MVE_VFMA_fp_multi<"vfms", 1, MVE_v8f16>; 3516 3517multiclass MVE_VADDSUB_fp_m<string iname, bit bit_21, MVEVectorVTInfo VTI, 3518 SDNode unpred_op, Intrinsic pred_int> { 3519 def "" : MVE_VADDSUBFMA_fp<iname, VTI.Suffix, VTI.Size{0}, 0, 1, bit_21> { 3520 let validForTailPredication = 1; 3521 } 3522 defvar Inst = !cast<Instruction>(NAME); 3523 3524 let Predicates = [HasMVEFloat] in { 3525 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn))), 3526 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>; 3527 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 3528 (VTI.Pred VCCR:$mask), (VTI.Vec MQPR:$inactive))), 3529 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 3530 ARMVCCThen, (VTI.Pred VCCR:$mask), 3531 (VTI.Vec MQPR:$inactive)))>; 3532 } 3533} 3534 3535multiclass MVE_VADD_fp_m<MVEVectorVTInfo VTI> 3536 : MVE_VADDSUB_fp_m<"vadd", 0, VTI, fadd, int_arm_mve_add_predicated>; 3537multiclass MVE_VSUB_fp_m<MVEVectorVTInfo VTI> 3538 : MVE_VADDSUB_fp_m<"vsub", 1, VTI, fsub, int_arm_mve_sub_predicated>; 3539 3540defm MVE_VADDf32 : MVE_VADD_fp_m<MVE_v4f32>; 3541defm MVE_VADDf16 : MVE_VADD_fp_m<MVE_v8f16>; 3542 3543defm MVE_VSUBf32 : MVE_VSUB_fp_m<MVE_v4f32>; 3544defm MVE_VSUBf16 : MVE_VSUB_fp_m<MVE_v8f16>; 3545 3546class MVE_VCADD<string suffix, bit size, string cstr=""> 3547 : MVEFloatArithNeon<"vcadd", suffix, size, (outs MQPR:$Qd), 3548 (ins MQPR:$Qn, MQPR:$Qm, complexrotateopodd:$rot), 3549 "$Qd, $Qn, $Qm, $rot", vpred_r, cstr, []> { 3550 bits<4> Qd; 3551 bits<4> Qn; 3552 bit rot; 3553 3554 let Inst{28} = 0b1; 3555 let Inst{25} = 0b0; 3556 let Inst{24} = rot; 3557 let Inst{23} = 0b1; 3558 let Inst{22} = Qd{3}; 3559 let Inst{21} = 0b0; 3560 let Inst{19-17} = Qn{2-0}; 3561 let Inst{15-13} = Qd{2-0}; 3562 let Inst{12-8} = 0b01000; 3563 let Inst{7} = Qn{3}; 3564 let Inst{4} = 0b0; 3565} 3566 3567multiclass MVE_VCADD_m<MVEVectorVTInfo VTI, bit size, string cstr=""> { 3568 def "" : MVE_VCADD<VTI.Suffix, size, cstr>; 3569 defvar Inst = !cast<Instruction>(NAME); 3570 3571 let Predicates = [HasMVEFloat] in { 3572 def : Pat<(VTI.Vec (int_arm_mve_vcaddq (i32 1), 3573 imm:$rot, (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm))), 3574 (VTI.Vec (Inst (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm), 3575 imm:$rot))>; 3576 3577 def : Pat<(VTI.Vec (int_arm_mve_vcaddq_predicated (i32 1), 3578 imm:$rot, (VTI.Vec MQPR:$inactive), 3579 (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm), 3580 (VTI.Pred VCCR:$mask))), 3581 (VTI.Vec (Inst (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm), 3582 imm:$rot, ARMVCCThen, (VTI.Pred VCCR:$mask), 3583 (VTI.Vec MQPR:$inactive)))>; 3584 3585 } 3586} 3587 3588defm MVE_VCADDf16 : MVE_VCADD_m<MVE_v8f16, 0b0>; 3589defm MVE_VCADDf32 : MVE_VCADD_m<MVE_v4f32, 0b1, "@earlyclobber $Qd">; 3590 3591class MVE_VABD_fp<string suffix, bit size> 3592 : MVE_float<"vabd", suffix, (outs MQPR:$Qd), (ins MQPR:$Qn, MQPR:$Qm), 3593 "$Qd, $Qn, $Qm", vpred_r, ""> { 3594 bits<4> Qd; 3595 bits<4> Qn; 3596 3597 let Inst{28} = 0b1; 3598 let Inst{25-23} = 0b110; 3599 let Inst{22} = Qd{3}; 3600 let Inst{21} = 0b1; 3601 let Inst{20} = size; 3602 let Inst{19-17} = Qn{2-0}; 3603 let Inst{16} = 0b0; 3604 let Inst{15-13} = Qd{2-0}; 3605 let Inst{11-8} = 0b1101; 3606 let Inst{7} = Qn{3}; 3607 let Inst{4} = 0b0; 3608 let validForTailPredication = 1; 3609} 3610 3611multiclass MVE_VABDT_fp_m<MVEVectorVTInfo VTI, 3612 Intrinsic unpred_int, Intrinsic pred_int> { 3613 def "" : MVE_VABD_fp<VTI.Suffix, VTI.Size{0}>; 3614 defvar Inst = !cast<Instruction>(NAME); 3615 3616 let Predicates = [HasMVEFloat] in { 3617 def : Pat<(VTI.Vec (unpred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 3618 (i32 0))), 3619 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>; 3620 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 3621 (i32 0), (VTI.Pred VCCR:$mask), 3622 (VTI.Vec MQPR:$inactive))), 3623 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 3624 ARMVCCThen, (VTI.Pred VCCR:$mask), 3625 (VTI.Vec MQPR:$inactive)))>; 3626 } 3627} 3628 3629multiclass MVE_VABD_fp_m<MVEVectorVTInfo VTI> 3630 : MVE_VABDT_fp_m<VTI, int_arm_mve_vabd, int_arm_mve_abd_predicated>; 3631 3632defm MVE_VABDf32 : MVE_VABD_fp_m<MVE_v4f32>; 3633defm MVE_VABDf16 : MVE_VABD_fp_m<MVE_v8f16>; 3634 3635class MVE_VCVT_fix<string suffix, bit fsi, bit U, bit op, 3636 Operand imm_operand_type> 3637 : MVE_float<"vcvt", suffix, 3638 (outs MQPR:$Qd), (ins MQPR:$Qm, imm_operand_type:$imm6), 3639 "$Qd, $Qm, $imm6", vpred_r, "", []> { 3640 bits<4> Qd; 3641 bits<6> imm6; 3642 3643 let Inst{28} = U; 3644 let Inst{25-23} = 0b111; 3645 let Inst{22} = Qd{3}; 3646 let Inst{21} = 0b1; 3647 let Inst{19-16} = imm6{3-0}; 3648 let Inst{15-13} = Qd{2-0}; 3649 let Inst{11-10} = 0b11; 3650 let Inst{9} = fsi; 3651 let Inst{8} = op; 3652 let Inst{7} = 0b0; 3653 let Inst{4} = 0b1; 3654 3655 let DecoderMethod = "DecodeMVEVCVTt1fp"; 3656 let validForTailPredication = 1; 3657} 3658 3659class MVE_VCVT_imm_asmop<int Bits> : AsmOperandClass { 3660 let PredicateMethod = "isImmediate<1," # Bits # ">"; 3661 let DiagnosticString = 3662 "MVE fixed-point immediate operand must be between 1 and " # Bits; 3663 let Name = "MVEVcvtImm" # Bits; 3664 let RenderMethod = "addImmOperands"; 3665} 3666class MVE_VCVT_imm<int Bits>: Operand<i32> { 3667 let ParserMatchClass = MVE_VCVT_imm_asmop<Bits>; 3668 let EncoderMethod = "getNEONVcvtImm32OpValue"; 3669 let DecoderMethod = "DecodeVCVTImmOperand"; 3670} 3671 3672class MVE_VCVT_fix_f32<string suffix, bit U, bit op> 3673 : MVE_VCVT_fix<suffix, 0b1, U, op, MVE_VCVT_imm<32>> { 3674 let Inst{20} = imm6{4}; 3675} 3676class MVE_VCVT_fix_f16<string suffix, bit U, bit op> 3677 : MVE_VCVT_fix<suffix, 0b0, U, op, MVE_VCVT_imm<16>> { 3678 let Inst{20} = 0b1; 3679} 3680 3681multiclass MVE_VCVT_fix_patterns<Instruction Inst, bit U, MVEVectorVTInfo DestVTI, 3682 MVEVectorVTInfo SrcVTI> { 3683 let Predicates = [HasMVEFloat] in { 3684 def : Pat<(DestVTI.Vec (int_arm_mve_vcvt_fix 3685 (i32 U), (SrcVTI.Vec MQPR:$Qm), imm:$scale)), 3686 (DestVTI.Vec (Inst (SrcVTI.Vec MQPR:$Qm), imm:$scale))>; 3687 def : Pat<(DestVTI.Vec (int_arm_mve_vcvt_fix_predicated (i32 U), 3688 (DestVTI.Vec MQPR:$inactive), 3689 (SrcVTI.Vec MQPR:$Qm), 3690 imm:$scale, 3691 (DestVTI.Pred VCCR:$mask))), 3692 (DestVTI.Vec (Inst (SrcVTI.Vec MQPR:$Qm), imm:$scale, 3693 ARMVCCThen, (DestVTI.Pred VCCR:$mask), 3694 (DestVTI.Vec MQPR:$inactive)))>; 3695 } 3696} 3697 3698multiclass MVE_VCVT_fix_f32_m<bit U, bit op, 3699 MVEVectorVTInfo DestVTI, MVEVectorVTInfo SrcVTI> { 3700 def "" : MVE_VCVT_fix_f32<DestVTI.Suffix#"."#SrcVTI.Suffix, U, op>; 3701 defm : MVE_VCVT_fix_patterns<!cast<Instruction>(NAME), U, DestVTI, SrcVTI>; 3702} 3703 3704multiclass MVE_VCVT_fix_f16_m<bit U, bit op, 3705 MVEVectorVTInfo DestVTI, MVEVectorVTInfo SrcVTI> { 3706 def "" : MVE_VCVT_fix_f16<DestVTI.Suffix#"."#SrcVTI.Suffix, U, op>; 3707 defm : MVE_VCVT_fix_patterns<!cast<Instruction>(NAME), U, DestVTI, SrcVTI>; 3708} 3709 3710defm MVE_VCVTf16s16_fix : MVE_VCVT_fix_f16_m<0b0, 0b0, MVE_v8f16, MVE_v8s16>; 3711defm MVE_VCVTs16f16_fix : MVE_VCVT_fix_f16_m<0b0, 0b1, MVE_v8s16, MVE_v8f16>; 3712defm MVE_VCVTf16u16_fix : MVE_VCVT_fix_f16_m<0b1, 0b0, MVE_v8f16, MVE_v8u16>; 3713defm MVE_VCVTu16f16_fix : MVE_VCVT_fix_f16_m<0b1, 0b1, MVE_v8u16, MVE_v8f16>; 3714defm MVE_VCVTf32s32_fix : MVE_VCVT_fix_f32_m<0b0, 0b0, MVE_v4f32, MVE_v4s32>; 3715defm MVE_VCVTs32f32_fix : MVE_VCVT_fix_f32_m<0b0, 0b1, MVE_v4s32, MVE_v4f32>; 3716defm MVE_VCVTf32u32_fix : MVE_VCVT_fix_f32_m<0b1, 0b0, MVE_v4f32, MVE_v4u32>; 3717defm MVE_VCVTu32f32_fix : MVE_VCVT_fix_f32_m<0b1, 0b1, MVE_v4u32, MVE_v4f32>; 3718 3719class MVE_VCVT_fp_int_anpm<string suffix, bits<2> size, bit op, string anpm, 3720 bits<2> rm, list<dag> pattern=[]> 3721 : MVE_float<!strconcat("vcvt", anpm), suffix, (outs MQPR:$Qd), 3722 (ins MQPR:$Qm), "$Qd, $Qm", vpred_r, "", pattern> { 3723 bits<4> Qd; 3724 3725 let Inst{28} = 0b1; 3726 let Inst{25-23} = 0b111; 3727 let Inst{22} = Qd{3}; 3728 let Inst{21-20} = 0b11; 3729 let Inst{19-18} = size; 3730 let Inst{17-16} = 0b11; 3731 let Inst{15-13} = Qd{2-0}; 3732 let Inst{12-10} = 0b000; 3733 let Inst{9-8} = rm; 3734 let Inst{7} = op; 3735 let Inst{4} = 0b0; 3736 let validForTailPredication = 1; 3737} 3738 3739multiclass MVE_VCVT_fp_int_anpm_inner<MVEVectorVTInfo Int, MVEVectorVTInfo Flt, 3740 string anpm, bits<2> rm> { 3741 def "": MVE_VCVT_fp_int_anpm<Int.Suffix # "." # Flt.Suffix, Int.Size, 3742 Int.Unsigned, anpm, rm>; 3743 3744 defvar Inst = !cast<Instruction>(NAME); 3745 defvar IntrBaseName = "int_arm_mve_vcvt" # anpm; 3746 defvar UnpredIntr = !cast<Intrinsic>(IntrBaseName); 3747 defvar PredIntr = !cast<Intrinsic>(IntrBaseName # "_predicated"); 3748 3749 let Predicates = [HasMVEFloat] in { 3750 def : Pat<(Int.Vec (UnpredIntr (i32 Int.Unsigned), (Flt.Vec MQPR:$in))), 3751 (Int.Vec (Inst (Flt.Vec MQPR:$in)))>; 3752 3753 def : Pat<(Int.Vec (PredIntr (i32 Int.Unsigned), (Int.Vec MQPR:$inactive), 3754 (Flt.Vec MQPR:$in), (Flt.Pred VCCR:$pred))), 3755 (Int.Vec (Inst (Flt.Vec MQPR:$in), ARMVCCThen, 3756 (Flt.Pred VCCR:$pred), (Int.Vec MQPR:$inactive)))>; 3757 } 3758} 3759 3760multiclass MVE_VCVT_fp_int_anpm_outer<MVEVectorVTInfo Int, 3761 MVEVectorVTInfo Flt> { 3762 defm a : MVE_VCVT_fp_int_anpm_inner<Int, Flt, "a", 0b00>; 3763 defm n : MVE_VCVT_fp_int_anpm_inner<Int, Flt, "n", 0b01>; 3764 defm p : MVE_VCVT_fp_int_anpm_inner<Int, Flt, "p", 0b10>; 3765 defm m : MVE_VCVT_fp_int_anpm_inner<Int, Flt, "m", 0b11>; 3766} 3767 3768// This defines instructions such as MVE_VCVTu16f16a, with an explicit 3769// rounding-mode suffix on the mnemonic. The class below will define 3770// the bare MVE_VCVTu16f16 (with implied rounding toward zero). 3771defm MVE_VCVTs16f16 : MVE_VCVT_fp_int_anpm_outer<MVE_v8s16, MVE_v8f16>; 3772defm MVE_VCVTu16f16 : MVE_VCVT_fp_int_anpm_outer<MVE_v8u16, MVE_v8f16>; 3773defm MVE_VCVTs32f32 : MVE_VCVT_fp_int_anpm_outer<MVE_v4s32, MVE_v4f32>; 3774defm MVE_VCVTu32f32 : MVE_VCVT_fp_int_anpm_outer<MVE_v4u32, MVE_v4f32>; 3775 3776class MVE_VCVT_fp_int<string suffix, bits<2> size, bit toint, bit unsigned, 3777 list<dag> pattern=[]> 3778 : MVE_float<"vcvt", suffix, (outs MQPR:$Qd), 3779 (ins MQPR:$Qm), "$Qd, $Qm", vpred_r, "", pattern> { 3780 bits<4> Qd; 3781 3782 let Inst{28} = 0b1; 3783 let Inst{25-23} = 0b111; 3784 let Inst{22} = Qd{3}; 3785 let Inst{21-20} = 0b11; 3786 let Inst{19-18} = size; 3787 let Inst{17-16} = 0b11; 3788 let Inst{15-13} = Qd{2-0}; 3789 let Inst{12-9} = 0b0011; 3790 let Inst{8} = toint; 3791 let Inst{7} = unsigned; 3792 let Inst{4} = 0b0; 3793 let validForTailPredication = 1; 3794} 3795 3796multiclass MVE_VCVT_fp_int_m<MVEVectorVTInfo Dest, MVEVectorVTInfo Src, 3797 SDNode unpred_op> { 3798 defvar Unsigned = !or(!eq(Dest.SuffixLetter,"u"), !eq(Src.SuffixLetter,"u")); 3799 defvar ToInt = !eq(Src.SuffixLetter,"f"); 3800 3801 def "" : MVE_VCVT_fp_int<Dest.Suffix # "." # Src.Suffix, Dest.Size, 3802 ToInt, Unsigned>; 3803 defvar Inst = !cast<Instruction>(NAME); 3804 3805 let Predicates = [HasMVEFloat] in { 3806 def : Pat<(Dest.Vec (unpred_op (Src.Vec MQPR:$src))), 3807 (Dest.Vec (Inst (Src.Vec MQPR:$src)))>; 3808 def : Pat<(Dest.Vec (int_arm_mve_vcvt_fp_int_predicated 3809 (Src.Vec MQPR:$src), (i32 Unsigned), 3810 (Src.Pred VCCR:$mask), (Dest.Vec MQPR:$inactive))), 3811 (Dest.Vec (Inst (Src.Vec MQPR:$src), ARMVCCThen, 3812 (Src.Pred VCCR:$mask), 3813 (Dest.Vec MQPR:$inactive)))>; 3814 } 3815} 3816// The unsuffixed VCVT for float->int implicitly rounds toward zero, 3817// which I reflect here in the llvm instruction names 3818defm MVE_VCVTs16f16z : MVE_VCVT_fp_int_m<MVE_v8s16, MVE_v8f16, fp_to_sint>; 3819defm MVE_VCVTu16f16z : MVE_VCVT_fp_int_m<MVE_v8u16, MVE_v8f16, fp_to_uint>; 3820defm MVE_VCVTs32f32z : MVE_VCVT_fp_int_m<MVE_v4s32, MVE_v4f32, fp_to_sint>; 3821defm MVE_VCVTu32f32z : MVE_VCVT_fp_int_m<MVE_v4u32, MVE_v4f32, fp_to_uint>; 3822// Whereas VCVT for int->float rounds to nearest 3823defm MVE_VCVTf16s16n : MVE_VCVT_fp_int_m<MVE_v8f16, MVE_v8s16, sint_to_fp>; 3824defm MVE_VCVTf16u16n : MVE_VCVT_fp_int_m<MVE_v8f16, MVE_v8u16, uint_to_fp>; 3825defm MVE_VCVTf32s32n : MVE_VCVT_fp_int_m<MVE_v4f32, MVE_v4s32, sint_to_fp>; 3826defm MVE_VCVTf32u32n : MVE_VCVT_fp_int_m<MVE_v4f32, MVE_v4u32, uint_to_fp>; 3827 3828class MVE_VABSNEG_fp<string iname, string suffix, bits<2> size, bit negate, 3829 list<dag> pattern=[]> 3830 : MVE_float<iname, suffix, (outs MQPR:$Qd), 3831 (ins MQPR:$Qm), "$Qd, $Qm", vpred_r, "", pattern> { 3832 bits<4> Qd; 3833 3834 let Inst{28} = 0b1; 3835 let Inst{25-23} = 0b111; 3836 let Inst{22} = Qd{3}; 3837 let Inst{21-20} = 0b11; 3838 let Inst{19-18} = size; 3839 let Inst{17-16} = 0b01; 3840 let Inst{15-13} = Qd{2-0}; 3841 let Inst{11-8} = 0b0111; 3842 let Inst{7} = negate; 3843 let Inst{4} = 0b0; 3844 let validForTailPredication = 1; 3845} 3846 3847multiclass MVE_VABSNEG_fp_m<string iname, SDNode unpred_op, Intrinsic pred_int, 3848 MVEVectorVTInfo VTI, bit opcode> { 3849 def "" : MVE_VABSNEG_fp<iname, VTI.Suffix, VTI.Size, opcode>; 3850 defvar Inst = !cast<Instruction>(NAME); 3851 3852 let Predicates = [HasMVEInt] in { 3853 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$v))), (VTI.Vec (Inst $v))>; 3854 3855 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$v), (VTI.Pred VCCR:$mask), 3856 (VTI.Vec MQPR:$inactive))), 3857 (VTI.Vec (Inst $v, ARMVCCThen, $mask, $inactive))>; 3858 } 3859} 3860 3861defm MVE_VABSf16 : MVE_VABSNEG_fp_m<"vabs", fabs, int_arm_mve_abs_predicated, 3862 MVE_v8f16, 0>; 3863defm MVE_VABSf32 : MVE_VABSNEG_fp_m<"vabs", fabs, int_arm_mve_abs_predicated, 3864 MVE_v4f32, 0>; 3865defm MVE_VNEGf16 : MVE_VABSNEG_fp_m<"vneg", fneg, int_arm_mve_neg_predicated, 3866 MVE_v8f16, 1>; 3867defm MVE_VNEGf32 : MVE_VABSNEG_fp_m<"vneg", fneg, int_arm_mve_neg_predicated, 3868 MVE_v4f32, 1>; 3869 3870class MVE_VMAXMINNMA<string iname, string suffix, bit size, bit bit_12, 3871 list<dag> pattern=[]> 3872 : MVE_f<(outs MQPR:$Qd), (ins MQPR:$Qd_src, MQPR:$Qm), 3873 NoItinerary, iname, suffix, "$Qd, $Qm", vpred_n, "$Qd = $Qd_src", 3874 pattern> { 3875 bits<4> Qd; 3876 bits<4> Qm; 3877 3878 let Inst{28} = size; 3879 let Inst{25-23} = 0b100; 3880 let Inst{22} = Qd{3}; 3881 let Inst{21-16} = 0b111111; 3882 let Inst{15-13} = Qd{2-0}; 3883 let Inst{12} = bit_12; 3884 let Inst{11-6} = 0b111010; 3885 let Inst{5} = Qm{3}; 3886 let Inst{4} = 0b0; 3887 let Inst{3-1} = Qm{2-0}; 3888 let Inst{0} = 0b1; 3889} 3890 3891multiclass MVE_VMAXMINNMA_m<string iname, MVEVectorVTInfo VTI, 3892 SDNode unpred_op, Intrinsic pred_int, 3893 bit bit_12> { 3894 def "" : MVE_VMAXMINNMA<iname, VTI.Suffix, VTI.Size{0}, bit_12>; 3895 defvar Inst = !cast<Instruction>(NAME); 3896 3897 let Predicates = [HasMVEInt] in { 3898 // Unpredicated v(max|min)nma 3899 def : Pat<(VTI.Vec (unpred_op (fabs (VTI.Vec MQPR:$Qd)), 3900 (fabs (VTI.Vec MQPR:$Qm)))), 3901 (VTI.Vec (Inst (VTI.Vec MQPR:$Qd), (VTI.Vec MQPR:$Qm)))>; 3902 3903 // Predicated v(max|min)nma 3904 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qd), (VTI.Vec MQPR:$Qm), 3905 (VTI.Pred VCCR:$mask))), 3906 (VTI.Vec (Inst (VTI.Vec MQPR:$Qd), (VTI.Vec MQPR:$Qm), 3907 ARMVCCThen, (VTI.Pred VCCR:$mask)))>; 3908 } 3909} 3910 3911multiclass MVE_VMAXNMA<MVEVectorVTInfo VTI, bit bit_12> 3912 : MVE_VMAXMINNMA_m<"vmaxnma", VTI, fmaxnum, int_arm_mve_vmaxnma_predicated, bit_12>; 3913 3914defm MVE_VMAXNMAf32 : MVE_VMAXNMA<MVE_v4f32, 0b0>; 3915defm MVE_VMAXNMAf16 : MVE_VMAXNMA<MVE_v8f16, 0b0>; 3916 3917multiclass MVE_VMINNMA<MVEVectorVTInfo VTI, bit bit_12> 3918 : MVE_VMAXMINNMA_m<"vminnma", VTI, fminnum, int_arm_mve_vminnma_predicated, bit_12>; 3919 3920defm MVE_VMINNMAf32 : MVE_VMINNMA<MVE_v4f32, 0b1>; 3921defm MVE_VMINNMAf16 : MVE_VMINNMA<MVE_v8f16, 0b1>; 3922 3923// end of MVE Floating Point instructions 3924 3925// start of MVE compares 3926 3927class MVE_VCMPqq<string suffix, bit bit_28, bits<2> bits_21_20, 3928 VCMPPredicateOperand predtype, list<dag> pattern=[]> 3929 : MVE_p<(outs VCCR:$P0), (ins MQPR:$Qn, MQPR:$Qm, predtype:$fc), 3930 NoItinerary, "vcmp", suffix, "$fc, $Qn, $Qm", vpred_n, "", pattern> { 3931 // Base class for comparing two vector registers 3932 bits<3> fc; 3933 bits<4> Qn; 3934 bits<4> Qm; 3935 3936 let Inst{28} = bit_28; 3937 let Inst{25-22} = 0b1000; 3938 let Inst{21-20} = bits_21_20; 3939 let Inst{19-17} = Qn{2-0}; 3940 let Inst{16-13} = 0b1000; 3941 let Inst{12} = fc{2}; 3942 let Inst{11-8} = 0b1111; 3943 let Inst{7} = fc{0}; 3944 let Inst{6} = 0b0; 3945 let Inst{5} = Qm{3}; 3946 let Inst{4} = 0b0; 3947 let Inst{3-1} = Qm{2-0}; 3948 let Inst{0} = fc{1}; 3949 3950 let Constraints = ""; 3951 3952 // We need a custom decoder method for these instructions because of 3953 // the output VCCR operand, which isn't encoded in the instruction 3954 // bits anywhere (there is only one choice for it) but has to be 3955 // included in the MC operands so that codegen will be able to track 3956 // its data flow between instructions, spill/reload it when 3957 // necessary, etc. There seems to be no way to get the Tablegen 3958 // decoder to emit an operand that isn't affected by any instruction 3959 // bit. 3960 let DecoderMethod = "DecodeMVEVCMP<false," # predtype.DecoderMethod # ">"; 3961 let validForTailPredication = 1; 3962} 3963 3964class MVE_VCMPqqf<string suffix, bit size> 3965 : MVE_VCMPqq<suffix, size, 0b11, pred_basic_fp> { 3966 let Predicates = [HasMVEFloat]; 3967} 3968 3969class MVE_VCMPqqi<string suffix, bits<2> size> 3970 : MVE_VCMPqq<suffix, 0b1, size, pred_basic_i> { 3971 let Inst{12} = 0b0; 3972 let Inst{0} = 0b0; 3973} 3974 3975class MVE_VCMPqqu<string suffix, bits<2> size> 3976 : MVE_VCMPqq<suffix, 0b1, size, pred_basic_u> { 3977 let Inst{12} = 0b0; 3978 let Inst{0} = 0b1; 3979} 3980 3981class MVE_VCMPqqs<string suffix, bits<2> size> 3982 : MVE_VCMPqq<suffix, 0b1, size, pred_basic_s> { 3983 let Inst{12} = 0b1; 3984} 3985 3986def MVE_VCMPf32 : MVE_VCMPqqf<"f32", 0b0>; 3987def MVE_VCMPf16 : MVE_VCMPqqf<"f16", 0b1>; 3988 3989def MVE_VCMPi8 : MVE_VCMPqqi<"i8", 0b00>; 3990def MVE_VCMPi16 : MVE_VCMPqqi<"i16", 0b01>; 3991def MVE_VCMPi32 : MVE_VCMPqqi<"i32", 0b10>; 3992 3993def MVE_VCMPu8 : MVE_VCMPqqu<"u8", 0b00>; 3994def MVE_VCMPu16 : MVE_VCMPqqu<"u16", 0b01>; 3995def MVE_VCMPu32 : MVE_VCMPqqu<"u32", 0b10>; 3996 3997def MVE_VCMPs8 : MVE_VCMPqqs<"s8", 0b00>; 3998def MVE_VCMPs16 : MVE_VCMPqqs<"s16", 0b01>; 3999def MVE_VCMPs32 : MVE_VCMPqqs<"s32", 0b10>; 4000 4001class MVE_VCMPqr<string suffix, bit bit_28, bits<2> bits_21_20, 4002 VCMPPredicateOperand predtype, list<dag> pattern=[]> 4003 : MVE_p<(outs VCCR:$P0), (ins MQPR:$Qn, GPRwithZR:$Rm, predtype:$fc), 4004 NoItinerary, "vcmp", suffix, "$fc, $Qn, $Rm", vpred_n, "", pattern> { 4005 // Base class for comparing a vector register with a scalar 4006 bits<3> fc; 4007 bits<4> Qn; 4008 bits<4> Rm; 4009 4010 let Inst{28} = bit_28; 4011 let Inst{25-22} = 0b1000; 4012 let Inst{21-20} = bits_21_20; 4013 let Inst{19-17} = Qn{2-0}; 4014 let Inst{16-13} = 0b1000; 4015 let Inst{12} = fc{2}; 4016 let Inst{11-8} = 0b1111; 4017 let Inst{7} = fc{0}; 4018 let Inst{6} = 0b1; 4019 let Inst{5} = fc{1}; 4020 let Inst{4} = 0b0; 4021 let Inst{3-0} = Rm{3-0}; 4022 4023 let Constraints = ""; 4024 // Custom decoder method, for the same reason as MVE_VCMPqq 4025 let DecoderMethod = "DecodeMVEVCMP<true," # predtype.DecoderMethod # ">"; 4026 let validForTailPredication = 1; 4027} 4028 4029class MVE_VCMPqrf<string suffix, bit size> 4030 : MVE_VCMPqr<suffix, size, 0b11, pred_basic_fp> { 4031 let Predicates = [HasMVEFloat]; 4032} 4033 4034class MVE_VCMPqri<string suffix, bits<2> size> 4035 : MVE_VCMPqr<suffix, 0b1, size, pred_basic_i> { 4036 let Inst{12} = 0b0; 4037 let Inst{5} = 0b0; 4038} 4039 4040class MVE_VCMPqru<string suffix, bits<2> size> 4041 : MVE_VCMPqr<suffix, 0b1, size, pred_basic_u> { 4042 let Inst{12} = 0b0; 4043 let Inst{5} = 0b1; 4044} 4045 4046class MVE_VCMPqrs<string suffix, bits<2> size> 4047 : MVE_VCMPqr<suffix, 0b1, size, pred_basic_s> { 4048 let Inst{12} = 0b1; 4049} 4050 4051def MVE_VCMPf32r : MVE_VCMPqrf<"f32", 0b0>; 4052def MVE_VCMPf16r : MVE_VCMPqrf<"f16", 0b1>; 4053 4054def MVE_VCMPi8r : MVE_VCMPqri<"i8", 0b00>; 4055def MVE_VCMPi16r : MVE_VCMPqri<"i16", 0b01>; 4056def MVE_VCMPi32r : MVE_VCMPqri<"i32", 0b10>; 4057 4058def MVE_VCMPu8r : MVE_VCMPqru<"u8", 0b00>; 4059def MVE_VCMPu16r : MVE_VCMPqru<"u16", 0b01>; 4060def MVE_VCMPu32r : MVE_VCMPqru<"u32", 0b10>; 4061 4062def MVE_VCMPs8r : MVE_VCMPqrs<"s8", 0b00>; 4063def MVE_VCMPs16r : MVE_VCMPqrs<"s16", 0b01>; 4064def MVE_VCMPs32r : MVE_VCMPqrs<"s32", 0b10>; 4065 4066multiclass unpred_vcmp_z<string suffix, PatLeaf fc> { 4067 def i8 : Pat<(v16i1 (ARMvcmpz (v16i8 MQPR:$v1), fc)), 4068 (v16i1 (!cast<Instruction>("MVE_VCMP"#suffix#"8r") (v16i8 MQPR:$v1), ZR, fc))>; 4069 def i16 : Pat<(v8i1 (ARMvcmpz (v8i16 MQPR:$v1), fc)), 4070 (v8i1 (!cast<Instruction>("MVE_VCMP"#suffix#"16r") (v8i16 MQPR:$v1), ZR, fc))>; 4071 def i32 : Pat<(v4i1 (ARMvcmpz (v4i32 MQPR:$v1), fc)), 4072 (v4i1 (!cast<Instruction>("MVE_VCMP"#suffix#"32r") (v4i32 MQPR:$v1), ZR, fc))>; 4073 4074 def : Pat<(v16i1 (and (v16i1 VCCR:$p1), (v16i1 (ARMvcmpz (v16i8 MQPR:$v1), fc)))), 4075 (v16i1 (!cast<Instruction>("MVE_VCMP"#suffix#"8r") (v16i8 MQPR:$v1), ZR, fc, ARMVCCThen, VCCR:$p1))>; 4076 def : Pat<(v8i1 (and (v8i1 VCCR:$p1), (v8i1 (ARMvcmpz (v8i16 MQPR:$v1), fc)))), 4077 (v8i1 (!cast<Instruction>("MVE_VCMP"#suffix#"16r") (v8i16 MQPR:$v1), ZR, fc, ARMVCCThen, VCCR:$p1))>; 4078 def : Pat<(v4i1 (and (v4i1 VCCR:$p1), (v4i1 (ARMvcmpz (v4i32 MQPR:$v1), fc)))), 4079 (v4i1 (!cast<Instruction>("MVE_VCMP"#suffix#"32r") (v4i32 MQPR:$v1), ZR, fc, ARMVCCThen, VCCR:$p1))>; 4080} 4081 4082multiclass unpred_vcmp_r<string suffix, PatLeaf fc> { 4083 def i8 : Pat<(v16i1 (ARMvcmp (v16i8 MQPR:$v1), (v16i8 MQPR:$v2), fc)), 4084 (v16i1 (!cast<Instruction>("MVE_VCMP"#suffix#"8") (v16i8 MQPR:$v1), (v16i8 MQPR:$v2), fc))>; 4085 def i16 : Pat<(v8i1 (ARMvcmp (v8i16 MQPR:$v1), (v8i16 MQPR:$v2), fc)), 4086 (v8i1 (!cast<Instruction>("MVE_VCMP"#suffix#"16") (v8i16 MQPR:$v1), (v8i16 MQPR:$v2), fc))>; 4087 def i32 : Pat<(v4i1 (ARMvcmp (v4i32 MQPR:$v1), (v4i32 MQPR:$v2), fc)), 4088 (v4i1 (!cast<Instruction>("MVE_VCMP"#suffix#"32") (v4i32 MQPR:$v1), (v4i32 MQPR:$v2), fc))>; 4089 4090 def i8r : Pat<(v16i1 (ARMvcmp (v16i8 MQPR:$v1), (v16i8 (ARMvdup rGPR:$v2)), fc)), 4091 (v16i1 (!cast<Instruction>("MVE_VCMP"#suffix#"8r") (v16i8 MQPR:$v1), (i32 rGPR:$v2), fc))>; 4092 def i16r : Pat<(v8i1 (ARMvcmp (v8i16 MQPR:$v1), (v8i16 (ARMvdup rGPR:$v2)), fc)), 4093 (v8i1 (!cast<Instruction>("MVE_VCMP"#suffix#"16r") (v8i16 MQPR:$v1), (i32 rGPR:$v2), fc))>; 4094 def i32r : Pat<(v4i1 (ARMvcmp (v4i32 MQPR:$v1), (v4i32 (ARMvdup rGPR:$v2)), fc)), 4095 (v4i1 (!cast<Instruction>("MVE_VCMP"#suffix#"32r") (v4i32 MQPR:$v1), (i32 rGPR:$v2), fc))>; 4096 4097 def : Pat<(v16i1 (and (v16i1 VCCR:$p1), (v16i1 (ARMvcmp (v16i8 MQPR:$v1), (v16i8 MQPR:$v2), fc)))), 4098 (v16i1 (!cast<Instruction>("MVE_VCMP"#suffix#"8") (v16i8 MQPR:$v1), (v16i8 MQPR:$v2), fc, ARMVCCThen, VCCR:$p1))>; 4099 def : Pat<(v8i1 (and (v8i1 VCCR:$p1), (v8i1 (ARMvcmp (v8i16 MQPR:$v1), (v8i16 MQPR:$v2), fc)))), 4100 (v8i1 (!cast<Instruction>("MVE_VCMP"#suffix#"16") (v8i16 MQPR:$v1), (v8i16 MQPR:$v2), fc, ARMVCCThen, VCCR:$p1))>; 4101 def : Pat<(v4i1 (and (v4i1 VCCR:$p1), (v4i1 (ARMvcmp (v4i32 MQPR:$v1), (v4i32 MQPR:$v2), fc)))), 4102 (v4i1 (!cast<Instruction>("MVE_VCMP"#suffix#"32") (v4i32 MQPR:$v1), (v4i32 MQPR:$v2), fc, ARMVCCThen, VCCR:$p1))>; 4103 4104 def : Pat<(v16i1 (and (v16i1 VCCR:$p1), (v16i1 (ARMvcmp (v16i8 MQPR:$v1), (v16i8 (ARMvdup rGPR:$v2)), fc)))), 4105 (v16i1 (!cast<Instruction>("MVE_VCMP"#suffix#"8r") (v16i8 MQPR:$v1), (i32 rGPR:$v2), fc, ARMVCCThen, VCCR:$p1))>; 4106 def : Pat<(v8i1 (and (v8i1 VCCR:$p1), (v8i1 (ARMvcmp (v8i16 MQPR:$v1), (v8i16 (ARMvdup rGPR:$v2)), fc)))), 4107 (v8i1 (!cast<Instruction>("MVE_VCMP"#suffix#"16r") (v8i16 MQPR:$v1), (i32 rGPR:$v2), fc, ARMVCCThen, VCCR:$p1))>; 4108 def : Pat<(v4i1 (and (v4i1 VCCR:$p1), (v4i1 (ARMvcmp (v4i32 MQPR:$v1), (v4i32 (ARMvdup rGPR:$v2)), fc)))), 4109 (v4i1 (!cast<Instruction>("MVE_VCMP"#suffix#"32r") (v4i32 MQPR:$v1), (i32 rGPR:$v2), fc, ARMVCCThen, VCCR:$p1))>; 4110} 4111 4112multiclass unpred_vcmpf_z<PatLeaf fc> { 4113 def f16 : Pat<(v8i1 (ARMvcmpz (v8f16 MQPR:$v1), fc)), 4114 (v8i1 (MVE_VCMPf16r (v8f16 MQPR:$v1), ZR, fc))>; 4115 def f32 : Pat<(v4i1 (ARMvcmpz (v4f32 MQPR:$v1), fc)), 4116 (v4i1 (MVE_VCMPf32r (v4f32 MQPR:$v1), ZR, fc))>; 4117 4118 def : Pat<(v8i1 (and (v8i1 VCCR:$p1), (v8i1 (ARMvcmpz (v8f16 MQPR:$v1), fc)))), 4119 (v8i1 (MVE_VCMPf16r (v8f16 MQPR:$v1), ZR, fc, ARMVCCThen, VCCR:$p1))>; 4120 def : Pat<(v4i1 (and (v4i1 VCCR:$p1), (v4i1 (ARMvcmpz (v4f32 MQPR:$v1), fc)))), 4121 (v4i1 (MVE_VCMPf32r (v4f32 MQPR:$v1), ZR, fc, ARMVCCThen, VCCR:$p1))>; 4122} 4123 4124multiclass unpred_vcmpf_r<int fc> { 4125 def : Pat<(v8i1 (ARMvcmp (v8f16 MQPR:$v1), (v8f16 MQPR:$v2), fc)), 4126 (v8i1 (MVE_VCMPf16 (v8f16 MQPR:$v1), (v8f16 MQPR:$v2), fc))>; 4127 def : Pat<(v4i1 (ARMvcmp (v4f32 MQPR:$v1), (v4f32 MQPR:$v2), fc)), 4128 (v4i1 (MVE_VCMPf32 (v4f32 MQPR:$v1), (v4f32 MQPR:$v2), fc))>; 4129 4130 def : Pat<(v8i1 (ARMvcmp (v8f16 MQPR:$v1), (v8f16 (ARMvdup rGPR:$v2)), fc)), 4131 (v8i1 (MVE_VCMPf16r (v8f16 MQPR:$v1), (i32 rGPR:$v2), fc))>; 4132 def : Pat<(v4i1 (ARMvcmp (v4f32 MQPR:$v1), (v4f32 (ARMvdup rGPR:$v2)), fc)), 4133 (v4i1 (MVE_VCMPf32r (v4f32 MQPR:$v1), (i32 rGPR:$v2), fc))>; 4134 4135 def : Pat<(v8i1 (and (v8i1 VCCR:$p1), (v8i1 (ARMvcmp (v8f16 MQPR:$v1), (v8f16 MQPR:$v2), fc)))), 4136 (v8i1 (MVE_VCMPf16 (v8f16 MQPR:$v1), (v8f16 MQPR:$v2), fc, ARMVCCThen, VCCR:$p1))>; 4137 def : Pat<(v4i1 (and (v4i1 VCCR:$p1), (v4i1 (ARMvcmp (v4f32 MQPR:$v1), (v4f32 MQPR:$v2), fc)))), 4138 (v4i1 (MVE_VCMPf32 (v4f32 MQPR:$v1), (v4f32 MQPR:$v2), fc, ARMVCCThen, VCCR:$p1))>; 4139 4140 def : Pat<(v8i1 (and (v8i1 VCCR:$p1), (v8i1 (ARMvcmp (v8f16 MQPR:$v1), (v8f16 (ARMvdup rGPR:$v2)), fc)))), 4141 (v8i1 (MVE_VCMPf16r (v8f16 MQPR:$v1), (i32 rGPR:$v2), fc, ARMVCCThen, VCCR:$p1))>; 4142 def : Pat<(v4i1 (and (v4i1 VCCR:$p1), (v4i1 (ARMvcmp (v4f32 MQPR:$v1), (v4f32 (ARMvdup rGPR:$v2)), fc)))), 4143 (v4i1 (MVE_VCMPf32r (v4f32 MQPR:$v1), (i32 rGPR:$v2), fc, ARMVCCThen, VCCR:$p1))>; 4144} 4145 4146let Predicates = [HasMVEInt] in { 4147 defm MVE_VCEQZ : unpred_vcmp_z<"i", ARMCCeq>; 4148 defm MVE_VCNEZ : unpred_vcmp_z<"i", ARMCCne>; 4149 defm MVE_VCGEZ : unpred_vcmp_z<"s", ARMCCge>; 4150 defm MVE_VCLTZ : unpred_vcmp_z<"s", ARMCClt>; 4151 defm MVE_VCGTZ : unpred_vcmp_z<"s", ARMCCgt>; 4152 defm MVE_VCLEZ : unpred_vcmp_z<"s", ARMCCle>; 4153 defm MVE_VCGTUZ : unpred_vcmp_z<"u", ARMCChi>; 4154 defm MVE_VCGEUZ : unpred_vcmp_z<"u", ARMCChs>; 4155 4156 defm MVE_VCEQ : unpred_vcmp_r<"i", ARMCCeq>; 4157 defm MVE_VCNE : unpred_vcmp_r<"i", ARMCCne>; 4158 defm MVE_VCGE : unpred_vcmp_r<"s", ARMCCge>; 4159 defm MVE_VCLT : unpred_vcmp_r<"s", ARMCClt>; 4160 defm MVE_VCGT : unpred_vcmp_r<"s", ARMCCgt>; 4161 defm MVE_VCLE : unpred_vcmp_r<"s", ARMCCle>; 4162 defm MVE_VCGTU : unpred_vcmp_r<"u", ARMCChi>; 4163 defm MVE_VCGEU : unpred_vcmp_r<"u", ARMCChs>; 4164} 4165 4166let Predicates = [HasMVEFloat] in { 4167 defm MVE_VFCEQZ : unpred_vcmpf_z<ARMCCeq>; 4168 defm MVE_VFCNEZ : unpred_vcmpf_z<ARMCCne>; 4169 defm MVE_VFCGEZ : unpred_vcmpf_z<ARMCCge>; 4170 defm MVE_VFCLTZ : unpred_vcmpf_z<ARMCClt>; 4171 defm MVE_VFCGTZ : unpred_vcmpf_z<ARMCCgt>; 4172 defm MVE_VFCLEZ : unpred_vcmpf_z<ARMCCle>; 4173 4174 defm MVE_VFCEQ : unpred_vcmpf_r<ARMCCeq>; 4175 defm MVE_VFCNE : unpred_vcmpf_r<ARMCCne>; 4176 defm MVE_VFCGE : unpred_vcmpf_r<ARMCCge>; 4177 defm MVE_VFCLT : unpred_vcmpf_r<ARMCClt>; 4178 defm MVE_VFCGT : unpred_vcmpf_r<ARMCCgt>; 4179 defm MVE_VFCLE : unpred_vcmpf_r<ARMCCle>; 4180} 4181 4182 4183// Extra "worst case" and/or/xor partterns, going into and out of GRP 4184multiclass two_predops<SDPatternOperator opnode, Instruction insn> { 4185 def v16i1 : Pat<(v16i1 (opnode (v16i1 VCCR:$p1), (v16i1 VCCR:$p2))), 4186 (v16i1 (COPY_TO_REGCLASS 4187 (insn (i32 (COPY_TO_REGCLASS (v16i1 VCCR:$p1), rGPR)), 4188 (i32 (COPY_TO_REGCLASS (v16i1 VCCR:$p2), rGPR))), 4189 VCCR))>; 4190 def v8i1 : Pat<(v8i1 (opnode (v8i1 VCCR:$p1), (v8i1 VCCR:$p2))), 4191 (v8i1 (COPY_TO_REGCLASS 4192 (insn (i32 (COPY_TO_REGCLASS (v8i1 VCCR:$p1), rGPR)), 4193 (i32 (COPY_TO_REGCLASS (v8i1 VCCR:$p2), rGPR))), 4194 VCCR))>; 4195 def v4i1 : Pat<(v4i1 (opnode (v4i1 VCCR:$p1), (v4i1 VCCR:$p2))), 4196 (v4i1 (COPY_TO_REGCLASS 4197 (insn (i32 (COPY_TO_REGCLASS (v4i1 VCCR:$p1), rGPR)), 4198 (i32 (COPY_TO_REGCLASS (v4i1 VCCR:$p2), rGPR))), 4199 VCCR))>; 4200} 4201 4202let Predicates = [HasMVEInt] in { 4203 defm POR : two_predops<or, t2ORRrr>; 4204 defm PAND : two_predops<and, t2ANDrr>; 4205 defm PEOR : two_predops<xor, t2EORrr>; 4206} 4207 4208// Occasionally we need to cast between a i32 and a boolean vector, for 4209// example when moving between rGPR and VPR.P0 as part of predicate vector 4210// shuffles. We also sometimes need to cast between different predicate 4211// vector types (v4i1<>v8i1, etc.) also as part of lowering vector shuffles. 4212def predicate_cast : SDNode<"ARMISD::PREDICATE_CAST", SDTUnaryOp>; 4213 4214let Predicates = [HasMVEInt] in { 4215 foreach VT = [ v4i1, v8i1, v16i1 ] in { 4216 def : Pat<(i32 (predicate_cast (VT VCCR:$src))), 4217 (i32 (COPY_TO_REGCLASS (VT VCCR:$src), VCCR))>; 4218 def : Pat<(VT (predicate_cast (i32 VCCR:$src))), 4219 (VT (COPY_TO_REGCLASS (i32 VCCR:$src), VCCR))>; 4220 4221 foreach VT2 = [ v4i1, v8i1, v16i1 ] in 4222 def : Pat<(VT (predicate_cast (VT2 VCCR:$src))), 4223 (VT (COPY_TO_REGCLASS (VT2 VCCR:$src), VCCR))>; 4224 } 4225 4226 // Here we match the specific SDNode type 'ARMVectorRegCastImpl' 4227 // rather than the more general 'ARMVectorRegCast' which would also 4228 // match some bitconverts. If we use the latter in cases where the 4229 // input and output types are the same, the bitconvert gets elided 4230 // and we end up generating a nonsense match of nothing. 4231 4232 foreach VT = [ v16i8, v8i16, v8f16, v4i32, v4f32, v2i64, v2f64 ] in 4233 foreach VT2 = [ v16i8, v8i16, v8f16, v4i32, v4f32, v2i64, v2f64 ] in 4234 def : Pat<(VT (ARMVectorRegCastImpl (VT2 MQPR:$src))), (VT MQPR:$src)>; 4235} 4236 4237// end of MVE compares 4238 4239// start of MVE_qDest_qSrc 4240 4241class MVE_qDest_qSrc<string iname, string suffix, dag oops, dag iops, 4242 string ops, vpred_ops vpred, string cstr, 4243 list<dag> pattern=[]> 4244 : MVE_p<oops, iops, NoItinerary, iname, suffix, 4245 ops, vpred, cstr, pattern> { 4246 bits<4> Qd; 4247 bits<4> Qm; 4248 4249 let Inst{25-23} = 0b100; 4250 let Inst{22} = Qd{3}; 4251 let Inst{15-13} = Qd{2-0}; 4252 let Inst{11-9} = 0b111; 4253 let Inst{6} = 0b0; 4254 let Inst{5} = Qm{3}; 4255 let Inst{4} = 0b0; 4256 let Inst{3-1} = Qm{2-0}; 4257} 4258 4259class MVE_VQxDMLxDH<string iname, bit exch, bit round, bit subtract, 4260 string suffix, bits<2> size, string cstr="", list<dag> pattern=[]> 4261 : MVE_qDest_qSrc<iname, suffix, (outs MQPR:$Qd), 4262 (ins MQPR:$Qd_src, MQPR:$Qn, MQPR:$Qm), "$Qd, $Qn, $Qm", 4263 vpred_n, "$Qd = $Qd_src"#cstr, pattern> { 4264 bits<4> Qn; 4265 4266 let Inst{28} = subtract; 4267 let Inst{21-20} = size; 4268 let Inst{19-17} = Qn{2-0}; 4269 let Inst{16} = 0b0; 4270 let Inst{12} = exch; 4271 let Inst{8} = 0b0; 4272 let Inst{7} = Qn{3}; 4273 let Inst{0} = round; 4274} 4275 4276multiclass MVE_VQxDMLxDH_p<string iname, bit exch, bit round, bit subtract, 4277 MVEVectorVTInfo VTI> { 4278 def "": MVE_VQxDMLxDH<iname, exch, round, subtract, VTI.Suffix, VTI.Size, 4279 !if(!eq(VTI.LaneBits, 32), ",@earlyclobber $Qd", "")>; 4280 defvar Inst = !cast<Instruction>(NAME); 4281 defvar ConstParams = (? (i32 exch), (i32 round), (i32 subtract)); 4282 defvar unpred_intr = int_arm_mve_vqdmlad; 4283 defvar pred_intr = int_arm_mve_vqdmlad_predicated; 4284 4285 def : Pat<(VTI.Vec !con((unpred_intr (VTI.Vec MQPR:$a), (VTI.Vec MQPR:$b), 4286 (VTI.Vec MQPR:$c)), ConstParams)), 4287 (VTI.Vec (Inst (VTI.Vec MQPR:$a), (VTI.Vec MQPR:$b), 4288 (VTI.Vec MQPR:$c)))>; 4289 def : Pat<(VTI.Vec !con((pred_intr (VTI.Vec MQPR:$a), (VTI.Vec MQPR:$b), 4290 (VTI.Vec MQPR:$c)), ConstParams, 4291 (? (VTI.Pred VCCR:$pred)))), 4292 (VTI.Vec (Inst (VTI.Vec MQPR:$a), (VTI.Vec MQPR:$b), 4293 (VTI.Vec MQPR:$c), 4294 ARMVCCThen, (VTI.Pred VCCR:$pred)))>; 4295} 4296 4297multiclass MVE_VQxDMLxDH_multi<string iname, bit exch, 4298 bit round, bit subtract> { 4299 defm s8 : MVE_VQxDMLxDH_p<iname, exch, round, subtract, MVE_v16s8>; 4300 defm s16 : MVE_VQxDMLxDH_p<iname, exch, round, subtract, MVE_v8s16>; 4301 defm s32 : MVE_VQxDMLxDH_p<iname, exch, round, subtract, MVE_v4s32>; 4302} 4303 4304defm MVE_VQDMLADH : MVE_VQxDMLxDH_multi<"vqdmladh", 0b0, 0b0, 0b0>; 4305defm MVE_VQDMLADHX : MVE_VQxDMLxDH_multi<"vqdmladhx", 0b1, 0b0, 0b0>; 4306defm MVE_VQRDMLADH : MVE_VQxDMLxDH_multi<"vqrdmladh", 0b0, 0b1, 0b0>; 4307defm MVE_VQRDMLADHX : MVE_VQxDMLxDH_multi<"vqrdmladhx", 0b1, 0b1, 0b0>; 4308defm MVE_VQDMLSDH : MVE_VQxDMLxDH_multi<"vqdmlsdh", 0b0, 0b0, 0b1>; 4309defm MVE_VQDMLSDHX : MVE_VQxDMLxDH_multi<"vqdmlsdhx", 0b1, 0b0, 0b1>; 4310defm MVE_VQRDMLSDH : MVE_VQxDMLxDH_multi<"vqrdmlsdh", 0b0, 0b1, 0b1>; 4311defm MVE_VQRDMLSDHX : MVE_VQxDMLxDH_multi<"vqrdmlsdhx", 0b1, 0b1, 0b1>; 4312 4313class MVE_VCMUL<string iname, string suffix, bit size, string cstr=""> 4314 : MVE_qDest_qSrc<iname, suffix, (outs MQPR:$Qd), 4315 (ins MQPR:$Qn, MQPR:$Qm, complexrotateop:$rot), 4316 "$Qd, $Qn, $Qm, $rot", vpred_r, cstr, []> { 4317 bits<4> Qn; 4318 bits<2> rot; 4319 4320 let Inst{28} = size; 4321 let Inst{21-20} = 0b11; 4322 let Inst{19-17} = Qn{2-0}; 4323 let Inst{16} = 0b0; 4324 let Inst{12} = rot{1}; 4325 let Inst{8} = 0b0; 4326 let Inst{7} = Qn{3}; 4327 let Inst{0} = rot{0}; 4328 4329 let Predicates = [HasMVEFloat]; 4330} 4331 4332multiclass MVE_VCMUL_m<string iname, MVEVectorVTInfo VTI, 4333 bit size, string cstr=""> { 4334 def "" : MVE_VCMUL<iname, VTI.Suffix, size, cstr>; 4335 defvar Inst = !cast<Instruction>(NAME); 4336 4337 let Predicates = [HasMVEFloat] in { 4338 def : Pat<(VTI.Vec (int_arm_mve_vcmulq 4339 imm:$rot, (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm))), 4340 (VTI.Vec (Inst (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm), 4341 imm:$rot))>; 4342 4343 def : Pat<(VTI.Vec (int_arm_mve_vcmulq_predicated 4344 imm:$rot, (VTI.Vec MQPR:$inactive), 4345 (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm), 4346 (VTI.Pred VCCR:$mask))), 4347 (VTI.Vec (Inst (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm), 4348 imm:$rot, ARMVCCThen, (VTI.Pred VCCR:$mask), 4349 (VTI.Vec MQPR:$inactive)))>; 4350 4351 } 4352} 4353 4354defm MVE_VCMULf16 : MVE_VCMUL_m<"vcmul", MVE_v8f16, 0b0>; 4355defm MVE_VCMULf32 : MVE_VCMUL_m<"vcmul", MVE_v4f32, 0b1, "@earlyclobber $Qd">; 4356 4357class MVE_VMULL<string iname, string suffix, bit bit_28, bits<2> bits_21_20, 4358 bit T, string cstr, list<dag> pattern=[]> 4359 : MVE_qDest_qSrc<iname, suffix, (outs MQPR:$Qd), 4360 (ins MQPR:$Qn, MQPR:$Qm), "$Qd, $Qn, $Qm", 4361 vpred_r, cstr, pattern> { 4362 bits<4> Qd; 4363 bits<4> Qn; 4364 bits<4> Qm; 4365 4366 let Inst{28} = bit_28; 4367 let Inst{21-20} = bits_21_20; 4368 let Inst{19-17} = Qn{2-0}; 4369 let Inst{16} = 0b1; 4370 let Inst{12} = T; 4371 let Inst{8} = 0b0; 4372 let Inst{7} = Qn{3}; 4373 let Inst{0} = 0b0; 4374 let validForTailPredication = 1; 4375 let doubleWidthResult = 1; 4376} 4377 4378multiclass MVE_VMULL_m<MVEVectorVTInfo VTI, 4379 SDNode unpred_op, Intrinsic pred_int, 4380 bit Top, string cstr=""> { 4381 def "" : MVE_VMULL<"vmull" # !if(Top, "t", "b"), VTI.Suffix, VTI.Unsigned, 4382 VTI.Size, Top, cstr>; 4383 defvar Inst = !cast<Instruction>(NAME); 4384 4385 let Predicates = [HasMVEInt] in { 4386 defvar uflag = !if(!eq(VTI.SuffixLetter, "p"), (?), (? (i32 VTI.Unsigned))); 4387 4388 // Unpredicated multiply 4389 def : Pat<(VTI.DblVec !con((unpred_op (VTI.Vec MQPR:$Qm), 4390 (VTI.Vec MQPR:$Qn)), 4391 uflag, (? (i32 Top)))), 4392 (VTI.DblVec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>; 4393 4394 // Predicated multiply 4395 def : Pat<(VTI.DblVec !con((pred_int (VTI.Vec MQPR:$Qm), 4396 (VTI.Vec MQPR:$Qn)), 4397 uflag, (? (i32 Top), (VTI.DblPred VCCR:$mask), 4398 (VTI.DblVec MQPR:$inactive)))), 4399 (VTI.DblVec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 4400 ARMVCCThen, (VTI.DblPred VCCR:$mask), 4401 (VTI.DblVec MQPR:$inactive)))>; 4402 } 4403} 4404 4405// For polynomial multiplies, the size bits take the unused value 0b11, and 4406// the unsigned bit switches to encoding the size. 4407 4408defm MVE_VMULLBs8 : MVE_VMULL_m<MVE_v16s8, int_arm_mve_vmull, 4409 int_arm_mve_mull_int_predicated, 0b0>; 4410defm MVE_VMULLTs8 : MVE_VMULL_m<MVE_v16s8, int_arm_mve_vmull, 4411 int_arm_mve_mull_int_predicated, 0b1>; 4412defm MVE_VMULLBs16 : MVE_VMULL_m<MVE_v8s16, int_arm_mve_vmull, 4413 int_arm_mve_mull_int_predicated, 0b0>; 4414defm MVE_VMULLTs16 : MVE_VMULL_m<MVE_v8s16, int_arm_mve_vmull, 4415 int_arm_mve_mull_int_predicated, 0b1>; 4416defm MVE_VMULLBs32 : MVE_VMULL_m<MVE_v4s32, int_arm_mve_vmull, 4417 int_arm_mve_mull_int_predicated, 0b0, 4418 "@earlyclobber $Qd">; 4419defm MVE_VMULLTs32 : MVE_VMULL_m<MVE_v4s32, int_arm_mve_vmull, 4420 int_arm_mve_mull_int_predicated, 0b1, 4421 "@earlyclobber $Qd">; 4422 4423defm MVE_VMULLBu8 : MVE_VMULL_m<MVE_v16u8, int_arm_mve_vmull, 4424 int_arm_mve_mull_int_predicated, 0b0>; 4425defm MVE_VMULLTu8 : MVE_VMULL_m<MVE_v16u8, int_arm_mve_vmull, 4426 int_arm_mve_mull_int_predicated, 0b1>; 4427defm MVE_VMULLBu16 : MVE_VMULL_m<MVE_v8u16, int_arm_mve_vmull, 4428 int_arm_mve_mull_int_predicated, 0b0>; 4429defm MVE_VMULLTu16 : MVE_VMULL_m<MVE_v8u16, int_arm_mve_vmull, 4430 int_arm_mve_mull_int_predicated, 0b1>; 4431defm MVE_VMULLBu32 : MVE_VMULL_m<MVE_v4u32, int_arm_mve_vmull, 4432 int_arm_mve_mull_int_predicated, 0b0, 4433 "@earlyclobber $Qd">; 4434defm MVE_VMULLTu32 : MVE_VMULL_m<MVE_v4u32, int_arm_mve_vmull, 4435 int_arm_mve_mull_int_predicated, 0b1, 4436 "@earlyclobber $Qd">; 4437 4438defm MVE_VMULLBp8 : MVE_VMULL_m<MVE_v16p8, int_arm_mve_vmull_poly, 4439 int_arm_mve_mull_poly_predicated, 0b0>; 4440defm MVE_VMULLTp8 : MVE_VMULL_m<MVE_v16p8, int_arm_mve_vmull_poly, 4441 int_arm_mve_mull_poly_predicated, 0b1>; 4442defm MVE_VMULLBp16 : MVE_VMULL_m<MVE_v8p16, int_arm_mve_vmull_poly, 4443 int_arm_mve_mull_poly_predicated, 0b0>; 4444defm MVE_VMULLTp16 : MVE_VMULL_m<MVE_v8p16, int_arm_mve_vmull_poly, 4445 int_arm_mve_mull_poly_predicated, 0b1>; 4446 4447let Predicates = [HasMVEInt] in { 4448 def : Pat<(v2i64 (ARMvmulls (v4i32 MQPR:$src1), (v4i32 MQPR:$src2))), 4449 (MVE_VMULLBs32 MQPR:$src1, MQPR:$src2)>; 4450 def : Pat<(v2i64 (ARMvmulls (v4i32 (ARMvrev64 (v4i32 MQPR:$src1))), 4451 (v4i32 (ARMvrev64 (v4i32 MQPR:$src2))))), 4452 (MVE_VMULLTs32 MQPR:$src1, MQPR:$src2)>; 4453 4454 def : Pat<(mul (sext_inreg (v4i32 MQPR:$src1), v4i16), 4455 (sext_inreg (v4i32 MQPR:$src2), v4i16)), 4456 (MVE_VMULLBs16 MQPR:$src1, MQPR:$src2)>; 4457 def : Pat<(mul (sext_inreg (v4i32 (ARMVectorRegCast (ARMvrev32 (v8i16 MQPR:$src1)))), v4i16), 4458 (sext_inreg (v4i32 (ARMVectorRegCast (ARMvrev32 (v8i16 MQPR:$src2)))), v4i16)), 4459 (MVE_VMULLTs16 MQPR:$src1, MQPR:$src2)>; 4460 4461 def : Pat<(mul (sext_inreg (v8i16 MQPR:$src1), v8i8), 4462 (sext_inreg (v8i16 MQPR:$src2), v8i8)), 4463 (MVE_VMULLBs8 MQPR:$src1, MQPR:$src2)>; 4464 def : Pat<(mul (sext_inreg (v8i16 (ARMVectorRegCast (ARMvrev16 (v16i8 MQPR:$src1)))), v8i8), 4465 (sext_inreg (v8i16 (ARMVectorRegCast (ARMvrev16 (v16i8 MQPR:$src2)))), v8i8)), 4466 (MVE_VMULLTs8 MQPR:$src1, MQPR:$src2)>; 4467 4468 def : Pat<(v2i64 (ARMvmullu (v4i32 MQPR:$src1), (v4i32 MQPR:$src2))), 4469 (MVE_VMULLBu32 MQPR:$src1, MQPR:$src2)>; 4470 def : Pat<(v2i64 (ARMvmullu (v4i32 (ARMvrev64 (v4i32 MQPR:$src1))), 4471 (v4i32 (ARMvrev64 (v4i32 MQPR:$src2))))), 4472 (MVE_VMULLTu32 MQPR:$src1, MQPR:$src2)>; 4473 4474 def : Pat<(mul (and (v4i32 MQPR:$src1), (v4i32 (ARMvmovImm (i32 0xCFF)))), 4475 (and (v4i32 MQPR:$src2), (v4i32 (ARMvmovImm (i32 0xCFF))))), 4476 (MVE_VMULLBu16 MQPR:$src1, MQPR:$src2)>; 4477 def : Pat<(mul (and (v4i32 (ARMVectorRegCast (ARMvrev32 (v8i16 MQPR:$src1)))), 4478 (v4i32 (ARMvmovImm (i32 0xCFF)))), 4479 (and (v4i32 (ARMVectorRegCast (ARMvrev32 (v8i16 MQPR:$src2)))), 4480 (v4i32 (ARMvmovImm (i32 0xCFF))))), 4481 (MVE_VMULLTu16 MQPR:$src1, MQPR:$src2)>; 4482 4483 def : Pat<(mul (ARMvbicImm (v8i16 MQPR:$src1), (i32 0xAFF)), 4484 (ARMvbicImm (v8i16 MQPR:$src2), (i32 0xAFF))), 4485 (MVE_VMULLBu8 MQPR:$src1, MQPR:$src2)>; 4486 def : Pat<(mul (ARMvbicImm (v8i16 (ARMVectorRegCast (ARMvrev16 (v16i8 MQPR:$src1)))), (i32 0xAFF)), 4487 (ARMvbicImm (v8i16 (ARMVectorRegCast (ARMvrev16 (v16i8 MQPR:$src2)))), (i32 0xAFF))), 4488 (MVE_VMULLTu8 MQPR:$src1, MQPR:$src2)>; 4489} 4490 4491class MVE_VxMULH<string iname, string suffix, bit U, bits<2> size, bit round, 4492 list<dag> pattern=[]> 4493 : MVE_qDest_qSrc<iname, suffix, (outs MQPR:$Qd), 4494 (ins MQPR:$Qn, MQPR:$Qm), "$Qd, $Qn, $Qm", 4495 vpred_r, "", pattern> { 4496 bits<4> Qn; 4497 4498 let Inst{28} = U; 4499 let Inst{21-20} = size; 4500 let Inst{19-17} = Qn{2-0}; 4501 let Inst{16} = 0b1; 4502 let Inst{12} = round; 4503 let Inst{8} = 0b0; 4504 let Inst{7} = Qn{3}; 4505 let Inst{0} = 0b1; 4506} 4507 4508multiclass MVE_VxMULH_m<string iname, MVEVectorVTInfo VTI, SDNode unpred_op, 4509 Intrinsic pred_int, bit round> { 4510 def "" : MVE_VxMULH<iname, VTI.Suffix, VTI.Unsigned, VTI.Size, round>; 4511 defvar Inst = !cast<Instruction>(NAME); 4512 4513 let Predicates = [HasMVEInt] in { 4514 // Unpredicated multiply returning high bits 4515 def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 4516 (i32 VTI.Unsigned))), 4517 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>; 4518 4519 // Predicated multiply returning high bits 4520 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 4521 (i32 VTI.Unsigned), (VTI.Pred VCCR:$mask), 4522 (VTI.Vec MQPR:$inactive))), 4523 (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 4524 ARMVCCThen, (VTI.Pred VCCR:$mask), 4525 (VTI.Vec MQPR:$inactive)))>; 4526 } 4527} 4528 4529multiclass MVE_VMULT<string iname, MVEVectorVTInfo VTI, bit round> 4530 : MVE_VxMULH_m<iname, VTI, !if(round, int_arm_mve_vrmulh, int_arm_mve_vmulh), 4531 !if(round, int_arm_mve_rmulh_predicated, 4532 int_arm_mve_mulh_predicated), 4533 round>; 4534 4535defm MVE_VMULHs8 : MVE_VMULT<"vmulh", MVE_v16s8, 0b0>; 4536defm MVE_VMULHs16 : MVE_VMULT<"vmulh", MVE_v8s16, 0b0>; 4537defm MVE_VMULHs32 : MVE_VMULT<"vmulh", MVE_v4s32, 0b0>; 4538defm MVE_VMULHu8 : MVE_VMULT<"vmulh", MVE_v16u8, 0b0>; 4539defm MVE_VMULHu16 : MVE_VMULT<"vmulh", MVE_v8u16, 0b0>; 4540defm MVE_VMULHu32 : MVE_VMULT<"vmulh", MVE_v4u32, 0b0>; 4541 4542defm MVE_VRMULHs8 : MVE_VMULT<"vrmulh", MVE_v16s8, 0b1>; 4543defm MVE_VRMULHs16 : MVE_VMULT<"vrmulh", MVE_v8s16, 0b1>; 4544defm MVE_VRMULHs32 : MVE_VMULT<"vrmulh", MVE_v4s32, 0b1>; 4545defm MVE_VRMULHu8 : MVE_VMULT<"vrmulh", MVE_v16u8, 0b1>; 4546defm MVE_VRMULHu16 : MVE_VMULT<"vrmulh", MVE_v8u16, 0b1>; 4547defm MVE_VRMULHu32 : MVE_VMULT<"vrmulh", MVE_v4u32, 0b1>; 4548 4549class MVE_VxMOVxN<string iname, string suffix, bit bit_28, bit bit_17, 4550 bits<2> size, bit T, list<dag> pattern=[]> 4551 : MVE_qDest_qSrc<iname, suffix, (outs MQPR:$Qd), 4552 (ins MQPR:$Qd_src, MQPR:$Qm), "$Qd, $Qm", 4553 vpred_n, "$Qd = $Qd_src", pattern> { 4554 4555 let Inst{28} = bit_28; 4556 let Inst{21-20} = 0b11; 4557 let Inst{19-18} = size; 4558 let Inst{17} = bit_17; 4559 let Inst{16} = 0b1; 4560 let Inst{12} = T; 4561 let Inst{8} = 0b0; 4562 let Inst{7} = !if(!eq(bit_17, 0), 1, 0); 4563 let Inst{0} = 0b1; 4564 let validForTailPredication = 1; 4565 let retainsPreviousHalfElement = 1; 4566} 4567 4568multiclass MVE_VxMOVxN_halves<string iname, string suffix, 4569 bit bit_28, bit bit_17, bits<2> size> { 4570 def bh : MVE_VxMOVxN<iname # "b", suffix, bit_28, bit_17, size, 0b0>; 4571 def th : MVE_VxMOVxN<iname # "t", suffix, bit_28, bit_17, size, 0b1>; 4572} 4573 4574defm MVE_VMOVNi16 : MVE_VxMOVxN_halves<"vmovn", "i16", 0b1, 0b0, 0b00>; 4575defm MVE_VMOVNi32 : MVE_VxMOVxN_halves<"vmovn", "i32", 0b1, 0b0, 0b01>; 4576defm MVE_VQMOVNs16 : MVE_VxMOVxN_halves<"vqmovn", "s16", 0b0, 0b1, 0b00>; 4577defm MVE_VQMOVNs32 : MVE_VxMOVxN_halves<"vqmovn", "s32", 0b0, 0b1, 0b01>; 4578defm MVE_VQMOVNu16 : MVE_VxMOVxN_halves<"vqmovn", "u16", 0b1, 0b1, 0b00>; 4579defm MVE_VQMOVNu32 : MVE_VxMOVxN_halves<"vqmovn", "u32", 0b1, 0b1, 0b01>; 4580defm MVE_VQMOVUNs16 : MVE_VxMOVxN_halves<"vqmovun", "s16", 0b0, 0b0, 0b00>; 4581defm MVE_VQMOVUNs32 : MVE_VxMOVxN_halves<"vqmovun", "s32", 0b0, 0b0, 0b01>; 4582 4583def MVEvmovn : SDNode<"ARMISD::VMOVN", SDTARMVEXT>; 4584 4585multiclass MVE_VMOVN_p<Instruction Inst, bit top, 4586 MVEVectorVTInfo VTI, MVEVectorVTInfo InVTI> { 4587 // Match the most obvious MVEvmovn(a,b,t), which overwrites the odd or even 4588 // lanes of a (depending on t) with the even lanes of b. 4589 def : Pat<(VTI.Vec (MVEvmovn (VTI.Vec MQPR:$Qd_src), 4590 (VTI.Vec MQPR:$Qm), (i32 top))), 4591 (VTI.Vec (Inst (VTI.Vec MQPR:$Qd_src), (VTI.Vec MQPR:$Qm)))>; 4592 4593 if !eq(top, 0) then { 4594 // If we see MVEvmovn(a,ARMvrev(b),1), that wants to overwrite the odd 4595 // lanes of a with the odd lanes of b. In other words, the lanes we're 4596 // _keeping_ from a are the even ones. So we can flip it round and say that 4597 // this is the same as overwriting the even lanes of b with the even lanes 4598 // of a, i.e. it's a VMOVNB with the operands reversed. 4599 defvar vrev = !cast<SDNode>("ARMvrev" # InVTI.LaneBits); 4600 def : Pat<(VTI.Vec (MVEvmovn (VTI.Vec MQPR:$Qm), 4601 (VTI.Vec (vrev MQPR:$Qd_src)), (i32 1))), 4602 (VTI.Vec (Inst (VTI.Vec MQPR:$Qd_src), (VTI.Vec MQPR:$Qm)))>; 4603 } 4604 4605 // Match the IR intrinsic for a predicated VMOVN. This regards the Qm input 4606 // as having wider lanes that we're narrowing, instead of already-narrow 4607 // lanes that we're taking every other one of. 4608 def : Pat<(VTI.Vec (int_arm_mve_vmovn_predicated (VTI.Vec MQPR:$Qd_src), 4609 (InVTI.Vec MQPR:$Qm), (i32 top), 4610 (InVTI.Pred VCCR:$pred))), 4611 (VTI.Vec (Inst (VTI.Vec MQPR:$Qd_src), 4612 (InVTI.Vec MQPR:$Qm), 4613 ARMVCCThen, (InVTI.Pred VCCR:$pred)))>; 4614} 4615 4616defm : MVE_VMOVN_p<MVE_VMOVNi32bh, 0, MVE_v8i16, MVE_v4i32>; 4617defm : MVE_VMOVN_p<MVE_VMOVNi32th, 1, MVE_v8i16, MVE_v4i32>; 4618defm : MVE_VMOVN_p<MVE_VMOVNi16bh, 0, MVE_v16i8, MVE_v8i16>; 4619defm : MVE_VMOVN_p<MVE_VMOVNi16th, 1, MVE_v16i8, MVE_v8i16>; 4620 4621multiclass MVE_VQMOVN_p<Instruction Inst, bit outU, bit inU, bit top, 4622 MVEVectorVTInfo VTI, MVEVectorVTInfo InVTI> { 4623 def : Pat<(VTI.Vec (int_arm_mve_vqmovn (VTI.Vec MQPR:$Qd_src), 4624 (InVTI.Vec MQPR:$Qm), 4625 (i32 outU), (i32 inU), (i32 top))), 4626 (VTI.Vec (Inst (VTI.Vec MQPR:$Qd_src), 4627 (InVTI.Vec MQPR:$Qm)))>; 4628 4629 def : Pat<(VTI.Vec (int_arm_mve_vqmovn_predicated (VTI.Vec MQPR:$Qd_src), 4630 (InVTI.Vec MQPR:$Qm), 4631 (i32 outU), (i32 inU), (i32 top), 4632 (InVTI.Pred VCCR:$pred))), 4633 (VTI.Vec (Inst (VTI.Vec MQPR:$Qd_src), 4634 (InVTI.Vec MQPR:$Qm), 4635 ARMVCCThen, (InVTI.Pred VCCR:$pred)))>; 4636} 4637 4638defm : MVE_VQMOVN_p<MVE_VQMOVNs32bh, 0, 0, 0, MVE_v8i16, MVE_v4i32>; 4639defm : MVE_VQMOVN_p<MVE_VQMOVNs32th, 0, 0, 1, MVE_v8i16, MVE_v4i32>; 4640defm : MVE_VQMOVN_p<MVE_VQMOVNs16bh, 0, 0, 0, MVE_v16i8, MVE_v8i16>; 4641defm : MVE_VQMOVN_p<MVE_VQMOVNs16th, 0, 0, 1, MVE_v16i8, MVE_v8i16>; 4642defm : MVE_VQMOVN_p<MVE_VQMOVNu32bh, 1, 1, 0, MVE_v8i16, MVE_v4i32>; 4643defm : MVE_VQMOVN_p<MVE_VQMOVNu32th, 1, 1, 1, MVE_v8i16, MVE_v4i32>; 4644defm : MVE_VQMOVN_p<MVE_VQMOVNu16bh, 1, 1, 0, MVE_v16i8, MVE_v8i16>; 4645defm : MVE_VQMOVN_p<MVE_VQMOVNu16th, 1, 1, 1, MVE_v16i8, MVE_v8i16>; 4646defm : MVE_VQMOVN_p<MVE_VQMOVUNs32bh, 1, 0, 0, MVE_v8i16, MVE_v4i32>; 4647defm : MVE_VQMOVN_p<MVE_VQMOVUNs32th, 1, 0, 1, MVE_v8i16, MVE_v4i32>; 4648defm : MVE_VQMOVN_p<MVE_VQMOVUNs16bh, 1, 0, 0, MVE_v16i8, MVE_v8i16>; 4649defm : MVE_VQMOVN_p<MVE_VQMOVUNs16th, 1, 0, 1, MVE_v16i8, MVE_v8i16>; 4650 4651class MVE_VCVT_ff<string iname, string suffix, bit op, bit T, 4652 dag iops_extra, vpred_ops vpred, string cstr> 4653 : MVE_qDest_qSrc<iname, suffix, (outs MQPR:$Qd), 4654 !con(iops_extra, (ins MQPR:$Qm)), "$Qd, $Qm", 4655 vpred, cstr, []> { 4656 let Inst{28} = op; 4657 let Inst{21-16} = 0b111111; 4658 let Inst{12} = T; 4659 let Inst{8-7} = 0b00; 4660 let Inst{0} = 0b1; 4661 4662 let Predicates = [HasMVEFloat]; 4663 let retainsPreviousHalfElement = 1; 4664} 4665 4666multiclass MVE_VCVT_f2h_m<string iname, int half> { 4667 def "": MVE_VCVT_ff<iname, "f16.f32", 0b0, half, 4668 (ins MQPR:$Qd_src), vpred_n, "$Qd = $Qd_src">; 4669 defvar Inst = !cast<Instruction>(NAME); 4670 4671 let Predicates = [HasMVEFloat] in { 4672 def : Pat<(v8f16 (int_arm_mve_vcvt_narrow 4673 (v8f16 MQPR:$Qd_src), (v4f32 MQPR:$Qm), (i32 half))), 4674 (v8f16 (Inst (v8f16 MQPR:$Qd_src), (v4f32 MQPR:$Qm)))>; 4675 def : Pat<(v8f16 (int_arm_mve_vcvt_narrow_predicated 4676 (v8f16 MQPR:$Qd_src), (v4f32 MQPR:$Qm), (i32 half), 4677 (v4i1 VCCR:$mask))), 4678 (v8f16 (Inst (v8f16 MQPR:$Qd_src), (v4f32 MQPR:$Qm), 4679 ARMVCCThen, (v4i1 VCCR:$mask)))>; 4680 } 4681} 4682 4683multiclass MVE_VCVT_h2f_m<string iname, int half> { 4684 def "": MVE_VCVT_ff<iname, "f32.f16", 0b1, half, (ins), vpred_r, "">; 4685 defvar Inst = !cast<Instruction>(NAME); 4686 4687 let Predicates = [HasMVEFloat] in { 4688 def : Pat<(v4f32 (int_arm_mve_vcvt_widen (v8f16 MQPR:$Qm), (i32 half))), 4689 (v4f32 (Inst (v8f16 MQPR:$Qm)))>; 4690 def : Pat<(v4f32 (int_arm_mve_vcvt_widen_predicated 4691 (v4f32 MQPR:$inactive), (v8f16 MQPR:$Qm), (i32 half), 4692 (v4i1 VCCR:$mask))), 4693 (v4f32 (Inst (v8f16 MQPR:$Qm), ARMVCCThen, 4694 (v4i1 VCCR:$mask), (v4f32 MQPR:$inactive)))>; 4695 } 4696} 4697 4698defm MVE_VCVTf16f32bh : MVE_VCVT_f2h_m<"vcvtb", 0b0>; 4699defm MVE_VCVTf16f32th : MVE_VCVT_f2h_m<"vcvtt", 0b1>; 4700defm MVE_VCVTf32f16bh : MVE_VCVT_h2f_m<"vcvtb", 0b0>; 4701defm MVE_VCVTf32f16th : MVE_VCVT_h2f_m<"vcvtt", 0b1>; 4702 4703class MVE_VxCADD<string iname, string suffix, bits<2> size, bit halve, 4704 string cstr=""> 4705 : MVE_qDest_qSrc<iname, suffix, (outs MQPR:$Qd), 4706 (ins MQPR:$Qn, MQPR:$Qm, complexrotateopodd:$rot), 4707 "$Qd, $Qn, $Qm, $rot", vpred_r, cstr, []> { 4708 bits<4> Qn; 4709 bit rot; 4710 4711 let Inst{28} = halve; 4712 let Inst{21-20} = size; 4713 let Inst{19-17} = Qn{2-0}; 4714 let Inst{16} = 0b0; 4715 let Inst{12} = rot; 4716 let Inst{8} = 0b1; 4717 let Inst{7} = Qn{3}; 4718 let Inst{0} = 0b0; 4719} 4720 4721multiclass MVE_VxCADD_m<string iname, MVEVectorVTInfo VTI, 4722 bit halve, string cstr=""> { 4723 def "" : MVE_VxCADD<iname, VTI.Suffix, VTI.Size, halve, cstr>; 4724 defvar Inst = !cast<Instruction>(NAME); 4725 4726 let Predicates = [HasMVEInt] in { 4727 def : Pat<(VTI.Vec (int_arm_mve_vcaddq halve, 4728 imm:$rot, (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm))), 4729 (VTI.Vec (Inst (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm), 4730 imm:$rot))>; 4731 4732 def : Pat<(VTI.Vec (int_arm_mve_vcaddq_predicated halve, 4733 imm:$rot, (VTI.Vec MQPR:$inactive), 4734 (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm), 4735 (VTI.Pred VCCR:$mask))), 4736 (VTI.Vec (Inst (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm), 4737 imm:$rot, ARMVCCThen, (VTI.Pred VCCR:$mask), 4738 (VTI.Vec MQPR:$inactive)))>; 4739 4740 } 4741} 4742 4743defm MVE_VCADDi8 : MVE_VxCADD_m<"vcadd", MVE_v16i8, 0b1>; 4744defm MVE_VCADDi16 : MVE_VxCADD_m<"vcadd", MVE_v8i16, 0b1>; 4745defm MVE_VCADDi32 : MVE_VxCADD_m<"vcadd", MVE_v4i32, 0b1, "@earlyclobber $Qd">; 4746 4747defm MVE_VHCADDs8 : MVE_VxCADD_m<"vhcadd", MVE_v16s8, 0b0>; 4748defm MVE_VHCADDs16 : MVE_VxCADD_m<"vhcadd", MVE_v8s16, 0b0>; 4749defm MVE_VHCADDs32 : MVE_VxCADD_m<"vhcadd", MVE_v4s32, 0b0, "@earlyclobber $Qd">; 4750 4751class MVE_VADCSBC<string iname, bit I, bit subtract, 4752 dag carryin, list<dag> pattern=[]> 4753 : MVE_qDest_qSrc<iname, "i32", (outs MQPR:$Qd, cl_FPSCR_NZCV:$carryout), 4754 !con((ins MQPR:$Qn, MQPR:$Qm), carryin), 4755 "$Qd, $Qn, $Qm", vpred_r, "", pattern> { 4756 bits<4> Qn; 4757 4758 let Inst{28} = subtract; 4759 let Inst{21-20} = 0b11; 4760 let Inst{19-17} = Qn{2-0}; 4761 let Inst{16} = 0b0; 4762 let Inst{12} = I; 4763 let Inst{8} = 0b1; 4764 let Inst{7} = Qn{3}; 4765 let Inst{0} = 0b0; 4766 4767 // Custom decoder method in order to add the FPSCR operand(s), which 4768 // Tablegen won't do right 4769 let DecoderMethod = "DecodeMVEVADCInstruction"; 4770} 4771 4772def MVE_VADC : MVE_VADCSBC<"vadc", 0b0, 0b0, (ins cl_FPSCR_NZCV:$carryin)>; 4773def MVE_VADCI : MVE_VADCSBC<"vadci", 0b1, 0b0, (ins)>; 4774 4775def MVE_VSBC : MVE_VADCSBC<"vsbc", 0b0, 0b1, (ins cl_FPSCR_NZCV:$carryin)>; 4776def MVE_VSBCI : MVE_VADCSBC<"vsbci", 0b1, 0b1, (ins)>; 4777 4778class MVE_VQDMULL<string iname, string suffix, bit size, bit T, 4779 string cstr="", list<dag> pattern=[]> 4780 : MVE_qDest_qSrc<iname, suffix, (outs MQPR:$Qd), 4781 (ins MQPR:$Qn, MQPR:$Qm), "$Qd, $Qn, $Qm", 4782 vpred_r, cstr, pattern> { 4783 bits<4> Qn; 4784 4785 let Inst{28} = size; 4786 let Inst{21-20} = 0b11; 4787 let Inst{19-17} = Qn{2-0}; 4788 let Inst{16} = 0b0; 4789 let Inst{12} = T; 4790 let Inst{8} = 0b1; 4791 let Inst{7} = Qn{3}; 4792 let Inst{0} = 0b1; 4793 let validForTailPredication = 1; 4794 let doubleWidthResult = 1; 4795} 4796 4797multiclass MVE_VQDMULL_m<string iname, MVEVectorVTInfo VTI, bit size, bit T, 4798 string cstr> { 4799 def "" : MVE_VQDMULL<iname, VTI.Suffix, size, T, cstr>; 4800 defvar Inst = !cast<Instruction>(NAME); 4801 4802 let Predicates = [HasMVEInt] in { 4803 // Unpredicated saturating multiply 4804 def : Pat<(VTI.DblVec (int_arm_mve_vqdmull (VTI.Vec MQPR:$Qm), 4805 (VTI.Vec MQPR:$Qn), (i32 T))), 4806 (VTI.DblVec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>; 4807 // Predicated saturating multiply 4808 def : Pat<(VTI.DblVec (int_arm_mve_vqdmull_predicated 4809 (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 4810 (i32 T), (VTI.DblPred VCCR:$mask), 4811 (VTI.DblVec MQPR:$inactive))), 4812 (VTI.DblVec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), 4813 ARMVCCThen, (VTI.DblPred VCCR:$mask), 4814 (VTI.DblVec MQPR:$inactive)))>; 4815 } 4816} 4817 4818multiclass MVE_VQDMULL_halves<MVEVectorVTInfo VTI, bit size, string cstr=""> { 4819 defm bh : MVE_VQDMULL_m<"vqdmullb", VTI, size, 0b0, cstr>; 4820 defm th : MVE_VQDMULL_m<"vqdmullt", VTI, size, 0b1, cstr>; 4821} 4822 4823defm MVE_VQDMULLs16 : MVE_VQDMULL_halves<MVE_v8s16, 0b0>; 4824defm MVE_VQDMULLs32 : MVE_VQDMULL_halves<MVE_v4s32, 0b1, "@earlyclobber $Qd">; 4825 4826// end of mve_qDest_qSrc 4827 4828// start of mve_qDest_rSrc 4829 4830class MVE_qr_base<dag oops, dag iops, InstrItinClass itin, string iname, 4831 string suffix, string ops, vpred_ops vpred, string cstr, 4832 list<dag> pattern=[]> 4833 : MVE_p<oops, iops, NoItinerary, iname, suffix, ops, vpred, cstr, pattern> { 4834 bits<4> Qd; 4835 bits<4> Qn; 4836 bits<4> Rm; 4837 4838 let Inst{25-23} = 0b100; 4839 let Inst{22} = Qd{3}; 4840 let Inst{19-17} = Qn{2-0}; 4841 let Inst{15-13} = Qd{2-0}; 4842 let Inst{11-9} = 0b111; 4843 let Inst{7} = Qn{3}; 4844 let Inst{6} = 0b1; 4845 let Inst{4} = 0b0; 4846 let Inst{3-0} = Rm{3-0}; 4847} 4848 4849class MVE_qDest_rSrc<string iname, string suffix, string cstr="", list<dag> pattern=[]> 4850 : MVE_qr_base<(outs MQPR:$Qd), (ins MQPR:$Qn, rGPR:$Rm), 4851 NoItinerary, iname, suffix, "$Qd, $Qn, $Rm", vpred_r, cstr, 4852 pattern>; 4853 4854class MVE_qDestSrc_rSrc<string iname, string suffix, list<dag> pattern=[]> 4855 : MVE_qr_base<(outs MQPR:$Qd), (ins MQPR:$Qd_src, MQPR:$Qn, rGPR:$Rm), 4856 NoItinerary, iname, suffix, "$Qd, $Qn, $Rm", vpred_n, "$Qd = $Qd_src", 4857 pattern>; 4858 4859class MVE_qDest_single_rSrc<string iname, string suffix, list<dag> pattern=[]> 4860 : MVE_p<(outs MQPR:$Qd), (ins MQPR:$Qd_src, rGPR:$Rm), NoItinerary, iname, 4861 suffix, "$Qd, $Rm", vpred_n, "$Qd = $Qd_src", pattern> { 4862 bits<4> Qd; 4863 bits<4> Rm; 4864 4865 let Inst{22} = Qd{3}; 4866 let Inst{15-13} = Qd{2-0}; 4867 let Inst{3-0} = Rm{3-0}; 4868} 4869 4870// Patterns for vector-scalar instructions with integer operands 4871multiclass MVE_vec_scalar_int_pat_m<Instruction inst, MVEVectorVTInfo VTI, 4872 SDNode unpred_op, SDNode pred_op, 4873 bit unpred_has_sign = 0, 4874 bit pred_has_sign = 0> { 4875 defvar UnpredSign = !if(unpred_has_sign, (? (i32 VTI.Unsigned)), (?)); 4876 defvar PredSign = !if(pred_has_sign, (? (i32 VTI.Unsigned)), (?)); 4877 4878 let Predicates = [HasMVEInt] in { 4879 // Unpredicated version 4880 def : Pat<(VTI.Vec !con((unpred_op (VTI.Vec MQPR:$Qm), 4881 (VTI.Vec (ARMvdup rGPR:$val))), 4882 UnpredSign)), 4883 (VTI.Vec (inst (VTI.Vec MQPR:$Qm), (i32 rGPR:$val)))>; 4884 // Predicated version 4885 def : Pat<(VTI.Vec !con((pred_op (VTI.Vec MQPR:$Qm), 4886 (VTI.Vec (ARMvdup rGPR:$val))), 4887 PredSign, 4888 (pred_op (VTI.Pred VCCR:$mask), 4889 (VTI.Vec MQPR:$inactive)))), 4890 (VTI.Vec (inst (VTI.Vec MQPR:$Qm), (i32 rGPR:$val), 4891 ARMVCCThen, (VTI.Pred VCCR:$mask), 4892 (VTI.Vec MQPR:$inactive)))>; 4893 } 4894} 4895 4896// Patterns for vector-scalar instructions with FP operands 4897multiclass MVE_vec_scalar_fp_pat_m<SDNode unpred_op, Intrinsic pred_int, 4898 Instruction instr_f16, 4899 Instruction instr_f32> { 4900 let Predicates = [HasMVEFloat] in { 4901 // Unpredicated F16 4902 def : Pat<(v8f16 (unpred_op (v8f16 MQPR:$Qm), (v8f16 (ARMvdup rGPR:$val)))), 4903 (v8f16 (instr_f16 (v8f16 MQPR:$Qm), (i32 rGPR:$val)))>; 4904 // Unpredicated F32 4905 def : Pat<(v4f32 (unpred_op (v4f32 MQPR:$Qm), (v4f32 (ARMvdup rGPR:$val)))), 4906 (v4f32 (instr_f32 (v4f32 MQPR:$Qm), (i32 rGPR:$val)))>; 4907 // Predicated F16 4908 def : Pat<(v8f16 (pred_int (v8f16 MQPR:$Qm), (v8f16 (ARMvdup rGPR:$val)), 4909 (v8i1 VCCR:$mask), (v8f16 MQPR:$inactive))), 4910 (v8f16 (instr_f16 (v8f16 MQPR:$Qm), (i32 rGPR:$val), 4911 ARMVCCThen, (v8i1 VCCR:$mask), 4912 (v8f16 MQPR:$inactive)))>; 4913 // Preicated F32 4914 def : Pat<(v4f32 (pred_int (v4f32 MQPR:$Qm), (v4f32 (ARMvdup rGPR:$val)), 4915 (v4i1 VCCR:$mask), (v4f32 MQPR:$inactive))), 4916 (v4f32 (instr_f32 (v4f32 MQPR:$Qm), (i32 rGPR:$val), 4917 ARMVCCThen, (v4i1 VCCR:$mask), 4918 (v4f32 MQPR:$inactive)))>; 4919 } 4920} 4921 4922class MVE_VADDSUB_qr<string iname, string suffix, bits<2> size, 4923 bit bit_5, bit bit_12, bit bit_16, bit bit_28> 4924 : MVE_qDest_rSrc<iname, suffix, ""> { 4925 4926 let Inst{28} = bit_28; 4927 let Inst{21-20} = size; 4928 let Inst{16} = bit_16; 4929 let Inst{12} = bit_12; 4930 let Inst{8} = 0b1; 4931 let Inst{5} = bit_5; 4932 let validForTailPredication = 1; 4933} 4934 4935// Vector-scalar add/sub 4936multiclass MVE_VADDSUB_qr_m<string iname, MVEVectorVTInfo VTI, bit subtract, 4937 SDNode unpred_op, Intrinsic pred_int> { 4938 def "" : MVE_VADDSUB_qr<iname, VTI.Suffix, VTI.Size, 0b0, subtract, 0b1, 0b0>; 4939 defm : MVE_vec_scalar_int_pat_m<!cast<Instruction>(NAME), VTI, 4940 unpred_op, pred_int>; 4941} 4942 4943multiclass MVE_VADD_qr_m<MVEVectorVTInfo VTI> 4944 : MVE_VADDSUB_qr_m<"vadd", VTI, 0b0, add, int_arm_mve_add_predicated>; 4945 4946multiclass MVE_VSUB_qr_m<MVEVectorVTInfo VTI> 4947 : MVE_VADDSUB_qr_m<"vsub", VTI, 0b1, sub, int_arm_mve_sub_predicated>; 4948 4949defm MVE_VADD_qr_i8 : MVE_VADD_qr_m<MVE_v16i8>; 4950defm MVE_VADD_qr_i16 : MVE_VADD_qr_m<MVE_v8i16>; 4951defm MVE_VADD_qr_i32 : MVE_VADD_qr_m<MVE_v4i32>; 4952 4953defm MVE_VSUB_qr_i8 : MVE_VSUB_qr_m<MVE_v16i8>; 4954defm MVE_VSUB_qr_i16 : MVE_VSUB_qr_m<MVE_v8i16>; 4955defm MVE_VSUB_qr_i32 : MVE_VSUB_qr_m<MVE_v4i32>; 4956 4957// Vector-scalar saturating add/sub 4958multiclass MVE_VQADDSUB_qr_m<string iname, MVEVectorVTInfo VTI, bit subtract, 4959 SDNode unpred_op_s, SDNode unpred_op_u, 4960 Intrinsic pred_int> { 4961 def "" : MVE_VADDSUB_qr<iname, VTI.Suffix, VTI.Size, 0b1, subtract, 4962 0b0, VTI.Unsigned>; 4963 defvar unpred_op = !if(VTI.Unsigned, unpred_op_u, unpred_op_s); 4964 defm : MVE_vec_scalar_int_pat_m<!cast<Instruction>(NAME), VTI, 4965 unpred_op, pred_int, 0, 1>; 4966} 4967 4968multiclass MVE_VQADD_qr_m<MVEVectorVTInfo VTI> 4969 : MVE_VQADDSUB_qr_m<"vqadd", VTI, 0b0, saddsat, uaddsat, 4970 int_arm_mve_qadd_predicated>; 4971 4972multiclass MVE_VQSUB_qr_m<MVEVectorVTInfo VTI> 4973 : MVE_VQADDSUB_qr_m<"vqsub", VTI, 0b1, ssubsat, usubsat, 4974 int_arm_mve_qsub_predicated>; 4975 4976defm MVE_VQADD_qr_s8 : MVE_VQADD_qr_m<MVE_v16s8>; 4977defm MVE_VQADD_qr_s16 : MVE_VQADD_qr_m<MVE_v8s16>; 4978defm MVE_VQADD_qr_s32 : MVE_VQADD_qr_m<MVE_v4s32>; 4979defm MVE_VQADD_qr_u8 : MVE_VQADD_qr_m<MVE_v16u8>; 4980defm MVE_VQADD_qr_u16 : MVE_VQADD_qr_m<MVE_v8u16>; 4981defm MVE_VQADD_qr_u32 : MVE_VQADD_qr_m<MVE_v4u32>; 4982 4983defm MVE_VQSUB_qr_s8 : MVE_VQSUB_qr_m<MVE_v16s8>; 4984defm MVE_VQSUB_qr_s16 : MVE_VQSUB_qr_m<MVE_v8s16>; 4985defm MVE_VQSUB_qr_s32 : MVE_VQSUB_qr_m<MVE_v4s32>; 4986defm MVE_VQSUB_qr_u8 : MVE_VQSUB_qr_m<MVE_v16u8>; 4987defm MVE_VQSUB_qr_u16 : MVE_VQSUB_qr_m<MVE_v8u16>; 4988defm MVE_VQSUB_qr_u32 : MVE_VQSUB_qr_m<MVE_v4u32>; 4989 4990class MVE_VQDMULL_qr<string iname, string suffix, bit size, 4991 bit T, string cstr="", list<dag> pattern=[]> 4992 : MVE_qDest_rSrc<iname, suffix, cstr, pattern> { 4993 4994 let Inst{28} = size; 4995 let Inst{21-20} = 0b11; 4996 let Inst{16} = 0b0; 4997 let Inst{12} = T; 4998 let Inst{8} = 0b1; 4999 let Inst{5} = 0b1; 5000 let validForTailPredication = 1; 5001 let doubleWidthResult = 1; 5002} 5003 5004multiclass MVE_VQDMULL_qr_m<string iname, MVEVectorVTInfo VTI, bit size, 5005 bit T, string cstr> { 5006 def "" : MVE_VQDMULL_qr<iname, VTI.Suffix, size, T, cstr>; 5007 defvar Inst = !cast<Instruction>(NAME); 5008 5009 let Predicates = [HasMVEInt] in { 5010 // Unpredicated saturating multiply 5011 def : Pat<(VTI.DblVec (int_arm_mve_vqdmull (VTI.Vec MQPR:$Qm), 5012 (VTI.Vec (ARMvdup rGPR:$val)), 5013 (i32 T))), 5014 (VTI.DblVec (Inst (VTI.Vec MQPR:$Qm), (i32 rGPR:$val)))>; 5015 // Predicated saturating multiply 5016 def : Pat<(VTI.DblVec (int_arm_mve_vqdmull_predicated 5017 (VTI.Vec MQPR:$Qm), 5018 (VTI.Vec (ARMvdup rGPR:$val)), 5019 (i32 T), 5020 (VTI.DblPred VCCR:$mask), 5021 (VTI.DblVec MQPR:$inactive))), 5022 (VTI.DblVec (Inst (VTI.Vec MQPR:$Qm), (i32 rGPR:$val), 5023 ARMVCCThen, (VTI.DblPred VCCR:$mask), 5024 (VTI.DblVec MQPR:$inactive)))>; 5025 } 5026} 5027 5028multiclass MVE_VQDMULL_qr_halves<MVEVectorVTInfo VTI, bit size, string cstr=""> { 5029 defm bh : MVE_VQDMULL_qr_m<"vqdmullb", VTI, size, 0b0, cstr>; 5030 defm th : MVE_VQDMULL_qr_m<"vqdmullt", VTI, size, 0b1, cstr>; 5031} 5032 5033defm MVE_VQDMULL_qr_s16 : MVE_VQDMULL_qr_halves<MVE_v8s16, 0b0>; 5034defm MVE_VQDMULL_qr_s32 : MVE_VQDMULL_qr_halves<MVE_v4s32, 0b1, "@earlyclobber $Qd">; 5035 5036class MVE_VxADDSUB_qr<string iname, string suffix, 5037 bit bit_28, bits<2> bits_21_20, bit subtract, 5038 list<dag> pattern=[]> 5039 : MVE_qDest_rSrc<iname, suffix, "", pattern> { 5040 5041 let Inst{28} = bit_28; 5042 let Inst{21-20} = bits_21_20; 5043 let Inst{16} = 0b0; 5044 let Inst{12} = subtract; 5045 let Inst{8} = 0b1; 5046 let Inst{5} = 0b0; 5047 let validForTailPredication = 1; 5048} 5049 5050multiclass MVE_VHADDSUB_qr_m<string iname, MVEVectorVTInfo VTI, bit subtract, 5051 Intrinsic unpred_int, Intrinsic pred_int> { 5052 def "" : MVE_VxADDSUB_qr<iname, VTI.Suffix, VTI.Unsigned, VTI.Size, subtract>; 5053 defm : MVE_vec_scalar_int_pat_m<!cast<Instruction>(NAME), 5054 VTI, unpred_int, pred_int, 1, 1>; 5055} 5056 5057multiclass MVE_VHADD_qr_m<MVEVectorVTInfo VTI> : 5058 MVE_VHADDSUB_qr_m<"vhadd", VTI, 0b0, int_arm_mve_vhadd, 5059 int_arm_mve_hadd_predicated>; 5060 5061multiclass MVE_VHSUB_qr_m<MVEVectorVTInfo VTI> : 5062 MVE_VHADDSUB_qr_m<"vhsub", VTI, 0b1, int_arm_mve_vhsub, 5063 int_arm_mve_hsub_predicated>; 5064 5065defm MVE_VHADD_qr_s8 : MVE_VHADD_qr_m<MVE_v16s8>; 5066defm MVE_VHADD_qr_s16 : MVE_VHADD_qr_m<MVE_v8s16>; 5067defm MVE_VHADD_qr_s32 : MVE_VHADD_qr_m<MVE_v4s32>; 5068defm MVE_VHADD_qr_u8 : MVE_VHADD_qr_m<MVE_v16u8>; 5069defm MVE_VHADD_qr_u16 : MVE_VHADD_qr_m<MVE_v8u16>; 5070defm MVE_VHADD_qr_u32 : MVE_VHADD_qr_m<MVE_v4u32>; 5071 5072defm MVE_VHSUB_qr_s8 : MVE_VHSUB_qr_m<MVE_v16s8>; 5073defm MVE_VHSUB_qr_s16 : MVE_VHSUB_qr_m<MVE_v8s16>; 5074defm MVE_VHSUB_qr_s32 : MVE_VHSUB_qr_m<MVE_v4s32>; 5075defm MVE_VHSUB_qr_u8 : MVE_VHSUB_qr_m<MVE_v16u8>; 5076defm MVE_VHSUB_qr_u16 : MVE_VHSUB_qr_m<MVE_v8u16>; 5077defm MVE_VHSUB_qr_u32 : MVE_VHSUB_qr_m<MVE_v4u32>; 5078 5079let Predicates = [HasMVEFloat] in { 5080 def MVE_VADD_qr_f32 : MVE_VxADDSUB_qr<"vadd", "f32", 0b0, 0b11, 0b0>; 5081 def MVE_VADD_qr_f16 : MVE_VxADDSUB_qr<"vadd", "f16", 0b1, 0b11, 0b0>; 5082 5083 def MVE_VSUB_qr_f32 : MVE_VxADDSUB_qr<"vsub", "f32", 0b0, 0b11, 0b1>; 5084 def MVE_VSUB_qr_f16 : MVE_VxADDSUB_qr<"vsub", "f16", 0b1, 0b11, 0b1>; 5085} 5086 5087defm : MVE_vec_scalar_fp_pat_m<fadd, int_arm_mve_add_predicated, 5088 MVE_VADD_qr_f16, MVE_VADD_qr_f32>; 5089defm : MVE_vec_scalar_fp_pat_m<fsub, int_arm_mve_sub_predicated, 5090 MVE_VSUB_qr_f16, MVE_VSUB_qr_f32>; 5091 5092class MVE_VxSHL_qr<string iname, string suffix, bit U, bits<2> size, 5093 bit bit_7, bit bit_17, list<dag> pattern=[]> 5094 : MVE_qDest_single_rSrc<iname, suffix, pattern> { 5095 5096 let Inst{28} = U; 5097 let Inst{25-23} = 0b100; 5098 let Inst{21-20} = 0b11; 5099 let Inst{19-18} = size; 5100 let Inst{17} = bit_17; 5101 let Inst{16} = 0b1; 5102 let Inst{12-8} = 0b11110; 5103 let Inst{7} = bit_7; 5104 let Inst{6-4} = 0b110; 5105 let validForTailPredication = 1; 5106} 5107 5108multiclass MVE_VxSHL_qr_p<string iname, MVEVectorVTInfo VTI, bit q, bit r> { 5109 def "" : MVE_VxSHL_qr<iname, VTI.Suffix, VTI.Unsigned, VTI.Size, q, r>; 5110 defvar Inst = !cast<Instruction>(NAME); 5111 5112 def : Pat<(VTI.Vec (int_arm_mve_vshl_scalar 5113 (VTI.Vec MQPR:$in), (i32 rGPR:$sh), 5114 (i32 q), (i32 r), (i32 VTI.Unsigned))), 5115 (VTI.Vec (Inst (VTI.Vec MQPR:$in), (i32 rGPR:$sh)))>; 5116 5117 def : Pat<(VTI.Vec (int_arm_mve_vshl_scalar_predicated 5118 (VTI.Vec MQPR:$in), (i32 rGPR:$sh), 5119 (i32 q), (i32 r), (i32 VTI.Unsigned), 5120 (VTI.Pred VCCR:$mask))), 5121 (VTI.Vec (Inst (VTI.Vec MQPR:$in), (i32 rGPR:$sh), 5122 ARMVCCThen, (VTI.Pred VCCR:$mask)))>; 5123} 5124 5125multiclass MVE_VxSHL_qr_types<string iname, bit bit_7, bit bit_17> { 5126 defm s8 : MVE_VxSHL_qr_p<iname, MVE_v16s8, bit_7, bit_17>; 5127 defm s16 : MVE_VxSHL_qr_p<iname, MVE_v8s16, bit_7, bit_17>; 5128 defm s32 : MVE_VxSHL_qr_p<iname, MVE_v4s32, bit_7, bit_17>; 5129 defm u8 : MVE_VxSHL_qr_p<iname, MVE_v16u8, bit_7, bit_17>; 5130 defm u16 : MVE_VxSHL_qr_p<iname, MVE_v8u16, bit_7, bit_17>; 5131 defm u32 : MVE_VxSHL_qr_p<iname, MVE_v4u32, bit_7, bit_17>; 5132} 5133 5134defm MVE_VSHL_qr : MVE_VxSHL_qr_types<"vshl", 0b0, 0b0>; 5135defm MVE_VRSHL_qr : MVE_VxSHL_qr_types<"vrshl", 0b0, 0b1>; 5136defm MVE_VQSHL_qr : MVE_VxSHL_qr_types<"vqshl", 0b1, 0b0>; 5137defm MVE_VQRSHL_qr : MVE_VxSHL_qr_types<"vqrshl", 0b1, 0b1>; 5138 5139let Predicates = [HasMVEInt] in { 5140 def : Pat<(v4i32 (ARMvshlu (v4i32 MQPR:$Qm), (v4i32 (ARMvdup rGPR:$Rm)))), 5141 (v4i32 (MVE_VSHL_qru32 (v4i32 MQPR:$Qm), rGPR:$Rm))>; 5142 def : Pat<(v8i16 (ARMvshlu (v8i16 MQPR:$Qm), (v8i16 (ARMvdup rGPR:$Rm)))), 5143 (v8i16 (MVE_VSHL_qru16 (v8i16 MQPR:$Qm), rGPR:$Rm))>; 5144 def : Pat<(v16i8 (ARMvshlu (v16i8 MQPR:$Qm), (v16i8 (ARMvdup rGPR:$Rm)))), 5145 (v16i8 (MVE_VSHL_qru8 (v16i8 MQPR:$Qm), rGPR:$Rm))>; 5146 5147 def : Pat<(v4i32 (ARMvshls (v4i32 MQPR:$Qm), (v4i32 (ARMvdup rGPR:$Rm)))), 5148 (v4i32 (MVE_VSHL_qrs32 (v4i32 MQPR:$Qm), rGPR:$Rm))>; 5149 def : Pat<(v8i16 (ARMvshls (v8i16 MQPR:$Qm), (v8i16 (ARMvdup rGPR:$Rm)))), 5150 (v8i16 (MVE_VSHL_qrs16 (v8i16 MQPR:$Qm), rGPR:$Rm))>; 5151 def : Pat<(v16i8 (ARMvshls (v16i8 MQPR:$Qm), (v16i8 (ARMvdup rGPR:$Rm)))), 5152 (v16i8 (MVE_VSHL_qrs8 (v16i8 MQPR:$Qm), rGPR:$Rm))>; 5153} 5154 5155class MVE_VBRSR<string iname, string suffix, bits<2> size, list<dag> pattern=[]> 5156 : MVE_qDest_rSrc<iname, suffix, "", pattern> { 5157 5158 let Inst{28} = 0b1; 5159 let Inst{21-20} = size; 5160 let Inst{16} = 0b1; 5161 let Inst{12} = 0b1; 5162 let Inst{8} = 0b0; 5163 let Inst{5} = 0b1; 5164 let validForTailPredication = 1; 5165} 5166 5167def MVE_VBRSR8 : MVE_VBRSR<"vbrsr", "8", 0b00>; 5168def MVE_VBRSR16 : MVE_VBRSR<"vbrsr", "16", 0b01>; 5169def MVE_VBRSR32 : MVE_VBRSR<"vbrsr", "32", 0b10>; 5170 5171multiclass MVE_VBRSR_pat_m<MVEVectorVTInfo VTI, Instruction Inst> { 5172 // Unpredicated 5173 def : Pat<(VTI.Vec (int_arm_mve_vbrsr (VTI.Vec MQPR:$Qn), (i32 rGPR:$Rm))), 5174 (VTI.Vec (Inst (VTI.Vec MQPR:$Qn), (i32 rGPR:$Rm)))>; 5175 // Predicated 5176 def : Pat<(VTI.Vec (int_arm_mve_vbrsr_predicated 5177 (VTI.Vec MQPR:$inactive), 5178 (VTI.Vec MQPR:$Qn), (i32 rGPR:$Rm), 5179 (VTI.Pred VCCR:$mask))), 5180 (VTI.Vec (Inst (VTI.Vec MQPR:$Qn), (i32 rGPR:$Rm), 5181 ARMVCCThen, (VTI.Pred VCCR:$mask), 5182 (VTI.Vec MQPR:$inactive)))>; 5183} 5184 5185let Predicates = [HasMVEInt] in { 5186 def : Pat<(v16i8 ( bitreverse (v16i8 MQPR:$val1))), 5187 (v16i8 ( MVE_VBRSR8 (v16i8 MQPR:$val1), (t2MOVi (i32 8)) ))>; 5188 5189 def : Pat<(v4i32 ( bitreverse (v4i32 MQPR:$val1))), 5190 (v4i32 ( MVE_VBRSR32 (v4i32 MQPR:$val1), (t2MOVi (i32 32)) ))>; 5191 5192 def : Pat<(v8i16 ( bitreverse (v8i16 MQPR:$val1))), 5193 (v8i16 ( MVE_VBRSR16 (v8i16 MQPR:$val1), (t2MOVi (i32 16)) ))>; 5194 5195 defm : MVE_VBRSR_pat_m<MVE_v16i8, MVE_VBRSR8>; 5196 defm : MVE_VBRSR_pat_m<MVE_v8i16, MVE_VBRSR16>; 5197 defm : MVE_VBRSR_pat_m<MVE_v4i32, MVE_VBRSR32>; 5198} 5199 5200let Predicates = [HasMVEFloat] in { 5201 defm : MVE_VBRSR_pat_m<MVE_v8f16, MVE_VBRSR16>; 5202 defm : MVE_VBRSR_pat_m<MVE_v4f32, MVE_VBRSR32>; 5203} 5204 5205class MVE_VMUL_qr_int<string iname, string suffix, bits<2> size> 5206 : MVE_qDest_rSrc<iname, suffix, ""> { 5207 5208 let Inst{28} = 0b0; 5209 let Inst{21-20} = size; 5210 let Inst{16} = 0b1; 5211 let Inst{12} = 0b1; 5212 let Inst{8} = 0b0; 5213 let Inst{5} = 0b1; 5214 let validForTailPredication = 1; 5215} 5216 5217multiclass MVE_VMUL_qr_int_m<MVEVectorVTInfo VTI> { 5218 def "" : MVE_VMUL_qr_int<"vmul", VTI.Suffix, VTI.Size>; 5219 defm : MVE_vec_scalar_int_pat_m<!cast<Instruction>(NAME), VTI, 5220 mul, int_arm_mve_mul_predicated>; 5221} 5222 5223defm MVE_VMUL_qr_i8 : MVE_VMUL_qr_int_m<MVE_v16i8>; 5224defm MVE_VMUL_qr_i16 : MVE_VMUL_qr_int_m<MVE_v8i16>; 5225defm MVE_VMUL_qr_i32 : MVE_VMUL_qr_int_m<MVE_v4i32>; 5226 5227class MVE_VxxMUL_qr<string iname, string suffix, 5228 bit bit_28, bits<2> bits_21_20, list<dag> pattern=[]> 5229 : MVE_qDest_rSrc<iname, suffix, "", pattern> { 5230 5231 let Inst{28} = bit_28; 5232 let Inst{21-20} = bits_21_20; 5233 let Inst{16} = 0b1; 5234 let Inst{12} = 0b0; 5235 let Inst{8} = 0b0; 5236 let Inst{5} = 0b1; 5237} 5238 5239multiclass MVE_VxxMUL_qr_m<string iname, MVEVectorVTInfo VTI, bit bit_28, 5240 Intrinsic int_unpred, Intrinsic int_pred> { 5241 def "" : MVE_VxxMUL_qr<iname, VTI.Suffix, bit_28, VTI.Size>; 5242 defm : MVE_vec_scalar_int_pat_m<!cast<Instruction>(NAME), VTI, 5243 int_unpred, int_pred>; 5244} 5245 5246multiclass MVE_VQDMULH_qr_m<MVEVectorVTInfo VTI> : 5247 MVE_VxxMUL_qr_m<"vqdmulh", VTI, 0b0, 5248 int_arm_mve_vqdmulh, int_arm_mve_qdmulh_predicated>; 5249 5250multiclass MVE_VQRDMULH_qr_m<MVEVectorVTInfo VTI> : 5251 MVE_VxxMUL_qr_m<"vqrdmulh", VTI, 0b1, 5252 int_arm_mve_vqrdmulh, int_arm_mve_qrdmulh_predicated>; 5253 5254defm MVE_VQDMULH_qr_s8 : MVE_VQDMULH_qr_m<MVE_v16s8>; 5255defm MVE_VQDMULH_qr_s16 : MVE_VQDMULH_qr_m<MVE_v8s16>; 5256defm MVE_VQDMULH_qr_s32 : MVE_VQDMULH_qr_m<MVE_v4s32>; 5257 5258defm MVE_VQRDMULH_qr_s8 : MVE_VQRDMULH_qr_m<MVE_v16s8>; 5259defm MVE_VQRDMULH_qr_s16 : MVE_VQRDMULH_qr_m<MVE_v8s16>; 5260defm MVE_VQRDMULH_qr_s32 : MVE_VQRDMULH_qr_m<MVE_v4s32>; 5261 5262let Predicates = [HasMVEFloat], validForTailPredication = 1 in { 5263 def MVE_VMUL_qr_f16 : MVE_VxxMUL_qr<"vmul", "f16", 0b1, 0b11>; 5264 def MVE_VMUL_qr_f32 : MVE_VxxMUL_qr<"vmul", "f32", 0b0, 0b11>; 5265} 5266 5267defm : MVE_vec_scalar_fp_pat_m<fmul, int_arm_mve_mul_predicated, 5268 MVE_VMUL_qr_f16, MVE_VMUL_qr_f32>; 5269 5270class MVE_VFMAMLA_qr<string iname, string suffix, 5271 bit bit_28, bits<2> bits_21_20, bit S, 5272 list<dag> pattern=[]> 5273 : MVE_qDestSrc_rSrc<iname, suffix, pattern> { 5274 5275 let Inst{28} = bit_28; 5276 let Inst{21-20} = bits_21_20; 5277 let Inst{16} = 0b1; 5278 let Inst{12} = S; 5279 let Inst{8} = 0b0; 5280 let Inst{5} = 0b0; 5281 let validForTailPredication = 1; 5282 let hasSideEffects = 0; 5283} 5284 5285multiclass MVE_VMLA_qr_multi<string iname, MVEVectorVTInfo VTI, 5286 bit scalar_addend> { 5287 def "": MVE_VFMAMLA_qr<iname, VTI.Suffix, VTI.Unsigned, VTI.Size, 5288 scalar_addend>; 5289 defvar Inst = !cast<Instruction>(NAME); 5290 defvar pred_int = !cast<Intrinsic>("int_arm_mve_" # iname # "_n_predicated"); 5291 defvar v1 = (VTI.Vec MQPR:$v1); 5292 defvar v2 = (VTI.Vec MQPR:$v2); 5293 defvar vs = (VTI.Vec (ARMvdup rGPR:$s)); 5294 defvar s = (i32 rGPR:$s); 5295 defvar pred = (VTI.Pred VCCR:$pred); 5296 5297 // The signed and unsigned variants of this instruction have different 5298 // encodings, but they're functionally identical. For the sake of 5299 // determinism, we generate only the unsigned variant. 5300 if VTI.Unsigned then let Predicates = [HasMVEInt] in { 5301 if scalar_addend then { 5302 def : Pat<(VTI.Vec (add (mul v1, v2), vs)), 5303 (VTI.Vec (Inst v1, v2, s))>; 5304 } else { 5305 def : Pat<(VTI.Vec (add (mul v2, vs), v1)), 5306 (VTI.Vec (Inst v1, v2, s))>; 5307 } 5308 5309 def : Pat<(VTI.Vec (pred_int v1, v2, s, pred)), 5310 (VTI.Vec (Inst v1, v2, s, ARMVCCThen, pred))>; 5311 } 5312} 5313 5314defm MVE_VMLA_qr_s8 : MVE_VMLA_qr_multi<"vmla", MVE_v16s8, 0b0>; 5315defm MVE_VMLA_qr_s16 : MVE_VMLA_qr_multi<"vmla", MVE_v8s16, 0b0>; 5316defm MVE_VMLA_qr_s32 : MVE_VMLA_qr_multi<"vmla", MVE_v4s32, 0b0>; 5317defm MVE_VMLA_qr_u8 : MVE_VMLA_qr_multi<"vmla", MVE_v16u8, 0b0>; 5318defm MVE_VMLA_qr_u16 : MVE_VMLA_qr_multi<"vmla", MVE_v8u16, 0b0>; 5319defm MVE_VMLA_qr_u32 : MVE_VMLA_qr_multi<"vmla", MVE_v4u32, 0b0>; 5320 5321defm MVE_VMLAS_qr_s8 : MVE_VMLA_qr_multi<"vmlas", MVE_v16s8, 0b1>; 5322defm MVE_VMLAS_qr_s16 : MVE_VMLA_qr_multi<"vmlas", MVE_v8s16, 0b1>; 5323defm MVE_VMLAS_qr_s32 : MVE_VMLA_qr_multi<"vmlas", MVE_v4s32, 0b1>; 5324defm MVE_VMLAS_qr_u8 : MVE_VMLA_qr_multi<"vmlas", MVE_v16u8, 0b1>; 5325defm MVE_VMLAS_qr_u16 : MVE_VMLA_qr_multi<"vmlas", MVE_v8u16, 0b1>; 5326defm MVE_VMLAS_qr_u32 : MVE_VMLA_qr_multi<"vmlas", MVE_v4u32, 0b1>; 5327 5328multiclass MVE_VFMA_qr_multi<string iname, MVEVectorVTInfo VTI, 5329 bit scalar_addend> { 5330 def "": MVE_VFMAMLA_qr<iname, VTI.Suffix, VTI.Size{0}, 0b11, scalar_addend>; 5331 defvar Inst = !cast<Instruction>(NAME); 5332 defvar pred_int = int_arm_mve_fma_predicated; 5333 defvar v1 = (VTI.Vec MQPR:$v1); 5334 defvar v2 = (VTI.Vec MQPR:$v2); 5335 defvar vs = (VTI.Vec (ARMvdup (i32 rGPR:$s))); 5336 defvar is = (i32 rGPR:$s); 5337 defvar pred = (VTI.Pred VCCR:$pred); 5338 5339 let Predicates = [HasMVEFloat] in { 5340 if scalar_addend then { 5341 def : Pat<(VTI.Vec (fma v1, v2, vs)), 5342 (VTI.Vec (Inst v1, v2, is))>; 5343 def : Pat<(VTI.Vec (pred_int v1, v2, vs, pred)), 5344 (VTI.Vec (Inst v1, v2, is, ARMVCCThen, pred))>; 5345 } else { 5346 def : Pat<(VTI.Vec (fma v1, vs, v2)), 5347 (VTI.Vec (Inst v2, v1, is))>; 5348 def : Pat<(VTI.Vec (fma vs, v1, v2)), 5349 (VTI.Vec (Inst v2, v1, is))>; 5350 def : Pat<(VTI.Vec (pred_int v1, vs, v2, pred)), 5351 (VTI.Vec (Inst v2, v1, is, ARMVCCThen, pred))>; 5352 def : Pat<(VTI.Vec (pred_int vs, v1, v2, pred)), 5353 (VTI.Vec (Inst v2, v1, is, ARMVCCThen, pred))>; 5354 } 5355 } 5356} 5357 5358let Predicates = [HasMVEFloat] in { 5359 defm MVE_VFMA_qr_f16 : MVE_VFMA_qr_multi<"vfma", MVE_v8f16, 0>; 5360 defm MVE_VFMA_qr_f32 : MVE_VFMA_qr_multi<"vfma", MVE_v4f32, 0>; 5361 defm MVE_VFMA_qr_Sf16 : MVE_VFMA_qr_multi<"vfmas", MVE_v8f16, 1>; 5362 defm MVE_VFMA_qr_Sf32 : MVE_VFMA_qr_multi<"vfmas", MVE_v4f32, 1>; 5363} 5364 5365class MVE_VQDMLAH_qr<string iname, string suffix, bit U, bits<2> size, 5366 bit bit_5, bit bit_12, list<dag> pattern=[]> 5367 : MVE_qDestSrc_rSrc<iname, suffix, pattern> { 5368 5369 let Inst{28} = U; 5370 let Inst{21-20} = size; 5371 let Inst{16} = 0b0; 5372 let Inst{12} = bit_12; 5373 let Inst{8} = 0b0; 5374 let Inst{5} = bit_5; 5375} 5376 5377multiclass MVE_VQDMLAH_qr_multi<string iname, MVEVectorVTInfo VTI, 5378 bit bit_5, bit bit_12> { 5379 def "": MVE_VQDMLAH_qr<iname, VTI.Suffix, 0b0, VTI.Size, bit_5, bit_12>; 5380 defvar Inst = !cast<Instruction>(NAME); 5381 defvar unpred_int = !cast<Intrinsic>("int_arm_mve_" # iname); 5382 defvar pred_int = !cast<Intrinsic>("int_arm_mve_" # iname # "_predicated"); 5383 5384 let Predicates = [HasMVEInt] in { 5385 def : Pat<(VTI.Vec (unpred_int (VTI.Vec MQPR:$v1), (VTI.Vec MQPR:$v2), 5386 (i32 rGPR:$s))), 5387 (VTI.Vec (Inst (VTI.Vec MQPR:$v1), (VTI.Vec MQPR:$v2), 5388 (i32 rGPR:$s)))>; 5389 def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$v1), (VTI.Vec MQPR:$v2), 5390 (i32 rGPR:$s), (VTI.Pred VCCR:$pred))), 5391 (VTI.Vec (Inst (VTI.Vec MQPR:$v1), (VTI.Vec MQPR:$v2), 5392 (i32 rGPR:$s), ARMVCCThen, 5393 (VTI.Pred VCCR:$pred)))>; 5394 } 5395} 5396 5397multiclass MVE_VQDMLAH_qr_types<string iname, bit bit_5, bit bit_12> { 5398 defm s8 : MVE_VQDMLAH_qr_multi<iname, MVE_v16s8, bit_5, bit_12>; 5399 defm s16 : MVE_VQDMLAH_qr_multi<iname, MVE_v8s16, bit_5, bit_12>; 5400 defm s32 : MVE_VQDMLAH_qr_multi<iname, MVE_v4s32, bit_5, bit_12>; 5401} 5402 5403defm MVE_VQDMLAH_qr : MVE_VQDMLAH_qr_types<"vqdmlah", 0b1, 0b0>; 5404defm MVE_VQRDMLAH_qr : MVE_VQDMLAH_qr_types<"vqrdmlah", 0b0, 0b0>; 5405defm MVE_VQDMLASH_qr : MVE_VQDMLAH_qr_types<"vqdmlash", 0b1, 0b1>; 5406defm MVE_VQRDMLASH_qr : MVE_VQDMLAH_qr_types<"vqrdmlash", 0b0, 0b1>; 5407 5408class MVE_VxDUP<string iname, string suffix, bits<2> size, bit bit_12, 5409 list<dag> pattern=[]> 5410 : MVE_p<(outs MQPR:$Qd, tGPREven:$Rn), 5411 (ins tGPREven:$Rn_src, MVE_VIDUP_imm:$imm), NoItinerary, 5412 iname, suffix, "$Qd, $Rn, $imm", vpred_r, "$Rn = $Rn_src", 5413 pattern> { 5414 bits<4> Qd; 5415 bits<4> Rn; 5416 bits<2> imm; 5417 5418 let Inst{28} = 0b0; 5419 let Inst{25-23} = 0b100; 5420 let Inst{22} = Qd{3}; 5421 let Inst{21-20} = size; 5422 let Inst{19-17} = Rn{3-1}; 5423 let Inst{16} = 0b1; 5424 let Inst{15-13} = Qd{2-0}; 5425 let Inst{12} = bit_12; 5426 let Inst{11-8} = 0b1111; 5427 let Inst{7} = imm{1}; 5428 let Inst{6-1} = 0b110111; 5429 let Inst{0} = imm{0}; 5430 let validForTailPredication = 1; 5431 let hasSideEffects = 0; 5432} 5433 5434def MVE_VIDUPu8 : MVE_VxDUP<"vidup", "u8", 0b00, 0b0>; 5435def MVE_VIDUPu16 : MVE_VxDUP<"vidup", "u16", 0b01, 0b0>; 5436def MVE_VIDUPu32 : MVE_VxDUP<"vidup", "u32", 0b10, 0b0>; 5437 5438def MVE_VDDUPu8 : MVE_VxDUP<"vddup", "u8", 0b00, 0b1>; 5439def MVE_VDDUPu16 : MVE_VxDUP<"vddup", "u16", 0b01, 0b1>; 5440def MVE_VDDUPu32 : MVE_VxDUP<"vddup", "u32", 0b10, 0b1>; 5441 5442class MVE_VxWDUP<string iname, string suffix, bits<2> size, bit bit_12, 5443 list<dag> pattern=[]> 5444 : MVE_p<(outs MQPR:$Qd, tGPREven:$Rn), 5445 (ins tGPREven:$Rn_src, tGPROdd:$Rm, MVE_VIDUP_imm:$imm), NoItinerary, 5446 iname, suffix, "$Qd, $Rn, $Rm, $imm", vpred_r, "$Rn = $Rn_src", 5447 pattern> { 5448 bits<4> Qd; 5449 bits<4> Rm; 5450 bits<4> Rn; 5451 bits<2> imm; 5452 5453 let Inst{28} = 0b0; 5454 let Inst{25-23} = 0b100; 5455 let Inst{22} = Qd{3}; 5456 let Inst{21-20} = size; 5457 let Inst{19-17} = Rn{3-1}; 5458 let Inst{16} = 0b1; 5459 let Inst{15-13} = Qd{2-0}; 5460 let Inst{12} = bit_12; 5461 let Inst{11-8} = 0b1111; 5462 let Inst{7} = imm{1}; 5463 let Inst{6-4} = 0b110; 5464 let Inst{3-1} = Rm{3-1}; 5465 let Inst{0} = imm{0}; 5466 let validForTailPredication = 1; 5467 let hasSideEffects = 0; 5468} 5469 5470def MVE_VIWDUPu8 : MVE_VxWDUP<"viwdup", "u8", 0b00, 0b0>; 5471def MVE_VIWDUPu16 : MVE_VxWDUP<"viwdup", "u16", 0b01, 0b0>; 5472def MVE_VIWDUPu32 : MVE_VxWDUP<"viwdup", "u32", 0b10, 0b0>; 5473 5474def MVE_VDWDUPu8 : MVE_VxWDUP<"vdwdup", "u8", 0b00, 0b1>; 5475def MVE_VDWDUPu16 : MVE_VxWDUP<"vdwdup", "u16", 0b01, 0b1>; 5476def MVE_VDWDUPu32 : MVE_VxWDUP<"vdwdup", "u32", 0b10, 0b1>; 5477 5478let hasSideEffects = 1 in 5479class MVE_VCTPInst<string suffix, bits<2> size, list<dag> pattern=[]> 5480 : MVE_p<(outs VCCR:$P0), (ins rGPR:$Rn), NoItinerary, "vctp", suffix, 5481 "$Rn", vpred_n, "", pattern> { 5482 bits<4> Rn; 5483 5484 let Inst{28-27} = 0b10; 5485 let Inst{26-22} = 0b00000; 5486 let Inst{21-20} = size; 5487 let Inst{19-16} = Rn{3-0}; 5488 let Inst{15-11} = 0b11101; 5489 let Inst{10-0} = 0b00000000001; 5490 let Unpredictable{10-0} = 0b11111111111; 5491 5492 let Constraints = ""; 5493 let DecoderMethod = "DecodeMveVCTP"; 5494 let validForTailPredication = 1; 5495} 5496 5497multiclass MVE_VCTP<MVEVectorVTInfo VTI, Intrinsic intr> { 5498 def "": MVE_VCTPInst<VTI.BitsSuffix, VTI.Size>; 5499 defvar Inst = !cast<Instruction>(NAME); 5500 5501 let Predicates = [HasMVEInt] in { 5502 def : Pat<(intr rGPR:$Rn), (VTI.Pred (Inst rGPR:$Rn))>; 5503 def : Pat<(and (intr rGPR:$Rn), (VTI.Pred VCCR:$mask)), 5504 (VTI.Pred (Inst rGPR:$Rn, ARMVCCThen, VCCR:$mask))>; 5505 } 5506} 5507 5508defm MVE_VCTP8 : MVE_VCTP<MVE_v16i8, int_arm_mve_vctp8>; 5509defm MVE_VCTP16 : MVE_VCTP<MVE_v8i16, int_arm_mve_vctp16>; 5510defm MVE_VCTP32 : MVE_VCTP<MVE_v4i32, int_arm_mve_vctp32>; 5511defm MVE_VCTP64 : MVE_VCTP<MVE_v2i64, int_arm_mve_vctp64>; 5512 5513// end of mve_qDest_rSrc 5514 5515// start of coproc mov 5516 5517class MVE_VMOV_64bit<dag oops, dag iops, bit to_qreg, string ops, string cstr> 5518 : MVE_VMOV_lane_base<oops, !con(iops, (ins MVEPairVectorIndex2:$idx, 5519 MVEPairVectorIndex0:$idx2)), 5520 NoItinerary, "vmov", "", ops, cstr, []> { 5521 bits<5> Rt; 5522 bits<5> Rt2; 5523 bits<4> Qd; 5524 bit idx; 5525 bit idx2; 5526 5527 let Inst{31-23} = 0b111011000; 5528 let Inst{22} = Qd{3}; 5529 let Inst{21} = 0b0; 5530 let Inst{20} = to_qreg; 5531 let Inst{19-16} = Rt2{3-0}; 5532 let Inst{15-13} = Qd{2-0}; 5533 let Inst{12-5} = 0b01111000; 5534 let Inst{4} = idx2; 5535 let Inst{3-0} = Rt{3-0}; 5536 5537 let hasSideEffects = 0; 5538} 5539 5540// The assembly syntax for these instructions mentions the vector 5541// register name twice, e.g. 5542// 5543// vmov q2[2], q2[0], r0, r1 5544// vmov r0, r1, q2[2], q2[0] 5545// 5546// which needs a bit of juggling with MC operand handling. 5547// 5548// For the move _into_ a vector register, the MC operand list also has 5549// to mention the register name twice: once as the output, and once as 5550// an extra input to represent where the unchanged half of the output 5551// register comes from (when this instruction is used in code 5552// generation). So we arrange that the first mention of the vector reg 5553// in the instruction is considered by the AsmMatcher to be the output 5554// ($Qd), and the second one is the input ($QdSrc). Binding them 5555// together with the existing 'tie' constraint is enough to enforce at 5556// register allocation time that they have to be the same register. 5557// 5558// For the move _from_ a vector register, there's no way to get round 5559// the fact that both instances of that register name have to be 5560// inputs. They have to be the same register again, but this time, we 5561// can't use a tie constraint, because that has to be between an 5562// output and an input operand. So this time, we have to arrange that 5563// the q-reg appears just once in the MC operand list, in spite of 5564// being mentioned twice in the asm syntax - which needs a custom 5565// AsmMatchConverter. 5566 5567def MVE_VMOV_q_rr : MVE_VMOV_64bit<(outs MQPR:$Qd), 5568 (ins MQPR:$QdSrc, rGPR:$Rt, rGPR:$Rt2), 5569 0b1, "$Qd$idx, $QdSrc$idx2, $Rt, $Rt2", 5570 "$Qd = $QdSrc"> { 5571 let DecoderMethod = "DecodeMVEVMOVDRegtoQ"; 5572} 5573 5574def MVE_VMOV_rr_q : MVE_VMOV_64bit<(outs rGPR:$Rt, rGPR:$Rt2), (ins MQPR:$Qd), 5575 0b0, "$Rt, $Rt2, $Qd$idx, $Qd$idx2", ""> { 5576 let DecoderMethod = "DecodeMVEVMOVQtoDReg"; 5577 let AsmMatchConverter = "cvtMVEVMOVQtoDReg"; 5578} 5579 5580// end of coproc mov 5581 5582// start of MVE interleaving load/store 5583 5584// Base class for the family of interleaving/deinterleaving 5585// load/stores with names like VLD20.8 and VST43.32. 5586class MVE_vldst24_base<bit writeback, bit fourregs, bits<2> stage, bits<2> size, 5587 bit load, dag Oops, dag loadIops, dag wbIops, 5588 string iname, string ops, 5589 string cstr, list<dag> pattern=[]> 5590 : MVE_MI<Oops, !con(loadIops, wbIops), NoItinerary, iname, ops, cstr, pattern> { 5591 bits<4> VQd; 5592 bits<4> Rn; 5593 5594 let Inst{31-22} = 0b1111110010; 5595 let Inst{21} = writeback; 5596 let Inst{20} = load; 5597 let Inst{19-16} = Rn; 5598 let Inst{15-13} = VQd{2-0}; 5599 let Inst{12-9} = 0b1111; 5600 let Inst{8-7} = size; 5601 let Inst{6-5} = stage; 5602 let Inst{4-1} = 0b0000; 5603 let Inst{0} = fourregs; 5604 5605 let mayLoad = load; 5606 let mayStore = !eq(load,0); 5607 let hasSideEffects = 0; 5608} 5609 5610// A parameter class used to encapsulate all the ways the writeback 5611// variants of VLD20 and friends differ from the non-writeback ones. 5612class MVE_vldst24_writeback<bit b, dag Oo, dag Io, 5613 string sy="", string c="", string n=""> { 5614 bit writeback = b; 5615 dag Oops = Oo; 5616 dag Iops = Io; 5617 string syntax = sy; 5618 string cstr = c; 5619 string id_suffix = n; 5620} 5621 5622// Another parameter class that encapsulates the differences between VLD2x 5623// and VLD4x. 5624class MVE_vldst24_nvecs<int n, list<int> s, bit b, RegisterOperand vl> { 5625 int nvecs = n; 5626 list<int> stages = s; 5627 bit bit0 = b; 5628 RegisterOperand VecList = vl; 5629} 5630 5631// A third parameter class that distinguishes VLDnn.8 from .16 from .32. 5632class MVE_vldst24_lanesize<int i, bits<2> b> { 5633 int lanesize = i; 5634 bits<2> sizebits = b; 5635} 5636 5637// A base class for each direction of transfer: one for load, one for 5638// store. I can't make these a fourth independent parametric tuple 5639// class, because they have to take the nvecs tuple class as a 5640// parameter, in order to find the right VecList operand type. 5641 5642class MVE_vld24_base<MVE_vldst24_nvecs n, bits<2> pat, bits<2> size, 5643 MVE_vldst24_writeback wb, string iname, 5644 list<dag> pattern=[]> 5645 : MVE_vldst24_base<wb.writeback, n.bit0, pat, size, 1, 5646 !con((outs n.VecList:$VQd), wb.Oops), 5647 (ins n.VecList:$VQdSrc), wb.Iops, 5648 iname, "$VQd, $Rn" # wb.syntax, 5649 wb.cstr # ",$VQdSrc = $VQd", pattern>; 5650 5651class MVE_vst24_base<MVE_vldst24_nvecs n, bits<2> pat, bits<2> size, 5652 MVE_vldst24_writeback wb, string iname, 5653 list<dag> pattern=[]> 5654 : MVE_vldst24_base<wb.writeback, n.bit0, pat, size, 0, 5655 wb.Oops, (ins n.VecList:$VQd), wb.Iops, 5656 iname, "$VQd, $Rn" # wb.syntax, 5657 wb.cstr, pattern>; 5658 5659// Actually define all the interleaving loads and stores, by a series 5660// of nested foreaches over number of vectors (VLD2/VLD4); stage 5661// within one of those series (VLDx0/VLDx1/VLDx2/VLDx3); size of 5662// vector lane; writeback or no writeback. 5663foreach n = [MVE_vldst24_nvecs<2, [0,1], 0, VecList2Q>, 5664 MVE_vldst24_nvecs<4, [0,1,2,3], 1, VecList4Q>] in 5665foreach stage = n.stages in 5666foreach s = [MVE_vldst24_lanesize< 8, 0b00>, 5667 MVE_vldst24_lanesize<16, 0b01>, 5668 MVE_vldst24_lanesize<32, 0b10>] in 5669foreach wb = [MVE_vldst24_writeback< 5670 1, (outs rGPR:$wb), (ins t2_nosp_addr_offset_none:$Rn), 5671 "!", "$Rn.base = $wb", "_wb">, 5672 MVE_vldst24_writeback<0, (outs), (ins t2_addr_offset_none:$Rn)>] in { 5673 5674 // For each case within all of those foreaches, define the actual 5675 // instructions. The def names are made by gluing together pieces 5676 // from all the parameter classes, and will end up being things like 5677 // MVE_VLD20_8 and MVE_VST43_16_wb. 5678 5679 def "MVE_VLD" # n.nvecs # stage # "_" # s.lanesize # wb.id_suffix 5680 : MVE_vld24_base<n, stage, s.sizebits, wb, 5681 "vld" # n.nvecs # stage # "." # s.lanesize>; 5682 5683 def "MVE_VST" # n.nvecs # stage # "_" # s.lanesize # wb.id_suffix 5684 : MVE_vst24_base<n, stage, s.sizebits, wb, 5685 "vst" # n.nvecs # stage # "." # s.lanesize>; 5686} 5687 5688def SDTARMVST2 : SDTypeProfile<1, 5, [SDTCisPtrTy<0>, SDTCisPtrTy<1>, SDTCisVT<2, i32>, SDTCisVec<3>, 5689 SDTCisSameAs<3, 4>, SDTCisVT<5, i32>]>; 5690def SDTARMVST4 : SDTypeProfile<1, 7, [SDTCisPtrTy<0>, SDTCisPtrTy<1>, SDTCisVT<2, i32>, SDTCisVec<3>, 5691 SDTCisSameAs<3, 4>, SDTCisSameAs<3, 5>, 5692 SDTCisSameAs<3, 6>, SDTCisVT<7, i32>]>; 5693def MVEVST2UPD : SDNode<"ARMISD::VST2_UPD", SDTARMVST2, [SDNPHasChain]>; 5694def MVEVST4UPD : SDNode<"ARMISD::VST4_UPD", SDTARMVST4, [SDNPHasChain]>; 5695 5696multiclass MVE_vst24_patterns<int lanesize, ValueType VT> { 5697 foreach stage = [0,1] in 5698 def : Pat<(int_arm_mve_vst2q i32:$addr, 5699 (VT MQPR:$v0), (VT MQPR:$v1), (i32 stage)), 5700 (!cast<Instruction>("MVE_VST2"#stage#"_"#lanesize) 5701 (REG_SEQUENCE QQPR, VT:$v0, qsub_0, VT:$v1, qsub_1), 5702 t2_addr_offset_none:$addr)>; 5703 foreach stage = [0,1] in 5704 def : Pat<(i32 (MVEVST2UPD i32:$addr, (i32 32), 5705 (VT MQPR:$v0), (VT MQPR:$v1), (i32 stage))), 5706 (i32 (!cast<Instruction>("MVE_VST2"#stage#"_"#lanesize#_wb) 5707 (REG_SEQUENCE QQPR, VT:$v0, qsub_0, VT:$v1, qsub_1), 5708 t2_addr_offset_none:$addr))>; 5709 5710 foreach stage = [0,1,2,3] in 5711 def : Pat<(int_arm_mve_vst4q i32:$addr, 5712 (VT MQPR:$v0), (VT MQPR:$v1), 5713 (VT MQPR:$v2), (VT MQPR:$v3), (i32 stage)), 5714 (!cast<Instruction>("MVE_VST4"#stage#"_"#lanesize) 5715 (REG_SEQUENCE QQQQPR, VT:$v0, qsub_0, VT:$v1, qsub_1, 5716 VT:$v2, qsub_2, VT:$v3, qsub_3), 5717 t2_addr_offset_none:$addr)>; 5718 foreach stage = [0,1,2,3] in 5719 def : Pat<(i32 (MVEVST4UPD i32:$addr, (i32 64), 5720 (VT MQPR:$v0), (VT MQPR:$v1), 5721 (VT MQPR:$v2), (VT MQPR:$v3), (i32 stage))), 5722 (i32 (!cast<Instruction>("MVE_VST4"#stage#"_"#lanesize#_wb) 5723 (REG_SEQUENCE QQQQPR, VT:$v0, qsub_0, VT:$v1, qsub_1, 5724 VT:$v2, qsub_2, VT:$v3, qsub_3), 5725 t2_addr_offset_none:$addr))>; 5726} 5727defm : MVE_vst24_patterns<8, v16i8>; 5728defm : MVE_vst24_patterns<16, v8i16>; 5729defm : MVE_vst24_patterns<32, v4i32>; 5730defm : MVE_vst24_patterns<16, v8f16>; 5731defm : MVE_vst24_patterns<32, v4f32>; 5732 5733// end of MVE interleaving load/store 5734 5735// start of MVE predicable load/store 5736 5737// A parameter class for the direction of transfer. 5738class MVE_ldst_direction<bit b, dag Oo, dag Io, string c=""> { 5739 bit load = b; 5740 dag Oops = Oo; 5741 dag Iops = Io; 5742 string cstr = c; 5743} 5744def MVE_ld: MVE_ldst_direction<1, (outs MQPR:$Qd), (ins), ",@earlyclobber $Qd">; 5745def MVE_st: MVE_ldst_direction<0, (outs), (ins MQPR:$Qd)>; 5746 5747// A parameter class for the size of memory access in a load. 5748class MVE_memsz<bits<2> e, int s, AddrMode m, string mn, list<string> types> { 5749 bits<2> encoding = e; // opcode bit(s) for encoding 5750 int shift = s; // shift applied to immediate load offset 5751 AddrMode AM = m; 5752 5753 // For instruction aliases: define the complete list of type 5754 // suffixes at this size, and the canonical ones for loads and 5755 // stores. 5756 string MnemonicLetter = mn; 5757 int TypeBits = !shl(8, s); 5758 string CanonLoadSuffix = ".u" # TypeBits; 5759 string CanonStoreSuffix = "." # TypeBits; 5760 list<string> suffixes = !foreach(letter, types, "." # letter # TypeBits); 5761} 5762 5763// Instances of MVE_memsz. 5764// 5765// (memD doesn't need an AddrMode, because those are only for 5766// contiguous loads, and memD is only used by gather/scatters.) 5767def MVE_memB: MVE_memsz<0b00, 0, AddrModeT2_i7, "b", ["", "u", "s"]>; 5768def MVE_memH: MVE_memsz<0b01, 1, AddrModeT2_i7s2, "h", ["", "u", "s", "f"]>; 5769def MVE_memW: MVE_memsz<0b10, 2, AddrModeT2_i7s4, "w", ["", "u", "s", "f"]>; 5770def MVE_memD: MVE_memsz<0b11, 3, ?, "d", ["", "u", "s", "f"]>; 5771 5772// This is the base class for all the MVE loads and stores other than 5773// the interleaving ones. All the non-interleaving loads/stores share 5774// the characteristic that they operate on just one vector register, 5775// so they are VPT-predicable. 5776// 5777// The predication operand is vpred_n, for both loads and stores. For 5778// store instructions, the reason is obvious: if there is no output 5779// register, there can't be a need for an input parameter giving the 5780// output register's previous value. Load instructions also don't need 5781// that input parameter, because unlike MVE data processing 5782// instructions, predicated loads are defined to set the inactive 5783// lanes of the output register to zero, instead of preserving their 5784// input values. 5785class MVE_VLDRSTR_base<MVE_ldst_direction dir, bit U, bit P, bit W, bit opc, 5786 dag oops, dag iops, string asm, string suffix, 5787 string ops, string cstr, list<dag> pattern=[]> 5788 : MVE_p<oops, iops, NoItinerary, asm, suffix, ops, vpred_n, cstr, pattern> { 5789 bits<3> Qd; 5790 5791 let Inst{28} = U; 5792 let Inst{25} = 0b0; 5793 let Inst{24} = P; 5794 let Inst{22} = 0b0; 5795 let Inst{21} = W; 5796 let Inst{20} = dir.load; 5797 let Inst{15-13} = Qd{2-0}; 5798 let Inst{12} = opc; 5799 let Inst{11-9} = 0b111; 5800 5801 let mayLoad = dir.load; 5802 let mayStore = !eq(dir.load,0); 5803 let hasSideEffects = 0; 5804 let validForTailPredication = 1; 5805} 5806 5807// Contiguous load and store instructions. These come in two main 5808// categories: same-size loads/stores in which 128 bits of vector 5809// register is transferred to or from 128 bits of memory in the most 5810// obvious way, and widening loads / narrowing stores, in which the 5811// size of memory accessed is less than the size of a vector register, 5812// so the load instructions sign- or zero-extend each memory value 5813// into a wider vector lane, and the store instructions truncate 5814// correspondingly. 5815// 5816// The instruction mnemonics for these two classes look reasonably 5817// similar, but the actual encodings are different enough to need two 5818// separate base classes. 5819 5820// Contiguous, same size 5821class MVE_VLDRSTR_cs<MVE_ldst_direction dir, MVE_memsz memsz, bit P, bit W, 5822 dag oops, dag iops, string asm, string suffix, 5823 IndexMode im, string ops, string cstr> 5824 : MVE_VLDRSTR_base<dir, 0, P, W, 1, oops, iops, asm, suffix, ops, cstr> { 5825 bits<12> addr; 5826 let Inst{23} = addr{7}; 5827 let Inst{19-16} = addr{11-8}; 5828 let Inst{8-7} = memsz.encoding; 5829 let Inst{6-0} = addr{6-0}; 5830} 5831 5832// Contiguous, widening/narrowing 5833class MVE_VLDRSTR_cw<MVE_ldst_direction dir, MVE_memsz memsz, bit U, 5834 bit P, bit W, bits<2> size, dag oops, dag iops, 5835 string asm, string suffix, IndexMode im, 5836 string ops, string cstr> 5837 : MVE_VLDRSTR_base<dir, U, P, W, 0, oops, iops, asm, suffix, ops, cstr> { 5838 bits<11> addr; 5839 let Inst{23} = addr{7}; 5840 let Inst{19} = memsz.encoding{0}; // enough to tell 16- from 32-bit 5841 let Inst{18-16} = addr{10-8}; 5842 let Inst{8-7} = size; 5843 let Inst{6-0} = addr{6-0}; 5844 5845 let IM = im; 5846} 5847 5848// Multiclass wrapper on each of the _cw and _cs base classes, to 5849// generate three writeback modes (none, preindex, postindex). 5850 5851multiclass MVE_VLDRSTR_cw_m<MVE_ldst_direction dir, MVE_memsz memsz, 5852 string asm, string suffix, bit U, bits<2> size> { 5853 let AM = memsz.AM in { 5854 def "" : MVE_VLDRSTR_cw< 5855 dir, memsz, U, 1, 0, size, 5856 dir.Oops, !con(dir.Iops, (ins taddrmode_imm7<memsz.shift>:$addr)), 5857 asm, suffix, IndexModeNone, "$Qd, $addr", "">; 5858 5859 def _pre : MVE_VLDRSTR_cw< 5860 dir, memsz, U, 1, 1, size, 5861 !con((outs tGPR:$wb), dir.Oops), 5862 !con(dir.Iops, (ins taddrmode_imm7<memsz.shift>:$addr)), 5863 asm, suffix, IndexModePre, "$Qd, $addr!", "$addr.base = $wb"> { 5864 let DecoderMethod = "DecodeMVE_MEM_1_pre<"#memsz.shift#">"; 5865 } 5866 5867 def _post : MVE_VLDRSTR_cw< 5868 dir, memsz, U, 0, 1, size, 5869 !con((outs tGPR:$wb), dir.Oops), 5870 !con(dir.Iops, (ins t_addr_offset_none:$Rn, 5871 t2am_imm7_offset<memsz.shift>:$addr)), 5872 asm, suffix, IndexModePost, "$Qd, $Rn$addr", "$Rn.base = $wb"> { 5873 bits<4> Rn; 5874 let Inst{18-16} = Rn{2-0}; 5875 } 5876 } 5877} 5878 5879multiclass MVE_VLDRSTR_cs_m<MVE_ldst_direction dir, MVE_memsz memsz, 5880 string asm, string suffix> { 5881 let AM = memsz.AM in { 5882 def "" : MVE_VLDRSTR_cs< 5883 dir, memsz, 1, 0, 5884 dir.Oops, !con(dir.Iops, (ins t2addrmode_imm7<memsz.shift>:$addr)), 5885 asm, suffix, IndexModeNone, "$Qd, $addr", "">; 5886 5887 def _pre : MVE_VLDRSTR_cs< 5888 dir, memsz, 1, 1, 5889 !con((outs rGPR:$wb), dir.Oops), 5890 !con(dir.Iops, (ins t2addrmode_imm7_pre<memsz.shift>:$addr)), 5891 asm, suffix, IndexModePre, "$Qd, $addr!", "$addr.base = $wb"> { 5892 let DecoderMethod = "DecodeMVE_MEM_2_pre<"#memsz.shift#">"; 5893 } 5894 5895 def _post : MVE_VLDRSTR_cs< 5896 dir, memsz, 0, 1, 5897 !con((outs rGPR:$wb), dir.Oops), 5898 // We need an !if here to select the base register class, 5899 // because it's legal to write back to SP in a load of this 5900 // type, but not in a store. 5901 !con(dir.Iops, (ins !if(dir.load, t2_addr_offset_none, 5902 t2_nosp_addr_offset_none):$Rn, 5903 t2am_imm7_offset<memsz.shift>:$addr)), 5904 asm, suffix, IndexModePost, "$Qd, $Rn$addr", "$Rn.base = $wb"> { 5905 bits<4> Rn; 5906 let Inst{19-16} = Rn{3-0}; 5907 } 5908 } 5909} 5910 5911// Now actually declare all the contiguous load/stores, via those 5912// multiclasses. The instruction ids coming out of this are the bare 5913// names shown in the defm, with _pre or _post appended for writeback, 5914// e.g. MVE_VLDRBS16, MVE_VSTRB16_pre, MVE_VSTRHU16_post. 5915 5916defm MVE_VLDRBS16: MVE_VLDRSTR_cw_m<MVE_ld, MVE_memB, "vldrb", "s16", 0, 0b01>; 5917defm MVE_VLDRBS32: MVE_VLDRSTR_cw_m<MVE_ld, MVE_memB, "vldrb", "s32", 0, 0b10>; 5918defm MVE_VLDRBU16: MVE_VLDRSTR_cw_m<MVE_ld, MVE_memB, "vldrb", "u16", 1, 0b01>; 5919defm MVE_VLDRBU32: MVE_VLDRSTR_cw_m<MVE_ld, MVE_memB, "vldrb", "u32", 1, 0b10>; 5920defm MVE_VLDRHS32: MVE_VLDRSTR_cw_m<MVE_ld, MVE_memH, "vldrh", "s32", 0, 0b10>; 5921defm MVE_VLDRHU32: MVE_VLDRSTR_cw_m<MVE_ld, MVE_memH, "vldrh", "u32", 1, 0b10>; 5922 5923defm MVE_VLDRBU8: MVE_VLDRSTR_cs_m<MVE_ld, MVE_memB, "vldrb", "u8">; 5924defm MVE_VLDRHU16: MVE_VLDRSTR_cs_m<MVE_ld, MVE_memH, "vldrh", "u16">; 5925defm MVE_VLDRWU32: MVE_VLDRSTR_cs_m<MVE_ld, MVE_memW, "vldrw", "u32">; 5926 5927defm MVE_VSTRB16: MVE_VLDRSTR_cw_m<MVE_st, MVE_memB, "vstrb", "16", 0, 0b01>; 5928defm MVE_VSTRB32: MVE_VLDRSTR_cw_m<MVE_st, MVE_memB, "vstrb", "32", 0, 0b10>; 5929defm MVE_VSTRH32: MVE_VLDRSTR_cw_m<MVE_st, MVE_memH, "vstrh", "32", 0, 0b10>; 5930 5931defm MVE_VSTRBU8 : MVE_VLDRSTR_cs_m<MVE_st, MVE_memB, "vstrb", "8">; 5932defm MVE_VSTRHU16: MVE_VLDRSTR_cs_m<MVE_st, MVE_memH, "vstrh", "16">; 5933defm MVE_VSTRWU32: MVE_VLDRSTR_cs_m<MVE_st, MVE_memW, "vstrw", "32">; 5934 5935// Gather loads / scatter stores whose address operand is of the form 5936// [Rn,Qm], i.e. a single GPR as the common base address, plus a 5937// vector of offset from it. ('Load/store this sequence of elements of 5938// the same array.') 5939// 5940// Like the contiguous family, these loads and stores can widen the 5941// loaded values / truncate the stored ones, or they can just 5942// load/store the same size of memory and vector lane. But unlike the 5943// contiguous family, there's no particular difference in encoding 5944// between those two cases. 5945// 5946// This family also comes with the option to scale the offset values 5947// in Qm by the size of the loaded memory (i.e. to treat them as array 5948// indices), or not to scale them (to treat them as plain byte offsets 5949// in memory, so that perhaps the loaded values are unaligned). The 5950// scaled instructions' address operand in assembly looks like 5951// [Rn,Qm,UXTW #2] or similar. 5952 5953// Base class. 5954class MVE_VLDRSTR_rq<MVE_ldst_direction dir, MVE_memsz memsz, bit U, 5955 bits<2> size, bit os, string asm, string suffix, int shift> 5956 : MVE_VLDRSTR_base<dir, U, 0b0, 0b0, 0, dir.Oops, 5957 !con(dir.Iops, (ins mve_addr_rq_shift<shift>:$addr)), 5958 asm, suffix, "$Qd, $addr", dir.cstr> { 5959 bits<7> addr; 5960 let Inst{23} = 0b1; 5961 let Inst{19-16} = addr{6-3}; 5962 let Inst{8-7} = size; 5963 let Inst{6} = memsz.encoding{1}; 5964 let Inst{5} = 0; 5965 let Inst{4} = memsz.encoding{0}; 5966 let Inst{3-1} = addr{2-0}; 5967 let Inst{0} = os; 5968} 5969 5970// Multiclass that defines the scaled and unscaled versions of an 5971// instruction, when the memory size is wider than a byte. The scaled 5972// version gets the default name like MVE_VLDRBU16_rq; the unscaled / 5973// potentially unaligned version gets a "_u" suffix, e.g. 5974// MVE_VLDRBU16_rq_u. 5975multiclass MVE_VLDRSTR_rq_w<MVE_ldst_direction dir, MVE_memsz memsz, 5976 string asm, string suffix, bit U, bits<2> size> { 5977 def _u : MVE_VLDRSTR_rq<dir, memsz, U, size, 0, asm, suffix, 0>; 5978 def "" : MVE_VLDRSTR_rq<dir, memsz, U, size, 1, asm, suffix, memsz.shift>; 5979} 5980 5981// Subclass of MVE_VLDRSTR_rq with the same API as that multiclass, 5982// for use when the memory size is one byte, so there's no 'scaled' 5983// version of the instruction at all. (This is encoded as if it were 5984// unscaled, but named in the default way with no _u suffix.) 5985class MVE_VLDRSTR_rq_b<MVE_ldst_direction dir, MVE_memsz memsz, 5986 string asm, string suffix, bit U, bits<2> size> 5987 : MVE_VLDRSTR_rq<dir, memsz, U, size, 0, asm, suffix, 0>; 5988 5989// Multiclasses wrapping that to add ISel patterns for intrinsics. 5990multiclass MVE_VLDR_rq_w<MVE_memsz memsz, list<MVEVectorVTInfo> VTIs> { 5991 defm "": MVE_VLDRSTR_rq_w<MVE_ld, memsz, "vldr" # memsz.MnemonicLetter, 5992 VTIs[0].Suffix, VTIs[0].Unsigned, VTIs[0].Size>; 5993 defvar Inst = !cast<Instruction>(NAME); 5994 defvar InstU = !cast<Instruction>(NAME # "_u"); 5995 5996 foreach VTI = VTIs in 5997 foreach UnsignedFlag = !if(!eq(VTI.Size, memsz.encoding), 5998 [0,1], [VTI.Unsigned]) in { 5999 def : Pat<(VTI.Vec (int_arm_mve_vldr_gather_offset GPR:$base, (VTIs[0].Vec MQPR:$offsets), memsz.TypeBits, 0, UnsignedFlag)), 6000 (VTI.Vec (InstU GPR:$base, MQPR:$offsets))>; 6001 def : Pat<(VTI.Vec (int_arm_mve_vldr_gather_offset GPR:$base, (VTIs[0].Vec MQPR:$offsets), memsz.TypeBits, memsz.shift, UnsignedFlag)), 6002 (VTI.Vec (Inst GPR:$base, MQPR:$offsets))>; 6003 def : Pat<(VTI.Vec (int_arm_mve_vldr_gather_offset_predicated GPR:$base, (VTIs[0].Vec MQPR:$offsets), memsz.TypeBits, 0, UnsignedFlag, (VTI.Pred VCCR:$pred))), 6004 (VTI.Vec (InstU GPR:$base, MQPR:$offsets, ARMVCCThen, VCCR:$pred))>; 6005 def : Pat<(VTI.Vec (int_arm_mve_vldr_gather_offset_predicated GPR:$base, (VTIs[0].Vec MQPR:$offsets), memsz.TypeBits, memsz.shift, UnsignedFlag, (VTI.Pred VCCR:$pred))), 6006 (VTI.Vec (Inst GPR:$base, MQPR:$offsets, ARMVCCThen, VCCR:$pred))>; 6007 } 6008} 6009multiclass MVE_VLDR_rq_b<list<MVEVectorVTInfo> VTIs> { 6010 def "": MVE_VLDRSTR_rq_b<MVE_ld, MVE_memB, "vldrb", 6011 VTIs[0].Suffix, VTIs[0].Unsigned, VTIs[0].Size>; 6012 defvar Inst = !cast<Instruction>(NAME); 6013 6014 foreach VTI = VTIs in { 6015 def : Pat<(VTI.Vec (int_arm_mve_vldr_gather_offset GPR:$base, (VTIs[0].Vec MQPR:$offsets), 8, 0, VTI.Unsigned)), 6016 (VTI.Vec (Inst GPR:$base, MQPR:$offsets))>; 6017 def : Pat<(VTI.Vec (int_arm_mve_vldr_gather_offset_predicated GPR:$base, (VTIs[0].Vec MQPR:$offsets), 8, 0, VTI.Unsigned, (VTI.Pred VCCR:$pred))), 6018 (VTI.Vec (Inst GPR:$base, MQPR:$offsets, ARMVCCThen, VCCR:$pred))>; 6019 } 6020} 6021multiclass MVE_VSTR_rq_w<MVE_memsz memsz, list<MVEVectorVTInfo> VTIs> { 6022 defm "": MVE_VLDRSTR_rq_w<MVE_st, memsz, "vstr" # memsz.MnemonicLetter, 6023 VTIs[0].BitsSuffix, 0, VTIs[0].Size>; 6024 defvar Inst = !cast<Instruction>(NAME); 6025 defvar InstU = !cast<Instruction>(NAME # "_u"); 6026 6027 foreach VTI = VTIs in { 6028 def : Pat<(int_arm_mve_vstr_scatter_offset GPR:$base, (VTIs[0].Vec MQPR:$offsets), (VTI.Vec MQPR:$data), memsz.TypeBits, 0), 6029 (InstU MQPR:$data, GPR:$base, MQPR:$offsets)>; 6030 def : Pat<(int_arm_mve_vstr_scatter_offset GPR:$base, (VTIs[0].Vec MQPR:$offsets), (VTI.Vec MQPR:$data), memsz.TypeBits, memsz.shift), 6031 (Inst MQPR:$data, GPR:$base, MQPR:$offsets)>; 6032 def : Pat<(int_arm_mve_vstr_scatter_offset_predicated GPR:$base, (VTIs[0].Vec MQPR:$offsets), (VTI.Vec MQPR:$data), memsz.TypeBits, 0, (VTI.Pred VCCR:$pred)), 6033 (InstU MQPR:$data, GPR:$base, MQPR:$offsets, ARMVCCThen, VCCR:$pred)>; 6034 def : Pat<(int_arm_mve_vstr_scatter_offset_predicated GPR:$base, (VTIs[0].Vec MQPR:$offsets), (VTI.Vec MQPR:$data), memsz.TypeBits, memsz.shift, (VTI.Pred VCCR:$pred)), 6035 (Inst MQPR:$data, GPR:$base, MQPR:$offsets, ARMVCCThen, VCCR:$pred)>; 6036 } 6037} 6038multiclass MVE_VSTR_rq_b<list<MVEVectorVTInfo> VTIs> { 6039 def "": MVE_VLDRSTR_rq_b<MVE_st, MVE_memB, "vstrb", 6040 VTIs[0].BitsSuffix, 0, VTIs[0].Size>; 6041 defvar Inst = !cast<Instruction>(NAME); 6042 6043 foreach VTI = VTIs in { 6044 def : Pat<(int_arm_mve_vstr_scatter_offset GPR:$base, (VTIs[0].Vec MQPR:$offsets), (VTI.Vec MQPR:$data), 8, 0), 6045 (Inst MQPR:$data, GPR:$base, MQPR:$offsets)>; 6046 def : Pat<(int_arm_mve_vstr_scatter_offset_predicated GPR:$base, (VTIs[0].Vec MQPR:$offsets), (VTI.Vec MQPR:$data), 8, 0, (VTI.Pred VCCR:$pred)), 6047 (Inst MQPR:$data, GPR:$base, MQPR:$offsets, ARMVCCThen, VCCR:$pred)>; 6048 } 6049} 6050 6051// Actually define all the loads and stores in this family. 6052 6053defm MVE_VLDRBU8_rq : MVE_VLDR_rq_b<[MVE_v16u8,MVE_v16s8]>; 6054defm MVE_VLDRBU16_rq: MVE_VLDR_rq_b<[MVE_v8u16]>; 6055defm MVE_VLDRBS16_rq: MVE_VLDR_rq_b<[MVE_v8s16]>; 6056defm MVE_VLDRBU32_rq: MVE_VLDR_rq_b<[MVE_v4u32]>; 6057defm MVE_VLDRBS32_rq: MVE_VLDR_rq_b<[MVE_v4s32]>; 6058 6059defm MVE_VLDRHU16_rq: MVE_VLDR_rq_w<MVE_memH, [MVE_v8u16,MVE_v8s16,MVE_v8f16]>; 6060defm MVE_VLDRHU32_rq: MVE_VLDR_rq_w<MVE_memH, [MVE_v4u32]>; 6061defm MVE_VLDRHS32_rq: MVE_VLDR_rq_w<MVE_memH, [MVE_v4s32]>; 6062defm MVE_VLDRWU32_rq: MVE_VLDR_rq_w<MVE_memW, [MVE_v4u32,MVE_v4s32,MVE_v4f32]>; 6063defm MVE_VLDRDU64_rq: MVE_VLDR_rq_w<MVE_memD, [MVE_v2u64,MVE_v2s64]>; 6064 6065defm MVE_VSTRB8_rq : MVE_VSTR_rq_b<[MVE_v16i8]>; 6066defm MVE_VSTRB16_rq : MVE_VSTR_rq_b<[MVE_v8i16]>; 6067defm MVE_VSTRB32_rq : MVE_VSTR_rq_b<[MVE_v4i32]>; 6068 6069defm MVE_VSTRH16_rq : MVE_VSTR_rq_w<MVE_memH, [MVE_v8i16,MVE_v8f16]>; 6070defm MVE_VSTRH32_rq : MVE_VSTR_rq_w<MVE_memH, [MVE_v4i32]>; 6071defm MVE_VSTRW32_rq : MVE_VSTR_rq_w<MVE_memW, [MVE_v4i32,MVE_v4f32]>; 6072defm MVE_VSTRD64_rq : MVE_VSTR_rq_w<MVE_memD, [MVE_v2i64]>; 6073 6074// Gather loads / scatter stores whose address operand is of the form 6075// [Qm,#imm], i.e. a vector containing a full base address for each 6076// loaded item, plus an immediate offset applied consistently to all 6077// of them. ('Load/store the same field from this vector of pointers 6078// to a structure type.') 6079// 6080// This family requires the vector lane size to be at least 32 bits 6081// (so there's room for an address in each lane at all). It has no 6082// widening/narrowing variants. But it does support preindex 6083// writeback, in which the address vector is updated to hold the 6084// addresses actually loaded from. 6085 6086// Base class. 6087class MVE_VLDRSTR_qi<MVE_ldst_direction dir, MVE_memsz memsz, bit W, dag wbops, 6088 string asm, string wbAsm, string suffix, string cstr = ""> 6089 : MVE_VLDRSTR_base<dir, 1, 1, W, 1, !con(wbops, dir.Oops), 6090 !con(dir.Iops, (ins mve_addr_q_shift<memsz.shift>:$addr)), 6091 asm, suffix, "$Qd, $addr" # wbAsm, cstr # dir.cstr> { 6092 bits<11> addr; 6093 let Inst{23} = addr{7}; 6094 let Inst{19-17} = addr{10-8}; 6095 let Inst{16} = 0; 6096 let Inst{8} = memsz.encoding{0}; // enough to distinguish 32- from 64-bit 6097 let Inst{7} = 0; 6098 let Inst{6-0} = addr{6-0}; 6099} 6100 6101// Multiclass that generates the non-writeback and writeback variants. 6102multiclass MVE_VLDRSTR_qi_m<MVE_ldst_direction dir, MVE_memsz memsz, 6103 string asm, string suffix> { 6104 def "" : MVE_VLDRSTR_qi<dir, memsz, 0, (outs), asm, "", suffix>; 6105 def _pre : MVE_VLDRSTR_qi<dir, memsz, 1, (outs MQPR:$wb), asm, "!", suffix, 6106 "$addr.base = $wb"> { 6107 let DecoderMethod="DecodeMVE_MEM_3_pre<"#memsz.shift#">"; 6108 } 6109} 6110 6111// Multiclasses wrapping that one, adding selection patterns for the 6112// non-writeback loads and all the stores. (The writeback loads must 6113// deliver multiple output values, so they have to be selected by C++ 6114// code.) 6115multiclass MVE_VLDR_qi<MVE_memsz memsz, MVEVectorVTInfo AVTI, 6116 list<MVEVectorVTInfo> DVTIs> { 6117 defm "" : MVE_VLDRSTR_qi_m<MVE_ld, memsz, "vldr" # memsz.MnemonicLetter, 6118 "u" # memsz.TypeBits>; 6119 defvar Inst = !cast<Instruction>(NAME); 6120 6121 foreach DVTI = DVTIs in { 6122 def : Pat<(DVTI.Vec (int_arm_mve_vldr_gather_base 6123 (AVTI.Vec MQPR:$addr), (i32 imm:$offset))), 6124 (DVTI.Vec (Inst (AVTI.Vec MQPR:$addr), (i32 imm:$offset)))>; 6125 def : Pat<(DVTI.Vec (int_arm_mve_vldr_gather_base_predicated 6126 (AVTI.Vec MQPR:$addr), (i32 imm:$offset), (AVTI.Pred VCCR:$pred))), 6127 (DVTI.Vec (Inst (AVTI.Vec MQPR:$addr), (i32 imm:$offset), 6128 ARMVCCThen, VCCR:$pred))>; 6129 } 6130} 6131multiclass MVE_VSTR_qi<MVE_memsz memsz, MVEVectorVTInfo AVTI, 6132 list<MVEVectorVTInfo> DVTIs> { 6133 defm "" : MVE_VLDRSTR_qi_m<MVE_st, memsz, "vstr" # memsz.MnemonicLetter, 6134 !cast<string>(memsz.TypeBits)>; 6135 defvar Inst = !cast<Instruction>(NAME); 6136 defvar InstPre = !cast<Instruction>(NAME # "_pre"); 6137 6138 foreach DVTI = DVTIs in { 6139 def : Pat<(int_arm_mve_vstr_scatter_base 6140 (AVTI.Vec MQPR:$addr), (i32 imm:$offset), (DVTI.Vec MQPR:$data)), 6141 (Inst (DVTI.Vec MQPR:$data), (AVTI.Vec MQPR:$addr), 6142 (i32 imm:$offset))>; 6143 def : Pat<(int_arm_mve_vstr_scatter_base_predicated 6144 (AVTI.Vec MQPR:$addr), (i32 imm:$offset), (DVTI.Vec MQPR:$data), (AVTI.Pred VCCR:$pred)), 6145 (Inst (DVTI.Vec MQPR:$data), (AVTI.Vec MQPR:$addr), 6146 (i32 imm:$offset), ARMVCCThen, VCCR:$pred)>; 6147 def : Pat<(AVTI.Vec (int_arm_mve_vstr_scatter_base_wb 6148 (AVTI.Vec MQPR:$addr), (i32 imm:$offset), (DVTI.Vec MQPR:$data))), 6149 (AVTI.Vec (InstPre (DVTI.Vec MQPR:$data), (AVTI.Vec MQPR:$addr), 6150 (i32 imm:$offset)))>; 6151 def : Pat<(AVTI.Vec (int_arm_mve_vstr_scatter_base_wb_predicated 6152 (AVTI.Vec MQPR:$addr), (i32 imm:$offset), (DVTI.Vec MQPR:$data), (AVTI.Pred VCCR:$pred))), 6153 (AVTI.Vec (InstPre (DVTI.Vec MQPR:$data), (AVTI.Vec MQPR:$addr), 6154 (i32 imm:$offset), ARMVCCThen, VCCR:$pred))>; 6155 } 6156} 6157 6158// Actual instruction definitions. 6159defm MVE_VLDRWU32_qi: MVE_VLDR_qi<MVE_memW, MVE_v4i32, [MVE_v4i32,MVE_v4f32]>; 6160defm MVE_VLDRDU64_qi: MVE_VLDR_qi<MVE_memD, MVE_v2i64, [MVE_v2i64,MVE_v2f64]>; 6161defm MVE_VSTRW32_qi: MVE_VSTR_qi<MVE_memW, MVE_v4i32, [MVE_v4i32,MVE_v4f32]>; 6162defm MVE_VSTRD64_qi: MVE_VSTR_qi<MVE_memD, MVE_v2i64, [MVE_v2i64,MVE_v2f64]>; 6163 6164// Define aliases for all the instructions where memory size and 6165// vector lane size are the same. These are mnemonic aliases, so they 6166// apply consistently across all of the above families - contiguous 6167// loads, and both the rq and qi types of gather/scatter. 6168// 6169// Rationale: As long as you're loading (for example) 16-bit memory 6170// values into 16-bit vector lanes, you can think of them as signed or 6171// unsigned integers, fp16 or just raw 16-bit blobs and it makes no 6172// difference. So we permit all of vldrh.16, vldrh.u16, vldrh.s16, 6173// vldrh.f16 and treat them all as equivalent to the canonical 6174// spelling (which happens to be .u16 for loads, and just .16 for 6175// stores). 6176 6177foreach vpt_cond = ["", "t", "e"] in 6178foreach memsz = [MVE_memB, MVE_memH, MVE_memW, MVE_memD] in 6179foreach suffix = memsz.suffixes in { 6180 // Define an alias with every suffix in the list, except for the one 6181 // used by the real Instruction record (i.e. the one that all the 6182 // rest are aliases *for*). 6183 6184 if !ne(suffix, memsz.CanonLoadSuffix) then { 6185 def : MnemonicAlias< 6186 "vldr" # memsz.MnemonicLetter # vpt_cond # suffix, 6187 "vldr" # memsz.MnemonicLetter # vpt_cond # memsz.CanonLoadSuffix>; 6188 } 6189 6190 if !ne(suffix, memsz.CanonStoreSuffix) then { 6191 def : MnemonicAlias< 6192 "vstr" # memsz.MnemonicLetter # vpt_cond # suffix, 6193 "vstr" # memsz.MnemonicLetter # vpt_cond # memsz.CanonStoreSuffix>; 6194 } 6195} 6196 6197// end of MVE predicable load/store 6198 6199class MVE_VPT<string suffix, bits<2> size, dag iops, string asm, list<dag> pattern=[]> 6200 : MVE_MI<(outs ), iops, NoItinerary, !strconcat("vpt", "${Mk}", ".", suffix), asm, "", pattern> { 6201 bits<3> fc; 6202 bits<4> Mk; 6203 bits<3> Qn; 6204 6205 let Inst{31-23} = 0b111111100; 6206 let Inst{22} = Mk{3}; 6207 let Inst{21-20} = size; 6208 let Inst{19-17} = Qn{2-0}; 6209 let Inst{16} = 0b1; 6210 let Inst{15-13} = Mk{2-0}; 6211 let Inst{12} = fc{2}; 6212 let Inst{11-8} = 0b1111; 6213 let Inst{7} = fc{0}; 6214 let Inst{4} = 0b0; 6215 6216 let Defs = [VPR]; 6217} 6218 6219class MVE_VPTt1<string suffix, bits<2> size, dag iops> 6220 : MVE_VPT<suffix, size, iops, "$fc, $Qn, $Qm"> { 6221 bits<4> Qm; 6222 bits<4> Mk; 6223 6224 let Inst{6} = 0b0; 6225 let Inst{5} = Qm{3}; 6226 let Inst{3-1} = Qm{2-0}; 6227 let Inst{0} = fc{1}; 6228} 6229 6230class MVE_VPTt1i<string suffix, bits<2> size> 6231 : MVE_VPTt1<suffix, size, 6232 (ins vpt_mask:$Mk, MQPR:$Qn, MQPR:$Qm, pred_basic_i:$fc)> { 6233 let Inst{12} = 0b0; 6234 let Inst{0} = 0b0; 6235} 6236 6237def MVE_VPTv4i32 : MVE_VPTt1i<"i32", 0b10>; 6238def MVE_VPTv8i16 : MVE_VPTt1i<"i16", 0b01>; 6239def MVE_VPTv16i8 : MVE_VPTt1i<"i8", 0b00>; 6240 6241class MVE_VPTt1u<string suffix, bits<2> size> 6242 : MVE_VPTt1<suffix, size, 6243 (ins vpt_mask:$Mk, MQPR:$Qn, MQPR:$Qm, pred_basic_u:$fc)> { 6244 let Inst{12} = 0b0; 6245 let Inst{0} = 0b1; 6246} 6247 6248def MVE_VPTv4u32 : MVE_VPTt1u<"u32", 0b10>; 6249def MVE_VPTv8u16 : MVE_VPTt1u<"u16", 0b01>; 6250def MVE_VPTv16u8 : MVE_VPTt1u<"u8", 0b00>; 6251 6252class MVE_VPTt1s<string suffix, bits<2> size> 6253 : MVE_VPTt1<suffix, size, 6254 (ins vpt_mask:$Mk, MQPR:$Qn, MQPR:$Qm, pred_basic_s:$fc)> { 6255 let Inst{12} = 0b1; 6256} 6257 6258def MVE_VPTv4s32 : MVE_VPTt1s<"s32", 0b10>; 6259def MVE_VPTv8s16 : MVE_VPTt1s<"s16", 0b01>; 6260def MVE_VPTv16s8 : MVE_VPTt1s<"s8", 0b00>; 6261 6262class MVE_VPTt2<string suffix, bits<2> size, dag iops> 6263 : MVE_VPT<suffix, size, iops, 6264 "$fc, $Qn, $Rm"> { 6265 bits<4> Rm; 6266 bits<3> fc; 6267 bits<4> Mk; 6268 6269 let Inst{6} = 0b1; 6270 let Inst{5} = fc{1}; 6271 let Inst{3-0} = Rm{3-0}; 6272} 6273 6274class MVE_VPTt2i<string suffix, bits<2> size> 6275 : MVE_VPTt2<suffix, size, 6276 (ins vpt_mask:$Mk, MQPR:$Qn, GPRwithZR:$Rm, pred_basic_i:$fc)> { 6277 let Inst{12} = 0b0; 6278 let Inst{5} = 0b0; 6279} 6280 6281def MVE_VPTv4i32r : MVE_VPTt2i<"i32", 0b10>; 6282def MVE_VPTv8i16r : MVE_VPTt2i<"i16", 0b01>; 6283def MVE_VPTv16i8r : MVE_VPTt2i<"i8", 0b00>; 6284 6285class MVE_VPTt2u<string suffix, bits<2> size> 6286 : MVE_VPTt2<suffix, size, 6287 (ins vpt_mask:$Mk, MQPR:$Qn, GPRwithZR:$Rm, pred_basic_u:$fc)> { 6288 let Inst{12} = 0b0; 6289 let Inst{5} = 0b1; 6290} 6291 6292def MVE_VPTv4u32r : MVE_VPTt2u<"u32", 0b10>; 6293def MVE_VPTv8u16r : MVE_VPTt2u<"u16", 0b01>; 6294def MVE_VPTv16u8r : MVE_VPTt2u<"u8", 0b00>; 6295 6296class MVE_VPTt2s<string suffix, bits<2> size> 6297 : MVE_VPTt2<suffix, size, 6298 (ins vpt_mask:$Mk, MQPR:$Qn, GPRwithZR:$Rm, pred_basic_s:$fc)> { 6299 let Inst{12} = 0b1; 6300} 6301 6302def MVE_VPTv4s32r : MVE_VPTt2s<"s32", 0b10>; 6303def MVE_VPTv8s16r : MVE_VPTt2s<"s16", 0b01>; 6304def MVE_VPTv16s8r : MVE_VPTt2s<"s8", 0b00>; 6305 6306 6307class MVE_VPTf<string suffix, bit size, dag iops, string asm, list<dag> pattern=[]> 6308 : MVE_MI<(outs ), iops, NoItinerary, !strconcat("vpt", "${Mk}", ".", suffix), asm, 6309 "", pattern> { 6310 bits<3> fc; 6311 bits<4> Mk; 6312 bits<3> Qn; 6313 6314 let Inst{31-29} = 0b111; 6315 let Inst{28} = size; 6316 let Inst{27-23} = 0b11100; 6317 let Inst{22} = Mk{3}; 6318 let Inst{21-20} = 0b11; 6319 let Inst{19-17} = Qn{2-0}; 6320 let Inst{16} = 0b1; 6321 let Inst{15-13} = Mk{2-0}; 6322 let Inst{12} = fc{2}; 6323 let Inst{11-8} = 0b1111; 6324 let Inst{7} = fc{0}; 6325 let Inst{4} = 0b0; 6326 6327 let Defs = [VPR]; 6328 let Predicates = [HasMVEFloat]; 6329} 6330 6331class MVE_VPTft1<string suffix, bit size> 6332 : MVE_VPTf<suffix, size, (ins vpt_mask:$Mk, MQPR:$Qn, MQPR:$Qm, pred_basic_fp:$fc), 6333 "$fc, $Qn, $Qm"> { 6334 bits<3> fc; 6335 bits<4> Qm; 6336 6337 let Inst{6} = 0b0; 6338 let Inst{5} = Qm{3}; 6339 let Inst{3-1} = Qm{2-0}; 6340 let Inst{0} = fc{1}; 6341} 6342 6343def MVE_VPTv4f32 : MVE_VPTft1<"f32", 0b0>; 6344def MVE_VPTv8f16 : MVE_VPTft1<"f16", 0b1>; 6345 6346class MVE_VPTft2<string suffix, bit size> 6347 : MVE_VPTf<suffix, size, (ins vpt_mask:$Mk, MQPR:$Qn, GPRwithZR:$Rm, pred_basic_fp:$fc), 6348 "$fc, $Qn, $Rm"> { 6349 bits<3> fc; 6350 bits<4> Rm; 6351 6352 let Inst{6} = 0b1; 6353 let Inst{5} = fc{1}; 6354 let Inst{3-0} = Rm{3-0}; 6355} 6356 6357def MVE_VPTv4f32r : MVE_VPTft2<"f32", 0b0>; 6358def MVE_VPTv8f16r : MVE_VPTft2<"f16", 0b1>; 6359 6360def MVE_VPST : MVE_MI<(outs ), (ins vpt_mask:$Mk), NoItinerary, 6361 !strconcat("vpst", "${Mk}"), "", "", []> { 6362 bits<4> Mk; 6363 6364 let Inst{31-23} = 0b111111100; 6365 let Inst{22} = Mk{3}; 6366 let Inst{21-16} = 0b110001; 6367 let Inst{15-13} = Mk{2-0}; 6368 let Inst{12-0} = 0b0111101001101; 6369 let Unpredictable{12} = 0b1; 6370 let Unpredictable{7} = 0b1; 6371 let Unpredictable{5} = 0b1; 6372 6373 let Uses = [VPR]; 6374 let validForTailPredication = 1; 6375} 6376 6377def MVE_VPSEL : MVE_p<(outs MQPR:$Qd), (ins MQPR:$Qn, MQPR:$Qm), NoItinerary, 6378 "vpsel", "", "$Qd, $Qn, $Qm", vpred_n, "", []> { 6379 bits<4> Qn; 6380 bits<4> Qd; 6381 bits<4> Qm; 6382 6383 let Inst{28} = 0b1; 6384 let Inst{25-23} = 0b100; 6385 let Inst{22} = Qd{3}; 6386 let Inst{21-20} = 0b11; 6387 let Inst{19-17} = Qn{2-0}; 6388 let Inst{16} = 0b1; 6389 let Inst{15-13} = Qd{2-0}; 6390 let Inst{12-9} = 0b0111; 6391 let Inst{8} = 0b1; 6392 let Inst{7} = Qn{3}; 6393 let Inst{6} = 0b0; 6394 let Inst{5} = Qm{3}; 6395 let Inst{4} = 0b0; 6396 let Inst{3-1} = Qm{2-0}; 6397 let Inst{0} = 0b1; 6398} 6399 6400foreach suffix = ["s8", "s16", "s32", "u8", "u16", "u32", 6401 "i8", "i16", "i32", "f16", "f32"] in 6402def : MVEInstAlias<"vpsel${vp}." # suffix # "\t$Qd, $Qn, $Qm", 6403 (MVE_VPSEL MQPR:$Qd, MQPR:$Qn, MQPR:$Qm, vpred_n:$vp)>; 6404 6405let Predicates = [HasMVEInt] in { 6406 def : Pat<(v16i8 (vselect (v16i1 VCCR:$pred), (v16i8 MQPR:$v1), (v16i8 MQPR:$v2))), 6407 (v16i8 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone, VCCR:$pred))>; 6408 def : Pat<(v8i16 (vselect (v8i1 VCCR:$pred), (v8i16 MQPR:$v1), (v8i16 MQPR:$v2))), 6409 (v8i16 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone, VCCR:$pred))>; 6410 def : Pat<(v4i32 (vselect (v4i1 VCCR:$pred), (v4i32 MQPR:$v1), (v4i32 MQPR:$v2))), 6411 (v4i32 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone, VCCR:$pred))>; 6412 6413 def : Pat<(v8f16 (vselect (v8i1 VCCR:$pred), (v8f16 MQPR:$v1), (v8f16 MQPR:$v2))), 6414 (v8f16 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone, VCCR:$pred))>; 6415 def : Pat<(v4f32 (vselect (v4i1 VCCR:$pred), (v4f32 MQPR:$v1), (v4f32 MQPR:$v2))), 6416 (v4f32 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone, VCCR:$pred))>; 6417 6418 def : Pat<(v16i8 (vselect (v16i8 MQPR:$pred), (v16i8 MQPR:$v1), (v16i8 MQPR:$v2))), 6419 (v16i8 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone, 6420 (MVE_VCMPi8 (v16i8 MQPR:$pred), (MVE_VMOVimmi8 0), ARMCCne)))>; 6421 def : Pat<(v8i16 (vselect (v8i16 MQPR:$pred), (v8i16 MQPR:$v1), (v8i16 MQPR:$v2))), 6422 (v8i16 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone, 6423 (MVE_VCMPi16 (v8i16 MQPR:$pred), (MVE_VMOVimmi16 0), ARMCCne)))>; 6424 def : Pat<(v4i32 (vselect (v4i32 MQPR:$pred), (v4i32 MQPR:$v1), (v4i32 MQPR:$v2))), 6425 (v4i32 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone, 6426 (MVE_VCMPi32 (v4i32 MQPR:$pred), (MVE_VMOVimmi32 0), ARMCCne)))>; 6427 6428 def : Pat<(v8f16 (vselect (v8i16 MQPR:$pred), (v8f16 MQPR:$v1), (v8f16 MQPR:$v2))), 6429 (v8f16 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone, 6430 (MVE_VCMPi16 (v8i16 MQPR:$pred), (MVE_VMOVimmi16 0), ARMCCne)))>; 6431 def : Pat<(v4f32 (vselect (v4i32 MQPR:$pred), (v4f32 MQPR:$v1), (v4f32 MQPR:$v2))), 6432 (v4f32 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone, 6433 (MVE_VCMPi32 (v4i32 MQPR:$pred), (MVE_VMOVimmi32 0), ARMCCne)))>; 6434 6435 // Pred <-> Int 6436 def : Pat<(v16i8 (zext (v16i1 VCCR:$pred))), 6437 (v16i8 (MVE_VPSEL (MVE_VMOVimmi8 1), (MVE_VMOVimmi8 0), ARMVCCNone, VCCR:$pred))>; 6438 def : Pat<(v8i16 (zext (v8i1 VCCR:$pred))), 6439 (v8i16 (MVE_VPSEL (MVE_VMOVimmi16 1), (MVE_VMOVimmi16 0), ARMVCCNone, VCCR:$pred))>; 6440 def : Pat<(v4i32 (zext (v4i1 VCCR:$pred))), 6441 (v4i32 (MVE_VPSEL (MVE_VMOVimmi32 1), (MVE_VMOVimmi32 0), ARMVCCNone, VCCR:$pred))>; 6442 6443 def : Pat<(v16i8 (sext (v16i1 VCCR:$pred))), 6444 (v16i8 (MVE_VPSEL (MVE_VMOVimmi8 255), (MVE_VMOVimmi8 0), ARMVCCNone, VCCR:$pred))>; 6445 def : Pat<(v8i16 (sext (v8i1 VCCR:$pred))), 6446 (v8i16 (MVE_VPSEL (MVE_VMOVimmi8 255), (MVE_VMOVimmi16 0), ARMVCCNone, VCCR:$pred))>; 6447 def : Pat<(v4i32 (sext (v4i1 VCCR:$pred))), 6448 (v4i32 (MVE_VPSEL (MVE_VMOVimmi8 255), (MVE_VMOVimmi32 0), ARMVCCNone, VCCR:$pred))>; 6449 6450 def : Pat<(v16i8 (anyext (v16i1 VCCR:$pred))), 6451 (v16i8 (MVE_VPSEL (MVE_VMOVimmi8 1), (MVE_VMOVimmi8 0), ARMVCCNone, VCCR:$pred))>; 6452 def : Pat<(v8i16 (anyext (v8i1 VCCR:$pred))), 6453 (v8i16 (MVE_VPSEL (MVE_VMOVimmi16 1), (MVE_VMOVimmi16 0), ARMVCCNone, VCCR:$pred))>; 6454 def : Pat<(v4i32 (anyext (v4i1 VCCR:$pred))), 6455 (v4i32 (MVE_VPSEL (MVE_VMOVimmi32 1), (MVE_VMOVimmi32 0), ARMVCCNone, VCCR:$pred))>; 6456 6457 def : Pat<(v16i1 (trunc (v16i8 MQPR:$v1))), 6458 (v16i1 (MVE_VCMPi32r (v16i8 MQPR:$v1), ZR, ARMCCne))>; 6459 def : Pat<(v8i1 (trunc (v8i16 MQPR:$v1))), 6460 (v8i1 (MVE_VCMPi32r (v8i16 MQPR:$v1), ZR, ARMCCne))>; 6461 def : Pat<(v4i1 (trunc (v4i32 MQPR:$v1))), 6462 (v4i1 (MVE_VCMPi32r (v4i32 MQPR:$v1), ZR, ARMCCne))>; 6463} 6464 6465let Predicates = [HasMVEFloat] in { 6466 // Pred <-> Float 6467 // 112 is 1.0 in float 6468 def : Pat<(v4f32 (uint_to_fp (v4i1 VCCR:$pred))), 6469 (v4f32 (MVE_VPSEL (v4f32 (MVE_VMOVimmf32 112)), (v4f32 (MVE_VMOVimmi32 0)), ARMVCCNone, VCCR:$pred))>; 6470 // 2620 in 1.0 in half 6471 def : Pat<(v8f16 (uint_to_fp (v8i1 VCCR:$pred))), 6472 (v8f16 (MVE_VPSEL (v8f16 (MVE_VMOVimmi16 2620)), (v8f16 (MVE_VMOVimmi16 0)), ARMVCCNone, VCCR:$pred))>; 6473 // 240 is -1.0 in float 6474 def : Pat<(v4f32 (sint_to_fp (v4i1 VCCR:$pred))), 6475 (v4f32 (MVE_VPSEL (v4f32 (MVE_VMOVimmf32 240)), (v4f32 (MVE_VMOVimmi32 0)), ARMVCCNone, VCCR:$pred))>; 6476 // 2748 is -1.0 in half 6477 def : Pat<(v8f16 (sint_to_fp (v8i1 VCCR:$pred))), 6478 (v8f16 (MVE_VPSEL (v8f16 (MVE_VMOVimmi16 2748)), (v8f16 (MVE_VMOVimmi16 0)), ARMVCCNone, VCCR:$pred))>; 6479 6480 def : Pat<(v4i1 (fp_to_uint (v4f32 MQPR:$v1))), 6481 (v4i1 (MVE_VCMPf32r (v4f32 MQPR:$v1), ZR, ARMCCne))>; 6482 def : Pat<(v8i1 (fp_to_uint (v8f16 MQPR:$v1))), 6483 (v8i1 (MVE_VCMPf16r (v8f16 MQPR:$v1), ZR, ARMCCne))>; 6484 def : Pat<(v4i1 (fp_to_sint (v4f32 MQPR:$v1))), 6485 (v4i1 (MVE_VCMPf32r (v4f32 MQPR:$v1), ZR, ARMCCne))>; 6486 def : Pat<(v8i1 (fp_to_sint (v8f16 MQPR:$v1))), 6487 (v8i1 (MVE_VCMPf16r (v8f16 MQPR:$v1), ZR, ARMCCne))>; 6488} 6489 6490def MVE_VPNOT : MVE_p<(outs VCCR:$P0), (ins VCCR:$P0_in), NoItinerary, 6491 "vpnot", "", "", vpred_n, "", []> { 6492 let Inst{31-0} = 0b11111110001100010000111101001101; 6493 let Unpredictable{19-17} = 0b111; 6494 let Unpredictable{12} = 0b1; 6495 let Unpredictable{7} = 0b1; 6496 let Unpredictable{5} = 0b1; 6497 6498 let Constraints = ""; 6499 let DecoderMethod = "DecodeMVEVPNOT"; 6500} 6501 6502let Predicates = [HasMVEInt] in { 6503 def : Pat<(v4i1 (xor (v4i1 VCCR:$pred), (v4i1 (predicate_cast (i32 65535))))), 6504 (v4i1 (MVE_VPNOT (v4i1 VCCR:$pred)))>; 6505 def : Pat<(v8i1 (xor (v8i1 VCCR:$pred), (v8i1 (predicate_cast (i32 65535))))), 6506 (v8i1 (MVE_VPNOT (v8i1 VCCR:$pred)))>; 6507 def : Pat<(v16i1 (xor (v16i1 VCCR:$pred), (v16i1 (predicate_cast (i32 65535))))), 6508 (v16i1 (MVE_VPNOT (v16i1 VCCR:$pred)))>; 6509} 6510 6511 6512class MVE_loltp_start<dag iops, string asm, string ops, bits<2> size> 6513 : t2LOL<(outs GPRlr:$LR), iops, asm, ops> { 6514 bits<4> Rn; 6515 let Predicates = [HasMVEInt]; 6516 let Inst{22} = 0b0; 6517 let Inst{21-20} = size; 6518 let Inst{19-16} = Rn{3-0}; 6519 let Inst{12} = 0b0; 6520} 6521 6522class MVE_DLSTP<string asm, bits<2> size> 6523 : MVE_loltp_start<(ins rGPR:$Rn), asm, "$LR, $Rn", size> { 6524 let Inst{13} = 0b1; 6525 let Inst{11-1} = 0b00000000000; 6526 let Unpredictable{10-1} = 0b1111111111; 6527} 6528 6529class MVE_WLSTP<string asm, bits<2> size> 6530 : MVE_loltp_start<(ins rGPR:$Rn, wlslabel_u11:$label), 6531 asm, "$LR, $Rn, $label", size> { 6532 bits<11> label; 6533 let Inst{13} = 0b0; 6534 let Inst{11} = label{0}; 6535 let Inst{10-1} = label{10-1}; 6536 let isBranch = 1; 6537 let isTerminator = 1; 6538} 6539 6540def MVE_DLSTP_8 : MVE_DLSTP<"dlstp.8", 0b00>; 6541def MVE_DLSTP_16 : MVE_DLSTP<"dlstp.16", 0b01>; 6542def MVE_DLSTP_32 : MVE_DLSTP<"dlstp.32", 0b10>; 6543def MVE_DLSTP_64 : MVE_DLSTP<"dlstp.64", 0b11>; 6544 6545def MVE_WLSTP_8 : MVE_WLSTP<"wlstp.8", 0b00>; 6546def MVE_WLSTP_16 : MVE_WLSTP<"wlstp.16", 0b01>; 6547def MVE_WLSTP_32 : MVE_WLSTP<"wlstp.32", 0b10>; 6548def MVE_WLSTP_64 : MVE_WLSTP<"wlstp.64", 0b11>; 6549 6550class MVE_loltp_end<dag oops, dag iops, string asm, string ops> 6551 : t2LOL<oops, iops, asm, ops> { 6552 let Predicates = [HasMVEInt]; 6553 let Inst{22-21} = 0b00; 6554 let Inst{19-16} = 0b1111; 6555 let Inst{12} = 0b0; 6556} 6557 6558def MVE_LETP : MVE_loltp_end<(outs GPRlr:$LRout), 6559 (ins GPRlr:$LRin, lelabel_u11:$label), 6560 "letp", "$LRin, $label"> { 6561 bits<11> label; 6562 let Inst{20} = 0b1; 6563 let Inst{13} = 0b0; 6564 let Inst{11} = label{0}; 6565 let Inst{10-1} = label{10-1}; 6566 let isBranch = 1; 6567 let isTerminator = 1; 6568} 6569 6570def MVE_LCTP : MVE_loltp_end<(outs), (ins pred:$p), "lctp${p}", ""> { 6571 let Inst{20} = 0b0; 6572 let Inst{13} = 0b1; 6573 let Inst{11-1} = 0b00000000000; 6574 let Unpredictable{21-20} = 0b11; 6575 let Unpredictable{11-1} = 0b11111111111; 6576} 6577 6578 6579//===----------------------------------------------------------------------===// 6580// Patterns 6581//===----------------------------------------------------------------------===// 6582 6583// PatFrags for loads and stores. Often trying to keep semi-consistent names. 6584 6585def aligned32_pre_store : PatFrag<(ops node:$val, node:$ptr, node:$offset), 6586 (pre_store node:$val, node:$ptr, node:$offset), [{ 6587 return cast<StoreSDNode>(N)->getAlignment() >= 4; 6588}]>; 6589def aligned32_post_store : PatFrag<(ops node:$val, node:$ptr, node:$offset), 6590 (post_store node:$val, node:$ptr, node:$offset), [{ 6591 return cast<StoreSDNode>(N)->getAlignment() >= 4; 6592}]>; 6593def aligned16_pre_store : PatFrag<(ops node:$val, node:$ptr, node:$offset), 6594 (pre_store node:$val, node:$ptr, node:$offset), [{ 6595 return cast<StoreSDNode>(N)->getAlignment() >= 2; 6596}]>; 6597def aligned16_post_store : PatFrag<(ops node:$val, node:$ptr, node:$offset), 6598 (post_store node:$val, node:$ptr, node:$offset), [{ 6599 return cast<StoreSDNode>(N)->getAlignment() >= 2; 6600}]>; 6601 6602 6603def aligned_maskedloadvi8 : PatFrag<(ops node:$ptr, node:$pred, node:$passthru), 6604 (masked_ld node:$ptr, undef, node:$pred, node:$passthru), [{ 6605 auto *Ld = cast<MaskedLoadSDNode>(N); 6606 return Ld->getMemoryVT().getScalarType() == MVT::i8; 6607}]>; 6608def aligned_sextmaskedloadvi8 : PatFrag<(ops node:$ptr, node:$pred, node:$passthru), 6609 (aligned_maskedloadvi8 node:$ptr, node:$pred, node:$passthru), [{ 6610 return cast<MaskedLoadSDNode>(N)->getExtensionType() == ISD::SEXTLOAD; 6611}]>; 6612def aligned_zextmaskedloadvi8 : PatFrag<(ops node:$ptr, node:$pred, node:$passthru), 6613 (aligned_maskedloadvi8 node:$ptr, node:$pred, node:$passthru), [{ 6614 return cast<MaskedLoadSDNode>(N)->getExtensionType() == ISD::ZEXTLOAD; 6615}]>; 6616def aligned_extmaskedloadvi8 : PatFrag<(ops node:$ptr, node:$pred, node:$passthru), 6617 (aligned_maskedloadvi8 node:$ptr, node:$pred, node:$passthru), [{ 6618 auto *Ld = cast<MaskedLoadSDNode>(N); 6619 EVT ScalarVT = Ld->getMemoryVT().getScalarType(); 6620 return ScalarVT.isInteger() && Ld->getExtensionType() == ISD::EXTLOAD; 6621}]>; 6622def aligned_maskedloadvi16: PatFrag<(ops node:$ptr, node:$pred, node:$passthru), 6623 (masked_ld node:$ptr, undef, node:$pred, node:$passthru), [{ 6624 auto *Ld = cast<MaskedLoadSDNode>(N); 6625 EVT ScalarVT = Ld->getMemoryVT().getScalarType(); 6626 return (ScalarVT == MVT::i16 || ScalarVT == MVT::f16) && Ld->getAlignment() >= 2; 6627}]>; 6628def aligned_sextmaskedloadvi16 : PatFrag<(ops node:$ptr, node:$pred, node:$passthru), 6629 (aligned_maskedloadvi16 node:$ptr, node:$pred, node:$passthru), [{ 6630 return cast<MaskedLoadSDNode>(N)->getExtensionType() == ISD::SEXTLOAD; 6631}]>; 6632def aligned_zextmaskedloadvi16 : PatFrag<(ops node:$ptr, node:$pred, node:$passthru), 6633 (aligned_maskedloadvi16 node:$ptr, node:$pred, node:$passthru), [{ 6634 return cast<MaskedLoadSDNode>(N)->getExtensionType() == ISD::ZEXTLOAD; 6635}]>; 6636def aligned_extmaskedloadvi16 : PatFrag<(ops node:$ptr, node:$pred, node:$passthru), 6637 (aligned_maskedloadvi16 node:$ptr, node:$pred, node:$passthru), [{ 6638 auto *Ld = cast<MaskedLoadSDNode>(N); 6639 EVT ScalarVT = Ld->getMemoryVT().getScalarType(); 6640 return ScalarVT.isInteger() && Ld->getExtensionType() == ISD::EXTLOAD; 6641}]>; 6642def aligned_maskedloadvi32: PatFrag<(ops node:$ptr, node:$pred, node:$passthru), 6643 (masked_ld node:$ptr, undef, node:$pred, node:$passthru), [{ 6644 auto *Ld = cast<MaskedLoadSDNode>(N); 6645 EVT ScalarVT = Ld->getMemoryVT().getScalarType(); 6646 return (ScalarVT == MVT::i32 || ScalarVT == MVT::f32) && Ld->getAlignment() >= 4; 6647}]>; 6648 6649def aligned_maskedstvi8 : PatFrag<(ops node:$val, node:$ptr, node:$pred), 6650 (masked_st node:$val, node:$ptr, undef, node:$pred), [{ 6651 return cast<MaskedStoreSDNode>(N)->getMemoryVT().getScalarType() == MVT::i8; 6652}]>; 6653def aligned_maskedstvi16 : PatFrag<(ops node:$val, node:$ptr, node:$pred), 6654 (masked_st node:$val, node:$ptr, undef, node:$pred), [{ 6655 auto *St = cast<MaskedStoreSDNode>(N); 6656 EVT ScalarVT = St->getMemoryVT().getScalarType(); 6657 return (ScalarVT == MVT::i16 || ScalarVT == MVT::f16) && St->getAlignment() >= 2; 6658}]>; 6659def aligned_maskedstvi32 : PatFrag<(ops node:$val, node:$ptr, node:$pred), 6660 (masked_st node:$val, node:$ptr, undef, node:$pred), [{ 6661 auto *St = cast<MaskedStoreSDNode>(N); 6662 EVT ScalarVT = St->getMemoryVT().getScalarType(); 6663 return (ScalarVT == MVT::i32 || ScalarVT == MVT::f32) && St->getAlignment() >= 4; 6664}]>; 6665 6666def pre_maskedstore : PatFrag<(ops node:$val, node:$base, node:$offset, node:$mask), 6667 (masked_st node:$val, node:$base, node:$offset, node:$mask), [{ 6668 ISD::MemIndexedMode AM = cast<MaskedStoreSDNode>(N)->getAddressingMode(); 6669 return AM == ISD::PRE_INC || AM == ISD::PRE_DEC; 6670}]>; 6671def post_maskedstore : PatFrag<(ops node:$val, node:$base, node:$offset, node:$mask), 6672 (masked_st node:$val, node:$base, node:$offset, node:$mask), [{ 6673 ISD::MemIndexedMode AM = cast<MaskedStoreSDNode>(N)->getAddressingMode(); 6674 return AM == ISD::POST_INC || AM == ISD::POST_DEC; 6675}]>; 6676def aligned_pre_maskedstorevi8 : PatFrag<(ops node:$val, node:$ptr, node:$offset, node:$mask), 6677 (pre_maskedstore node:$val, node:$ptr, node:$offset, node:$mask), [{ 6678 return cast<MaskedStoreSDNode>(N)->getMemoryVT().getScalarType() == MVT::i8; 6679}]>; 6680def aligned_post_maskedstorevi8 : PatFrag<(ops node:$val, node:$ptr, node:$offset, node:$mask), 6681 (post_maskedstore node:$val, node:$ptr, node:$offset, node:$mask), [{ 6682 return cast<MaskedStoreSDNode>(N)->getMemoryVT().getScalarType() == MVT::i8; 6683}]>; 6684def aligned_pre_maskedstorevi16 : PatFrag<(ops node:$val, node:$ptr, node:$offset, node:$mask), 6685 (pre_maskedstore node:$val, node:$ptr, node:$offset, node:$mask), [{ 6686 auto *St = cast<MaskedStoreSDNode>(N); 6687 EVT ScalarVT = St->getMemoryVT().getScalarType(); 6688 return (ScalarVT == MVT::i16 || ScalarVT == MVT::f16) && St->getAlignment() >= 2; 6689}]>; 6690def aligned_post_maskedstorevi16 : PatFrag<(ops node:$val, node:$ptr, node:$offset, node:$mask), 6691 (post_maskedstore node:$val, node:$ptr, node:$offset, node:$mask), [{ 6692 auto *St = cast<MaskedStoreSDNode>(N); 6693 EVT ScalarVT = St->getMemoryVT().getScalarType(); 6694 return (ScalarVT == MVT::i16 || ScalarVT == MVT::f16) && St->getAlignment() >= 2; 6695}]>; 6696def aligned_pre_maskedstorevi32 : PatFrag<(ops node:$val, node:$ptr, node:$offset, node:$mask), 6697 (pre_maskedstore node:$val, node:$ptr, node:$offset, node:$mask), [{ 6698 auto *St = cast<MaskedStoreSDNode>(N); 6699 EVT ScalarVT = St->getMemoryVT().getScalarType(); 6700 return (ScalarVT == MVT::i32 || ScalarVT == MVT::f32) && St->getAlignment() >= 4; 6701}]>; 6702def aligned_post_maskedstorevi32 : PatFrag<(ops node:$val, node:$ptr, node:$offset, node:$mask), 6703 (post_maskedstore node:$val, node:$ptr, node:$offset, node:$mask), [{ 6704 auto *St = cast<MaskedStoreSDNode>(N); 6705 EVT ScalarVT = St->getMemoryVT().getScalarType(); 6706 return (ScalarVT == MVT::i32 || ScalarVT == MVT::f32) && St->getAlignment() >= 4; 6707}]>; 6708 6709 6710// PatFrags for "Aligned" extending / truncating 6711 6712def aligned_extloadvi8 : PatFrag<(ops node:$ptr), (extloadvi8 node:$ptr)>; 6713def aligned_sextloadvi8 : PatFrag<(ops node:$ptr), (sextloadvi8 node:$ptr)>; 6714def aligned_zextloadvi8 : PatFrag<(ops node:$ptr), (zextloadvi8 node:$ptr)>; 6715 6716def aligned_truncstvi8 : PatFrag<(ops node:$val, node:$ptr), 6717 (truncstorevi8 node:$val, node:$ptr)>; 6718def aligned_post_truncstvi8 : PatFrag<(ops node:$val, node:$base, node:$offset), 6719 (post_truncstvi8 node:$val, node:$base, node:$offset)>; 6720def aligned_pre_truncstvi8 : PatFrag<(ops node:$val, node:$base, node:$offset), 6721 (pre_truncstvi8 node:$val, node:$base, node:$offset)>; 6722 6723let MinAlignment = 2 in { 6724 def aligned_extloadvi16 : PatFrag<(ops node:$ptr), (extloadvi16 node:$ptr)>; 6725 def aligned_sextloadvi16 : PatFrag<(ops node:$ptr), (sextloadvi16 node:$ptr)>; 6726 def aligned_zextloadvi16 : PatFrag<(ops node:$ptr), (zextloadvi16 node:$ptr)>; 6727 6728 def aligned_truncstvi16 : PatFrag<(ops node:$val, node:$ptr), 6729 (truncstorevi16 node:$val, node:$ptr)>; 6730 def aligned_post_truncstvi16 : PatFrag<(ops node:$val, node:$base, node:$offset), 6731 (post_truncstvi16 node:$val, node:$base, node:$offset)>; 6732 def aligned_pre_truncstvi16 : PatFrag<(ops node:$val, node:$base, node:$offset), 6733 (pre_truncstvi16 node:$val, node:$base, node:$offset)>; 6734} 6735 6736def truncmaskedst : PatFrag<(ops node:$val, node:$base, node:$pred), 6737 (masked_st node:$val, node:$base, undef, node:$pred), [{ 6738 return cast<MaskedStoreSDNode>(N)->isTruncatingStore(); 6739}]>; 6740def aligned_truncmaskedstvi8 : PatFrag<(ops node:$val, node:$base, node:$pred), 6741 (truncmaskedst node:$val, node:$base, node:$pred), [{ 6742 return cast<MaskedStoreSDNode>(N)->getMemoryVT().getScalarType() == MVT::i8; 6743}]>; 6744def aligned_truncmaskedstvi16 : PatFrag<(ops node:$val, node:$base, node:$pred), 6745 (truncmaskedst node:$val, node:$base, node:$pred), [{ 6746 auto *St = cast<MaskedStoreSDNode>(N); 6747 EVT ScalarVT = St->getMemoryVT().getScalarType(); 6748 return (ScalarVT == MVT::i16 || ScalarVT == MVT::f16) && St->getAlignment() >= 2; 6749}]>; 6750def pre_truncmaskedst : PatFrag<(ops node:$val, node:$base, node:$offset, node:$pred), 6751 (masked_st node:$val, node:$base, node:$offset, node:$pred), [{ 6752 ISD::MemIndexedMode AM = cast<MaskedStoreSDNode>(N)->getAddressingMode(); 6753 return cast<MaskedStoreSDNode>(N)->isTruncatingStore() && (AM == ISD::PRE_INC || AM == ISD::PRE_DEC); 6754}]>; 6755def aligned_pre_truncmaskedstvi8 : PatFrag<(ops node:$val, node:$base, node:$offset, node:$pred), 6756 (pre_truncmaskedst node:$val, node:$base, node:$offset, node:$pred), [{ 6757 return cast<MaskedStoreSDNode>(N)->getMemoryVT().getScalarType() == MVT::i8; 6758}]>; 6759def aligned_pre_truncmaskedstvi16 : PatFrag<(ops node:$val, node:$base, node:$offset, node:$pred), 6760 (pre_truncmaskedst node:$val, node:$base, node:$offset, node:$pred), [{ 6761 auto *St = cast<MaskedStoreSDNode>(N); 6762 EVT ScalarVT = St->getMemoryVT().getScalarType(); 6763 return (ScalarVT == MVT::i16 || ScalarVT == MVT::f16) && St->getAlignment() >= 2; 6764}]>; 6765def post_truncmaskedst : PatFrag<(ops node:$val, node:$base, node:$offset, node:$postd), 6766 (masked_st node:$val, node:$base, node:$offset, node:$postd), [{ 6767 ISD::MemIndexedMode AM = cast<MaskedStoreSDNode>(N)->getAddressingMode(); 6768 return cast<MaskedStoreSDNode>(N)->isTruncatingStore() && (AM == ISD::POST_INC || AM == ISD::POST_DEC); 6769}]>; 6770def aligned_post_truncmaskedstvi8 : PatFrag<(ops node:$val, node:$base, node:$offset, node:$postd), 6771 (post_truncmaskedst node:$val, node:$base, node:$offset, node:$postd), [{ 6772 return cast<MaskedStoreSDNode>(N)->getMemoryVT().getScalarType() == MVT::i8; 6773}]>; 6774def aligned_post_truncmaskedstvi16 : PatFrag<(ops node:$val, node:$base, node:$offset, node:$postd), 6775 (post_truncmaskedst node:$val, node:$base, node:$offset, node:$postd), [{ 6776 auto *St = cast<MaskedStoreSDNode>(N); 6777 EVT ScalarVT = St->getMemoryVT().getScalarType(); 6778 return (ScalarVT == MVT::i16 || ScalarVT == MVT::f16) && St->getAlignment() >= 2; 6779}]>; 6780 6781// Load/store patterns 6782 6783class MVE_vector_store_typed<ValueType Ty, Instruction RegImmInst, 6784 PatFrag StoreKind, int shift> 6785 : Pat<(StoreKind (Ty MQPR:$val), t2addrmode_imm7<shift>:$addr), 6786 (RegImmInst (Ty MQPR:$val), t2addrmode_imm7<shift>:$addr)>; 6787 6788class MVE_vector_maskedstore_typed<ValueType Ty, Instruction RegImmInst, 6789 PatFrag StoreKind, int shift> 6790 : Pat<(StoreKind (Ty MQPR:$val), t2addrmode_imm7<shift>:$addr, VCCR:$pred), 6791 (RegImmInst (Ty MQPR:$val), t2addrmode_imm7<shift>:$addr, ARMVCCThen, VCCR:$pred)>; 6792 6793multiclass MVE_vector_store<Instruction RegImmInst, PatFrag StoreKind, 6794 int shift> { 6795 def : MVE_vector_store_typed<v16i8, RegImmInst, StoreKind, shift>; 6796 def : MVE_vector_store_typed<v8i16, RegImmInst, StoreKind, shift>; 6797 def : MVE_vector_store_typed<v8f16, RegImmInst, StoreKind, shift>; 6798 def : MVE_vector_store_typed<v4i32, RegImmInst, StoreKind, shift>; 6799 def : MVE_vector_store_typed<v4f32, RegImmInst, StoreKind, shift>; 6800 def : MVE_vector_store_typed<v2i64, RegImmInst, StoreKind, shift>; 6801 def : MVE_vector_store_typed<v2f64, RegImmInst, StoreKind, shift>; 6802} 6803 6804class MVE_vector_load_typed<ValueType Ty, Instruction RegImmInst, 6805 PatFrag LoadKind, int shift> 6806 : Pat<(Ty (LoadKind t2addrmode_imm7<shift>:$addr)), 6807 (Ty (RegImmInst t2addrmode_imm7<shift>:$addr))>; 6808 6809class MVE_vector_maskedload_typed<ValueType Ty, Instruction RegImmInst, 6810 PatFrag LoadKind, int shift> 6811 : Pat<(Ty (LoadKind t2addrmode_imm7<shift>:$addr, VCCR:$pred, (Ty NEONimmAllZerosV))), 6812 (Ty (RegImmInst t2addrmode_imm7<shift>:$addr, ARMVCCThen, VCCR:$pred))>; 6813 6814multiclass MVE_vector_load<Instruction RegImmInst, PatFrag LoadKind, 6815 int shift> { 6816 def : MVE_vector_load_typed<v16i8, RegImmInst, LoadKind, shift>; 6817 def : MVE_vector_load_typed<v8i16, RegImmInst, LoadKind, shift>; 6818 def : MVE_vector_load_typed<v8f16, RegImmInst, LoadKind, shift>; 6819 def : MVE_vector_load_typed<v4i32, RegImmInst, LoadKind, shift>; 6820 def : MVE_vector_load_typed<v4f32, RegImmInst, LoadKind, shift>; 6821 def : MVE_vector_load_typed<v2i64, RegImmInst, LoadKind, shift>; 6822 def : MVE_vector_load_typed<v2f64, RegImmInst, LoadKind, shift>; 6823} 6824 6825class MVE_vector_offset_store_typed<ValueType Ty, Instruction Opcode, 6826 PatFrag StoreKind, int shift> 6827 : Pat<(StoreKind (Ty MQPR:$Rt), tGPR:$Rn, t2am_imm7_offset<shift>:$addr), 6828 (Opcode MQPR:$Rt, tGPR:$Rn, t2am_imm7_offset<shift>:$addr)>; 6829 6830class MVE_vector_offset_maskedstore_typed<ValueType Ty, Instruction Opcode, 6831 PatFrag StoreKind, int shift> 6832 : Pat<(StoreKind (Ty MQPR:$Rt), tGPR:$Rn, t2am_imm7_offset<shift>:$addr, VCCR:$pred), 6833 (Opcode MQPR:$Rt, tGPR:$Rn, t2am_imm7_offset<shift>:$addr, ARMVCCThen, VCCR:$pred)>; 6834 6835multiclass MVE_vector_offset_store<Instruction RegImmInst, PatFrag StoreKind, 6836 int shift> { 6837 def : MVE_vector_offset_store_typed<v16i8, RegImmInst, StoreKind, shift>; 6838 def : MVE_vector_offset_store_typed<v8i16, RegImmInst, StoreKind, shift>; 6839 def : MVE_vector_offset_store_typed<v8f16, RegImmInst, StoreKind, shift>; 6840 def : MVE_vector_offset_store_typed<v4i32, RegImmInst, StoreKind, shift>; 6841 def : MVE_vector_offset_store_typed<v4f32, RegImmInst, StoreKind, shift>; 6842 def : MVE_vector_offset_store_typed<v2i64, RegImmInst, StoreKind, shift>; 6843 def : MVE_vector_offset_store_typed<v2f64, RegImmInst, StoreKind, shift>; 6844} 6845 6846 6847let Predicates = [HasMVEInt, IsLE] in { 6848 // Stores 6849 defm : MVE_vector_store<MVE_VSTRBU8, byte_alignedstore, 0>; 6850 defm : MVE_vector_store<MVE_VSTRHU16, hword_alignedstore, 1>; 6851 defm : MVE_vector_store<MVE_VSTRWU32, alignedstore32, 2>; 6852 6853 // Loads 6854 defm : MVE_vector_load<MVE_VLDRBU8, byte_alignedload, 0>; 6855 defm : MVE_vector_load<MVE_VLDRHU16, hword_alignedload, 1>; 6856 defm : MVE_vector_load<MVE_VLDRWU32, alignedload32, 2>; 6857 6858 // Pre/post inc stores 6859 defm : MVE_vector_offset_store<MVE_VSTRBU8_pre, pre_store, 0>; 6860 defm : MVE_vector_offset_store<MVE_VSTRBU8_post, post_store, 0>; 6861 defm : MVE_vector_offset_store<MVE_VSTRHU16_pre, aligned16_pre_store, 1>; 6862 defm : MVE_vector_offset_store<MVE_VSTRHU16_post, aligned16_post_store, 1>; 6863 defm : MVE_vector_offset_store<MVE_VSTRWU32_pre, aligned32_pre_store, 2>; 6864 defm : MVE_vector_offset_store<MVE_VSTRWU32_post, aligned32_post_store, 2>; 6865} 6866 6867let Predicates = [HasMVEInt, IsBE] in { 6868 // Aligned Stores 6869 def : MVE_vector_store_typed<v16i8, MVE_VSTRBU8, store, 0>; 6870 def : MVE_vector_store_typed<v8i16, MVE_VSTRHU16, alignedstore16, 1>; 6871 def : MVE_vector_store_typed<v8f16, MVE_VSTRHU16, alignedstore16, 1>; 6872 def : MVE_vector_store_typed<v4i32, MVE_VSTRWU32, alignedstore32, 2>; 6873 def : MVE_vector_store_typed<v4f32, MVE_VSTRWU32, alignedstore32, 2>; 6874 6875 // Aligned Loads 6876 def : MVE_vector_load_typed<v16i8, MVE_VLDRBU8, load, 0>; 6877 def : MVE_vector_load_typed<v8i16, MVE_VLDRHU16, alignedload16, 1>; 6878 def : MVE_vector_load_typed<v8f16, MVE_VLDRHU16, alignedload16, 1>; 6879 def : MVE_vector_load_typed<v4i32, MVE_VLDRWU32, alignedload32, 2>; 6880 def : MVE_vector_load_typed<v4f32, MVE_VLDRWU32, alignedload32, 2>; 6881 6882 // Other unaligned loads/stores need to go though a VREV 6883 def : Pat<(v2f64 (load t2addrmode_imm7<0>:$addr)), 6884 (v2f64 (MVE_VREV64_8 (MVE_VLDRBU8 t2addrmode_imm7<0>:$addr)))>; 6885 def : Pat<(v2i64 (load t2addrmode_imm7<0>:$addr)), 6886 (v2i64 (MVE_VREV64_8 (MVE_VLDRBU8 t2addrmode_imm7<0>:$addr)))>; 6887 def : Pat<(v4i32 (load t2addrmode_imm7<0>:$addr)), 6888 (v4i32 (MVE_VREV32_8 (MVE_VLDRBU8 t2addrmode_imm7<0>:$addr)))>; 6889 def : Pat<(v4f32 (load t2addrmode_imm7<0>:$addr)), 6890 (v4f32 (MVE_VREV32_8 (MVE_VLDRBU8 t2addrmode_imm7<0>:$addr)))>; 6891 def : Pat<(v8i16 (load t2addrmode_imm7<0>:$addr)), 6892 (v8i16 (MVE_VREV16_8 (MVE_VLDRBU8 t2addrmode_imm7<0>:$addr)))>; 6893 def : Pat<(v8f16 (load t2addrmode_imm7<0>:$addr)), 6894 (v8f16 (MVE_VREV16_8 (MVE_VLDRBU8 t2addrmode_imm7<0>:$addr)))>; 6895 def : Pat<(store (v2f64 MQPR:$val), t2addrmode_imm7<0>:$addr), 6896 (MVE_VSTRBU8 (MVE_VREV64_8 MQPR:$val), t2addrmode_imm7<0>:$addr)>; 6897 def : Pat<(store (v2i64 MQPR:$val), t2addrmode_imm7<0>:$addr), 6898 (MVE_VSTRBU8 (MVE_VREV64_8 MQPR:$val), t2addrmode_imm7<0>:$addr)>; 6899 def : Pat<(store (v4i32 MQPR:$val), t2addrmode_imm7<0>:$addr), 6900 (MVE_VSTRBU8 (MVE_VREV32_8 MQPR:$val), t2addrmode_imm7<0>:$addr)>; 6901 def : Pat<(store (v4f32 MQPR:$val), t2addrmode_imm7<0>:$addr), 6902 (MVE_VSTRBU8 (MVE_VREV32_8 MQPR:$val), t2addrmode_imm7<0>:$addr)>; 6903 def : Pat<(store (v8i16 MQPR:$val), t2addrmode_imm7<0>:$addr), 6904 (MVE_VSTRBU8 (MVE_VREV16_8 MQPR:$val), t2addrmode_imm7<0>:$addr)>; 6905 def : Pat<(store (v8f16 MQPR:$val), t2addrmode_imm7<0>:$addr), 6906 (MVE_VSTRBU8 (MVE_VREV16_8 MQPR:$val), t2addrmode_imm7<0>:$addr)>; 6907 6908 // Pre/Post inc stores 6909 def : MVE_vector_offset_store_typed<v16i8, MVE_VSTRBU8_pre, pre_store, 0>; 6910 def : MVE_vector_offset_store_typed<v16i8, MVE_VSTRBU8_post, post_store, 0>; 6911 def : MVE_vector_offset_store_typed<v8i16, MVE_VSTRHU16_pre, aligned16_pre_store, 1>; 6912 def : MVE_vector_offset_store_typed<v8i16, MVE_VSTRHU16_post, aligned16_post_store, 1>; 6913 def : MVE_vector_offset_store_typed<v8f16, MVE_VSTRHU16_pre, aligned16_pre_store, 1>; 6914 def : MVE_vector_offset_store_typed<v8f16, MVE_VSTRHU16_post, aligned16_post_store, 1>; 6915 def : MVE_vector_offset_store_typed<v4i32, MVE_VSTRWU32_pre, aligned32_pre_store, 2>; 6916 def : MVE_vector_offset_store_typed<v4i32, MVE_VSTRWU32_post, aligned32_post_store, 2>; 6917 def : MVE_vector_offset_store_typed<v4f32, MVE_VSTRWU32_pre, aligned32_pre_store, 2>; 6918 def : MVE_vector_offset_store_typed<v4f32, MVE_VSTRWU32_post, aligned32_post_store, 2>; 6919} 6920 6921let Predicates = [HasMVEInt] in { 6922 // Aligned masked store, shared between LE and BE 6923 def : MVE_vector_maskedstore_typed<v16i8, MVE_VSTRBU8, aligned_maskedstvi8, 0>; 6924 def : MVE_vector_maskedstore_typed<v8i16, MVE_VSTRHU16, aligned_maskedstvi16, 1>; 6925 def : MVE_vector_maskedstore_typed<v8f16, MVE_VSTRHU16, aligned_maskedstvi16, 1>; 6926 def : MVE_vector_maskedstore_typed<v4i32, MVE_VSTRWU32, aligned_maskedstvi32, 2>; 6927 def : MVE_vector_maskedstore_typed<v4f32, MVE_VSTRWU32, aligned_maskedstvi32, 2>; 6928 6929 // Pre/Post inc masked stores 6930 def : MVE_vector_offset_maskedstore_typed<v16i8, MVE_VSTRBU8_pre, aligned_pre_maskedstorevi8, 0>; 6931 def : MVE_vector_offset_maskedstore_typed<v16i8, MVE_VSTRBU8_post, aligned_post_maskedstorevi8, 0>; 6932 def : MVE_vector_offset_maskedstore_typed<v8i16, MVE_VSTRHU16_pre, aligned_pre_maskedstorevi16, 1>; 6933 def : MVE_vector_offset_maskedstore_typed<v8i16, MVE_VSTRHU16_post, aligned_post_maskedstorevi16, 1>; 6934 def : MVE_vector_offset_maskedstore_typed<v8f16, MVE_VSTRHU16_pre, aligned_pre_maskedstorevi16, 1>; 6935 def : MVE_vector_offset_maskedstore_typed<v8f16, MVE_VSTRHU16_post, aligned_post_maskedstorevi16, 1>; 6936 def : MVE_vector_offset_maskedstore_typed<v4i32, MVE_VSTRWU32_pre, aligned_pre_maskedstorevi32, 2>; 6937 def : MVE_vector_offset_maskedstore_typed<v4i32, MVE_VSTRWU32_post, aligned_post_maskedstorevi32, 2>; 6938 def : MVE_vector_offset_maskedstore_typed<v4f32, MVE_VSTRWU32_pre, aligned_pre_maskedstorevi32, 2>; 6939 def : MVE_vector_offset_maskedstore_typed<v4f32, MVE_VSTRWU32_post, aligned_post_maskedstorevi32, 2>; 6940 6941 // Aligned masked loads 6942 def : MVE_vector_maskedload_typed<v16i8, MVE_VLDRBU8, aligned_maskedloadvi8, 0>; 6943 def : MVE_vector_maskedload_typed<v8i16, MVE_VLDRHU16, aligned_maskedloadvi16, 1>; 6944 def : MVE_vector_maskedload_typed<v8f16, MVE_VLDRHU16, aligned_maskedloadvi16, 1>; 6945 def : MVE_vector_maskedload_typed<v4i32, MVE_VLDRWU32, aligned_maskedloadvi32, 2>; 6946 def : MVE_vector_maskedload_typed<v4f32, MVE_VLDRWU32, aligned_maskedloadvi32, 2>; 6947} 6948 6949// Widening/Narrowing Loads/Stores 6950 6951multiclass MVEExtLoadStore<Instruction LoadSInst, Instruction LoadUInst, string StoreInst, 6952 string Amble, ValueType VT, int Shift> { 6953 // Trunc stores 6954 def : Pat<(!cast<PatFrag>("aligned_truncst"#Amble) (VT MQPR:$val), taddrmode_imm7<Shift>:$addr), 6955 (!cast<Instruction>(StoreInst) MQPR:$val, taddrmode_imm7<Shift>:$addr)>; 6956 def : Pat<(!cast<PatFrag>("aligned_post_truncst"#Amble) (VT MQPR:$Rt), tGPR:$Rn, t2am_imm7_offset<Shift>:$addr), 6957 (!cast<Instruction>(StoreInst#"_post") MQPR:$Rt, tGPR:$Rn, t2am_imm7_offset<Shift>:$addr)>; 6958 def : Pat<(!cast<PatFrag>("aligned_pre_truncst"#Amble) (VT MQPR:$Rt), tGPR:$Rn, t2am_imm7_offset<Shift>:$addr), 6959 (!cast<Instruction>(StoreInst#"_pre") MQPR:$Rt, tGPR:$Rn, t2am_imm7_offset<Shift>:$addr)>; 6960 6961 // Masked trunc stores 6962 def : Pat<(!cast<PatFrag>("aligned_truncmaskedst"#Amble) (VT MQPR:$val), taddrmode_imm7<Shift>:$addr, VCCR:$pred), 6963 (!cast<Instruction>(StoreInst) MQPR:$val, taddrmode_imm7<Shift>:$addr, ARMVCCThen, VCCR:$pred)>; 6964 def : Pat<(!cast<PatFrag>("aligned_post_truncmaskedst"#Amble) (VT MQPR:$Rt), tGPR:$Rn, t2am_imm7_offset<Shift>:$addr, VCCR:$pred), 6965 (!cast<Instruction>(StoreInst#"_post") MQPR:$Rt, tGPR:$Rn, t2am_imm7_offset<Shift>:$addr, ARMVCCThen, VCCR:$pred)>; 6966 def : Pat<(!cast<PatFrag>("aligned_pre_truncmaskedst"#Amble) (VT MQPR:$Rt), tGPR:$Rn, t2am_imm7_offset<Shift>:$addr, VCCR:$pred), 6967 (!cast<Instruction>(StoreInst#"_pre") MQPR:$Rt, tGPR:$Rn, t2am_imm7_offset<Shift>:$addr, ARMVCCThen, VCCR:$pred)>; 6968 6969 // Ext loads 6970 def : Pat<(VT (!cast<PatFrag>("aligned_extload"#Amble) taddrmode_imm7<Shift>:$addr)), 6971 (VT (LoadUInst taddrmode_imm7<Shift>:$addr))>; 6972 def : Pat<(VT (!cast<PatFrag>("aligned_sextload"#Amble) taddrmode_imm7<Shift>:$addr)), 6973 (VT (LoadSInst taddrmode_imm7<Shift>:$addr))>; 6974 def : Pat<(VT (!cast<PatFrag>("aligned_zextload"#Amble) taddrmode_imm7<Shift>:$addr)), 6975 (VT (LoadUInst taddrmode_imm7<Shift>:$addr))>; 6976 6977 // Masked ext loads 6978 def : Pat<(VT (!cast<PatFrag>("aligned_extmaskedload"#Amble) taddrmode_imm7<Shift>:$addr, VCCR:$pred, (VT NEONimmAllZerosV))), 6979 (VT (LoadUInst taddrmode_imm7<Shift>:$addr, ARMVCCThen, VCCR:$pred))>; 6980 def : Pat<(VT (!cast<PatFrag>("aligned_sextmaskedload"#Amble) taddrmode_imm7<Shift>:$addr, VCCR:$pred, (VT NEONimmAllZerosV))), 6981 (VT (LoadSInst taddrmode_imm7<Shift>:$addr, ARMVCCThen, VCCR:$pred))>; 6982 def : Pat<(VT (!cast<PatFrag>("aligned_zextmaskedload"#Amble) taddrmode_imm7<Shift>:$addr, VCCR:$pred, (VT NEONimmAllZerosV))), 6983 (VT (LoadUInst taddrmode_imm7<Shift>:$addr, ARMVCCThen, VCCR:$pred))>; 6984} 6985 6986let Predicates = [HasMVEInt] in { 6987 defm : MVEExtLoadStore<MVE_VLDRBS16, MVE_VLDRBU16, "MVE_VSTRB16", "vi8", v8i16, 0>; 6988 defm : MVEExtLoadStore<MVE_VLDRBS32, MVE_VLDRBU32, "MVE_VSTRB32", "vi8", v4i32, 0>; 6989 defm : MVEExtLoadStore<MVE_VLDRHS32, MVE_VLDRHU32, "MVE_VSTRH32", "vi16", v4i32, 1>; 6990} 6991 6992 6993// Bit convert patterns 6994 6995let Predicates = [HasMVEInt] in { 6996 def : Pat<(v2f64 (bitconvert (v2i64 MQPR:$src))), (v2f64 MQPR:$src)>; 6997 def : Pat<(v2i64 (bitconvert (v2f64 MQPR:$src))), (v2i64 MQPR:$src)>; 6998 6999 def : Pat<(v4i32 (bitconvert (v4f32 MQPR:$src))), (v4i32 MQPR:$src)>; 7000 def : Pat<(v4f32 (bitconvert (v4i32 MQPR:$src))), (v4f32 MQPR:$src)>; 7001 7002 def : Pat<(v8i16 (bitconvert (v8f16 MQPR:$src))), (v8i16 MQPR:$src)>; 7003 def : Pat<(v8f16 (bitconvert (v8i16 MQPR:$src))), (v8f16 MQPR:$src)>; 7004} 7005 7006let Predicates = [IsLE,HasMVEInt] in { 7007 def : Pat<(v2f64 (bitconvert (v4f32 MQPR:$src))), (v2f64 MQPR:$src)>; 7008 def : Pat<(v2f64 (bitconvert (v4i32 MQPR:$src))), (v2f64 MQPR:$src)>; 7009 def : Pat<(v2f64 (bitconvert (v8f16 MQPR:$src))), (v2f64 MQPR:$src)>; 7010 def : Pat<(v2f64 (bitconvert (v8i16 MQPR:$src))), (v2f64 MQPR:$src)>; 7011 def : Pat<(v2f64 (bitconvert (v16i8 MQPR:$src))), (v2f64 MQPR:$src)>; 7012 7013 def : Pat<(v2i64 (bitconvert (v4f32 MQPR:$src))), (v2i64 MQPR:$src)>; 7014 def : Pat<(v2i64 (bitconvert (v4i32 MQPR:$src))), (v2i64 MQPR:$src)>; 7015 def : Pat<(v2i64 (bitconvert (v8f16 MQPR:$src))), (v2i64 MQPR:$src)>; 7016 def : Pat<(v2i64 (bitconvert (v8i16 MQPR:$src))), (v2i64 MQPR:$src)>; 7017 def : Pat<(v2i64 (bitconvert (v16i8 MQPR:$src))), (v2i64 MQPR:$src)>; 7018 7019 def : Pat<(v4f32 (bitconvert (v2f64 MQPR:$src))), (v4f32 MQPR:$src)>; 7020 def : Pat<(v4f32 (bitconvert (v2i64 MQPR:$src))), (v4f32 MQPR:$src)>; 7021 def : Pat<(v4f32 (bitconvert (v8f16 MQPR:$src))), (v4f32 MQPR:$src)>; 7022 def : Pat<(v4f32 (bitconvert (v8i16 MQPR:$src))), (v4f32 MQPR:$src)>; 7023 def : Pat<(v4f32 (bitconvert (v16i8 MQPR:$src))), (v4f32 MQPR:$src)>; 7024 7025 def : Pat<(v4i32 (bitconvert (v2f64 MQPR:$src))), (v4i32 MQPR:$src)>; 7026 def : Pat<(v4i32 (bitconvert (v2i64 MQPR:$src))), (v4i32 MQPR:$src)>; 7027 def : Pat<(v4i32 (bitconvert (v8f16 MQPR:$src))), (v4i32 MQPR:$src)>; 7028 def : Pat<(v4i32 (bitconvert (v8i16 MQPR:$src))), (v4i32 MQPR:$src)>; 7029 def : Pat<(v4i32 (bitconvert (v16i8 MQPR:$src))), (v4i32 MQPR:$src)>; 7030 7031 def : Pat<(v8f16 (bitconvert (v2f64 MQPR:$src))), (v8f16 MQPR:$src)>; 7032 def : Pat<(v8f16 (bitconvert (v2i64 MQPR:$src))), (v8f16 MQPR:$src)>; 7033 def : Pat<(v8f16 (bitconvert (v4f32 MQPR:$src))), (v8f16 MQPR:$src)>; 7034 def : Pat<(v8f16 (bitconvert (v4i32 MQPR:$src))), (v8f16 MQPR:$src)>; 7035 def : Pat<(v8f16 (bitconvert (v16i8 MQPR:$src))), (v8f16 MQPR:$src)>; 7036 7037 def : Pat<(v8i16 (bitconvert (v2f64 MQPR:$src))), (v8i16 MQPR:$src)>; 7038 def : Pat<(v8i16 (bitconvert (v2i64 MQPR:$src))), (v8i16 MQPR:$src)>; 7039 def : Pat<(v8i16 (bitconvert (v4f32 MQPR:$src))), (v8i16 MQPR:$src)>; 7040 def : Pat<(v8i16 (bitconvert (v4i32 MQPR:$src))), (v8i16 MQPR:$src)>; 7041 def : Pat<(v8i16 (bitconvert (v16i8 MQPR:$src))), (v8i16 MQPR:$src)>; 7042 7043 def : Pat<(v16i8 (bitconvert (v2f64 MQPR:$src))), (v16i8 MQPR:$src)>; 7044 def : Pat<(v16i8 (bitconvert (v2i64 MQPR:$src))), (v16i8 MQPR:$src)>; 7045 def : Pat<(v16i8 (bitconvert (v4f32 MQPR:$src))), (v16i8 MQPR:$src)>; 7046 def : Pat<(v16i8 (bitconvert (v4i32 MQPR:$src))), (v16i8 MQPR:$src)>; 7047 def : Pat<(v16i8 (bitconvert (v8f16 MQPR:$src))), (v16i8 MQPR:$src)>; 7048 def : Pat<(v16i8 (bitconvert (v8i16 MQPR:$src))), (v16i8 MQPR:$src)>; 7049} 7050 7051let Predicates = [IsBE,HasMVEInt] in { 7052 def : Pat<(v2f64 (bitconvert (v4f32 MQPR:$src))), (v2f64 (MVE_VREV64_32 MQPR:$src))>; 7053 def : Pat<(v2f64 (bitconvert (v4i32 MQPR:$src))), (v2f64 (MVE_VREV64_32 MQPR:$src))>; 7054 def : Pat<(v2f64 (bitconvert (v8f16 MQPR:$src))), (v2f64 (MVE_VREV64_16 MQPR:$src))>; 7055 def : Pat<(v2f64 (bitconvert (v8i16 MQPR:$src))), (v2f64 (MVE_VREV64_16 MQPR:$src))>; 7056 def : Pat<(v2f64 (bitconvert (v16i8 MQPR:$src))), (v2f64 (MVE_VREV64_8 MQPR:$src))>; 7057 7058 def : Pat<(v2i64 (bitconvert (v4f32 MQPR:$src))), (v2i64 (MVE_VREV64_32 MQPR:$src))>; 7059 def : Pat<(v2i64 (bitconvert (v4i32 MQPR:$src))), (v2i64 (MVE_VREV64_32 MQPR:$src))>; 7060 def : Pat<(v2i64 (bitconvert (v8f16 MQPR:$src))), (v2i64 (MVE_VREV64_16 MQPR:$src))>; 7061 def : Pat<(v2i64 (bitconvert (v8i16 MQPR:$src))), (v2i64 (MVE_VREV64_16 MQPR:$src))>; 7062 def : Pat<(v2i64 (bitconvert (v16i8 MQPR:$src))), (v2i64 (MVE_VREV64_8 MQPR:$src))>; 7063 7064 def : Pat<(v4f32 (bitconvert (v2f64 MQPR:$src))), (v4f32 (MVE_VREV64_32 MQPR:$src))>; 7065 def : Pat<(v4f32 (bitconvert (v2i64 MQPR:$src))), (v4f32 (MVE_VREV64_32 MQPR:$src))>; 7066 def : Pat<(v4f32 (bitconvert (v8f16 MQPR:$src))), (v4f32 (MVE_VREV32_16 MQPR:$src))>; 7067 def : Pat<(v4f32 (bitconvert (v8i16 MQPR:$src))), (v4f32 (MVE_VREV32_16 MQPR:$src))>; 7068 def : Pat<(v4f32 (bitconvert (v16i8 MQPR:$src))), (v4f32 (MVE_VREV32_8 MQPR:$src))>; 7069 7070 def : Pat<(v4i32 (bitconvert (v2f64 MQPR:$src))), (v4i32 (MVE_VREV64_32 MQPR:$src))>; 7071 def : Pat<(v4i32 (bitconvert (v2i64 MQPR:$src))), (v4i32 (MVE_VREV64_32 MQPR:$src))>; 7072 def : Pat<(v4i32 (bitconvert (v8f16 MQPR:$src))), (v4i32 (MVE_VREV32_16 MQPR:$src))>; 7073 def : Pat<(v4i32 (bitconvert (v8i16 MQPR:$src))), (v4i32 (MVE_VREV32_16 MQPR:$src))>; 7074 def : Pat<(v4i32 (bitconvert (v16i8 MQPR:$src))), (v4i32 (MVE_VREV32_8 MQPR:$src))>; 7075 7076 def : Pat<(v8f16 (bitconvert (v2f64 MQPR:$src))), (v8f16 (MVE_VREV64_16 MQPR:$src))>; 7077 def : Pat<(v8f16 (bitconvert (v2i64 MQPR:$src))), (v8f16 (MVE_VREV64_16 MQPR:$src))>; 7078 def : Pat<(v8f16 (bitconvert (v4f32 MQPR:$src))), (v8f16 (MVE_VREV32_16 MQPR:$src))>; 7079 def : Pat<(v8f16 (bitconvert (v4i32 MQPR:$src))), (v8f16 (MVE_VREV32_16 MQPR:$src))>; 7080 def : Pat<(v8f16 (bitconvert (v16i8 MQPR:$src))), (v8f16 (MVE_VREV16_8 MQPR:$src))>; 7081 7082 def : Pat<(v8i16 (bitconvert (v2f64 MQPR:$src))), (v8i16 (MVE_VREV64_16 MQPR:$src))>; 7083 def : Pat<(v8i16 (bitconvert (v2i64 MQPR:$src))), (v8i16 (MVE_VREV64_16 MQPR:$src))>; 7084 def : Pat<(v8i16 (bitconvert (v4f32 MQPR:$src))), (v8i16 (MVE_VREV32_16 MQPR:$src))>; 7085 def : Pat<(v8i16 (bitconvert (v4i32 MQPR:$src))), (v8i16 (MVE_VREV32_16 MQPR:$src))>; 7086 def : Pat<(v8i16 (bitconvert (v16i8 MQPR:$src))), (v8i16 (MVE_VREV16_8 MQPR:$src))>; 7087 7088 def : Pat<(v16i8 (bitconvert (v2f64 MQPR:$src))), (v16i8 (MVE_VREV64_8 MQPR:$src))>; 7089 def : Pat<(v16i8 (bitconvert (v2i64 MQPR:$src))), (v16i8 (MVE_VREV64_8 MQPR:$src))>; 7090 def : Pat<(v16i8 (bitconvert (v4f32 MQPR:$src))), (v16i8 (MVE_VREV32_8 MQPR:$src))>; 7091 def : Pat<(v16i8 (bitconvert (v4i32 MQPR:$src))), (v16i8 (MVE_VREV32_8 MQPR:$src))>; 7092 def : Pat<(v16i8 (bitconvert (v8f16 MQPR:$src))), (v16i8 (MVE_VREV16_8 MQPR:$src))>; 7093 def : Pat<(v16i8 (bitconvert (v8i16 MQPR:$src))), (v16i8 (MVE_VREV16_8 MQPR:$src))>; 7094} 7095