1//===-- SIInstructions.td - SI Instruction Definitions --------------------===// 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// This file was originally auto-generated from a GPU register header file and 9// all the instruction definitions were originally commented out. Instructions 10// that are not yet supported remain commented out. 11//===----------------------------------------------------------------------===// 12 13class GCNPat<dag pattern, dag result> : Pat<pattern, result>, GCNPredicateControl { 14 15} 16 17include "SOPInstructions.td" 18include "VOPInstructions.td" 19include "SMInstructions.td" 20include "FLATInstructions.td" 21include "BUFInstructions.td" 22include "EXPInstructions.td" 23 24//===----------------------------------------------------------------------===// 25// VINTRP Instructions 26//===----------------------------------------------------------------------===// 27 28// Used to inject printing of "_e32" suffix for VI (there are "_e64" variants for VI) 29def VINTRPDst : VINTRPDstOperand <VGPR_32>; 30 31let Uses = [MODE, M0, EXEC] in { 32 33// FIXME: Specify SchedRW for VINTRP instructions. 34 35multiclass V_INTERP_P1_F32_m : VINTRP_m < 36 0x00000000, 37 (outs VINTRPDst:$vdst), 38 (ins VGPR_32:$vsrc, Attr:$attr, AttrChan:$attrchan), 39 "v_interp_p1_f32$vdst, $vsrc, $attr$attrchan", 40 [(set f32:$vdst, (int_amdgcn_interp_p1 f32:$vsrc, 41 (i32 timm:$attrchan), (i32 timm:$attr), M0))] 42>; 43 44let OtherPredicates = [has32BankLDS, isNotGFX90APlus] in { 45 46defm V_INTERP_P1_F32 : V_INTERP_P1_F32_m; 47 48} // End OtherPredicates = [has32BankLDS, isNotGFX90APlus] 49 50let OtherPredicates = [has16BankLDS, isNotGFX90APlus], 51 Constraints = "@earlyclobber $vdst", isAsmParserOnly=1 in { 52 53defm V_INTERP_P1_F32_16bank : V_INTERP_P1_F32_m; 54 55} // End OtherPredicates = [has32BankLDS, isNotGFX90APlus], 56 // Constraints = "@earlyclobber $vdst", isAsmParserOnly=1 57 58let OtherPredicates = [isNotGFX90APlus] in { 59let DisableEncoding = "$src0", Constraints = "$src0 = $vdst" in { 60 61defm V_INTERP_P2_F32 : VINTRP_m < 62 0x00000001, 63 (outs VINTRPDst:$vdst), 64 (ins VGPR_32:$src0, VGPR_32:$vsrc, Attr:$attr, AttrChan:$attrchan), 65 "v_interp_p2_f32$vdst, $vsrc, $attr$attrchan", 66 [(set f32:$vdst, (int_amdgcn_interp_p2 f32:$src0, f32:$vsrc, 67 (i32 timm:$attrchan), (i32 timm:$attr), M0))]>; 68 69} // End DisableEncoding = "$src0", Constraints = "$src0 = $vdst" 70 71defm V_INTERP_MOV_F32 : VINTRP_m < 72 0x00000002, 73 (outs VINTRPDst:$vdst), 74 (ins InterpSlot:$vsrc, Attr:$attr, AttrChan:$attrchan), 75 "v_interp_mov_f32$vdst, $vsrc, $attr$attrchan", 76 [(set f32:$vdst, (int_amdgcn_interp_mov (i32 timm:$vsrc), 77 (i32 timm:$attrchan), (i32 timm:$attr), M0))]>; 78 79} // End OtherPredicates = [isNotGFX90APlus] 80 81} // End Uses = [MODE, M0, EXEC] 82 83//===----------------------------------------------------------------------===// 84// Pseudo Instructions 85//===----------------------------------------------------------------------===// 86def ATOMIC_FENCE : SPseudoInstSI< 87 (outs), (ins i32imm:$ordering, i32imm:$scope), 88 [(atomic_fence (i32 timm:$ordering), (i32 timm:$scope))], 89 "ATOMIC_FENCE $ordering, $scope"> { 90 let hasSideEffects = 1; 91 let maybeAtomic = 1; 92} 93 94let hasSideEffects = 0, mayLoad = 0, mayStore = 0, Uses = [EXEC] in { 95 96// For use in patterns 97def V_CNDMASK_B64_PSEUDO : VOP3Common <(outs VReg_64:$vdst), 98 (ins VSrc_b64:$src0, VSrc_b64:$src1, SSrc_b64:$src2), "", []> { 99 let isPseudo = 1; 100 let isCodeGenOnly = 1; 101 let usesCustomInserter = 1; 102} 103 104// 64-bit vector move instruction. This is mainly used by the 105// SIFoldOperands pass to enable folding of inline immediates. 106def V_MOV_B64_PSEUDO : VPseudoInstSI <(outs VReg_64:$vdst), 107 (ins VSrc_b64:$src0)>; 108 109// 64-bit vector move with dpp. Expanded post-RA. 110def V_MOV_B64_DPP_PSEUDO : VOP_DPP_Pseudo <"v_mov_b64_dpp", VOP_I64_I64> { 111 let Size = 16; // Requires two 8-byte v_mov_b32_dpp to complete. 112} 113 114// Pseudoinstruction for @llvm.amdgcn.wqm. It is turned into a copy after the 115// WQM pass processes it. 116def WQM : PseudoInstSI <(outs unknown:$vdst), (ins unknown:$src0)>; 117 118// Pseudoinstruction for @llvm.amdgcn.softwqm. Like @llvm.amdgcn.wqm it is 119// turned into a copy by WQM pass, but does not seed WQM requirements. 120def SOFT_WQM : PseudoInstSI <(outs unknown:$vdst), (ins unknown:$src0)>; 121 122// Pseudoinstruction for @llvm.amdgcn.strict.wwm. It is turned into a copy post-RA, so 123// that the @earlyclobber is respected. The @earlyclobber is to make sure that 124// the instruction that defines $src0 (which is run in Whole Wave Mode) doesn't 125// accidentally clobber inactive channels of $vdst. 126let Constraints = "@earlyclobber $vdst" in { 127def STRICT_WWM : PseudoInstSI <(outs unknown:$vdst), (ins unknown:$src0)>; 128def STRICT_WQM : PseudoInstSI <(outs unknown:$vdst), (ins unknown:$src0)>; 129} 130 131} // End let hasSideEffects = 0, mayLoad = 0, mayStore = 0, Uses = [EXEC] 132 133def ENTER_STRICT_WWM : SPseudoInstSI <(outs SReg_1:$sdst), (ins i64imm:$src0)> { 134 let Uses = [EXEC]; 135 let Defs = [EXEC, SCC]; 136 let hasSideEffects = 0; 137 let mayLoad = 0; 138 let mayStore = 0; 139} 140 141def EXIT_STRICT_WWM : SPseudoInstSI <(outs SReg_1:$sdst), (ins SReg_1:$src0)> { 142 let hasSideEffects = 0; 143 let mayLoad = 0; 144 let mayStore = 0; 145} 146 147def ENTER_STRICT_WQM : SPseudoInstSI <(outs SReg_1:$sdst), (ins i64imm:$src0)> { 148 let Uses = [EXEC]; 149 let Defs = [EXEC, SCC]; 150 let hasSideEffects = 0; 151 let mayLoad = 0; 152 let mayStore = 0; 153} 154 155def EXIT_STRICT_WQM : SPseudoInstSI <(outs SReg_1:$sdst), (ins SReg_1:$src0)> { 156 let hasSideEffects = 0; 157 let mayLoad = 0; 158 let mayStore = 0; 159} 160 161// Invert the exec mask and overwrite the inactive lanes of dst with inactive, 162// restoring it after we're done. 163let Defs = [SCC] in { 164def V_SET_INACTIVE_B32 : VPseudoInstSI <(outs VGPR_32:$vdst), 165 (ins VGPR_32: $src, VSrc_b32:$inactive), 166 [(set i32:$vdst, (int_amdgcn_set_inactive i32:$src, i32:$inactive))]> { 167 let Constraints = "$src = $vdst"; 168} 169 170def V_SET_INACTIVE_B64 : VPseudoInstSI <(outs VReg_64:$vdst), 171 (ins VReg_64: $src, VSrc_b64:$inactive), 172 [(set i64:$vdst, (int_amdgcn_set_inactive i64:$src, i64:$inactive))]> { 173 let Constraints = "$src = $vdst"; 174} 175} // End Defs = [SCC] 176 177let usesCustomInserter = 1, Defs = [VCC, EXEC] in { 178def V_ADD_U64_PSEUDO : VPseudoInstSI < 179 (outs VReg_64:$vdst), (ins VSrc_b64:$src0, VSrc_b64:$src1), 180 [(set VReg_64:$vdst, (getDivergentFrag<add>.ret i64:$src0, i64:$src1))] 181>; 182 183def V_SUB_U64_PSEUDO : VPseudoInstSI < 184 (outs VReg_64:$vdst), (ins VSrc_b64:$src0, VSrc_b64:$src1), 185 [(set VReg_64:$vdst, (getDivergentFrag<sub>.ret i64:$src0, i64:$src1))] 186>; 187} // End usesCustomInserter = 1, Defs = [VCC, EXEC] 188 189let usesCustomInserter = 1, Defs = [SCC] in { 190def S_ADD_U64_PSEUDO : SPseudoInstSI < 191 (outs SReg_64:$sdst), (ins SSrc_b64:$src0, SSrc_b64:$src1), 192 [(set SReg_64:$sdst, (UniformBinFrag<add> i64:$src0, i64:$src1))] 193>; 194 195def S_SUB_U64_PSEUDO : SPseudoInstSI < 196 (outs SReg_64:$sdst), (ins SSrc_b64:$src0, SSrc_b64:$src1), 197 [(set SReg_64:$sdst, (UniformBinFrag<sub> i64:$src0, i64:$src1))] 198>; 199 200def S_ADD_U64_CO_PSEUDO : SPseudoInstSI < 201 (outs SReg_64:$vdst, VOPDstS64orS32:$sdst), (ins SSrc_b64:$src0, SSrc_b64:$src1) 202>; 203 204def S_SUB_U64_CO_PSEUDO : SPseudoInstSI < 205 (outs SReg_64:$vdst, VOPDstS64orS32:$sdst), (ins SSrc_b64:$src0, SSrc_b64:$src1) 206>; 207 208def S_ADD_CO_PSEUDO : SPseudoInstSI < 209 (outs SReg_32:$sdst, SSrc_i1:$scc_out), (ins SSrc_b32:$src0, SSrc_b32:$src1, SSrc_i1:$scc_in) 210>; 211 212def S_SUB_CO_PSEUDO : SPseudoInstSI < 213 (outs SReg_32:$sdst, SSrc_i1:$scc_out), (ins SSrc_b32:$src0, SSrc_b32:$src1, SSrc_i1:$scc_in) 214>; 215 216def S_UADDO_PSEUDO : SPseudoInstSI < 217 (outs SReg_32:$sdst, SSrc_i1:$scc_out), (ins SSrc_b32:$src0, SSrc_b32:$src1) 218>; 219 220def S_USUBO_PSEUDO : SPseudoInstSI < 221 (outs SReg_32:$sdst, SSrc_i1:$scc_out), (ins SSrc_b32:$src0, SSrc_b32:$src1) 222>; 223 224} // End usesCustomInserter = 1, Defs = [SCC] 225 226let usesCustomInserter = 1 in { 227def GET_GROUPSTATICSIZE : SPseudoInstSI <(outs SReg_32:$sdst), (ins), 228 [(set SReg_32:$sdst, (int_amdgcn_groupstaticsize))]>; 229} // End let usesCustomInserter = 1, SALU = 1 230 231// Wrap an instruction by duplicating it, except for setting isTerminator. 232class WrapTerminatorInst<SOP_Pseudo base_inst> : SPseudoInstSI< 233 base_inst.OutOperandList, 234 base_inst.InOperandList> { 235 let Uses = base_inst.Uses; 236 let Defs = base_inst.Defs; 237 let isTerminator = 1; 238 let isAsCheapAsAMove = base_inst.isAsCheapAsAMove; 239 let hasSideEffects = base_inst.hasSideEffects; 240 let UseNamedOperandTable = base_inst.UseNamedOperandTable; 241 let CodeSize = base_inst.CodeSize; 242 let SchedRW = base_inst.SchedRW; 243} 244 245let WaveSizePredicate = isWave64 in { 246def S_MOV_B64_term : WrapTerminatorInst<S_MOV_B64>; 247def S_XOR_B64_term : WrapTerminatorInst<S_XOR_B64>; 248def S_OR_B64_term : WrapTerminatorInst<S_OR_B64>; 249def S_ANDN2_B64_term : WrapTerminatorInst<S_ANDN2_B64>; 250def S_AND_B64_term : WrapTerminatorInst<S_AND_B64>; 251} 252 253let WaveSizePredicate = isWave32 in { 254def S_MOV_B32_term : WrapTerminatorInst<S_MOV_B32>; 255def S_XOR_B32_term : WrapTerminatorInst<S_XOR_B32>; 256def S_OR_B32_term : WrapTerminatorInst<S_OR_B32>; 257def S_ANDN2_B32_term : WrapTerminatorInst<S_ANDN2_B32>; 258def S_AND_B32_term : WrapTerminatorInst<S_AND_B32>; 259} 260 261 262def WAVE_BARRIER : SPseudoInstSI<(outs), (ins), 263 [(int_amdgcn_wave_barrier)]> { 264 let SchedRW = []; 265 let hasNoSchedulingInfo = 1; 266 let hasSideEffects = 1; 267 let mayLoad = 0; 268 let mayStore = 0; 269 let isConvergent = 1; 270 let FixedSize = 1; 271 let Size = 0; 272} 273 274// SI pseudo instructions. These are used by the CFG structurizer pass 275// and should be lowered to ISA instructions prior to codegen. 276 277let isTerminator = 1 in { 278 279let OtherPredicates = [EnableLateCFGStructurize] in { 280 def SI_NON_UNIFORM_BRCOND_PSEUDO : CFPseudoInstSI < 281 (outs), 282 (ins SReg_1:$vcc, brtarget:$target), 283 [(brcond i1:$vcc, bb:$target)]> { 284 let Size = 12; 285} 286} 287 288def SI_IF: CFPseudoInstSI < 289 (outs SReg_1:$dst), (ins SReg_1:$vcc, brtarget:$target), 290 [(set i1:$dst, (AMDGPUif i1:$vcc, bb:$target))], 1, 1> { 291 let Constraints = ""; 292 let Size = 12; 293 let hasSideEffects = 1; 294} 295 296def SI_ELSE : CFPseudoInstSI < 297 (outs SReg_1:$dst), 298 (ins SReg_1:$src, brtarget:$target), [], 1, 1> { 299 let Size = 12; 300 let hasSideEffects = 1; 301} 302 303def SI_LOOP : CFPseudoInstSI < 304 (outs), (ins SReg_1:$saved, brtarget:$target), 305 [(AMDGPUloop i1:$saved, bb:$target)], 1, 1> { 306 let Size = 8; 307 let isBranch = 1; 308 let hasSideEffects = 1; 309} 310 311} // End isTerminator = 1 312 313def SI_END_CF : CFPseudoInstSI < 314 (outs), (ins SReg_1:$saved), [], 1, 1> { 315 let Size = 4; 316 let isAsCheapAsAMove = 1; 317 let isReMaterializable = 1; 318 let hasSideEffects = 1; 319 let mayLoad = 1; // FIXME: Should not need memory flags 320 let mayStore = 1; 321} 322 323def SI_IF_BREAK : CFPseudoInstSI < 324 (outs SReg_1:$dst), (ins SReg_1:$vcc, SReg_1:$src), []> { 325 let Size = 4; 326 let isAsCheapAsAMove = 1; 327 let isReMaterializable = 1; 328} 329 330// Branch to the early termination block of the shader if SCC is 0. 331// This uses SCC from a previous SALU operation, i.e. the update of 332// a mask of live lanes after a kill/demote operation. 333// Only valid in pixel shaders. 334def SI_EARLY_TERMINATE_SCC0 : SPseudoInstSI <(outs), (ins)> { 335 let Uses = [EXEC,SCC]; 336} 337 338let Uses = [EXEC] in { 339 340multiclass PseudoInstKill <dag ins> { 341 // Even though this pseudo can usually be expanded without an SCC def, we 342 // conservatively assume that it has an SCC def, both because it is sometimes 343 // required in degenerate cases (when V_CMPX cannot be used due to constant 344 // bus limitations) and because it allows us to avoid having to track SCC 345 // liveness across basic blocks. 346 let Defs = [EXEC,SCC] in 347 def _PSEUDO : PseudoInstSI <(outs), ins> { 348 let isConvergent = 1; 349 let usesCustomInserter = 1; 350 } 351 352 let Defs = [EXEC,SCC] in 353 def _TERMINATOR : SPseudoInstSI <(outs), ins> { 354 let isTerminator = 1; 355 } 356} 357 358defm SI_KILL_I1 : PseudoInstKill <(ins SCSrc_i1:$src, i1imm:$killvalue)>; 359let Defs = [VCC] in 360defm SI_KILL_F32_COND_IMM : PseudoInstKill <(ins VSrc_b32:$src0, i32imm:$src1, i32imm:$cond)>; 361 362let Defs = [EXEC,VCC] in 363def SI_ILLEGAL_COPY : SPseudoInstSI < 364 (outs unknown:$dst), (ins unknown:$src), 365 [], " ; illegal copy $src to $dst">; 366 367} // End Uses = [EXEC], Defs = [EXEC,VCC] 368 369// Branch on undef scc. Used to avoid intermediate copy from 370// IMPLICIT_DEF to SCC. 371def SI_BR_UNDEF : SPseudoInstSI <(outs), (ins sopp_brtarget:$simm16)> { 372 let isTerminator = 1; 373 let usesCustomInserter = 1; 374 let isBranch = 1; 375} 376 377def SI_PS_LIVE : PseudoInstSI < 378 (outs SReg_1:$dst), (ins), 379 [(set i1:$dst, (int_amdgcn_ps_live))]> { 380 let SALU = 1; 381} 382 383let Uses = [EXEC] in { 384def SI_LIVE_MASK : PseudoInstSI < 385 (outs SReg_1:$dst), (ins), 386 [(set i1:$dst, (int_amdgcn_live_mask))]> { 387 let SALU = 1; 388} 389let Defs = [EXEC,SCC] in { 390// Demote: Turn a pixel shader thread into a helper lane. 391def SI_DEMOTE_I1 : SPseudoInstSI <(outs), (ins SCSrc_i1:$src, i1imm:$killvalue)>; 392} // End Defs = [EXEC,SCC] 393} // End Uses = [EXEC] 394 395def SI_MASKED_UNREACHABLE : SPseudoInstSI <(outs), (ins), 396 [(int_amdgcn_unreachable)], 397 "; divergent unreachable"> { 398 let Size = 0; 399 let hasNoSchedulingInfo = 1; 400 let FixedSize = 1; 401} 402 403// Used as an isel pseudo to directly emit initialization with an 404// s_mov_b32 rather than a copy of another initialized 405// register. MachineCSE skips copies, and we don't want to have to 406// fold operands before it runs. 407def SI_INIT_M0 : SPseudoInstSI <(outs), (ins SSrc_b32:$src)> { 408 let Defs = [M0]; 409 let usesCustomInserter = 1; 410 let isAsCheapAsAMove = 1; 411 let isReMaterializable = 1; 412} 413 414def SI_INIT_EXEC : SPseudoInstSI < 415 (outs), (ins i64imm:$src), 416 [(int_amdgcn_init_exec (i64 timm:$src))]> { 417 let Defs = [EXEC]; 418 let isAsCheapAsAMove = 1; 419} 420 421def SI_INIT_EXEC_FROM_INPUT : SPseudoInstSI < 422 (outs), (ins SSrc_b32:$input, i32imm:$shift), 423 [(int_amdgcn_init_exec_from_input i32:$input, (i32 timm:$shift))]> { 424 let Defs = [EXEC]; 425} 426 427// Return for returning shaders to a shader variant epilog. 428def SI_RETURN_TO_EPILOG : SPseudoInstSI < 429 (outs), (ins variable_ops), [(AMDGPUreturn_to_epilog)]> { 430 let isTerminator = 1; 431 let isBarrier = 1; 432 let isReturn = 1; 433 let hasNoSchedulingInfo = 1; 434 let DisableWQM = 1; 435 let FixedSize = 1; 436} 437 438// Return for returning function calls. 439def SI_RETURN : SPseudoInstSI < 440 (outs), (ins), [], 441 "; return"> { 442 let isTerminator = 1; 443 let isBarrier = 1; 444 let isReturn = 1; 445 let SchedRW = [WriteBranch]; 446} 447 448// Return for returning function calls without output register. 449// 450// This version is only needed so we can fill in the output register 451// in the custom inserter. 452def SI_CALL_ISEL : SPseudoInstSI < 453 (outs), (ins SSrc_b64:$src0, unknown:$callee), 454 [(AMDGPUcall i64:$src0, tglobaladdr:$callee)]> { 455 let Size = 4; 456 let isCall = 1; 457 let SchedRW = [WriteBranch]; 458 let usesCustomInserter = 1; 459 // TODO: Should really base this on the call target 460 let isConvergent = 1; 461} 462 463def : GCNPat< 464 (AMDGPUcall i64:$src0, (i64 0)), 465 (SI_CALL_ISEL $src0, (i64 0)) 466>; 467 468// Wrapper around s_swappc_b64 with extra $callee parameter to track 469// the called function after regalloc. 470def SI_CALL : SPseudoInstSI < 471 (outs SReg_64:$dst), (ins SSrc_b64:$src0, unknown:$callee)> { 472 let Size = 4; 473 let isCall = 1; 474 let UseNamedOperandTable = 1; 475 let SchedRW = [WriteBranch]; 476 // TODO: Should really base this on the call target 477 let isConvergent = 1; 478} 479 480// Tail call handling pseudo 481def SI_TCRETURN : SPseudoInstSI <(outs), 482 (ins SReg_64:$src0, unknown:$callee, i32imm:$fpdiff), 483 [(AMDGPUtc_return i64:$src0, tglobaladdr:$callee, i32:$fpdiff)]> { 484 let Size = 4; 485 let isCall = 1; 486 let isTerminator = 1; 487 let isReturn = 1; 488 let isBarrier = 1; 489 let UseNamedOperandTable = 1; 490 let SchedRW = [WriteBranch]; 491 // TODO: Should really base this on the call target 492 let isConvergent = 1; 493} 494 495// Handle selecting indirect tail calls 496def : GCNPat< 497 (AMDGPUtc_return i64:$src0, (i64 0), (i32 timm:$fpdiff)), 498 (SI_TCRETURN SReg_64:$src0, (i64 0), i32imm:$fpdiff) 499>; 500 501def ADJCALLSTACKUP : SPseudoInstSI< 502 (outs), (ins i32imm:$amt0, i32imm:$amt1), 503 [(callseq_start timm:$amt0, timm:$amt1)], 504 "; adjcallstackup $amt0 $amt1"> { 505 let Size = 8; // Worst case. (s_add_u32 + constant) 506 let FixedSize = 1; 507 let hasSideEffects = 1; 508 let usesCustomInserter = 1; 509 let SchedRW = [WriteSALU]; 510 let Defs = [SCC]; 511} 512 513def ADJCALLSTACKDOWN : SPseudoInstSI< 514 (outs), (ins i32imm:$amt1, i32imm:$amt2), 515 [(callseq_end timm:$amt1, timm:$amt2)], 516 "; adjcallstackdown $amt1"> { 517 let Size = 8; // Worst case. (s_add_u32 + constant) 518 let hasSideEffects = 1; 519 let usesCustomInserter = 1; 520 let SchedRW = [WriteSALU]; 521 let Defs = [SCC]; 522} 523 524let Defs = [M0, EXEC, SCC], 525 UseNamedOperandTable = 1 in { 526 527// SI_INDIRECT_SRC/DST are only used by legacy SelectionDAG indirect 528// addressing implementation. 529class SI_INDIRECT_SRC<RegisterClass rc> : VPseudoInstSI < 530 (outs VGPR_32:$vdst), 531 (ins rc:$src, VS_32:$idx, i32imm:$offset)> { 532 let usesCustomInserter = 1; 533} 534 535class SI_INDIRECT_DST<RegisterClass rc> : VPseudoInstSI < 536 (outs rc:$vdst), 537 (ins rc:$src, VS_32:$idx, i32imm:$offset, VGPR_32:$val)> { 538 let Constraints = "$src = $vdst"; 539 let usesCustomInserter = 1; 540} 541 542def SI_INDIRECT_SRC_V1 : SI_INDIRECT_SRC<VGPR_32>; 543def SI_INDIRECT_SRC_V2 : SI_INDIRECT_SRC<VReg_64>; 544def SI_INDIRECT_SRC_V4 : SI_INDIRECT_SRC<VReg_128>; 545def SI_INDIRECT_SRC_V8 : SI_INDIRECT_SRC<VReg_256>; 546def SI_INDIRECT_SRC_V16 : SI_INDIRECT_SRC<VReg_512>; 547def SI_INDIRECT_SRC_V32 : SI_INDIRECT_SRC<VReg_1024>; 548 549def SI_INDIRECT_DST_V1 : SI_INDIRECT_DST<VGPR_32>; 550def SI_INDIRECT_DST_V2 : SI_INDIRECT_DST<VReg_64>; 551def SI_INDIRECT_DST_V4 : SI_INDIRECT_DST<VReg_128>; 552def SI_INDIRECT_DST_V8 : SI_INDIRECT_DST<VReg_256>; 553def SI_INDIRECT_DST_V16 : SI_INDIRECT_DST<VReg_512>; 554def SI_INDIRECT_DST_V32 : SI_INDIRECT_DST<VReg_1024>; 555 556} // End Uses = [EXEC], Defs = [M0, EXEC] 557 558// This is a pseudo variant of the v_movreld_b32 instruction in which the 559// vector operand appears only twice, once as def and once as use. Using this 560// pseudo avoids problems with the Two Address instructions pass. 561class INDIRECT_REG_WRITE_MOVREL_pseudo<RegisterClass rc, 562 RegisterOperand val_ty> : PseudoInstSI < 563 (outs rc:$vdst), (ins rc:$vsrc, val_ty:$val, i32imm:$subreg)> { 564 let Constraints = "$vsrc = $vdst"; 565 let Uses = [M0]; 566} 567 568class V_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<RegisterClass rc> : 569 INDIRECT_REG_WRITE_MOVREL_pseudo<rc, VSrc_b32> { 570 let VALU = 1; 571 let VOP1 = 1; 572 let Uses = [M0, EXEC]; 573} 574 575class S_INDIRECT_REG_WRITE_MOVREL_pseudo<RegisterClass rc, 576 RegisterOperand val_ty> : 577 INDIRECT_REG_WRITE_MOVREL_pseudo<rc, val_ty> { 578 let SALU = 1; 579 let SOP1 = 1; 580 let Uses = [M0]; 581} 582 583class S_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<RegisterClass rc> : 584 S_INDIRECT_REG_WRITE_MOVREL_pseudo<rc, SSrc_b32>; 585class S_INDIRECT_REG_WRITE_MOVREL_B64_pseudo<RegisterClass rc> : 586 S_INDIRECT_REG_WRITE_MOVREL_pseudo<rc, SSrc_b64>; 587 588def V_INDIRECT_REG_WRITE_MOVREL_B32_V1 : V_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<VGPR_32>; 589def V_INDIRECT_REG_WRITE_MOVREL_B32_V2 : V_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<VReg_64>; 590def V_INDIRECT_REG_WRITE_MOVREL_B32_V3 : V_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<VReg_96>; 591def V_INDIRECT_REG_WRITE_MOVREL_B32_V4 : V_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<VReg_128>; 592def V_INDIRECT_REG_WRITE_MOVREL_B32_V5 : V_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<VReg_160>; 593def V_INDIRECT_REG_WRITE_MOVREL_B32_V8 : V_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<VReg_256>; 594def V_INDIRECT_REG_WRITE_MOVREL_B32_V16 : V_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<VReg_512>; 595def V_INDIRECT_REG_WRITE_MOVREL_B32_V32 : V_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<VReg_1024>; 596 597def S_INDIRECT_REG_WRITE_MOVREL_B32_V1 : S_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<SReg_32>; 598def S_INDIRECT_REG_WRITE_MOVREL_B32_V2 : S_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<SReg_64>; 599def S_INDIRECT_REG_WRITE_MOVREL_B32_V3 : S_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<SReg_96>; 600def S_INDIRECT_REG_WRITE_MOVREL_B32_V4 : S_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<SReg_128>; 601def S_INDIRECT_REG_WRITE_MOVREL_B32_V5 : S_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<SReg_160>; 602def S_INDIRECT_REG_WRITE_MOVREL_B32_V8 : S_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<SReg_256>; 603def S_INDIRECT_REG_WRITE_MOVREL_B32_V16 : S_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<SReg_512>; 604def S_INDIRECT_REG_WRITE_MOVREL_B32_V32 : S_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<SReg_1024>; 605 606def S_INDIRECT_REG_WRITE_MOVREL_B64_V1 : S_INDIRECT_REG_WRITE_MOVREL_B64_pseudo<SReg_64>; 607def S_INDIRECT_REG_WRITE_MOVREL_B64_V2 : S_INDIRECT_REG_WRITE_MOVREL_B64_pseudo<SReg_128>; 608def S_INDIRECT_REG_WRITE_MOVREL_B64_V4 : S_INDIRECT_REG_WRITE_MOVREL_B64_pseudo<SReg_256>; 609def S_INDIRECT_REG_WRITE_MOVREL_B64_V8 : S_INDIRECT_REG_WRITE_MOVREL_B64_pseudo<SReg_512>; 610def S_INDIRECT_REG_WRITE_MOVREL_B64_V16 : S_INDIRECT_REG_WRITE_MOVREL_B64_pseudo<SReg_1024>; 611 612// These variants of V_INDIRECT_REG_READ/WRITE use VGPR indexing. By using these 613// pseudos we avoid spills or copies being inserted within indirect sequences 614// that switch the VGPR indexing mode. Spills to accvgprs could be effected by 615// this mode switching. 616 617class V_INDIRECT_REG_WRITE_GPR_IDX_pseudo<RegisterClass rc> : PseudoInstSI < 618 (outs rc:$vdst), (ins rc:$vsrc, VSrc_b32:$val, SSrc_b32:$idx, i32imm:$subreg)> { 619 let Constraints = "$vsrc = $vdst"; 620 let VALU = 1; 621 let Uses = [M0, EXEC]; 622 let Defs = [M0]; 623} 624 625def V_INDIRECT_REG_WRITE_GPR_IDX_B32_V1 : V_INDIRECT_REG_WRITE_GPR_IDX_pseudo<VGPR_32>; 626def V_INDIRECT_REG_WRITE_GPR_IDX_B32_V2 : V_INDIRECT_REG_WRITE_GPR_IDX_pseudo<VReg_64>; 627def V_INDIRECT_REG_WRITE_GPR_IDX_B32_V3 : V_INDIRECT_REG_WRITE_GPR_IDX_pseudo<VReg_96>; 628def V_INDIRECT_REG_WRITE_GPR_IDX_B32_V4 : V_INDIRECT_REG_WRITE_GPR_IDX_pseudo<VReg_128>; 629def V_INDIRECT_REG_WRITE_GPR_IDX_B32_V5 : V_INDIRECT_REG_WRITE_GPR_IDX_pseudo<VReg_160>; 630def V_INDIRECT_REG_WRITE_GPR_IDX_B32_V8 : V_INDIRECT_REG_WRITE_GPR_IDX_pseudo<VReg_256>; 631def V_INDIRECT_REG_WRITE_GPR_IDX_B32_V16 : V_INDIRECT_REG_WRITE_GPR_IDX_pseudo<VReg_512>; 632def V_INDIRECT_REG_WRITE_GPR_IDX_B32_V32 : V_INDIRECT_REG_WRITE_GPR_IDX_pseudo<VReg_1024>; 633 634class V_INDIRECT_REG_READ_GPR_IDX_pseudo<RegisterClass rc> : PseudoInstSI < 635 (outs VGPR_32:$vdst), (ins rc:$vsrc, SSrc_b32:$idx, i32imm:$subreg)> { 636 let VALU = 1; 637 let Uses = [M0, EXEC]; 638 let Defs = [M0]; 639} 640 641def V_INDIRECT_REG_READ_GPR_IDX_B32_V1 : V_INDIRECT_REG_READ_GPR_IDX_pseudo<VGPR_32>; 642def V_INDIRECT_REG_READ_GPR_IDX_B32_V2 : V_INDIRECT_REG_READ_GPR_IDX_pseudo<VReg_64>; 643def V_INDIRECT_REG_READ_GPR_IDX_B32_V3 : V_INDIRECT_REG_READ_GPR_IDX_pseudo<VReg_96>; 644def V_INDIRECT_REG_READ_GPR_IDX_B32_V4 : V_INDIRECT_REG_READ_GPR_IDX_pseudo<VReg_128>; 645def V_INDIRECT_REG_READ_GPR_IDX_B32_V5 : V_INDIRECT_REG_READ_GPR_IDX_pseudo<VReg_160>; 646def V_INDIRECT_REG_READ_GPR_IDX_B32_V8 : V_INDIRECT_REG_READ_GPR_IDX_pseudo<VReg_256>; 647def V_INDIRECT_REG_READ_GPR_IDX_B32_V16 : V_INDIRECT_REG_READ_GPR_IDX_pseudo<VReg_512>; 648def V_INDIRECT_REG_READ_GPR_IDX_B32_V32 : V_INDIRECT_REG_READ_GPR_IDX_pseudo<VReg_1024>; 649 650multiclass SI_SPILL_SGPR <RegisterClass sgpr_class> { 651 let UseNamedOperandTable = 1, SGPRSpill = 1, Uses = [EXEC] in { 652 def _SAVE : PseudoInstSI < 653 (outs), 654 (ins sgpr_class:$data, i32imm:$addr)> { 655 let mayStore = 1; 656 let mayLoad = 0; 657 } 658 659 def _RESTORE : PseudoInstSI < 660 (outs sgpr_class:$data), 661 (ins i32imm:$addr)> { 662 let mayStore = 0; 663 let mayLoad = 1; 664 } 665 } // End UseNamedOperandTable = 1 666} 667 668// You cannot use M0 as the output of v_readlane_b32 instructions or 669// use it in the sdata operand of SMEM instructions. We still need to 670// be able to spill the physical register m0, so allow it for 671// SI_SPILL_32_* instructions. 672defm SI_SPILL_S32 : SI_SPILL_SGPR <SReg_32>; 673defm SI_SPILL_S64 : SI_SPILL_SGPR <SReg_64>; 674defm SI_SPILL_S96 : SI_SPILL_SGPR <SReg_96>; 675defm SI_SPILL_S128 : SI_SPILL_SGPR <SReg_128>; 676defm SI_SPILL_S160 : SI_SPILL_SGPR <SReg_160>; 677defm SI_SPILL_S192 : SI_SPILL_SGPR <SReg_192>; 678defm SI_SPILL_S256 : SI_SPILL_SGPR <SReg_256>; 679defm SI_SPILL_S512 : SI_SPILL_SGPR <SReg_512>; 680defm SI_SPILL_S1024 : SI_SPILL_SGPR <SReg_1024>; 681 682// VGPR or AGPR spill instructions. In case of AGPR spilling a temp register 683// needs to be used and an extra instruction to move between VGPR and AGPR. 684// UsesTmp adds to the total size of an expanded spill in this case. 685multiclass SI_SPILL_VGPR <RegisterClass vgpr_class, bit UsesTmp = 0> { 686 let UseNamedOperandTable = 1, VGPRSpill = 1, 687 SchedRW = [WriteVMEM] in { 688 def _SAVE : VPseudoInstSI < 689 (outs), 690 (ins vgpr_class:$vdata, i32imm:$vaddr, 691 SReg_32:$soffset, i32imm:$offset)> { 692 let mayStore = 1; 693 let mayLoad = 0; 694 // (2 * 4) + (8 * num_subregs) bytes maximum 695 int MaxSize = !add(!shl(!srl(vgpr_class.Size, 5), !add(UsesTmp, 3)), 8); 696 // Size field is unsigned char and cannot fit more. 697 let Size = !if(!le(MaxSize, 256), MaxSize, 252); 698 } 699 700 def _RESTORE : VPseudoInstSI < 701 (outs vgpr_class:$vdata), 702 (ins i32imm:$vaddr, 703 SReg_32:$soffset, i32imm:$offset)> { 704 let mayStore = 0; 705 let mayLoad = 1; 706 707 // (2 * 4) + (8 * num_subregs) bytes maximum 708 int MaxSize = !add(!shl(!srl(vgpr_class.Size, 5), !add(UsesTmp, 3)), 8); 709 // Size field is unsigned char and cannot fit more. 710 let Size = !if(!le(MaxSize, 256), MaxSize, 252); 711 } 712 } // End UseNamedOperandTable = 1, VGPRSpill = 1, SchedRW = [WriteVMEM] 713} 714 715defm SI_SPILL_V32 : SI_SPILL_VGPR <VGPR_32>; 716defm SI_SPILL_V64 : SI_SPILL_VGPR <VReg_64>; 717defm SI_SPILL_V96 : SI_SPILL_VGPR <VReg_96>; 718defm SI_SPILL_V128 : SI_SPILL_VGPR <VReg_128>; 719defm SI_SPILL_V160 : SI_SPILL_VGPR <VReg_160>; 720defm SI_SPILL_V192 : SI_SPILL_VGPR <VReg_192>; 721defm SI_SPILL_V256 : SI_SPILL_VGPR <VReg_256>; 722defm SI_SPILL_V512 : SI_SPILL_VGPR <VReg_512>; 723defm SI_SPILL_V1024 : SI_SPILL_VGPR <VReg_1024>; 724 725defm SI_SPILL_A32 : SI_SPILL_VGPR <AGPR_32, 1>; 726defm SI_SPILL_A64 : SI_SPILL_VGPR <AReg_64, 1>; 727defm SI_SPILL_A96 : SI_SPILL_VGPR <AReg_96, 1>; 728defm SI_SPILL_A128 : SI_SPILL_VGPR <AReg_128, 1>; 729defm SI_SPILL_A160 : SI_SPILL_VGPR <AReg_160, 1>; 730defm SI_SPILL_A192 : SI_SPILL_VGPR <AReg_192, 1>; 731defm SI_SPILL_A256 : SI_SPILL_VGPR <AReg_256, 1>; 732defm SI_SPILL_A512 : SI_SPILL_VGPR <AReg_512, 1>; 733defm SI_SPILL_A1024 : SI_SPILL_VGPR <AReg_1024, 1>; 734 735def SI_PC_ADD_REL_OFFSET : SPseudoInstSI < 736 (outs SReg_64:$dst), 737 (ins si_ga:$ptr_lo, si_ga:$ptr_hi), 738 [(set SReg_64:$dst, 739 (i64 (SIpc_add_rel_offset tglobaladdr:$ptr_lo, tglobaladdr:$ptr_hi)))]> { 740 let Defs = [SCC]; 741} 742 743def : GCNPat < 744 (SIpc_add_rel_offset tglobaladdr:$ptr_lo, 0), 745 (SI_PC_ADD_REL_OFFSET $ptr_lo, (i32 0)) 746>; 747 748def : GCNPat< 749 (AMDGPUtrap timm:$trapid), 750 (S_TRAP $trapid) 751>; 752 753def : GCNPat< 754 (AMDGPUelse i1:$src, bb:$target), 755 (SI_ELSE $src, $target) 756>; 757 758def : Pat < 759 (int_amdgcn_kill i1:$src), 760 (SI_KILL_I1_PSEUDO SCSrc_i1:$src, 0) 761>; 762 763def : Pat < 764 (int_amdgcn_kill (i1 (not i1:$src))), 765 (SI_KILL_I1_PSEUDO SCSrc_i1:$src, -1) 766>; 767 768def : Pat < 769 (int_amdgcn_kill (i1 (setcc f32:$src, InlineImmFP32:$imm, cond:$cond))), 770 (SI_KILL_F32_COND_IMM_PSEUDO VSrc_b32:$src, (bitcast_fpimm_to_i32 $imm), (cond_as_i32imm $cond)) 771>; 772 773def : Pat < 774 (int_amdgcn_wqm_demote i1:$src), 775 (SI_DEMOTE_I1 SCSrc_i1:$src, 0) 776>; 777 778def : Pat < 779 (int_amdgcn_wqm_demote (i1 (not i1:$src))), 780 (SI_DEMOTE_I1 SCSrc_i1:$src, -1) 781>; 782 783 // TODO: we could add more variants for other types of conditionals 784 785def : Pat < 786 (i64 (int_amdgcn_icmp i1:$src, (i1 0), (i32 33))), 787 (COPY $src) // Return the SGPRs representing i1 src 788>; 789 790def : Pat < 791 (i32 (int_amdgcn_icmp i1:$src, (i1 0), (i32 33))), 792 (COPY $src) // Return the SGPRs representing i1 src 793>; 794 795//===----------------------------------------------------------------------===// 796// VOP1 Patterns 797//===----------------------------------------------------------------------===// 798 799let OtherPredicates = [UnsafeFPMath] in { 800 801//defm : RsqPat<V_RSQ_F32_e32, f32>; 802 803def : RsqPat<V_RSQ_F32_e32, f32>; 804 805// Convert (x - floor(x)) to fract(x) 806def : GCNPat < 807 (f32 (fsub (f32 (VOP3Mods f32:$x, i32:$mods)), 808 (f32 (ffloor (f32 (VOP3Mods f32:$x, i32:$mods)))))), 809 (V_FRACT_F32_e64 $mods, $x) 810>; 811 812// Convert (x + (-floor(x))) to fract(x) 813def : GCNPat < 814 (f64 (fadd (f64 (VOP3Mods f64:$x, i32:$mods)), 815 (f64 (fneg (f64 (ffloor (f64 (VOP3Mods f64:$x, i32:$mods)))))))), 816 (V_FRACT_F64_e64 $mods, $x) 817>; 818 819} // End OtherPredicates = [UnsafeFPMath] 820 821 822// f16_to_fp patterns 823def : GCNPat < 824 (f32 (f16_to_fp i32:$src0)), 825 (V_CVT_F32_F16_e64 SRCMODS.NONE, $src0) 826>; 827 828def : GCNPat < 829 (f32 (f16_to_fp (and_oneuse i32:$src0, 0x7fff))), 830 (V_CVT_F32_F16_e64 SRCMODS.ABS, $src0) 831>; 832 833def : GCNPat < 834 (f32 (f16_to_fp (i32 (srl_oneuse (and_oneuse i32:$src0, 0x7fff0000), (i32 16))))), 835 (V_CVT_F32_F16_e64 SRCMODS.ABS, (i32 (V_LSHRREV_B32_e64 (i32 16), i32:$src0))) 836>; 837 838def : GCNPat < 839 (f32 (f16_to_fp (or_oneuse i32:$src0, 0x8000))), 840 (V_CVT_F32_F16_e64 SRCMODS.NEG_ABS, $src0) 841>; 842 843def : GCNPat < 844 (f32 (f16_to_fp (xor_oneuse i32:$src0, 0x8000))), 845 (V_CVT_F32_F16_e64 SRCMODS.NEG, $src0) 846>; 847 848def : GCNPat < 849 (f64 (fpextend f16:$src)), 850 (V_CVT_F64_F32_e32 (V_CVT_F32_F16_e32 $src)) 851>; 852 853// fp_to_fp16 patterns 854def : GCNPat < 855 (i32 (AMDGPUfp_to_f16 (f32 (VOP3Mods f32:$src0, i32:$src0_modifiers)))), 856 (V_CVT_F16_F32_e64 $src0_modifiers, f32:$src0) 857>; 858 859def : GCNPat < 860 (i32 (fp_to_sint f16:$src)), 861 (V_CVT_I32_F32_e32 (V_CVT_F32_F16_e32 VSrc_b32:$src)) 862>; 863 864def : GCNPat < 865 (i32 (fp_to_uint f16:$src)), 866 (V_CVT_U32_F32_e32 (V_CVT_F32_F16_e32 VSrc_b32:$src)) 867>; 868 869def : GCNPat < 870 (f16 (sint_to_fp i32:$src)), 871 (V_CVT_F16_F32_e32 (V_CVT_F32_I32_e32 VSrc_b32:$src)) 872>; 873 874def : GCNPat < 875 (f16 (uint_to_fp i32:$src)), 876 (V_CVT_F16_F32_e32 (V_CVT_F32_U32_e32 VSrc_b32:$src)) 877>; 878 879//===----------------------------------------------------------------------===// 880// VOP2 Patterns 881//===----------------------------------------------------------------------===// 882 883// NoMods pattern used for mac. If there are any source modifiers then it's 884// better to select mad instead of mac. 885class FMADPat <ValueType vt, Instruction inst, SDPatternOperator node> 886 : GCNPat <(vt (node (vt (VOP3NoMods vt:$src0)), 887 (vt (VOP3NoMods vt:$src1)), 888 (vt (VOP3NoMods vt:$src2)))), 889 (inst SRCMODS.NONE, $src0, SRCMODS.NONE, $src1, 890 SRCMODS.NONE, $src2, DSTCLAMP.NONE, DSTOMOD.NONE) 891>; 892 893// Prefer mac form when there are no modifiers. 894let AddedComplexity = 9 in { 895let OtherPredicates = [HasMadMacF32Insts] in { 896def : FMADPat <f32, V_MAC_F32_e64, fmad>; 897def : FMADPat <f32, V_MAC_F32_e64, AMDGPUfmad_ftz>; 898} // OtherPredicates = [HasMadMacF32Insts] 899 900// Don't allow source modifiers. If there are any source modifiers then it's 901// better to select mad instead of mac. 902let SubtargetPredicate = isGFX6GFX7GFX10, 903 OtherPredicates = [HasMadMacF32Insts, NoFP32Denormals] in 904def : GCNPat < 905 (f32 (fadd (AMDGPUfmul_legacy (VOP3NoMods f32:$src0), 906 (VOP3NoMods f32:$src1)), 907 (VOP3NoMods f32:$src2))), 908 (V_MAC_LEGACY_F32_e64 SRCMODS.NONE, $src0, SRCMODS.NONE, $src1, 909 SRCMODS.NONE, $src2, DSTCLAMP.NONE, DSTOMOD.NONE) 910>; 911 912// Don't allow source modifiers. If there are any source modifiers then it's 913// better to select fma instead of fmac. 914let SubtargetPredicate = HasFmaLegacy32 in 915def : GCNPat < 916 (f32 (int_amdgcn_fma_legacy (VOP3NoMods f32:$src0), 917 (VOP3NoMods f32:$src1), 918 (VOP3NoMods f32:$src2))), 919 (V_FMAC_LEGACY_F32_e64 SRCMODS.NONE, $src0, SRCMODS.NONE, $src1, 920 SRCMODS.NONE, $src2, DSTCLAMP.NONE, DSTOMOD.NONE) 921>; 922 923let SubtargetPredicate = Has16BitInsts in { 924def : FMADPat <f16, V_MAC_F16_e64, fmad>; 925def : FMADPat <f16, V_MAC_F16_e64, AMDGPUfmad_ftz>; 926} // SubtargetPredicate = Has16BitInsts 927} // AddedComplexity = 9 928 929class FMADModsPat<ValueType Ty, Instruction inst, SDPatternOperator mad_opr> 930 : GCNPat< 931 (Ty (mad_opr (Ty (VOP3Mods Ty:$src0, i32:$src0_mod)), 932 (Ty (VOP3Mods Ty:$src1, i32:$src1_mod)), 933 (Ty (VOP3Mods Ty:$src2, i32:$src2_mod)))), 934 (inst $src0_mod, $src0, $src1_mod, $src1, 935 $src2_mod, $src2, DSTCLAMP.NONE, DSTOMOD.NONE) 936>; 937 938let OtherPredicates = [HasMadMacF32Insts] in 939def : FMADModsPat<f32, V_MAD_F32_e64, AMDGPUfmad_ftz>; 940 941let OtherPredicates = [HasMadMacF32Insts, NoFP32Denormals] in 942def : GCNPat < 943 (f32 (fadd (AMDGPUfmul_legacy (VOP3Mods f32:$src0, i32:$src0_mod), 944 (VOP3Mods f32:$src1, i32:$src1_mod)), 945 (VOP3Mods f32:$src2, i32:$src2_mod))), 946 (V_MAD_LEGACY_F32_e64 $src0_mod, $src0, $src1_mod, $src1, 947 $src2_mod, $src2, DSTCLAMP.NONE, DSTOMOD.NONE) 948>; 949 950let SubtargetPredicate = Has16BitInsts in 951def : FMADModsPat<f16, V_MAD_F16_e64, AMDGPUfmad_ftz>; 952 953class VOPSelectModsPat <ValueType vt> : GCNPat < 954 (vt (select i1:$src0, (VOP3Mods vt:$src1, i32:$src1_mods), 955 (VOP3Mods vt:$src2, i32:$src2_mods))), 956 (V_CNDMASK_B32_e64 FP32InputMods:$src2_mods, VSrc_b32:$src2, 957 FP32InputMods:$src1_mods, VSrc_b32:$src1, SSrc_i1:$src0) 958>; 959 960class VOPSelectPat <ValueType vt> : GCNPat < 961 (vt (select i1:$src0, vt:$src1, vt:$src2)), 962 (V_CNDMASK_B32_e64 0, VSrc_b32:$src2, 0, VSrc_b32:$src1, SSrc_i1:$src0) 963>; 964 965def : VOPSelectModsPat <i32>; 966def : VOPSelectModsPat <f32>; 967def : VOPSelectPat <f16>; 968def : VOPSelectPat <i16>; 969 970let AddedComplexity = 1 in { 971def : GCNPat < 972 (i32 (add (i32 (getDivergentFrag<ctpop>.ret i32:$popcnt)), i32:$val)), 973 (V_BCNT_U32_B32_e64 $popcnt, $val) 974>; 975} 976 977def : GCNPat < 978 (i32 (ctpop i32:$popcnt)), 979 (V_BCNT_U32_B32_e64 VSrc_b32:$popcnt, (i32 0)) 980>; 981 982def : GCNPat < 983 (i16 (add (i16 (trunc (i32 (getDivergentFrag<ctpop>.ret i32:$popcnt)))), i16:$val)), 984 (V_BCNT_U32_B32_e64 $popcnt, $val) 985>; 986 987/********** ============================================ **********/ 988/********** Extraction, Insertion, Building and Casting **********/ 989/********** ============================================ **********/ 990 991foreach Index = 0-2 in { 992 def Extract_Element_v2i32_#Index : Extract_Element < 993 i32, v2i32, Index, !cast<SubRegIndex>(sub#Index) 994 >; 995 def Insert_Element_v2i32_#Index : Insert_Element < 996 i32, v2i32, Index, !cast<SubRegIndex>(sub#Index) 997 >; 998 999 def Extract_Element_v2f32_#Index : Extract_Element < 1000 f32, v2f32, Index, !cast<SubRegIndex>(sub#Index) 1001 >; 1002 def Insert_Element_v2f32_#Index : Insert_Element < 1003 f32, v2f32, Index, !cast<SubRegIndex>(sub#Index) 1004 >; 1005} 1006 1007foreach Index = 0-2 in { 1008 def Extract_Element_v3i32_#Index : Extract_Element < 1009 i32, v3i32, Index, !cast<SubRegIndex>(sub#Index) 1010 >; 1011 def Insert_Element_v3i32_#Index : Insert_Element < 1012 i32, v3i32, Index, !cast<SubRegIndex>(sub#Index) 1013 >; 1014 1015 def Extract_Element_v3f32_#Index : Extract_Element < 1016 f32, v3f32, Index, !cast<SubRegIndex>(sub#Index) 1017 >; 1018 def Insert_Element_v3f32_#Index : Insert_Element < 1019 f32, v3f32, Index, !cast<SubRegIndex>(sub#Index) 1020 >; 1021} 1022 1023foreach Index = 0-3 in { 1024 def Extract_Element_v4i32_#Index : Extract_Element < 1025 i32, v4i32, Index, !cast<SubRegIndex>(sub#Index) 1026 >; 1027 def Insert_Element_v4i32_#Index : Insert_Element < 1028 i32, v4i32, Index, !cast<SubRegIndex>(sub#Index) 1029 >; 1030 1031 def Extract_Element_v4f32_#Index : Extract_Element < 1032 f32, v4f32, Index, !cast<SubRegIndex>(sub#Index) 1033 >; 1034 def Insert_Element_v4f32_#Index : Insert_Element < 1035 f32, v4f32, Index, !cast<SubRegIndex>(sub#Index) 1036 >; 1037} 1038 1039foreach Index = 0-4 in { 1040 def Extract_Element_v5i32_#Index : Extract_Element < 1041 i32, v5i32, Index, !cast<SubRegIndex>(sub#Index) 1042 >; 1043 def Insert_Element_v5i32_#Index : Insert_Element < 1044 i32, v5i32, Index, !cast<SubRegIndex>(sub#Index) 1045 >; 1046 1047 def Extract_Element_v5f32_#Index : Extract_Element < 1048 f32, v5f32, Index, !cast<SubRegIndex>(sub#Index) 1049 >; 1050 def Insert_Element_v5f32_#Index : Insert_Element < 1051 f32, v5f32, Index, !cast<SubRegIndex>(sub#Index) 1052 >; 1053} 1054 1055foreach Index = 0-7 in { 1056 def Extract_Element_v8i32_#Index : Extract_Element < 1057 i32, v8i32, Index, !cast<SubRegIndex>(sub#Index) 1058 >; 1059 def Insert_Element_v8i32_#Index : Insert_Element < 1060 i32, v8i32, Index, !cast<SubRegIndex>(sub#Index) 1061 >; 1062 1063 def Extract_Element_v8f32_#Index : Extract_Element < 1064 f32, v8f32, Index, !cast<SubRegIndex>(sub#Index) 1065 >; 1066 def Insert_Element_v8f32_#Index : Insert_Element < 1067 f32, v8f32, Index, !cast<SubRegIndex>(sub#Index) 1068 >; 1069} 1070 1071foreach Index = 0-15 in { 1072 def Extract_Element_v16i32_#Index : Extract_Element < 1073 i32, v16i32, Index, !cast<SubRegIndex>(sub#Index) 1074 >; 1075 def Insert_Element_v16i32_#Index : Insert_Element < 1076 i32, v16i32, Index, !cast<SubRegIndex>(sub#Index) 1077 >; 1078 1079 def Extract_Element_v16f32_#Index : Extract_Element < 1080 f32, v16f32, Index, !cast<SubRegIndex>(sub#Index) 1081 >; 1082 def Insert_Element_v16f32_#Index : Insert_Element < 1083 f32, v16f32, Index, !cast<SubRegIndex>(sub#Index) 1084 >; 1085} 1086 1087 1088def : Pat < 1089 (extract_subvector v4i16:$vec, (i32 0)), 1090 (v2i16 (EXTRACT_SUBREG v4i16:$vec, sub0)) 1091>; 1092 1093def : Pat < 1094 (extract_subvector v4i16:$vec, (i32 2)), 1095 (v2i16 (EXTRACT_SUBREG v4i16:$vec, sub1)) 1096>; 1097 1098def : Pat < 1099 (extract_subvector v4f16:$vec, (i32 0)), 1100 (v2f16 (EXTRACT_SUBREG v4f16:$vec, sub0)) 1101>; 1102 1103def : Pat < 1104 (extract_subvector v4f16:$vec, (i32 2)), 1105 (v2f16 (EXTRACT_SUBREG v4f16:$vec, sub1)) 1106>; 1107 1108foreach Index = 0-31 in { 1109 def Extract_Element_v32i32_#Index : Extract_Element < 1110 i32, v32i32, Index, !cast<SubRegIndex>(sub#Index) 1111 >; 1112 1113 def Insert_Element_v32i32_#Index : Insert_Element < 1114 i32, v32i32, Index, !cast<SubRegIndex>(sub#Index) 1115 >; 1116 1117 def Extract_Element_v32f32_#Index : Extract_Element < 1118 f32, v32f32, Index, !cast<SubRegIndex>(sub#Index) 1119 >; 1120 1121 def Insert_Element_v32f32_#Index : Insert_Element < 1122 f32, v32f32, Index, !cast<SubRegIndex>(sub#Index) 1123 >; 1124} 1125 1126// FIXME: Why do only some of these type combinations for SReg and 1127// VReg? 1128// 16-bit bitcast 1129def : BitConvert <i16, f16, VGPR_32>; 1130def : BitConvert <f16, i16, VGPR_32>; 1131def : BitConvert <i16, f16, SReg_32>; 1132def : BitConvert <f16, i16, SReg_32>; 1133 1134// 32-bit bitcast 1135def : BitConvert <i32, f32, VGPR_32>; 1136def : BitConvert <f32, i32, VGPR_32>; 1137def : BitConvert <i32, f32, SReg_32>; 1138def : BitConvert <f32, i32, SReg_32>; 1139def : BitConvert <v2i16, i32, SReg_32>; 1140def : BitConvert <i32, v2i16, SReg_32>; 1141def : BitConvert <v2f16, i32, SReg_32>; 1142def : BitConvert <i32, v2f16, SReg_32>; 1143def : BitConvert <v2i16, v2f16, SReg_32>; 1144def : BitConvert <v2f16, v2i16, SReg_32>; 1145def : BitConvert <v2f16, f32, SReg_32>; 1146def : BitConvert <f32, v2f16, SReg_32>; 1147def : BitConvert <v2i16, f32, SReg_32>; 1148def : BitConvert <f32, v2i16, SReg_32>; 1149 1150// 64-bit bitcast 1151def : BitConvert <i64, f64, VReg_64>; 1152def : BitConvert <f64, i64, VReg_64>; 1153def : BitConvert <v2i32, v2f32, VReg_64>; 1154def : BitConvert <v2f32, v2i32, VReg_64>; 1155def : BitConvert <i64, v2i32, VReg_64>; 1156def : BitConvert <v2i32, i64, VReg_64>; 1157def : BitConvert <i64, v2f32, VReg_64>; 1158def : BitConvert <v2f32, i64, VReg_64>; 1159def : BitConvert <f64, v2f32, VReg_64>; 1160def : BitConvert <v2f32, f64, VReg_64>; 1161def : BitConvert <f64, v2i32, VReg_64>; 1162def : BitConvert <v2i32, f64, VReg_64>; 1163def : BitConvert <v4i16, v4f16, VReg_64>; 1164def : BitConvert <v4f16, v4i16, VReg_64>; 1165 1166// FIXME: Make SGPR 1167def : BitConvert <v2i32, v4f16, VReg_64>; 1168def : BitConvert <v4f16, v2i32, VReg_64>; 1169def : BitConvert <v2i32, v4f16, VReg_64>; 1170def : BitConvert <v2i32, v4i16, VReg_64>; 1171def : BitConvert <v4i16, v2i32, VReg_64>; 1172def : BitConvert <v2f32, v4f16, VReg_64>; 1173def : BitConvert <v4f16, v2f32, VReg_64>; 1174def : BitConvert <v2f32, v4i16, VReg_64>; 1175def : BitConvert <v4i16, v2f32, VReg_64>; 1176def : BitConvert <v4i16, f64, VReg_64>; 1177def : BitConvert <v4f16, f64, VReg_64>; 1178def : BitConvert <f64, v4i16, VReg_64>; 1179def : BitConvert <f64, v4f16, VReg_64>; 1180def : BitConvert <v4i16, i64, VReg_64>; 1181def : BitConvert <v4f16, i64, VReg_64>; 1182def : BitConvert <i64, v4i16, VReg_64>; 1183def : BitConvert <i64, v4f16, VReg_64>; 1184 1185def : BitConvert <v4i32, v4f32, VReg_128>; 1186def : BitConvert <v4f32, v4i32, VReg_128>; 1187 1188// 96-bit bitcast 1189def : BitConvert <v3i32, v3f32, SGPR_96>; 1190def : BitConvert <v3f32, v3i32, SGPR_96>; 1191 1192// 128-bit bitcast 1193def : BitConvert <v2i64, v4i32, SReg_128>; 1194def : BitConvert <v4i32, v2i64, SReg_128>; 1195def : BitConvert <v2f64, v4f32, VReg_128>; 1196def : BitConvert <v2f64, v4i32, VReg_128>; 1197def : BitConvert <v4f32, v2f64, VReg_128>; 1198def : BitConvert <v4i32, v2f64, VReg_128>; 1199def : BitConvert <v2i64, v2f64, VReg_128>; 1200def : BitConvert <v2f64, v2i64, VReg_128>; 1201def : BitConvert <v4f32, v2i64, VReg_128>; 1202def : BitConvert <v2i64, v4f32, VReg_128>; 1203 1204// 160-bit bitcast 1205def : BitConvert <v5i32, v5f32, SGPR_160>; 1206def : BitConvert <v5f32, v5i32, SGPR_160>; 1207 1208// 256-bit bitcast 1209def : BitConvert <v8i32, v8f32, SReg_256>; 1210def : BitConvert <v8f32, v8i32, SReg_256>; 1211def : BitConvert <v8i32, v8f32, VReg_256>; 1212def : BitConvert <v8f32, v8i32, VReg_256>; 1213def : BitConvert <v4i64, v4f64, VReg_256>; 1214def : BitConvert <v4f64, v4i64, VReg_256>; 1215def : BitConvert <v4i64, v8i32, VReg_256>; 1216def : BitConvert <v4i64, v8f32, VReg_256>; 1217def : BitConvert <v4f64, v8i32, VReg_256>; 1218def : BitConvert <v4f64, v8f32, VReg_256>; 1219def : BitConvert <v8i32, v4i64, VReg_256>; 1220def : BitConvert <v8f32, v4i64, VReg_256>; 1221def : BitConvert <v8i32, v4f64, VReg_256>; 1222def : BitConvert <v8f32, v4f64, VReg_256>; 1223 1224 1225// 512-bit bitcast 1226def : BitConvert <v16i32, v16f32, VReg_512>; 1227def : BitConvert <v16f32, v16i32, VReg_512>; 1228def : BitConvert <v8i64, v8f64, VReg_512>; 1229def : BitConvert <v8f64, v8i64, VReg_512>; 1230def : BitConvert <v8i64, v16i32, VReg_512>; 1231def : BitConvert <v8f64, v16i32, VReg_512>; 1232def : BitConvert <v16i32, v8i64, VReg_512>; 1233def : BitConvert <v16i32, v8f64, VReg_512>; 1234def : BitConvert <v8i64, v16f32, VReg_512>; 1235def : BitConvert <v8f64, v16f32, VReg_512>; 1236def : BitConvert <v16f32, v8i64, VReg_512>; 1237def : BitConvert <v16f32, v8f64, VReg_512>; 1238 1239// 1024-bit bitcast 1240def : BitConvert <v32i32, v32f32, VReg_1024>; 1241def : BitConvert <v32f32, v32i32, VReg_1024>; 1242def : BitConvert <v16i64, v16f64, VReg_1024>; 1243def : BitConvert <v16f64, v16i64, VReg_1024>; 1244def : BitConvert <v16i64, v32i32, VReg_1024>; 1245def : BitConvert <v32i32, v16i64, VReg_1024>; 1246def : BitConvert <v16f64, v32f32, VReg_1024>; 1247def : BitConvert <v32f32, v16f64, VReg_1024>; 1248def : BitConvert <v16i64, v32f32, VReg_1024>; 1249def : BitConvert <v32i32, v16f64, VReg_1024>; 1250def : BitConvert <v16f64, v32i32, VReg_1024>; 1251def : BitConvert <v32f32, v16i64, VReg_1024>; 1252 1253 1254/********** =================== **********/ 1255/********** Src & Dst modifiers **********/ 1256/********** =================== **********/ 1257 1258 1259// If denormals are not enabled, it only impacts the compare of the 1260// inputs. The output result is not flushed. 1261class ClampPat<Instruction inst, ValueType vt> : GCNPat < 1262 (vt (AMDGPUclamp (VOP3Mods vt:$src0, i32:$src0_modifiers))), 1263 (inst i32:$src0_modifiers, vt:$src0, 1264 i32:$src0_modifiers, vt:$src0, DSTCLAMP.ENABLE, DSTOMOD.NONE) 1265>; 1266 1267def : ClampPat<V_MAX_F32_e64, f32>; 1268def : ClampPat<V_MAX_F64_e64, f64>; 1269def : ClampPat<V_MAX_F16_e64, f16>; 1270 1271let SubtargetPredicate = HasVOP3PInsts in { 1272def : GCNPat < 1273 (v2f16 (AMDGPUclamp (VOP3PMods v2f16:$src0, i32:$src0_modifiers))), 1274 (V_PK_MAX_F16 $src0_modifiers, $src0, 1275 $src0_modifiers, $src0, DSTCLAMP.ENABLE) 1276>; 1277} 1278 1279/********** ================================ **********/ 1280/********** Floating point absolute/negative **********/ 1281/********** ================================ **********/ 1282 1283// Prevent expanding both fneg and fabs. 1284// TODO: Add IgnoredBySelectionDAG bit? 1285let AddedComplexity = 1 in { // Prefer SALU to VALU patterns for DAG 1286 1287def : GCNPat < 1288 (fneg (fabs (f32 SReg_32:$src))), 1289 (S_OR_B32 SReg_32:$src, (S_MOV_B32 (i32 0x80000000))) // Set sign bit 1290>; 1291 1292def : GCNPat < 1293 (fabs (f32 SReg_32:$src)), 1294 (S_AND_B32 SReg_32:$src, (S_MOV_B32 (i32 0x7fffffff))) 1295>; 1296 1297def : GCNPat < 1298 (fneg (f32 SReg_32:$src)), 1299 (S_XOR_B32 SReg_32:$src, (S_MOV_B32 (i32 0x80000000))) 1300>; 1301 1302def : GCNPat < 1303 (fneg (f16 SReg_32:$src)), 1304 (S_XOR_B32 SReg_32:$src, (S_MOV_B32 (i32 0x00008000))) 1305>; 1306 1307def : GCNPat < 1308 (fneg (f16 VGPR_32:$src)), 1309 (V_XOR_B32_e32 (S_MOV_B32 (i32 0x00008000)), VGPR_32:$src) 1310>; 1311 1312def : GCNPat < 1313 (fabs (f16 SReg_32:$src)), 1314 (S_AND_B32 SReg_32:$src, (S_MOV_B32 (i32 0x00007fff))) 1315>; 1316 1317def : GCNPat < 1318 (fneg (fabs (f16 SReg_32:$src))), 1319 (S_OR_B32 SReg_32:$src, (S_MOV_B32 (i32 0x00008000))) // Set sign bit 1320>; 1321 1322def : GCNPat < 1323 (fneg (fabs (f16 VGPR_32:$src))), 1324 (V_OR_B32_e32 (S_MOV_B32 (i32 0x00008000)), VGPR_32:$src) // Set sign bit 1325>; 1326 1327def : GCNPat < 1328 (fneg (v2f16 SReg_32:$src)), 1329 (S_XOR_B32 SReg_32:$src, (S_MOV_B32 (i32 0x80008000))) 1330>; 1331 1332def : GCNPat < 1333 (fabs (v2f16 SReg_32:$src)), 1334 (S_AND_B32 SReg_32:$src, (S_MOV_B32 (i32 0x7fff7fff))) 1335>; 1336 1337// This is really (fneg (fabs v2f16:$src)) 1338// 1339// fabs is not reported as free because there is modifier for it in 1340// VOP3P instructions, so it is turned into the bit op. 1341def : GCNPat < 1342 (fneg (v2f16 (bitconvert (and_oneuse (i32 SReg_32:$src), 0x7fff7fff)))), 1343 (S_OR_B32 SReg_32:$src, (S_MOV_B32 (i32 0x80008000))) // Set sign bit 1344>; 1345 1346def : GCNPat < 1347 (fneg (v2f16 (fabs SReg_32:$src))), 1348 (S_OR_B32 SReg_32:$src, (S_MOV_B32 (i32 0x80008000))) // Set sign bit 1349>; 1350 1351// FIXME: The implicit-def of scc from S_[X]OR/AND_B32 is mishandled 1352 // def : GCNPat < 1353// (fneg (f64 SReg_64:$src)), 1354// (REG_SEQUENCE SReg_64, 1355// (i32 (EXTRACT_SUBREG SReg_64:$src, sub0)), 1356// sub0, 1357// (S_XOR_B32 (i32 (EXTRACT_SUBREG SReg_64:$src, sub1)), 1358// (i32 (S_MOV_B32 (i32 0x80000000)))), 1359// sub1) 1360// >; 1361 1362// def : GCNPat < 1363// (fneg (fabs (f64 SReg_64:$src))), 1364// (REG_SEQUENCE SReg_64, 1365// (i32 (EXTRACT_SUBREG SReg_64:$src, sub0)), 1366// sub0, 1367// (S_OR_B32 (i32 (EXTRACT_SUBREG SReg_64:$src, sub1)), 1368// (S_MOV_B32 (i32 0x80000000))), // Set sign bit. 1369// sub1) 1370// >; 1371 1372// FIXME: Use S_BITSET0_B32/B64? 1373// def : GCNPat < 1374// (fabs (f64 SReg_64:$src)), 1375// (REG_SEQUENCE SReg_64, 1376// (i32 (EXTRACT_SUBREG SReg_64:$src, sub0)), 1377// sub0, 1378// (S_AND_B32 (i32 (EXTRACT_SUBREG SReg_64:$src, sub1)), 1379// (i32 (S_MOV_B32 (i32 0x7fffffff)))), 1380// sub1) 1381// >; 1382 1383// COPY_TO_REGCLASS is needed to avoid using SCC from S_XOR_B32 instead 1384// of the real value. 1385def : GCNPat < 1386 (fneg (v2f32 SReg_64:$src)), 1387 (v2f32 (REG_SEQUENCE SReg_64, 1388 (f32 (COPY_TO_REGCLASS (S_XOR_B32 (i32 (EXTRACT_SUBREG $src, sub0)), 1389 (i32 (S_MOV_B32 (i32 0x80000000)))), 1390 SReg_32)), sub0, 1391 (f32 (COPY_TO_REGCLASS (S_XOR_B32 (i32 (EXTRACT_SUBREG $src, sub1)), 1392 (i32 (S_MOV_B32 (i32 0x80000000)))), 1393 SReg_32)), sub1)) 1394>; 1395 1396} // End let AddedComplexity = 1 1397 1398def : GCNPat < 1399 (fabs (f32 VGPR_32:$src)), 1400 (V_AND_B32_e32 (S_MOV_B32 (i32 0x7fffffff)), VGPR_32:$src) 1401>; 1402 1403def : GCNPat < 1404 (fneg (f32 VGPR_32:$src)), 1405 (V_XOR_B32_e32 (S_MOV_B32 (i32 0x80000000)), VGPR_32:$src) 1406>; 1407 1408def : GCNPat < 1409 (fabs (f16 VGPR_32:$src)), 1410 (V_AND_B32_e32 (S_MOV_B32 (i32 0x00007fff)), VGPR_32:$src) 1411>; 1412 1413def : GCNPat < 1414 (fneg (v2f16 VGPR_32:$src)), 1415 (V_XOR_B32_e32 (S_MOV_B32 (i32 0x80008000)), VGPR_32:$src) 1416>; 1417 1418def : GCNPat < 1419 (fabs (v2f16 VGPR_32:$src)), 1420 (V_AND_B32_e32 (S_MOV_B32 (i32 0x7fff7fff)), VGPR_32:$src) 1421>; 1422 1423def : GCNPat < 1424 (fneg (v2f16 (fabs VGPR_32:$src))), 1425 (V_OR_B32_e32 (S_MOV_B32 (i32 0x80008000)), VGPR_32:$src) // Set sign bit 1426>; 1427 1428def : GCNPat < 1429 (fabs (f64 VReg_64:$src)), 1430 (REG_SEQUENCE VReg_64, 1431 (i32 (EXTRACT_SUBREG VReg_64:$src, sub0)), 1432 sub0, 1433 (V_AND_B32_e64 (i32 (EXTRACT_SUBREG VReg_64:$src, sub1)), 1434 (V_MOV_B32_e32 (i32 0x7fffffff))), // Set sign bit. 1435 sub1) 1436>; 1437 1438// TODO: Use SGPR for constant 1439def : GCNPat < 1440 (fneg (f64 VReg_64:$src)), 1441 (REG_SEQUENCE VReg_64, 1442 (i32 (EXTRACT_SUBREG VReg_64:$src, sub0)), 1443 sub0, 1444 (V_XOR_B32_e32 (i32 (EXTRACT_SUBREG VReg_64:$src, sub1)), 1445 (i32 (V_MOV_B32_e32 (i32 0x80000000)))), 1446 sub1) 1447>; 1448 1449// TODO: Use SGPR for constant 1450def : GCNPat < 1451 (fneg (fabs (f64 VReg_64:$src))), 1452 (REG_SEQUENCE VReg_64, 1453 (i32 (EXTRACT_SUBREG VReg_64:$src, sub0)), 1454 sub0, 1455 (V_OR_B32_e32 (i32 (EXTRACT_SUBREG VReg_64:$src, sub1)), 1456 (V_MOV_B32_e32 (i32 0x80000000))), // Set sign bit. 1457 sub1) 1458>; 1459 1460def : GCNPat < 1461 (getDivergentFrag<fneg>.ret (v2f32 VReg_64:$src)), 1462 (V_PK_ADD_F32 11 /* OP_SEL_1 | NEG_LO | HEG_HI */, VReg_64:$src, 1463 11 /* OP_SEL_1 | NEG_LO | HEG_HI */, 0, 1464 0, 0, 0, 0, 0) 1465> { 1466 let SubtargetPredicate = HasPackedFP32Ops; 1467} 1468 1469def : GCNPat < 1470 (fcopysign f16:$src0, f16:$src1), 1471 (V_BFI_B32_e64 (S_MOV_B32 (i32 0x00007fff)), $src0, $src1) 1472>; 1473 1474def : GCNPat < 1475 (fcopysign f32:$src0, f16:$src1), 1476 (V_BFI_B32_e64 (S_MOV_B32 (i32 0x7fffffff)), $src0, 1477 (V_LSHLREV_B32_e64 (i32 16), $src1)) 1478>; 1479 1480def : GCNPat < 1481 (fcopysign f64:$src0, f16:$src1), 1482 (REG_SEQUENCE SReg_64, 1483 (i32 (EXTRACT_SUBREG $src0, sub0)), sub0, 1484 (V_BFI_B32_e64 (S_MOV_B32 (i32 0x7fffffff)), (i32 (EXTRACT_SUBREG $src0, sub1)), 1485 (V_LSHLREV_B32_e64 (i32 16), $src1)), sub1) 1486>; 1487 1488def : GCNPat < 1489 (fcopysign f16:$src0, f32:$src1), 1490 (V_BFI_B32_e64 (S_MOV_B32 (i32 0x00007fff)), $src0, 1491 (V_LSHRREV_B32_e64 (i32 16), $src1)) 1492>; 1493 1494def : GCNPat < 1495 (fcopysign f16:$src0, f64:$src1), 1496 (V_BFI_B32_e64 (S_MOV_B32 (i32 0x00007fff)), $src0, 1497 (V_LSHRREV_B32_e64 (i32 16), (EXTRACT_SUBREG $src1, sub1))) 1498>; 1499 1500/********** ================== **********/ 1501/********** Immediate Patterns **********/ 1502/********** ================== **********/ 1503 1504def : GCNPat < 1505 (VGPRImm<(i32 imm)>:$imm), 1506 (V_MOV_B32_e32 imm:$imm) 1507>; 1508 1509def : GCNPat < 1510 (VGPRImm<(f32 fpimm)>:$imm), 1511 (V_MOV_B32_e32 (f32 (bitcast_fpimm_to_i32 $imm))) 1512>; 1513 1514def : GCNPat < 1515 (i32 imm:$imm), 1516 (S_MOV_B32 imm:$imm) 1517>; 1518 1519def : GCNPat < 1520 (VGPRImm<(SIlds tglobaladdr:$ga)>), 1521 (V_MOV_B32_e32 $ga) 1522>; 1523 1524def : GCNPat < 1525 (SIlds tglobaladdr:$ga), 1526 (S_MOV_B32 $ga) 1527>; 1528 1529// FIXME: Workaround for ordering issue with peephole optimizer where 1530// a register class copy interferes with immediate folding. Should 1531// use s_mov_b32, which can be shrunk to s_movk_i32 1532def : GCNPat < 1533 (VGPRImm<(f16 fpimm)>:$imm), 1534 (V_MOV_B32_e32 (f16 (bitcast_fpimm_to_i32 $imm))) 1535>; 1536 1537def : GCNPat < 1538 (f32 fpimm:$imm), 1539 (S_MOV_B32 (f32 (bitcast_fpimm_to_i32 $imm))) 1540>; 1541 1542def : GCNPat < 1543 (f16 fpimm:$imm), 1544 (S_MOV_B32 (i32 (bitcast_fpimm_to_i32 $imm))) 1545>; 1546 1547def : GCNPat < 1548 (p5 frameindex:$fi), 1549 (V_MOV_B32_e32 (p5 (frameindex_to_targetframeindex $fi))) 1550>; 1551 1552def : GCNPat < 1553 (p5 frameindex:$fi), 1554 (S_MOV_B32 (p5 (frameindex_to_targetframeindex $fi))) 1555>; 1556 1557def : GCNPat < 1558 (i64 InlineImm64:$imm), 1559 (S_MOV_B64 InlineImm64:$imm) 1560>; 1561 1562// XXX - Should this use a s_cmp to set SCC? 1563 1564// Set to sign-extended 64-bit value (true = -1, false = 0) 1565def : GCNPat < 1566 (i1 imm:$imm), 1567 (S_MOV_B64 (i64 (as_i64imm $imm))) 1568> { 1569 let WaveSizePredicate = isWave64; 1570} 1571 1572def : GCNPat < 1573 (i1 imm:$imm), 1574 (S_MOV_B32 (i32 (as_i32imm $imm))) 1575> { 1576 let WaveSizePredicate = isWave32; 1577} 1578 1579def : GCNPat < 1580 (f64 InlineImmFP64:$imm), 1581 (S_MOV_B64 (f64 (bitcast_fpimm_to_i64 InlineImmFP64:$imm))) 1582>; 1583 1584/********** ================== **********/ 1585/********** Intrinsic Patterns **********/ 1586/********** ================== **********/ 1587 1588let OtherPredicates = [isNotGFX90APlus] in 1589// FIXME: Should use _e64 and select source modifiers. 1590def : POW_Common <V_LOG_F32_e32, V_EXP_F32_e32, V_MUL_LEGACY_F32_e32>; 1591 1592let OtherPredicates = [isGFX90APlus] in 1593def : GCNPat < 1594 (fpow f32:$src0, f32:$src1), 1595 (V_EXP_F32_e32 (V_MUL_LEGACY_F32_e64 0, f32:$src1, SRCMODS.NONE, (V_LOG_F32_e32 f32:$src0), 0, 0)) 1596>; 1597 1598def : GCNPat < 1599 (i32 (sext i1:$src0)), 1600 (V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0), 1601 /*src1mod*/(i32 0), /*src1*/(i32 -1), $src0) 1602>; 1603 1604class Ext32Pat <SDNode ext> : GCNPat < 1605 (i32 (ext i1:$src0)), 1606 (V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0), 1607 /*src1mod*/(i32 0), /*src1*/(i32 1), $src0) 1608>; 1609 1610def : Ext32Pat <zext>; 1611def : Ext32Pat <anyext>; 1612 1613// The multiplication scales from [0,1) to the unsigned integer range, 1614// rounding down a bit to avoid unwanted overflow. 1615def : GCNPat < 1616 (AMDGPUurecip i32:$src0), 1617 (V_CVT_U32_F32_e32 1618 (V_MUL_F32_e32 (i32 CONST.FP_4294966784), 1619 (V_RCP_IFLAG_F32_e32 (V_CVT_F32_U32_e32 $src0)))) 1620>; 1621 1622//===----------------------------------------------------------------------===// 1623// VOP3 Patterns 1624//===----------------------------------------------------------------------===// 1625 1626def : IMad24Pat<V_MAD_I32_I24_e64, 1>; 1627def : UMad24Pat<V_MAD_U32_U24_e64, 1>; 1628 1629// BFI patterns 1630 1631def BFIImm32 : PatFrag< 1632 (ops node:$x, node:$y, node:$z), 1633 (i32 (DivergentBinFrag<or> (and node:$y, node:$x), (and node:$z, imm))), 1634 [{ 1635 auto *X = dyn_cast<ConstantSDNode>(N->getOperand(0)->getOperand(1)); 1636 auto *NotX = dyn_cast<ConstantSDNode>(N->getOperand(1)->getOperand(1)); 1637 return X && NotX && 1638 ~(unsigned)X->getZExtValue() == (unsigned)NotX->getZExtValue(); 1639 }] 1640>; 1641 1642// Definition from ISA doc: 1643// (y & x) | (z & ~x) 1644def : AMDGPUPat < 1645 (DivergentBinFrag<or> (and i32:$y, i32:$x), (and i32:$z, (not i32:$x))), 1646 (V_BFI_B32_e64 $x, $y, $z) 1647>; 1648 1649// (y & C) | (z & ~C) 1650def : AMDGPUPat < 1651 (BFIImm32 i32:$x, i32:$y, i32:$z), 1652 (V_BFI_B32_e64 $x, $y, $z) 1653>; 1654 1655// 64-bit version 1656def : AMDGPUPat < 1657 (DivergentBinFrag<or> (and i64:$y, i64:$x), (and i64:$z, (not i64:$x))), 1658 (REG_SEQUENCE SReg_64, 1659 (V_BFI_B32_e64 (i32 (EXTRACT_SUBREG SReg_64:$x, sub0)), 1660 (i32 (EXTRACT_SUBREG SReg_64:$y, sub0)), 1661 (i32 (EXTRACT_SUBREG SReg_64:$z, sub0))), sub0, 1662 (V_BFI_B32_e64 (i32 (EXTRACT_SUBREG SReg_64:$x, sub1)), 1663 (i32 (EXTRACT_SUBREG SReg_64:$y, sub1)), 1664 (i32 (EXTRACT_SUBREG SReg_64:$z, sub1))), sub1) 1665>; 1666 1667// SHA-256 Ch function 1668// z ^ (x & (y ^ z)) 1669def : AMDGPUPat < 1670 (DivergentBinFrag<xor> i32:$z, (and i32:$x, (xor i32:$y, i32:$z))), 1671 (V_BFI_B32_e64 $x, $y, $z) 1672>; 1673 1674// 64-bit version 1675def : AMDGPUPat < 1676 (DivergentBinFrag<xor> i64:$z, (and i64:$x, (xor i64:$y, i64:$z))), 1677 (REG_SEQUENCE SReg_64, 1678 (V_BFI_B32_e64 (i32 (EXTRACT_SUBREG SReg_64:$x, sub0)), 1679 (i32 (EXTRACT_SUBREG SReg_64:$y, sub0)), 1680 (i32 (EXTRACT_SUBREG SReg_64:$z, sub0))), sub0, 1681 (V_BFI_B32_e64 (i32 (EXTRACT_SUBREG SReg_64:$x, sub1)), 1682 (i32 (EXTRACT_SUBREG SReg_64:$y, sub1)), 1683 (i32 (EXTRACT_SUBREG SReg_64:$z, sub1))), sub1) 1684>; 1685 1686def : AMDGPUPat < 1687 (fcopysign f32:$src0, f32:$src1), 1688 (V_BFI_B32_e64 (S_MOV_B32 (i32 0x7fffffff)), $src0, $src1) 1689>; 1690 1691def : AMDGPUPat < 1692 (fcopysign f32:$src0, f64:$src1), 1693 (V_BFI_B32_e64 (S_MOV_B32 (i32 0x7fffffff)), $src0, 1694 (i32 (EXTRACT_SUBREG SReg_64:$src1, sub1))) 1695>; 1696 1697def : AMDGPUPat < 1698 (fcopysign f64:$src0, f64:$src1), 1699 (REG_SEQUENCE SReg_64, 1700 (i32 (EXTRACT_SUBREG $src0, sub0)), sub0, 1701 (V_BFI_B32_e64 (S_MOV_B32 (i32 0x7fffffff)), 1702 (i32 (EXTRACT_SUBREG SReg_64:$src0, sub1)), 1703 (i32 (EXTRACT_SUBREG SReg_64:$src1, sub1))), sub1) 1704>; 1705 1706def : AMDGPUPat < 1707 (fcopysign f64:$src0, f32:$src1), 1708 (REG_SEQUENCE SReg_64, 1709 (i32 (EXTRACT_SUBREG $src0, sub0)), sub0, 1710 (V_BFI_B32_e64 (S_MOV_B32 (i32 0x7fffffff)), 1711 (i32 (EXTRACT_SUBREG SReg_64:$src0, sub1)), 1712 $src1), sub1) 1713>; 1714 1715def : ROTRPattern <V_ALIGNBIT_B32_e64>; 1716 1717def : GCNPat<(i32 (trunc (srl i64:$src0, (and i32:$src1, (i32 31))))), 1718 (V_ALIGNBIT_B32_e64 (i32 (EXTRACT_SUBREG (i64 $src0), sub1)), 1719 (i32 (EXTRACT_SUBREG (i64 $src0), sub0)), $src1)>; 1720 1721def : GCNPat<(i32 (trunc (srl i64:$src0, (i32 ShiftAmt32Imm:$src1)))), 1722 (V_ALIGNBIT_B32_e64 (i32 (EXTRACT_SUBREG (i64 $src0), sub1)), 1723 (i32 (EXTRACT_SUBREG (i64 $src0), sub0)), $src1)>; 1724 1725/********** ====================== **********/ 1726/********** Indirect addressing **********/ 1727/********** ====================== **********/ 1728 1729multiclass SI_INDIRECT_Pattern <ValueType vt, ValueType eltvt, string VecSize> { 1730 // Extract with offset 1731 def : GCNPat< 1732 (eltvt (extractelt vt:$src, (MOVRELOffset i32:$idx, (i32 imm:$offset)))), 1733 (!cast<Instruction>("SI_INDIRECT_SRC_"#VecSize) $src, $idx, imm:$offset) 1734 >; 1735 1736 // Insert with offset 1737 def : GCNPat< 1738 (insertelt vt:$src, eltvt:$val, (MOVRELOffset i32:$idx, (i32 imm:$offset))), 1739 (!cast<Instruction>("SI_INDIRECT_DST_"#VecSize) $src, $idx, imm:$offset, $val) 1740 >; 1741} 1742 1743defm : SI_INDIRECT_Pattern <v2f32, f32, "V2">; 1744defm : SI_INDIRECT_Pattern <v4f32, f32, "V4">; 1745defm : SI_INDIRECT_Pattern <v8f32, f32, "V8">; 1746defm : SI_INDIRECT_Pattern <v16f32, f32, "V16">; 1747defm : SI_INDIRECT_Pattern <v32f32, f32, "V32">; 1748 1749defm : SI_INDIRECT_Pattern <v2i32, i32, "V2">; 1750defm : SI_INDIRECT_Pattern <v4i32, i32, "V4">; 1751defm : SI_INDIRECT_Pattern <v8i32, i32, "V8">; 1752defm : SI_INDIRECT_Pattern <v16i32, i32, "V16">; 1753defm : SI_INDIRECT_Pattern <v32i32, i32, "V32">; 1754 1755//===----------------------------------------------------------------------===// 1756// SAD Patterns 1757//===----------------------------------------------------------------------===// 1758 1759def : GCNPat < 1760 (add (sub_oneuse (umax i32:$src0, i32:$src1), 1761 (umin i32:$src0, i32:$src1)), 1762 i32:$src2), 1763 (V_SAD_U32_e64 $src0, $src1, $src2, (i1 0)) 1764>; 1765 1766def : GCNPat < 1767 (add (select_oneuse (i1 (setugt i32:$src0, i32:$src1)), 1768 (sub i32:$src0, i32:$src1), 1769 (sub i32:$src1, i32:$src0)), 1770 i32:$src2), 1771 (V_SAD_U32_e64 $src0, $src1, $src2, (i1 0)) 1772>; 1773 1774//===----------------------------------------------------------------------===// 1775// Conversion Patterns 1776//===----------------------------------------------------------------------===// 1777 1778def : GCNPat<(i32 (sext_inreg i32:$src, i1)), 1779 (S_BFE_I32 i32:$src, (i32 65536))>; // 0 | 1 << 16 1780 1781// Handle sext_inreg in i64 1782def : GCNPat < 1783 (i64 (sext_inreg i64:$src, i1)), 1784 (S_BFE_I64 i64:$src, (i32 0x10000)) // 0 | 1 << 16 1785>; 1786 1787def : GCNPat < 1788 (i16 (sext_inreg i16:$src, i1)), 1789 (S_BFE_I32 $src, (i32 0x00010000)) // 0 | 1 << 16 1790>; 1791 1792def : GCNPat < 1793 (i16 (sext_inreg i16:$src, i8)), 1794 (S_BFE_I32 $src, (i32 0x80000)) // 0 | 8 << 16 1795>; 1796 1797def : GCNPat < 1798 (i64 (sext_inreg i64:$src, i8)), 1799 (S_BFE_I64 i64:$src, (i32 0x80000)) // 0 | 8 << 16 1800>; 1801 1802def : GCNPat < 1803 (i64 (sext_inreg i64:$src, i16)), 1804 (S_BFE_I64 i64:$src, (i32 0x100000)) // 0 | 16 << 16 1805>; 1806 1807def : GCNPat < 1808 (i64 (sext_inreg i64:$src, i32)), 1809 (S_BFE_I64 i64:$src, (i32 0x200000)) // 0 | 32 << 16 1810>; 1811 1812def : GCNPat < 1813 (i64 (zext i32:$src)), 1814 (REG_SEQUENCE SReg_64, $src, sub0, (S_MOV_B32 (i32 0)), sub1) 1815>; 1816 1817def : GCNPat < 1818 (i64 (anyext i32:$src)), 1819 (REG_SEQUENCE SReg_64, $src, sub0, (i32 (IMPLICIT_DEF)), sub1) 1820>; 1821 1822class ZExt_i64_i1_Pat <SDNode ext> : GCNPat < 1823 (i64 (ext i1:$src)), 1824 (REG_SEQUENCE VReg_64, 1825 (V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0), 1826 /*src1mod*/(i32 0), /*src1*/(i32 1), $src), 1827 sub0, (S_MOV_B32 (i32 0)), sub1) 1828>; 1829 1830 1831def : ZExt_i64_i1_Pat<zext>; 1832def : ZExt_i64_i1_Pat<anyext>; 1833 1834// FIXME: We need to use COPY_TO_REGCLASS to work-around the fact that 1835// REG_SEQUENCE patterns don't support instructions with multiple outputs. 1836def : GCNPat < 1837 (i64 (sext i32:$src)), 1838 (REG_SEQUENCE SReg_64, $src, sub0, 1839 (i32 (COPY_TO_REGCLASS (S_ASHR_I32 $src, (i32 31)), SReg_32_XM0)), sub1) 1840>; 1841 1842def : GCNPat < 1843 (i64 (sext i1:$src)), 1844 (REG_SEQUENCE VReg_64, 1845 (V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0), 1846 /*src1mod*/(i32 0), /*src1*/(i32 -1), $src), sub0, 1847 (V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0), 1848 /*src1mod*/(i32 0), /*src1*/(i32 -1), $src), sub1) 1849>; 1850 1851class FPToI1Pat<Instruction Inst, int KOne, ValueType kone_type, ValueType vt, SDPatternOperator fp_to_int> : GCNPat < 1852 (i1 (fp_to_int (vt (VOP3Mods vt:$src0, i32:$src0_modifiers)))), 1853 (i1 (Inst 0, (kone_type KOne), $src0_modifiers, $src0, DSTCLAMP.NONE)) 1854>; 1855 1856def : FPToI1Pat<V_CMP_EQ_F16_e64, CONST.FP16_ONE, i16, f16, fp_to_uint>; 1857def : FPToI1Pat<V_CMP_EQ_F16_e64, CONST.FP16_NEG_ONE, i16, f16, fp_to_sint>; 1858def : FPToI1Pat<V_CMP_EQ_F32_e64, CONST.FP32_ONE, i32, f32, fp_to_uint>; 1859def : FPToI1Pat<V_CMP_EQ_F32_e64, CONST.FP32_NEG_ONE, i32, f32, fp_to_sint>; 1860def : FPToI1Pat<V_CMP_EQ_F64_e64, CONST.FP64_ONE, i64, f64, fp_to_uint>; 1861def : FPToI1Pat<V_CMP_EQ_F64_e64, CONST.FP64_NEG_ONE, i64, f64, fp_to_sint>; 1862 1863// If we need to perform a logical operation on i1 values, we need to 1864// use vector comparisons since there is only one SCC register. Vector 1865// comparisons may write to a pair of SGPRs or a single SGPR, so treat 1866// these as 32 or 64-bit comparisons. When legalizing SGPR copies, 1867// instructions resulting in the copies from SCC to these instructions 1868// will be moved to the VALU. 1869 1870let WaveSizePredicate = isWave64 in { 1871def : GCNPat < 1872 (i1 (and i1:$src0, i1:$src1)), 1873 (S_AND_B64 $src0, $src1) 1874>; 1875 1876def : GCNPat < 1877 (i1 (or i1:$src0, i1:$src1)), 1878 (S_OR_B64 $src0, $src1) 1879>; 1880 1881def : GCNPat < 1882 (i1 (xor i1:$src0, i1:$src1)), 1883 (S_XOR_B64 $src0, $src1) 1884>; 1885 1886def : GCNPat < 1887 (i1 (add i1:$src0, i1:$src1)), 1888 (S_XOR_B64 $src0, $src1) 1889>; 1890 1891def : GCNPat < 1892 (i1 (sub i1:$src0, i1:$src1)), 1893 (S_XOR_B64 $src0, $src1) 1894>; 1895 1896let AddedComplexity = 1 in { 1897def : GCNPat < 1898 (i1 (add i1:$src0, (i1 -1))), 1899 (S_NOT_B64 $src0) 1900>; 1901 1902def : GCNPat < 1903 (i1 (sub i1:$src0, (i1 -1))), 1904 (S_NOT_B64 $src0) 1905>; 1906} 1907} // end isWave64 1908 1909let WaveSizePredicate = isWave32 in { 1910def : GCNPat < 1911 (i1 (and i1:$src0, i1:$src1)), 1912 (S_AND_B32 $src0, $src1) 1913>; 1914 1915def : GCNPat < 1916 (i1 (or i1:$src0, i1:$src1)), 1917 (S_OR_B32 $src0, $src1) 1918>; 1919 1920def : GCNPat < 1921 (i1 (xor i1:$src0, i1:$src1)), 1922 (S_XOR_B32 $src0, $src1) 1923>; 1924 1925def : GCNPat < 1926 (i1 (add i1:$src0, i1:$src1)), 1927 (S_XOR_B32 $src0, $src1) 1928>; 1929 1930def : GCNPat < 1931 (i1 (sub i1:$src0, i1:$src1)), 1932 (S_XOR_B32 $src0, $src1) 1933>; 1934 1935let AddedComplexity = 1 in { 1936def : GCNPat < 1937 (i1 (add i1:$src0, (i1 -1))), 1938 (S_NOT_B32 $src0) 1939>; 1940 1941def : GCNPat < 1942 (i1 (sub i1:$src0, (i1 -1))), 1943 (S_NOT_B32 $src0) 1944>; 1945} 1946} // end isWave32 1947 1948def : GCNPat < 1949 (f16 (sint_to_fp i1:$src)), 1950 (V_CVT_F16_F32_e32 ( 1951 V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0), 1952 /*src1mod*/(i32 0), /*src1*/(i32 CONST.FP32_NEG_ONE), 1953 SSrc_i1:$src)) 1954>; 1955 1956def : GCNPat < 1957 (f16 (uint_to_fp i1:$src)), 1958 (V_CVT_F16_F32_e32 ( 1959 V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0), 1960 /*src1mod*/(i32 0), /*src1*/(i32 CONST.FP32_ONE), 1961 SSrc_i1:$src)) 1962>; 1963 1964def : GCNPat < 1965 (f32 (sint_to_fp i1:$src)), 1966 (V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0), 1967 /*src1mod*/(i32 0), /*src1*/(i32 CONST.FP32_NEG_ONE), 1968 SSrc_i1:$src) 1969>; 1970 1971def : GCNPat < 1972 (f32 (uint_to_fp i1:$src)), 1973 (V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0), 1974 /*src1mod*/(i32 0), /*src1*/(i32 CONST.FP32_ONE), 1975 SSrc_i1:$src) 1976>; 1977 1978def : GCNPat < 1979 (f64 (sint_to_fp i1:$src)), 1980 (V_CVT_F64_I32_e32 (V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0), 1981 /*src1mod*/(i32 0), /*src1*/(i32 -1), 1982 SSrc_i1:$src)) 1983>; 1984 1985def : GCNPat < 1986 (f64 (uint_to_fp i1:$src)), 1987 (V_CVT_F64_U32_e32 (V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0), 1988 /*src1mod*/(i32 0), /*src1*/(i32 1), 1989 SSrc_i1:$src)) 1990>; 1991 1992//===----------------------------------------------------------------------===// 1993// Miscellaneous Patterns 1994//===----------------------------------------------------------------------===// 1995def : GCNPat < 1996 (i32 (AMDGPUfp16_zext f16:$src)), 1997 (COPY $src) 1998>; 1999 2000 2001def : GCNPat < 2002 (i32 (trunc i64:$a)), 2003 (EXTRACT_SUBREG $a, sub0) 2004>; 2005 2006def : GCNPat < 2007 (i1 (trunc i32:$a)), 2008 (V_CMP_EQ_U32_e64 (S_AND_B32 (i32 1), $a), (i32 1)) 2009>; 2010 2011def : GCNPat < 2012 (i1 (trunc i16:$a)), 2013 (V_CMP_EQ_U32_e64 (S_AND_B32 (i32 1), $a), (i32 1)) 2014>; 2015 2016def : GCNPat < 2017 (i1 (trunc i64:$a)), 2018 (V_CMP_EQ_U32_e64 (S_AND_B32 (i32 1), 2019 (i32 (EXTRACT_SUBREG $a, sub0))), (i32 1)) 2020>; 2021 2022def : GCNPat < 2023 (i32 (bswap i32:$a)), 2024 (V_BFI_B32_e64 (S_MOV_B32 (i32 0x00ff00ff)), 2025 (V_ALIGNBIT_B32_e64 VSrc_b32:$a, VSrc_b32:$a, (i32 24)), 2026 (V_ALIGNBIT_B32_e64 VSrc_b32:$a, VSrc_b32:$a, (i32 8))) 2027>; 2028 2029// FIXME: This should have been narrowed to i32 during legalization. 2030// This pattern should also be skipped for GlobalISel 2031def : GCNPat < 2032 (i64 (bswap i64:$a)), 2033 (REG_SEQUENCE VReg_64, 2034 (V_BFI_B32_e64 (S_MOV_B32 (i32 0x00ff00ff)), 2035 (V_ALIGNBIT_B32_e64 (i32 (EXTRACT_SUBREG VReg_64:$a, sub1)), 2036 (i32 (EXTRACT_SUBREG VReg_64:$a, sub1)), 2037 (i32 24)), 2038 (V_ALIGNBIT_B32_e64 (i32 (EXTRACT_SUBREG VReg_64:$a, sub1)), 2039 (i32 (EXTRACT_SUBREG VReg_64:$a, sub1)), 2040 (i32 8))), 2041 sub0, 2042 (V_BFI_B32_e64 (S_MOV_B32 (i32 0x00ff00ff)), 2043 (V_ALIGNBIT_B32_e64 (i32 (EXTRACT_SUBREG VReg_64:$a, sub0)), 2044 (i32 (EXTRACT_SUBREG VReg_64:$a, sub0)), 2045 (i32 24)), 2046 (V_ALIGNBIT_B32_e64 (i32 (EXTRACT_SUBREG VReg_64:$a, sub0)), 2047 (i32 (EXTRACT_SUBREG VReg_64:$a, sub0)), 2048 (i32 8))), 2049 sub1) 2050>; 2051 2052// FIXME: The AddedComplexity should not be needed, but in GlobalISel 2053// the BFI pattern ends up taking precedence without it. 2054let SubtargetPredicate = isGFX8Plus, AddedComplexity = 1 in { 2055// Magic number: 3 | (2 << 8) | (1 << 16) | (0 << 24) 2056// 2057// My reading of the manual suggests we should be using src0 for the 2058// register value, but this is what seems to work. 2059def : GCNPat < 2060 (i32 (bswap i32:$a)), 2061 (V_PERM_B32_e64 (i32 0), VSrc_b32:$a, (S_MOV_B32 (i32 0x00010203))) 2062>; 2063 2064// FIXME: This should have been narrowed to i32 during legalization. 2065// This pattern should also be skipped for GlobalISel 2066def : GCNPat < 2067 (i64 (bswap i64:$a)), 2068 (REG_SEQUENCE VReg_64, 2069 (V_PERM_B32_e64 (i32 0), (EXTRACT_SUBREG VReg_64:$a, sub1), 2070 (S_MOV_B32 (i32 0x00010203))), 2071 sub0, 2072 (V_PERM_B32_e64 (i32 0), (EXTRACT_SUBREG VReg_64:$a, sub0), 2073 (S_MOV_B32 (i32 0x00010203))), 2074 sub1) 2075>; 2076 2077// Magic number: 1 | (0 << 8) | (12 << 16) | (12 << 24) 2078// The 12s emit 0s. 2079def : GCNPat < 2080 (i16 (bswap i16:$a)), 2081 (V_PERM_B32_e64 (i32 0), VSrc_b32:$a, (S_MOV_B32 (i32 0x0c0c0001))) 2082>; 2083 2084def : GCNPat < 2085 (i32 (zext (bswap i16:$a))), 2086 (V_PERM_B32_e64 (i32 0), VSrc_b32:$a, (S_MOV_B32 (i32 0x0c0c0001))) 2087>; 2088 2089// Magic number: 1 | (0 << 8) | (3 << 16) | (2 << 24) 2090def : GCNPat < 2091 (v2i16 (bswap v2i16:$a)), 2092 (V_PERM_B32_e64 (i32 0), VSrc_b32:$a, (S_MOV_B32 (i32 0x02030001))) 2093>; 2094 2095} 2096 2097 2098// Prefer selecting to max when legal, but using mul is always valid. 2099let AddedComplexity = -5 in { 2100def : GCNPat< 2101 (fcanonicalize (f16 (VOP3Mods f16:$src, i32:$src_mods))), 2102 (V_MUL_F16_e64 0, (i32 CONST.FP16_ONE), $src_mods, $src) 2103>; 2104 2105def : GCNPat< 2106 (fcanonicalize (f16 (fneg (VOP3Mods f16:$src, i32:$src_mods)))), 2107 (V_MUL_F16_e64 0, (i32 CONST.FP16_NEG_ONE), $src_mods, $src) 2108>; 2109 2110def : GCNPat< 2111 (fcanonicalize (v2f16 (VOP3PMods v2f16:$src, i32:$src_mods))), 2112 (V_PK_MUL_F16 0, (i32 CONST.FP16_ONE), $src_mods, $src, DSTCLAMP.NONE) 2113>; 2114 2115def : GCNPat< 2116 (fcanonicalize (f32 (VOP3Mods f32:$src, i32:$src_mods))), 2117 (V_MUL_F32_e64 0, (i32 CONST.FP32_ONE), $src_mods, $src) 2118>; 2119 2120def : GCNPat< 2121 (fcanonicalize (f32 (fneg (VOP3Mods f32:$src, i32:$src_mods)))), 2122 (V_MUL_F32_e64 0, (i32 CONST.FP32_NEG_ONE), $src_mods, $src) 2123>; 2124 2125// TODO: Handle fneg like other types. 2126def : GCNPat< 2127 (fcanonicalize (f64 (VOP3Mods f64:$src, i32:$src_mods))), 2128 (V_MUL_F64_e64 0, CONST.FP64_ONE, $src_mods, $src) 2129>; 2130} // End AddedComplexity = -5 2131 2132multiclass SelectCanonicalizeAsMax< 2133 list<Predicate> f32_preds = [], 2134 list<Predicate> f64_preds = [], 2135 list<Predicate> f16_preds = []> { 2136 def : GCNPat< 2137 (fcanonicalize (f32 (VOP3Mods f32:$src, i32:$src_mods))), 2138 (V_MAX_F32_e64 $src_mods, $src, $src_mods, $src)> { 2139 let OtherPredicates = f32_preds; 2140 } 2141 2142 def : GCNPat< 2143 (fcanonicalize (f64 (VOP3Mods f64:$src, i32:$src_mods))), 2144 (V_MAX_F64_e64 $src_mods, $src, $src_mods, $src)> { 2145 let OtherPredicates = f64_preds; 2146 } 2147 2148 def : GCNPat< 2149 (fcanonicalize (f16 (VOP3Mods f16:$src, i32:$src_mods))), 2150 (V_MAX_F16_e64 $src_mods, $src, $src_mods, $src, 0, 0)> { 2151 // FIXME: Should have 16-bit inst subtarget predicate 2152 let OtherPredicates = f16_preds; 2153 } 2154 2155 def : GCNPat< 2156 (fcanonicalize (v2f16 (VOP3PMods v2f16:$src, i32:$src_mods))), 2157 (V_PK_MAX_F16 $src_mods, $src, $src_mods, $src, DSTCLAMP.NONE)> { 2158 // FIXME: Should have VOP3P subtarget predicate 2159 let OtherPredicates = f16_preds; 2160 } 2161} 2162 2163// On pre-gfx9 targets, v_max_*/v_min_* did not respect the denormal 2164// mode, and would never flush. For f64, it's faster to do implement 2165// this with a max. For f16/f32 it's a wash, but prefer max when 2166// valid. 2167// 2168// FIXME: Lowering f32/f16 with max is worse since we can use a 2169// smaller encoding if the input is fneg'd. It also adds an extra 2170// register use. 2171let SubtargetPredicate = HasMinMaxDenormModes in { 2172 defm : SelectCanonicalizeAsMax<[], [], []>; 2173} // End SubtargetPredicate = HasMinMaxDenormModes 2174 2175let SubtargetPredicate = NotHasMinMaxDenormModes in { 2176 // Use the max lowering if we don't need to flush. 2177 2178 // FIXME: We don't do use this for f32 as a workaround for the 2179 // library being compiled with the default ieee mode, but 2180 // potentially being called from flushing kernels. Really we should 2181 // not be mixing code expecting different default FP modes, but mul 2182 // works in any FP environment. 2183 defm : SelectCanonicalizeAsMax<[FalsePredicate], [FP64Denormals], [FP16Denormals]>; 2184} // End SubtargetPredicate = NotHasMinMaxDenormModes 2185 2186 2187let OtherPredicates = [HasDLInsts] in { 2188def : GCNPat < 2189 (fma (f32 (VOP3Mods f32:$src0, i32:$src0_modifiers)), 2190 (f32 (VOP3Mods f32:$src1, i32:$src1_modifiers)), 2191 (f32 (VOP3NoMods f32:$src2))), 2192 (V_FMAC_F32_e64 $src0_modifiers, $src0, $src1_modifiers, $src1, 2193 SRCMODS.NONE, $src2) 2194>; 2195} // End OtherPredicates = [HasDLInsts] 2196 2197let SubtargetPredicate = isGFX10Plus in 2198def : GCNPat < 2199 (fma (f16 (VOP3Mods f32:$src0, i32:$src0_modifiers)), 2200 (f16 (VOP3Mods f32:$src1, i32:$src1_modifiers)), 2201 (f16 (VOP3NoMods f32:$src2))), 2202 (V_FMAC_F16_e64 $src0_modifiers, $src0, $src1_modifiers, $src1, 2203 SRCMODS.NONE, $src2) 2204>; 2205 2206let SubtargetPredicate = isGFX90APlus in 2207def : GCNPat < 2208 (fma (f64 (VOP3Mods0 f64:$src0, i32:$src0_modifiers, i1:$clamp, i32:$omod)), 2209 (f64 (VOP3Mods f64:$src1, i32:$src1_modifiers)), 2210 (f64 (VOP3NoMods f64:$src2))), 2211 (V_FMAC_F64_e64 $src0_modifiers, $src0, $src1_modifiers, $src1, 2212 SRCMODS.NONE, $src2, $clamp, $omod) 2213>; 2214 2215// COPY is workaround tablegen bug from multiple outputs 2216// from S_LSHL_B32's multiple outputs from implicit scc def. 2217def : GCNPat < 2218 (v2i16 (build_vector (i16 0), (i16 SReg_32:$src1))), 2219 (S_LSHL_B32 SReg_32:$src1, (i16 16)) 2220>; 2221 2222def : GCNPat < 2223 (v2i16 (build_vector (i16 SReg_32:$src1), (i16 0))), 2224 (S_AND_B32 (S_MOV_B32 (i32 0xffff)), SReg_32:$src1) 2225>; 2226 2227def : GCNPat < 2228 (v2f16 (build_vector (f16 SReg_32:$src1), (f16 FP_ZERO))), 2229 (S_AND_B32 (S_MOV_B32 (i32 0xffff)), SReg_32:$src1) 2230>; 2231 2232def : GCNPat < 2233 (v2i16 (build_vector (i16 SReg_32:$src0), (i16 undef))), 2234 (COPY_TO_REGCLASS SReg_32:$src0, SReg_32) 2235>; 2236 2237def : GCNPat < 2238 (v2i16 (build_vector (i16 VGPR_32:$src0), (i16 undef))), 2239 (COPY_TO_REGCLASS VGPR_32:$src0, VGPR_32) 2240>; 2241 2242def : GCNPat < 2243 (v2f16 (build_vector f16:$src0, (f16 undef))), 2244 (COPY $src0) 2245>; 2246 2247def : GCNPat < 2248 (v2i16 (build_vector (i16 undef), (i16 SReg_32:$src1))), 2249 (S_LSHL_B32 SReg_32:$src1, (i32 16)) 2250>; 2251 2252def : GCNPat < 2253 (v2f16 (build_vector (f16 undef), (f16 SReg_32:$src1))), 2254 (S_LSHL_B32 SReg_32:$src1, (i32 16)) 2255>; 2256 2257let SubtargetPredicate = HasVOP3PInsts in { 2258def : GCNPat < 2259 (v2i16 (build_vector (i16 SReg_32:$src0), (i16 SReg_32:$src1))), 2260 (S_PACK_LL_B32_B16 SReg_32:$src0, SReg_32:$src1) 2261>; 2262 2263// With multiple uses of the shift, this will duplicate the shift and 2264// increase register pressure. 2265def : GCNPat < 2266 (v2i16 (build_vector (i16 SReg_32:$src0), (i16 (trunc (srl_oneuse SReg_32:$src1, (i32 16)))))), 2267 (v2i16 (S_PACK_LH_B32_B16 SReg_32:$src0, SReg_32:$src1)) 2268>; 2269 2270 2271def : GCNPat < 2272 (v2i16 (build_vector (i16 (trunc (srl_oneuse SReg_32:$src0, (i32 16)))), 2273 (i16 (trunc (srl_oneuse SReg_32:$src1, (i32 16)))))), 2274 (S_PACK_HH_B32_B16 SReg_32:$src0, SReg_32:$src1) 2275>; 2276 2277// TODO: Should source modifiers be matched to v_pack_b32_f16? 2278def : GCNPat < 2279 (v2f16 (build_vector (f16 SReg_32:$src0), (f16 SReg_32:$src1))), 2280 (S_PACK_LL_B32_B16 SReg_32:$src0, SReg_32:$src1) 2281>; 2282 2283} // End SubtargetPredicate = HasVOP3PInsts 2284 2285 2286def : GCNPat < 2287 (v2f16 (scalar_to_vector f16:$src0)), 2288 (COPY $src0) 2289>; 2290 2291def : GCNPat < 2292 (v2i16 (scalar_to_vector i16:$src0)), 2293 (COPY $src0) 2294>; 2295 2296def : GCNPat < 2297 (v4i16 (scalar_to_vector i16:$src0)), 2298 (INSERT_SUBREG (IMPLICIT_DEF), $src0, sub0) 2299>; 2300 2301def : GCNPat < 2302 (v4f16 (scalar_to_vector f16:$src0)), 2303 (INSERT_SUBREG (IMPLICIT_DEF), $src0, sub0) 2304>; 2305 2306def : GCNPat < 2307 (i64 (int_amdgcn_mov_dpp i64:$src, timm:$dpp_ctrl, timm:$row_mask, 2308 timm:$bank_mask, timm:$bound_ctrl)), 2309 (V_MOV_B64_DPP_PSEUDO VReg_64_Align2:$src, VReg_64_Align2:$src, 2310 (as_i32timm $dpp_ctrl), (as_i32timm $row_mask), 2311 (as_i32timm $bank_mask), 2312 (as_i1timm $bound_ctrl)) 2313>; 2314 2315def : GCNPat < 2316 (i64 (int_amdgcn_update_dpp i64:$old, i64:$src, timm:$dpp_ctrl, timm:$row_mask, 2317 timm:$bank_mask, timm:$bound_ctrl)), 2318 (V_MOV_B64_DPP_PSEUDO VReg_64_Align2:$old, VReg_64_Align2:$src, (as_i32timm $dpp_ctrl), 2319 (as_i32timm $row_mask), (as_i32timm $bank_mask), 2320 (as_i1timm $bound_ctrl)) 2321>; 2322 2323//===----------------------------------------------------------------------===// 2324// Fract Patterns 2325//===----------------------------------------------------------------------===// 2326 2327let SubtargetPredicate = isGFX6 in { 2328 2329// V_FRACT is buggy on SI, so the F32 version is never used and (x-floor(x)) is 2330// used instead. However, SI doesn't have V_FLOOR_F64, so the most efficient 2331// way to implement it is using V_FRACT_F64. 2332// The workaround for the V_FRACT bug is: 2333// fract(x) = isnan(x) ? x : min(V_FRACT(x), 0.99999999999999999) 2334 2335// Convert floor(x) to (x - fract(x)) 2336 2337// Don't bother handling this for GlobalISel, it's handled during 2338// lowering. 2339// 2340// FIXME: DAG should also custom lower this. 2341def : GCNPat < 2342 (f64 (ffloor (f64 (VOP3Mods f64:$x, i32:$mods)))), 2343 (V_ADD_F64_e64 2344 $mods, 2345 $x, 2346 SRCMODS.NEG, 2347 (V_CNDMASK_B64_PSEUDO 2348 (V_MIN_F64_e64 2349 SRCMODS.NONE, 2350 (V_FRACT_F64_e64 $mods, $x), 2351 SRCMODS.NONE, 2352 (V_MOV_B64_PSEUDO 0x3fefffffffffffff)), 2353 $x, 2354 (V_CMP_CLASS_F64_e64 SRCMODS.NONE, $x, (i32 3 /*NaN*/)))) 2355>; 2356 2357} // End SubtargetPredicates = isGFX6 2358 2359//============================================================================// 2360// Miscellaneous Optimization Patterns 2361//============================================================================// 2362 2363// Undo sub x, c -> add x, -c canonicalization since c is more likely 2364// an inline immediate than -c. 2365// TODO: Also do for 64-bit. 2366def : GCNPat< 2367 (add i32:$src0, (i32 NegSubInlineConst32:$src1)), 2368 (S_SUB_I32 SReg_32:$src0, NegSubInlineConst32:$src1) 2369>; 2370 2371def : GCNPat< 2372 (add i32:$src0, (i32 NegSubInlineConst32:$src1)), 2373 (V_SUB_U32_e64 VS_32:$src0, NegSubInlineConst32:$src1)> { 2374 let SubtargetPredicate = HasAddNoCarryInsts; 2375} 2376 2377def : GCNPat< 2378 (add i32:$src0, (i32 NegSubInlineConst32:$src1)), 2379 (V_SUB_CO_U32_e64 VS_32:$src0, NegSubInlineConst32:$src1)> { 2380 let SubtargetPredicate = NotHasAddNoCarryInsts; 2381} 2382 2383 2384// Avoid pointlessly materializing a constant in VGPR. 2385// FIXME: Should also do this for readlane, but tablegen crashes on 2386// the ignored src1. 2387def : GCNPat< 2388 (int_amdgcn_readfirstlane (i32 imm:$src)), 2389 (S_MOV_B32 SReg_32:$src) 2390>; 2391 2392multiclass BFMPatterns <ValueType vt, InstSI BFM, InstSI MOV> { 2393 def : GCNPat < 2394 (vt (shl (vt (add (vt (shl 1, vt:$a)), -1)), vt:$b)), 2395 (BFM $a, $b) 2396 >; 2397 2398 def : GCNPat < 2399 (vt (add (vt (shl 1, vt:$a)), -1)), 2400 (BFM $a, (MOV (i32 0))) 2401 >; 2402} 2403 2404defm : BFMPatterns <i32, S_BFM_B32, S_MOV_B32>; 2405// FIXME: defm : BFMPatterns <i64, S_BFM_B64, S_MOV_B64>; 2406 2407// Bitfield extract patterns 2408 2409def IMMZeroBasedBitfieldMask : ImmLeaf <i32, [{ 2410 return isMask_32(Imm); 2411}]>; 2412 2413def IMMPopCount : SDNodeXForm<imm, [{ 2414 return CurDAG->getTargetConstant(countPopulation(N->getZExtValue()), SDLoc(N), 2415 MVT::i32); 2416}]>; 2417 2418def : AMDGPUPat < 2419 (DivergentBinFrag<and> (i32 (srl i32:$src, i32:$rshift)), 2420 IMMZeroBasedBitfieldMask:$mask), 2421 (V_BFE_U32_e64 $src, $rshift, (i32 (IMMPopCount $mask))) 2422>; 2423 2424// x & ((1 << y) - 1) 2425def : AMDGPUPat < 2426 (DivergentBinFrag<and> i32:$src, (add_oneuse (shl_oneuse 1, i32:$width), -1)), 2427 (V_BFE_U32_e64 $src, (i32 0), $width) 2428>; 2429 2430// x & ~(-1 << y) 2431def : AMDGPUPat < 2432 (DivergentBinFrag<and> i32:$src, 2433 (xor_oneuse (shl_oneuse -1, i32:$width), -1)), 2434 (V_BFE_U32_e64 $src, (i32 0), $width) 2435>; 2436 2437// x & (-1 >> (bitwidth - y)) 2438def : AMDGPUPat < 2439 (DivergentBinFrag<and> i32:$src, (srl_oneuse -1, (sub 32, i32:$width))), 2440 (V_BFE_U32_e64 $src, (i32 0), $width) 2441>; 2442 2443// x << (bitwidth - y) >> (bitwidth - y) 2444def : AMDGPUPat < 2445 (DivergentBinFrag<srl> (shl_oneuse i32:$src, (sub 32, i32:$width)), 2446 (sub 32, i32:$width)), 2447 (V_BFE_U32_e64 $src, (i32 0), $width) 2448>; 2449 2450def : AMDGPUPat < 2451 (DivergentBinFrag<sra> (shl_oneuse i32:$src, (sub 32, i32:$width)), 2452 (sub 32, i32:$width)), 2453 (V_BFE_I32_e64 $src, (i32 0), $width) 2454>; 2455 2456// SHA-256 Ma patterns 2457 2458// ((x & z) | (y & (x | z))) -> BFI (XOR x, y), z, y 2459def : AMDGPUPat < 2460 (DivergentBinFrag<or> (and i32:$x, i32:$z), 2461 (and i32:$y, (or i32:$x, i32:$z))), 2462 (V_BFI_B32_e64 (V_XOR_B32_e64 i32:$x, i32:$y), i32:$z, i32:$y) 2463>; 2464 2465def : AMDGPUPat < 2466 (DivergentBinFrag<or> (and i64:$x, i64:$z), 2467 (and i64:$y, (or i64:$x, i64:$z))), 2468 (REG_SEQUENCE SReg_64, 2469 (V_BFI_B32_e64 (V_XOR_B32_e64 (i32 (EXTRACT_SUBREG SReg_64:$x, sub0)), 2470 (i32 (EXTRACT_SUBREG SReg_64:$y, sub0))), 2471 (i32 (EXTRACT_SUBREG SReg_64:$z, sub0)), 2472 (i32 (EXTRACT_SUBREG SReg_64:$y, sub0))), sub0, 2473 (V_BFI_B32_e64 (V_XOR_B32_e64 (i32 (EXTRACT_SUBREG SReg_64:$x, sub1)), 2474 (i32 (EXTRACT_SUBREG SReg_64:$y, sub1))), 2475 (i32 (EXTRACT_SUBREG SReg_64:$z, sub1)), 2476 (i32 (EXTRACT_SUBREG SReg_64:$y, sub1))), sub1) 2477>; 2478 2479multiclass IntMed3Pat<Instruction med3Inst, 2480 SDPatternOperator min, 2481 SDPatternOperator max, 2482 SDPatternOperator min_oneuse, 2483 SDPatternOperator max_oneuse> { 2484 2485 // This matches 16 permutations of 2486 // min(max(a, b), max(min(a, b), c)) 2487 def : AMDGPUPat < 2488 (min (max_oneuse i32:$src0, i32:$src1), 2489 (max_oneuse (min_oneuse i32:$src0, i32:$src1), i32:$src2)), 2490 (med3Inst VSrc_b32:$src0, VSrc_b32:$src1, VSrc_b32:$src2) 2491>; 2492 2493 // This matches 16 permutations of 2494 // max(min(x, y), min(max(x, y), z)) 2495 def : AMDGPUPat < 2496 (max (min_oneuse i32:$src0, i32:$src1), 2497 (min_oneuse (max_oneuse i32:$src0, i32:$src1), i32:$src2)), 2498 (med3Inst VSrc_b32:$src0, VSrc_b32:$src1, VSrc_b32:$src2) 2499>; 2500} 2501 2502defm : IntMed3Pat<V_MED3_I32_e64, smin, smax, smin_oneuse, smax_oneuse>; 2503defm : IntMed3Pat<V_MED3_U32_e64, umin, umax, umin_oneuse, umax_oneuse>; 2504 2505// This matches 16 permutations of 2506// max(min(x, y), min(max(x, y), z)) 2507class FPMed3Pat<ValueType vt, 2508 //SDPatternOperator max, SDPatternOperator min, 2509 Instruction med3Inst> : GCNPat< 2510 (fmaxnum_like (fminnum_like_oneuse (VOP3Mods_nnan vt:$src0, i32:$src0_mods), 2511 (VOP3Mods_nnan vt:$src1, i32:$src1_mods)), 2512 (fminnum_like_oneuse (fmaxnum_like_oneuse (VOP3Mods_nnan vt:$src0, i32:$src0_mods), 2513 (VOP3Mods_nnan vt:$src1, i32:$src1_mods)), 2514 (vt (VOP3Mods_nnan vt:$src2, i32:$src2_mods)))), 2515 (med3Inst $src0_mods, $src0, $src1_mods, $src1, $src2_mods, $src2, DSTCLAMP.NONE, DSTOMOD.NONE) 2516>; 2517 2518class FP16Med3Pat<ValueType vt, 2519 Instruction med3Inst> : GCNPat< 2520 (fmaxnum_like (fminnum_like_oneuse (VOP3Mods_nnan vt:$src0, i32:$src0_mods), 2521 (VOP3Mods_nnan vt:$src1, i32:$src1_mods)), 2522 (fminnum_like_oneuse (fmaxnum_like_oneuse (VOP3Mods_nnan vt:$src0, i32:$src0_mods), 2523 (VOP3Mods_nnan vt:$src1, i32:$src1_mods)), 2524 (vt (VOP3Mods_nnan vt:$src2, i32:$src2_mods)))), 2525 (med3Inst $src0_mods, $src0, $src1_mods, $src1, $src2_mods, $src2, DSTCLAMP.NONE) 2526>; 2527 2528multiclass Int16Med3Pat<Instruction med3Inst, 2529 SDPatternOperator min, 2530 SDPatternOperator max, 2531 SDPatternOperator max_oneuse, 2532 SDPatternOperator min_oneuse> { 2533 // This matches 16 permutations of 2534 // max(min(x, y), min(max(x, y), z)) 2535 def : GCNPat < 2536 (max (min_oneuse i16:$src0, i16:$src1), 2537 (min_oneuse (max_oneuse i16:$src0, i16:$src1), i16:$src2)), 2538 (med3Inst SRCMODS.NONE, VSrc_b16:$src0, SRCMODS.NONE, VSrc_b16:$src1, SRCMODS.NONE, VSrc_b16:$src2, DSTCLAMP.NONE) 2539>; 2540 2541 // This matches 16 permutations of 2542 // min(max(a, b), max(min(a, b), c)) 2543 def : GCNPat < 2544 (min (max_oneuse i16:$src0, i16:$src1), 2545 (max_oneuse (min_oneuse i16:$src0, i16:$src1), i16:$src2)), 2546 (med3Inst SRCMODS.NONE, VSrc_b16:$src0, SRCMODS.NONE, VSrc_b16:$src1, SRCMODS.NONE, VSrc_b16:$src2, DSTCLAMP.NONE) 2547>; 2548} 2549 2550def : FPMed3Pat<f32, V_MED3_F32_e64>; 2551 2552let OtherPredicates = [isGFX9Plus] in { 2553def : FP16Med3Pat<f16, V_MED3_F16_e64>; 2554defm : Int16Med3Pat<V_MED3_I16_e64, smin, smax, smax_oneuse, smin_oneuse>; 2555defm : Int16Med3Pat<V_MED3_U16_e64, umin, umax, umax_oneuse, umin_oneuse>; 2556} // End Predicates = [isGFX9Plus] 2557 2558class AMDGPUGenericInstruction : GenericInstruction { 2559 let Namespace = "AMDGPU"; 2560} 2561 2562def G_AMDGPU_FFBH_U32 : AMDGPUGenericInstruction { 2563 let OutOperandList = (outs type0:$dst); 2564 let InOperandList = (ins type1:$src); 2565 let hasSideEffects = 0; 2566} 2567 2568def G_AMDGPU_RCP_IFLAG : AMDGPUGenericInstruction { 2569 let OutOperandList = (outs type0:$dst); 2570 let InOperandList = (ins type1:$src); 2571 let hasSideEffects = 0; 2572} 2573 2574class BufferLoadGenericInstruction : AMDGPUGenericInstruction { 2575 let OutOperandList = (outs type0:$dst); 2576 let InOperandList = (ins type1:$rsrc, type2:$vindex, type2:$voffset, 2577 type2:$soffset, untyped_imm_0:$offset, 2578 untyped_imm_0:$cachepolicy, untyped_imm_0:$idxen); 2579 let hasSideEffects = 0; 2580 let mayLoad = 1; 2581} 2582 2583class TBufferLoadGenericInstruction : AMDGPUGenericInstruction { 2584 let OutOperandList = (outs type0:$dst); 2585 let InOperandList = (ins type1:$rsrc, type2:$vindex, type2:$voffset, 2586 type2:$soffset, untyped_imm_0:$offset, untyped_imm_0:$format, 2587 untyped_imm_0:$cachepolicy, untyped_imm_0:$idxen); 2588 let hasSideEffects = 0; 2589 let mayLoad = 1; 2590} 2591 2592def G_AMDGPU_BUFFER_LOAD_UBYTE : BufferLoadGenericInstruction; 2593def G_AMDGPU_BUFFER_LOAD_SBYTE : BufferLoadGenericInstruction; 2594def G_AMDGPU_BUFFER_LOAD_USHORT : BufferLoadGenericInstruction; 2595def G_AMDGPU_BUFFER_LOAD_SSHORT : BufferLoadGenericInstruction; 2596def G_AMDGPU_BUFFER_LOAD : BufferLoadGenericInstruction; 2597def G_AMDGPU_BUFFER_LOAD_FORMAT : BufferLoadGenericInstruction; 2598def G_AMDGPU_BUFFER_LOAD_FORMAT_D16 : BufferLoadGenericInstruction; 2599def G_AMDGPU_TBUFFER_LOAD_FORMAT : TBufferLoadGenericInstruction; 2600def G_AMDGPU_TBUFFER_LOAD_FORMAT_D16 : TBufferLoadGenericInstruction; 2601 2602class BufferStoreGenericInstruction : AMDGPUGenericInstruction { 2603 let OutOperandList = (outs); 2604 let InOperandList = (ins type0:$vdata, type1:$rsrc, type2:$vindex, type2:$voffset, 2605 type2:$soffset, untyped_imm_0:$offset, 2606 untyped_imm_0:$cachepolicy, untyped_imm_0:$idxen); 2607 let hasSideEffects = 0; 2608 let mayStore = 1; 2609} 2610 2611class TBufferStoreGenericInstruction : AMDGPUGenericInstruction { 2612 let OutOperandList = (outs); 2613 let InOperandList = (ins type0:$vdata, type1:$rsrc, type2:$vindex, type2:$voffset, 2614 type2:$soffset, untyped_imm_0:$offset, 2615 untyped_imm_0:$format, 2616 untyped_imm_0:$cachepolicy, untyped_imm_0:$idxen); 2617 let hasSideEffects = 0; 2618 let mayStore = 1; 2619} 2620 2621def G_AMDGPU_BUFFER_STORE : BufferStoreGenericInstruction; 2622def G_AMDGPU_BUFFER_STORE_BYTE : BufferStoreGenericInstruction; 2623def G_AMDGPU_BUFFER_STORE_SHORT : BufferStoreGenericInstruction; 2624def G_AMDGPU_BUFFER_STORE_FORMAT : BufferStoreGenericInstruction; 2625def G_AMDGPU_BUFFER_STORE_FORMAT_D16 : BufferStoreGenericInstruction; 2626def G_AMDGPU_TBUFFER_STORE_FORMAT : TBufferStoreGenericInstruction; 2627def G_AMDGPU_TBUFFER_STORE_FORMAT_D16 : TBufferStoreGenericInstruction; 2628 2629def G_AMDGPU_FMIN_LEGACY : AMDGPUGenericInstruction { 2630 let OutOperandList = (outs type0:$dst); 2631 let InOperandList = (ins type0:$src0, type0:$src1); 2632 let hasSideEffects = 0; 2633} 2634 2635def G_AMDGPU_FMAX_LEGACY : AMDGPUGenericInstruction { 2636 let OutOperandList = (outs type0:$dst); 2637 let InOperandList = (ins type0:$src0, type0:$src1); 2638 let hasSideEffects = 0; 2639} 2640 2641foreach N = 0-3 in { 2642def G_AMDGPU_CVT_F32_UBYTE#N : AMDGPUGenericInstruction { 2643 let OutOperandList = (outs type0:$dst); 2644 let InOperandList = (ins type0:$src0); 2645 let hasSideEffects = 0; 2646} 2647} 2648 2649def G_AMDGPU_CVT_PK_I16_I32 : AMDGPUGenericInstruction { 2650 let OutOperandList = (outs type0:$dst); 2651 let InOperandList = (ins type0:$src0, type0:$src1); 2652 let hasSideEffects = 0; 2653} 2654 2655def G_AMDGPU_SMED3 : AMDGPUGenericInstruction { 2656 let OutOperandList = (outs type0:$dst); 2657 let InOperandList = (ins type0:$src0, type0:$src1, type0:$src2); 2658 let hasSideEffects = 0; 2659} 2660 2661def G_AMDGPU_UMED3 : AMDGPUGenericInstruction { 2662 let OutOperandList = (outs type0:$dst); 2663 let InOperandList = (ins type0:$src0, type0:$src1, type0:$src2); 2664 let hasSideEffects = 0; 2665} 2666 2667// Atomic cmpxchg. $cmpval ad $newval are packed in a single vector 2668// operand Expects a MachineMemOperand in addition to explicit 2669// operands. 2670def G_AMDGPU_ATOMIC_CMPXCHG : AMDGPUGenericInstruction { 2671 let OutOperandList = (outs type0:$oldval); 2672 let InOperandList = (ins ptype1:$addr, type0:$cmpval_newval); 2673 let hasSideEffects = 0; 2674 let mayLoad = 1; 2675 let mayStore = 1; 2676} 2677 2678let Namespace = "AMDGPU" in { 2679def G_AMDGPU_ATOMIC_INC : G_ATOMICRMW_OP; 2680def G_AMDGPU_ATOMIC_DEC : G_ATOMICRMW_OP; 2681def G_AMDGPU_ATOMIC_FMIN : G_ATOMICRMW_OP; 2682def G_AMDGPU_ATOMIC_FMAX : G_ATOMICRMW_OP; 2683} 2684 2685class BufferAtomicGenericInstruction<bit NoRtn = 0> : AMDGPUGenericInstruction { 2686 let OutOperandList = !if(NoRtn, (outs), (outs type0:$dst)); 2687 let InOperandList = (ins type0:$vdata, type1:$rsrc, type2:$vindex, type2:$voffset, 2688 type2:$soffset, untyped_imm_0:$offset, 2689 untyped_imm_0:$cachepolicy, untyped_imm_0:$idxen); 2690 let hasSideEffects = 0; 2691 let mayLoad = 1; 2692 let mayStore = 1; 2693} 2694 2695def G_AMDGPU_BUFFER_ATOMIC_SWAP : BufferAtomicGenericInstruction; 2696def G_AMDGPU_BUFFER_ATOMIC_ADD : BufferAtomicGenericInstruction; 2697def G_AMDGPU_BUFFER_ATOMIC_SUB : BufferAtomicGenericInstruction; 2698def G_AMDGPU_BUFFER_ATOMIC_SMIN : BufferAtomicGenericInstruction; 2699def G_AMDGPU_BUFFER_ATOMIC_UMIN : BufferAtomicGenericInstruction; 2700def G_AMDGPU_BUFFER_ATOMIC_SMAX : BufferAtomicGenericInstruction; 2701def G_AMDGPU_BUFFER_ATOMIC_UMAX : BufferAtomicGenericInstruction; 2702def G_AMDGPU_BUFFER_ATOMIC_AND : BufferAtomicGenericInstruction; 2703def G_AMDGPU_BUFFER_ATOMIC_OR : BufferAtomicGenericInstruction; 2704def G_AMDGPU_BUFFER_ATOMIC_XOR : BufferAtomicGenericInstruction; 2705def G_AMDGPU_BUFFER_ATOMIC_INC : BufferAtomicGenericInstruction; 2706def G_AMDGPU_BUFFER_ATOMIC_DEC : BufferAtomicGenericInstruction; 2707def G_AMDGPU_BUFFER_ATOMIC_FADD : BufferAtomicGenericInstruction; 2708def G_AMDGPU_BUFFER_ATOMIC_FMIN : BufferAtomicGenericInstruction; 2709def G_AMDGPU_BUFFER_ATOMIC_FMAX : BufferAtomicGenericInstruction; 2710 2711def G_AMDGPU_BUFFER_ATOMIC_CMPSWAP : AMDGPUGenericInstruction { 2712 let OutOperandList = (outs type0:$dst); 2713 let InOperandList = (ins type0:$vdata, type0:$cmp, type1:$rsrc, type2:$vindex, 2714 type2:$voffset, type2:$soffset, untyped_imm_0:$offset, 2715 untyped_imm_0:$cachepolicy, untyped_imm_0:$idxen); 2716 let hasSideEffects = 0; 2717 let mayLoad = 1; 2718 let mayStore = 1; 2719} 2720 2721// Wrapper around llvm.amdgcn.s.buffer.load. This is mostly needed as 2722// a workaround for the intrinsic being defined as readnone, but 2723// really needs a memory operand. 2724def G_AMDGPU_S_BUFFER_LOAD : AMDGPUGenericInstruction { 2725 let OutOperandList = (outs type0:$dst); 2726 let InOperandList = (ins type1:$rsrc, type2:$offset, untyped_imm_0:$cachepolicy); 2727 let hasSideEffects = 0; 2728 let mayLoad = 1; 2729 let mayStore = 0; 2730} 2731 2732// This is equivalent to the G_INTRINSIC*, but the operands may have 2733// been legalized depending on the subtarget requirements. 2734def G_AMDGPU_INTRIN_IMAGE_LOAD : AMDGPUGenericInstruction { 2735 let OutOperandList = (outs type0:$dst); 2736 let InOperandList = (ins unknown:$intrin, variable_ops); 2737 let hasSideEffects = 0; 2738 let mayLoad = 1; 2739 2740 // FIXME: Use separate opcode for atomics. 2741 let mayStore = 1; 2742} 2743 2744// This is equivalent to the G_INTRINSIC*, but the operands may have 2745// been legalized depending on the subtarget requirements. 2746def G_AMDGPU_INTRIN_IMAGE_STORE : AMDGPUGenericInstruction { 2747 let OutOperandList = (outs); 2748 let InOperandList = (ins unknown:$intrin, variable_ops); 2749 let hasSideEffects = 0; 2750 let mayStore = 1; 2751} 2752 2753def G_AMDGPU_INTRIN_BVH_INTERSECT_RAY : AMDGPUGenericInstruction { 2754 let OutOperandList = (outs type0:$dst); 2755 let InOperandList = (ins unknown:$intrin, variable_ops); 2756 let hasSideEffects = 0; 2757 let mayLoad = 1; 2758 let mayStore = 0; 2759} 2760