1//===- PPCInstrVSX.td - The PowerPC VSX Extension --*- 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 VSX extension to the PowerPC instruction set. 10// 11//===----------------------------------------------------------------------===// 12 13// *********************************** NOTE *********************************** 14// ** For POWER8 Little Endian, the VSX swap optimization relies on knowing ** 15// ** which VMX and VSX instructions are lane-sensitive and which are not. ** 16// ** A lane-sensitive instruction relies, implicitly or explicitly, on ** 17// ** whether lanes are numbered from left to right. An instruction like ** 18// ** VADDFP is not lane-sensitive, because each lane of the result vector ** 19// ** relies only on the corresponding lane of the source vectors. However, ** 20// ** an instruction like VMULESB is lane-sensitive, because "even" and ** 21// ** "odd" lanes are different for big-endian and little-endian numbering. ** 22// ** ** 23// ** When adding new VMX and VSX instructions, please consider whether they ** 24// ** are lane-sensitive. If so, they must be added to a switch statement ** 25// ** in PPCVSXSwapRemoval::gatherVectorInstructions(). ** 26// **************************************************************************** 27 28// *********************************** NOTE *********************************** 29// ** When adding new anonymous patterns to this file, please add them to ** 30// ** the section titled Anonymous Patterns. Chances are that the existing ** 31// ** predicate blocks already contain a combination of features that you ** 32// ** are after. There is a list of blocks at the top of the section. If ** 33// ** you definitely need a new combination of predicates, please add that ** 34// ** combination to the list. ** 35// ** File Structure: ** 36// ** - Custom PPCISD node definitions ** 37// ** - Predicate definitions: predicates to specify the subtargets for ** 38// ** which an instruction or pattern can be emitted. ** 39// ** - Instruction formats: classes instantiated by the instructions. ** 40// ** These generally correspond to instruction formats in section 1.6 of ** 41// ** the ISA document. ** 42// ** - Instruction definitions: the actual definitions of the instructions ** 43// ** often including input patterns that they match. ** 44// ** - Helper DAG definitions: We define a number of dag objects to use as ** 45// ** input or output patterns for consciseness of the code. ** 46// ** - Anonymous patterns: input patterns that an instruction matches can ** 47// ** often not be specified as part of the instruction definition, so an ** 48// ** anonymous pattern must be specified mapping an input pattern to an ** 49// ** output pattern. These are generally guarded by subtarget predicates. ** 50// ** - Instruction aliases: used to define extended mnemonics for assembly ** 51// ** printing (for example: xxswapd for xxpermdi with 0x2 as the imm). ** 52// **************************************************************************** 53 54def PPCRegVSRCAsmOperand : AsmOperandClass { 55 let Name = "RegVSRC"; let PredicateMethod = "isVSRegNumber"; 56} 57def vsrc : RegisterOperand<VSRC> { 58 let ParserMatchClass = PPCRegVSRCAsmOperand; 59} 60 61def PPCRegVSFRCAsmOperand : AsmOperandClass { 62 let Name = "RegVSFRC"; let PredicateMethod = "isVSRegNumber"; 63} 64def vsfrc : RegisterOperand<VSFRC> { 65 let ParserMatchClass = PPCRegVSFRCAsmOperand; 66} 67 68def PPCRegVSSRCAsmOperand : AsmOperandClass { 69 let Name = "RegVSSRC"; let PredicateMethod = "isVSRegNumber"; 70} 71def vssrc : RegisterOperand<VSSRC> { 72 let ParserMatchClass = PPCRegVSSRCAsmOperand; 73} 74 75def PPCRegSPILLTOVSRRCAsmOperand : AsmOperandClass { 76 let Name = "RegSPILLTOVSRRC"; let PredicateMethod = "isVSRegNumber"; 77} 78 79def spilltovsrrc : RegisterOperand<SPILLTOVSRRC> { 80 let ParserMatchClass = PPCRegSPILLTOVSRRCAsmOperand; 81} 82 83def SDT_PPCldvsxlh : SDTypeProfile<1, 1, [ 84 SDTCisVT<0, v4f32>, SDTCisPtrTy<1> 85]>; 86 87def SDT_PPCfpexth : SDTypeProfile<1, 2, [ 88 SDTCisVT<0, v2f64>, SDTCisVT<1, v4f32>, SDTCisPtrTy<2> 89]>; 90 91def SDT_PPCldsplat : SDTypeProfile<1, 1, [ 92 SDTCisVec<0>, SDTCisPtrTy<1> 93]>; 94 95// Little-endian-specific nodes. 96def SDT_PPClxvd2x : SDTypeProfile<1, 1, [ 97 SDTCisVT<0, v2f64>, SDTCisPtrTy<1> 98]>; 99def SDT_PPCstxvd2x : SDTypeProfile<0, 2, [ 100 SDTCisVT<0, v2f64>, SDTCisPtrTy<1> 101]>; 102def SDT_PPCxxswapd : SDTypeProfile<1, 1, [ 103 SDTCisSameAs<0, 1> 104]>; 105def SDTVecConv : SDTypeProfile<1, 2, [ 106 SDTCisVec<0>, SDTCisVec<1>, SDTCisPtrTy<2> 107]>; 108def SDTVabsd : SDTypeProfile<1, 3, [ 109 SDTCisVec<0>, SDTCisSameAs<0, 1>, SDTCisSameAs<0, 2>, SDTCisVT<3, i32> 110]>; 111def SDT_PPCld_vec_be : SDTypeProfile<1, 1, [ 112 SDTCisVec<0>, SDTCisPtrTy<1> 113]>; 114def SDT_PPCst_vec_be : SDTypeProfile<0, 2, [ 115 SDTCisVec<0>, SDTCisPtrTy<1> 116]>; 117 118//--------------------------- Custom PPC nodes -------------------------------// 119def PPClxvd2x : SDNode<"PPCISD::LXVD2X", SDT_PPClxvd2x, 120 [SDNPHasChain, SDNPMayLoad, SDNPMemOperand]>; 121def PPCstxvd2x : SDNode<"PPCISD::STXVD2X", SDT_PPCstxvd2x, 122 [SDNPHasChain, SDNPMayStore]>; 123def PPCld_vec_be : SDNode<"PPCISD::LOAD_VEC_BE", SDT_PPCld_vec_be, 124 [SDNPHasChain, SDNPMayLoad, SDNPMemOperand]>; 125def PPCst_vec_be : SDNode<"PPCISD::STORE_VEC_BE", SDT_PPCst_vec_be, 126 [SDNPHasChain, SDNPMayStore]>; 127def PPCxxswapd : SDNode<"PPCISD::XXSWAPD", SDT_PPCxxswapd, [SDNPHasChain]>; 128def PPCmfvsr : SDNode<"PPCISD::MFVSR", SDTUnaryOp, []>; 129def PPCmtvsra : SDNode<"PPCISD::MTVSRA", SDTUnaryOp, []>; 130def PPCmtvsrz : SDNode<"PPCISD::MTVSRZ", SDTUnaryOp, []>; 131def PPCsvec2fp : SDNode<"PPCISD::SINT_VEC_TO_FP", SDTVecConv, []>; 132def PPCuvec2fp: SDNode<"PPCISD::UINT_VEC_TO_FP", SDTVecConv, []>; 133def PPCswapNoChain : SDNode<"PPCISD::SWAP_NO_CHAIN", SDT_PPCxxswapd>; 134def PPCvabsd : SDNode<"PPCISD::VABSD", SDTVabsd, []>; 135 136def PPCfpexth : SDNode<"PPCISD::FP_EXTEND_HALF", SDT_PPCfpexth, []>; 137def PPCldvsxlh : SDNode<"PPCISD::LD_VSX_LH", SDT_PPCldvsxlh, 138 [SDNPHasChain, SDNPMayLoad, SDNPMemOperand]>; 139def PPCldsplat : SDNode<"PPCISD::LD_SPLAT", SDT_PPCldsplat, 140 [SDNPHasChain, SDNPMayLoad, SDNPMemOperand]>; 141def PPCSToV : SDNode<"PPCISD::SCALAR_TO_VECTOR_PERMUTED", 142 SDTypeProfile<1, 1, []>, []>; 143 144//-------------------------- Predicate definitions ---------------------------// 145def HasVSX : Predicate<"Subtarget->hasVSX()">; 146def IsLittleEndian : Predicate<"Subtarget->isLittleEndian()">; 147def IsBigEndian : Predicate<"!Subtarget->isLittleEndian()">; 148def IsPPC64 : Predicate<"Subtarget->isPPC64()">; 149def HasOnlySwappingMemOps : Predicate<"!Subtarget->hasP9Vector()">; 150def HasP8Vector : Predicate<"Subtarget->hasP8Vector()">; 151def HasDirectMove : Predicate<"Subtarget->hasDirectMove()">; 152def NoP9Vector : Predicate<"!Subtarget->hasP9Vector()">; 153def HasP9Vector : Predicate<"Subtarget->hasP9Vector()">; 154def NoP9Altivec : Predicate<"!Subtarget->hasP9Altivec()">; 155def NoP10Vector: Predicate<"!Subtarget->hasP10Vector()">; 156 157//--------------------- VSX-specific instruction formats ---------------------// 158// By default, all VSX instructions are to be selected over their Altivec 159// counter parts and they do not have unmodeled sideeffects. 160let AddedComplexity = 400, hasSideEffects = 0 in { 161multiclass XX3Form_Rcr<bits<6> opcode, bits<7> xo, string asmbase, 162 string asmstr, InstrItinClass itin, Intrinsic Int, 163 ValueType OutTy, ValueType InTy> { 164 let BaseName = asmbase in { 165 def NAME : XX3Form_Rc<opcode, xo, (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 166 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 167 [(set OutTy:$XT, (Int InTy:$XA, InTy:$XB))]>; 168 let Defs = [CR6] in 169 def _rec : XX3Form_Rc<opcode, xo, (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 170 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 171 [(set InTy:$XT, 172 (InTy (PPCvcmp_rec InTy:$XA, InTy:$XB, xo)))]>, 173 isRecordForm; 174 } 175} 176 177// Instruction form with a single input register for instructions such as 178// XXPERMDI. The reason for defining this is that specifying multiple chained 179// operands (such as loads) to an instruction will perform both chained 180// operations rather than coalescing them into a single register - even though 181// the source memory location is the same. This simply forces the instruction 182// to use the same register for both inputs. 183// For example, an output DAG such as this: 184// (XXPERMDI (LXSIBZX xoaddr:$src), (LXSIBZX xoaddr:$src ), 0)) 185// would result in two load instructions emitted and used as separate inputs 186// to the XXPERMDI instruction. 187class XX3Form_2s<bits<6> opcode, bits<5> xo, dag OOL, dag IOL, string asmstr, 188 InstrItinClass itin, list<dag> pattern> 189 : XX3Form_2<opcode, xo, OOL, IOL, asmstr, itin, pattern> { 190 let XB = XA; 191} 192 193let Predicates = [HasVSX, HasP9Vector] in { 194class X_VT5_XO5_VB5<bits<6> opcode, bits<5> xo2, bits<10> xo, string opc, 195 list<dag> pattern> 196 : X_RD5_XO5_RS5<opcode, xo2, xo, (outs vrrc:$vT), (ins vrrc:$vB), 197 !strconcat(opc, " $vT, $vB"), IIC_VecFP, pattern>; 198 199// [PO VRT XO VRB XO RO], Round to Odd version of [PO VRT XO VRB XO /] 200class X_VT5_XO5_VB5_Ro<bits<6> opcode, bits<5> xo2, bits<10> xo, string opc, 201 list<dag> pattern> 202 : X_VT5_XO5_VB5<opcode, xo2, xo, opc, pattern>, isRecordForm; 203 204// [PO VRT XO VRB XO /], but the VRB is only used the left 64 bits (or less), 205// So we use different operand class for VRB 206class X_VT5_XO5_VB5_TyVB<bits<6> opcode, bits<5> xo2, bits<10> xo, string opc, 207 RegisterOperand vbtype, list<dag> pattern> 208 : X_RD5_XO5_RS5<opcode, xo2, xo, (outs vrrc:$vT), (ins vbtype:$vB), 209 !strconcat(opc, " $vT, $vB"), IIC_VecFP, pattern>; 210 211// [PO VRT XO VRB XO /] 212class X_VT5_XO5_VB5_VSFR<bits<6> opcode, bits<5> xo2, bits<10> xo, string opc, 213 list<dag> pattern> 214 : X_RD5_XO5_RS5<opcode, xo2, xo, (outs vfrc:$vT), (ins vrrc:$vB), 215 !strconcat(opc, " $vT, $vB"), IIC_VecFP, pattern>; 216 217// [PO VRT XO VRB XO RO], Round to Odd version of [PO VRT XO VRB XO /] 218class X_VT5_XO5_VB5_VSFR_Ro<bits<6> opcode, bits<5> xo2, bits<10> xo, string opc, 219 list<dag> pattern> 220 : X_VT5_XO5_VB5_VSFR<opcode, xo2, xo, opc, pattern>, isRecordForm; 221 222// [PO T XO B XO BX /] 223class XX2_RT5_XO5_XB6<bits<6> opcode, bits<5> xo2, bits<9> xo, string opc, 224 list<dag> pattern> 225 : XX2_RD5_XO5_RS6<opcode, xo2, xo, (outs g8rc:$rT), (ins vsfrc:$XB), 226 !strconcat(opc, " $rT, $XB"), IIC_VecFP, pattern>; 227 228// [PO T XO B XO BX TX] 229class XX2_XT6_XO5_XB6<bits<6> opcode, bits<5> xo2, bits<9> xo, string opc, 230 RegisterOperand vtype, list<dag> pattern> 231 : XX2_RD6_XO5_RS6<opcode, xo2, xo, (outs vtype:$XT), (ins vtype:$XB), 232 !strconcat(opc, " $XT, $XB"), IIC_VecFP, pattern>; 233 234// [PO T A B XO AX BX TX], src and dest register use different operand class 235class XX3_XT5_XA5_XB5<bits<6> opcode, bits<8> xo, string opc, 236 RegisterOperand xty, RegisterOperand aty, RegisterOperand bty, 237 InstrItinClass itin, list<dag> pattern> 238 : XX3Form<opcode, xo, (outs xty:$XT), (ins aty:$XA, bty:$XB), 239 !strconcat(opc, " $XT, $XA, $XB"), itin, pattern>; 240 241// [PO VRT VRA VRB XO /] 242class X_VT5_VA5_VB5<bits<6> opcode, bits<10> xo, string opc, 243 list<dag> pattern> 244 : XForm_1<opcode, xo, (outs vrrc:$vT), (ins vrrc:$vA, vrrc:$vB), 245 !strconcat(opc, " $vT, $vA, $vB"), IIC_VecFP, pattern>; 246 247// [PO VRT VRA VRB XO RO], Round to Odd version of [PO VRT VRA VRB XO /] 248class X_VT5_VA5_VB5_Ro<bits<6> opcode, bits<10> xo, string opc, 249 list<dag> pattern> 250 : X_VT5_VA5_VB5<opcode, xo, opc, pattern>, isRecordForm; 251 252// [PO VRT VRA VRB XO /] 253class X_VT5_VA5_VB5_FMA<bits<6> opcode, bits<10> xo, string opc, 254 list<dag> pattern> 255 : XForm_1<opcode, xo, (outs vrrc:$vT), (ins vrrc:$vTi, vrrc:$vA, vrrc:$vB), 256 !strconcat(opc, " $vT, $vA, $vB"), IIC_VecFP, pattern>, 257 RegConstraint<"$vTi = $vT">, NoEncode<"$vTi">; 258 259// [PO VRT VRA VRB XO RO], Round to Odd version of [PO VRT VRA VRB XO /] 260class X_VT5_VA5_VB5_FMA_Ro<bits<6> opcode, bits<10> xo, string opc, 261 list<dag> pattern> 262 : X_VT5_VA5_VB5_FMA<opcode, xo, opc, pattern>, isRecordForm; 263 264class Z23_VT5_R1_VB5_RMC2_EX1<bits<6> opcode, bits<8> xo, bit ex, string opc, 265 list<dag> pattern> 266 : Z23Form_8<opcode, xo, 267 (outs vrrc:$vT), (ins u1imm:$r, vrrc:$vB, u2imm:$rmc), 268 !strconcat(opc, " $r, $vT, $vB, $rmc"), IIC_VecFP, pattern> { 269 let RC = ex; 270} 271 272// [PO BF // VRA VRB XO /] 273class X_BF3_VA5_VB5<bits<6> opcode, bits<10> xo, string opc, 274 list<dag> pattern> 275 : XForm_17<opcode, xo, (outs crrc:$crD), (ins vrrc:$VA, vrrc:$VB), 276 !strconcat(opc, " $crD, $VA, $VB"), IIC_FPCompare> { 277 let Pattern = pattern; 278} 279 280// [PO T RA RB XO TX] almost equal to [PO S RA RB XO SX], but has different 281// "out" and "in" dag 282class X_XT6_RA5_RB5<bits<6> opcode, bits<10> xo, string opc, 283 RegisterOperand vtype, list<dag> pattern> 284 : XX1Form_memOp<opcode, xo, (outs vtype:$XT), (ins memrr:$src), 285 !strconcat(opc, " $XT, $src"), IIC_LdStLFD, pattern>; 286 287// [PO S RA RB XO SX] 288class X_XS6_RA5_RB5<bits<6> opcode, bits<10> xo, string opc, 289 RegisterOperand vtype, list<dag> pattern> 290 : XX1Form_memOp<opcode, xo, (outs), (ins vtype:$XT, memrr:$dst), 291 !strconcat(opc, " $XT, $dst"), IIC_LdStSTFD, pattern>; 292} // Predicates = HasP9Vector 293} // AddedComplexity = 400, hasSideEffects = 0 294 295multiclass ScalToVecWPermute<ValueType Ty, dag In, dag NonPermOut, dag PermOut> { 296 def : Pat<(Ty (scalar_to_vector In)), (Ty NonPermOut)>; 297 def : Pat<(Ty (PPCSToV In)), (Ty PermOut)>; 298} 299 300//-------------------------- Instruction definitions -------------------------// 301// VSX instructions require the VSX feature, they are to be selected over 302// equivalent Altivec patterns (as they address a larger register set) and 303// they do not have unmodeled side effects. 304let Predicates = [HasVSX], AddedComplexity = 400 in { 305let hasSideEffects = 0 in { 306 307 // Load indexed instructions 308 let mayLoad = 1, mayStore = 0 in { 309 let CodeSize = 3 in 310 def LXSDX : XX1Form_memOp<31, 588, 311 (outs vsfrc:$XT), (ins memrr:$src), 312 "lxsdx $XT, $src", IIC_LdStLFD, 313 []>; 314 315 // Pseudo instruction XFLOADf64 will be expanded to LXSDX or LFDX later 316 let CodeSize = 3 in 317 def XFLOADf64 : PseudoXFormMemOp<(outs vsfrc:$XT), (ins memrr:$src), 318 "#XFLOADf64", 319 [(set f64:$XT, (load xoaddr:$src))]>; 320 321 let Predicates = [HasVSX, HasOnlySwappingMemOps] in 322 def LXVD2X : XX1Form_memOp<31, 844, 323 (outs vsrc:$XT), (ins memrr:$src), 324 "lxvd2x $XT, $src", IIC_LdStLFD, 325 [(set v2f64:$XT, (int_ppc_vsx_lxvd2x xoaddr:$src))]>; 326 327 def LXVDSX : XX1Form_memOp<31, 332, 328 (outs vsrc:$XT), (ins memrr:$src), 329 "lxvdsx $XT, $src", IIC_LdStLFD, []>; 330 331 let Predicates = [HasVSX, HasOnlySwappingMemOps] in 332 def LXVW4X : XX1Form_memOp<31, 780, 333 (outs vsrc:$XT), (ins memrr:$src), 334 "lxvw4x $XT, $src", IIC_LdStLFD, 335 []>; 336 } // mayLoad 337 338 // Store indexed instructions 339 let mayStore = 1, mayLoad = 0 in { 340 let CodeSize = 3 in 341 def STXSDX : XX1Form_memOp<31, 716, 342 (outs), (ins vsfrc:$XT, memrr:$dst), 343 "stxsdx $XT, $dst", IIC_LdStSTFD, 344 []>; 345 346 // Pseudo instruction XFSTOREf64 will be expanded to STXSDX or STFDX later 347 let CodeSize = 3 in 348 def XFSTOREf64 : PseudoXFormMemOp<(outs), (ins vsfrc:$XT, memrr:$dst), 349 "#XFSTOREf64", 350 [(store f64:$XT, xoaddr:$dst)]>; 351 352 let Predicates = [HasVSX, HasOnlySwappingMemOps] in { 353 // The behaviour of this instruction is endianness-specific so we provide no 354 // pattern to match it without considering endianness. 355 def STXVD2X : XX1Form_memOp<31, 972, 356 (outs), (ins vsrc:$XT, memrr:$dst), 357 "stxvd2x $XT, $dst", IIC_LdStSTFD, 358 []>; 359 360 def STXVW4X : XX1Form_memOp<31, 908, 361 (outs), (ins vsrc:$XT, memrr:$dst), 362 "stxvw4x $XT, $dst", IIC_LdStSTFD, 363 []>; 364 } 365 } // mayStore 366 367 let mayRaiseFPException = 1 in { 368 let Uses = [RM] in { 369 // Add/Mul Instructions 370 let isCommutable = 1 in { 371 def XSADDDP : XX3Form<60, 32, 372 (outs vsfrc:$XT), (ins vsfrc:$XA, vsfrc:$XB), 373 "xsadddp $XT, $XA, $XB", IIC_VecFP, 374 [(set f64:$XT, (any_fadd f64:$XA, f64:$XB))]>; 375 def XSMULDP : XX3Form<60, 48, 376 (outs vsfrc:$XT), (ins vsfrc:$XA, vsfrc:$XB), 377 "xsmuldp $XT, $XA, $XB", IIC_VecFP, 378 [(set f64:$XT, (any_fmul f64:$XA, f64:$XB))]>; 379 380 def XVADDDP : XX3Form<60, 96, 381 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 382 "xvadddp $XT, $XA, $XB", IIC_VecFP, 383 [(set v2f64:$XT, (any_fadd v2f64:$XA, v2f64:$XB))]>; 384 385 def XVADDSP : XX3Form<60, 64, 386 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 387 "xvaddsp $XT, $XA, $XB", IIC_VecFP, 388 [(set v4f32:$XT, (any_fadd v4f32:$XA, v4f32:$XB))]>; 389 390 def XVMULDP : XX3Form<60, 112, 391 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 392 "xvmuldp $XT, $XA, $XB", IIC_VecFP, 393 [(set v2f64:$XT, (any_fmul v2f64:$XA, v2f64:$XB))]>; 394 395 def XVMULSP : XX3Form<60, 80, 396 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 397 "xvmulsp $XT, $XA, $XB", IIC_VecFP, 398 [(set v4f32:$XT, (any_fmul v4f32:$XA, v4f32:$XB))]>; 399 } 400 401 // Subtract Instructions 402 def XSSUBDP : XX3Form<60, 40, 403 (outs vsfrc:$XT), (ins vsfrc:$XA, vsfrc:$XB), 404 "xssubdp $XT, $XA, $XB", IIC_VecFP, 405 [(set f64:$XT, (any_fsub f64:$XA, f64:$XB))]>; 406 407 def XVSUBDP : XX3Form<60, 104, 408 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 409 "xvsubdp $XT, $XA, $XB", IIC_VecFP, 410 [(set v2f64:$XT, (any_fsub v2f64:$XA, v2f64:$XB))]>; 411 def XVSUBSP : XX3Form<60, 72, 412 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 413 "xvsubsp $XT, $XA, $XB", IIC_VecFP, 414 [(set v4f32:$XT, (any_fsub v4f32:$XA, v4f32:$XB))]>; 415 416 // FMA Instructions 417 let BaseName = "XSMADDADP" in { 418 let isCommutable = 1 in 419 def XSMADDADP : XX3Form<60, 33, 420 (outs vsfrc:$XT), (ins vsfrc:$XTi, vsfrc:$XA, vsfrc:$XB), 421 "xsmaddadp $XT, $XA, $XB", IIC_VecFP, 422 [(set f64:$XT, (any_fma f64:$XA, f64:$XB, f64:$XTi))]>, 423 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 424 AltVSXFMARel; 425 let IsVSXFMAAlt = 1 in 426 def XSMADDMDP : XX3Form<60, 41, 427 (outs vsfrc:$XT), (ins vsfrc:$XTi, vsfrc:$XA, vsfrc:$XB), 428 "xsmaddmdp $XT, $XA, $XB", IIC_VecFP, []>, 429 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 430 AltVSXFMARel; 431 } 432 433 let BaseName = "XSMSUBADP" in { 434 let isCommutable = 1 in 435 def XSMSUBADP : XX3Form<60, 49, 436 (outs vsfrc:$XT), (ins vsfrc:$XTi, vsfrc:$XA, vsfrc:$XB), 437 "xsmsubadp $XT, $XA, $XB", IIC_VecFP, 438 [(set f64:$XT, (any_fma f64:$XA, f64:$XB, (fneg f64:$XTi)))]>, 439 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 440 AltVSXFMARel; 441 let IsVSXFMAAlt = 1 in 442 def XSMSUBMDP : XX3Form<60, 57, 443 (outs vsfrc:$XT), (ins vsfrc:$XTi, vsfrc:$XA, vsfrc:$XB), 444 "xsmsubmdp $XT, $XA, $XB", IIC_VecFP, []>, 445 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 446 AltVSXFMARel; 447 } 448 449 let BaseName = "XSNMADDADP" in { 450 let isCommutable = 1 in 451 def XSNMADDADP : XX3Form<60, 161, 452 (outs vsfrc:$XT), (ins vsfrc:$XTi, vsfrc:$XA, vsfrc:$XB), 453 "xsnmaddadp $XT, $XA, $XB", IIC_VecFP, 454 [(set f64:$XT, (fneg (any_fma f64:$XA, f64:$XB, f64:$XTi)))]>, 455 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 456 AltVSXFMARel; 457 let IsVSXFMAAlt = 1 in 458 def XSNMADDMDP : XX3Form<60, 169, 459 (outs vsfrc:$XT), (ins vsfrc:$XTi, vsfrc:$XA, vsfrc:$XB), 460 "xsnmaddmdp $XT, $XA, $XB", IIC_VecFP, []>, 461 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 462 AltVSXFMARel; 463 } 464 465 let BaseName = "XSNMSUBADP" in { 466 let isCommutable = 1 in 467 def XSNMSUBADP : XX3Form<60, 177, 468 (outs vsfrc:$XT), (ins vsfrc:$XTi, vsfrc:$XA, vsfrc:$XB), 469 "xsnmsubadp $XT, $XA, $XB", IIC_VecFP, 470 [(set f64:$XT, (fneg (any_fma f64:$XA, f64:$XB, (fneg f64:$XTi))))]>, 471 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 472 AltVSXFMARel; 473 let IsVSXFMAAlt = 1 in 474 def XSNMSUBMDP : XX3Form<60, 185, 475 (outs vsfrc:$XT), (ins vsfrc:$XTi, vsfrc:$XA, vsfrc:$XB), 476 "xsnmsubmdp $XT, $XA, $XB", IIC_VecFP, []>, 477 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 478 AltVSXFMARel; 479 } 480 481 let BaseName = "XVMADDADP" in { 482 let isCommutable = 1 in 483 def XVMADDADP : XX3Form<60, 97, 484 (outs vsrc:$XT), (ins vsrc:$XTi, vsrc:$XA, vsrc:$XB), 485 "xvmaddadp $XT, $XA, $XB", IIC_VecFP, 486 [(set v2f64:$XT, (any_fma v2f64:$XA, v2f64:$XB, v2f64:$XTi))]>, 487 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 488 AltVSXFMARel; 489 let IsVSXFMAAlt = 1 in 490 def XVMADDMDP : XX3Form<60, 105, 491 (outs vsrc:$XT), (ins vsrc:$XTi, vsrc:$XA, vsrc:$XB), 492 "xvmaddmdp $XT, $XA, $XB", IIC_VecFP, []>, 493 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 494 AltVSXFMARel; 495 } 496 497 let BaseName = "XVMADDASP" in { 498 let isCommutable = 1 in 499 def XVMADDASP : XX3Form<60, 65, 500 (outs vsrc:$XT), (ins vsrc:$XTi, vsrc:$XA, vsrc:$XB), 501 "xvmaddasp $XT, $XA, $XB", IIC_VecFP, 502 [(set v4f32:$XT, (any_fma v4f32:$XA, v4f32:$XB, v4f32:$XTi))]>, 503 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 504 AltVSXFMARel; 505 let IsVSXFMAAlt = 1 in 506 def XVMADDMSP : XX3Form<60, 73, 507 (outs vsrc:$XT), (ins vsrc:$XTi, vsrc:$XA, vsrc:$XB), 508 "xvmaddmsp $XT, $XA, $XB", IIC_VecFP, []>, 509 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 510 AltVSXFMARel; 511 } 512 513 let BaseName = "XVMSUBADP" in { 514 let isCommutable = 1 in 515 def XVMSUBADP : XX3Form<60, 113, 516 (outs vsrc:$XT), (ins vsrc:$XTi, vsrc:$XA, vsrc:$XB), 517 "xvmsubadp $XT, $XA, $XB", IIC_VecFP, 518 [(set v2f64:$XT, (any_fma v2f64:$XA, v2f64:$XB, (fneg v2f64:$XTi)))]>, 519 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 520 AltVSXFMARel; 521 let IsVSXFMAAlt = 1 in 522 def XVMSUBMDP : XX3Form<60, 121, 523 (outs vsrc:$XT), (ins vsrc:$XTi, vsrc:$XA, vsrc:$XB), 524 "xvmsubmdp $XT, $XA, $XB", IIC_VecFP, []>, 525 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 526 AltVSXFMARel; 527 } 528 529 let BaseName = "XVMSUBASP" in { 530 let isCommutable = 1 in 531 def XVMSUBASP : XX3Form<60, 81, 532 (outs vsrc:$XT), (ins vsrc:$XTi, vsrc:$XA, vsrc:$XB), 533 "xvmsubasp $XT, $XA, $XB", IIC_VecFP, 534 [(set v4f32:$XT, (any_fma v4f32:$XA, v4f32:$XB, (fneg v4f32:$XTi)))]>, 535 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 536 AltVSXFMARel; 537 let IsVSXFMAAlt = 1 in 538 def XVMSUBMSP : XX3Form<60, 89, 539 (outs vsrc:$XT), (ins vsrc:$XTi, vsrc:$XA, vsrc:$XB), 540 "xvmsubmsp $XT, $XA, $XB", IIC_VecFP, []>, 541 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 542 AltVSXFMARel; 543 } 544 545 let BaseName = "XVNMADDADP" in { 546 let isCommutable = 1 in 547 def XVNMADDADP : XX3Form<60, 225, 548 (outs vsrc:$XT), (ins vsrc:$XTi, vsrc:$XA, vsrc:$XB), 549 "xvnmaddadp $XT, $XA, $XB", IIC_VecFP, 550 [(set v2f64:$XT, (fneg (any_fma v2f64:$XA, v2f64:$XB, v2f64:$XTi)))]>, 551 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 552 AltVSXFMARel; 553 let IsVSXFMAAlt = 1 in 554 def XVNMADDMDP : XX3Form<60, 233, 555 (outs vsrc:$XT), (ins vsrc:$XTi, vsrc:$XA, vsrc:$XB), 556 "xvnmaddmdp $XT, $XA, $XB", IIC_VecFP, []>, 557 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 558 AltVSXFMARel; 559 } 560 561 let BaseName = "XVNMADDASP" in { 562 let isCommutable = 1 in 563 def XVNMADDASP : XX3Form<60, 193, 564 (outs vsrc:$XT), (ins vsrc:$XTi, vsrc:$XA, vsrc:$XB), 565 "xvnmaddasp $XT, $XA, $XB", IIC_VecFP, 566 [(set v4f32:$XT, (fneg (fma v4f32:$XA, v4f32:$XB, v4f32:$XTi)))]>, 567 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 568 AltVSXFMARel; 569 let IsVSXFMAAlt = 1 in 570 def XVNMADDMSP : XX3Form<60, 201, 571 (outs vsrc:$XT), (ins vsrc:$XTi, vsrc:$XA, vsrc:$XB), 572 "xvnmaddmsp $XT, $XA, $XB", IIC_VecFP, []>, 573 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 574 AltVSXFMARel; 575 } 576 577 let BaseName = "XVNMSUBADP" in { 578 let isCommutable = 1 in 579 def XVNMSUBADP : XX3Form<60, 241, 580 (outs vsrc:$XT), (ins vsrc:$XTi, vsrc:$XA, vsrc:$XB), 581 "xvnmsubadp $XT, $XA, $XB", IIC_VecFP, 582 [(set v2f64:$XT, (fneg (any_fma v2f64:$XA, v2f64:$XB, (fneg v2f64:$XTi))))]>, 583 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 584 AltVSXFMARel; 585 let IsVSXFMAAlt = 1 in 586 def XVNMSUBMDP : XX3Form<60, 249, 587 (outs vsrc:$XT), (ins vsrc:$XTi, vsrc:$XA, vsrc:$XB), 588 "xvnmsubmdp $XT, $XA, $XB", IIC_VecFP, []>, 589 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 590 AltVSXFMARel; 591 } 592 593 let BaseName = "XVNMSUBASP" in { 594 let isCommutable = 1 in 595 def XVNMSUBASP : XX3Form<60, 209, 596 (outs vsrc:$XT), (ins vsrc:$XTi, vsrc:$XA, vsrc:$XB), 597 "xvnmsubasp $XT, $XA, $XB", IIC_VecFP, 598 [(set v4f32:$XT, (fneg (any_fma v4f32:$XA, v4f32:$XB, (fneg v4f32:$XTi))))]>, 599 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 600 AltVSXFMARel; 601 let IsVSXFMAAlt = 1 in 602 def XVNMSUBMSP : XX3Form<60, 217, 603 (outs vsrc:$XT), (ins vsrc:$XTi, vsrc:$XA, vsrc:$XB), 604 "xvnmsubmsp $XT, $XA, $XB", IIC_VecFP, []>, 605 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 606 AltVSXFMARel; 607 } 608 609 // Division Instructions 610 def XSDIVDP : XX3Form<60, 56, 611 (outs vsfrc:$XT), (ins vsfrc:$XA, vsfrc:$XB), 612 "xsdivdp $XT, $XA, $XB", IIC_FPDivD, 613 [(set f64:$XT, (any_fdiv f64:$XA, f64:$XB))]>; 614 def XSSQRTDP : XX2Form<60, 75, 615 (outs vsfrc:$XT), (ins vsfrc:$XB), 616 "xssqrtdp $XT, $XB", IIC_FPSqrtD, 617 [(set f64:$XT, (any_fsqrt f64:$XB))]>; 618 619 def XSREDP : XX2Form<60, 90, 620 (outs vsfrc:$XT), (ins vsfrc:$XB), 621 "xsredp $XT, $XB", IIC_VecFP, 622 [(set f64:$XT, (PPCfre f64:$XB))]>; 623 def XSRSQRTEDP : XX2Form<60, 74, 624 (outs vsfrc:$XT), (ins vsfrc:$XB), 625 "xsrsqrtedp $XT, $XB", IIC_VecFP, 626 [(set f64:$XT, (PPCfrsqrte f64:$XB))]>; 627 628 let mayRaiseFPException = 0 in { 629 def XSTDIVDP : XX3Form_1<60, 61, 630 (outs crrc:$crD), (ins vsfrc:$XA, vsfrc:$XB), 631 "xstdivdp $crD, $XA, $XB", IIC_FPCompare, []>; 632 def XSTSQRTDP : XX2Form_1<60, 106, 633 (outs crrc:$crD), (ins vsfrc:$XB), 634 "xstsqrtdp $crD, $XB", IIC_FPCompare, 635 [(set i32:$crD, (PPCftsqrt f64:$XB))]>; 636 def XVTDIVDP : XX3Form_1<60, 125, 637 (outs crrc:$crD), (ins vsrc:$XA, vsrc:$XB), 638 "xvtdivdp $crD, $XA, $XB", IIC_FPCompare, []>; 639 def XVTDIVSP : XX3Form_1<60, 93, 640 (outs crrc:$crD), (ins vsrc:$XA, vsrc:$XB), 641 "xvtdivsp $crD, $XA, $XB", IIC_FPCompare, []>; 642 643 def XVTSQRTDP : XX2Form_1<60, 234, 644 (outs crrc:$crD), (ins vsrc:$XB), 645 "xvtsqrtdp $crD, $XB", IIC_FPCompare, 646 [(set i32:$crD, (PPCftsqrt v2f64:$XB))]>; 647 def XVTSQRTSP : XX2Form_1<60, 170, 648 (outs crrc:$crD), (ins vsrc:$XB), 649 "xvtsqrtsp $crD, $XB", IIC_FPCompare, 650 [(set i32:$crD, (PPCftsqrt v4f32:$XB))]>; 651 } 652 653 def XVDIVDP : XX3Form<60, 120, 654 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 655 "xvdivdp $XT, $XA, $XB", IIC_FPDivD, 656 [(set v2f64:$XT, (any_fdiv v2f64:$XA, v2f64:$XB))]>; 657 def XVDIVSP : XX3Form<60, 88, 658 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 659 "xvdivsp $XT, $XA, $XB", IIC_FPDivS, 660 [(set v4f32:$XT, (any_fdiv v4f32:$XA, v4f32:$XB))]>; 661 662 def XVSQRTDP : XX2Form<60, 203, 663 (outs vsrc:$XT), (ins vsrc:$XB), 664 "xvsqrtdp $XT, $XB", IIC_FPSqrtD, 665 [(set v2f64:$XT, (any_fsqrt v2f64:$XB))]>; 666 def XVSQRTSP : XX2Form<60, 139, 667 (outs vsrc:$XT), (ins vsrc:$XB), 668 "xvsqrtsp $XT, $XB", IIC_FPSqrtS, 669 [(set v4f32:$XT, (any_fsqrt v4f32:$XB))]>; 670 671 def XVREDP : XX2Form<60, 218, 672 (outs vsrc:$XT), (ins vsrc:$XB), 673 "xvredp $XT, $XB", IIC_VecFP, 674 [(set v2f64:$XT, (PPCfre v2f64:$XB))]>; 675 def XVRESP : XX2Form<60, 154, 676 (outs vsrc:$XT), (ins vsrc:$XB), 677 "xvresp $XT, $XB", IIC_VecFP, 678 [(set v4f32:$XT, (PPCfre v4f32:$XB))]>; 679 680 def XVRSQRTEDP : XX2Form<60, 202, 681 (outs vsrc:$XT), (ins vsrc:$XB), 682 "xvrsqrtedp $XT, $XB", IIC_VecFP, 683 [(set v2f64:$XT, (PPCfrsqrte v2f64:$XB))]>; 684 def XVRSQRTESP : XX2Form<60, 138, 685 (outs vsrc:$XT), (ins vsrc:$XB), 686 "xvrsqrtesp $XT, $XB", IIC_VecFP, 687 [(set v4f32:$XT, (PPCfrsqrte v4f32:$XB))]>; 688 689 // Compare Instructions 690 def XSCMPODP : XX3Form_1<60, 43, 691 (outs crrc:$crD), (ins vsfrc:$XA, vsfrc:$XB), 692 "xscmpodp $crD, $XA, $XB", IIC_FPCompare, []>; 693 def XSCMPUDP : XX3Form_1<60, 35, 694 (outs crrc:$crD), (ins vsfrc:$XA, vsfrc:$XB), 695 "xscmpudp $crD, $XA, $XB", IIC_FPCompare, []>; 696 697 defm XVCMPEQDP : XX3Form_Rcr<60, 99, 698 "xvcmpeqdp", "$XT, $XA, $XB", IIC_VecFPCompare, 699 int_ppc_vsx_xvcmpeqdp, v2i64, v2f64>; 700 defm XVCMPEQSP : XX3Form_Rcr<60, 67, 701 "xvcmpeqsp", "$XT, $XA, $XB", IIC_VecFPCompare, 702 int_ppc_vsx_xvcmpeqsp, v4i32, v4f32>; 703 defm XVCMPGEDP : XX3Form_Rcr<60, 115, 704 "xvcmpgedp", "$XT, $XA, $XB", IIC_VecFPCompare, 705 int_ppc_vsx_xvcmpgedp, v2i64, v2f64>; 706 defm XVCMPGESP : XX3Form_Rcr<60, 83, 707 "xvcmpgesp", "$XT, $XA, $XB", IIC_VecFPCompare, 708 int_ppc_vsx_xvcmpgesp, v4i32, v4f32>; 709 defm XVCMPGTDP : XX3Form_Rcr<60, 107, 710 "xvcmpgtdp", "$XT, $XA, $XB", IIC_VecFPCompare, 711 int_ppc_vsx_xvcmpgtdp, v2i64, v2f64>; 712 defm XVCMPGTSP : XX3Form_Rcr<60, 75, 713 "xvcmpgtsp", "$XT, $XA, $XB", IIC_VecFPCompare, 714 int_ppc_vsx_xvcmpgtsp, v4i32, v4f32>; 715 716 // Move Instructions 717 let mayRaiseFPException = 0 in { 718 def XSABSDP : XX2Form<60, 345, 719 (outs vsfrc:$XT), (ins vsfrc:$XB), 720 "xsabsdp $XT, $XB", IIC_VecFP, 721 [(set f64:$XT, (fabs f64:$XB))]>; 722 def XSNABSDP : XX2Form<60, 361, 723 (outs vsfrc:$XT), (ins vsfrc:$XB), 724 "xsnabsdp $XT, $XB", IIC_VecFP, 725 [(set f64:$XT, (fneg (fabs f64:$XB)))]>; 726 def XSNEGDP : XX2Form<60, 377, 727 (outs vsfrc:$XT), (ins vsfrc:$XB), 728 "xsnegdp $XT, $XB", IIC_VecFP, 729 [(set f64:$XT, (fneg f64:$XB))]>; 730 def XSCPSGNDP : XX3Form<60, 176, 731 (outs vsfrc:$XT), (ins vsfrc:$XA, vsfrc:$XB), 732 "xscpsgndp $XT, $XA, $XB", IIC_VecFP, 733 [(set f64:$XT, (fcopysign f64:$XB, f64:$XA))]>; 734 735 def XVABSDP : XX2Form<60, 473, 736 (outs vsrc:$XT), (ins vsrc:$XB), 737 "xvabsdp $XT, $XB", IIC_VecFP, 738 [(set v2f64:$XT, (fabs v2f64:$XB))]>; 739 740 def XVABSSP : XX2Form<60, 409, 741 (outs vsrc:$XT), (ins vsrc:$XB), 742 "xvabssp $XT, $XB", IIC_VecFP, 743 [(set v4f32:$XT, (fabs v4f32:$XB))]>; 744 745 def XVCPSGNDP : XX3Form<60, 240, 746 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 747 "xvcpsgndp $XT, $XA, $XB", IIC_VecFP, 748 [(set v2f64:$XT, (fcopysign v2f64:$XB, v2f64:$XA))]>; 749 def XVCPSGNSP : XX3Form<60, 208, 750 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 751 "xvcpsgnsp $XT, $XA, $XB", IIC_VecFP, 752 [(set v4f32:$XT, (fcopysign v4f32:$XB, v4f32:$XA))]>; 753 754 def XVNABSDP : XX2Form<60, 489, 755 (outs vsrc:$XT), (ins vsrc:$XB), 756 "xvnabsdp $XT, $XB", IIC_VecFP, 757 [(set v2f64:$XT, (fneg (fabs v2f64:$XB)))]>; 758 def XVNABSSP : XX2Form<60, 425, 759 (outs vsrc:$XT), (ins vsrc:$XB), 760 "xvnabssp $XT, $XB", IIC_VecFP, 761 [(set v4f32:$XT, (fneg (fabs v4f32:$XB)))]>; 762 763 def XVNEGDP : XX2Form<60, 505, 764 (outs vsrc:$XT), (ins vsrc:$XB), 765 "xvnegdp $XT, $XB", IIC_VecFP, 766 [(set v2f64:$XT, (fneg v2f64:$XB))]>; 767 def XVNEGSP : XX2Form<60, 441, 768 (outs vsrc:$XT), (ins vsrc:$XB), 769 "xvnegsp $XT, $XB", IIC_VecFP, 770 [(set v4f32:$XT, (fneg v4f32:$XB))]>; 771 } 772 773 // Conversion Instructions 774 def XSCVDPSP : XX2Form<60, 265, 775 (outs vsfrc:$XT), (ins vsfrc:$XB), 776 "xscvdpsp $XT, $XB", IIC_VecFP, []>; 777 def XSCVDPSXDS : XX2Form<60, 344, 778 (outs vsfrc:$XT), (ins vsfrc:$XB), 779 "xscvdpsxds $XT, $XB", IIC_VecFP, 780 [(set f64:$XT, (PPCany_fctidz f64:$XB))]>; 781 let isCodeGenOnly = 1 in 782 def XSCVDPSXDSs : XX2Form<60, 344, 783 (outs vssrc:$XT), (ins vssrc:$XB), 784 "xscvdpsxds $XT, $XB", IIC_VecFP, 785 [(set f32:$XT, (PPCany_fctidz f32:$XB))]>; 786 def XSCVDPSXWS : XX2Form<60, 88, 787 (outs vsfrc:$XT), (ins vsfrc:$XB), 788 "xscvdpsxws $XT, $XB", IIC_VecFP, 789 [(set f64:$XT, (PPCany_fctiwz f64:$XB))]>; 790 let isCodeGenOnly = 1 in 791 def XSCVDPSXWSs : XX2Form<60, 88, 792 (outs vssrc:$XT), (ins vssrc:$XB), 793 "xscvdpsxws $XT, $XB", IIC_VecFP, 794 [(set f32:$XT, (PPCany_fctiwz f32:$XB))]>; 795 def XSCVDPUXDS : XX2Form<60, 328, 796 (outs vsfrc:$XT), (ins vsfrc:$XB), 797 "xscvdpuxds $XT, $XB", IIC_VecFP, 798 [(set f64:$XT, (PPCany_fctiduz f64:$XB))]>; 799 let isCodeGenOnly = 1 in 800 def XSCVDPUXDSs : XX2Form<60, 328, 801 (outs vssrc:$XT), (ins vssrc:$XB), 802 "xscvdpuxds $XT, $XB", IIC_VecFP, 803 [(set f32:$XT, (PPCany_fctiduz f32:$XB))]>; 804 def XSCVDPUXWS : XX2Form<60, 72, 805 (outs vsfrc:$XT), (ins vsfrc:$XB), 806 "xscvdpuxws $XT, $XB", IIC_VecFP, 807 [(set f64:$XT, (PPCany_fctiwuz f64:$XB))]>; 808 let isCodeGenOnly = 1 in 809 def XSCVDPUXWSs : XX2Form<60, 72, 810 (outs vssrc:$XT), (ins vssrc:$XB), 811 "xscvdpuxws $XT, $XB", IIC_VecFP, 812 [(set f32:$XT, (PPCany_fctiwuz f32:$XB))]>; 813 def XSCVSPDP : XX2Form<60, 329, 814 (outs vsfrc:$XT), (ins vsfrc:$XB), 815 "xscvspdp $XT, $XB", IIC_VecFP, []>; 816 def XSCVSXDDP : XX2Form<60, 376, 817 (outs vsfrc:$XT), (ins vsfrc:$XB), 818 "xscvsxddp $XT, $XB", IIC_VecFP, 819 [(set f64:$XT, (PPCany_fcfid f64:$XB))]>; 820 def XSCVUXDDP : XX2Form<60, 360, 821 (outs vsfrc:$XT), (ins vsfrc:$XB), 822 "xscvuxddp $XT, $XB", IIC_VecFP, 823 [(set f64:$XT, (PPCany_fcfidu f64:$XB))]>; 824 825 def XVCVDPSP : XX2Form<60, 393, 826 (outs vsrc:$XT), (ins vsrc:$XB), 827 "xvcvdpsp $XT, $XB", IIC_VecFP, 828 [(set v4f32:$XT, (int_ppc_vsx_xvcvdpsp v2f64:$XB))]>; 829 def XVCVDPSXDS : XX2Form<60, 472, 830 (outs vsrc:$XT), (ins vsrc:$XB), 831 "xvcvdpsxds $XT, $XB", IIC_VecFP, 832 [(set v2i64:$XT, (any_fp_to_sint v2f64:$XB))]>; 833 def XVCVDPSXWS : XX2Form<60, 216, 834 (outs vsrc:$XT), (ins vsrc:$XB), 835 "xvcvdpsxws $XT, $XB", IIC_VecFP, 836 [(set v4i32:$XT, (int_ppc_vsx_xvcvdpsxws v2f64:$XB))]>; 837 def XVCVDPUXDS : XX2Form<60, 456, 838 (outs vsrc:$XT), (ins vsrc:$XB), 839 "xvcvdpuxds $XT, $XB", IIC_VecFP, 840 [(set v2i64:$XT, (any_fp_to_uint v2f64:$XB))]>; 841 def XVCVDPUXWS : XX2Form<60, 200, 842 (outs vsrc:$XT), (ins vsrc:$XB), 843 "xvcvdpuxws $XT, $XB", IIC_VecFP, 844 [(set v4i32:$XT, (int_ppc_vsx_xvcvdpuxws v2f64:$XB))]>; 845 846 def XVCVSPDP : XX2Form<60, 457, 847 (outs vsrc:$XT), (ins vsrc:$XB), 848 "xvcvspdp $XT, $XB", IIC_VecFP, 849 [(set v2f64:$XT, (int_ppc_vsx_xvcvspdp v4f32:$XB))]>; 850 def XVCVSPSXDS : XX2Form<60, 408, 851 (outs vsrc:$XT), (ins vsrc:$XB), 852 "xvcvspsxds $XT, $XB", IIC_VecFP, []>; 853 def XVCVSPSXWS : XX2Form<60, 152, 854 (outs vsrc:$XT), (ins vsrc:$XB), 855 "xvcvspsxws $XT, $XB", IIC_VecFP, 856 [(set v4i32:$XT, (any_fp_to_sint v4f32:$XB))]>; 857 def XVCVSPUXDS : XX2Form<60, 392, 858 (outs vsrc:$XT), (ins vsrc:$XB), 859 "xvcvspuxds $XT, $XB", IIC_VecFP, []>; 860 def XVCVSPUXWS : XX2Form<60, 136, 861 (outs vsrc:$XT), (ins vsrc:$XB), 862 "xvcvspuxws $XT, $XB", IIC_VecFP, 863 [(set v4i32:$XT, (any_fp_to_uint v4f32:$XB))]>; 864 def XVCVSXDDP : XX2Form<60, 504, 865 (outs vsrc:$XT), (ins vsrc:$XB), 866 "xvcvsxddp $XT, $XB", IIC_VecFP, 867 [(set v2f64:$XT, (any_sint_to_fp v2i64:$XB))]>; 868 def XVCVSXDSP : XX2Form<60, 440, 869 (outs vsrc:$XT), (ins vsrc:$XB), 870 "xvcvsxdsp $XT, $XB", IIC_VecFP, 871 [(set v4f32:$XT, (int_ppc_vsx_xvcvsxdsp v2i64:$XB))]>; 872 def XVCVSXWSP : XX2Form<60, 184, 873 (outs vsrc:$XT), (ins vsrc:$XB), 874 "xvcvsxwsp $XT, $XB", IIC_VecFP, 875 [(set v4f32:$XT, (any_sint_to_fp v4i32:$XB))]>; 876 def XVCVUXDDP : XX2Form<60, 488, 877 (outs vsrc:$XT), (ins vsrc:$XB), 878 "xvcvuxddp $XT, $XB", IIC_VecFP, 879 [(set v2f64:$XT, (any_uint_to_fp v2i64:$XB))]>; 880 def XVCVUXDSP : XX2Form<60, 424, 881 (outs vsrc:$XT), (ins vsrc:$XB), 882 "xvcvuxdsp $XT, $XB", IIC_VecFP, 883 [(set v4f32:$XT, (int_ppc_vsx_xvcvuxdsp v2i64:$XB))]>; 884 def XVCVUXWSP : XX2Form<60, 168, 885 (outs vsrc:$XT), (ins vsrc:$XB), 886 "xvcvuxwsp $XT, $XB", IIC_VecFP, 887 [(set v4f32:$XT, (any_uint_to_fp v4i32:$XB))]>; 888 889 let mayRaiseFPException = 0 in { 890 def XVCVSXWDP : XX2Form<60, 248, 891 (outs vsrc:$XT), (ins vsrc:$XB), 892 "xvcvsxwdp $XT, $XB", IIC_VecFP, 893 [(set v2f64:$XT, (int_ppc_vsx_xvcvsxwdp v4i32:$XB))]>; 894 def XVCVUXWDP : XX2Form<60, 232, 895 (outs vsrc:$XT), (ins vsrc:$XB), 896 "xvcvuxwdp $XT, $XB", IIC_VecFP, 897 [(set v2f64:$XT, (int_ppc_vsx_xvcvuxwdp v4i32:$XB))]>; 898 } 899 900 // Rounding Instructions respecting current rounding mode 901 def XSRDPIC : XX2Form<60, 107, 902 (outs vsfrc:$XT), (ins vsfrc:$XB), 903 "xsrdpic $XT, $XB", IIC_VecFP, 904 [(set f64:$XT, (fnearbyint f64:$XB))]>; 905 def XVRDPIC : XX2Form<60, 235, 906 (outs vsrc:$XT), (ins vsrc:$XB), 907 "xvrdpic $XT, $XB", IIC_VecFP, 908 [(set v2f64:$XT, (fnearbyint v2f64:$XB))]>; 909 def XVRSPIC : XX2Form<60, 171, 910 (outs vsrc:$XT), (ins vsrc:$XB), 911 "xvrspic $XT, $XB", IIC_VecFP, 912 [(set v4f32:$XT, (fnearbyint v4f32:$XB))]>; 913 // Max/Min Instructions 914 let isCommutable = 1 in { 915 def XSMAXDP : XX3Form<60, 160, 916 (outs vsfrc:$XT), (ins vsfrc:$XA, vsfrc:$XB), 917 "xsmaxdp $XT, $XA, $XB", IIC_VecFP, 918 [(set vsfrc:$XT, 919 (int_ppc_vsx_xsmaxdp vsfrc:$XA, vsfrc:$XB))]>; 920 def XSMINDP : XX3Form<60, 168, 921 (outs vsfrc:$XT), (ins vsfrc:$XA, vsfrc:$XB), 922 "xsmindp $XT, $XA, $XB", IIC_VecFP, 923 [(set vsfrc:$XT, 924 (int_ppc_vsx_xsmindp vsfrc:$XA, vsfrc:$XB))]>; 925 926 def XVMAXDP : XX3Form<60, 224, 927 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 928 "xvmaxdp $XT, $XA, $XB", IIC_VecFP, 929 [(set vsrc:$XT, 930 (int_ppc_vsx_xvmaxdp vsrc:$XA, vsrc:$XB))]>; 931 def XVMINDP : XX3Form<60, 232, 932 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 933 "xvmindp $XT, $XA, $XB", IIC_VecFP, 934 [(set vsrc:$XT, 935 (int_ppc_vsx_xvmindp vsrc:$XA, vsrc:$XB))]>; 936 937 def XVMAXSP : XX3Form<60, 192, 938 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 939 "xvmaxsp $XT, $XA, $XB", IIC_VecFP, 940 [(set vsrc:$XT, 941 (int_ppc_vsx_xvmaxsp vsrc:$XA, vsrc:$XB))]>; 942 def XVMINSP : XX3Form<60, 200, 943 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 944 "xvminsp $XT, $XA, $XB", IIC_VecFP, 945 [(set vsrc:$XT, 946 (int_ppc_vsx_xvminsp vsrc:$XA, vsrc:$XB))]>; 947 } // isCommutable 948 } // Uses = [RM] 949 950 // Rounding Instructions with static direction. 951 def XSRDPI : XX2Form<60, 73, 952 (outs vsfrc:$XT), (ins vsfrc:$XB), 953 "xsrdpi $XT, $XB", IIC_VecFP, 954 [(set f64:$XT, (any_fround f64:$XB))]>; 955 def XSRDPIM : XX2Form<60, 121, 956 (outs vsfrc:$XT), (ins vsfrc:$XB), 957 "xsrdpim $XT, $XB", IIC_VecFP, 958 [(set f64:$XT, (any_ffloor f64:$XB))]>; 959 def XSRDPIP : XX2Form<60, 105, 960 (outs vsfrc:$XT), (ins vsfrc:$XB), 961 "xsrdpip $XT, $XB", IIC_VecFP, 962 [(set f64:$XT, (any_fceil f64:$XB))]>; 963 def XSRDPIZ : XX2Form<60, 89, 964 (outs vsfrc:$XT), (ins vsfrc:$XB), 965 "xsrdpiz $XT, $XB", IIC_VecFP, 966 [(set f64:$XT, (any_ftrunc f64:$XB))]>; 967 968 def XVRDPI : XX2Form<60, 201, 969 (outs vsrc:$XT), (ins vsrc:$XB), 970 "xvrdpi $XT, $XB", IIC_VecFP, 971 [(set v2f64:$XT, (any_fround v2f64:$XB))]>; 972 def XVRDPIM : XX2Form<60, 249, 973 (outs vsrc:$XT), (ins vsrc:$XB), 974 "xvrdpim $XT, $XB", IIC_VecFP, 975 [(set v2f64:$XT, (any_ffloor v2f64:$XB))]>; 976 def XVRDPIP : XX2Form<60, 233, 977 (outs vsrc:$XT), (ins vsrc:$XB), 978 "xvrdpip $XT, $XB", IIC_VecFP, 979 [(set v2f64:$XT, (any_fceil v2f64:$XB))]>; 980 def XVRDPIZ : XX2Form<60, 217, 981 (outs vsrc:$XT), (ins vsrc:$XB), 982 "xvrdpiz $XT, $XB", IIC_VecFP, 983 [(set v2f64:$XT, (any_ftrunc v2f64:$XB))]>; 984 985 def XVRSPI : XX2Form<60, 137, 986 (outs vsrc:$XT), (ins vsrc:$XB), 987 "xvrspi $XT, $XB", IIC_VecFP, 988 [(set v4f32:$XT, (any_fround v4f32:$XB))]>; 989 def XVRSPIM : XX2Form<60, 185, 990 (outs vsrc:$XT), (ins vsrc:$XB), 991 "xvrspim $XT, $XB", IIC_VecFP, 992 [(set v4f32:$XT, (any_ffloor v4f32:$XB))]>; 993 def XVRSPIP : XX2Form<60, 169, 994 (outs vsrc:$XT), (ins vsrc:$XB), 995 "xvrspip $XT, $XB", IIC_VecFP, 996 [(set v4f32:$XT, (any_fceil v4f32:$XB))]>; 997 def XVRSPIZ : XX2Form<60, 153, 998 (outs vsrc:$XT), (ins vsrc:$XB), 999 "xvrspiz $XT, $XB", IIC_VecFP, 1000 [(set v4f32:$XT, (any_ftrunc v4f32:$XB))]>; 1001 } // mayRaiseFPException 1002 1003 // Logical Instructions 1004 let isCommutable = 1 in 1005 def XXLAND : XX3Form<60, 130, 1006 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 1007 "xxland $XT, $XA, $XB", IIC_VecGeneral, 1008 [(set v4i32:$XT, (and v4i32:$XA, v4i32:$XB))]>; 1009 def XXLANDC : XX3Form<60, 138, 1010 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 1011 "xxlandc $XT, $XA, $XB", IIC_VecGeneral, 1012 [(set v4i32:$XT, (and v4i32:$XA, 1013 (vnot v4i32:$XB)))]>; 1014 let isCommutable = 1 in { 1015 def XXLNOR : XX3Form<60, 162, 1016 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 1017 "xxlnor $XT, $XA, $XB", IIC_VecGeneral, 1018 [(set v4i32:$XT, (vnot (or v4i32:$XA, 1019 v4i32:$XB)))]>; 1020 def XXLOR : XX3Form<60, 146, 1021 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 1022 "xxlor $XT, $XA, $XB", IIC_VecGeneral, 1023 [(set v4i32:$XT, (or v4i32:$XA, v4i32:$XB))]>; 1024 let isCodeGenOnly = 1 in 1025 def XXLORf: XX3Form<60, 146, 1026 (outs vsfrc:$XT), (ins vsfrc:$XA, vsfrc:$XB), 1027 "xxlor $XT, $XA, $XB", IIC_VecGeneral, []>; 1028 def XXLXOR : XX3Form<60, 154, 1029 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 1030 "xxlxor $XT, $XA, $XB", IIC_VecGeneral, 1031 [(set v4i32:$XT, (xor v4i32:$XA, v4i32:$XB))]>; 1032 } // isCommutable 1033 1034 let isCodeGenOnly = 1, isMoveImm = 1, isAsCheapAsAMove = 1, 1035 isReMaterializable = 1 in { 1036 def XXLXORz : XX3Form_SameOp<60, 154, (outs vsrc:$XT), (ins), 1037 "xxlxor $XT, $XT, $XT", IIC_VecGeneral, 1038 [(set v4i32:$XT, (v4i32 immAllZerosV))]>; 1039 def XXLXORdpz : XX3Form_SameOp<60, 154, 1040 (outs vsfrc:$XT), (ins), 1041 "xxlxor $XT, $XT, $XT", IIC_VecGeneral, 1042 [(set f64:$XT, (fpimm0))]>; 1043 def XXLXORspz : XX3Form_SameOp<60, 154, 1044 (outs vssrc:$XT), (ins), 1045 "xxlxor $XT, $XT, $XT", IIC_VecGeneral, 1046 [(set f32:$XT, (fpimm0))]>; 1047 } 1048 1049 // Permutation Instructions 1050 def XXMRGHW : XX3Form<60, 18, 1051 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 1052 "xxmrghw $XT, $XA, $XB", IIC_VecPerm, []>; 1053 def XXMRGLW : XX3Form<60, 50, 1054 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 1055 "xxmrglw $XT, $XA, $XB", IIC_VecPerm, []>; 1056 1057 def XXPERMDI : XX3Form_2<60, 10, 1058 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB, u2imm:$DM), 1059 "xxpermdi $XT, $XA, $XB, $DM", IIC_VecPerm, 1060 [(set v2i64:$XT, (PPCxxpermdi v2i64:$XA, v2i64:$XB, 1061 imm32SExt16:$DM))]>; 1062 let isCodeGenOnly = 1 in 1063 def XXPERMDIs : XX3Form_2s<60, 10, (outs vsrc:$XT), (ins vsfrc:$XA, u2imm:$DM), 1064 "xxpermdi $XT, $XA, $XA, $DM", IIC_VecPerm, []>; 1065 def XXSEL : XX4Form<60, 3, 1066 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB, vsrc:$XC), 1067 "xxsel $XT, $XA, $XB, $XC", IIC_VecPerm, []>; 1068 1069 def XXSLDWI : XX3Form_2<60, 2, 1070 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB, u2imm:$SHW), 1071 "xxsldwi $XT, $XA, $XB, $SHW", IIC_VecPerm, 1072 [(set v4i32:$XT, (PPCvecshl v4i32:$XA, v4i32:$XB, 1073 imm32SExt16:$SHW))]>; 1074 1075 let isCodeGenOnly = 1 in 1076 def XXSLDWIs : XX3Form_2s<60, 2, 1077 (outs vsrc:$XT), (ins vsfrc:$XA, u2imm:$SHW), 1078 "xxsldwi $XT, $XA, $XA, $SHW", IIC_VecPerm, []>; 1079 1080 def XXSPLTW : XX2Form_2<60, 164, 1081 (outs vsrc:$XT), (ins vsrc:$XB, u2imm:$UIM), 1082 "xxspltw $XT, $XB, $UIM", IIC_VecPerm, 1083 [(set v4i32:$XT, 1084 (PPCxxsplt v4i32:$XB, imm32SExt16:$UIM))]>; 1085 let isCodeGenOnly = 1 in 1086 def XXSPLTWs : XX2Form_2<60, 164, 1087 (outs vsrc:$XT), (ins vsfrc:$XB, u2imm:$UIM), 1088 "xxspltw $XT, $XB, $UIM", IIC_VecPerm, []>; 1089 1090// The following VSX instructions were introduced in Power ISA 2.07 1091let Predicates = [HasVSX, HasP8Vector] in { 1092 let isCommutable = 1 in { 1093 def XXLEQV : XX3Form<60, 186, 1094 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 1095 "xxleqv $XT, $XA, $XB", IIC_VecGeneral, 1096 [(set v4i32:$XT, (vnot (xor v4i32:$XA, v4i32:$XB)))]>; 1097 def XXLNAND : XX3Form<60, 178, 1098 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 1099 "xxlnand $XT, $XA, $XB", IIC_VecGeneral, 1100 [(set v4i32:$XT, (vnot (and v4i32:$XA, v4i32:$XB)))]>; 1101 } // isCommutable 1102 1103 let isCodeGenOnly = 1, isMoveImm = 1, isAsCheapAsAMove = 1, 1104 isReMaterializable = 1 in { 1105 def XXLEQVOnes : XX3Form_SameOp<60, 186, (outs vsrc:$XT), (ins), 1106 "xxleqv $XT, $XT, $XT", IIC_VecGeneral, 1107 [(set v4i32:$XT, (bitconvert (v16i8 immAllOnesV)))]>; 1108 } 1109 1110 def XXLORC : XX3Form<60, 170, 1111 (outs vsrc:$XT), (ins vsrc:$XA, vsrc:$XB), 1112 "xxlorc $XT, $XA, $XB", IIC_VecGeneral, 1113 [(set v4i32:$XT, (or v4i32:$XA, (vnot v4i32:$XB)))]>; 1114 1115 // VSX scalar loads introduced in ISA 2.07 1116 let mayLoad = 1, mayStore = 0 in { 1117 let CodeSize = 3 in 1118 def LXSSPX : XX1Form_memOp<31, 524, (outs vssrc:$XT), (ins memrr:$src), 1119 "lxsspx $XT, $src", IIC_LdStLFD, []>; 1120 def LXSIWAX : XX1Form_memOp<31, 76, (outs vsfrc:$XT), (ins memrr:$src), 1121 "lxsiwax $XT, $src", IIC_LdStLFD, []>; 1122 def LXSIWZX : XX1Form_memOp<31, 12, (outs vsfrc:$XT), (ins memrr:$src), 1123 "lxsiwzx $XT, $src", IIC_LdStLFD, []>; 1124 1125 // Pseudo instruction XFLOADf32 will be expanded to LXSSPX or LFSX later 1126 let CodeSize = 3 in 1127 def XFLOADf32 : PseudoXFormMemOp<(outs vssrc:$XT), (ins memrr:$src), 1128 "#XFLOADf32", 1129 [(set f32:$XT, (load xoaddr:$src))]>; 1130 // Pseudo instruction LIWAX will be expanded to LXSIWAX or LFIWAX later 1131 def LIWAX : PseudoXFormMemOp<(outs vsfrc:$XT), (ins memrr:$src), 1132 "#LIWAX", 1133 [(set f64:$XT, (PPClfiwax xoaddr:$src))]>; 1134 // Pseudo instruction LIWZX will be expanded to LXSIWZX or LFIWZX later 1135 def LIWZX : PseudoXFormMemOp<(outs vsfrc:$XT), (ins memrr:$src), 1136 "#LIWZX", 1137 [(set f64:$XT, (PPClfiwzx xoaddr:$src))]>; 1138 } // mayLoad 1139 1140 // VSX scalar stores introduced in ISA 2.07 1141 let mayStore = 1, mayLoad = 0 in { 1142 let CodeSize = 3 in 1143 def STXSSPX : XX1Form_memOp<31, 652, (outs), (ins vssrc:$XT, memrr:$dst), 1144 "stxsspx $XT, $dst", IIC_LdStSTFD, []>; 1145 def STXSIWX : XX1Form_memOp<31, 140, (outs), (ins vsfrc:$XT, memrr:$dst), 1146 "stxsiwx $XT, $dst", IIC_LdStSTFD, []>; 1147 1148 // Pseudo instruction XFSTOREf32 will be expanded to STXSSPX or STFSX later 1149 let CodeSize = 3 in 1150 def XFSTOREf32 : PseudoXFormMemOp<(outs), (ins vssrc:$XT, memrr:$dst), 1151 "#XFSTOREf32", 1152 [(store f32:$XT, xoaddr:$dst)]>; 1153 // Pseudo instruction STIWX will be expanded to STXSIWX or STFIWX later 1154 def STIWX : PseudoXFormMemOp<(outs), (ins vsfrc:$XT, memrr:$dst), 1155 "#STIWX", 1156 [(PPCstfiwx f64:$XT, xoaddr:$dst)]>; 1157 } // mayStore 1158 1159 // VSX Elementary Scalar FP arithmetic (SP) 1160 let mayRaiseFPException = 1 in { 1161 let isCommutable = 1 in { 1162 def XSADDSP : XX3Form<60, 0, 1163 (outs vssrc:$XT), (ins vssrc:$XA, vssrc:$XB), 1164 "xsaddsp $XT, $XA, $XB", IIC_VecFP, 1165 [(set f32:$XT, (any_fadd f32:$XA, f32:$XB))]>; 1166 def XSMULSP : XX3Form<60, 16, 1167 (outs vssrc:$XT), (ins vssrc:$XA, vssrc:$XB), 1168 "xsmulsp $XT, $XA, $XB", IIC_VecFP, 1169 [(set f32:$XT, (any_fmul f32:$XA, f32:$XB))]>; 1170 } // isCommutable 1171 1172 def XSSUBSP : XX3Form<60, 8, 1173 (outs vssrc:$XT), (ins vssrc:$XA, vssrc:$XB), 1174 "xssubsp $XT, $XA, $XB", IIC_VecFP, 1175 [(set f32:$XT, (any_fsub f32:$XA, f32:$XB))]>; 1176 def XSDIVSP : XX3Form<60, 24, 1177 (outs vssrc:$XT), (ins vssrc:$XA, vssrc:$XB), 1178 "xsdivsp $XT, $XA, $XB", IIC_FPDivS, 1179 [(set f32:$XT, (any_fdiv f32:$XA, f32:$XB))]>; 1180 1181 def XSRESP : XX2Form<60, 26, 1182 (outs vssrc:$XT), (ins vssrc:$XB), 1183 "xsresp $XT, $XB", IIC_VecFP, 1184 [(set f32:$XT, (PPCfre f32:$XB))]>; 1185 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1186 let hasSideEffects = 1 in 1187 def XSRSP : XX2Form<60, 281, 1188 (outs vssrc:$XT), (ins vsfrc:$XB), 1189 "xsrsp $XT, $XB", IIC_VecFP, 1190 [(set f32:$XT, (any_fpround f64:$XB))]>; 1191 def XSSQRTSP : XX2Form<60, 11, 1192 (outs vssrc:$XT), (ins vssrc:$XB), 1193 "xssqrtsp $XT, $XB", IIC_FPSqrtS, 1194 [(set f32:$XT, (any_fsqrt f32:$XB))]>; 1195 def XSRSQRTESP : XX2Form<60, 10, 1196 (outs vssrc:$XT), (ins vssrc:$XB), 1197 "xsrsqrtesp $XT, $XB", IIC_VecFP, 1198 [(set f32:$XT, (PPCfrsqrte f32:$XB))]>; 1199 1200 // FMA Instructions 1201 let BaseName = "XSMADDASP" in { 1202 let isCommutable = 1 in 1203 def XSMADDASP : XX3Form<60, 1, 1204 (outs vssrc:$XT), 1205 (ins vssrc:$XTi, vssrc:$XA, vssrc:$XB), 1206 "xsmaddasp $XT, $XA, $XB", IIC_VecFP, 1207 [(set f32:$XT, (any_fma f32:$XA, f32:$XB, f32:$XTi))]>, 1208 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 1209 AltVSXFMARel; 1210 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1211 let IsVSXFMAAlt = 1, hasSideEffects = 1 in 1212 def XSMADDMSP : XX3Form<60, 9, 1213 (outs vssrc:$XT), 1214 (ins vssrc:$XTi, vssrc:$XA, vssrc:$XB), 1215 "xsmaddmsp $XT, $XA, $XB", IIC_VecFP, []>, 1216 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 1217 AltVSXFMARel; 1218 } 1219 1220 let BaseName = "XSMSUBASP" in { 1221 let isCommutable = 1 in 1222 def XSMSUBASP : XX3Form<60, 17, 1223 (outs vssrc:$XT), 1224 (ins vssrc:$XTi, vssrc:$XA, vssrc:$XB), 1225 "xsmsubasp $XT, $XA, $XB", IIC_VecFP, 1226 [(set f32:$XT, (any_fma f32:$XA, f32:$XB, 1227 (fneg f32:$XTi)))]>, 1228 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 1229 AltVSXFMARel; 1230 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1231 let IsVSXFMAAlt = 1, hasSideEffects = 1 in 1232 def XSMSUBMSP : XX3Form<60, 25, 1233 (outs vssrc:$XT), 1234 (ins vssrc:$XTi, vssrc:$XA, vssrc:$XB), 1235 "xsmsubmsp $XT, $XA, $XB", IIC_VecFP, []>, 1236 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 1237 AltVSXFMARel; 1238 } 1239 1240 let BaseName = "XSNMADDASP" in { 1241 let isCommutable = 1 in 1242 def XSNMADDASP : XX3Form<60, 129, 1243 (outs vssrc:$XT), 1244 (ins vssrc:$XTi, vssrc:$XA, vssrc:$XB), 1245 "xsnmaddasp $XT, $XA, $XB", IIC_VecFP, 1246 [(set f32:$XT, (fneg (any_fma f32:$XA, f32:$XB, 1247 f32:$XTi)))]>, 1248 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 1249 AltVSXFMARel; 1250 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1251 let IsVSXFMAAlt = 1, hasSideEffects = 1 in 1252 def XSNMADDMSP : XX3Form<60, 137, 1253 (outs vssrc:$XT), 1254 (ins vssrc:$XTi, vssrc:$XA, vssrc:$XB), 1255 "xsnmaddmsp $XT, $XA, $XB", IIC_VecFP, []>, 1256 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 1257 AltVSXFMARel; 1258 } 1259 1260 let BaseName = "XSNMSUBASP" in { 1261 let isCommutable = 1 in 1262 def XSNMSUBASP : XX3Form<60, 145, 1263 (outs vssrc:$XT), 1264 (ins vssrc:$XTi, vssrc:$XA, vssrc:$XB), 1265 "xsnmsubasp $XT, $XA, $XB", IIC_VecFP, 1266 [(set f32:$XT, (fneg (any_fma f32:$XA, f32:$XB, 1267 (fneg f32:$XTi))))]>, 1268 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 1269 AltVSXFMARel; 1270 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1271 let IsVSXFMAAlt = 1, hasSideEffects = 1 in 1272 def XSNMSUBMSP : XX3Form<60, 153, 1273 (outs vssrc:$XT), 1274 (ins vssrc:$XTi, vssrc:$XA, vssrc:$XB), 1275 "xsnmsubmsp $XT, $XA, $XB", IIC_VecFP, []>, 1276 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">, 1277 AltVSXFMARel; 1278 } 1279 1280 // Single Precision Conversions (FP <-> INT) 1281 def XSCVSXDSP : XX2Form<60, 312, 1282 (outs vssrc:$XT), (ins vsfrc:$XB), 1283 "xscvsxdsp $XT, $XB", IIC_VecFP, 1284 [(set f32:$XT, (PPCany_fcfids f64:$XB))]>; 1285 def XSCVUXDSP : XX2Form<60, 296, 1286 (outs vssrc:$XT), (ins vsfrc:$XB), 1287 "xscvuxdsp $XT, $XB", IIC_VecFP, 1288 [(set f32:$XT, (PPCany_fcfidus f64:$XB))]>; 1289 } // mayRaiseFPException 1290 1291 // Conversions between vector and scalar single precision 1292 def XSCVDPSPN : XX2Form<60, 267, (outs vsrc:$XT), (ins vssrc:$XB), 1293 "xscvdpspn $XT, $XB", IIC_VecFP, []>; 1294 def XSCVSPDPN : XX2Form<60, 331, (outs vssrc:$XT), (ins vsrc:$XB), 1295 "xscvspdpn $XT, $XB", IIC_VecFP, []>; 1296 1297 let Predicates = [HasVSX, HasDirectMove] in { 1298 // VSX direct move instructions 1299 def MFVSRD : XX1_RS6_RD5_XO<31, 51, (outs g8rc:$rA), (ins vsfrc:$XT), 1300 "mfvsrd $rA, $XT", IIC_VecGeneral, 1301 [(set i64:$rA, (PPCmfvsr f64:$XT))]>, 1302 Requires<[In64BitMode]>; 1303 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1304 let isCodeGenOnly = 1, hasSideEffects = 1 in 1305 def MFVRD : XX1_RS6_RD5_XO<31, 51, (outs g8rc:$rA), (ins vsrc:$XT), 1306 "mfvsrd $rA, $XT", IIC_VecGeneral, 1307 []>, 1308 Requires<[In64BitMode]>; 1309 def MFVSRWZ : XX1_RS6_RD5_XO<31, 115, (outs gprc:$rA), (ins vsfrc:$XT), 1310 "mfvsrwz $rA, $XT", IIC_VecGeneral, 1311 [(set i32:$rA, (PPCmfvsr f64:$XT))]>; 1312 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1313 let isCodeGenOnly = 1, hasSideEffects = 1 in 1314 def MFVRWZ : XX1_RS6_RD5_XO<31, 115, (outs gprc:$rA), (ins vsrc:$XT), 1315 "mfvsrwz $rA, $XT", IIC_VecGeneral, 1316 []>; 1317 def MTVSRD : XX1_RS6_RD5_XO<31, 179, (outs vsfrc:$XT), (ins g8rc:$rA), 1318 "mtvsrd $XT, $rA", IIC_VecGeneral, 1319 [(set f64:$XT, (PPCmtvsra i64:$rA))]>, 1320 Requires<[In64BitMode]>; 1321 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1322 let isCodeGenOnly = 1, hasSideEffects = 1 in 1323 def MTVRD : XX1_RS6_RD5_XO<31, 179, (outs vsrc:$XT), (ins g8rc:$rA), 1324 "mtvsrd $XT, $rA", IIC_VecGeneral, 1325 []>, 1326 Requires<[In64BitMode]>; 1327 def MTVSRWA : XX1_RS6_RD5_XO<31, 211, (outs vsfrc:$XT), (ins gprc:$rA), 1328 "mtvsrwa $XT, $rA", IIC_VecGeneral, 1329 [(set f64:$XT, (PPCmtvsra i32:$rA))]>; 1330 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1331 let isCodeGenOnly = 1, hasSideEffects = 1 in 1332 def MTVRWA : XX1_RS6_RD5_XO<31, 211, (outs vsrc:$XT), (ins gprc:$rA), 1333 "mtvsrwa $XT, $rA", IIC_VecGeneral, 1334 []>; 1335 def MTVSRWZ : XX1_RS6_RD5_XO<31, 243, (outs vsfrc:$XT), (ins gprc:$rA), 1336 "mtvsrwz $XT, $rA", IIC_VecGeneral, 1337 [(set f64:$XT, (PPCmtvsrz i32:$rA))]>; 1338 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1339 let isCodeGenOnly = 1, hasSideEffects = 1 in 1340 def MTVRWZ : XX1_RS6_RD5_XO<31, 243, (outs vsrc:$XT), (ins gprc:$rA), 1341 "mtvsrwz $XT, $rA", IIC_VecGeneral, 1342 []>; 1343 } // HasDirectMove 1344 1345} // HasVSX, HasP8Vector 1346 1347let Predicates = [HasVSX, IsISA3_0, HasDirectMove] in { 1348def MTVSRWS: XX1_RS6_RD5_XO<31, 403, (outs vsrc:$XT), (ins gprc:$rA), 1349 "mtvsrws $XT, $rA", IIC_VecGeneral, []>; 1350 1351def MTVSRDD: XX1Form<31, 435, (outs vsrc:$XT), (ins g8rc_nox0:$rA, g8rc:$rB), 1352 "mtvsrdd $XT, $rA, $rB", IIC_VecGeneral, 1353 []>, Requires<[In64BitMode]>; 1354 1355def MFVSRLD: XX1_RS6_RD5_XO<31, 307, (outs g8rc:$rA), (ins vsrc:$XT), 1356 "mfvsrld $rA, $XT", IIC_VecGeneral, 1357 []>, Requires<[In64BitMode]>; 1358 1359} // HasVSX, IsISA3_0, HasDirectMove 1360 1361let Predicates = [HasVSX, HasP9Vector] in { 1362 // Quad-Precision Scalar Move Instructions: 1363 // Copy Sign 1364 def XSCPSGNQP : X_VT5_VA5_VB5<63, 100, "xscpsgnqp", 1365 [(set f128:$vT, 1366 (fcopysign f128:$vB, f128:$vA))]>; 1367 1368 // Absolute/Negative-Absolute/Negate 1369 def XSABSQP : X_VT5_XO5_VB5<63, 0, 804, "xsabsqp", 1370 [(set f128:$vT, (fabs f128:$vB))]>; 1371 def XSNABSQP : X_VT5_XO5_VB5<63, 8, 804, "xsnabsqp", 1372 [(set f128:$vT, (fneg (fabs f128:$vB)))]>; 1373 def XSNEGQP : X_VT5_XO5_VB5<63, 16, 804, "xsnegqp", 1374 [(set f128:$vT, (fneg f128:$vB))]>; 1375 1376 //===--------------------------------------------------------------------===// 1377 // Quad-Precision Scalar Floating-Point Arithmetic Instructions: 1378 1379 // Add/Divide/Multiply/Subtract 1380 let mayRaiseFPException = 1 in { 1381 let isCommutable = 1 in { 1382 def XSADDQP : X_VT5_VA5_VB5 <63, 4, "xsaddqp", 1383 [(set f128:$vT, (any_fadd f128:$vA, f128:$vB))]>; 1384 def XSMULQP : X_VT5_VA5_VB5 <63, 36, "xsmulqp", 1385 [(set f128:$vT, (any_fmul f128:$vA, f128:$vB))]>; 1386 } 1387 def XSSUBQP : X_VT5_VA5_VB5 <63, 516, "xssubqp" , 1388 [(set f128:$vT, (any_fsub f128:$vA, f128:$vB))]>; 1389 def XSDIVQP : X_VT5_VA5_VB5 <63, 548, "xsdivqp", 1390 [(set f128:$vT, (any_fdiv f128:$vA, f128:$vB))]>; 1391 // Square-Root 1392 def XSSQRTQP : X_VT5_XO5_VB5 <63, 27, 804, "xssqrtqp", 1393 [(set f128:$vT, (any_fsqrt f128:$vB))]>; 1394 // (Negative) Multiply-{Add/Subtract} 1395 def XSMADDQP : X_VT5_VA5_VB5_FMA <63, 388, "xsmaddqp", 1396 [(set f128:$vT, 1397 (any_fma f128:$vA, f128:$vB, f128:$vTi))]>; 1398 def XSMSUBQP : X_VT5_VA5_VB5_FMA <63, 420, "xsmsubqp" , 1399 [(set f128:$vT, 1400 (any_fma f128:$vA, f128:$vB, 1401 (fneg f128:$vTi)))]>; 1402 def XSNMADDQP : X_VT5_VA5_VB5_FMA <63, 452, "xsnmaddqp", 1403 [(set f128:$vT, 1404 (fneg (any_fma f128:$vA, f128:$vB, 1405 f128:$vTi)))]>; 1406 def XSNMSUBQP : X_VT5_VA5_VB5_FMA <63, 484, "xsnmsubqp", 1407 [(set f128:$vT, 1408 (fneg (any_fma f128:$vA, f128:$vB, 1409 (fneg f128:$vTi))))]>; 1410 1411 let isCommutable = 1 in { 1412 def XSADDQPO : X_VT5_VA5_VB5_Ro<63, 4, "xsaddqpo", 1413 [(set f128:$vT, 1414 (int_ppc_addf128_round_to_odd 1415 f128:$vA, f128:$vB))]>; 1416 def XSMULQPO : X_VT5_VA5_VB5_Ro<63, 36, "xsmulqpo", 1417 [(set f128:$vT, 1418 (int_ppc_mulf128_round_to_odd 1419 f128:$vA, f128:$vB))]>; 1420 } 1421 def XSSUBQPO : X_VT5_VA5_VB5_Ro<63, 516, "xssubqpo", 1422 [(set f128:$vT, 1423 (int_ppc_subf128_round_to_odd 1424 f128:$vA, f128:$vB))]>; 1425 def XSDIVQPO : X_VT5_VA5_VB5_Ro<63, 548, "xsdivqpo", 1426 [(set f128:$vT, 1427 (int_ppc_divf128_round_to_odd 1428 f128:$vA, f128:$vB))]>; 1429 def XSSQRTQPO : X_VT5_XO5_VB5_Ro<63, 27, 804, "xssqrtqpo", 1430 [(set f128:$vT, 1431 (int_ppc_sqrtf128_round_to_odd f128:$vB))]>; 1432 1433 1434 def XSMADDQPO : X_VT5_VA5_VB5_FMA_Ro<63, 388, "xsmaddqpo", 1435 [(set f128:$vT, 1436 (int_ppc_fmaf128_round_to_odd 1437 f128:$vA,f128:$vB,f128:$vTi))]>; 1438 1439 def XSMSUBQPO : X_VT5_VA5_VB5_FMA_Ro<63, 420, "xsmsubqpo" , 1440 [(set f128:$vT, 1441 (int_ppc_fmaf128_round_to_odd 1442 f128:$vA, f128:$vB, (fneg f128:$vTi)))]>; 1443 def XSNMADDQPO: X_VT5_VA5_VB5_FMA_Ro<63, 452, "xsnmaddqpo", 1444 [(set f128:$vT, 1445 (fneg (int_ppc_fmaf128_round_to_odd 1446 f128:$vA, f128:$vB, f128:$vTi)))]>; 1447 def XSNMSUBQPO: X_VT5_VA5_VB5_FMA_Ro<63, 484, "xsnmsubqpo", 1448 [(set f128:$vT, 1449 (fneg (int_ppc_fmaf128_round_to_odd 1450 f128:$vA, f128:$vB, (fneg f128:$vTi))))]>; 1451 } // mayRaiseFPException 1452 1453 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1454 // QP Compare Ordered/Unordered 1455 let hasSideEffects = 1 in { 1456 // DP/QP Compare Exponents 1457 def XSCMPEXPDP : XX3Form_1<60, 59, 1458 (outs crrc:$crD), (ins vsfrc:$XA, vsfrc:$XB), 1459 "xscmpexpdp $crD, $XA, $XB", IIC_FPCompare, []>; 1460 def XSCMPEXPQP : X_BF3_VA5_VB5<63, 164, "xscmpexpqp", []>; 1461 1462 let mayRaiseFPException = 1 in { 1463 def XSCMPOQP : X_BF3_VA5_VB5<63, 132, "xscmpoqp", []>; 1464 def XSCMPUQP : X_BF3_VA5_VB5<63, 644, "xscmpuqp", []>; 1465 1466 // DP Compare ==, >=, >, != 1467 // Use vsrc for XT, because the entire register of XT is set. 1468 // XT.dword[1] = 0x0000_0000_0000_0000 1469 def XSCMPEQDP : XX3_XT5_XA5_XB5<60, 3, "xscmpeqdp", vsrc, vsfrc, vsfrc, 1470 IIC_FPCompare, []>; 1471 def XSCMPGEDP : XX3_XT5_XA5_XB5<60, 19, "xscmpgedp", vsrc, vsfrc, vsfrc, 1472 IIC_FPCompare, []>; 1473 def XSCMPGTDP : XX3_XT5_XA5_XB5<60, 11, "xscmpgtdp", vsrc, vsfrc, vsfrc, 1474 IIC_FPCompare, []>; 1475 } 1476 } 1477 1478 //===--------------------------------------------------------------------===// 1479 // Quad-Precision Floating-Point Conversion Instructions: 1480 1481 let mayRaiseFPException = 1 in { 1482 // Convert DP -> QP 1483 def XSCVDPQP : X_VT5_XO5_VB5_TyVB<63, 22, 836, "xscvdpqp", vfrc, 1484 [(set f128:$vT, (any_fpextend f64:$vB))]>; 1485 1486 // Round & Convert QP -> DP (dword[1] is set to zero) 1487 def XSCVQPDP : X_VT5_XO5_VB5_VSFR<63, 20, 836, "xscvqpdp" , []>; 1488 def XSCVQPDPO : X_VT5_XO5_VB5_VSFR_Ro<63, 20, 836, "xscvqpdpo", 1489 [(set f64:$vT, 1490 (int_ppc_truncf128_round_to_odd 1491 f128:$vB))]>; 1492 } 1493 1494 // Truncate & Convert QP -> (Un)Signed (D)Word (dword[1] is set to zero) 1495 let mayRaiseFPException = 1 in { 1496 def XSCVQPSDZ : X_VT5_XO5_VB5<63, 25, 836, "xscvqpsdz", []>; 1497 def XSCVQPSWZ : X_VT5_XO5_VB5<63, 9, 836, "xscvqpswz", []>; 1498 def XSCVQPUDZ : X_VT5_XO5_VB5<63, 17, 836, "xscvqpudz", []>; 1499 def XSCVQPUWZ : X_VT5_XO5_VB5<63, 1, 836, "xscvqpuwz", []>; 1500 } 1501 1502 // Convert (Un)Signed DWord -> QP. 1503 def XSCVSDQP : X_VT5_XO5_VB5_TyVB<63, 10, 836, "xscvsdqp", vfrc, []>; 1504 def XSCVUDQP : X_VT5_XO5_VB5_TyVB<63, 2, 836, "xscvudqp", vfrc, []>; 1505 1506 // (Round &) Convert DP <-> HP 1507 // Note! xscvdphp's src and dest register both use the left 64 bits, so we use 1508 // vsfrc for src and dest register. xscvhpdp's src only use the left 16 bits, 1509 // but we still use vsfrc for it. 1510 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1511 let hasSideEffects = 1, mayRaiseFPException = 1 in { 1512 def XSCVDPHP : XX2_XT6_XO5_XB6<60, 17, 347, "xscvdphp", vsfrc, []>; 1513 def XSCVHPDP : XX2_XT6_XO5_XB6<60, 16, 347, "xscvhpdp", vsfrc, []>; 1514 } 1515 1516 let mayRaiseFPException = 1 in { 1517 // Vector HP -> SP 1518 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1519 let hasSideEffects = 1 in 1520 def XVCVHPSP : XX2_XT6_XO5_XB6<60, 24, 475, "xvcvhpsp", vsrc, []>; 1521 def XVCVSPHP : XX2_XT6_XO5_XB6<60, 25, 475, "xvcvsphp", vsrc, 1522 [(set v4f32:$XT, 1523 (int_ppc_vsx_xvcvsphp v4f32:$XB))]>; 1524 1525 // Round to Quad-Precision Integer [with Inexact] 1526 def XSRQPI : Z23_VT5_R1_VB5_RMC2_EX1<63, 5, 0, "xsrqpi" , []>; 1527 def XSRQPIX : Z23_VT5_R1_VB5_RMC2_EX1<63, 5, 1, "xsrqpix", []>; 1528 1529 // Round Quad-Precision to Double-Extended Precision (fp80) 1530 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1531 let hasSideEffects = 1 in 1532 def XSRQPXP : Z23_VT5_R1_VB5_RMC2_EX1<63, 37, 0, "xsrqpxp", []>; 1533 } 1534 1535 //===--------------------------------------------------------------------===// 1536 // Insert/Extract Instructions 1537 1538 // Insert Exponent DP/QP 1539 // XT NOTE: XT.dword[1] = 0xUUUU_UUUU_UUUU_UUUU 1540 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1541 let hasSideEffects = 1 in { 1542 def XSIEXPDP : XX1Form <60, 918, (outs vsrc:$XT), (ins g8rc:$rA, g8rc:$rB), 1543 "xsiexpdp $XT, $rA, $rB", IIC_VecFP, []>; 1544 // vB NOTE: only vB.dword[0] is used, that's why we don't use 1545 // X_VT5_VA5_VB5 form 1546 def XSIEXPQP : XForm_18<63, 868, (outs vrrc:$vT), (ins vrrc:$vA, vsfrc:$vB), 1547 "xsiexpqp $vT, $vA, $vB", IIC_VecFP, []>; 1548 } 1549 1550 // Extract Exponent/Significand DP/QP 1551 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1552 let hasSideEffects = 1 in { 1553 def XSXEXPDP : XX2_RT5_XO5_XB6<60, 0, 347, "xsxexpdp", []>; 1554 def XSXSIGDP : XX2_RT5_XO5_XB6<60, 1, 347, "xsxsigdp", []>; 1555 1556 def XSXEXPQP : X_VT5_XO5_VB5 <63, 2, 804, "xsxexpqp", []>; 1557 def XSXSIGQP : X_VT5_XO5_VB5 <63, 18, 804, "xsxsigqp", []>; 1558 } 1559 1560 // Vector Insert Word 1561 // XB NOTE: Only XB.dword[1] is used, but we use vsrc on XB. 1562 def XXINSERTW : 1563 XX2_RD6_UIM5_RS6<60, 181, (outs vsrc:$XT), 1564 (ins vsrc:$XTi, vsrc:$XB, u4imm:$UIM), 1565 "xxinsertw $XT, $XB, $UIM", IIC_VecFP, 1566 [(set v4i32:$XT, (PPCvecinsert v4i32:$XTi, v4i32:$XB, 1567 imm32SExt16:$UIM))]>, 1568 RegConstraint<"$XTi = $XT">, NoEncode<"$XTi">; 1569 1570 // Vector Extract Unsigned Word 1571 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1572 let hasSideEffects = 1 in 1573 def XXEXTRACTUW : XX2_RD6_UIM5_RS6<60, 165, 1574 (outs vsfrc:$XT), (ins vsrc:$XB, u4imm:$UIMM), 1575 "xxextractuw $XT, $XB, $UIMM", IIC_VecFP, []>; 1576 1577 // Vector Insert Exponent DP/SP 1578 def XVIEXPDP : XX3_XT5_XA5_XB5<60, 248, "xviexpdp", vsrc, vsrc, vsrc, 1579 IIC_VecFP, [(set v2f64: $XT,(int_ppc_vsx_xviexpdp v2i64:$XA, v2i64:$XB))]>; 1580 def XVIEXPSP : XX3_XT5_XA5_XB5<60, 216, "xviexpsp", vsrc, vsrc, vsrc, 1581 IIC_VecFP, [(set v4f32: $XT,(int_ppc_vsx_xviexpsp v4i32:$XA, v4i32:$XB))]>; 1582 1583 // Vector Extract Exponent/Significand DP/SP 1584 def XVXEXPDP : XX2_XT6_XO5_XB6<60, 0, 475, "xvxexpdp", vsrc, 1585 [(set v2i64: $XT, 1586 (int_ppc_vsx_xvxexpdp v2f64:$XB))]>; 1587 def XVXEXPSP : XX2_XT6_XO5_XB6<60, 8, 475, "xvxexpsp", vsrc, 1588 [(set v4i32: $XT, 1589 (int_ppc_vsx_xvxexpsp v4f32:$XB))]>; 1590 def XVXSIGDP : XX2_XT6_XO5_XB6<60, 1, 475, "xvxsigdp", vsrc, 1591 [(set v2i64: $XT, 1592 (int_ppc_vsx_xvxsigdp v2f64:$XB))]>; 1593 def XVXSIGSP : XX2_XT6_XO5_XB6<60, 9, 475, "xvxsigsp", vsrc, 1594 [(set v4i32: $XT, 1595 (int_ppc_vsx_xvxsigsp v4f32:$XB))]>; 1596 1597 // Test Data Class SP/DP/QP 1598 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1599 let hasSideEffects = 1 in { 1600 def XSTSTDCSP : XX2_BF3_DCMX7_RS6<60, 298, 1601 (outs crrc:$BF), (ins u7imm:$DCMX, vsfrc:$XB), 1602 "xststdcsp $BF, $XB, $DCMX", IIC_VecFP, []>; 1603 def XSTSTDCDP : XX2_BF3_DCMX7_RS6<60, 362, 1604 (outs crrc:$BF), (ins u7imm:$DCMX, vsfrc:$XB), 1605 "xststdcdp $BF, $XB, $DCMX", IIC_VecFP, []>; 1606 def XSTSTDCQP : X_BF3_DCMX7_RS5 <63, 708, 1607 (outs crrc:$BF), (ins u7imm:$DCMX, vrrc:$vB), 1608 "xststdcqp $BF, $vB, $DCMX", IIC_VecFP, []>; 1609 } 1610 1611 // Vector Test Data Class SP/DP 1612 def XVTSTDCSP : XX2_RD6_DCMX7_RS6<60, 13, 5, 1613 (outs vsrc:$XT), (ins u7imm:$DCMX, vsrc:$XB), 1614 "xvtstdcsp $XT, $XB, $DCMX", IIC_VecFP, 1615 [(set v4i32: $XT, 1616 (int_ppc_vsx_xvtstdcsp v4f32:$XB, timm:$DCMX))]>; 1617 def XVTSTDCDP : XX2_RD6_DCMX7_RS6<60, 15, 5, 1618 (outs vsrc:$XT), (ins u7imm:$DCMX, vsrc:$XB), 1619 "xvtstdcdp $XT, $XB, $DCMX", IIC_VecFP, 1620 [(set v2i64: $XT, 1621 (int_ppc_vsx_xvtstdcdp v2f64:$XB, timm:$DCMX))]>; 1622 1623 // Maximum/Minimum Type-C/Type-J DP 1624 let mayRaiseFPException = 1 in { 1625 def XSMAXCDP : XX3_XT5_XA5_XB5<60, 128, "xsmaxcdp", vsfrc, vsfrc, vsfrc, 1626 IIC_VecFP, 1627 [(set f64:$XT, (PPCxsmaxc f64:$XA, f64:$XB))]>; 1628 def XSMINCDP : XX3_XT5_XA5_XB5<60, 136, "xsmincdp", vsfrc, vsfrc, vsfrc, 1629 IIC_VecFP, 1630 [(set f64:$XT, (PPCxsminc f64:$XA, f64:$XB))]>; 1631 1632 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1633 let hasSideEffects = 1 in { 1634 def XSMAXJDP : XX3_XT5_XA5_XB5<60, 144, "xsmaxjdp", vsrc, vsfrc, vsfrc, 1635 IIC_VecFP, []>; 1636 def XSMINJDP : XX3_XT5_XA5_XB5<60, 152, "xsminjdp", vsrc, vsfrc, vsfrc, 1637 IIC_VecFP, []>; 1638 } 1639 } 1640 1641 // Vector Byte-Reverse H/W/D/Q Word 1642 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1643 let hasSideEffects = 1 in 1644 def XXBRH : XX2_XT6_XO5_XB6<60, 7, 475, "xxbrh", vsrc, []>; 1645 def XXBRW : XX2_XT6_XO5_XB6<60, 15, 475, "xxbrw", vsrc, 1646 [(set v4i32:$XT, (bswap v4i32:$XB))]>; 1647 def XXBRD : XX2_XT6_XO5_XB6<60, 23, 475, "xxbrd", vsrc, 1648 [(set v2i64:$XT, (bswap v2i64:$XB))]>; 1649 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1650 let hasSideEffects = 1 in 1651 def XXBRQ : XX2_XT6_XO5_XB6<60, 31, 475, "xxbrq", vsrc, []>; 1652 1653 // Vector Permute 1654 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1655 let hasSideEffects = 1 in { 1656 def XXPERM : XX3_XT5_XA5_XB5<60, 26, "xxperm" , vsrc, vsrc, vsrc, 1657 IIC_VecPerm, []>; 1658 def XXPERMR : XX3_XT5_XA5_XB5<60, 58, "xxpermr", vsrc, vsrc, vsrc, 1659 IIC_VecPerm, []>; 1660 } 1661 1662 // Vector Splat Immediate Byte 1663 // FIXME: Setting the hasSideEffects flag here to match current behaviour. 1664 let hasSideEffects = 1 in 1665 def XXSPLTIB : X_RD6_IMM8<60, 360, (outs vsrc:$XT), (ins u8imm:$IMM8), 1666 "xxspltib $XT, $IMM8", IIC_VecPerm, []>; 1667 1668 // When adding new D-Form loads/stores, be sure to update the ImmToIdxMap in 1669 // PPCRegisterInfo::PPCRegisterInfo and maybe save yourself some debugging. 1670 let mayLoad = 1, mayStore = 0 in { 1671 // Load Vector 1672 def LXV : DQ_RD6_RS5_DQ12<61, 1, (outs vsrc:$XT), (ins memrix16:$src), 1673 "lxv $XT, $src", IIC_LdStLFD, []>; 1674 // Load DWord 1675 def LXSD : DSForm_1<57, 2, (outs vfrc:$vD), (ins memrix:$src), 1676 "lxsd $vD, $src", IIC_LdStLFD, []>; 1677 // Load SP from src, convert it to DP, and place in dword[0] 1678 def LXSSP : DSForm_1<57, 3, (outs vfrc:$vD), (ins memrix:$src), 1679 "lxssp $vD, $src", IIC_LdStLFD, []>; 1680 1681 // Load as Integer Byte/Halfword & Zero Indexed 1682 def LXSIBZX : X_XT6_RA5_RB5<31, 781, "lxsibzx", vsfrc, 1683 [(set f64:$XT, (PPClxsizx xoaddr:$src, 1))]>; 1684 def LXSIHZX : X_XT6_RA5_RB5<31, 813, "lxsihzx", vsfrc, 1685 [(set f64:$XT, (PPClxsizx xoaddr:$src, 2))]>; 1686 1687 // Load Vector Halfword*8/Byte*16 Indexed 1688 def LXVH8X : X_XT6_RA5_RB5<31, 812, "lxvh8x" , vsrc, []>; 1689 def LXVB16X : X_XT6_RA5_RB5<31, 876, "lxvb16x", vsrc, []>; 1690 1691 // Load Vector Indexed 1692 def LXVX : X_XT6_RA5_RB5<31, 268, "lxvx" , vsrc, 1693 [(set v2f64:$XT, (load xaddrX16:$src))]>; 1694 // Load Vector (Left-justified) with Length 1695 def LXVL : XX1Form_memOp<31, 269, (outs vsrc:$XT), (ins memr:$src, g8rc:$rB), 1696 "lxvl $XT, $src, $rB", IIC_LdStLoad, 1697 [(set v4i32:$XT, (int_ppc_vsx_lxvl addr:$src, i64:$rB))]>; 1698 def LXVLL : XX1Form_memOp<31,301, (outs vsrc:$XT), (ins memr:$src, g8rc:$rB), 1699 "lxvll $XT, $src, $rB", IIC_LdStLoad, 1700 [(set v4i32:$XT, (int_ppc_vsx_lxvll addr:$src, i64:$rB))]>; 1701 1702 // Load Vector Word & Splat Indexed 1703 def LXVWSX : X_XT6_RA5_RB5<31, 364, "lxvwsx" , vsrc, []>; 1704 } // mayLoad 1705 1706 // When adding new D-Form loads/stores, be sure to update the ImmToIdxMap in 1707 // PPCRegisterInfo::PPCRegisterInfo and maybe save yourself some debugging. 1708 let mayStore = 1, mayLoad = 0 in { 1709 // Store Vector 1710 def STXV : DQ_RD6_RS5_DQ12<61, 5, (outs), (ins vsrc:$XT, memrix16:$dst), 1711 "stxv $XT, $dst", IIC_LdStSTFD, []>; 1712 // Store DWord 1713 def STXSD : DSForm_1<61, 2, (outs), (ins vfrc:$vS, memrix:$dst), 1714 "stxsd $vS, $dst", IIC_LdStSTFD, []>; 1715 // Convert DP of dword[0] to SP, and Store to dst 1716 def STXSSP : DSForm_1<61, 3, (outs), (ins vfrc:$vS, memrix:$dst), 1717 "stxssp $vS, $dst", IIC_LdStSTFD, []>; 1718 1719 // Store as Integer Byte/Halfword Indexed 1720 def STXSIBX : X_XS6_RA5_RB5<31, 909, "stxsibx" , vsfrc, 1721 [(PPCstxsix f64:$XT, xoaddr:$dst, 1)]>; 1722 def STXSIHX : X_XS6_RA5_RB5<31, 941, "stxsihx" , vsfrc, 1723 [(PPCstxsix f64:$XT, xoaddr:$dst, 2)]>; 1724 let isCodeGenOnly = 1 in { 1725 def STXSIBXv : X_XS6_RA5_RB5<31, 909, "stxsibx" , vsrc, []>; 1726 def STXSIHXv : X_XS6_RA5_RB5<31, 941, "stxsihx" , vsrc, []>; 1727 } 1728 1729 // Store Vector Halfword*8/Byte*16 Indexed 1730 def STXVH8X : X_XS6_RA5_RB5<31, 940, "stxvh8x" , vsrc, []>; 1731 def STXVB16X : X_XS6_RA5_RB5<31, 1004, "stxvb16x", vsrc, []>; 1732 1733 // Store Vector Indexed 1734 def STXVX : X_XS6_RA5_RB5<31, 396, "stxvx" , vsrc, 1735 [(store v2f64:$XT, xaddrX16:$dst)]>; 1736 1737 // Store Vector (Left-justified) with Length 1738 def STXVL : XX1Form_memOp<31, 397, (outs), 1739 (ins vsrc:$XT, memr:$dst, g8rc:$rB), 1740 "stxvl $XT, $dst, $rB", IIC_LdStLoad, 1741 [(int_ppc_vsx_stxvl v4i32:$XT, addr:$dst, 1742 i64:$rB)]>; 1743 def STXVLL : XX1Form_memOp<31, 429, (outs), 1744 (ins vsrc:$XT, memr:$dst, g8rc:$rB), 1745 "stxvll $XT, $dst, $rB", IIC_LdStLoad, 1746 [(int_ppc_vsx_stxvll v4i32:$XT, addr:$dst, 1747 i64:$rB)]>; 1748 } // mayStore 1749 1750 def DFLOADf32 : PPCPostRAExpPseudo<(outs vssrc:$XT), (ins memrix:$src), 1751 "#DFLOADf32", 1752 [(set f32:$XT, (load iaddrX4:$src))]>; 1753 def DFLOADf64 : PPCPostRAExpPseudo<(outs vsfrc:$XT), (ins memrix:$src), 1754 "#DFLOADf64", 1755 [(set f64:$XT, (load iaddrX4:$src))]>; 1756 def DFSTOREf32 : PPCPostRAExpPseudo<(outs), (ins vssrc:$XT, memrix:$dst), 1757 "#DFSTOREf32", 1758 [(store f32:$XT, iaddrX4:$dst)]>; 1759 def DFSTOREf64 : PPCPostRAExpPseudo<(outs), (ins vsfrc:$XT, memrix:$dst), 1760 "#DFSTOREf64", 1761 [(store f64:$XT, iaddrX4:$dst)]>; 1762 1763 let mayStore = 1 in { 1764 def SPILLTOVSR_STX : PseudoXFormMemOp<(outs), 1765 (ins spilltovsrrc:$XT, memrr:$dst), 1766 "#SPILLTOVSR_STX", []>; 1767 def SPILLTOVSR_ST : PPCPostRAExpPseudo<(outs), (ins spilltovsrrc:$XT, memrix:$dst), 1768 "#SPILLTOVSR_ST", []>; 1769 } 1770 let mayLoad = 1 in { 1771 def SPILLTOVSR_LDX : PseudoXFormMemOp<(outs spilltovsrrc:$XT), 1772 (ins memrr:$src), 1773 "#SPILLTOVSR_LDX", []>; 1774 def SPILLTOVSR_LD : PPCPostRAExpPseudo<(outs spilltovsrrc:$XT), (ins memrix:$src), 1775 "#SPILLTOVSR_LD", []>; 1776 1777 } 1778 } // HasP9Vector 1779} // hasSideEffects = 0 1780 1781let PPC970_Single = 1, AddedComplexity = 400 in { 1782 1783 def SELECT_CC_VSRC: PPCCustomInserterPseudo<(outs vsrc:$dst), 1784 (ins crrc:$cond, vsrc:$T, vsrc:$F, i32imm:$BROPC), 1785 "#SELECT_CC_VSRC", 1786 []>; 1787 def SELECT_VSRC: PPCCustomInserterPseudo<(outs vsrc:$dst), 1788 (ins crbitrc:$cond, vsrc:$T, vsrc:$F), 1789 "#SELECT_VSRC", 1790 [(set v2f64:$dst, 1791 (select i1:$cond, v2f64:$T, v2f64:$F))]>; 1792 def SELECT_CC_VSFRC: PPCCustomInserterPseudo<(outs f8rc:$dst), 1793 (ins crrc:$cond, f8rc:$T, f8rc:$F, 1794 i32imm:$BROPC), "#SELECT_CC_VSFRC", 1795 []>; 1796 def SELECT_VSFRC: PPCCustomInserterPseudo<(outs f8rc:$dst), 1797 (ins crbitrc:$cond, f8rc:$T, f8rc:$F), 1798 "#SELECT_VSFRC", 1799 [(set f64:$dst, 1800 (select i1:$cond, f64:$T, f64:$F))]>; 1801 def SELECT_CC_VSSRC: PPCCustomInserterPseudo<(outs f4rc:$dst), 1802 (ins crrc:$cond, f4rc:$T, f4rc:$F, 1803 i32imm:$BROPC), "#SELECT_CC_VSSRC", 1804 []>; 1805 def SELECT_VSSRC: PPCCustomInserterPseudo<(outs f4rc:$dst), 1806 (ins crbitrc:$cond, f4rc:$T, f4rc:$F), 1807 "#SELECT_VSSRC", 1808 [(set f32:$dst, 1809 (select i1:$cond, f32:$T, f32:$F))]>; 1810} 1811} 1812 1813//----------------------------- DAG Definitions ------------------------------// 1814 1815// Output dag used to bitcast f32 to i32 and f64 to i64 1816def Bitcast { 1817 dag FltToInt = (i32 (MFVSRWZ (EXTRACT_SUBREG (XXSLDWI (XSCVDPSPN $A), 1818 (XSCVDPSPN $A), 3), sub_64))); 1819 dag DblToLong = (i64 (MFVSRD $A)); 1820} 1821 1822def FpMinMax { 1823 dag F32Min = (COPY_TO_REGCLASS (XSMINDP (COPY_TO_REGCLASS $A, VSFRC), 1824 (COPY_TO_REGCLASS $B, VSFRC)), 1825 VSSRC); 1826 dag F32Max = (COPY_TO_REGCLASS (XSMAXDP (COPY_TO_REGCLASS $A, VSFRC), 1827 (COPY_TO_REGCLASS $B, VSFRC)), 1828 VSSRC); 1829} 1830 1831def ScalarLoads { 1832 dag Li8 = (i32 (extloadi8 xoaddr:$src)); 1833 dag ZELi8 = (i32 (zextloadi8 xoaddr:$src)); 1834 dag ZELi8i64 = (i64 (zextloadi8 xoaddr:$src)); 1835 dag SELi8 = (i32 (sext_inreg (extloadi8 xoaddr:$src), i8)); 1836 dag SELi8i64 = (i64 (sext_inreg (extloadi8 xoaddr:$src), i8)); 1837 1838 dag Li16 = (i32 (extloadi16 xoaddr:$src)); 1839 dag ZELi16 = (i32 (zextloadi16 xoaddr:$src)); 1840 dag ZELi16i64 = (i64 (zextloadi16 xoaddr:$src)); 1841 dag SELi16 = (i32 (sextloadi16 xoaddr:$src)); 1842 dag SELi16i64 = (i64 (sextloadi16 xoaddr:$src)); 1843 1844 dag Li32 = (i32 (load xoaddr:$src)); 1845} 1846 1847def DWToSPExtractConv { 1848 dag El0US1 = (f32 (PPCfcfidus 1849 (f64 (PPCmtvsra (i64 (vector_extract v2i64:$S1, 0)))))); 1850 dag El1US1 = (f32 (PPCfcfidus 1851 (f64 (PPCmtvsra (i64 (vector_extract v2i64:$S1, 1)))))); 1852 dag El0US2 = (f32 (PPCfcfidus 1853 (f64 (PPCmtvsra (i64 (vector_extract v2i64:$S2, 0)))))); 1854 dag El1US2 = (f32 (PPCfcfidus 1855 (f64 (PPCmtvsra (i64 (vector_extract v2i64:$S2, 1)))))); 1856 dag El0SS1 = (f32 (PPCfcfids 1857 (f64 (PPCmtvsra (i64 (vector_extract v2i64:$S1, 0)))))); 1858 dag El1SS1 = (f32 (PPCfcfids 1859 (f64 (PPCmtvsra (i64 (vector_extract v2i64:$S1, 1)))))); 1860 dag El0SS2 = (f32 (PPCfcfids 1861 (f64 (PPCmtvsra (i64 (vector_extract v2i64:$S2, 0)))))); 1862 dag El1SS2 = (f32 (PPCfcfids 1863 (f64 (PPCmtvsra (i64 (vector_extract v2i64:$S2, 1)))))); 1864 dag BVU = (v4f32 (build_vector El0US1, El1US1, El0US2, El1US2)); 1865 dag BVS = (v4f32 (build_vector El0SS1, El1SS1, El0SS2, El1SS2)); 1866} 1867 1868def WToDPExtractConv { 1869 dag El0S = (f64 (PPCfcfid (PPCmtvsra (extractelt v4i32:$A, 0)))); 1870 dag El1S = (f64 (PPCfcfid (PPCmtvsra (extractelt v4i32:$A, 1)))); 1871 dag El2S = (f64 (PPCfcfid (PPCmtvsra (extractelt v4i32:$A, 2)))); 1872 dag El3S = (f64 (PPCfcfid (PPCmtvsra (extractelt v4i32:$A, 3)))); 1873 dag El0U = (f64 (PPCfcfidu (PPCmtvsrz (extractelt v4i32:$A, 0)))); 1874 dag El1U = (f64 (PPCfcfidu (PPCmtvsrz (extractelt v4i32:$A, 1)))); 1875 dag El2U = (f64 (PPCfcfidu (PPCmtvsrz (extractelt v4i32:$A, 2)))); 1876 dag El3U = (f64 (PPCfcfidu (PPCmtvsrz (extractelt v4i32:$A, 3)))); 1877 dag BV02S = (v2f64 (build_vector El0S, El2S)); 1878 dag BV13S = (v2f64 (build_vector El1S, El3S)); 1879 dag BV02U = (v2f64 (build_vector El0U, El2U)); 1880 dag BV13U = (v2f64 (build_vector El1U, El3U)); 1881} 1882 1883/* Direct moves of various widths from GPR's into VSR's. Each move lines 1884 the value up into element 0 (both BE and LE). Namely, entities smaller than 1885 a doubleword are shifted left and moved for BE. For LE, they're moved, then 1886 swapped to go into the least significant element of the VSR. 1887*/ 1888def MovesToVSR { 1889 dag BE_BYTE_0 = 1890 (MTVSRD 1891 (RLDICR 1892 (INSERT_SUBREG (i64 (IMPLICIT_DEF)), $A, sub_32), 56, 7)); 1893 dag BE_HALF_0 = 1894 (MTVSRD 1895 (RLDICR 1896 (INSERT_SUBREG (i64 (IMPLICIT_DEF)), $A, sub_32), 48, 15)); 1897 dag BE_WORD_0 = 1898 (MTVSRD 1899 (RLDICR 1900 (INSERT_SUBREG (i64 (IMPLICIT_DEF)), $A, sub_32), 32, 31)); 1901 dag BE_DWORD_0 = (MTVSRD $A); 1902 1903 dag LE_MTVSRW = (MTVSRD (INSERT_SUBREG (i64 (IMPLICIT_DEF)), $A, sub_32)); 1904 dag LE_WORD_1 = (v2i64 (INSERT_SUBREG (v2i64 (IMPLICIT_DEF)), 1905 LE_MTVSRW, sub_64)); 1906 dag LE_WORD_0 = (XXPERMDI LE_WORD_1, LE_WORD_1, 2); 1907 dag LE_DWORD_1 = (v2i64 (INSERT_SUBREG (v2i64 (IMPLICIT_DEF)), 1908 BE_DWORD_0, sub_64)); 1909 dag LE_DWORD_0 = (XXPERMDI LE_DWORD_1, LE_DWORD_1, 2); 1910} 1911 1912/* Patterns for extracting elements out of vectors. Integer elements are 1913 extracted using direct move operations. Patterns for extracting elements 1914 whose indices are not available at compile time are also provided with 1915 various _VARIABLE_ patterns. 1916 The numbering for the DAG's is for LE, but when used on BE, the correct 1917 LE element can just be used (i.e. LE_BYTE_2 == BE_BYTE_13). 1918*/ 1919def VectorExtractions { 1920 // Doubleword extraction 1921 dag LE_DWORD_0 = 1922 (MFVSRD 1923 (EXTRACT_SUBREG 1924 (XXPERMDI (COPY_TO_REGCLASS $S, VSRC), 1925 (COPY_TO_REGCLASS $S, VSRC), 2), sub_64)); 1926 dag LE_DWORD_1 = (MFVSRD 1927 (EXTRACT_SUBREG 1928 (v2i64 (COPY_TO_REGCLASS $S, VSRC)), sub_64)); 1929 1930 // Word extraction 1931 dag LE_WORD_0 = (MFVSRWZ (EXTRACT_SUBREG (XXPERMDI $S, $S, 2), sub_64)); 1932 dag LE_WORD_1 = (MFVSRWZ (EXTRACT_SUBREG (XXSLDWI $S, $S, 1), sub_64)); 1933 dag LE_WORD_2 = (MFVSRWZ (EXTRACT_SUBREG 1934 (v2i64 (COPY_TO_REGCLASS $S, VSRC)), sub_64)); 1935 dag LE_WORD_3 = (MFVSRWZ (EXTRACT_SUBREG (XXSLDWI $S, $S, 3), sub_64)); 1936 1937 // Halfword extraction 1938 dag LE_HALF_0 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_0, 0, 48), sub_32)); 1939 dag LE_HALF_1 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_0, 48, 48), sub_32)); 1940 dag LE_HALF_2 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_0, 32, 48), sub_32)); 1941 dag LE_HALF_3 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_0, 16, 48), sub_32)); 1942 dag LE_HALF_4 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_1, 0, 48), sub_32)); 1943 dag LE_HALF_5 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_1, 48, 48), sub_32)); 1944 dag LE_HALF_6 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_1, 32, 48), sub_32)); 1945 dag LE_HALF_7 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_1, 16, 48), sub_32)); 1946 1947 // Byte extraction 1948 dag LE_BYTE_0 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_0, 0, 56), sub_32)); 1949 dag LE_BYTE_1 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_0, 56, 56), sub_32)); 1950 dag LE_BYTE_2 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_0, 48, 56), sub_32)); 1951 dag LE_BYTE_3 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_0, 40, 56), sub_32)); 1952 dag LE_BYTE_4 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_0, 32, 56), sub_32)); 1953 dag LE_BYTE_5 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_0, 24, 56), sub_32)); 1954 dag LE_BYTE_6 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_0, 16, 56), sub_32)); 1955 dag LE_BYTE_7 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_0, 8, 56), sub_32)); 1956 dag LE_BYTE_8 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_1, 0, 56), sub_32)); 1957 dag LE_BYTE_9 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_1, 56, 56), sub_32)); 1958 dag LE_BYTE_10 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_1, 48, 56), sub_32)); 1959 dag LE_BYTE_11 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_1, 40, 56), sub_32)); 1960 dag LE_BYTE_12 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_1, 32, 56), sub_32)); 1961 dag LE_BYTE_13 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_1, 24, 56), sub_32)); 1962 dag LE_BYTE_14 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_1, 16, 56), sub_32)); 1963 dag LE_BYTE_15 = (i32 (EXTRACT_SUBREG (RLDICL LE_DWORD_1, 8, 56), sub_32)); 1964 1965 /* Variable element number (BE and LE patterns must be specified separately) 1966 This is a rather involved process. 1967 1968 Conceptually, this is how the move is accomplished: 1969 1. Identify which doubleword contains the element 1970 2. Shift in the VMX register so that the correct doubleword is correctly 1971 lined up for the MFVSRD 1972 3. Perform the move so that the element (along with some extra stuff) 1973 is in the GPR 1974 4. Right shift within the GPR so that the element is right-justified 1975 1976 Of course, the index is an element number which has a different meaning 1977 on LE/BE so the patterns have to be specified separately. 1978 1979 Note: The final result will be the element right-justified with high 1980 order bits being arbitrarily defined (namely, whatever was in the 1981 vector register to the left of the value originally). 1982 */ 1983 1984 /* LE variable byte 1985 Number 1. above: 1986 - For elements 0-7, we shift left by 8 bytes since they're on the right 1987 - For elements 8-15, we need not shift (shift left by zero bytes) 1988 This is accomplished by inverting the bits of the index and AND-ing 1989 with 0x8 (i.e. clearing all bits of the index and inverting bit 60). 1990 */ 1991 dag LE_VBYTE_PERM_VEC = (v16i8 (LVSL ZERO8, (ANDC8 (LI8 8), $Idx))); 1992 1993 // Number 2. above: 1994 // - Now that we set up the shift amount, we shift in the VMX register 1995 dag LE_VBYTE_PERMUTE = (v16i8 (VPERM $S, $S, LE_VBYTE_PERM_VEC)); 1996 1997 // Number 3. above: 1998 // - The doubleword containing our element is moved to a GPR 1999 dag LE_MV_VBYTE = (MFVSRD 2000 (EXTRACT_SUBREG 2001 (v2i64 (COPY_TO_REGCLASS LE_VBYTE_PERMUTE, VSRC)), 2002 sub_64)); 2003 2004 /* Number 4. above: 2005 - Truncate the element number to the range 0-7 (8-15 are symmetrical 2006 and out of range values are truncated accordingly) 2007 - Multiply by 8 as we need to shift right by the number of bits, not bytes 2008 - Shift right in the GPR by the calculated value 2009 */ 2010 dag LE_VBYTE_SHIFT = (EXTRACT_SUBREG (RLDICR (AND8 (LI8 7), $Idx), 3, 60), 2011 sub_32); 2012 dag LE_VARIABLE_BYTE = (EXTRACT_SUBREG (SRD LE_MV_VBYTE, LE_VBYTE_SHIFT), 2013 sub_32); 2014 2015 /* LE variable halfword 2016 Number 1. above: 2017 - For elements 0-3, we shift left by 8 since they're on the right 2018 - For elements 4-7, we need not shift (shift left by zero bytes) 2019 Similarly to the byte pattern, we invert the bits of the index, but we 2020 AND with 0x4 (i.e. clear all bits of the index and invert bit 61). 2021 Of course, the shift is still by 8 bytes, so we must multiply by 2. 2022 */ 2023 dag LE_VHALF_PERM_VEC = 2024 (v16i8 (LVSL ZERO8, (RLDICR (ANDC8 (LI8 4), $Idx), 1, 62))); 2025 2026 // Number 2. above: 2027 // - Now that we set up the shift amount, we shift in the VMX register 2028 dag LE_VHALF_PERMUTE = (v16i8 (VPERM $S, $S, LE_VHALF_PERM_VEC)); 2029 2030 // Number 3. above: 2031 // - The doubleword containing our element is moved to a GPR 2032 dag LE_MV_VHALF = (MFVSRD 2033 (EXTRACT_SUBREG 2034 (v2i64 (COPY_TO_REGCLASS LE_VHALF_PERMUTE, VSRC)), 2035 sub_64)); 2036 2037 /* Number 4. above: 2038 - Truncate the element number to the range 0-3 (4-7 are symmetrical 2039 and out of range values are truncated accordingly) 2040 - Multiply by 16 as we need to shift right by the number of bits 2041 - Shift right in the GPR by the calculated value 2042 */ 2043 dag LE_VHALF_SHIFT = (EXTRACT_SUBREG (RLDICR (AND8 (LI8 3), $Idx), 4, 59), 2044 sub_32); 2045 dag LE_VARIABLE_HALF = (EXTRACT_SUBREG (SRD LE_MV_VHALF, LE_VHALF_SHIFT), 2046 sub_32); 2047 2048 /* LE variable word 2049 Number 1. above: 2050 - For elements 0-1, we shift left by 8 since they're on the right 2051 - For elements 2-3, we need not shift 2052 */ 2053 dag LE_VWORD_PERM_VEC = (v16i8 (LVSL ZERO8, 2054 (RLDICR (ANDC8 (LI8 2), $Idx), 2, 61))); 2055 2056 // Number 2. above: 2057 // - Now that we set up the shift amount, we shift in the VMX register 2058 dag LE_VWORD_PERMUTE = (v16i8 (VPERM $S, $S, LE_VWORD_PERM_VEC)); 2059 2060 // Number 3. above: 2061 // - The doubleword containing our element is moved to a GPR 2062 dag LE_MV_VWORD = (MFVSRD 2063 (EXTRACT_SUBREG 2064 (v2i64 (COPY_TO_REGCLASS LE_VWORD_PERMUTE, VSRC)), 2065 sub_64)); 2066 2067 /* Number 4. above: 2068 - Truncate the element number to the range 0-1 (2-3 are symmetrical 2069 and out of range values are truncated accordingly) 2070 - Multiply by 32 as we need to shift right by the number of bits 2071 - Shift right in the GPR by the calculated value 2072 */ 2073 dag LE_VWORD_SHIFT = (EXTRACT_SUBREG (RLDICR (AND8 (LI8 1), $Idx), 5, 58), 2074 sub_32); 2075 dag LE_VARIABLE_WORD = (EXTRACT_SUBREG (SRD LE_MV_VWORD, LE_VWORD_SHIFT), 2076 sub_32); 2077 2078 /* LE variable doubleword 2079 Number 1. above: 2080 - For element 0, we shift left by 8 since it's on the right 2081 - For element 1, we need not shift 2082 */ 2083 dag LE_VDWORD_PERM_VEC = (v16i8 (LVSL ZERO8, 2084 (RLDICR (ANDC8 (LI8 1), $Idx), 3, 60))); 2085 2086 // Number 2. above: 2087 // - Now that we set up the shift amount, we shift in the VMX register 2088 dag LE_VDWORD_PERMUTE = (v16i8 (VPERM $S, $S, LE_VDWORD_PERM_VEC)); 2089 2090 // Number 3. above: 2091 // - The doubleword containing our element is moved to a GPR 2092 // - Number 4. is not needed for the doubleword as the value is 64-bits 2093 dag LE_VARIABLE_DWORD = 2094 (MFVSRD (EXTRACT_SUBREG 2095 (v2i64 (COPY_TO_REGCLASS LE_VDWORD_PERMUTE, VSRC)), 2096 sub_64)); 2097 2098 /* LE variable float 2099 - Shift the vector to line up the desired element to BE Word 0 2100 - Convert 32-bit float to a 64-bit single precision float 2101 */ 2102 dag LE_VFLOAT_PERM_VEC = (v16i8 (LVSL ZERO8, 2103 (RLDICR (XOR8 (LI8 3), $Idx), 2, 61))); 2104 dag LE_VFLOAT_PERMUTE = (VPERM $S, $S, LE_VFLOAT_PERM_VEC); 2105 dag LE_VARIABLE_FLOAT = (XSCVSPDPN LE_VFLOAT_PERMUTE); 2106 2107 /* LE variable double 2108 Same as the LE doubleword except there is no move. 2109 */ 2110 dag LE_VDOUBLE_PERMUTE = (v16i8 (VPERM (v16i8 (COPY_TO_REGCLASS $S, VRRC)), 2111 (v16i8 (COPY_TO_REGCLASS $S, VRRC)), 2112 LE_VDWORD_PERM_VEC)); 2113 dag LE_VARIABLE_DOUBLE = (COPY_TO_REGCLASS LE_VDOUBLE_PERMUTE, VSRC); 2114 2115 /* BE variable byte 2116 The algorithm here is the same as the LE variable byte except: 2117 - The shift in the VMX register is by 0/8 for opposite element numbers so 2118 we simply AND the element number with 0x8 2119 - The order of elements after the move to GPR is reversed, so we invert 2120 the bits of the index prior to truncating to the range 0-7 2121 */ 2122 dag BE_VBYTE_PERM_VEC = (v16i8 (LVSL ZERO8, (ANDI8_rec $Idx, 8))); 2123 dag BE_VBYTE_PERMUTE = (v16i8 (VPERM $S, $S, BE_VBYTE_PERM_VEC)); 2124 dag BE_MV_VBYTE = (MFVSRD 2125 (EXTRACT_SUBREG 2126 (v2i64 (COPY_TO_REGCLASS BE_VBYTE_PERMUTE, VSRC)), 2127 sub_64)); 2128 dag BE_VBYTE_SHIFT = (EXTRACT_SUBREG (RLDICR (ANDC8 (LI8 7), $Idx), 3, 60), 2129 sub_32); 2130 dag BE_VARIABLE_BYTE = (EXTRACT_SUBREG (SRD BE_MV_VBYTE, BE_VBYTE_SHIFT), 2131 sub_32); 2132 2133 /* BE variable halfword 2134 The algorithm here is the same as the LE variable halfword except: 2135 - The shift in the VMX register is by 0/8 for opposite element numbers so 2136 we simply AND the element number with 0x4 and multiply by 2 2137 - The order of elements after the move to GPR is reversed, so we invert 2138 the bits of the index prior to truncating to the range 0-3 2139 */ 2140 dag BE_VHALF_PERM_VEC = (v16i8 (LVSL ZERO8, 2141 (RLDICR (ANDI8_rec $Idx, 4), 1, 62))); 2142 dag BE_VHALF_PERMUTE = (v16i8 (VPERM $S, $S, BE_VHALF_PERM_VEC)); 2143 dag BE_MV_VHALF = (MFVSRD 2144 (EXTRACT_SUBREG 2145 (v2i64 (COPY_TO_REGCLASS BE_VHALF_PERMUTE, VSRC)), 2146 sub_64)); 2147 dag BE_VHALF_SHIFT = (EXTRACT_SUBREG (RLDICR (ANDC8 (LI8 3), $Idx), 4, 59), 2148 sub_32); 2149 dag BE_VARIABLE_HALF = (EXTRACT_SUBREG (SRD BE_MV_VHALF, BE_VHALF_SHIFT), 2150 sub_32); 2151 2152 /* BE variable word 2153 The algorithm is the same as the LE variable word except: 2154 - The shift in the VMX register happens for opposite element numbers 2155 - The order of elements after the move to GPR is reversed, so we invert 2156 the bits of the index prior to truncating to the range 0-1 2157 */ 2158 dag BE_VWORD_PERM_VEC = (v16i8 (LVSL ZERO8, 2159 (RLDICR (ANDI8_rec $Idx, 2), 2, 61))); 2160 dag BE_VWORD_PERMUTE = (v16i8 (VPERM $S, $S, BE_VWORD_PERM_VEC)); 2161 dag BE_MV_VWORD = (MFVSRD 2162 (EXTRACT_SUBREG 2163 (v2i64 (COPY_TO_REGCLASS BE_VWORD_PERMUTE, VSRC)), 2164 sub_64)); 2165 dag BE_VWORD_SHIFT = (EXTRACT_SUBREG (RLDICR (ANDC8 (LI8 1), $Idx), 5, 58), 2166 sub_32); 2167 dag BE_VARIABLE_WORD = (EXTRACT_SUBREG (SRD BE_MV_VWORD, BE_VWORD_SHIFT), 2168 sub_32); 2169 2170 /* BE variable doubleword 2171 Same as the LE doubleword except we shift in the VMX register for opposite 2172 element indices. 2173 */ 2174 dag BE_VDWORD_PERM_VEC = (v16i8 (LVSL ZERO8, 2175 (RLDICR (ANDI8_rec $Idx, 1), 3, 60))); 2176 dag BE_VDWORD_PERMUTE = (v16i8 (VPERM $S, $S, BE_VDWORD_PERM_VEC)); 2177 dag BE_VARIABLE_DWORD = 2178 (MFVSRD (EXTRACT_SUBREG 2179 (v2i64 (COPY_TO_REGCLASS BE_VDWORD_PERMUTE, VSRC)), 2180 sub_64)); 2181 2182 /* BE variable float 2183 - Shift the vector to line up the desired element to BE Word 0 2184 - Convert 32-bit float to a 64-bit single precision float 2185 */ 2186 dag BE_VFLOAT_PERM_VEC = (v16i8 (LVSL ZERO8, (RLDICR $Idx, 2, 61))); 2187 dag BE_VFLOAT_PERMUTE = (VPERM $S, $S, BE_VFLOAT_PERM_VEC); 2188 dag BE_VARIABLE_FLOAT = (XSCVSPDPN BE_VFLOAT_PERMUTE); 2189 2190 // BE variable float 32-bit version 2191 dag BE_32B_VFLOAT_PERM_VEC = (v16i8 (LVSL (i32 ZERO), (RLWINM $Idx, 2, 0, 29))); 2192 dag BE_32B_VFLOAT_PERMUTE = (VPERM $S, $S, BE_32B_VFLOAT_PERM_VEC); 2193 dag BE_32B_VARIABLE_FLOAT = (XSCVSPDPN BE_32B_VFLOAT_PERMUTE); 2194 2195 /* BE variable double 2196 Same as the BE doubleword except there is no move. 2197 */ 2198 dag BE_VDOUBLE_PERMUTE = (v16i8 (VPERM (v16i8 (COPY_TO_REGCLASS $S, VRRC)), 2199 (v16i8 (COPY_TO_REGCLASS $S, VRRC)), 2200 BE_VDWORD_PERM_VEC)); 2201 dag BE_VARIABLE_DOUBLE = (COPY_TO_REGCLASS BE_VDOUBLE_PERMUTE, VSRC); 2202 2203 // BE variable double 32-bit version 2204 dag BE_32B_VDWORD_PERM_VEC = (v16i8 (LVSL (i32 ZERO), 2205 (RLWINM (ANDI_rec $Idx, 1), 3, 0, 28))); 2206 dag BE_32B_VDOUBLE_PERMUTE = (v16i8 (VPERM (v16i8 (COPY_TO_REGCLASS $S, VRRC)), 2207 (v16i8 (COPY_TO_REGCLASS $S, VRRC)), 2208 BE_32B_VDWORD_PERM_VEC)); 2209 dag BE_32B_VARIABLE_DOUBLE = (COPY_TO_REGCLASS BE_32B_VDOUBLE_PERMUTE, VSRC); 2210} 2211 2212def AlignValues { 2213 dag F32_TO_BE_WORD1 = (v4f32 (XXSLDWI (XSCVDPSPN $B), (XSCVDPSPN $B), 3)); 2214 dag I32_TO_BE_WORD1 = (SUBREG_TO_REG (i64 1), (MTVSRWZ $B), sub_64); 2215} 2216 2217// Integer extend helper dags 32 -> 64 2218def AnyExts { 2219 dag A = (INSERT_SUBREG (i64 (IMPLICIT_DEF)), $A, sub_32); 2220 dag B = (INSERT_SUBREG (i64 (IMPLICIT_DEF)), $B, sub_32); 2221 dag C = (INSERT_SUBREG (i64 (IMPLICIT_DEF)), $C, sub_32); 2222 dag D = (INSERT_SUBREG (i64 (IMPLICIT_DEF)), $D, sub_32); 2223} 2224 2225def DblToFlt { 2226 dag A0 = (f32 (any_fpround (f64 (extractelt v2f64:$A, 0)))); 2227 dag A1 = (f32 (any_fpround (f64 (extractelt v2f64:$A, 1)))); 2228 dag B0 = (f32 (any_fpround (f64 (extractelt v2f64:$B, 0)))); 2229 dag B1 = (f32 (any_fpround (f64 (extractelt v2f64:$B, 1)))); 2230} 2231 2232def ExtDbl { 2233 dag A0S = (i32 (PPCmfvsr (f64 (PPCfctiwz (f64 (extractelt v2f64:$A, 0)))))); 2234 dag A1S = (i32 (PPCmfvsr (f64 (PPCfctiwz (f64 (extractelt v2f64:$A, 1)))))); 2235 dag B0S = (i32 (PPCmfvsr (f64 (PPCfctiwz (f64 (extractelt v2f64:$B, 0)))))); 2236 dag B1S = (i32 (PPCmfvsr (f64 (PPCfctiwz (f64 (extractelt v2f64:$B, 1)))))); 2237 dag A0U = (i32 (PPCmfvsr (f64 (PPCfctiwuz (f64 (extractelt v2f64:$A, 0)))))); 2238 dag A1U = (i32 (PPCmfvsr (f64 (PPCfctiwuz (f64 (extractelt v2f64:$A, 1)))))); 2239 dag B0U = (i32 (PPCmfvsr (f64 (PPCfctiwuz (f64 (extractelt v2f64:$B, 0)))))); 2240 dag B1U = (i32 (PPCmfvsr (f64 (PPCfctiwuz (f64 (extractelt v2f64:$B, 1)))))); 2241} 2242 2243def ByteToWord { 2244 dag LE_A0 = (i32 (sext_inreg (i32 (vector_extract v16i8:$A, 0)), i8)); 2245 dag LE_A1 = (i32 (sext_inreg (i32 (vector_extract v16i8:$A, 4)), i8)); 2246 dag LE_A2 = (i32 (sext_inreg (i32 (vector_extract v16i8:$A, 8)), i8)); 2247 dag LE_A3 = (i32 (sext_inreg (i32 (vector_extract v16i8:$A, 12)), i8)); 2248 dag BE_A0 = (i32 (sext_inreg (i32 (vector_extract v16i8:$A, 3)), i8)); 2249 dag BE_A1 = (i32 (sext_inreg (i32 (vector_extract v16i8:$A, 7)), i8)); 2250 dag BE_A2 = (i32 (sext_inreg (i32 (vector_extract v16i8:$A, 11)), i8)); 2251 dag BE_A3 = (i32 (sext_inreg (i32 (vector_extract v16i8:$A, 15)), i8)); 2252} 2253 2254def ByteToDWord { 2255 dag LE_A0 = (i64 (sext_inreg 2256 (i64 (anyext (i32 (vector_extract v16i8:$A, 0)))), i8)); 2257 dag LE_A1 = (i64 (sext_inreg 2258 (i64 (anyext (i32 (vector_extract v16i8:$A, 8)))), i8)); 2259 dag BE_A0 = (i64 (sext_inreg 2260 (i64 (anyext (i32 (vector_extract v16i8:$A, 7)))), i8)); 2261 dag BE_A1 = (i64 (sext_inreg 2262 (i64 (anyext (i32 (vector_extract v16i8:$A, 15)))), i8)); 2263} 2264 2265def HWordToWord { 2266 dag LE_A0 = (i32 (sext_inreg (i32 (vector_extract v8i16:$A, 0)), i16)); 2267 dag LE_A1 = (i32 (sext_inreg (i32 (vector_extract v8i16:$A, 2)), i16)); 2268 dag LE_A2 = (i32 (sext_inreg (i32 (vector_extract v8i16:$A, 4)), i16)); 2269 dag LE_A3 = (i32 (sext_inreg (i32 (vector_extract v8i16:$A, 6)), i16)); 2270 dag BE_A0 = (i32 (sext_inreg (i32 (vector_extract v8i16:$A, 1)), i16)); 2271 dag BE_A1 = (i32 (sext_inreg (i32 (vector_extract v8i16:$A, 3)), i16)); 2272 dag BE_A2 = (i32 (sext_inreg (i32 (vector_extract v8i16:$A, 5)), i16)); 2273 dag BE_A3 = (i32 (sext_inreg (i32 (vector_extract v8i16:$A, 7)), i16)); 2274} 2275 2276def HWordToDWord { 2277 dag LE_A0 = (i64 (sext_inreg 2278 (i64 (anyext (i32 (vector_extract v8i16:$A, 0)))), i16)); 2279 dag LE_A1 = (i64 (sext_inreg 2280 (i64 (anyext (i32 (vector_extract v8i16:$A, 4)))), i16)); 2281 dag BE_A0 = (i64 (sext_inreg 2282 (i64 (anyext (i32 (vector_extract v8i16:$A, 3)))), i16)); 2283 dag BE_A1 = (i64 (sext_inreg 2284 (i64 (anyext (i32 (vector_extract v8i16:$A, 7)))), i16)); 2285} 2286 2287def WordToDWord { 2288 dag LE_A0 = (i64 (sext (i32 (vector_extract v4i32:$A, 0)))); 2289 dag LE_A1 = (i64 (sext (i32 (vector_extract v4i32:$A, 2)))); 2290 dag BE_A0 = (i64 (sext (i32 (vector_extract v4i32:$A, 1)))); 2291 dag BE_A1 = (i64 (sext (i32 (vector_extract v4i32:$A, 3)))); 2292} 2293 2294def FltToIntLoad { 2295 dag A = (i32 (PPCmfvsr (PPCfctiwz (f64 (extloadf32 xoaddr:$A))))); 2296} 2297def FltToUIntLoad { 2298 dag A = (i32 (PPCmfvsr (PPCfctiwuz (f64 (extloadf32 xoaddr:$A))))); 2299} 2300def FltToLongLoad { 2301 dag A = (i64 (PPCmfvsr (PPCfctidz (f64 (extloadf32 xoaddr:$A))))); 2302} 2303def FltToLongLoadP9 { 2304 dag A = (i64 (PPCmfvsr (PPCfctidz (f64 (extloadf32 iaddrX4:$A))))); 2305} 2306def FltToULongLoad { 2307 dag A = (i64 (PPCmfvsr (PPCfctiduz (f64 (extloadf32 xoaddr:$A))))); 2308} 2309def FltToULongLoadP9 { 2310 dag A = (i64 (PPCmfvsr (PPCfctiduz (f64 (extloadf32 iaddrX4:$A))))); 2311} 2312def FltToLong { 2313 dag A = (i64 (PPCmfvsr (f64 (PPCfctidz (fpextend f32:$A))))); 2314} 2315def FltToULong { 2316 dag A = (i64 (PPCmfvsr (f64 (PPCfctiduz (fpextend f32:$A))))); 2317} 2318def DblToInt { 2319 dag A = (i32 (PPCmfvsr (f64 (PPCfctiwz f64:$A)))); 2320 dag B = (i32 (PPCmfvsr (f64 (PPCfctiwz f64:$B)))); 2321 dag C = (i32 (PPCmfvsr (f64 (PPCfctiwz f64:$C)))); 2322 dag D = (i32 (PPCmfvsr (f64 (PPCfctiwz f64:$D)))); 2323} 2324def DblToUInt { 2325 dag A = (i32 (PPCmfvsr (f64 (PPCfctiwuz f64:$A)))); 2326 dag B = (i32 (PPCmfvsr (f64 (PPCfctiwuz f64:$B)))); 2327 dag C = (i32 (PPCmfvsr (f64 (PPCfctiwuz f64:$C)))); 2328 dag D = (i32 (PPCmfvsr (f64 (PPCfctiwuz f64:$D)))); 2329} 2330def DblToLong { 2331 dag A = (i64 (PPCmfvsr (f64 (PPCfctidz f64:$A)))); 2332} 2333def DblToULong { 2334 dag A = (i64 (PPCmfvsr (f64 (PPCfctiduz f64:$A)))); 2335} 2336def DblToIntLoad { 2337 dag A = (i32 (PPCmfvsr (PPCfctiwz (f64 (load xoaddr:$A))))); 2338} 2339def DblToIntLoadP9 { 2340 dag A = (i32 (PPCmfvsr (PPCfctiwz (f64 (load iaddrX4:$A))))); 2341} 2342def DblToUIntLoad { 2343 dag A = (i32 (PPCmfvsr (PPCfctiwuz (f64 (load xoaddr:$A))))); 2344} 2345def DblToUIntLoadP9 { 2346 dag A = (i32 (PPCmfvsr (PPCfctiwuz (f64 (load iaddrX4:$A))))); 2347} 2348def DblToLongLoad { 2349 dag A = (i64 (PPCmfvsr (PPCfctidz (f64 (load xoaddr:$A))))); 2350} 2351def DblToULongLoad { 2352 dag A = (i64 (PPCmfvsr (PPCfctiduz (f64 (load xoaddr:$A))))); 2353} 2354 2355// FP load dags (for f32 -> v4f32) 2356def LoadFP { 2357 dag A = (f32 (load xoaddr:$A)); 2358 dag B = (f32 (load xoaddr:$B)); 2359 dag C = (f32 (load xoaddr:$C)); 2360 dag D = (f32 (load xoaddr:$D)); 2361} 2362 2363// FP merge dags (for f32 -> v4f32) 2364def MrgFP { 2365 dag LD32A = (SUBREG_TO_REG (i64 1), (LIWZX xoaddr:$A), sub_64); 2366 dag LD32B = (SUBREG_TO_REG (i64 1), (LIWZX xoaddr:$B), sub_64); 2367 dag LD32C = (SUBREG_TO_REG (i64 1), (LIWZX xoaddr:$C), sub_64); 2368 dag LD32D = (SUBREG_TO_REG (i64 1), (LIWZX xoaddr:$D), sub_64); 2369 dag AC = (XVCVDPSP (XXPERMDI (SUBREG_TO_REG (i64 1), $A, sub_64), 2370 (SUBREG_TO_REG (i64 1), $C, sub_64), 0)); 2371 dag BD = (XVCVDPSP (XXPERMDI (SUBREG_TO_REG (i64 1), $B, sub_64), 2372 (SUBREG_TO_REG (i64 1), $D, sub_64), 0)); 2373 dag ABhToFlt = (XVCVDPSP (XXPERMDI $A, $B, 0)); 2374 dag ABlToFlt = (XVCVDPSP (XXPERMDI $A, $B, 3)); 2375 dag BAhToFlt = (XVCVDPSP (XXPERMDI $B, $A, 0)); 2376 dag BAlToFlt = (XVCVDPSP (XXPERMDI $B, $A, 3)); 2377} 2378 2379// Word-element merge dags - conversions from f64 to i32 merged into vectors. 2380def MrgWords { 2381 // For big endian, we merge low and hi doublewords (A, B). 2382 dag A0B0 = (v2f64 (XXPERMDI v2f64:$A, v2f64:$B, 0)); 2383 dag A1B1 = (v2f64 (XXPERMDI v2f64:$A, v2f64:$B, 3)); 2384 dag CVA1B1S = (v4i32 (XVCVDPSXWS A1B1)); 2385 dag CVA0B0S = (v4i32 (XVCVDPSXWS A0B0)); 2386 dag CVA1B1U = (v4i32 (XVCVDPUXWS A1B1)); 2387 dag CVA0B0U = (v4i32 (XVCVDPUXWS A0B0)); 2388 2389 // For little endian, we merge low and hi doublewords (B, A). 2390 dag B1A1 = (v2f64 (XXPERMDI v2f64:$B, v2f64:$A, 0)); 2391 dag B0A0 = (v2f64 (XXPERMDI v2f64:$B, v2f64:$A, 3)); 2392 dag CVB1A1S = (v4i32 (XVCVDPSXWS B1A1)); 2393 dag CVB0A0S = (v4i32 (XVCVDPSXWS B0A0)); 2394 dag CVB1A1U = (v4i32 (XVCVDPUXWS B1A1)); 2395 dag CVB0A0U = (v4i32 (XVCVDPUXWS B0A0)); 2396 2397 // For big endian, we merge hi doublewords of (A, C) and (B, D), convert 2398 // then merge. 2399 dag AC = (v2f64 (XXPERMDI (SUBREG_TO_REG (i64 1), f64:$A, sub_64), 2400 (SUBREG_TO_REG (i64 1), f64:$C, sub_64), 0)); 2401 dag BD = (v2f64 (XXPERMDI (SUBREG_TO_REG (i64 1), f64:$B, sub_64), 2402 (SUBREG_TO_REG (i64 1), f64:$D, sub_64), 0)); 2403 dag CVACS = (v4i32 (XVCVDPSXWS AC)); 2404 dag CVBDS = (v4i32 (XVCVDPSXWS BD)); 2405 dag CVACU = (v4i32 (XVCVDPUXWS AC)); 2406 dag CVBDU = (v4i32 (XVCVDPUXWS BD)); 2407 2408 // For little endian, we merge hi doublewords of (D, B) and (C, A), convert 2409 // then merge. 2410 dag DB = (v2f64 (XXPERMDI (SUBREG_TO_REG (i64 1), f64:$D, sub_64), 2411 (SUBREG_TO_REG (i64 1), f64:$B, sub_64), 0)); 2412 dag CA = (v2f64 (XXPERMDI (SUBREG_TO_REG (i64 1), f64:$C, sub_64), 2413 (SUBREG_TO_REG (i64 1), f64:$A, sub_64), 0)); 2414 dag CVDBS = (v4i32 (XVCVDPSXWS DB)); 2415 dag CVCAS = (v4i32 (XVCVDPSXWS CA)); 2416 dag CVDBU = (v4i32 (XVCVDPUXWS DB)); 2417 dag CVCAU = (v4i32 (XVCVDPUXWS CA)); 2418} 2419 2420//---------------------------- Anonymous Patterns ----------------------------// 2421// Predicate combinations are kept in roughly chronological order in terms of 2422// instruction availability in the architecture. For example, VSX came in with 2423// ISA 2.06 (Power7). There have since been additions in ISA 2.07 (Power8) and 2424// ISA 3.0 (Power9). However, the granularity of features on later subtargets 2425// is finer for various reasons. For example, we have Power8Vector, 2426// Power8Altivec, DirectMove that all came in with ISA 2.07. The situation is 2427// similar with ISA 3.0 with Power9Vector, Power9Altivec, IsISA3_0. Then there 2428// are orthogonal predicates such as endianness for which the order was 2429// arbitrarily chosen to be Big, Little. 2430// 2431// Predicate combinations available: 2432// [HasVSX, IsLittleEndian, HasP8Altivec] Altivec patterns using VSX instr. 2433// [HasVSX, IsBigEndian, HasP8Altivec] Altivec patterns using VSX instr. 2434// [HasVSX] 2435// [HasVSX, IsBigEndian] 2436// [HasVSX, IsLittleEndian] 2437// [HasVSX, NoP9Vector] 2438// [HasVSX, NoP9Vector, IsLittleEndian] 2439// [HasVSX, HasOnlySwappingMemOps] 2440// [HasVSX, HasOnlySwappingMemOps, IsBigEndian] 2441// [HasVSX, HasP8Vector] 2442// [HasVSX, HasP8Vector, IsBigEndian] 2443// [HasVSX, HasP8Vector, IsBigEndian, IsPPC64] 2444// [HasVSX, HasP8Vector, IsLittleEndian] 2445// [HasVSX, HasP8Vector, NoP9Vector, IsBigEndian, IsPPC64] 2446// [HasVSX, HasP8Vector, NoP9Vector, IsLittleEndian] 2447// [HasVSX, HasDirectMove] 2448// [HasVSX, HasDirectMove, IsBigEndian] 2449// [HasVSX, HasDirectMove, IsLittleEndian] 2450// [HasVSX, HasDirectMove, NoP9Altivec, IsBigEndian, IsPPC64] 2451// [HasVSX, HasDirectMove, NoP9Vector, IsBigEndian, IsPPC64] 2452// [HasVSX, HasDirectMove, NoP9Altivec, IsLittleEndian] 2453// [HasVSX, HasDirectMove, NoP9Vector, IsLittleEndian] 2454// [HasVSX, HasP9Vector] 2455// [HasVSX, HasP9Vector, NoP10Vector] 2456// [HasVSX, HasP9Vector, IsBigEndian] 2457// [HasVSX, HasP9Vector, IsBigEndian, IsPPC64] 2458// [HasVSX, HasP9Vector, IsLittleEndian] 2459// [HasVSX, HasP9Altivec] 2460// [HasVSX, HasP9Altivec, IsBigEndian, IsPPC64] 2461// [HasVSX, HasP9Altivec, IsLittleEndian] 2462// [HasVSX, IsISA3_0, HasDirectMove, IsBigEndian, IsPPC64] 2463// [HasVSX, IsISA3_0, HasDirectMove, IsLittleEndian] 2464 2465// These Altivec patterns are here because we need a VSX instruction to match 2466// the intrinsic (but only for little endian system). 2467let Predicates = [HasVSX, IsLittleEndian, HasP8Altivec] in 2468 def : Pat<(v16i8 (int_ppc_altivec_crypto_vpermxor v16i8:$a, 2469 v16i8:$b, v16i8:$c)), 2470 (v16i8 (VPERMXOR $a, $b, (XXLNOR (COPY_TO_REGCLASS $c, VSRC), 2471 (COPY_TO_REGCLASS $c, VSRC))))>; 2472let Predicates = [HasVSX, IsBigEndian, HasP8Altivec] in 2473 def : Pat<(v16i8 (int_ppc_altivec_crypto_vpermxor v16i8:$a, 2474 v16i8:$b, v16i8:$c)), 2475 (v16i8 (VPERMXOR $a, $b, $c))>; 2476 2477let AddedComplexity = 400 in { 2478// Valid for any VSX subtarget, regardless of endianness. 2479let Predicates = [HasVSX] in { 2480def : Pat<(v4i32 (vnot v4i32:$A)), 2481 (v4i32 (XXLNOR $A, $A))>; 2482def : Pat<(v4i32 (or (and (vnot v4i32:$C), v4i32:$A), 2483 (and v4i32:$B, v4i32:$C))), 2484 (v4i32 (XXSEL $A, $B, $C))>; 2485 2486// Additional fnmsub pattern for PPC specific ISD opcode 2487def : Pat<(PPCfnmsub f64:$A, f64:$B, f64:$C), 2488 (XSNMSUBADP $C, $A, $B)>; 2489def : Pat<(fneg (PPCfnmsub f64:$A, f64:$B, f64:$C)), 2490 (XSMSUBADP $C, $A, $B)>; 2491def : Pat<(PPCfnmsub f64:$A, f64:$B, (fneg f64:$C)), 2492 (XSNMADDADP $C, $A, $B)>; 2493 2494def : Pat<(PPCfnmsub v2f64:$A, v2f64:$B, v2f64:$C), 2495 (XVNMSUBADP $C, $A, $B)>; 2496def : Pat<(fneg (PPCfnmsub v2f64:$A, v2f64:$B, v2f64:$C)), 2497 (XVMSUBADP $C, $A, $B)>; 2498def : Pat<(PPCfnmsub v2f64:$A, v2f64:$B, (fneg v2f64:$C)), 2499 (XVNMADDADP $C, $A, $B)>; 2500 2501def : Pat<(PPCfnmsub v4f32:$A, v4f32:$B, v4f32:$C), 2502 (XVNMSUBASP $C, $A, $B)>; 2503def : Pat<(fneg (PPCfnmsub v4f32:$A, v4f32:$B, v4f32:$C)), 2504 (XVMSUBASP $C, $A, $B)>; 2505def : Pat<(PPCfnmsub v4f32:$A, v4f32:$B, (fneg v4f32:$C)), 2506 (XVNMADDASP $C, $A, $B)>; 2507 2508def : Pat<(PPCfsqrt f64:$frA), (XSSQRTDP $frA)>; 2509def : Pat<(PPCfsqrt v2f64:$frA), (XVSQRTDP $frA)>; 2510def : Pat<(PPCfsqrt v4f32:$frA), (XVSQRTSP $frA)>; 2511 2512def : Pat<(v2f64 (bitconvert v4f32:$A)), 2513 (COPY_TO_REGCLASS $A, VSRC)>; 2514def : Pat<(v2f64 (bitconvert v4i32:$A)), 2515 (COPY_TO_REGCLASS $A, VSRC)>; 2516def : Pat<(v2f64 (bitconvert v8i16:$A)), 2517 (COPY_TO_REGCLASS $A, VSRC)>; 2518def : Pat<(v2f64 (bitconvert v16i8:$A)), 2519 (COPY_TO_REGCLASS $A, VSRC)>; 2520 2521def : Pat<(v4f32 (bitconvert v2f64:$A)), 2522 (COPY_TO_REGCLASS $A, VRRC)>; 2523def : Pat<(v4i32 (bitconvert v2f64:$A)), 2524 (COPY_TO_REGCLASS $A, VRRC)>; 2525def : Pat<(v8i16 (bitconvert v2f64:$A)), 2526 (COPY_TO_REGCLASS $A, VRRC)>; 2527def : Pat<(v16i8 (bitconvert v2f64:$A)), 2528 (COPY_TO_REGCLASS $A, VRRC)>; 2529 2530def : Pat<(v2i64 (bitconvert v4f32:$A)), 2531 (COPY_TO_REGCLASS $A, VSRC)>; 2532def : Pat<(v2i64 (bitconvert v4i32:$A)), 2533 (COPY_TO_REGCLASS $A, VSRC)>; 2534def : Pat<(v2i64 (bitconvert v8i16:$A)), 2535 (COPY_TO_REGCLASS $A, VSRC)>; 2536def : Pat<(v2i64 (bitconvert v16i8:$A)), 2537 (COPY_TO_REGCLASS $A, VSRC)>; 2538 2539def : Pat<(v4f32 (bitconvert v2i64:$A)), 2540 (COPY_TO_REGCLASS $A, VRRC)>; 2541def : Pat<(v4i32 (bitconvert v2i64:$A)), 2542 (COPY_TO_REGCLASS $A, VRRC)>; 2543def : Pat<(v8i16 (bitconvert v2i64:$A)), 2544 (COPY_TO_REGCLASS $A, VRRC)>; 2545def : Pat<(v16i8 (bitconvert v2i64:$A)), 2546 (COPY_TO_REGCLASS $A, VRRC)>; 2547 2548def : Pat<(v2f64 (bitconvert v2i64:$A)), 2549 (COPY_TO_REGCLASS $A, VRRC)>; 2550def : Pat<(v2i64 (bitconvert v2f64:$A)), 2551 (COPY_TO_REGCLASS $A, VRRC)>; 2552 2553def : Pat<(v2f64 (bitconvert v1i128:$A)), 2554 (COPY_TO_REGCLASS $A, VRRC)>; 2555def : Pat<(v1i128 (bitconvert v2f64:$A)), 2556 (COPY_TO_REGCLASS $A, VRRC)>; 2557 2558def : Pat<(v2i64 (bitconvert f128:$A)), 2559 (COPY_TO_REGCLASS $A, VRRC)>; 2560def : Pat<(v4i32 (bitconvert f128:$A)), 2561 (COPY_TO_REGCLASS $A, VRRC)>; 2562def : Pat<(v8i16 (bitconvert f128:$A)), 2563 (COPY_TO_REGCLASS $A, VRRC)>; 2564def : Pat<(v16i8 (bitconvert f128:$A)), 2565 (COPY_TO_REGCLASS $A, VRRC)>; 2566 2567def : Pat<(v2f64 (PPCsvec2fp v4i32:$C, 0)), 2568 (v2f64 (XVCVSXWDP (v2i64 (XXMRGHW $C, $C))))>; 2569def : Pat<(v2f64 (PPCsvec2fp v4i32:$C, 1)), 2570 (v2f64 (XVCVSXWDP (v2i64 (XXMRGLW $C, $C))))>; 2571 2572def : Pat<(v2f64 (PPCuvec2fp v4i32:$C, 0)), 2573 (v2f64 (XVCVUXWDP (v2i64 (XXMRGHW $C, $C))))>; 2574def : Pat<(v2f64 (PPCuvec2fp v4i32:$C, 1)), 2575 (v2f64 (XVCVUXWDP (v2i64 (XXMRGLW $C, $C))))>; 2576 2577def : Pat<(v2f64 (PPCfpexth v4f32:$C, 0)), (XVCVSPDP (XXMRGHW $C, $C))>; 2578def : Pat<(v2f64 (PPCfpexth v4f32:$C, 1)), (XVCVSPDP (XXMRGLW $C, $C))>; 2579 2580// Permutes. 2581def : Pat<(v2f64 (PPCxxswapd v2f64:$src)), (XXPERMDI $src, $src, 2)>; 2582def : Pat<(v2i64 (PPCxxswapd v2i64:$src)), (XXPERMDI $src, $src, 2)>; 2583def : Pat<(v4f32 (PPCxxswapd v4f32:$src)), (XXPERMDI $src, $src, 2)>; 2584def : Pat<(v4i32 (PPCxxswapd v4i32:$src)), (XXPERMDI $src, $src, 2)>; 2585def : Pat<(v2f64 (PPCswapNoChain v2f64:$src)), (XXPERMDI $src, $src, 2)>; 2586 2587// PPCvecshl XT, XA, XA, 2 can be selected to both XXSLDWI XT,XA,XA,2 and 2588// XXSWAPD XT,XA (i.e. XXPERMDI XT,XA,XA,2), the later one is more profitable. 2589def : Pat<(v4i32 (PPCvecshl v4i32:$src, v4i32:$src, 2)), 2590 (XXPERMDI $src, $src, 2)>; 2591 2592// Selects. 2593def : Pat<(v2f64 (selectcc i1:$lhs, i1:$rhs, v2f64:$tval, v2f64:$fval, SETLT)), 2594 (SELECT_VSRC (CRANDC $lhs, $rhs), $tval, $fval)>; 2595def : Pat<(v2f64 (selectcc i1:$lhs, i1:$rhs, v2f64:$tval, v2f64:$fval, SETULT)), 2596 (SELECT_VSRC (CRANDC $rhs, $lhs), $tval, $fval)>; 2597def : Pat<(v2f64 (selectcc i1:$lhs, i1:$rhs, v2f64:$tval, v2f64:$fval, SETLE)), 2598 (SELECT_VSRC (CRORC $lhs, $rhs), $tval, $fval)>; 2599def : Pat<(v2f64 (selectcc i1:$lhs, i1:$rhs, v2f64:$tval, v2f64:$fval, SETULE)), 2600 (SELECT_VSRC (CRORC $rhs, $lhs), $tval, $fval)>; 2601def : Pat<(v2f64 (selectcc i1:$lhs, i1:$rhs, v2f64:$tval, v2f64:$fval, SETEQ)), 2602 (SELECT_VSRC (CREQV $lhs, $rhs), $tval, $fval)>; 2603def : Pat<(v2f64 (selectcc i1:$lhs, i1:$rhs, v2f64:$tval, v2f64:$fval, SETGE)), 2604 (SELECT_VSRC (CRORC $rhs, $lhs), $tval, $fval)>; 2605def : Pat<(v2f64 (selectcc i1:$lhs, i1:$rhs, v2f64:$tval, v2f64:$fval, SETUGE)), 2606 (SELECT_VSRC (CRORC $lhs, $rhs), $tval, $fval)>; 2607def : Pat<(v2f64 (selectcc i1:$lhs, i1:$rhs, v2f64:$tval, v2f64:$fval, SETGT)), 2608 (SELECT_VSRC (CRANDC $rhs, $lhs), $tval, $fval)>; 2609def : Pat<(v2f64 (selectcc i1:$lhs, i1:$rhs, v2f64:$tval, v2f64:$fval, SETUGT)), 2610 (SELECT_VSRC (CRANDC $lhs, $rhs), $tval, $fval)>; 2611def : Pat<(v2f64 (selectcc i1:$lhs, i1:$rhs, v2f64:$tval, v2f64:$fval, SETNE)), 2612 (SELECT_VSRC (CRXOR $lhs, $rhs), $tval, $fval)>; 2613 2614def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETLT)), 2615 (SELECT_VSFRC (CRANDC $lhs, $rhs), $tval, $fval)>; 2616def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETULT)), 2617 (SELECT_VSFRC (CRANDC $rhs, $lhs), $tval, $fval)>; 2618def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETLE)), 2619 (SELECT_VSFRC (CRORC $lhs, $rhs), $tval, $fval)>; 2620def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETULE)), 2621 (SELECT_VSFRC (CRORC $rhs, $lhs), $tval, $fval)>; 2622def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETEQ)), 2623 (SELECT_VSFRC (CREQV $lhs, $rhs), $tval, $fval)>; 2624def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETGE)), 2625 (SELECT_VSFRC (CRORC $rhs, $lhs), $tval, $fval)>; 2626def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETUGE)), 2627 (SELECT_VSFRC (CRORC $lhs, $rhs), $tval, $fval)>; 2628def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETGT)), 2629 (SELECT_VSFRC (CRANDC $rhs, $lhs), $tval, $fval)>; 2630def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETUGT)), 2631 (SELECT_VSFRC (CRANDC $lhs, $rhs), $tval, $fval)>; 2632def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETNE)), 2633 (SELECT_VSFRC (CRXOR $lhs, $rhs), $tval, $fval)>; 2634 2635// Divides. 2636def : Pat<(int_ppc_vsx_xvdivsp v4f32:$A, v4f32:$B), 2637 (XVDIVSP $A, $B)>; 2638def : Pat<(int_ppc_vsx_xvdivdp v2f64:$A, v2f64:$B), 2639 (XVDIVDP $A, $B)>; 2640 2641// Vector test for software divide and sqrt. 2642def : Pat<(i32 (int_ppc_vsx_xvtdivdp v2f64:$A, v2f64:$B)), 2643 (COPY_TO_REGCLASS (XVTDIVDP $A, $B), GPRC)>; 2644def : Pat<(i32 (int_ppc_vsx_xvtdivsp v4f32:$A, v4f32:$B)), 2645 (COPY_TO_REGCLASS (XVTDIVSP $A, $B), GPRC)>; 2646def : Pat<(i32 (int_ppc_vsx_xvtsqrtdp v2f64:$A)), 2647 (COPY_TO_REGCLASS (XVTSQRTDP $A), GPRC)>; 2648def : Pat<(i32 (int_ppc_vsx_xvtsqrtsp v4f32:$A)), 2649 (COPY_TO_REGCLASS (XVTSQRTSP $A), GPRC)>; 2650 2651// Reciprocal estimate 2652def : Pat<(int_ppc_vsx_xvresp v4f32:$A), 2653 (XVRESP $A)>; 2654def : Pat<(int_ppc_vsx_xvredp v2f64:$A), 2655 (XVREDP $A)>; 2656 2657// Recip. square root estimate 2658def : Pat<(int_ppc_vsx_xvrsqrtesp v4f32:$A), 2659 (XVRSQRTESP $A)>; 2660def : Pat<(int_ppc_vsx_xvrsqrtedp v2f64:$A), 2661 (XVRSQRTEDP $A)>; 2662 2663// Vector selection 2664def : Pat<(v16i8 (vselect v16i8:$vA, v16i8:$vB, v16i8:$vC)), 2665 (COPY_TO_REGCLASS 2666 (XXSEL (COPY_TO_REGCLASS $vC, VSRC), 2667 (COPY_TO_REGCLASS $vB, VSRC), 2668 (COPY_TO_REGCLASS $vA, VSRC)), VRRC)>; 2669def : Pat<(v8i16 (vselect v8i16:$vA, v8i16:$vB, v8i16:$vC)), 2670 (COPY_TO_REGCLASS 2671 (XXSEL (COPY_TO_REGCLASS $vC, VSRC), 2672 (COPY_TO_REGCLASS $vB, VSRC), 2673 (COPY_TO_REGCLASS $vA, VSRC)), VRRC)>; 2674def : Pat<(vselect v4i32:$vA, v4i32:$vB, v4i32:$vC), 2675 (XXSEL $vC, $vB, $vA)>; 2676def : Pat<(vselect v2i64:$vA, v2i64:$vB, v2i64:$vC), 2677 (XXSEL $vC, $vB, $vA)>; 2678def : Pat<(vselect v4i32:$vA, v4f32:$vB, v4f32:$vC), 2679 (XXSEL $vC, $vB, $vA)>; 2680def : Pat<(vselect v2i64:$vA, v2f64:$vB, v2f64:$vC), 2681 (XXSEL $vC, $vB, $vA)>; 2682 2683def : Pat<(v4f32 (any_fmaxnum v4f32:$src1, v4f32:$src2)), 2684 (v4f32 (XVMAXSP $src1, $src2))>; 2685def : Pat<(v4f32 (any_fminnum v4f32:$src1, v4f32:$src2)), 2686 (v4f32 (XVMINSP $src1, $src2))>; 2687def : Pat<(v2f64 (any_fmaxnum v2f64:$src1, v2f64:$src2)), 2688 (v2f64 (XVMAXDP $src1, $src2))>; 2689def : Pat<(v2f64 (any_fminnum v2f64:$src1, v2f64:$src2)), 2690 (v2f64 (XVMINDP $src1, $src2))>; 2691 2692// f32 abs 2693def : Pat<(f32 (fabs f32:$S)), 2694 (f32 (COPY_TO_REGCLASS (XSABSDP 2695 (COPY_TO_REGCLASS $S, VSFRC)), VSSRC))>; 2696 2697// f32 nabs 2698def : Pat<(f32 (fneg (fabs f32:$S))), 2699 (f32 (COPY_TO_REGCLASS (XSNABSDP 2700 (COPY_TO_REGCLASS $S, VSFRC)), VSSRC))>; 2701 2702// f32 Min. 2703def : Pat<(f32 (fminnum_ieee f32:$A, f32:$B)), 2704 (f32 FpMinMax.F32Min)>; 2705def : Pat<(f32 (fminnum_ieee (fcanonicalize f32:$A), f32:$B)), 2706 (f32 FpMinMax.F32Min)>; 2707def : Pat<(f32 (fminnum_ieee f32:$A, (fcanonicalize f32:$B))), 2708 (f32 FpMinMax.F32Min)>; 2709def : Pat<(f32 (fminnum_ieee (fcanonicalize f32:$A), (fcanonicalize f32:$B))), 2710 (f32 FpMinMax.F32Min)>; 2711// F32 Max. 2712def : Pat<(f32 (fmaxnum_ieee f32:$A, f32:$B)), 2713 (f32 FpMinMax.F32Max)>; 2714def : Pat<(f32 (fmaxnum_ieee (fcanonicalize f32:$A), f32:$B)), 2715 (f32 FpMinMax.F32Max)>; 2716def : Pat<(f32 (fmaxnum_ieee f32:$A, (fcanonicalize f32:$B))), 2717 (f32 FpMinMax.F32Max)>; 2718def : Pat<(f32 (fmaxnum_ieee (fcanonicalize f32:$A), (fcanonicalize f32:$B))), 2719 (f32 FpMinMax.F32Max)>; 2720 2721// f64 Min. 2722def : Pat<(f64 (fminnum_ieee f64:$A, f64:$B)), 2723 (f64 (XSMINDP $A, $B))>; 2724def : Pat<(f64 (fminnum_ieee (fcanonicalize f64:$A), f64:$B)), 2725 (f64 (XSMINDP $A, $B))>; 2726def : Pat<(f64 (fminnum_ieee f64:$A, (fcanonicalize f64:$B))), 2727 (f64 (XSMINDP $A, $B))>; 2728def : Pat<(f64 (fminnum_ieee (fcanonicalize f64:$A), (fcanonicalize f64:$B))), 2729 (f64 (XSMINDP $A, $B))>; 2730// f64 Max. 2731def : Pat<(f64 (fmaxnum_ieee f64:$A, f64:$B)), 2732 (f64 (XSMAXDP $A, $B))>; 2733def : Pat<(f64 (fmaxnum_ieee (fcanonicalize f64:$A), f64:$B)), 2734 (f64 (XSMAXDP $A, $B))>; 2735def : Pat<(f64 (fmaxnum_ieee f64:$A, (fcanonicalize f64:$B))), 2736 (f64 (XSMAXDP $A, $B))>; 2737def : Pat<(f64 (fmaxnum_ieee (fcanonicalize f64:$A), (fcanonicalize f64:$B))), 2738 (f64 (XSMAXDP $A, $B))>; 2739 2740def : Pat<(int_ppc_vsx_stxvd2x_be v2f64:$rS, xoaddr:$dst), 2741 (STXVD2X $rS, xoaddr:$dst)>; 2742def : Pat<(int_ppc_vsx_stxvw4x_be v4i32:$rS, xoaddr:$dst), 2743 (STXVW4X $rS, xoaddr:$dst)>; 2744def : Pat<(v4i32 (int_ppc_vsx_lxvw4x_be xoaddr:$src)), (LXVW4X xoaddr:$src)>; 2745def : Pat<(v2f64 (int_ppc_vsx_lxvd2x_be xoaddr:$src)), (LXVD2X xoaddr:$src)>; 2746 2747// Rounding for single precision. 2748def : Pat<(f32 (any_fround f32:$S)), 2749 (f32 (COPY_TO_REGCLASS (XSRDPI 2750 (COPY_TO_REGCLASS $S, VSFRC)), VSSRC))>; 2751def : Pat<(f32 (fnearbyint f32:$S)), 2752 (f32 (COPY_TO_REGCLASS (XSRDPIC 2753 (COPY_TO_REGCLASS $S, VSFRC)), VSSRC))>; 2754def : Pat<(f32 (any_ffloor f32:$S)), 2755 (f32 (COPY_TO_REGCLASS (XSRDPIM 2756 (COPY_TO_REGCLASS $S, VSFRC)), VSSRC))>; 2757def : Pat<(f32 (any_fceil f32:$S)), 2758 (f32 (COPY_TO_REGCLASS (XSRDPIP 2759 (COPY_TO_REGCLASS $S, VSFRC)), VSSRC))>; 2760def : Pat<(f32 (any_ftrunc f32:$S)), 2761 (f32 (COPY_TO_REGCLASS (XSRDPIZ 2762 (COPY_TO_REGCLASS $S, VSFRC)), VSSRC))>; 2763def : Pat<(f32 (any_frint f32:$S)), 2764 (f32 (COPY_TO_REGCLASS (XSRDPIC 2765 (COPY_TO_REGCLASS $S, VSFRC)), VSSRC))>; 2766def : Pat<(v4f32 (any_frint v4f32:$S)), (v4f32 (XVRSPIC $S))>; 2767 2768// Rounding for double precision. 2769def : Pat<(f64 (any_frint f64:$S)), (f64 (XSRDPIC $S))>; 2770def : Pat<(v2f64 (any_frint v2f64:$S)), (v2f64 (XVRDPIC $S))>; 2771 2772// Materialize a zero-vector of long long 2773def : Pat<(v2i64 immAllZerosV), 2774 (v2i64 (XXLXORz))>; 2775 2776// Build vectors of floating point converted to i32. 2777def : Pat<(v4i32 (build_vector DblToInt.A, DblToInt.A, 2778 DblToInt.A, DblToInt.A)), 2779 (v4i32 (XXSPLTW (SUBREG_TO_REG (i64 1), (XSCVDPSXWS $A), sub_64), 1))>; 2780def : Pat<(v4i32 (build_vector DblToUInt.A, DblToUInt.A, 2781 DblToUInt.A, DblToUInt.A)), 2782 (v4i32 (XXSPLTW (SUBREG_TO_REG (i64 1), (XSCVDPUXWS $A), sub_64), 1))>; 2783def : Pat<(v2i64 (build_vector DblToLong.A, DblToLong.A)), 2784 (v2i64 (XXPERMDI (SUBREG_TO_REG (i64 1), (XSCVDPSXDS $A), sub_64), 2785 (SUBREG_TO_REG (i64 1), (XSCVDPSXDS $A), sub_64), 0))>; 2786def : Pat<(v2i64 (build_vector DblToULong.A, DblToULong.A)), 2787 (v2i64 (XXPERMDI (SUBREG_TO_REG (i64 1), (XSCVDPUXDS $A), sub_64), 2788 (SUBREG_TO_REG (i64 1), (XSCVDPUXDS $A), sub_64), 0))>; 2789defm : ScalToVecWPermute< 2790 v4i32, FltToIntLoad.A, 2791 (XXSPLTW (SUBREG_TO_REG (i64 1), (XSCVDPSXWSs (XFLOADf32 xoaddr:$A)), sub_64), 1), 2792 (SUBREG_TO_REG (i64 1), (XSCVDPSXWSs (XFLOADf32 xoaddr:$A)), sub_64)>; 2793defm : ScalToVecWPermute< 2794 v4i32, FltToUIntLoad.A, 2795 (XXSPLTW (SUBREG_TO_REG (i64 1), (XSCVDPUXWSs (XFLOADf32 xoaddr:$A)), sub_64), 1), 2796 (SUBREG_TO_REG (i64 1), (XSCVDPUXWSs (XFLOADf32 xoaddr:$A)), sub_64)>; 2797def : Pat<(v4f32 (build_vector f32:$A, f32:$A, f32:$A, f32:$A)), 2798 (v4f32 (XXSPLTW (v4f32 (XSCVDPSPN $A)), 0))>; 2799def : Pat<(v2f64 (PPCldsplat xoaddr:$A)), 2800 (v2f64 (LXVDSX xoaddr:$A))>; 2801def : Pat<(v2i64 (PPCldsplat xoaddr:$A)), 2802 (v2i64 (LXVDSX xoaddr:$A))>; 2803 2804// Build vectors of floating point converted to i64. 2805def : Pat<(v2i64 (build_vector FltToLong.A, FltToLong.A)), 2806 (v2i64 (XXPERMDIs 2807 (COPY_TO_REGCLASS (XSCVDPSXDSs $A), VSFRC), 0))>; 2808def : Pat<(v2i64 (build_vector FltToULong.A, FltToULong.A)), 2809 (v2i64 (XXPERMDIs 2810 (COPY_TO_REGCLASS (XSCVDPUXDSs $A), VSFRC), 0))>; 2811defm : ScalToVecWPermute< 2812 v2i64, DblToLongLoad.A, 2813 (XVCVDPSXDS (LXVDSX xoaddr:$A)), (XVCVDPSXDS (LXVDSX xoaddr:$A))>; 2814defm : ScalToVecWPermute< 2815 v2i64, DblToULongLoad.A, 2816 (XVCVDPUXDS (LXVDSX xoaddr:$A)), (XVCVDPUXDS (LXVDSX xoaddr:$A))>; 2817} // HasVSX 2818 2819// Any big endian VSX subtarget. 2820let Predicates = [HasVSX, IsBigEndian] in { 2821def : Pat<(v2f64 (scalar_to_vector f64:$A)), 2822 (v2f64 (SUBREG_TO_REG (i64 1), $A, sub_64))>; 2823 2824def : Pat<(f64 (extractelt v2f64:$S, 0)), 2825 (f64 (EXTRACT_SUBREG $S, sub_64))>; 2826def : Pat<(f64 (extractelt v2f64:$S, 1)), 2827 (f64 (EXTRACT_SUBREG (XXPERMDI $S, $S, 2), sub_64))>; 2828def : Pat<(f64 (PPCfcfid (PPCmtvsra (i64 (vector_extract v2i64:$S, 0))))), 2829 (f64 (XSCVSXDDP (COPY_TO_REGCLASS $S, VSFRC)))>; 2830def : Pat<(f64 (PPCfcfid (PPCmtvsra (i64 (vector_extract v2i64:$S, 1))))), 2831 (f64 (XSCVSXDDP (COPY_TO_REGCLASS (XXPERMDI $S, $S, 2), VSFRC)))>; 2832def : Pat<(f64 (PPCfcfidu (PPCmtvsra (i64 (vector_extract v2i64:$S, 0))))), 2833 (f64 (XSCVUXDDP (COPY_TO_REGCLASS $S, VSFRC)))>; 2834def : Pat<(f64 (PPCfcfidu (PPCmtvsra (i64 (vector_extract v2i64:$S, 1))))), 2835 (f64 (XSCVUXDDP (COPY_TO_REGCLASS (XXPERMDI $S, $S, 2), VSFRC)))>; 2836 2837def : Pat<(f64 (vector_extract v2f64:$S, i64:$Idx)), 2838 (f64 VectorExtractions.BE_VARIABLE_DOUBLE)>; 2839 2840def : Pat<(v2f64 (build_vector f64:$A, f64:$B)), 2841 (v2f64 (XXPERMDI 2842 (SUBREG_TO_REG (i64 1), $A, sub_64), 2843 (SUBREG_TO_REG (i64 1), $B, sub_64), 0))>; 2844// Using VMRGEW to assemble the final vector would be a lower latency 2845// solution. However, we choose to go with the slightly higher latency 2846// XXPERMDI for 2 reasons: 2847// 1. This is likely to occur in unrolled loops where regpressure is high, 2848// so we want to use the latter as it has access to all 64 VSX registers. 2849// 2. Using Altivec instructions in this sequence would likely cause the 2850// allocation of Altivec registers even for the loads which in turn would 2851// force the use of LXSIWZX for the loads, adding a cycle of latency to 2852// each of the loads which would otherwise be able to use LFIWZX. 2853def : Pat<(v4f32 (build_vector LoadFP.A, LoadFP.B, LoadFP.C, LoadFP.D)), 2854 (v4f32 (XXPERMDI (XXMRGHW MrgFP.LD32A, MrgFP.LD32B), 2855 (XXMRGHW MrgFP.LD32C, MrgFP.LD32D), 3))>; 2856def : Pat<(v4f32 (build_vector f32:$A, f32:$B, f32:$C, f32:$D)), 2857 (VMRGEW MrgFP.AC, MrgFP.BD)>; 2858def : Pat<(v4f32 (build_vector DblToFlt.A0, DblToFlt.A1, 2859 DblToFlt.B0, DblToFlt.B1)), 2860 (v4f32 (VMRGEW MrgFP.ABhToFlt, MrgFP.ABlToFlt))>; 2861 2862// Convert 4 doubles to a vector of ints. 2863def : Pat<(v4i32 (build_vector DblToInt.A, DblToInt.B, 2864 DblToInt.C, DblToInt.D)), 2865 (v4i32 (VMRGEW MrgWords.CVACS, MrgWords.CVBDS))>; 2866def : Pat<(v4i32 (build_vector DblToUInt.A, DblToUInt.B, 2867 DblToUInt.C, DblToUInt.D)), 2868 (v4i32 (VMRGEW MrgWords.CVACU, MrgWords.CVBDU))>; 2869def : Pat<(v4i32 (build_vector ExtDbl.A0S, ExtDbl.A1S, 2870 ExtDbl.B0S, ExtDbl.B1S)), 2871 (v4i32 (VMRGEW MrgWords.CVA0B0S, MrgWords.CVA1B1S))>; 2872def : Pat<(v4i32 (build_vector ExtDbl.A0U, ExtDbl.A1U, 2873 ExtDbl.B0U, ExtDbl.B1U)), 2874 (v4i32 (VMRGEW MrgWords.CVA0B0U, MrgWords.CVA1B1U))>; 2875def : Pat<(v2f64 (build_vector (f64 (fpextend (extractelt v4f32:$A, 0))), 2876 (f64 (fpextend (extractelt v4f32:$A, 1))))), 2877 (v2f64 (XVCVSPDP (XXMRGHW $A, $A)))>; 2878def : Pat<(v2f64 (build_vector (f64 (fpextend (extractelt v4f32:$A, 1))), 2879 (f64 (fpextend (extractelt v4f32:$A, 0))))), 2880 (v2f64 (XXPERMDI (XVCVSPDP (XXMRGHW $A, $A)), 2881 (XVCVSPDP (XXMRGHW $A, $A)), 2))>; 2882def : Pat<(v2f64 (build_vector (f64 (fpextend (extractelt v4f32:$A, 0))), 2883 (f64 (fpextend (extractelt v4f32:$A, 2))))), 2884 (v2f64 (XVCVSPDP $A))>; 2885def : Pat<(v2f64 (build_vector (f64 (fpextend (extractelt v4f32:$A, 1))), 2886 (f64 (fpextend (extractelt v4f32:$A, 3))))), 2887 (v2f64 (XVCVSPDP (XXSLDWI $A, $A, 3)))>; 2888def : Pat<(v2f64 (build_vector (f64 (fpextend (extractelt v4f32:$A, 2))), 2889 (f64 (fpextend (extractelt v4f32:$A, 3))))), 2890 (v2f64 (XVCVSPDP (XXMRGLW $A, $A)))>; 2891def : Pat<(v2f64 (build_vector (f64 (fpextend (extractelt v4f32:$A, 3))), 2892 (f64 (fpextend (extractelt v4f32:$A, 2))))), 2893 (v2f64 (XXPERMDI (XVCVSPDP (XXMRGLW $A, $A)), 2894 (XVCVSPDP (XXMRGLW $A, $A)), 2))>; 2895def : Pat<(v2f64 (build_vector (f64 (fpextend (extractelt v4f32:$A, 0))), 2896 (f64 (fpextend (extractelt v4f32:$B, 0))))), 2897 (v2f64 (XVCVSPDP (XXPERMDI $A, $B, 0)))>; 2898def : Pat<(v2f64 (build_vector (f64 (fpextend (extractelt v4f32:$A, 3))), 2899 (f64 (fpextend (extractelt v4f32:$B, 3))))), 2900 (v2f64 (XVCVSPDP (XXSLDWI (XXPERMDI $A, $B, 3), 2901 (XXPERMDI $A, $B, 3), 1)))>; 2902def : Pat<WToDPExtractConv.BV02S, 2903 (v2f64 (XVCVSXWDP $A))>; 2904def : Pat<WToDPExtractConv.BV13S, 2905 (v2f64 (XVCVSXWDP (XXSLDWI $A, $A, 3)))>; 2906def : Pat<WToDPExtractConv.BV02U, 2907 (v2f64 (XVCVUXWDP $A))>; 2908def : Pat<WToDPExtractConv.BV13U, 2909 (v2f64 (XVCVUXWDP (XXSLDWI $A, $A, 3)))>; 2910} // HasVSX, IsBigEndian 2911 2912// Any little endian VSX subtarget. 2913let Predicates = [HasVSX, IsLittleEndian] in { 2914defm : ScalToVecWPermute<v2f64, (f64 f64:$A), 2915 (XXPERMDI (SUBREG_TO_REG (i64 1), $A, sub_64), 2916 (SUBREG_TO_REG (i64 1), $A, sub_64), 0), 2917 (SUBREG_TO_REG (i64 1), $A, sub_64)>; 2918 2919def : Pat<(f64 (extractelt v2f64:$S, 0)), 2920 (f64 (EXTRACT_SUBREG (XXPERMDI $S, $S, 2), sub_64))>; 2921def : Pat<(f64 (extractelt v2f64:$S, 1)), 2922 (f64 (EXTRACT_SUBREG $S, sub_64))>; 2923 2924def : Pat<(v2f64 (PPCld_vec_be xoaddr:$src)), (LXVD2X xoaddr:$src)>; 2925def : Pat<(PPCst_vec_be v2f64:$rS, xoaddr:$dst), (STXVD2X $rS, xoaddr:$dst)>; 2926def : Pat<(v4f32 (PPCld_vec_be xoaddr:$src)), (LXVW4X xoaddr:$src)>; 2927def : Pat<(PPCst_vec_be v4f32:$rS, xoaddr:$dst), (STXVW4X $rS, xoaddr:$dst)>; 2928def : Pat<(v2i64 (PPCld_vec_be xoaddr:$src)), (LXVD2X xoaddr:$src)>; 2929def : Pat<(PPCst_vec_be v2i64:$rS, xoaddr:$dst), (STXVD2X $rS, xoaddr:$dst)>; 2930def : Pat<(v4i32 (PPCld_vec_be xoaddr:$src)), (LXVW4X xoaddr:$src)>; 2931def : Pat<(PPCst_vec_be v4i32:$rS, xoaddr:$dst), (STXVW4X $rS, xoaddr:$dst)>; 2932def : Pat<(f64 (PPCfcfid (PPCmtvsra (i64 (vector_extract v2i64:$S, 0))))), 2933 (f64 (XSCVSXDDP (COPY_TO_REGCLASS (XXPERMDI $S, $S, 2), VSFRC)))>; 2934def : Pat<(f64 (PPCfcfid (PPCmtvsra (i64 (vector_extract v2i64:$S, 1))))), 2935 (f64 (XSCVSXDDP (COPY_TO_REGCLASS (f64 (COPY_TO_REGCLASS $S, VSRC)), VSFRC)))>; 2936def : Pat<(f64 (PPCfcfidu (PPCmtvsra (i64 (vector_extract v2i64:$S, 0))))), 2937 (f64 (XSCVUXDDP (COPY_TO_REGCLASS (XXPERMDI $S, $S, 2), VSFRC)))>; 2938def : Pat<(f64 (PPCfcfidu (PPCmtvsra (i64 (vector_extract v2i64:$S, 1))))), 2939 (f64 (XSCVUXDDP (COPY_TO_REGCLASS (f64 (COPY_TO_REGCLASS $S, VSRC)), VSFRC)))>; 2940 2941def : Pat<(f64 (vector_extract v2f64:$S, i64:$Idx)), 2942 (f64 VectorExtractions.LE_VARIABLE_DOUBLE)>; 2943 2944// Little endian, available on all targets with VSX 2945def : Pat<(v2f64 (build_vector f64:$A, f64:$B)), 2946 (v2f64 (XXPERMDI 2947 (SUBREG_TO_REG (i64 1), $B, sub_64), 2948 (SUBREG_TO_REG (i64 1), $A, sub_64), 0))>; 2949// Using VMRGEW to assemble the final vector would be a lower latency 2950// solution. However, we choose to go with the slightly higher latency 2951// XXPERMDI for 2 reasons: 2952// 1. This is likely to occur in unrolled loops where regpressure is high, 2953// so we want to use the latter as it has access to all 64 VSX registers. 2954// 2. Using Altivec instructions in this sequence would likely cause the 2955// allocation of Altivec registers even for the loads which in turn would 2956// force the use of LXSIWZX for the loads, adding a cycle of latency to 2957// each of the loads which would otherwise be able to use LFIWZX. 2958def : Pat<(v4f32 (build_vector LoadFP.A, LoadFP.B, LoadFP.C, LoadFP.D)), 2959 (v4f32 (XXPERMDI (XXMRGHW MrgFP.LD32D, MrgFP.LD32C), 2960 (XXMRGHW MrgFP.LD32B, MrgFP.LD32A), 3))>; 2961def : Pat<(v4f32 (build_vector f32:$D, f32:$C, f32:$B, f32:$A)), 2962 (VMRGEW MrgFP.AC, MrgFP.BD)>; 2963def : Pat<(v4f32 (build_vector DblToFlt.A0, DblToFlt.A1, 2964 DblToFlt.B0, DblToFlt.B1)), 2965 (v4f32 (VMRGEW MrgFP.BAhToFlt, MrgFP.BAlToFlt))>; 2966 2967// Convert 4 doubles to a vector of ints. 2968def : Pat<(v4i32 (build_vector DblToInt.A, DblToInt.B, 2969 DblToInt.C, DblToInt.D)), 2970 (v4i32 (VMRGEW MrgWords.CVDBS, MrgWords.CVCAS))>; 2971def : Pat<(v4i32 (build_vector DblToUInt.A, DblToUInt.B, 2972 DblToUInt.C, DblToUInt.D)), 2973 (v4i32 (VMRGEW MrgWords.CVDBU, MrgWords.CVCAU))>; 2974def : Pat<(v4i32 (build_vector ExtDbl.A0S, ExtDbl.A1S, 2975 ExtDbl.B0S, ExtDbl.B1S)), 2976 (v4i32 (VMRGEW MrgWords.CVB1A1S, MrgWords.CVB0A0S))>; 2977def : Pat<(v4i32 (build_vector ExtDbl.A0U, ExtDbl.A1U, 2978 ExtDbl.B0U, ExtDbl.B1U)), 2979 (v4i32 (VMRGEW MrgWords.CVB1A1U, MrgWords.CVB0A0U))>; 2980def : Pat<(v2f64 (build_vector (f64 (fpextend (extractelt v4f32:$A, 0))), 2981 (f64 (fpextend (extractelt v4f32:$A, 1))))), 2982 (v2f64 (XVCVSPDP (XXMRGLW $A, $A)))>; 2983def : Pat<(v2f64 (build_vector (f64 (fpextend (extractelt v4f32:$A, 1))), 2984 (f64 (fpextend (extractelt v4f32:$A, 0))))), 2985 (v2f64 (XXPERMDI (XVCVSPDP (XXMRGLW $A, $A)), 2986 (XVCVSPDP (XXMRGLW $A, $A)), 2))>; 2987def : Pat<(v2f64 (build_vector (f64 (fpextend (extractelt v4f32:$A, 0))), 2988 (f64 (fpextend (extractelt v4f32:$A, 2))))), 2989 (v2f64 (XVCVSPDP (XXSLDWI $A, $A, 1)))>; 2990def : Pat<(v2f64 (build_vector (f64 (fpextend (extractelt v4f32:$A, 1))), 2991 (f64 (fpextend (extractelt v4f32:$A, 3))))), 2992 (v2f64 (XVCVSPDP $A))>; 2993def : Pat<(v2f64 (build_vector (f64 (fpextend (extractelt v4f32:$A, 2))), 2994 (f64 (fpextend (extractelt v4f32:$A, 3))))), 2995 (v2f64 (XVCVSPDP (XXMRGHW $A, $A)))>; 2996def : Pat<(v2f64 (build_vector (f64 (fpextend (extractelt v4f32:$A, 3))), 2997 (f64 (fpextend (extractelt v4f32:$A, 2))))), 2998 (v2f64 (XXPERMDI (XVCVSPDP (XXMRGHW $A, $A)), 2999 (XVCVSPDP (XXMRGHW $A, $A)), 2))>; 3000def : Pat<(v2f64 (build_vector (f64 (fpextend (extractelt v4f32:$A, 0))), 3001 (f64 (fpextend (extractelt v4f32:$B, 0))))), 3002 (v2f64 (XVCVSPDP (XXSLDWI (XXPERMDI $B, $A, 3), 3003 (XXPERMDI $B, $A, 3), 1)))>; 3004def : Pat<(v2f64 (build_vector (f64 (fpextend (extractelt v4f32:$A, 3))), 3005 (f64 (fpextend (extractelt v4f32:$B, 3))))), 3006 (v2f64 (XVCVSPDP (XXPERMDI $B, $A, 0)))>; 3007def : Pat<WToDPExtractConv.BV02S, 3008 (v2f64 (XVCVSXWDP (XXSLDWI $A, $A, 1)))>; 3009def : Pat<WToDPExtractConv.BV13S, 3010 (v2f64 (XVCVSXWDP $A))>; 3011def : Pat<WToDPExtractConv.BV02U, 3012 (v2f64 (XVCVUXWDP (XXSLDWI $A, $A, 1)))>; 3013def : Pat<WToDPExtractConv.BV13U, 3014 (v2f64 (XVCVUXWDP $A))>; 3015} // HasVSX, IsLittleEndian 3016 3017// Any pre-Power9 VSX subtarget. 3018let Predicates = [HasVSX, NoP9Vector] in { 3019def : Pat<(PPCstore_scal_int_from_vsr 3020 (f64 (PPCcv_fp_to_sint_in_vsr f64:$src)), xoaddr:$dst, 8), 3021 (STXSDX (XSCVDPSXDS f64:$src), xoaddr:$dst)>; 3022def : Pat<(PPCstore_scal_int_from_vsr 3023 (f64 (PPCcv_fp_to_uint_in_vsr f64:$src)), xoaddr:$dst, 8), 3024 (STXSDX (XSCVDPUXDS f64:$src), xoaddr:$dst)>; 3025 3026// Load-and-splat with fp-to-int conversion (using X-Form VSX/FP loads). 3027defm : ScalToVecWPermute< 3028 v4i32, DblToIntLoad.A, 3029 (XXSPLTW (SUBREG_TO_REG (i64 1), (XSCVDPSXWS (XFLOADf64 xoaddr:$A)), sub_64), 1), 3030 (SUBREG_TO_REG (i64 1), (XSCVDPSXWS (XFLOADf64 xoaddr:$A)), sub_64)>; 3031defm : ScalToVecWPermute< 3032 v4i32, DblToUIntLoad.A, 3033 (XXSPLTW (SUBREG_TO_REG (i64 1), (XSCVDPUXWS (XFLOADf64 xoaddr:$A)), sub_64), 1), 3034 (SUBREG_TO_REG (i64 1), (XSCVDPUXWS (XFLOADf64 xoaddr:$A)), sub_64)>; 3035defm : ScalToVecWPermute< 3036 v2i64, FltToLongLoad.A, 3037 (XXPERMDIs (XSCVDPSXDS (COPY_TO_REGCLASS (XFLOADf32 xoaddr:$A), VSFRC)), 0), 3038 (SUBREG_TO_REG (i64 1), (XSCVDPSXDS (COPY_TO_REGCLASS (XFLOADf32 xoaddr:$A), 3039 VSFRC)), sub_64)>; 3040defm : ScalToVecWPermute< 3041 v2i64, FltToULongLoad.A, 3042 (XXPERMDIs (XSCVDPUXDS (COPY_TO_REGCLASS (XFLOADf32 xoaddr:$A), VSFRC)), 0), 3043 (SUBREG_TO_REG (i64 1), (XSCVDPUXDS (COPY_TO_REGCLASS (XFLOADf32 xoaddr:$A), 3044 VSFRC)), sub_64)>; 3045} // HasVSX, NoP9Vector 3046 3047// Any little endian pre-Power9 VSX subtarget. 3048let Predicates = [HasVSX, NoP9Vector, IsLittleEndian] in { 3049// Load-and-splat using only X-Form VSX loads. 3050defm : ScalToVecWPermute< 3051 v2i64, (i64 (load xoaddr:$src)), 3052 (XXPERMDIs (XFLOADf64 xoaddr:$src), 2), 3053 (SUBREG_TO_REG (i64 1), (XFLOADf64 xoaddr:$src), sub_64)>; 3054defm : ScalToVecWPermute< 3055 v2f64, (f64 (load xoaddr:$src)), 3056 (XXPERMDIs (XFLOADf64 xoaddr:$src), 2), 3057 (SUBREG_TO_REG (i64 1), (XFLOADf64 xoaddr:$src), sub_64)>; 3058} // HasVSX, NoP9Vector, IsLittleEndian 3059 3060// Any VSX subtarget that only has loads and stores that load in big endian 3061// order regardless of endianness. This is really pre-Power9 subtargets. 3062let Predicates = [HasVSX, HasOnlySwappingMemOps] in { 3063 def : Pat<(v2f64 (PPClxvd2x xoaddr:$src)), (LXVD2X xoaddr:$src)>; 3064 3065 // Stores. 3066 def : Pat<(int_ppc_vsx_stxvd2x v2f64:$rS, xoaddr:$dst), 3067 (STXVD2X $rS, xoaddr:$dst)>; 3068 def : Pat<(PPCstxvd2x v2f64:$rS, xoaddr:$dst), (STXVD2X $rS, xoaddr:$dst)>; 3069} // HasVSX, HasOnlySwappingMemOps 3070 3071// Big endian VSX subtarget that only has loads and stores that always 3072// load in big endian order. Really big endian pre-Power9 subtargets. 3073let Predicates = [HasVSX, HasOnlySwappingMemOps, IsBigEndian] in { 3074 def : Pat<(v2f64 (load xoaddr:$src)), (LXVD2X xoaddr:$src)>; 3075 def : Pat<(v2i64 (load xoaddr:$src)), (LXVD2X xoaddr:$src)>; 3076 def : Pat<(v4i32 (load xoaddr:$src)), (LXVW4X xoaddr:$src)>; 3077 def : Pat<(v4i32 (int_ppc_vsx_lxvw4x xoaddr:$src)), (LXVW4X xoaddr:$src)>; 3078 def : Pat<(store v2f64:$rS, xoaddr:$dst), (STXVD2X $rS, xoaddr:$dst)>; 3079 def : Pat<(store v2i64:$rS, xoaddr:$dst), (STXVD2X $rS, xoaddr:$dst)>; 3080 def : Pat<(store v4i32:$XT, xoaddr:$dst), (STXVW4X $XT, xoaddr:$dst)>; 3081 def : Pat<(int_ppc_vsx_stxvw4x v4i32:$rS, xoaddr:$dst), 3082 (STXVW4X $rS, xoaddr:$dst)>; 3083} // HasVSX, HasOnlySwappingMemOps, IsBigEndian 3084 3085// Any Power8 VSX subtarget. 3086let Predicates = [HasVSX, HasP8Vector] in { 3087def : Pat<(int_ppc_vsx_xxleqv v4i32:$A, v4i32:$B), 3088 (XXLEQV $A, $B)>; 3089def : Pat<(f64 (extloadf32 xoaddr:$src)), 3090 (COPY_TO_REGCLASS (XFLOADf32 xoaddr:$src), VSFRC)>; 3091def : Pat<(f32 (fpround (f64 (extloadf32 xoaddr:$src)))), 3092 (f32 (XFLOADf32 xoaddr:$src))>; 3093def : Pat<(f64 (any_fpextend f32:$src)), 3094 (COPY_TO_REGCLASS $src, VSFRC)>; 3095 3096def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETLT)), 3097 (SELECT_VSSRC (CRANDC $lhs, $rhs), $tval, $fval)>; 3098def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETULT)), 3099 (SELECT_VSSRC (CRANDC $rhs, $lhs), $tval, $fval)>; 3100def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETLE)), 3101 (SELECT_VSSRC (CRORC $lhs, $rhs), $tval, $fval)>; 3102def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETULE)), 3103 (SELECT_VSSRC (CRORC $rhs, $lhs), $tval, $fval)>; 3104def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETEQ)), 3105 (SELECT_VSSRC (CREQV $lhs, $rhs), $tval, $fval)>; 3106def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETGE)), 3107 (SELECT_VSSRC (CRORC $rhs, $lhs), $tval, $fval)>; 3108def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETUGE)), 3109 (SELECT_VSSRC (CRORC $lhs, $rhs), $tval, $fval)>; 3110def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETGT)), 3111 (SELECT_VSSRC (CRANDC $rhs, $lhs), $tval, $fval)>; 3112def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETUGT)), 3113 (SELECT_VSSRC (CRANDC $lhs, $rhs), $tval, $fval)>; 3114def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETNE)), 3115 (SELECT_VSSRC (CRXOR $lhs, $rhs), $tval, $fval)>; 3116 3117// Additional fnmsub pattern for PPC specific ISD opcode 3118def : Pat<(PPCfnmsub f32:$A, f32:$B, f32:$C), 3119 (XSNMSUBASP $C, $A, $B)>; 3120def : Pat<(fneg (PPCfnmsub f32:$A, f32:$B, f32:$C)), 3121 (XSMSUBASP $C, $A, $B)>; 3122def : Pat<(PPCfnmsub f32:$A, f32:$B, (fneg f32:$C)), 3123 (XSNMADDASP $C, $A, $B)>; 3124 3125// f32 neg 3126// Although XSNEGDP is available in P7, we want to select it starting from P8, 3127// so that FNMSUBS can be selected for fneg-fmsub pattern on P7. (VSX version, 3128// XSNMSUBASP, is available since P8) 3129def : Pat<(f32 (fneg f32:$S)), 3130 (f32 (COPY_TO_REGCLASS (XSNEGDP 3131 (COPY_TO_REGCLASS $S, VSFRC)), VSSRC))>; 3132 3133// Instructions for converting float to i32 feeding a store. 3134def : Pat<(PPCstore_scal_int_from_vsr 3135 (f64 (PPCcv_fp_to_sint_in_vsr f64:$src)), xoaddr:$dst, 4), 3136 (STIWX (XSCVDPSXWS f64:$src), xoaddr:$dst)>; 3137def : Pat<(PPCstore_scal_int_from_vsr 3138 (f64 (PPCcv_fp_to_uint_in_vsr f64:$src)), xoaddr:$dst, 4), 3139 (STIWX (XSCVDPUXWS f64:$src), xoaddr:$dst)>; 3140 3141def : Pat<(v2i64 (smax v2i64:$src1, v2i64:$src2)), 3142 (v2i64 (VMAXSD (COPY_TO_REGCLASS $src1, VRRC), 3143 (COPY_TO_REGCLASS $src2, VRRC)))>; 3144def : Pat<(v2i64 (umax v2i64:$src1, v2i64:$src2)), 3145 (v2i64 (VMAXUD (COPY_TO_REGCLASS $src1, VRRC), 3146 (COPY_TO_REGCLASS $src2, VRRC)))>; 3147def : Pat<(v2i64 (smin v2i64:$src1, v2i64:$src2)), 3148 (v2i64 (VMINSD (COPY_TO_REGCLASS $src1, VRRC), 3149 (COPY_TO_REGCLASS $src2, VRRC)))>; 3150def : Pat<(v2i64 (umin v2i64:$src1, v2i64:$src2)), 3151 (v2i64 (VMINUD (COPY_TO_REGCLASS $src1, VRRC), 3152 (COPY_TO_REGCLASS $src2, VRRC)))>; 3153 3154def : Pat<(v1i128 (bitconvert (v16i8 immAllOnesV))), 3155 (v1i128 (COPY_TO_REGCLASS(XXLEQVOnes), VSRC))>; 3156def : Pat<(v2i64 (bitconvert (v16i8 immAllOnesV))), 3157 (v2i64 (COPY_TO_REGCLASS(XXLEQVOnes), VSRC))>; 3158def : Pat<(v8i16 (bitconvert (v16i8 immAllOnesV))), 3159 (v8i16 (COPY_TO_REGCLASS(XXLEQVOnes), VSRC))>; 3160def : Pat<(v16i8 (bitconvert (v16i8 immAllOnesV))), 3161 (v16i8 (COPY_TO_REGCLASS(XXLEQVOnes), VSRC))>; 3162} // HasVSX, HasP8Vector 3163 3164// Any big endian Power8 VSX subtarget. 3165let Predicates = [HasVSX, HasP8Vector, IsBigEndian] in { 3166def : Pat<DWToSPExtractConv.El0SS1, 3167 (f32 (XSCVSXDSP (COPY_TO_REGCLASS $S1, VSFRC)))>; 3168def : Pat<DWToSPExtractConv.El1SS1, 3169 (f32 (XSCVSXDSP (COPY_TO_REGCLASS (XXPERMDI $S1, $S1, 2), VSFRC)))>; 3170def : Pat<DWToSPExtractConv.El0US1, 3171 (f32 (XSCVUXDSP (COPY_TO_REGCLASS $S1, VSFRC)))>; 3172def : Pat<DWToSPExtractConv.El1US1, 3173 (f32 (XSCVUXDSP (COPY_TO_REGCLASS (XXPERMDI $S1, $S1, 2), VSFRC)))>; 3174 3175// v4f32 scalar <-> vector conversions (BE) 3176def : Pat<(v4f32 (scalar_to_vector f32:$A)), 3177 (v4f32 (XSCVDPSPN $A))>; 3178def : Pat<(f32 (vector_extract v4f32:$S, 0)), 3179 (f32 (XSCVSPDPN $S))>; 3180def : Pat<(f32 (vector_extract v4f32:$S, 1)), 3181 (f32 (XSCVSPDPN (XXSLDWI $S, $S, 1)))>; 3182def : Pat<(f32 (vector_extract v4f32:$S, 2)), 3183 (f32 (XSCVSPDPN (XXPERMDI $S, $S, 2)))>; 3184def : Pat<(f32 (vector_extract v4f32:$S, 3)), 3185 (f32 (XSCVSPDPN (XXSLDWI $S, $S, 3)))>; 3186 3187def : Pat<(f32 (PPCfcfids (f64 (PPCmtvsra (i32 (extractelt v4i32:$A, 0)))))), 3188 (f32 (XSCVSPDPN (XVCVSXWSP (XXSPLTW $A, 0))))>; 3189def : Pat<(f32 (PPCfcfids (f64 (PPCmtvsra (i32 (extractelt v4i32:$A, 1)))))), 3190 (f32 (XSCVSPDPN (XVCVSXWSP (XXSPLTW $A, 1))))>; 3191def : Pat<(f32 (PPCfcfids (f64 (PPCmtvsra (i32 (extractelt v4i32:$A, 2)))))), 3192 (f32 (XSCVSPDPN (XVCVSXWSP (XXSPLTW $A, 2))))>; 3193def : Pat<(f32 (PPCfcfids (f64 (PPCmtvsra (i32 (extractelt v4i32:$A, 3)))))), 3194 (f32 (XSCVSPDPN (XVCVSXWSP (XXSPLTW $A, 3))))>; 3195def : Pat<(f64 (PPCfcfid (f64 (PPCmtvsra (i32 (extractelt v4i32:$A, 0)))))), 3196 (f64 (COPY_TO_REGCLASS (XVCVSXWDP (XXSPLTW $A, 0)), VSFRC))>; 3197def : Pat<(f64 (PPCfcfid (f64 (PPCmtvsra (i32 (extractelt v4i32:$A, 1)))))), 3198 (f64 (COPY_TO_REGCLASS (XVCVSXWDP (XXSPLTW $A, 1)), VSFRC))>; 3199def : Pat<(f64 (PPCfcfid (f64 (PPCmtvsra (i32 (extractelt v4i32:$A, 2)))))), 3200 (f64 (COPY_TO_REGCLASS (XVCVSXWDP (XXSPLTW $A, 2)), VSFRC))>; 3201def : Pat<(f64 (PPCfcfid (f64 (PPCmtvsra (i32 (extractelt v4i32:$A, 3)))))), 3202 (f64 (COPY_TO_REGCLASS (XVCVSXWDP (XXSPLTW $A, 3)), VSFRC))>; 3203 3204def : Pat<(f32 (vector_extract v4f32:$S, i32:$Idx)), 3205 (f32 VectorExtractions.BE_32B_VARIABLE_FLOAT)>; 3206 3207def : Pat<(f64 (vector_extract v2f64:$S, i32:$Idx)), 3208 (f64 VectorExtractions.BE_32B_VARIABLE_DOUBLE)>; 3209} // HasVSX, HasP8Vector, IsBigEndian 3210 3211// Big endian Power8 64Bit VSX subtarget. 3212let Predicates = [HasVSX, HasP8Vector, IsBigEndian, IsPPC64] in { 3213def : Pat<(f32 (vector_extract v4f32:$S, i64:$Idx)), 3214 (f32 VectorExtractions.BE_VARIABLE_FLOAT)>; 3215 3216// LIWAX - This instruction is used for sign extending i32 -> i64. 3217// LIWZX - This instruction will be emitted for i32, f32, and when 3218// zero-extending i32 to i64 (zext i32 -> i64). 3219def : Pat<(v2i64 (scalar_to_vector (i64 (sextloadi32 xoaddr:$src)))), 3220 (v2i64 (SUBREG_TO_REG (i64 1), (LIWAX xoaddr:$src), sub_64))>; 3221def : Pat<(v2i64 (scalar_to_vector (i64 (zextloadi32 xoaddr:$src)))), 3222 (v2i64 (SUBREG_TO_REG (i64 1), (LIWZX xoaddr:$src), sub_64))>; 3223def : Pat<(v4i32 (scalar_to_vector (i32 (load xoaddr:$src)))), 3224 (v4i32 (XXSLDWIs (LIWZX xoaddr:$src), 1))>; 3225def : Pat<(v4f32 (scalar_to_vector (f32 (load xoaddr:$src)))), 3226 (v4f32 (XXSLDWIs (LIWZX xoaddr:$src), 1))>; 3227 3228def : Pat<DWToSPExtractConv.BVU, 3229 (v4f32 (VPKUDUM (XXSLDWI (XVCVUXDSP $S1), (XVCVUXDSP $S1), 3), 3230 (XXSLDWI (XVCVUXDSP $S2), (XVCVUXDSP $S2), 3)))>; 3231def : Pat<DWToSPExtractConv.BVS, 3232 (v4f32 (VPKUDUM (XXSLDWI (XVCVSXDSP $S1), (XVCVSXDSP $S1), 3), 3233 (XXSLDWI (XVCVSXDSP $S2), (XVCVSXDSP $S2), 3)))>; 3234def : Pat<(store (i32 (extractelt v4i32:$A, 1)), xoaddr:$src), 3235 (STIWX (EXTRACT_SUBREG $A, sub_64), xoaddr:$src)>; 3236def : Pat<(store (f32 (extractelt v4f32:$A, 1)), xoaddr:$src), 3237 (STIWX (EXTRACT_SUBREG $A, sub_64), xoaddr:$src)>; 3238 3239// Elements in a register on a BE system are in order <0, 1, 2, 3>. 3240// The store instructions store the second word from the left. 3241// So to align element zero, we need to modulo-left-shift by 3 words. 3242// Similar logic applies for elements 2 and 3. 3243foreach Idx = [ [0,3], [2,1], [3,2] ] in { 3244 def : Pat<(store (i32 (extractelt v4i32:$A, !head(Idx))), xoaddr:$src), 3245 (STIWX (EXTRACT_SUBREG (XXSLDWI $A, $A, !head(!tail(Idx))), 3246 sub_64), xoaddr:$src)>; 3247 def : Pat<(store (f32 (extractelt v4f32:$A, !head(Idx))), xoaddr:$src), 3248 (STIWX (EXTRACT_SUBREG (XXSLDWI $A, $A, !head(!tail(Idx))), 3249 sub_64), xoaddr:$src)>; 3250} 3251} // HasVSX, HasP8Vector, IsBigEndian, IsPPC64 3252 3253// Little endian Power8 VSX subtarget. 3254let Predicates = [HasVSX, HasP8Vector, IsLittleEndian] in { 3255def : Pat<DWToSPExtractConv.El0SS1, 3256 (f32 (XSCVSXDSP (COPY_TO_REGCLASS (XXPERMDI $S1, $S1, 2), VSFRC)))>; 3257def : Pat<DWToSPExtractConv.El1SS1, 3258 (f32 (XSCVSXDSP (COPY_TO_REGCLASS 3259 (f64 (COPY_TO_REGCLASS $S1, VSRC)), VSFRC)))>; 3260def : Pat<DWToSPExtractConv.El0US1, 3261 (f32 (XSCVUXDSP (COPY_TO_REGCLASS (XXPERMDI $S1, $S1, 2), VSFRC)))>; 3262def : Pat<DWToSPExtractConv.El1US1, 3263 (f32 (XSCVUXDSP (COPY_TO_REGCLASS 3264 (f64 (COPY_TO_REGCLASS $S1, VSRC)), VSFRC)))>; 3265 3266// v4f32 scalar <-> vector conversions (LE) 3267 // The permuted version is no better than the version that puts the value 3268 // into the right element because XSCVDPSPN is different from all the other 3269 // instructions used for PPCSToV. 3270 defm : ScalToVecWPermute<v4f32, (f32 f32:$A), 3271 (XXSLDWI (XSCVDPSPN $A), (XSCVDPSPN $A), 1), 3272 (XXSLDWI (XSCVDPSPN $A), (XSCVDPSPN $A), 3)>; 3273def : Pat<(f32 (vector_extract v4f32:$S, 0)), 3274 (f32 (XSCVSPDPN (XXSLDWI $S, $S, 3)))>; 3275def : Pat<(f32 (vector_extract v4f32:$S, 1)), 3276 (f32 (XSCVSPDPN (XXPERMDI $S, $S, 2)))>; 3277def : Pat<(f32 (vector_extract v4f32:$S, 2)), 3278 (f32 (XSCVSPDPN (XXSLDWI $S, $S, 1)))>; 3279def : Pat<(f32 (vector_extract v4f32:$S, 3)), 3280 (f32 (XSCVSPDPN $S))>; 3281def : Pat<(f32 (vector_extract v4f32:$S, i64:$Idx)), 3282 (f32 VectorExtractions.LE_VARIABLE_FLOAT)>; 3283 3284def : Pat<(f32 (PPCfcfids (f64 (PPCmtvsra (i32 (extractelt v4i32:$A, 0)))))), 3285 (f32 (XSCVSPDPN (XVCVSXWSP (XXSPLTW $A, 3))))>; 3286def : Pat<(f32 (PPCfcfids (f64 (PPCmtvsra (i32 (extractelt v4i32:$A, 1)))))), 3287 (f32 (XSCVSPDPN (XVCVSXWSP (XXSPLTW $A, 2))))>; 3288def : Pat<(f32 (PPCfcfids (f64 (PPCmtvsra (i32 (extractelt v4i32:$A, 2)))))), 3289 (f32 (XSCVSPDPN (XVCVSXWSP (XXSPLTW $A, 1))))>; 3290def : Pat<(f32 (PPCfcfids (f64 (PPCmtvsra (i32 (extractelt v4i32:$A, 3)))))), 3291 (f32 (XSCVSPDPN (XVCVSXWSP (XXSPLTW $A, 0))))>; 3292def : Pat<(f64 (PPCfcfid (f64 (PPCmtvsra (i32 (extractelt v4i32:$A, 0)))))), 3293 (f64 (COPY_TO_REGCLASS (XVCVSXWDP (XXSPLTW $A, 3)), VSFRC))>; 3294def : Pat<(f64 (PPCfcfid (f64 (PPCmtvsra (i32 (extractelt v4i32:$A, 1)))))), 3295 (f64 (COPY_TO_REGCLASS (XVCVSXWDP (XXSPLTW $A, 2)), VSFRC))>; 3296def : Pat<(f64 (PPCfcfid (f64 (PPCmtvsra (i32 (extractelt v4i32:$A, 2)))))), 3297 (f64 (COPY_TO_REGCLASS (XVCVSXWDP (XXSPLTW $A, 1)), VSFRC))>; 3298def : Pat<(f64 (PPCfcfid (f64 (PPCmtvsra (i32 (extractelt v4i32:$A, 3)))))), 3299 (f64 (COPY_TO_REGCLASS (XVCVSXWDP (XXSPLTW $A, 0)), VSFRC))>; 3300 3301// LIWAX - This instruction is used for sign extending i32 -> i64. 3302// LIWZX - This instruction will be emitted for i32, f32, and when 3303// zero-extending i32 to i64 (zext i32 -> i64). 3304defm : ScalToVecWPermute< 3305 v2i64, (i64 (sextloadi32 xoaddr:$src)), 3306 (XXPERMDIs (LIWAX xoaddr:$src), 2), 3307 (SUBREG_TO_REG (i64 1), (LIWAX xoaddr:$src), sub_64)>; 3308 3309defm : ScalToVecWPermute< 3310 v2i64, (i64 (zextloadi32 xoaddr:$src)), 3311 (XXPERMDIs (LIWZX xoaddr:$src), 2), 3312 (SUBREG_TO_REG (i64 1), (LIWZX xoaddr:$src), sub_64)>; 3313 3314defm : ScalToVecWPermute< 3315 v4i32, (i32 (load xoaddr:$src)), 3316 (XXPERMDIs (LIWZX xoaddr:$src), 2), 3317 (SUBREG_TO_REG (i64 1), (LIWZX xoaddr:$src), sub_64)>; 3318 3319defm : ScalToVecWPermute< 3320 v4f32, (f32 (load xoaddr:$src)), 3321 (XXPERMDIs (LIWZX xoaddr:$src), 2), 3322 (SUBREG_TO_REG (i64 1), (LIWZX xoaddr:$src), sub_64)>; 3323 3324def : Pat<DWToSPExtractConv.BVU, 3325 (v4f32 (VPKUDUM (XXSLDWI (XVCVUXDSP $S2), (XVCVUXDSP $S2), 3), 3326 (XXSLDWI (XVCVUXDSP $S1), (XVCVUXDSP $S1), 3)))>; 3327def : Pat<DWToSPExtractConv.BVS, 3328 (v4f32 (VPKUDUM (XXSLDWI (XVCVSXDSP $S2), (XVCVSXDSP $S2), 3), 3329 (XXSLDWI (XVCVSXDSP $S1), (XVCVSXDSP $S1), 3)))>; 3330def : Pat<(store (i32 (extractelt v4i32:$A, 2)), xoaddr:$src), 3331 (STIWX (EXTRACT_SUBREG $A, sub_64), xoaddr:$src)>; 3332def : Pat<(store (f32 (extractelt v4f32:$A, 2)), xoaddr:$src), 3333 (STIWX (EXTRACT_SUBREG $A, sub_64), xoaddr:$src)>; 3334 3335// Elements in a register on a LE system are in order <3, 2, 1, 0>. 3336// The store instructions store the second word from the left. 3337// So to align element 3, we need to modulo-left-shift by 3 words. 3338// Similar logic applies for elements 0 and 1. 3339foreach Idx = [ [0,2], [1,1], [3,3] ] in { 3340 def : Pat<(store (i32 (extractelt v4i32:$A, !head(Idx))), xoaddr:$src), 3341 (STIWX (EXTRACT_SUBREG (XXSLDWI $A, $A, !head(!tail(Idx))), 3342 sub_64), xoaddr:$src)>; 3343 def : Pat<(store (f32 (extractelt v4f32:$A, !head(Idx))), xoaddr:$src), 3344 (STIWX (EXTRACT_SUBREG (XXSLDWI $A, $A, !head(!tail(Idx))), 3345 sub_64), xoaddr:$src)>; 3346} 3347} // HasVSX, HasP8Vector, IsLittleEndian 3348 3349// Big endian pre-Power9 VSX subtarget. 3350let Predicates = [HasVSX, HasP8Vector, NoP9Vector, IsBigEndian, IsPPC64] in { 3351def : Pat<(store (i64 (extractelt v2i64:$A, 0)), xoaddr:$src), 3352 (XFSTOREf64 (EXTRACT_SUBREG $A, sub_64), xoaddr:$src)>; 3353def : Pat<(store (f64 (extractelt v2f64:$A, 0)), xoaddr:$src), 3354 (XFSTOREf64 (EXTRACT_SUBREG $A, sub_64), xoaddr:$src)>; 3355def : Pat<(store (i64 (extractelt v2i64:$A, 1)), xoaddr:$src), 3356 (XFSTOREf64 (EXTRACT_SUBREG (XXPERMDI $A, $A, 2), sub_64), 3357 xoaddr:$src)>; 3358def : Pat<(store (f64 (extractelt v2f64:$A, 1)), xoaddr:$src), 3359 (XFSTOREf64 (EXTRACT_SUBREG (XXPERMDI $A, $A, 2), sub_64), 3360 xoaddr:$src)>; 3361} // HasVSX, HasP8Vector, NoP9Vector, IsBigEndian, IsPPC64 3362 3363// Little endian pre-Power9 VSX subtarget. 3364let Predicates = [HasVSX, HasP8Vector, NoP9Vector, IsLittleEndian] in { 3365def : Pat<(store (i64 (extractelt v2i64:$A, 0)), xoaddr:$src), 3366 (XFSTOREf64 (EXTRACT_SUBREG (XXPERMDI $A, $A, 2), sub_64), 3367 xoaddr:$src)>; 3368def : Pat<(store (f64 (extractelt v2f64:$A, 0)), xoaddr:$src), 3369 (XFSTOREf64 (EXTRACT_SUBREG (XXPERMDI $A, $A, 2), sub_64), 3370 xoaddr:$src)>; 3371def : Pat<(store (i64 (extractelt v2i64:$A, 1)), xoaddr:$src), 3372 (XFSTOREf64 (EXTRACT_SUBREG $A, sub_64), xoaddr:$src)>; 3373def : Pat<(store (f64 (extractelt v2f64:$A, 1)), xoaddr:$src), 3374 (XFSTOREf64 (EXTRACT_SUBREG $A, sub_64), xoaddr:$src)>; 3375} // HasVSX, HasP8Vector, NoP9Vector, IsLittleEndian 3376 3377// Any VSX target with direct moves. 3378let Predicates = [HasVSX, HasDirectMove] in { 3379// bitconvert f32 -> i32 3380// (convert to 32-bit fp single, shift right 1 word, move to GPR) 3381def : Pat<(i32 (bitconvert f32:$A)), Bitcast.FltToInt>; 3382 3383// bitconvert i32 -> f32 3384// (move to FPR, shift left 1 word, convert to 64-bit fp single) 3385def : Pat<(f32 (bitconvert i32:$A)), 3386 (f32 (XSCVSPDPN 3387 (XXSLDWI MovesToVSR.LE_WORD_1, MovesToVSR.LE_WORD_1, 1)))>; 3388 3389// bitconvert f64 -> i64 3390// (move to GPR, nothing else needed) 3391def : Pat<(i64 (bitconvert f64:$A)), Bitcast.DblToLong>; 3392 3393// bitconvert i64 -> f64 3394// (move to FPR, nothing else needed) 3395def : Pat<(f64 (bitconvert i64:$S)), 3396 (f64 (MTVSRD $S))>; 3397 3398// Rounding to integer. 3399def : Pat<(i64 (lrint f64:$S)), 3400 (i64 (MFVSRD (FCTID $S)))>; 3401def : Pat<(i64 (lrint f32:$S)), 3402 (i64 (MFVSRD (FCTID (COPY_TO_REGCLASS $S, F8RC))))>; 3403def : Pat<(i64 (llrint f64:$S)), 3404 (i64 (MFVSRD (FCTID $S)))>; 3405def : Pat<(i64 (llrint f32:$S)), 3406 (i64 (MFVSRD (FCTID (COPY_TO_REGCLASS $S, F8RC))))>; 3407def : Pat<(i64 (lround f64:$S)), 3408 (i64 (MFVSRD (FCTID (XSRDPI $S))))>; 3409def : Pat<(i64 (lround f32:$S)), 3410 (i64 (MFVSRD (FCTID (XSRDPI (COPY_TO_REGCLASS $S, VSFRC)))))>; 3411def : Pat<(i64 (llround f64:$S)), 3412 (i64 (MFVSRD (FCTID (XSRDPI $S))))>; 3413def : Pat<(i64 (llround f32:$S)), 3414 (i64 (MFVSRD (FCTID (XSRDPI (COPY_TO_REGCLASS $S, VSFRC)))))>; 3415 3416// Alternate patterns for PPCmtvsrz where the output is v8i16 or v16i8 instead 3417// of f64 3418def : Pat<(v8i16 (PPCmtvsrz i32:$A)), 3419 (v8i16 (SUBREG_TO_REG (i64 1), (MTVSRWZ $A), sub_64))>; 3420def : Pat<(v16i8 (PPCmtvsrz i32:$A)), 3421 (v16i8 (SUBREG_TO_REG (i64 1), (MTVSRWZ $A), sub_64))>; 3422 3423// Endianness-neutral constant splat on P8 and newer targets. The reason 3424// for this pattern is that on targets with direct moves, we don't expand 3425// BUILD_VECTOR nodes for v4i32. 3426def : Pat<(v4i32 (build_vector immSExt5NonZero:$A, immSExt5NonZero:$A, 3427 immSExt5NonZero:$A, immSExt5NonZero:$A)), 3428 (v4i32 (VSPLTISW imm:$A))>; 3429} // HasVSX, HasDirectMove 3430 3431// Big endian VSX subtarget with direct moves. 3432let Predicates = [HasVSX, HasDirectMove, IsBigEndian] in { 3433// v16i8 scalar <-> vector conversions (BE) 3434def : Pat<(v16i8 (scalar_to_vector i32:$A)), 3435 (v16i8 (SUBREG_TO_REG (i64 1), MovesToVSR.BE_BYTE_0, sub_64))>; 3436def : Pat<(v8i16 (scalar_to_vector i32:$A)), 3437 (v8i16 (SUBREG_TO_REG (i64 1), MovesToVSR.BE_HALF_0, sub_64))>; 3438def : Pat<(v4i32 (scalar_to_vector i32:$A)), 3439 (v4i32 (SUBREG_TO_REG (i64 1), MovesToVSR.BE_WORD_0, sub_64))>; 3440def : Pat<(v2i64 (scalar_to_vector i64:$A)), 3441 (v2i64 (SUBREG_TO_REG (i64 1), MovesToVSR.BE_DWORD_0, sub_64))>; 3442 3443// v2i64 scalar <-> vector conversions (BE) 3444def : Pat<(i64 (vector_extract v2i64:$S, 0)), 3445 (i64 VectorExtractions.LE_DWORD_1)>; 3446def : Pat<(i64 (vector_extract v2i64:$S, 1)), 3447 (i64 VectorExtractions.LE_DWORD_0)>; 3448def : Pat<(i64 (vector_extract v2i64:$S, i64:$Idx)), 3449 (i64 VectorExtractions.BE_VARIABLE_DWORD)>; 3450} // HasVSX, HasDirectMove, IsBigEndian 3451 3452// Little endian VSX subtarget with direct moves. 3453let Predicates = [HasVSX, HasDirectMove, IsLittleEndian] in { 3454 // v16i8 scalar <-> vector conversions (LE) 3455 defm : ScalToVecWPermute<v16i8, (i32 i32:$A), 3456 (COPY_TO_REGCLASS MovesToVSR.LE_WORD_0, VSRC), 3457 (COPY_TO_REGCLASS MovesToVSR.LE_WORD_1, VSRC)>; 3458 defm : ScalToVecWPermute<v8i16, (i32 i32:$A), 3459 (COPY_TO_REGCLASS MovesToVSR.LE_WORD_0, VSRC), 3460 (COPY_TO_REGCLASS MovesToVSR.LE_WORD_1, VSRC)>; 3461 defm : ScalToVecWPermute<v4i32, (i32 i32:$A), MovesToVSR.LE_WORD_0, 3462 (SUBREG_TO_REG (i64 1), (MTVSRWZ $A), sub_64)>; 3463 defm : ScalToVecWPermute<v2i64, (i64 i64:$A), MovesToVSR.LE_DWORD_0, 3464 MovesToVSR.LE_DWORD_1>; 3465 3466 // v2i64 scalar <-> vector conversions (LE) 3467 def : Pat<(i64 (vector_extract v2i64:$S, 0)), 3468 (i64 VectorExtractions.LE_DWORD_0)>; 3469 def : Pat<(i64 (vector_extract v2i64:$S, 1)), 3470 (i64 VectorExtractions.LE_DWORD_1)>; 3471 def : Pat<(i64 (vector_extract v2i64:$S, i64:$Idx)), 3472 (i64 VectorExtractions.LE_VARIABLE_DWORD)>; 3473} // HasVSX, HasDirectMove, IsLittleEndian 3474 3475// Big endian pre-P9 VSX subtarget with direct moves. 3476let Predicates = [HasVSX, HasDirectMove, NoP9Altivec, IsBigEndian] in { 3477def : Pat<(i32 (vector_extract v16i8:$S, 0)), 3478 (i32 VectorExtractions.LE_BYTE_15)>; 3479def : Pat<(i32 (vector_extract v16i8:$S, 1)), 3480 (i32 VectorExtractions.LE_BYTE_14)>; 3481def : Pat<(i32 (vector_extract v16i8:$S, 2)), 3482 (i32 VectorExtractions.LE_BYTE_13)>; 3483def : Pat<(i32 (vector_extract v16i8:$S, 3)), 3484 (i32 VectorExtractions.LE_BYTE_12)>; 3485def : Pat<(i32 (vector_extract v16i8:$S, 4)), 3486 (i32 VectorExtractions.LE_BYTE_11)>; 3487def : Pat<(i32 (vector_extract v16i8:$S, 5)), 3488 (i32 VectorExtractions.LE_BYTE_10)>; 3489def : Pat<(i32 (vector_extract v16i8:$S, 6)), 3490 (i32 VectorExtractions.LE_BYTE_9)>; 3491def : Pat<(i32 (vector_extract v16i8:$S, 7)), 3492 (i32 VectorExtractions.LE_BYTE_8)>; 3493def : Pat<(i32 (vector_extract v16i8:$S, 8)), 3494 (i32 VectorExtractions.LE_BYTE_7)>; 3495def : Pat<(i32 (vector_extract v16i8:$S, 9)), 3496 (i32 VectorExtractions.LE_BYTE_6)>; 3497def : Pat<(i32 (vector_extract v16i8:$S, 10)), 3498 (i32 VectorExtractions.LE_BYTE_5)>; 3499def : Pat<(i32 (vector_extract v16i8:$S, 11)), 3500 (i32 VectorExtractions.LE_BYTE_4)>; 3501def : Pat<(i32 (vector_extract v16i8:$S, 12)), 3502 (i32 VectorExtractions.LE_BYTE_3)>; 3503def : Pat<(i32 (vector_extract v16i8:$S, 13)), 3504 (i32 VectorExtractions.LE_BYTE_2)>; 3505def : Pat<(i32 (vector_extract v16i8:$S, 14)), 3506 (i32 VectorExtractions.LE_BYTE_1)>; 3507def : Pat<(i32 (vector_extract v16i8:$S, 15)), 3508 (i32 VectorExtractions.LE_BYTE_0)>; 3509def : Pat<(i32 (vector_extract v16i8:$S, i64:$Idx)), 3510 (i32 VectorExtractions.BE_VARIABLE_BYTE)>; 3511 3512// v8i16 scalar <-> vector conversions (BE) 3513def : Pat<(i32 (vector_extract v8i16:$S, 0)), 3514 (i32 VectorExtractions.LE_HALF_7)>; 3515def : Pat<(i32 (vector_extract v8i16:$S, 1)), 3516 (i32 VectorExtractions.LE_HALF_6)>; 3517def : Pat<(i32 (vector_extract v8i16:$S, 2)), 3518 (i32 VectorExtractions.LE_HALF_5)>; 3519def : Pat<(i32 (vector_extract v8i16:$S, 3)), 3520 (i32 VectorExtractions.LE_HALF_4)>; 3521def : Pat<(i32 (vector_extract v8i16:$S, 4)), 3522 (i32 VectorExtractions.LE_HALF_3)>; 3523def : Pat<(i32 (vector_extract v8i16:$S, 5)), 3524 (i32 VectorExtractions.LE_HALF_2)>; 3525def : Pat<(i32 (vector_extract v8i16:$S, 6)), 3526 (i32 VectorExtractions.LE_HALF_1)>; 3527def : Pat<(i32 (vector_extract v8i16:$S, 7)), 3528 (i32 VectorExtractions.LE_HALF_0)>; 3529def : Pat<(i32 (vector_extract v8i16:$S, i64:$Idx)), 3530 (i32 VectorExtractions.BE_VARIABLE_HALF)>; 3531 3532// v4i32 scalar <-> vector conversions (BE) 3533def : Pat<(i32 (vector_extract v4i32:$S, 0)), 3534 (i32 VectorExtractions.LE_WORD_3)>; 3535def : Pat<(i32 (vector_extract v4i32:$S, 1)), 3536 (i32 VectorExtractions.LE_WORD_2)>; 3537def : Pat<(i32 (vector_extract v4i32:$S, 2)), 3538 (i32 VectorExtractions.LE_WORD_1)>; 3539def : Pat<(i32 (vector_extract v4i32:$S, 3)), 3540 (i32 VectorExtractions.LE_WORD_0)>; 3541def : Pat<(i32 (vector_extract v4i32:$S, i64:$Idx)), 3542 (i32 VectorExtractions.BE_VARIABLE_WORD)>; 3543} // HasVSX, HasDirectMove, NoP9Altivec, IsBigEndian 3544 3545// Little endian pre-P9 VSX subtarget with direct moves. 3546let Predicates = [HasVSX, HasDirectMove, NoP9Altivec, IsLittleEndian] in { 3547def : Pat<(i32 (vector_extract v16i8:$S, 0)), 3548 (i32 VectorExtractions.LE_BYTE_0)>; 3549def : Pat<(i32 (vector_extract v16i8:$S, 1)), 3550 (i32 VectorExtractions.LE_BYTE_1)>; 3551def : Pat<(i32 (vector_extract v16i8:$S, 2)), 3552 (i32 VectorExtractions.LE_BYTE_2)>; 3553def : Pat<(i32 (vector_extract v16i8:$S, 3)), 3554 (i32 VectorExtractions.LE_BYTE_3)>; 3555def : Pat<(i32 (vector_extract v16i8:$S, 4)), 3556 (i32 VectorExtractions.LE_BYTE_4)>; 3557def : Pat<(i32 (vector_extract v16i8:$S, 5)), 3558 (i32 VectorExtractions.LE_BYTE_5)>; 3559def : Pat<(i32 (vector_extract v16i8:$S, 6)), 3560 (i32 VectorExtractions.LE_BYTE_6)>; 3561def : Pat<(i32 (vector_extract v16i8:$S, 7)), 3562 (i32 VectorExtractions.LE_BYTE_7)>; 3563def : Pat<(i32 (vector_extract v16i8:$S, 8)), 3564 (i32 VectorExtractions.LE_BYTE_8)>; 3565def : Pat<(i32 (vector_extract v16i8:$S, 9)), 3566 (i32 VectorExtractions.LE_BYTE_9)>; 3567def : Pat<(i32 (vector_extract v16i8:$S, 10)), 3568 (i32 VectorExtractions.LE_BYTE_10)>; 3569def : Pat<(i32 (vector_extract v16i8:$S, 11)), 3570 (i32 VectorExtractions.LE_BYTE_11)>; 3571def : Pat<(i32 (vector_extract v16i8:$S, 12)), 3572 (i32 VectorExtractions.LE_BYTE_12)>; 3573def : Pat<(i32 (vector_extract v16i8:$S, 13)), 3574 (i32 VectorExtractions.LE_BYTE_13)>; 3575def : Pat<(i32 (vector_extract v16i8:$S, 14)), 3576 (i32 VectorExtractions.LE_BYTE_14)>; 3577def : Pat<(i32 (vector_extract v16i8:$S, 15)), 3578 (i32 VectorExtractions.LE_BYTE_15)>; 3579def : Pat<(i32 (vector_extract v16i8:$S, i64:$Idx)), 3580 (i32 VectorExtractions.LE_VARIABLE_BYTE)>; 3581 3582// v8i16 scalar <-> vector conversions (LE) 3583def : Pat<(i32 (vector_extract v8i16:$S, 0)), 3584 (i32 VectorExtractions.LE_HALF_0)>; 3585def : Pat<(i32 (vector_extract v8i16:$S, 1)), 3586 (i32 VectorExtractions.LE_HALF_1)>; 3587def : Pat<(i32 (vector_extract v8i16:$S, 2)), 3588 (i32 VectorExtractions.LE_HALF_2)>; 3589def : Pat<(i32 (vector_extract v8i16:$S, 3)), 3590 (i32 VectorExtractions.LE_HALF_3)>; 3591def : Pat<(i32 (vector_extract v8i16:$S, 4)), 3592 (i32 VectorExtractions.LE_HALF_4)>; 3593def : Pat<(i32 (vector_extract v8i16:$S, 5)), 3594 (i32 VectorExtractions.LE_HALF_5)>; 3595def : Pat<(i32 (vector_extract v8i16:$S, 6)), 3596 (i32 VectorExtractions.LE_HALF_6)>; 3597def : Pat<(i32 (vector_extract v8i16:$S, 7)), 3598 (i32 VectorExtractions.LE_HALF_7)>; 3599def : Pat<(i32 (vector_extract v8i16:$S, i64:$Idx)), 3600 (i32 VectorExtractions.LE_VARIABLE_HALF)>; 3601 3602// v4i32 scalar <-> vector conversions (LE) 3603def : Pat<(i32 (vector_extract v4i32:$S, 0)), 3604 (i32 VectorExtractions.LE_WORD_0)>; 3605def : Pat<(i32 (vector_extract v4i32:$S, 1)), 3606 (i32 VectorExtractions.LE_WORD_1)>; 3607def : Pat<(i32 (vector_extract v4i32:$S, 2)), 3608 (i32 VectorExtractions.LE_WORD_2)>; 3609def : Pat<(i32 (vector_extract v4i32:$S, 3)), 3610 (i32 VectorExtractions.LE_WORD_3)>; 3611def : Pat<(i32 (vector_extract v4i32:$S, i64:$Idx)), 3612 (i32 VectorExtractions.LE_VARIABLE_WORD)>; 3613} // HasVSX, HasDirectMove, NoP9Altivec, IsLittleEndian 3614 3615// Big endian pre-Power9 64Bit VSX subtarget that has direct moves. 3616let Predicates = [HasVSX, HasDirectMove, NoP9Vector, IsBigEndian, IsPPC64] in { 3617// Big endian integer vectors using direct moves. 3618def : Pat<(v2i64 (build_vector i64:$A, i64:$B)), 3619 (v2i64 (XXPERMDI 3620 (SUBREG_TO_REG (i64 1), (MTVSRD $A), sub_64), 3621 (SUBREG_TO_REG (i64 1), (MTVSRD $B), sub_64), 0))>; 3622def : Pat<(v4i32 (build_vector i32:$A, i32:$B, i32:$C, i32:$D)), 3623 (XXPERMDI 3624 (SUBREG_TO_REG (i64 1), 3625 (MTVSRD (RLDIMI AnyExts.B, AnyExts.A, 32, 0)), sub_64), 3626 (SUBREG_TO_REG (i64 1), 3627 (MTVSRD (RLDIMI AnyExts.D, AnyExts.C, 32, 0)), sub_64), 0)>; 3628def : Pat<(v4i32 (build_vector i32:$A, i32:$A, i32:$A, i32:$A)), 3629 (XXSPLTW (SUBREG_TO_REG (i64 1), (MTVSRWZ $A), sub_64), 1)>; 3630} // HasVSX, HasDirectMove, NoP9Vector, IsBigEndian, IsPPC64 3631 3632// Little endian pre-Power9 VSX subtarget that has direct moves. 3633let Predicates = [HasVSX, HasDirectMove, NoP9Vector, IsLittleEndian] in { 3634// Little endian integer vectors using direct moves. 3635def : Pat<(v2i64 (build_vector i64:$A, i64:$B)), 3636 (v2i64 (XXPERMDI 3637 (SUBREG_TO_REG (i64 1), (MTVSRD $B), sub_64), 3638 (SUBREG_TO_REG (i64 1), (MTVSRD $A), sub_64), 0))>; 3639def : Pat<(v4i32 (build_vector i32:$A, i32:$B, i32:$C, i32:$D)), 3640 (XXPERMDI 3641 (SUBREG_TO_REG (i64 1), 3642 (MTVSRD (RLDIMI AnyExts.C, AnyExts.D, 32, 0)), sub_64), 3643 (SUBREG_TO_REG (i64 1), 3644 (MTVSRD (RLDIMI AnyExts.A, AnyExts.B, 32, 0)), sub_64), 0)>; 3645def : Pat<(v4i32 (build_vector i32:$A, i32:$A, i32:$A, i32:$A)), 3646 (XXSPLTW (SUBREG_TO_REG (i64 1), (MTVSRWZ $A), sub_64), 1)>; 3647} 3648 3649// Any Power9 VSX subtarget. 3650let Predicates = [HasVSX, HasP9Vector] in { 3651// Additional fnmsub pattern for PPC specific ISD opcode 3652def : Pat<(PPCfnmsub f128:$A, f128:$B, f128:$C), 3653 (XSNMSUBQP $C, $A, $B)>; 3654def : Pat<(fneg (PPCfnmsub f128:$A, f128:$B, f128:$C)), 3655 (XSMSUBQP $C, $A, $B)>; 3656def : Pat<(PPCfnmsub f128:$A, f128:$B, (fneg f128:$C)), 3657 (XSNMADDQP $C, $A, $B)>; 3658 3659def : Pat<(f128 (any_sint_to_fp i64:$src)), 3660 (f128 (XSCVSDQP (COPY_TO_REGCLASS $src, VFRC)))>; 3661def : Pat<(f128 (any_sint_to_fp (i64 (PPCmfvsr f64:$src)))), 3662 (f128 (XSCVSDQP $src))>; 3663def : Pat<(f128 (any_sint_to_fp (i32 (PPCmfvsr f64:$src)))), 3664 (f128 (XSCVSDQP (VEXTSW2Ds $src)))>; 3665def : Pat<(f128 (any_uint_to_fp i64:$src)), 3666 (f128 (XSCVUDQP (COPY_TO_REGCLASS $src, VFRC)))>; 3667def : Pat<(f128 (any_uint_to_fp (i64 (PPCmfvsr f64:$src)))), 3668 (f128 (XSCVUDQP $src))>; 3669 3670// Convert (Un)Signed Word -> QP. 3671def : Pat<(f128 (any_sint_to_fp i32:$src)), 3672 (f128 (XSCVSDQP (MTVSRWA $src)))>; 3673def : Pat<(f128 (any_sint_to_fp (i32 (load xoaddr:$src)))), 3674 (f128 (XSCVSDQP (LIWAX xoaddr:$src)))>; 3675def : Pat<(f128 (any_uint_to_fp i32:$src)), 3676 (f128 (XSCVUDQP (MTVSRWZ $src)))>; 3677def : Pat<(f128 (any_uint_to_fp (i32 (load xoaddr:$src)))), 3678 (f128 (XSCVUDQP (LIWZX xoaddr:$src)))>; 3679 3680// Pattern for matching Vector HP -> Vector SP intrinsic. Defined as a 3681// separate pattern so that it can convert the input register class from 3682// VRRC(v8i16) to VSRC. 3683def : Pat<(v4f32 (int_ppc_vsx_xvcvhpsp v8i16:$A)), 3684 (v4f32 (XVCVHPSP (COPY_TO_REGCLASS $A, VSRC)))>; 3685 3686// Use current rounding mode 3687def : Pat<(f128 (any_fnearbyint f128:$vB)), (f128 (XSRQPI 0, $vB, 3))>; 3688// Round to nearest, ties away from zero 3689def : Pat<(f128 (any_fround f128:$vB)), (f128 (XSRQPI 0, $vB, 0))>; 3690// Round towards Zero 3691def : Pat<(f128 (any_ftrunc f128:$vB)), (f128 (XSRQPI 1, $vB, 1))>; 3692// Round towards +Inf 3693def : Pat<(f128 (any_fceil f128:$vB)), (f128 (XSRQPI 1, $vB, 2))>; 3694// Round towards -Inf 3695def : Pat<(f128 (any_ffloor f128:$vB)), (f128 (XSRQPI 1, $vB, 3))>; 3696// Use current rounding mode, [with Inexact] 3697def : Pat<(f128 (any_frint f128:$vB)), (f128 (XSRQPIX 0, $vB, 3))>; 3698 3699def : Pat<(f128 (int_ppc_scalar_insert_exp_qp f128:$vA, i64:$vB)), 3700 (f128 (XSIEXPQP $vA, (MTVSRD $vB)))>; 3701 3702def : Pat<(i64 (int_ppc_scalar_extract_expq f128:$vA)), 3703 (i64 (MFVSRD (EXTRACT_SUBREG 3704 (v2i64 (XSXEXPQP $vA)), sub_64)))>; 3705 3706// Extra patterns expanding to vector Extract Word/Insert Word 3707def : Pat<(v4i32 (int_ppc_vsx_xxinsertw v4i32:$A, v2i64:$B, imm:$IMM)), 3708 (v4i32 (XXINSERTW $A, $B, imm:$IMM))>; 3709def : Pat<(v2i64 (int_ppc_vsx_xxextractuw v2i64:$A, imm:$IMM)), 3710 (v2i64 (COPY_TO_REGCLASS (XXEXTRACTUW $A, imm:$IMM), VSRC))>; 3711 3712// Vector Reverse 3713def : Pat<(v8i16 (bswap v8i16 :$A)), 3714 (v8i16 (COPY_TO_REGCLASS (XXBRH (COPY_TO_REGCLASS $A, VSRC)), VRRC))>; 3715def : Pat<(v1i128 (bswap v1i128 :$A)), 3716 (v1i128 (COPY_TO_REGCLASS (XXBRQ (COPY_TO_REGCLASS $A, VSRC)), VRRC))>; 3717 3718// D-Form Load/Store 3719def : Pat<(v4i32 (quadwOffsetLoad iaddrX16:$src)), (LXV memrix16:$src)>; 3720def : Pat<(v4f32 (quadwOffsetLoad iaddrX16:$src)), (LXV memrix16:$src)>; 3721def : Pat<(v2i64 (quadwOffsetLoad iaddrX16:$src)), (LXV memrix16:$src)>; 3722def : Pat<(v2f64 (quadwOffsetLoad iaddrX16:$src)), (LXV memrix16:$src)>; 3723def : Pat<(f128 (quadwOffsetLoad iaddrX16:$src)), 3724 (COPY_TO_REGCLASS (LXV memrix16:$src), VRRC)>; 3725def : Pat<(v4i32 (int_ppc_vsx_lxvw4x iaddrX16:$src)), (LXV memrix16:$src)>; 3726def : Pat<(v2f64 (int_ppc_vsx_lxvd2x iaddrX16:$src)), (LXV memrix16:$src)>; 3727 3728def : Pat<(quadwOffsetStore v4f32:$rS, iaddrX16:$dst), (STXV $rS, memrix16:$dst)>; 3729def : Pat<(quadwOffsetStore v4i32:$rS, iaddrX16:$dst), (STXV $rS, memrix16:$dst)>; 3730def : Pat<(quadwOffsetStore v2f64:$rS, iaddrX16:$dst), (STXV $rS, memrix16:$dst)>; 3731def : Pat<(quadwOffsetStore f128:$rS, iaddrX16:$dst), 3732 (STXV (COPY_TO_REGCLASS $rS, VSRC), memrix16:$dst)>; 3733def : Pat<(quadwOffsetStore v2i64:$rS, iaddrX16:$dst), (STXV $rS, memrix16:$dst)>; 3734def : Pat<(int_ppc_vsx_stxvw4x v4i32:$rS, iaddrX16:$dst), 3735 (STXV $rS, memrix16:$dst)>; 3736def : Pat<(int_ppc_vsx_stxvd2x v2f64:$rS, iaddrX16:$dst), 3737 (STXV $rS, memrix16:$dst)>; 3738 3739def : Pat<(v2f64 (nonQuadwOffsetLoad xoaddr:$src)), (LXVX xoaddr:$src)>; 3740def : Pat<(v2i64 (nonQuadwOffsetLoad xoaddr:$src)), (LXVX xoaddr:$src)>; 3741def : Pat<(v4f32 (nonQuadwOffsetLoad xoaddr:$src)), (LXVX xoaddr:$src)>; 3742def : Pat<(v4i32 (nonQuadwOffsetLoad xoaddr:$src)), (LXVX xoaddr:$src)>; 3743def : Pat<(v4i32 (int_ppc_vsx_lxvw4x xoaddr:$src)), (LXVX xoaddr:$src)>; 3744def : Pat<(v2f64 (int_ppc_vsx_lxvd2x xoaddr:$src)), (LXVX xoaddr:$src)>; 3745def : Pat<(f128 (nonQuadwOffsetLoad xoaddr:$src)), 3746 (COPY_TO_REGCLASS (LXVX xoaddr:$src), VRRC)>; 3747def : Pat<(nonQuadwOffsetStore f128:$rS, xoaddr:$dst), 3748 (STXVX (COPY_TO_REGCLASS $rS, VSRC), xoaddr:$dst)>; 3749def : Pat<(nonQuadwOffsetStore v2f64:$rS, xoaddr:$dst), 3750 (STXVX $rS, xoaddr:$dst)>; 3751def : Pat<(nonQuadwOffsetStore v2i64:$rS, xoaddr:$dst), 3752 (STXVX $rS, xoaddr:$dst)>; 3753def : Pat<(nonQuadwOffsetStore v4f32:$rS, xoaddr:$dst), 3754 (STXVX $rS, xoaddr:$dst)>; 3755def : Pat<(nonQuadwOffsetStore v4i32:$rS, xoaddr:$dst), 3756 (STXVX $rS, xoaddr:$dst)>; 3757def : Pat<(int_ppc_vsx_stxvw4x v4i32:$rS, xoaddr:$dst), 3758 (STXVX $rS, xoaddr:$dst)>; 3759def : Pat<(int_ppc_vsx_stxvd2x v2f64:$rS, xoaddr:$dst), 3760 (STXVX $rS, xoaddr:$dst)>; 3761 3762// Build vectors from i8 loads 3763defm : ScalToVecWPermute<v8i16, ScalarLoads.ZELi8, 3764 (VSPLTHs 3, (LXSIBZX xoaddr:$src)), 3765 (VSPLTHs 3, (LXSIBZX xoaddr:$src))>; 3766defm : ScalToVecWPermute<v4i32, ScalarLoads.ZELi8, 3767 (XXSPLTWs (LXSIBZX xoaddr:$src), 1), 3768 (XXSPLTWs (LXSIBZX xoaddr:$src), 1)>; 3769defm : ScalToVecWPermute<v2i64, ScalarLoads.ZELi8i64, 3770 (XXPERMDIs (LXSIBZX xoaddr:$src), 0), 3771 (XXPERMDIs (LXSIBZX xoaddr:$src), 0)>; 3772defm : ScalToVecWPermute<v4i32, ScalarLoads.SELi8, 3773 (XXSPLTWs (VEXTSB2Ws (LXSIBZX xoaddr:$src)), 1), 3774 (XXSPLTWs (VEXTSB2Ws (LXSIBZX xoaddr:$src)), 1)>; 3775defm : ScalToVecWPermute<v2i64, ScalarLoads.SELi8i64, 3776 (XXPERMDIs (VEXTSB2Ds (LXSIBZX xoaddr:$src)), 0), 3777 (XXPERMDIs (VEXTSB2Ds (LXSIBZX xoaddr:$src)), 0)>; 3778 3779// Build vectors from i16 loads 3780defm : ScalToVecWPermute<v4i32, ScalarLoads.ZELi16, 3781 (XXSPLTWs (LXSIHZX xoaddr:$src), 1), 3782 (XXSPLTWs (LXSIHZX xoaddr:$src), 1)>; 3783defm : ScalToVecWPermute<v2i64, ScalarLoads.ZELi16i64, 3784 (XXPERMDIs (LXSIHZX xoaddr:$src), 0), 3785 (XXPERMDIs (LXSIHZX xoaddr:$src), 0)>; 3786defm : ScalToVecWPermute<v4i32, ScalarLoads.SELi16, 3787 (XXSPLTWs (VEXTSH2Ws (LXSIHZX xoaddr:$src)), 1), 3788 (XXSPLTWs (VEXTSH2Ws (LXSIHZX xoaddr:$src)), 1)>; 3789defm : ScalToVecWPermute<v2i64, ScalarLoads.SELi16i64, 3790 (XXPERMDIs (VEXTSH2Ds (LXSIHZX xoaddr:$src)), 0), 3791 (XXPERMDIs (VEXTSH2Ds (LXSIHZX xoaddr:$src)), 0)>; 3792 3793// Load/convert and convert/store patterns for f16. 3794def : Pat<(f64 (extloadf16 xoaddr:$src)), 3795 (f64 (XSCVHPDP (LXSIHZX xoaddr:$src)))>; 3796def : Pat<(truncstoref16 f64:$src, xoaddr:$dst), 3797 (STXSIHX (XSCVDPHP $src), xoaddr:$dst)>; 3798def : Pat<(f32 (extloadf16 xoaddr:$src)), 3799 (f32 (COPY_TO_REGCLASS (XSCVHPDP (LXSIHZX xoaddr:$src)), VSSRC))>; 3800def : Pat<(truncstoref16 f32:$src, xoaddr:$dst), 3801 (STXSIHX (XSCVDPHP (COPY_TO_REGCLASS $src, VSFRC)), xoaddr:$dst)>; 3802def : Pat<(f64 (f16_to_fp i32:$A)), 3803 (f64 (XSCVHPDP (MTVSRWZ $A)))>; 3804def : Pat<(f32 (f16_to_fp i32:$A)), 3805 (f32 (COPY_TO_REGCLASS (XSCVHPDP (MTVSRWZ $A)), VSSRC))>; 3806def : Pat<(i32 (fp_to_f16 f32:$A)), 3807 (i32 (MFVSRWZ (XSCVDPHP (COPY_TO_REGCLASS $A, VSFRC))))>; 3808def : Pat<(i32 (fp_to_f16 f64:$A)), (i32 (MFVSRWZ (XSCVDPHP $A)))>; 3809 3810// Vector sign extensions 3811def : Pat<(f64 (PPCVexts f64:$A, 1)), 3812 (f64 (COPY_TO_REGCLASS (VEXTSB2Ds $A), VSFRC))>; 3813def : Pat<(f64 (PPCVexts f64:$A, 2)), 3814 (f64 (COPY_TO_REGCLASS (VEXTSH2Ds $A), VSFRC))>; 3815 3816def : Pat<(f64 (extloadf32 iaddrX4:$src)), 3817 (COPY_TO_REGCLASS (DFLOADf32 iaddrX4:$src), VSFRC)>; 3818def : Pat<(f32 (fpround (f64 (extloadf32 iaddrX4:$src)))), 3819 (f32 (DFLOADf32 iaddrX4:$src))>; 3820 3821def : Pat<(v4f32 (PPCldvsxlh xaddr:$src)), 3822 (SUBREG_TO_REG (i64 1), (XFLOADf64 xaddr:$src), sub_64)>; 3823def : Pat<(v4f32 (PPCldvsxlh iaddrX4:$src)), 3824 (SUBREG_TO_REG (i64 1), (DFLOADf64 iaddrX4:$src), sub_64)>; 3825 3826// Convert (Un)Signed DWord in memory -> QP 3827def : Pat<(f128 (sint_to_fp (i64 (load xaddrX4:$src)))), 3828 (f128 (XSCVSDQP (LXSDX xaddrX4:$src)))>; 3829def : Pat<(f128 (sint_to_fp (i64 (load iaddrX4:$src)))), 3830 (f128 (XSCVSDQP (LXSD iaddrX4:$src)))>; 3831def : Pat<(f128 (uint_to_fp (i64 (load xaddrX4:$src)))), 3832 (f128 (XSCVUDQP (LXSDX xaddrX4:$src)))>; 3833def : Pat<(f128 (uint_to_fp (i64 (load iaddrX4:$src)))), 3834 (f128 (XSCVUDQP (LXSD iaddrX4:$src)))>; 3835 3836// Convert Unsigned HWord in memory -> QP 3837def : Pat<(f128 (uint_to_fp ScalarLoads.ZELi16)), 3838 (f128 (XSCVUDQP (LXSIHZX xaddr:$src)))>; 3839 3840// Convert Unsigned Byte in memory -> QP 3841def : Pat<(f128 (uint_to_fp ScalarLoads.ZELi8)), 3842 (f128 (XSCVUDQP (LXSIBZX xoaddr:$src)))>; 3843 3844// Truncate & Convert QP -> (Un)Signed (D)Word. 3845def : Pat<(i64 (any_fp_to_sint f128:$src)), (i64 (MFVRD (XSCVQPSDZ $src)))>; 3846def : Pat<(i64 (any_fp_to_uint f128:$src)), (i64 (MFVRD (XSCVQPUDZ $src)))>; 3847def : Pat<(i32 (any_fp_to_sint f128:$src)), 3848 (i32 (MFVSRWZ (COPY_TO_REGCLASS (XSCVQPSWZ $src), VFRC)))>; 3849def : Pat<(i32 (any_fp_to_uint f128:$src)), 3850 (i32 (MFVSRWZ (COPY_TO_REGCLASS (XSCVQPUWZ $src), VFRC)))>; 3851 3852// Instructions for store(fptosi). 3853// The 8-byte version is repeated here due to availability of D-Form STXSD. 3854def : Pat<(PPCstore_scal_int_from_vsr 3855 (f64 (PPCcv_fp_to_sint_in_vsr f128:$src)), xaddrX4:$dst, 8), 3856 (STXSDX (COPY_TO_REGCLASS (XSCVQPSDZ f128:$src), VFRC), 3857 xaddrX4:$dst)>; 3858def : Pat<(PPCstore_scal_int_from_vsr 3859 (f64 (PPCcv_fp_to_sint_in_vsr f128:$src)), iaddrX4:$dst, 8), 3860 (STXSD (COPY_TO_REGCLASS (XSCVQPSDZ f128:$src), VFRC), 3861 iaddrX4:$dst)>; 3862def : Pat<(PPCstore_scal_int_from_vsr 3863 (f64 (PPCcv_fp_to_sint_in_vsr f128:$src)), xoaddr:$dst, 4), 3864 (STXSIWX (COPY_TO_REGCLASS (XSCVQPSWZ $src), VFRC), xoaddr:$dst)>; 3865def : Pat<(PPCstore_scal_int_from_vsr 3866 (f64 (PPCcv_fp_to_sint_in_vsr f128:$src)), xoaddr:$dst, 2), 3867 (STXSIHX (COPY_TO_REGCLASS (XSCVQPSWZ $src), VFRC), xoaddr:$dst)>; 3868def : Pat<(PPCstore_scal_int_from_vsr 3869 (f64 (PPCcv_fp_to_sint_in_vsr f128:$src)), xoaddr:$dst, 1), 3870 (STXSIBX (COPY_TO_REGCLASS (XSCVQPSWZ $src), VFRC), xoaddr:$dst)>; 3871def : Pat<(PPCstore_scal_int_from_vsr 3872 (f64 (PPCcv_fp_to_sint_in_vsr f64:$src)), xaddrX4:$dst, 8), 3873 (STXSDX (XSCVDPSXDS f64:$src), xaddrX4:$dst)>; 3874def : Pat<(PPCstore_scal_int_from_vsr 3875 (f64 (PPCcv_fp_to_sint_in_vsr f64:$src)), iaddrX4:$dst, 8), 3876 (STXSD (XSCVDPSXDS f64:$src), iaddrX4:$dst)>; 3877def : Pat<(PPCstore_scal_int_from_vsr 3878 (f64 (PPCcv_fp_to_sint_in_vsr f64:$src)), xoaddr:$dst, 2), 3879 (STXSIHX (XSCVDPSXWS f64:$src), xoaddr:$dst)>; 3880def : Pat<(PPCstore_scal_int_from_vsr 3881 (f64 (PPCcv_fp_to_sint_in_vsr f64:$src)), xoaddr:$dst, 1), 3882 (STXSIBX (XSCVDPSXWS f64:$src), xoaddr:$dst)>; 3883 3884// Instructions for store(fptoui). 3885def : Pat<(PPCstore_scal_int_from_vsr 3886 (f64 (PPCcv_fp_to_uint_in_vsr f128:$src)), xaddrX4:$dst, 8), 3887 (STXSDX (COPY_TO_REGCLASS (XSCVQPUDZ f128:$src), VFRC), 3888 xaddrX4:$dst)>; 3889def : Pat<(PPCstore_scal_int_from_vsr 3890 (f64 (PPCcv_fp_to_uint_in_vsr f128:$src)), iaddrX4:$dst, 8), 3891 (STXSD (COPY_TO_REGCLASS (XSCVQPUDZ f128:$src), VFRC), 3892 iaddrX4:$dst)>; 3893def : Pat<(PPCstore_scal_int_from_vsr 3894 (f64 (PPCcv_fp_to_uint_in_vsr f128:$src)), xoaddr:$dst, 4), 3895 (STXSIWX (COPY_TO_REGCLASS (XSCVQPUWZ $src), VFRC), xoaddr:$dst)>; 3896def : Pat<(PPCstore_scal_int_from_vsr 3897 (f64 (PPCcv_fp_to_uint_in_vsr f128:$src)), xoaddr:$dst, 2), 3898 (STXSIHX (COPY_TO_REGCLASS (XSCVQPUWZ $src), VFRC), xoaddr:$dst)>; 3899def : Pat<(PPCstore_scal_int_from_vsr 3900 (f64 (PPCcv_fp_to_uint_in_vsr f128:$src)), xoaddr:$dst, 1), 3901 (STXSIBX (COPY_TO_REGCLASS (XSCVQPUWZ $src), VFRC), xoaddr:$dst)>; 3902def : Pat<(PPCstore_scal_int_from_vsr 3903 (f64 (PPCcv_fp_to_uint_in_vsr f64:$src)), xaddrX4:$dst, 8), 3904 (STXSDX (XSCVDPUXDS f64:$src), xaddrX4:$dst)>; 3905def : Pat<(PPCstore_scal_int_from_vsr 3906 (f64 (PPCcv_fp_to_uint_in_vsr f64:$src)), iaddrX4:$dst, 8), 3907 (STXSD (XSCVDPUXDS f64:$src), iaddrX4:$dst)>; 3908def : Pat<(PPCstore_scal_int_from_vsr 3909 (f64 (PPCcv_fp_to_uint_in_vsr f64:$src)), xoaddr:$dst, 2), 3910 (STXSIHX (XSCVDPUXWS f64:$src), xoaddr:$dst)>; 3911def : Pat<(PPCstore_scal_int_from_vsr 3912 (f64 (PPCcv_fp_to_uint_in_vsr f64:$src)), xoaddr:$dst, 1), 3913 (STXSIBX (XSCVDPUXWS f64:$src), xoaddr:$dst)>; 3914 3915// Round & Convert QP -> DP/SP 3916def : Pat<(f64 (any_fpround f128:$src)), (f64 (XSCVQPDP $src))>; 3917def : Pat<(f32 (any_fpround f128:$src)), (f32 (XSRSP (XSCVQPDPO $src)))>; 3918 3919// Convert SP -> QP 3920def : Pat<(f128 (any_fpextend f32:$src)), 3921 (f128 (XSCVDPQP (COPY_TO_REGCLASS $src, VFRC)))>; 3922 3923def : Pat<(f32 (PPCxsmaxc f32:$XA, f32:$XB)), 3924 (f32 (COPY_TO_REGCLASS (XSMAXCDP (COPY_TO_REGCLASS $XA, VSSRC), 3925 (COPY_TO_REGCLASS $XB, VSSRC)), 3926 VSSRC))>; 3927def : Pat<(f32 (PPCxsminc f32:$XA, f32:$XB)), 3928 (f32 (COPY_TO_REGCLASS (XSMINCDP (COPY_TO_REGCLASS $XA, VSSRC), 3929 (COPY_TO_REGCLASS $XB, VSSRC)), 3930 VSSRC))>; 3931 3932// Endianness-neutral patterns for const splats with ISA 3.0 instructions. 3933defm : ScalToVecWPermute<v4i32, (i32 i32:$A), (MTVSRWS $A), (MTVSRWS $A)>; 3934def : Pat<(v4i32 (build_vector i32:$A, i32:$A, i32:$A, i32:$A)), 3935 (v4i32 (MTVSRWS $A))>; 3936def : Pat<(v16i8 (build_vector immNonAllOneAnyExt8:$A, immNonAllOneAnyExt8:$A, 3937 immNonAllOneAnyExt8:$A, immNonAllOneAnyExt8:$A, 3938 immNonAllOneAnyExt8:$A, immNonAllOneAnyExt8:$A, 3939 immNonAllOneAnyExt8:$A, immNonAllOneAnyExt8:$A, 3940 immNonAllOneAnyExt8:$A, immNonAllOneAnyExt8:$A, 3941 immNonAllOneAnyExt8:$A, immNonAllOneAnyExt8:$A, 3942 immNonAllOneAnyExt8:$A, immNonAllOneAnyExt8:$A, 3943 immNonAllOneAnyExt8:$A, immNonAllOneAnyExt8:$A)), 3944 (v16i8 (COPY_TO_REGCLASS (XXSPLTIB imm:$A), VSRC))>; 3945defm : ScalToVecWPermute<v4i32, FltToIntLoad.A, 3946 (XVCVSPSXWS (LXVWSX xoaddr:$A)), 3947 (XVCVSPSXWS (LXVWSX xoaddr:$A))>; 3948defm : ScalToVecWPermute<v4i32, FltToUIntLoad.A, 3949 (XVCVSPUXWS (LXVWSX xoaddr:$A)), 3950 (XVCVSPUXWS (LXVWSX xoaddr:$A))>; 3951defm : ScalToVecWPermute< 3952 v4i32, DblToIntLoadP9.A, 3953 (XXSPLTW (SUBREG_TO_REG (i64 1), (XSCVDPSXWS (DFLOADf64 iaddrX4:$A)), sub_64), 1), 3954 (SUBREG_TO_REG (i64 1), (XSCVDPSXWS (DFLOADf64 iaddrX4:$A)), sub_64)>; 3955defm : ScalToVecWPermute< 3956 v4i32, DblToUIntLoadP9.A, 3957 (XXSPLTW (SUBREG_TO_REG (i64 1), (XSCVDPUXWS (DFLOADf64 iaddrX4:$A)), sub_64), 1), 3958 (SUBREG_TO_REG (i64 1), (XSCVDPUXWS (DFLOADf64 iaddrX4:$A)), sub_64)>; 3959defm : ScalToVecWPermute< 3960 v2i64, FltToLongLoadP9.A, 3961 (XXPERMDIs (XSCVDPSXDS (COPY_TO_REGCLASS (DFLOADf32 iaddrX4:$A), VSFRC)), 0), 3962 (SUBREG_TO_REG 3963 (i64 1), 3964 (XSCVDPSXDS (COPY_TO_REGCLASS (DFLOADf32 iaddrX4:$A), VSFRC)), sub_64)>; 3965defm : ScalToVecWPermute< 3966 v2i64, FltToULongLoadP9.A, 3967 (XXPERMDIs (XSCVDPUXDS (COPY_TO_REGCLASS (DFLOADf32 iaddrX4:$A), VSFRC)), 0), 3968 (SUBREG_TO_REG 3969 (i64 1), 3970 (XSCVDPUXDS (COPY_TO_REGCLASS (DFLOADf32 iaddrX4:$A), VSFRC)), sub_64)>; 3971def : Pat<(v4f32 (PPCldsplat xoaddr:$A)), 3972 (v4f32 (LXVWSX xoaddr:$A))>; 3973def : Pat<(v4i32 (PPCldsplat xoaddr:$A)), 3974 (v4i32 (LXVWSX xoaddr:$A))>; 3975} // HasVSX, HasP9Vector 3976 3977// Any Power9 VSX subtarget with equivalent length but better Power10 VSX 3978// patterns. 3979// Two identical blocks are required due to the slightly different predicates: 3980// One without P10 instructions, the other is BigEndian only with P10 instructions. 3981let Predicates = [HasVSX, HasP9Vector, NoP10Vector] in { 3982// Little endian Power10 subtargets produce a shorter pattern but require a 3983// COPY_TO_REGCLASS. The COPY_TO_REGCLASS makes it appear to need two instructions 3984// to perform the operation, when only one instruction is produced in practice. 3985// The NoP10Vector predicate excludes these patterns from Power10 VSX subtargets. 3986defm : ScalToVecWPermute<v16i8, ScalarLoads.Li8, 3987 (VSPLTBs 7, (LXSIBZX xoaddr:$src)), 3988 (VSPLTBs 7, (LXSIBZX xoaddr:$src))>; 3989// Build vectors from i16 loads 3990defm : ScalToVecWPermute<v8i16, ScalarLoads.Li16, 3991 (VSPLTHs 3, (LXSIHZX xoaddr:$src)), 3992 (VSPLTHs 3, (LXSIHZX xoaddr:$src))>; 3993} // HasVSX, HasP9Vector, NoP10Vector 3994 3995// Any big endian Power9 VSX subtarget 3996let Predicates = [HasVSX, HasP9Vector, IsBigEndian] in { 3997// Power10 VSX subtargets produce a shorter pattern for little endian targets 3998// but this is still the best pattern for Power9 and Power10 VSX big endian 3999// Build vectors from i8 loads 4000defm : ScalToVecWPermute<v16i8, ScalarLoads.Li8, 4001 (VSPLTBs 7, (LXSIBZX xoaddr:$src)), 4002 (VSPLTBs 7, (LXSIBZX xoaddr:$src))>; 4003// Build vectors from i16 loads 4004defm : ScalToVecWPermute<v8i16, ScalarLoads.Li16, 4005 (VSPLTHs 3, (LXSIHZX xoaddr:$src)), 4006 (VSPLTHs 3, (LXSIHZX xoaddr:$src))>; 4007} // HasVSX, HasP9Vector, NoP10Vector 4008 4009// Big endian 64Bit Power9 subtarget. 4010let Predicates = [HasVSX, HasP9Vector, IsBigEndian, IsPPC64] in { 4011def : Pat<(f32 (PPCfcfidus (f64 (PPCmtvsrz (i32 (extractelt v4i32:$A, 0)))))), 4012 (f32 (XSCVUXDSP (XXEXTRACTUW $A, 0)))>; 4013def : Pat<(f32 (PPCfcfidus (f64 (PPCmtvsrz (i32 (extractelt v4i32:$A, 1)))))), 4014 (f32 (XSCVUXDSP (XXEXTRACTUW $A, 4)))>; 4015def : Pat<(f32 (PPCfcfidus (f64 (PPCmtvsrz (i32 (extractelt v4i32:$A, 2)))))), 4016 (f32 (XSCVUXDSP (XXEXTRACTUW $A, 8)))>; 4017def : Pat<(f32 (PPCfcfidus (f64 (PPCmtvsrz (i32 (extractelt v4i32:$A, 3)))))), 4018 (f32 (XSCVUXDSP (XXEXTRACTUW $A, 12)))>; 4019def : Pat<(f64 (PPCfcfidu (f64 (PPCmtvsrz (i32 (extractelt v4i32:$A, 0)))))), 4020 (f64 (XSCVUXDDP (XXEXTRACTUW $A, 0)))>; 4021def : Pat<(f64 (PPCfcfidu (f64 (PPCmtvsrz (i32 (extractelt v4i32:$A, 1)))))), 4022 (f64 (XSCVUXDDP (XXEXTRACTUW $A, 4)))>; 4023def : Pat<(f64 (PPCfcfidu (f64 (PPCmtvsrz (i32 (extractelt v4i32:$A, 2)))))), 4024 (f64 (XSCVUXDDP (XXEXTRACTUW $A, 8)))>; 4025def : Pat<(f64 (PPCfcfidu (f64 (PPCmtvsrz (i32 (extractelt v4i32:$A, 3)))))), 4026 (f64 (XSCVUXDDP (XXEXTRACTUW $A, 12)))>; 4027def : Pat<(v4i32 (insertelt v4i32:$A, i32:$B, 0)), 4028 (v4i32 (XXINSERTW v4i32:$A, AlignValues.I32_TO_BE_WORD1, 0))>; 4029def : Pat<(v4i32 (insertelt v4i32:$A, i32:$B, 1)), 4030 (v4i32 (XXINSERTW v4i32:$A, AlignValues.I32_TO_BE_WORD1, 4))>; 4031def : Pat<(v4i32 (insertelt v4i32:$A, i32:$B, 2)), 4032 (v4i32 (XXINSERTW v4i32:$A, AlignValues.I32_TO_BE_WORD1, 8))>; 4033def : Pat<(v4i32 (insertelt v4i32:$A, i32:$B, 3)), 4034 (v4i32 (XXINSERTW v4i32:$A, AlignValues.I32_TO_BE_WORD1, 12))>; 4035def : Pat<(v4f32 (insertelt v4f32:$A, f32:$B, 0)), 4036 (v4f32 (XXINSERTW v4f32:$A, AlignValues.F32_TO_BE_WORD1, 0))>; 4037def : Pat<(v4f32 (insertelt v4f32:$A, f32:$B, 1)), 4038 (v4f32 (XXINSERTW v4f32:$A, AlignValues.F32_TO_BE_WORD1, 4))>; 4039def : Pat<(v4f32 (insertelt v4f32:$A, f32:$B, 2)), 4040 (v4f32 (XXINSERTW v4f32:$A, AlignValues.F32_TO_BE_WORD1, 8))>; 4041def : Pat<(v4f32 (insertelt v4f32:$A, f32:$B, 3)), 4042 (v4f32 (XXINSERTW v4f32:$A, AlignValues.F32_TO_BE_WORD1, 12))>; 4043 4044// Scalar stores of i8 4045def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 0)), xoaddr:$dst), 4046 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 9)), VSRC), xoaddr:$dst)>; 4047def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 1)), xoaddr:$dst), 4048 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 10)), VSRC), xoaddr:$dst)>; 4049def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 2)), xoaddr:$dst), 4050 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 11)), VSRC), xoaddr:$dst)>; 4051def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 3)), xoaddr:$dst), 4052 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 12)), VSRC), xoaddr:$dst)>; 4053def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 4)), xoaddr:$dst), 4054 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 13)), VSRC), xoaddr:$dst)>; 4055def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 5)), xoaddr:$dst), 4056 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 14)), VSRC), xoaddr:$dst)>; 4057def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 6)), xoaddr:$dst), 4058 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 15)), VSRC), xoaddr:$dst)>; 4059def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 7)), xoaddr:$dst), 4060 (STXSIBXv (COPY_TO_REGCLASS $S, VSRC), xoaddr:$dst)>; 4061def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 8)), xoaddr:$dst), 4062 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 1)), VSRC), xoaddr:$dst)>; 4063def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 9)), xoaddr:$dst), 4064 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 2)), VSRC), xoaddr:$dst)>; 4065def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 10)), xoaddr:$dst), 4066 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 3)), VSRC), xoaddr:$dst)>; 4067def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 11)), xoaddr:$dst), 4068 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 4)), VSRC), xoaddr:$dst)>; 4069def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 12)), xoaddr:$dst), 4070 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 5)), VSRC), xoaddr:$dst)>; 4071def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 13)), xoaddr:$dst), 4072 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 6)), VSRC), xoaddr:$dst)>; 4073def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 14)), xoaddr:$dst), 4074 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 7)), VSRC), xoaddr:$dst)>; 4075def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 15)), xoaddr:$dst), 4076 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 8)), VSRC), xoaddr:$dst)>; 4077 4078// Scalar stores of i16 4079def : Pat<(truncstorei16 (i32 (vector_extract v8i16:$S, 0)), xoaddr:$dst), 4080 (STXSIHXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 10)), VSRC), xoaddr:$dst)>; 4081def : Pat<(truncstorei16 (i32 (vector_extract v8i16:$S, 1)), xoaddr:$dst), 4082 (STXSIHXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 12)), VSRC), xoaddr:$dst)>; 4083def : Pat<(truncstorei16 (i32 (vector_extract v8i16:$S, 2)), xoaddr:$dst), 4084 (STXSIHXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 14)), VSRC), xoaddr:$dst)>; 4085def : Pat<(truncstorei16 (i32 (vector_extract v8i16:$S, 3)), xoaddr:$dst), 4086 (STXSIHXv (COPY_TO_REGCLASS $S, VSRC), xoaddr:$dst)>; 4087def : Pat<(truncstorei16 (i32 (vector_extract v8i16:$S, 4)), xoaddr:$dst), 4088 (STXSIHXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 2)), VSRC), xoaddr:$dst)>; 4089def : Pat<(truncstorei16 (i32 (vector_extract v8i16:$S, 5)), xoaddr:$dst), 4090 (STXSIHXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 4)), VSRC), xoaddr:$dst)>; 4091def : Pat<(truncstorei16 (i32 (vector_extract v8i16:$S, 6)), xoaddr:$dst), 4092 (STXSIHXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 6)), VSRC), xoaddr:$dst)>; 4093def : Pat<(truncstorei16 (i32 (vector_extract v8i16:$S, 7)), xoaddr:$dst), 4094 (STXSIHXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 8)), VSRC), xoaddr:$dst)>; 4095 4096def : Pat<(v2i64 (scalar_to_vector (i64 (load iaddrX4:$src)))), 4097 (v2i64 (SUBREG_TO_REG (i64 1), (DFLOADf64 iaddrX4:$src), sub_64))>; 4098def : Pat<(v2i64 (scalar_to_vector (i64 (load xaddrX4:$src)))), 4099 (v2i64 (SUBREG_TO_REG (i64 1), (XFLOADf64 xaddrX4:$src), sub_64))>; 4100 4101def : Pat<(v2f64 (scalar_to_vector (f64 (load iaddrX4:$src)))), 4102 (v2f64 (SUBREG_TO_REG (i64 1), (DFLOADf64 iaddrX4:$src), sub_64))>; 4103def : Pat<(v2f64 (scalar_to_vector (f64 (load xaddrX4:$src)))), 4104 (v2f64 (SUBREG_TO_REG (i64 1), (XFLOADf64 xaddrX4:$src), sub_64))>; 4105def : Pat<(store (i64 (extractelt v2i64:$A, 1)), xaddrX4:$src), 4106 (XFSTOREf64 (EXTRACT_SUBREG (XXPERMDI $A, $A, 2), 4107 sub_64), xaddrX4:$src)>; 4108def : Pat<(store (f64 (extractelt v2f64:$A, 1)), xaddrX4:$src), 4109 (XFSTOREf64 (EXTRACT_SUBREG (XXPERMDI $A, $A, 2), 4110 sub_64), xaddrX4:$src)>; 4111def : Pat<(store (i64 (extractelt v2i64:$A, 0)), xaddrX4:$src), 4112 (XFSTOREf64 (EXTRACT_SUBREG $A, sub_64), xaddrX4:$src)>; 4113def : Pat<(store (f64 (extractelt v2f64:$A, 0)), xaddrX4:$src), 4114 (XFSTOREf64 (EXTRACT_SUBREG $A, sub_64), xaddrX4:$src)>; 4115def : Pat<(store (i64 (extractelt v2i64:$A, 1)), iaddrX4:$src), 4116 (DFSTOREf64 (EXTRACT_SUBREG (XXPERMDI $A, $A, 2), 4117 sub_64), iaddrX4:$src)>; 4118def : Pat<(store (f64 (extractelt v2f64:$A, 1)), iaddrX4:$src), 4119 (DFSTOREf64 (EXTRACT_SUBREG (XXPERMDI $A, $A, 2), 4120 sub_64), iaddrX4:$src)>; 4121def : Pat<(store (i64 (extractelt v2i64:$A, 0)), iaddrX4:$src), 4122 (DFSTOREf64 (EXTRACT_SUBREG $A, sub_64), iaddrX4:$src)>; 4123def : Pat<(store (f64 (extractelt v2f64:$A, 0)), iaddrX4:$src), 4124 (DFSTOREf64 (EXTRACT_SUBREG $A, sub_64), iaddrX4:$src)>; 4125 4126// (Un)Signed DWord vector extract -> QP 4127def : Pat<(f128 (sint_to_fp (i64 (extractelt v2i64:$src, 0)))), 4128 (f128 (XSCVSDQP (COPY_TO_REGCLASS $src, VFRC)))>; 4129def : Pat<(f128 (sint_to_fp (i64 (extractelt v2i64:$src, 1)))), 4130 (f128 (XSCVSDQP 4131 (EXTRACT_SUBREG (XXPERMDI $src, $src, 3), sub_64)))>; 4132def : Pat<(f128 (uint_to_fp (i64 (extractelt v2i64:$src, 0)))), 4133 (f128 (XSCVUDQP (COPY_TO_REGCLASS $src, VFRC)))>; 4134def : Pat<(f128 (uint_to_fp (i64 (extractelt v2i64:$src, 1)))), 4135 (f128 (XSCVUDQP 4136 (EXTRACT_SUBREG (XXPERMDI $src, $src, 3), sub_64)))>; 4137 4138// (Un)Signed Word vector extract -> QP 4139def : Pat<(f128 (sint_to_fp (i32 (extractelt v4i32:$src, 1)))), 4140 (f128 (XSCVSDQP (EXTRACT_SUBREG (VEXTSW2D $src), sub_64)))>; 4141foreach Idx = [0,2,3] in { 4142 def : Pat<(f128 (sint_to_fp (i32 (extractelt v4i32:$src, Idx)))), 4143 (f128 (XSCVSDQP (EXTRACT_SUBREG 4144 (VEXTSW2D (VSPLTW Idx, $src)), sub_64)))>; 4145} 4146foreach Idx = 0-3 in { 4147 def : Pat<(f128 (uint_to_fp (i32 (extractelt v4i32:$src, Idx)))), 4148 (f128 (XSCVUDQP (XXEXTRACTUW $src, !shl(Idx, 2))))>; 4149} 4150 4151// (Un)Signed HWord vector extract -> QP 4152foreach Idx = 0-7 in { 4153 def : Pat<(f128 (sint_to_fp 4154 (i32 (sext_inreg 4155 (vector_extract v8i16:$src, Idx), i16)))), 4156 (f128 (XSCVSDQP (EXTRACT_SUBREG 4157 (VEXTSH2D (VEXTRACTUH !add(Idx, Idx), $src)), 4158 sub_64)))>; 4159 // The SDAG adds the `and` since an `i16` is being extracted as an `i32`. 4160 def : Pat<(f128 (uint_to_fp 4161 (and (i32 (vector_extract v8i16:$src, Idx)), 65535))), 4162 (f128 (XSCVUDQP (EXTRACT_SUBREG 4163 (VEXTRACTUH !add(Idx, Idx), $src), sub_64)))>; 4164} 4165 4166// (Un)Signed Byte vector extract -> QP 4167foreach Idx = 0-15 in { 4168 def : Pat<(f128 (sint_to_fp 4169 (i32 (sext_inreg (vector_extract v16i8:$src, Idx), 4170 i8)))), 4171 (f128 (XSCVSDQP (EXTRACT_SUBREG 4172 (VEXTSB2D (VEXTRACTUB Idx, $src)), sub_64)))>; 4173 def : Pat<(f128 (uint_to_fp 4174 (and (i32 (vector_extract v16i8:$src, Idx)), 255))), 4175 (f128 (XSCVUDQP 4176 (EXTRACT_SUBREG (VEXTRACTUB Idx, $src), sub_64)))>; 4177} 4178 4179// Unsiged int in vsx register -> QP 4180def : Pat<(f128 (uint_to_fp (i32 (PPCmfvsr f64:$src)))), 4181 (f128 (XSCVUDQP 4182 (XXEXTRACTUW (SUBREG_TO_REG (i64 1), $src, sub_64), 4)))>; 4183} // HasVSX, HasP9Vector, IsBigEndian, IsPPC64 4184 4185// Little endian Power9 subtarget. 4186let Predicates = [HasVSX, HasP9Vector, IsLittleEndian] in { 4187def : Pat<(f32 (PPCfcfidus (f64 (PPCmtvsrz (i32 (extractelt v4i32:$A, 0)))))), 4188 (f32 (XSCVUXDSP (XXEXTRACTUW $A, 12)))>; 4189def : Pat<(f32 (PPCfcfidus (f64 (PPCmtvsrz (i32 (extractelt v4i32:$A, 1)))))), 4190 (f32 (XSCVUXDSP (XXEXTRACTUW $A, 8)))>; 4191def : Pat<(f32 (PPCfcfidus (f64 (PPCmtvsrz (i32 (extractelt v4i32:$A, 2)))))), 4192 (f32 (XSCVUXDSP (XXEXTRACTUW $A, 4)))>; 4193def : Pat<(f32 (PPCfcfidus (f64 (PPCmtvsrz (i32 (extractelt v4i32:$A, 3)))))), 4194 (f32 (XSCVUXDSP (XXEXTRACTUW $A, 0)))>; 4195def : Pat<(f64 (PPCfcfidu (f64 (PPCmtvsrz (i32 (extractelt v4i32:$A, 0)))))), 4196 (f64 (XSCVUXDDP (XXEXTRACTUW $A, 12)))>; 4197def : Pat<(f64 (PPCfcfidu (f64 (PPCmtvsrz (i32 (extractelt v4i32:$A, 1)))))), 4198 (f64 (XSCVUXDDP (XXEXTRACTUW $A, 8)))>; 4199def : Pat<(f64 (PPCfcfidu (f64 (PPCmtvsrz (i32 (extractelt v4i32:$A, 2)))))), 4200 (f64 (XSCVUXDDP (XXEXTRACTUW $A, 4)))>; 4201def : Pat<(f64 (PPCfcfidu (f64 (PPCmtvsrz (i32 (extractelt v4i32:$A, 3)))))), 4202 (f64 (XSCVUXDDP (XXEXTRACTUW $A, 0)))>; 4203def : Pat<(v4i32 (insertelt v4i32:$A, i32:$B, 0)), 4204 (v4i32 (XXINSERTW v4i32:$A, AlignValues.I32_TO_BE_WORD1, 12))>; 4205def : Pat<(v4i32 (insertelt v4i32:$A, i32:$B, 1)), 4206 (v4i32 (XXINSERTW v4i32:$A, AlignValues.I32_TO_BE_WORD1, 8))>; 4207def : Pat<(v4i32 (insertelt v4i32:$A, i32:$B, 2)), 4208 (v4i32 (XXINSERTW v4i32:$A, AlignValues.I32_TO_BE_WORD1, 4))>; 4209def : Pat<(v4i32 (insertelt v4i32:$A, i32:$B, 3)), 4210 (v4i32 (XXINSERTW v4i32:$A, AlignValues.I32_TO_BE_WORD1, 0))>; 4211def : Pat<(v4f32 (insertelt v4f32:$A, f32:$B, 0)), 4212 (v4f32 (XXINSERTW v4f32:$A, AlignValues.F32_TO_BE_WORD1, 12))>; 4213def : Pat<(v4f32 (insertelt v4f32:$A, f32:$B, 1)), 4214 (v4f32 (XXINSERTW v4f32:$A, AlignValues.F32_TO_BE_WORD1, 8))>; 4215def : Pat<(v4f32 (insertelt v4f32:$A, f32:$B, 2)), 4216 (v4f32 (XXINSERTW v4f32:$A, AlignValues.F32_TO_BE_WORD1, 4))>; 4217def : Pat<(v4f32 (insertelt v4f32:$A, f32:$B, 3)), 4218 (v4f32 (XXINSERTW v4f32:$A, AlignValues.F32_TO_BE_WORD1, 0))>; 4219 4220def : Pat<(v8i16 (PPCld_vec_be xoaddr:$src)), 4221 (COPY_TO_REGCLASS (LXVH8X xoaddr:$src), VRRC)>; 4222def : Pat<(PPCst_vec_be v8i16:$rS, xoaddr:$dst), 4223 (STXVH8X (COPY_TO_REGCLASS $rS, VSRC), xoaddr:$dst)>; 4224 4225def : Pat<(v16i8 (PPCld_vec_be xoaddr:$src)), 4226 (COPY_TO_REGCLASS (LXVB16X xoaddr:$src), VRRC)>; 4227def : Pat<(PPCst_vec_be v16i8:$rS, xoaddr:$dst), 4228 (STXVB16X (COPY_TO_REGCLASS $rS, VSRC), xoaddr:$dst)>; 4229 4230// Scalar stores of i8 4231def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 0)), xoaddr:$dst), 4232 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 8)), VSRC), xoaddr:$dst)>; 4233def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 1)), xoaddr:$dst), 4234 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 7)), VSRC), xoaddr:$dst)>; 4235def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 2)), xoaddr:$dst), 4236 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 6)), VSRC), xoaddr:$dst)>; 4237def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 3)), xoaddr:$dst), 4238 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 5)), VSRC), xoaddr:$dst)>; 4239def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 4)), xoaddr:$dst), 4240 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 4)), VSRC), xoaddr:$dst)>; 4241def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 5)), xoaddr:$dst), 4242 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 3)), VSRC), xoaddr:$dst)>; 4243def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 6)), xoaddr:$dst), 4244 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 2)), VSRC), xoaddr:$dst)>; 4245def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 7)), xoaddr:$dst), 4246 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 1)), VSRC), xoaddr:$dst)>; 4247def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 8)), xoaddr:$dst), 4248 (STXSIBXv (COPY_TO_REGCLASS $S, VSRC), xoaddr:$dst)>; 4249def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 9)), xoaddr:$dst), 4250 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 15)), VSRC), xoaddr:$dst)>; 4251def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 10)), xoaddr:$dst), 4252 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 14)), VSRC), xoaddr:$dst)>; 4253def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 11)), xoaddr:$dst), 4254 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 13)), VSRC), xoaddr:$dst)>; 4255def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 12)), xoaddr:$dst), 4256 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 12)), VSRC), xoaddr:$dst)>; 4257def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 13)), xoaddr:$dst), 4258 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 11)), VSRC), xoaddr:$dst)>; 4259def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 14)), xoaddr:$dst), 4260 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 10)), VSRC), xoaddr:$dst)>; 4261def : Pat<(truncstorei8 (i32 (vector_extract v16i8:$S, 15)), xoaddr:$dst), 4262 (STXSIBXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 9)), VSRC), xoaddr:$dst)>; 4263 4264// Scalar stores of i16 4265def : Pat<(truncstorei16 (i32 (vector_extract v8i16:$S, 0)), xoaddr:$dst), 4266 (STXSIHXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 8)), VSRC), xoaddr:$dst)>; 4267def : Pat<(truncstorei16 (i32 (vector_extract v8i16:$S, 1)), xoaddr:$dst), 4268 (STXSIHXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 6)), VSRC), xoaddr:$dst)>; 4269def : Pat<(truncstorei16 (i32 (vector_extract v8i16:$S, 2)), xoaddr:$dst), 4270 (STXSIHXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 4)), VSRC), xoaddr:$dst)>; 4271def : Pat<(truncstorei16 (i32 (vector_extract v8i16:$S, 3)), xoaddr:$dst), 4272 (STXSIHXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 2)), VSRC), xoaddr:$dst)>; 4273def : Pat<(truncstorei16 (i32 (vector_extract v8i16:$S, 4)), xoaddr:$dst), 4274 (STXSIHXv (COPY_TO_REGCLASS $S, VSRC), xoaddr:$dst)>; 4275def : Pat<(truncstorei16 (i32 (vector_extract v8i16:$S, 5)), xoaddr:$dst), 4276 (STXSIHXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 14)), VSRC), xoaddr:$dst)>; 4277def : Pat<(truncstorei16 (i32 (vector_extract v8i16:$S, 6)), xoaddr:$dst), 4278 (STXSIHXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 12)), VSRC), xoaddr:$dst)>; 4279def : Pat<(truncstorei16 (i32 (vector_extract v8i16:$S, 7)), xoaddr:$dst), 4280 (STXSIHXv (COPY_TO_REGCLASS (v16i8 (VSLDOI $S, $S, 10)), VSRC), xoaddr:$dst)>; 4281 4282defm : ScalToVecWPermute< 4283 v2i64, (i64 (load iaddrX4:$src)), 4284 (XXPERMDIs (DFLOADf64 iaddrX4:$src), 2), 4285 (SUBREG_TO_REG (i64 1), (DFLOADf64 iaddrX4:$src), sub_64)>; 4286defm : ScalToVecWPermute< 4287 v2i64, (i64 (load xaddrX4:$src)), 4288 (XXPERMDIs (XFLOADf64 xaddrX4:$src), 2), 4289 (SUBREG_TO_REG (i64 1), (XFLOADf64 xaddrX4:$src), sub_64)>; 4290defm : ScalToVecWPermute< 4291 v2f64, (f64 (load iaddrX4:$src)), 4292 (XXPERMDIs (DFLOADf64 iaddrX4:$src), 2), 4293 (SUBREG_TO_REG (i64 1), (DFLOADf64 iaddrX4:$src), sub_64)>; 4294defm : ScalToVecWPermute< 4295 v2f64, (f64 (load xaddrX4:$src)), 4296 (XXPERMDIs (XFLOADf64 xaddrX4:$src), 2), 4297 (SUBREG_TO_REG (i64 1), (XFLOADf64 xaddrX4:$src), sub_64)>; 4298 4299def : Pat<(store (i64 (extractelt v2i64:$A, 0)), xaddrX4:$src), 4300 (XFSTOREf64 (EXTRACT_SUBREG (XXPERMDI $A, $A, 2), 4301 sub_64), xaddrX4:$src)>; 4302def : Pat<(store (f64 (extractelt v2f64:$A, 0)), xaddrX4:$src), 4303 (XFSTOREf64 (EXTRACT_SUBREG (XXPERMDI $A, $A, 2), 4304 sub_64), xaddrX4:$src)>; 4305def : Pat<(store (i64 (extractelt v2i64:$A, 1)), xaddrX4:$src), 4306 (XFSTOREf64 (EXTRACT_SUBREG $A, sub_64), xaddrX4:$src)>; 4307def : Pat<(store (f64 (extractelt v2f64:$A, 1)), xaddrX4:$src), 4308 (XFSTOREf64 (EXTRACT_SUBREG $A, sub_64), xaddrX4:$src)>; 4309def : Pat<(store (i64 (extractelt v2i64:$A, 0)), iaddrX4:$src), 4310 (DFSTOREf64 (EXTRACT_SUBREG (XXPERMDI $A, $A, 2), 4311 sub_64), iaddrX4:$src)>; 4312def : Pat<(store (f64 (extractelt v2f64:$A, 0)), iaddrX4:$src), 4313 (DFSTOREf64 (EXTRACT_SUBREG (XXPERMDI $A, $A, 2), sub_64), 4314 iaddrX4:$src)>; 4315def : Pat<(store (i64 (extractelt v2i64:$A, 1)), iaddrX4:$src), 4316 (DFSTOREf64 (EXTRACT_SUBREG $A, sub_64), iaddrX4:$src)>; 4317def : Pat<(store (f64 (extractelt v2f64:$A, 1)), iaddrX4:$src), 4318 (DFSTOREf64 (EXTRACT_SUBREG $A, sub_64), iaddrX4:$src)>; 4319 4320// (Un)Signed DWord vector extract -> QP 4321def : Pat<(f128 (sint_to_fp (i64 (extractelt v2i64:$src, 0)))), 4322 (f128 (XSCVSDQP 4323 (EXTRACT_SUBREG (XXPERMDI $src, $src, 3), sub_64)))>; 4324def : Pat<(f128 (sint_to_fp (i64 (extractelt v2i64:$src, 1)))), 4325 (f128 (XSCVSDQP (COPY_TO_REGCLASS $src, VFRC)))>; 4326def : Pat<(f128 (uint_to_fp (i64 (extractelt v2i64:$src, 0)))), 4327 (f128 (XSCVUDQP 4328 (EXTRACT_SUBREG (XXPERMDI $src, $src, 3), sub_64)))>; 4329def : Pat<(f128 (uint_to_fp (i64 (extractelt v2i64:$src, 1)))), 4330 (f128 (XSCVUDQP (COPY_TO_REGCLASS $src, VFRC)))>; 4331 4332// (Un)Signed Word vector extract -> QP 4333foreach Idx = [[0,3],[1,2],[3,0]] in { 4334 def : Pat<(f128 (sint_to_fp (i32 (extractelt v4i32:$src, !head(Idx))))), 4335 (f128 (XSCVSDQP (EXTRACT_SUBREG 4336 (VEXTSW2D (VSPLTW !head(!tail(Idx)), $src)), 4337 sub_64)))>; 4338} 4339def : Pat<(f128 (sint_to_fp (i32 (extractelt v4i32:$src, 2)))), 4340 (f128 (XSCVSDQP (EXTRACT_SUBREG (VEXTSW2D $src), sub_64)))>; 4341 4342foreach Idx = [[0,12],[1,8],[2,4],[3,0]] in { 4343 def : Pat<(f128 (uint_to_fp (i32 (extractelt v4i32:$src, !head(Idx))))), 4344 (f128 (XSCVUDQP (XXEXTRACTUW $src, !head(!tail(Idx)))))>; 4345} 4346 4347// (Un)Signed HWord vector extract -> QP 4348// The Nested foreach lists identifies the vector element and corresponding 4349// register byte location. 4350foreach Idx = [[0,14],[1,12],[2,10],[3,8],[4,6],[5,4],[6,2],[7,0]] in { 4351 def : Pat<(f128 (sint_to_fp 4352 (i32 (sext_inreg 4353 (vector_extract v8i16:$src, !head(Idx)), i16)))), 4354 (f128 (XSCVSDQP 4355 (EXTRACT_SUBREG (VEXTSH2D 4356 (VEXTRACTUH !head(!tail(Idx)), $src)), 4357 sub_64)))>; 4358 def : Pat<(f128 (uint_to_fp 4359 (and (i32 (vector_extract v8i16:$src, !head(Idx))), 4360 65535))), 4361 (f128 (XSCVUDQP (EXTRACT_SUBREG 4362 (VEXTRACTUH !head(!tail(Idx)), $src), sub_64)))>; 4363} 4364 4365// (Un)Signed Byte vector extract -> QP 4366foreach Idx = [[0,15],[1,14],[2,13],[3,12],[4,11],[5,10],[6,9],[7,8],[8,7], 4367 [9,6],[10,5],[11,4],[12,3],[13,2],[14,1],[15,0]] in { 4368 def : Pat<(f128 (sint_to_fp 4369 (i32 (sext_inreg 4370 (vector_extract v16i8:$src, !head(Idx)), i8)))), 4371 (f128 (XSCVSDQP 4372 (EXTRACT_SUBREG 4373 (VEXTSB2D (VEXTRACTUB !head(!tail(Idx)), $src)), 4374 sub_64)))>; 4375 def : Pat<(f128 (uint_to_fp 4376 (and (i32 (vector_extract v16i8:$src, !head(Idx))), 4377 255))), 4378 (f128 (XSCVUDQP 4379 (EXTRACT_SUBREG 4380 (VEXTRACTUB !head(!tail(Idx)), $src), sub_64)))>; 4381} 4382 4383// Unsiged int in vsx register -> QP 4384def : Pat<(f128 (uint_to_fp (i32 (PPCmfvsr f64:$src)))), 4385 (f128 (XSCVUDQP 4386 (XXEXTRACTUW (SUBREG_TO_REG (i64 1), $src, sub_64), 8)))>; 4387} // HasVSX, HasP9Vector, IsLittleEndian 4388 4389// Any Power9 VSX subtarget that supports Power9 Altivec. 4390let Predicates = [HasVSX, HasP9Altivec] in { 4391// Put this P9Altivec related definition here since it's possible to be 4392// selected to VSX instruction xvnegsp, avoid possible undef. 4393def : Pat<(v4i32 (PPCvabsd v4i32:$A, v4i32:$B, (i32 0))), 4394 (v4i32 (VABSDUW $A, $B))>; 4395 4396def : Pat<(v8i16 (PPCvabsd v8i16:$A, v8i16:$B, (i32 0))), 4397 (v8i16 (VABSDUH $A, $B))>; 4398 4399def : Pat<(v16i8 (PPCvabsd v16i8:$A, v16i8:$B, (i32 0))), 4400 (v16i8 (VABSDUB $A, $B))>; 4401 4402// As PPCVABSD description, the last operand indicates whether do the 4403// sign bit flip. 4404def : Pat<(v4i32 (PPCvabsd v4i32:$A, v4i32:$B, (i32 1))), 4405 (v4i32 (VABSDUW (XVNEGSP $A), (XVNEGSP $B)))>; 4406} // HasVSX, HasP9Altivec 4407 4408// Big endian Power9 64Bit VSX subtargets with P9 Altivec support. 4409let Predicates = [HasVSX, HasP9Altivec, IsBigEndian, IsPPC64] in { 4410def : Pat<(i64 (anyext (i32 (vector_extract v16i8:$S, i64:$Idx)))), 4411 (VEXTUBLX $Idx, $S)>; 4412 4413def : Pat<(i64 (anyext (i32 (vector_extract v8i16:$S, i64:$Idx)))), 4414 (VEXTUHLX (RLWINM8 $Idx, 1, 28, 30), $S)>; 4415def : Pat<(i64 (anyext (i32 (vector_extract v8i16:$S, 0)))), 4416 (VEXTUHLX (LI8 0), $S)>; 4417def : Pat<(i64 (anyext (i32 (vector_extract v8i16:$S, 1)))), 4418 (VEXTUHLX (LI8 2), $S)>; 4419def : Pat<(i64 (anyext (i32 (vector_extract v8i16:$S, 2)))), 4420 (VEXTUHLX (LI8 4), $S)>; 4421def : Pat<(i64 (anyext (i32 (vector_extract v8i16:$S, 3)))), 4422 (VEXTUHLX (LI8 6), $S)>; 4423def : Pat<(i64 (anyext (i32 (vector_extract v8i16:$S, 4)))), 4424 (VEXTUHLX (LI8 8), $S)>; 4425def : Pat<(i64 (anyext (i32 (vector_extract v8i16:$S, 5)))), 4426 (VEXTUHLX (LI8 10), $S)>; 4427def : Pat<(i64 (anyext (i32 (vector_extract v8i16:$S, 6)))), 4428 (VEXTUHLX (LI8 12), $S)>; 4429def : Pat<(i64 (anyext (i32 (vector_extract v8i16:$S, 7)))), 4430 (VEXTUHLX (LI8 14), $S)>; 4431 4432def : Pat<(i64 (zext (i32 (vector_extract v4i32:$S, i64:$Idx)))), 4433 (VEXTUWLX (RLWINM8 $Idx, 2, 28, 29), $S)>; 4434def : Pat<(i64 (zext (i32 (vector_extract v4i32:$S, 0)))), 4435 (VEXTUWLX (LI8 0), $S)>; 4436 4437// For extracting BE word 1, MFVSRWZ is better than VEXTUWLX 4438def : Pat<(i64 (zext (i32 (vector_extract v4i32:$S, 1)))), 4439 (INSERT_SUBREG (i64 (IMPLICIT_DEF)), 4440 (i32 VectorExtractions.LE_WORD_2), sub_32)>; 4441def : Pat<(i64 (zext (i32 (vector_extract v4i32:$S, 2)))), 4442 (VEXTUWLX (LI8 8), $S)>; 4443def : Pat<(i64 (zext (i32 (vector_extract v4i32:$S, 3)))), 4444 (VEXTUWLX (LI8 12), $S)>; 4445 4446def : Pat<(i64 (sext (i32 (vector_extract v4i32:$S, i64:$Idx)))), 4447 (EXTSW (VEXTUWLX (RLWINM8 $Idx, 2, 28, 29), $S))>; 4448def : Pat<(i64 (sext (i32 (vector_extract v4i32:$S, 0)))), 4449 (EXTSW (VEXTUWLX (LI8 0), $S))>; 4450// For extracting BE word 1, MFVSRWZ is better than VEXTUWLX 4451def : Pat<(i64 (sext (i32 (vector_extract v4i32:$S, 1)))), 4452 (EXTSW (INSERT_SUBREG (i64 (IMPLICIT_DEF)), 4453 (i32 VectorExtractions.LE_WORD_2), sub_32))>; 4454def : Pat<(i64 (sext (i32 (vector_extract v4i32:$S, 2)))), 4455 (EXTSW (VEXTUWLX (LI8 8), $S))>; 4456def : Pat<(i64 (sext (i32 (vector_extract v4i32:$S, 3)))), 4457 (EXTSW (VEXTUWLX (LI8 12), $S))>; 4458 4459def : Pat<(i32 (vector_extract v16i8:$S, i64:$Idx)), 4460 (i32 (EXTRACT_SUBREG (VEXTUBLX $Idx, $S), sub_32))>; 4461def : Pat<(i32 (vector_extract v16i8:$S, 0)), 4462 (i32 (EXTRACT_SUBREG (VEXTUBLX (LI8 0), $S), sub_32))>; 4463def : Pat<(i32 (vector_extract v16i8:$S, 1)), 4464 (i32 (EXTRACT_SUBREG (VEXTUBLX (LI8 1), $S), sub_32))>; 4465def : Pat<(i32 (vector_extract v16i8:$S, 2)), 4466 (i32 (EXTRACT_SUBREG (VEXTUBLX (LI8 2), $S), sub_32))>; 4467def : Pat<(i32 (vector_extract v16i8:$S, 3)), 4468 (i32 (EXTRACT_SUBREG (VEXTUBLX (LI8 3), $S), sub_32))>; 4469def : Pat<(i32 (vector_extract v16i8:$S, 4)), 4470 (i32 (EXTRACT_SUBREG (VEXTUBLX (LI8 4), $S), sub_32))>; 4471def : Pat<(i32 (vector_extract v16i8:$S, 5)), 4472 (i32 (EXTRACT_SUBREG (VEXTUBLX (LI8 5), $S), sub_32))>; 4473def : Pat<(i32 (vector_extract v16i8:$S, 6)), 4474 (i32 (EXTRACT_SUBREG (VEXTUBLX (LI8 6), $S), sub_32))>; 4475def : Pat<(i32 (vector_extract v16i8:$S, 7)), 4476 (i32 (EXTRACT_SUBREG (VEXTUBLX (LI8 7), $S), sub_32))>; 4477def : Pat<(i32 (vector_extract v16i8:$S, 8)), 4478 (i32 (EXTRACT_SUBREG (VEXTUBLX (LI8 8), $S), sub_32))>; 4479def : Pat<(i32 (vector_extract v16i8:$S, 9)), 4480 (i32 (EXTRACT_SUBREG (VEXTUBLX (LI8 9), $S), sub_32))>; 4481def : Pat<(i32 (vector_extract v16i8:$S, 10)), 4482 (i32 (EXTRACT_SUBREG (VEXTUBLX (LI8 10), $S), sub_32))>; 4483def : Pat<(i32 (vector_extract v16i8:$S, 11)), 4484 (i32 (EXTRACT_SUBREG (VEXTUBLX (LI8 11), $S), sub_32))>; 4485def : Pat<(i32 (vector_extract v16i8:$S, 12)), 4486 (i32 (EXTRACT_SUBREG (VEXTUBLX (LI8 12), $S), sub_32))>; 4487def : Pat<(i32 (vector_extract v16i8:$S, 13)), 4488 (i32 (EXTRACT_SUBREG (VEXTUBLX (LI8 13), $S), sub_32))>; 4489def : Pat<(i32 (vector_extract v16i8:$S, 14)), 4490 (i32 (EXTRACT_SUBREG (VEXTUBLX (LI8 14), $S), sub_32))>; 4491def : Pat<(i32 (vector_extract v16i8:$S, 15)), 4492 (i32 (EXTRACT_SUBREG (VEXTUBLX (LI8 15), $S), sub_32))>; 4493 4494def : Pat<(i32 (vector_extract v8i16:$S, i64:$Idx)), 4495 (i32 (EXTRACT_SUBREG (VEXTUHLX 4496 (RLWINM8 $Idx, 1, 28, 30), $S), sub_32))>; 4497def : Pat<(i32 (vector_extract v8i16:$S, 0)), 4498 (i32 (EXTRACT_SUBREG (VEXTUHLX (LI8 0), $S), sub_32))>; 4499def : Pat<(i32 (vector_extract v8i16:$S, 1)), 4500 (i32 (EXTRACT_SUBREG (VEXTUHLX (LI8 2), $S), sub_32))>; 4501def : Pat<(i32 (vector_extract v8i16:$S, 2)), 4502 (i32 (EXTRACT_SUBREG (VEXTUHLX (LI8 4), $S), sub_32))>; 4503def : Pat<(i32 (vector_extract v8i16:$S, 3)), 4504 (i32 (EXTRACT_SUBREG (VEXTUHLX (LI8 6), $S), sub_32))>; 4505def : Pat<(i32 (vector_extract v8i16:$S, 4)), 4506 (i32 (EXTRACT_SUBREG (VEXTUHLX (LI8 8), $S), sub_32))>; 4507def : Pat<(i32 (vector_extract v8i16:$S, 5)), 4508 (i32 (EXTRACT_SUBREG (VEXTUHLX (LI8 10), $S), sub_32))>; 4509def : Pat<(i32 (vector_extract v8i16:$S, 6)), 4510 (i32 (EXTRACT_SUBREG (VEXTUHLX (LI8 12), $S), sub_32))>; 4511def : Pat<(i32 (vector_extract v8i16:$S, 6)), 4512 (i32 (EXTRACT_SUBREG (VEXTUHLX (LI8 14), $S), sub_32))>; 4513 4514def : Pat<(i32 (vector_extract v4i32:$S, i64:$Idx)), 4515 (i32 (EXTRACT_SUBREG (VEXTUWLX 4516 (RLWINM8 $Idx, 2, 28, 29), $S), sub_32))>; 4517def : Pat<(i32 (vector_extract v4i32:$S, 0)), 4518 (i32 (EXTRACT_SUBREG (VEXTUWLX (LI8 0), $S), sub_32))>; 4519// For extracting BE word 1, MFVSRWZ is better than VEXTUWLX 4520def : Pat<(i32 (vector_extract v4i32:$S, 1)), 4521 (i32 VectorExtractions.LE_WORD_2)>; 4522def : Pat<(i32 (vector_extract v4i32:$S, 2)), 4523 (i32 (EXTRACT_SUBREG (VEXTUWLX (LI8 8), $S), sub_32))>; 4524def : Pat<(i32 (vector_extract v4i32:$S, 3)), 4525 (i32 (EXTRACT_SUBREG (VEXTUWLX (LI8 12), $S), sub_32))>; 4526 4527// P9 Altivec instructions that can be used to build vectors. 4528// Adding them to PPCInstrVSX.td rather than PPCAltivecVSX.td to compete 4529// with complexities of existing build vector patterns in this file. 4530def : Pat<(v2i64 (build_vector WordToDWord.BE_A0, WordToDWord.BE_A1)), 4531 (v2i64 (VEXTSW2D $A))>; 4532def : Pat<(v2i64 (build_vector HWordToDWord.BE_A0, HWordToDWord.BE_A1)), 4533 (v2i64 (VEXTSH2D $A))>; 4534def : Pat<(v4i32 (build_vector HWordToWord.BE_A0, HWordToWord.BE_A1, 4535 HWordToWord.BE_A2, HWordToWord.BE_A3)), 4536 (v4i32 (VEXTSH2W $A))>; 4537def : Pat<(v4i32 (build_vector ByteToWord.BE_A0, ByteToWord.BE_A1, 4538 ByteToWord.BE_A2, ByteToWord.BE_A3)), 4539 (v4i32 (VEXTSB2W $A))>; 4540def : Pat<(v2i64 (build_vector ByteToDWord.BE_A0, ByteToDWord.BE_A1)), 4541 (v2i64 (VEXTSB2D $A))>; 4542} // HasVSX, HasP9Altivec, IsBigEndian, IsPPC64 4543 4544// Little endian Power9 VSX subtargets with P9 Altivec support. 4545let Predicates = [HasVSX, HasP9Altivec, IsLittleEndian] in { 4546def : Pat<(i64 (anyext (i32 (vector_extract v16i8:$S, i64:$Idx)))), 4547 (VEXTUBRX $Idx, $S)>; 4548 4549def : Pat<(i64 (anyext (i32 (vector_extract v8i16:$S, i64:$Idx)))), 4550 (VEXTUHRX (RLWINM8 $Idx, 1, 28, 30), $S)>; 4551def : Pat<(i64 (anyext (i32 (vector_extract v8i16:$S, 0)))), 4552 (VEXTUHRX (LI8 0), $S)>; 4553def : Pat<(i64 (anyext (i32 (vector_extract v8i16:$S, 1)))), 4554 (VEXTUHRX (LI8 2), $S)>; 4555def : Pat<(i64 (anyext (i32 (vector_extract v8i16:$S, 2)))), 4556 (VEXTUHRX (LI8 4), $S)>; 4557def : Pat<(i64 (anyext (i32 (vector_extract v8i16:$S, 3)))), 4558 (VEXTUHRX (LI8 6), $S)>; 4559def : Pat<(i64 (anyext (i32 (vector_extract v8i16:$S, 4)))), 4560 (VEXTUHRX (LI8 8), $S)>; 4561def : Pat<(i64 (anyext (i32 (vector_extract v8i16:$S, 5)))), 4562 (VEXTUHRX (LI8 10), $S)>; 4563def : Pat<(i64 (anyext (i32 (vector_extract v8i16:$S, 6)))), 4564 (VEXTUHRX (LI8 12), $S)>; 4565def : Pat<(i64 (anyext (i32 (vector_extract v8i16:$S, 7)))), 4566 (VEXTUHRX (LI8 14), $S)>; 4567 4568def : Pat<(i64 (zext (i32 (vector_extract v4i32:$S, i64:$Idx)))), 4569 (VEXTUWRX (RLWINM8 $Idx, 2, 28, 29), $S)>; 4570def : Pat<(i64 (zext (i32 (vector_extract v4i32:$S, 0)))), 4571 (VEXTUWRX (LI8 0), $S)>; 4572def : Pat<(i64 (zext (i32 (vector_extract v4i32:$S, 1)))), 4573 (VEXTUWRX (LI8 4), $S)>; 4574// For extracting LE word 2, MFVSRWZ is better than VEXTUWRX 4575def : Pat<(i64 (zext (i32 (vector_extract v4i32:$S, 2)))), 4576 (INSERT_SUBREG (i64 (IMPLICIT_DEF)), 4577 (i32 VectorExtractions.LE_WORD_2), sub_32)>; 4578def : Pat<(i64 (zext (i32 (vector_extract v4i32:$S, 3)))), 4579 (VEXTUWRX (LI8 12), $S)>; 4580 4581def : Pat<(i64 (sext (i32 (vector_extract v4i32:$S, i64:$Idx)))), 4582 (EXTSW (VEXTUWRX (RLWINM8 $Idx, 2, 28, 29), $S))>; 4583def : Pat<(i64 (sext (i32 (vector_extract v4i32:$S, 0)))), 4584 (EXTSW (VEXTUWRX (LI8 0), $S))>; 4585def : Pat<(i64 (sext (i32 (vector_extract v4i32:$S, 1)))), 4586 (EXTSW (VEXTUWRX (LI8 4), $S))>; 4587// For extracting LE word 2, MFVSRWZ is better than VEXTUWRX 4588def : Pat<(i64 (sext (i32 (vector_extract v4i32:$S, 2)))), 4589 (EXTSW (INSERT_SUBREG (i64 (IMPLICIT_DEF)), 4590 (i32 VectorExtractions.LE_WORD_2), sub_32))>; 4591def : Pat<(i64 (sext (i32 (vector_extract v4i32:$S, 3)))), 4592 (EXTSW (VEXTUWRX (LI8 12), $S))>; 4593 4594def : Pat<(i32 (vector_extract v16i8:$S, i64:$Idx)), 4595 (i32 (EXTRACT_SUBREG (VEXTUBRX $Idx, $S), sub_32))>; 4596def : Pat<(i32 (vector_extract v16i8:$S, 0)), 4597 (i32 (EXTRACT_SUBREG (VEXTUBRX (LI8 0), $S), sub_32))>; 4598def : Pat<(i32 (vector_extract v16i8:$S, 1)), 4599 (i32 (EXTRACT_SUBREG (VEXTUBRX (LI8 1), $S), sub_32))>; 4600def : Pat<(i32 (vector_extract v16i8:$S, 2)), 4601 (i32 (EXTRACT_SUBREG (VEXTUBRX (LI8 2), $S), sub_32))>; 4602def : Pat<(i32 (vector_extract v16i8:$S, 3)), 4603 (i32 (EXTRACT_SUBREG (VEXTUBRX (LI8 3), $S), sub_32))>; 4604def : Pat<(i32 (vector_extract v16i8:$S, 4)), 4605 (i32 (EXTRACT_SUBREG (VEXTUBRX (LI8 4), $S), sub_32))>; 4606def : Pat<(i32 (vector_extract v16i8:$S, 5)), 4607 (i32 (EXTRACT_SUBREG (VEXTUBRX (LI8 5), $S), sub_32))>; 4608def : Pat<(i32 (vector_extract v16i8:$S, 6)), 4609 (i32 (EXTRACT_SUBREG (VEXTUBRX (LI8 6), $S), sub_32))>; 4610def : Pat<(i32 (vector_extract v16i8:$S, 7)), 4611 (i32 (EXTRACT_SUBREG (VEXTUBRX (LI8 7), $S), sub_32))>; 4612def : Pat<(i32 (vector_extract v16i8:$S, 8)), 4613 (i32 (EXTRACT_SUBREG (VEXTUBRX (LI8 8), $S), sub_32))>; 4614def : Pat<(i32 (vector_extract v16i8:$S, 9)), 4615 (i32 (EXTRACT_SUBREG (VEXTUBRX (LI8 9), $S), sub_32))>; 4616def : Pat<(i32 (vector_extract v16i8:$S, 10)), 4617 (i32 (EXTRACT_SUBREG (VEXTUBRX (LI8 10), $S), sub_32))>; 4618def : Pat<(i32 (vector_extract v16i8:$S, 11)), 4619 (i32 (EXTRACT_SUBREG (VEXTUBRX (LI8 11), $S), sub_32))>; 4620def : Pat<(i32 (vector_extract v16i8:$S, 12)), 4621 (i32 (EXTRACT_SUBREG (VEXTUBRX (LI8 12), $S), sub_32))>; 4622def : Pat<(i32 (vector_extract v16i8:$S, 13)), 4623 (i32 (EXTRACT_SUBREG (VEXTUBRX (LI8 13), $S), sub_32))>; 4624def : Pat<(i32 (vector_extract v16i8:$S, 14)), 4625 (i32 (EXTRACT_SUBREG (VEXTUBRX (LI8 14), $S), sub_32))>; 4626def : Pat<(i32 (vector_extract v16i8:$S, 15)), 4627 (i32 (EXTRACT_SUBREG (VEXTUBRX (LI8 15), $S), sub_32))>; 4628 4629def : Pat<(i32 (vector_extract v8i16:$S, i64:$Idx)), 4630 (i32 (EXTRACT_SUBREG (VEXTUHRX 4631 (RLWINM8 $Idx, 1, 28, 30), $S), sub_32))>; 4632def : Pat<(i32 (vector_extract v8i16:$S, 0)), 4633 (i32 (EXTRACT_SUBREG (VEXTUHRX (LI8 0), $S), sub_32))>; 4634def : Pat<(i32 (vector_extract v8i16:$S, 1)), 4635 (i32 (EXTRACT_SUBREG (VEXTUHRX (LI8 2), $S), sub_32))>; 4636def : Pat<(i32 (vector_extract v8i16:$S, 2)), 4637 (i32 (EXTRACT_SUBREG (VEXTUHRX (LI8 4), $S), sub_32))>; 4638def : Pat<(i32 (vector_extract v8i16:$S, 3)), 4639 (i32 (EXTRACT_SUBREG (VEXTUHRX (LI8 6), $S), sub_32))>; 4640def : Pat<(i32 (vector_extract v8i16:$S, 4)), 4641 (i32 (EXTRACT_SUBREG (VEXTUHRX (LI8 8), $S), sub_32))>; 4642def : Pat<(i32 (vector_extract v8i16:$S, 5)), 4643 (i32 (EXTRACT_SUBREG (VEXTUHRX (LI8 10), $S), sub_32))>; 4644def : Pat<(i32 (vector_extract v8i16:$S, 6)), 4645 (i32 (EXTRACT_SUBREG (VEXTUHRX (LI8 12), $S), sub_32))>; 4646def : Pat<(i32 (vector_extract v8i16:$S, 6)), 4647 (i32 (EXTRACT_SUBREG (VEXTUHRX (LI8 14), $S), sub_32))>; 4648 4649def : Pat<(i32 (vector_extract v4i32:$S, i64:$Idx)), 4650 (i32 (EXTRACT_SUBREG (VEXTUWRX 4651 (RLWINM8 $Idx, 2, 28, 29), $S), sub_32))>; 4652def : Pat<(i32 (vector_extract v4i32:$S, 0)), 4653 (i32 (EXTRACT_SUBREG (VEXTUWRX (LI8 0), $S), sub_32))>; 4654def : Pat<(i32 (vector_extract v4i32:$S, 1)), 4655 (i32 (EXTRACT_SUBREG (VEXTUWRX (LI8 4), $S), sub_32))>; 4656// For extracting LE word 2, MFVSRWZ is better than VEXTUWRX 4657def : Pat<(i32 (vector_extract v4i32:$S, 2)), 4658 (i32 VectorExtractions.LE_WORD_2)>; 4659def : Pat<(i32 (vector_extract v4i32:$S, 3)), 4660 (i32 (EXTRACT_SUBREG (VEXTUWRX (LI8 12), $S), sub_32))>; 4661 4662// P9 Altivec instructions that can be used to build vectors. 4663// Adding them to PPCInstrVSX.td rather than PPCAltivecVSX.td to compete 4664// with complexities of existing build vector patterns in this file. 4665def : Pat<(v2i64 (build_vector WordToDWord.LE_A0, WordToDWord.LE_A1)), 4666 (v2i64 (VEXTSW2D $A))>; 4667def : Pat<(v2i64 (build_vector HWordToDWord.LE_A0, HWordToDWord.LE_A1)), 4668 (v2i64 (VEXTSH2D $A))>; 4669def : Pat<(v4i32 (build_vector HWordToWord.LE_A0, HWordToWord.LE_A1, 4670 HWordToWord.LE_A2, HWordToWord.LE_A3)), 4671 (v4i32 (VEXTSH2W $A))>; 4672def : Pat<(v4i32 (build_vector ByteToWord.LE_A0, ByteToWord.LE_A1, 4673 ByteToWord.LE_A2, ByteToWord.LE_A3)), 4674 (v4i32 (VEXTSB2W $A))>; 4675def : Pat<(v2i64 (build_vector ByteToDWord.LE_A0, ByteToDWord.LE_A1)), 4676 (v2i64 (VEXTSB2D $A))>; 4677} // HasVSX, HasP9Altivec, IsLittleEndian 4678 4679// Big endian 64Bit VSX subtarget that supports additional direct moves from 4680// ISA3.0. 4681let Predicates = [HasVSX, IsISA3_0, HasDirectMove, IsBigEndian, IsPPC64] in { 4682def : Pat<(i64 (extractelt v2i64:$A, 1)), 4683 (i64 (MFVSRLD $A))>; 4684// Better way to build integer vectors if we have MTVSRDD. Big endian. 4685def : Pat<(v2i64 (build_vector i64:$rB, i64:$rA)), 4686 (v2i64 (MTVSRDD $rB, $rA))>; 4687def : Pat<(v4i32 (build_vector i32:$A, i32:$B, i32:$C, i32:$D)), 4688 (MTVSRDD 4689 (RLDIMI AnyExts.B, AnyExts.A, 32, 0), 4690 (RLDIMI AnyExts.D, AnyExts.C, 32, 0))>; 4691 4692def : Pat<(f128 (PPCbuild_fp128 i64:$rB, i64:$rA)), 4693 (f128 (COPY_TO_REGCLASS (MTVSRDD $rB, $rA), VRRC))>; 4694} // HasVSX, IsISA3_0, HasDirectMove, IsBigEndian, IsPPC64 4695 4696// Little endian VSX subtarget that supports direct moves from ISA3.0. 4697let Predicates = [HasVSX, IsISA3_0, HasDirectMove, IsLittleEndian] in { 4698def : Pat<(i64 (extractelt v2i64:$A, 0)), 4699 (i64 (MFVSRLD $A))>; 4700// Better way to build integer vectors if we have MTVSRDD. Little endian. 4701def : Pat<(v2i64 (build_vector i64:$rA, i64:$rB)), 4702 (v2i64 (MTVSRDD $rB, $rA))>; 4703def : Pat<(v4i32 (build_vector i32:$A, i32:$B, i32:$C, i32:$D)), 4704 (MTVSRDD 4705 (RLDIMI AnyExts.C, AnyExts.D, 32, 0), 4706 (RLDIMI AnyExts.A, AnyExts.B, 32, 0))>; 4707 4708def : Pat<(f128 (PPCbuild_fp128 i64:$rA, i64:$rB)), 4709 (f128 (COPY_TO_REGCLASS (MTVSRDD $rB, $rA), VRRC))>; 4710} // HasVSX, IsISA3_0, HasDirectMove, IsLittleEndian 4711} // AddedComplexity = 400 4712 4713//---------------------------- Instruction aliases ---------------------------// 4714def : InstAlias<"xvmovdp $XT, $XB", 4715 (XVCPSGNDP vsrc:$XT, vsrc:$XB, vsrc:$XB)>; 4716def : InstAlias<"xvmovsp $XT, $XB", 4717 (XVCPSGNSP vsrc:$XT, vsrc:$XB, vsrc:$XB)>; 4718 4719// Certain versions of the AIX assembler may missassemble these mnemonics. 4720let Predicates = [ModernAs] in { 4721 def : InstAlias<"xxspltd $XT, $XB, 0", 4722 (XXPERMDI vsrc:$XT, vsrc:$XB, vsrc:$XB, 0)>; 4723 def : InstAlias<"xxspltd $XT, $XB, 1", 4724 (XXPERMDI vsrc:$XT, vsrc:$XB, vsrc:$XB, 3)>; 4725 def : InstAlias<"xxspltd $XT, $XB, 0", 4726 (XXPERMDIs vsrc:$XT, vsfrc:$XB, 0)>; 4727 def : InstAlias<"xxspltd $XT, $XB, 1", 4728 (XXPERMDIs vsrc:$XT, vsfrc:$XB, 3)>; 4729} 4730 4731def : InstAlias<"xxmrghd $XT, $XA, $XB", 4732 (XXPERMDI vsrc:$XT, vsrc:$XA, vsrc:$XB, 0)>; 4733def : InstAlias<"xxmrgld $XT, $XA, $XB", 4734 (XXPERMDI vsrc:$XT, vsrc:$XA, vsrc:$XB, 3)>; 4735def : InstAlias<"xxswapd $XT, $XB", 4736 (XXPERMDI vsrc:$XT, vsrc:$XB, vsrc:$XB, 2)>; 4737def : InstAlias<"xxswapd $XT, $XB", 4738 (XXPERMDIs vsrc:$XT, vsfrc:$XB, 2)>; 4739def : InstAlias<"mfvrd $rA, $XT", 4740 (MFVRD g8rc:$rA, vrrc:$XT), 0>; 4741def : InstAlias<"mffprd $rA, $src", 4742 (MFVSRD g8rc:$rA, f8rc:$src)>; 4743def : InstAlias<"mtvrd $XT, $rA", 4744 (MTVRD vrrc:$XT, g8rc:$rA), 0>; 4745def : InstAlias<"mtfprd $dst, $rA", 4746 (MTVSRD f8rc:$dst, g8rc:$rA)>; 4747def : InstAlias<"mfvrwz $rA, $XT", 4748 (MFVRWZ gprc:$rA, vrrc:$XT), 0>; 4749def : InstAlias<"mffprwz $rA, $src", 4750 (MFVSRWZ gprc:$rA, f8rc:$src)>; 4751def : InstAlias<"mtvrwa $XT, $rA", 4752 (MTVRWA vrrc:$XT, gprc:$rA), 0>; 4753def : InstAlias<"mtfprwa $dst, $rA", 4754 (MTVSRWA f8rc:$dst, gprc:$rA)>; 4755def : InstAlias<"mtvrwz $XT, $rA", 4756 (MTVRWZ vrrc:$XT, gprc:$rA), 0>; 4757def : InstAlias<"mtfprwz $dst, $rA", 4758 (MTVSRWZ f8rc:$dst, gprc:$rA)>; 4759