1//===-- SIInstrInfo.td - SI Instruction Infos -------------*- tablegen -*--===// 2// 3// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4// See https://llvm.org/LICENSE.txt for license information. 5// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6// 7//===----------------------------------------------------------------------===// 8 9def isWave32 : Predicate<"Subtarget->getWavefrontSize() == 32">, 10 AssemblerPredicate <(all_of FeatureWavefrontSize32)>; 11def isWave64 : Predicate<"Subtarget->getWavefrontSize() == 64">, 12 AssemblerPredicate <(all_of FeatureWavefrontSize64)>; 13 14class GCNPredicateControl : PredicateControl { 15 Predicate SIAssemblerPredicate = isGFX6GFX7; 16 Predicate VIAssemblerPredicate = isGFX8GFX9; 17} 18 19// Except for the NONE field, this must be kept in sync with the 20// SIEncodingFamily enum in AMDGPUInstrInfo.cpp 21def SIEncodingFamily { 22 int NONE = -1; 23 int SI = 0; 24 int VI = 1; 25 int SDWA = 2; 26 int SDWA9 = 3; 27 int GFX80 = 4; 28 int GFX9 = 5; 29 int GFX10 = 6; 30 int SDWA10 = 7; 31 int GFX90A = 8; 32 int GFX940 = 9; 33} 34 35//===----------------------------------------------------------------------===// 36// SI DAG Nodes 37//===----------------------------------------------------------------------===// 38 39def AMDGPUclamp : SDNode<"AMDGPUISD::CLAMP", SDTFPUnaryOp>; 40 41def SIsbuffer_load : SDNode<"AMDGPUISD::SBUFFER_LOAD", 42 SDTypeProfile<1, 3, [SDTCisVT<1, v4i32>, SDTCisVT<2, i32>, SDTCisVT<3, i32>]>, 43 [SDNPMayLoad, SDNPMemOperand] 44>; 45 46def SIds_ordered_count : SDNode<"AMDGPUISD::DS_ORDERED_COUNT", 47 SDTypeProfile<1, 2, [SDTCisVT<0, i32>, SDTCisVT<1, i32>, SDTCisVT<2, i16>]>, 48 [SDNPMayLoad, SDNPMayStore, SDNPMemOperand, SDNPHasChain, SDNPInGlue] 49>; 50 51def SIatomic_inc : SDNode<"AMDGPUISD::ATOMIC_INC", SDTAtomic2, 52 [SDNPMayLoad, SDNPMayStore, SDNPMemOperand, SDNPHasChain] 53>; 54 55def SIatomic_dec : SDNode<"AMDGPUISD::ATOMIC_DEC", SDTAtomic2, 56 [SDNPMayLoad, SDNPMayStore, SDNPMemOperand, SDNPHasChain] 57>; 58 59def SDTAtomic2_f32 : SDTypeProfile<1, 2, [ 60 SDTCisSameAs<0,2>, SDTCisFP<0>, SDTCisPtrTy<1> 61]>; 62 63def SIatomic_fmin : SDNode<"AMDGPUISD::ATOMIC_LOAD_FMIN", SDTAtomic2_f32, 64 [SDNPMayLoad, SDNPMayStore, SDNPMemOperand, SDNPHasChain] 65>; 66 67def SIatomic_fmax : SDNode<"AMDGPUISD::ATOMIC_LOAD_FMAX", SDTAtomic2_f32, 68 [SDNPMayLoad, SDNPMayStore, SDNPMemOperand, SDNPHasChain] 69>; 70 71// load_d16_{lo|hi} ptr, tied_input 72def SIload_d16 : SDTypeProfile<1, 2, [ 73 SDTCisPtrTy<1>, 74 SDTCisSameAs<0, 2> 75]>; 76 77 78def SDTtbuffer_load : SDTypeProfile<1, 8, 79 [ // vdata 80 SDTCisVT<1, v4i32>, // rsrc 81 SDTCisVT<2, i32>, // vindex(VGPR) 82 SDTCisVT<3, i32>, // voffset(VGPR) 83 SDTCisVT<4, i32>, // soffset(SGPR) 84 SDTCisVT<5, i32>, // offset(imm) 85 SDTCisVT<6, i32>, // format(imm) 86 SDTCisVT<7, i32>, // cachepolicy, swizzled buffer(imm) 87 SDTCisVT<8, i1> // idxen(imm) 88 ]>; 89 90def SItbuffer_load : SDNode<"AMDGPUISD::TBUFFER_LOAD_FORMAT", SDTtbuffer_load, 91 [SDNPMayLoad, SDNPMemOperand, SDNPHasChain]>; 92def SItbuffer_load_d16 : SDNode<"AMDGPUISD::TBUFFER_LOAD_FORMAT_D16", 93 SDTtbuffer_load, 94 [SDNPMayLoad, SDNPMemOperand, SDNPHasChain]>; 95 96def SDTtbuffer_store : SDTypeProfile<0, 9, 97 [ // vdata 98 SDTCisVT<1, v4i32>, // rsrc 99 SDTCisVT<2, i32>, // vindex(VGPR) 100 SDTCisVT<3, i32>, // voffset(VGPR) 101 SDTCisVT<4, i32>, // soffset(SGPR) 102 SDTCisVT<5, i32>, // offset(imm) 103 SDTCisVT<6, i32>, // format(imm) 104 SDTCisVT<7, i32>, // cachepolicy, swizzled buffer(imm) 105 SDTCisVT<8, i1> // idxen(imm) 106 ]>; 107 108def SItbuffer_store : SDNode<"AMDGPUISD::TBUFFER_STORE_FORMAT", SDTtbuffer_store, 109 [SDNPMayStore, SDNPMemOperand, SDNPHasChain]>; 110def SItbuffer_store_d16 : SDNode<"AMDGPUISD::TBUFFER_STORE_FORMAT_D16", 111 SDTtbuffer_store, 112 [SDNPMayStore, SDNPMemOperand, SDNPHasChain]>; 113 114def SDTBufferLoad : SDTypeProfile<1, 7, 115 [ // vdata 116 SDTCisVT<1, v4i32>, // rsrc 117 SDTCisVT<2, i32>, // vindex(VGPR) 118 SDTCisVT<3, i32>, // voffset(VGPR) 119 SDTCisVT<4, i32>, // soffset(SGPR) 120 SDTCisVT<5, i32>, // offset(imm) 121 SDTCisVT<6, i32>, // cachepolicy, swizzled buffer(imm) 122 SDTCisVT<7, i1>]>; // idxen(imm) 123 124def SIbuffer_load : SDNode <"AMDGPUISD::BUFFER_LOAD", SDTBufferLoad, 125 [SDNPMemOperand, SDNPHasChain, SDNPMayLoad]>; 126def SIbuffer_load_ubyte : SDNode <"AMDGPUISD::BUFFER_LOAD_UBYTE", SDTBufferLoad, 127 [SDNPMemOperand, SDNPHasChain, SDNPMayLoad]>; 128def SIbuffer_load_ushort : SDNode <"AMDGPUISD::BUFFER_LOAD_USHORT", SDTBufferLoad, 129 [SDNPMemOperand, SDNPHasChain, SDNPMayLoad]>; 130def SIbuffer_load_byte : SDNode <"AMDGPUISD::BUFFER_LOAD_BYTE", SDTBufferLoad, 131 [SDNPMemOperand, SDNPHasChain, SDNPMayLoad]>; 132def SIbuffer_load_short: SDNode <"AMDGPUISD::BUFFER_LOAD_SHORT", SDTBufferLoad, 133 [SDNPMemOperand, SDNPHasChain, SDNPMayLoad]>; 134def SIbuffer_load_format : SDNode <"AMDGPUISD::BUFFER_LOAD_FORMAT", SDTBufferLoad, 135 [SDNPMemOperand, SDNPHasChain, SDNPMayLoad]>; 136def SIbuffer_load_format_d16 : SDNode <"AMDGPUISD::BUFFER_LOAD_FORMAT_D16", 137 SDTBufferLoad, 138 [SDNPMemOperand, SDNPHasChain, SDNPMayLoad]>; 139 140def SDTBufferStore : SDTypeProfile<0, 8, 141 [ // vdata 142 SDTCisVT<1, v4i32>, // rsrc 143 SDTCisVT<2, i32>, // vindex(VGPR) 144 SDTCisVT<3, i32>, // voffset(VGPR) 145 SDTCisVT<4, i32>, // soffset(SGPR) 146 SDTCisVT<5, i32>, // offset(imm) 147 SDTCisVT<6, i32>, // cachepolicy, swizzled buffer(imm) 148 SDTCisVT<7, i1>]>; // idxen(imm) 149 150def SIbuffer_store : SDNode <"AMDGPUISD::BUFFER_STORE", SDTBufferStore, 151 [SDNPMayStore, SDNPMemOperand, SDNPHasChain]>; 152def SIbuffer_store_byte: SDNode <"AMDGPUISD::BUFFER_STORE_BYTE", 153 SDTBufferStore, 154 [SDNPMayStore, SDNPMemOperand, SDNPHasChain]>; 155def SIbuffer_store_short : SDNode <"AMDGPUISD::BUFFER_STORE_SHORT", 156 SDTBufferStore, 157 [SDNPMayStore, SDNPMemOperand, SDNPHasChain]>; 158def SIbuffer_store_format : SDNode <"AMDGPUISD::BUFFER_STORE_FORMAT", 159 SDTBufferStore, 160 [SDNPMayStore, SDNPMemOperand, SDNPHasChain]>; 161def SIbuffer_store_format_d16 : SDNode <"AMDGPUISD::BUFFER_STORE_FORMAT_D16", 162 SDTBufferStore, 163 [SDNPMayStore, SDNPMemOperand, SDNPHasChain]>; 164 165class SDBufferAtomic<string opcode> : SDNode <opcode, 166 SDTypeProfile<1, 8, 167 [SDTCisVT<2, v4i32>, // rsrc 168 SDTCisVT<3, i32>, // vindex(VGPR) 169 SDTCisVT<4, i32>, // voffset(VGPR) 170 SDTCisVT<5, i32>, // soffset(SGPR) 171 SDTCisVT<6, i32>, // offset(imm) 172 SDTCisVT<7, i32>, // cachepolicy(imm) 173 SDTCisVT<8, i1>]>, // idxen(imm) 174 [SDNPMemOperand, SDNPHasChain, SDNPMayLoad, SDNPMayStore] 175>; 176 177def SIbuffer_atomic_swap : SDBufferAtomic <"AMDGPUISD::BUFFER_ATOMIC_SWAP">; 178def SIbuffer_atomic_add : SDBufferAtomic <"AMDGPUISD::BUFFER_ATOMIC_ADD">; 179def SIbuffer_atomic_sub : SDBufferAtomic <"AMDGPUISD::BUFFER_ATOMIC_SUB">; 180def SIbuffer_atomic_smin : SDBufferAtomic <"AMDGPUISD::BUFFER_ATOMIC_SMIN">; 181def SIbuffer_atomic_umin : SDBufferAtomic <"AMDGPUISD::BUFFER_ATOMIC_UMIN">; 182def SIbuffer_atomic_smax : SDBufferAtomic <"AMDGPUISD::BUFFER_ATOMIC_SMAX">; 183def SIbuffer_atomic_umax : SDBufferAtomic <"AMDGPUISD::BUFFER_ATOMIC_UMAX">; 184def SIbuffer_atomic_and : SDBufferAtomic <"AMDGPUISD::BUFFER_ATOMIC_AND">; 185def SIbuffer_atomic_or : SDBufferAtomic <"AMDGPUISD::BUFFER_ATOMIC_OR">; 186def SIbuffer_atomic_xor : SDBufferAtomic <"AMDGPUISD::BUFFER_ATOMIC_XOR">; 187def SIbuffer_atomic_inc : SDBufferAtomic <"AMDGPUISD::BUFFER_ATOMIC_INC">; 188def SIbuffer_atomic_dec : SDBufferAtomic <"AMDGPUISD::BUFFER_ATOMIC_DEC">; 189def SIbuffer_atomic_csub : SDBufferAtomic <"AMDGPUISD::BUFFER_ATOMIC_CSUB">; 190def SIbuffer_atomic_fadd : SDBufferAtomic <"AMDGPUISD::BUFFER_ATOMIC_FADD">; 191def SIbuffer_atomic_fmin : SDBufferAtomic <"AMDGPUISD::BUFFER_ATOMIC_FMIN">; 192def SIbuffer_atomic_fmax : SDBufferAtomic <"AMDGPUISD::BUFFER_ATOMIC_FMAX">; 193 194multiclass SDBufferAtomicRetNoRet { 195 def "_ret" : PatFrag< 196 (ops node:$vdata_in, node:$rsrc, node:$vindex, node:$voffset, node:$soffset, 197 node:$offset, node:$cachepolicy, node:$idxen), 198 (!cast<SDNode>(NAME) node:$vdata_in, node:$rsrc, node:$vindex, 199 node:$voffset, node:$soffset, node:$offset, node:$cachepolicy, 200 node:$idxen)> { 201 let PredicateCode = [{ return !(SDValue(N, 0).use_empty()); }]; 202 let GISelPredicateCode = [{ return true; }]; 203 } 204 205 def "_noret" : PatFrag< 206 (ops node:$vdata_in, node:$rsrc, node:$vindex, node:$voffset, node:$soffset, 207 node:$offset, node:$cachepolicy, node:$idxen), 208 (!cast<SDNode>(NAME) node:$vdata_in, node:$rsrc, node:$vindex, 209 node:$voffset, node:$soffset, node:$offset, node:$cachepolicy, 210 node:$idxen)> { 211 let PredicateCode = [{ return SDValue(N, 0).use_empty(); }]; 212 let GISelPredicateCode = [{ return false; }]; 213 } 214} 215 216defm SIbuffer_atomic_swap : SDBufferAtomicRetNoRet; 217defm SIbuffer_atomic_add : SDBufferAtomicRetNoRet; 218defm SIbuffer_atomic_sub : SDBufferAtomicRetNoRet; 219defm SIbuffer_atomic_smin : SDBufferAtomicRetNoRet; 220defm SIbuffer_atomic_umin : SDBufferAtomicRetNoRet; 221defm SIbuffer_atomic_smax : SDBufferAtomicRetNoRet; 222defm SIbuffer_atomic_umax : SDBufferAtomicRetNoRet; 223defm SIbuffer_atomic_and : SDBufferAtomicRetNoRet; 224defm SIbuffer_atomic_or : SDBufferAtomicRetNoRet; 225defm SIbuffer_atomic_xor : SDBufferAtomicRetNoRet; 226defm SIbuffer_atomic_inc : SDBufferAtomicRetNoRet; 227defm SIbuffer_atomic_dec : SDBufferAtomicRetNoRet; 228defm SIbuffer_atomic_fadd : SDBufferAtomicRetNoRet; 229defm SIbuffer_atomic_fmin : SDBufferAtomicRetNoRet; 230defm SIbuffer_atomic_fmax : SDBufferAtomicRetNoRet; 231 232def SIbuffer_atomic_cmpswap : SDNode <"AMDGPUISD::BUFFER_ATOMIC_CMPSWAP", 233 SDTypeProfile<1, 9, 234 [SDTCisVT<0, i32>, // dst 235 SDTCisVT<1, i32>, // src 236 SDTCisVT<2, i32>, // cmp 237 SDTCisVT<3, v4i32>, // rsrc 238 SDTCisVT<4, i32>, // vindex(VGPR) 239 SDTCisVT<5, i32>, // voffset(VGPR) 240 SDTCisVT<6, i32>, // soffset(SGPR) 241 SDTCisVT<7, i32>, // offset(imm) 242 SDTCisVT<8, i32>, // cachepolicy(imm) 243 SDTCisVT<9, i1>]>, // idxen(imm) 244 [SDNPMemOperand, SDNPHasChain, SDNPMayLoad, SDNPMayStore] 245>; 246 247def SIbuffer_atomic_cmpswap_ret : PatFrag< 248 (ops node:$src, node:$cmp, node:$rsrc, node:$vindex, node:$voffset, 249 node:$soffset, node:$offset, node:$cachepolicy, node:$idxen), 250 (SIbuffer_atomic_cmpswap node:$src, node:$cmp, node:$rsrc, node:$vindex, 251 node:$voffset, node:$soffset, node:$offset, node:$cachepolicy, 252 node:$idxen)> { 253 let PredicateCode = [{ return !(SDValue(N, 0).use_empty()); }]; 254 let GISelPredicateCode = [{ return true; }]; 255} 256 257def SIbuffer_atomic_cmpswap_noret : PatFrag< 258 (ops node:$src, node:$cmp, node:$rsrc, node:$vindex, node:$voffset, 259 node:$soffset, node:$offset, node:$cachepolicy, node:$idxen), 260 (SIbuffer_atomic_cmpswap node:$src, node:$cmp, node:$rsrc, node:$vindex, 261 node:$voffset, node:$soffset, node:$offset, node:$cachepolicy, 262 node:$idxen)> { 263 let PredicateCode = [{ return SDValue(N, 0).use_empty(); }]; 264 let GISelPredicateCode = [{ return false; }]; 265} 266 267class SDGlobalAtomicNoRtn<string opcode, ValueType ty> : SDNode <opcode, 268 SDTypeProfile<0, 2, 269 [SDTCisPtrTy<0>, // vaddr 270 SDTCisVT<1, ty>]>, // vdata 271 [SDNPMemOperand, SDNPHasChain, SDNPMayLoad, SDNPMayStore] 272>; 273 274def SIpc_add_rel_offset : SDNode<"AMDGPUISD::PC_ADD_REL_OFFSET", 275 SDTypeProfile<1, 2, [SDTCisVT<0, iPTR>, SDTCisSameAs<0,1>, SDTCisSameAs<0,2>]> 276>; 277 278def SIlds : SDNode<"AMDGPUISD::LDS", 279 SDTypeProfile<1, 1, [SDTCisVT<0, iPTR>, SDTCisSameAs<0,1>]> 280>; 281 282def SIload_d16_lo : SDNode<"AMDGPUISD::LOAD_D16_LO", 283 SIload_d16, 284 [SDNPMayLoad, SDNPMemOperand, SDNPHasChain] 285>; 286 287def SIload_d16_lo_u8 : SDNode<"AMDGPUISD::LOAD_D16_LO_U8", 288 SIload_d16, 289 [SDNPMayLoad, SDNPMemOperand, SDNPHasChain] 290>; 291 292def SIload_d16_lo_i8 : SDNode<"AMDGPUISD::LOAD_D16_LO_I8", 293 SIload_d16, 294 [SDNPMayLoad, SDNPMemOperand, SDNPHasChain] 295>; 296 297def SIload_d16_hi : SDNode<"AMDGPUISD::LOAD_D16_HI", 298 SIload_d16, 299 [SDNPMayLoad, SDNPMemOperand, SDNPHasChain] 300>; 301 302def SIload_d16_hi_u8 : SDNode<"AMDGPUISD::LOAD_D16_HI_U8", 303 SIload_d16, 304 [SDNPMayLoad, SDNPMemOperand, SDNPHasChain] 305>; 306 307def SIload_d16_hi_i8 : SDNode<"AMDGPUISD::LOAD_D16_HI_I8", 308 SIload_d16, 309 [SDNPMayLoad, SDNPMemOperand, SDNPHasChain] 310>; 311 312def SIdenorm_mode : SDNode<"AMDGPUISD::DENORM_MODE", 313 SDTypeProfile<0 ,1, [SDTCisInt<0>]>, 314 [SDNPHasChain, SDNPOptInGlue, SDNPOutGlue] 315>; 316 317def SIfptrunc_round_upward : SDNode<"AMDGPUISD::FPTRUNC_ROUND_UPWARD", 318 SDTFPRoundOp 319>; 320 321def SIfptrunc_round_downward : SDNode<"AMDGPUISD::FPTRUNC_ROUND_DOWNWARD", 322 SDTFPRoundOp 323>; 324 325//===----------------------------------------------------------------------===// 326// ValueType helpers 327//===----------------------------------------------------------------------===// 328 329// Returns 1 if the source arguments have modifiers, 0 if they do not. 330// XXX - do f16 instructions? 331class isFloatType<ValueType SrcVT> { 332 bit ret = !or(!eq(SrcVT.Value, f16.Value), 333 !eq(SrcVT.Value, f32.Value), 334 !eq(SrcVT.Value, f64.Value), 335 !eq(SrcVT.Value, v2f16.Value), 336 !eq(SrcVT.Value, v4f16.Value), 337 !eq(SrcVT.Value, v2f32.Value), 338 !eq(SrcVT.Value, v2f64.Value), 339 !eq(SrcVT.Value, v4f64.Value)); 340} 341 342class isIntType<ValueType SrcVT> { 343 bit ret = !or(!eq(SrcVT.Value, i16.Value), 344 !eq(SrcVT.Value, i32.Value), 345 !eq(SrcVT.Value, i64.Value), 346 !eq(SrcVT.Value, v2i32.Value)); 347} 348 349class isPackedType<ValueType SrcVT> { 350 bit ret = !or(!eq(SrcVT.Value, v2i16.Value), 351 !eq(SrcVT.Value, v2f16.Value), 352 !eq(SrcVT.Value, v4f16.Value), 353 !eq(SrcVT.Value, v2f32.Value)); 354} 355 356 357//===----------------------------------------------------------------------===// 358// PatFrags for global memory operations 359//===----------------------------------------------------------------------===// 360 361defm atomic_inc : binary_atomic_op_all_as<SIatomic_inc>; 362defm atomic_dec : binary_atomic_op_all_as<SIatomic_dec>; 363defm atomic_load_fmin : binary_atomic_op_all_as<SIatomic_fmin, 0>; 364defm atomic_load_fmax : binary_atomic_op_all_as<SIatomic_fmax, 0>; 365 366//===----------------------------------------------------------------------===// 367// SDNodes PatFrags for loads/stores with a glue input. 368// This is for SDNodes and PatFrag for local loads and stores to 369// enable s_mov_b32 m0, -1 to be glued to the memory instructions. 370// 371// These mirror the regular load/store PatFrags and rely on special 372// processing during Select() to add the glued copy. 373// 374//===----------------------------------------------------------------------===// 375 376def AMDGPUld_glue : SDNode <"ISD::LOAD", SDTLoad, 377 [SDNPHasChain, SDNPMayLoad, SDNPMemOperand, SDNPInGlue] 378>; 379 380def AMDGPUatomic_ld_glue : SDNode <"ISD::ATOMIC_LOAD", SDTAtomicLoad, 381 [SDNPHasChain, SDNPMayLoad, SDNPMemOperand, SDNPInGlue] 382>; 383 384def unindexedload_glue : PatFrag <(ops node:$ptr), (AMDGPUld_glue node:$ptr)> { 385 let IsLoad = 1; 386 let IsUnindexed = 1; 387} 388 389def load_glue : PatFrag <(ops node:$ptr), (unindexedload_glue node:$ptr)> { 390 let IsLoad = 1; 391 let IsNonExtLoad = 1; 392} 393 394def atomic_load_8_glue : PatFrag<(ops node:$ptr), 395 (AMDGPUatomic_ld_glue node:$ptr)> { 396 let IsAtomic = 1; 397 let MemoryVT = i8; 398} 399 400def atomic_load_16_glue : PatFrag<(ops node:$ptr), 401 (AMDGPUatomic_ld_glue node:$ptr)> { 402 let IsAtomic = 1; 403 let MemoryVT = i16; 404} 405 406def atomic_load_32_glue : PatFrag<(ops node:$ptr), 407 (AMDGPUatomic_ld_glue node:$ptr)> { 408 let IsAtomic = 1; 409 let MemoryVT = i32; 410} 411 412def atomic_load_64_glue : PatFrag<(ops node:$ptr), 413 (AMDGPUatomic_ld_glue node:$ptr)> { 414 let IsAtomic = 1; 415 let MemoryVT = i64; 416} 417 418def extload_glue : PatFrag<(ops node:$ptr), (unindexedload_glue node:$ptr)> { 419 let IsLoad = 1; 420 let IsAnyExtLoad = 1; 421} 422 423def sextload_glue : PatFrag<(ops node:$ptr), (unindexedload_glue node:$ptr)> { 424 let IsLoad = 1; 425 let IsSignExtLoad = 1; 426} 427 428def zextload_glue : PatFrag<(ops node:$ptr), (unindexedload_glue node:$ptr)> { 429 let IsLoad = 1; 430 let IsZeroExtLoad = 1; 431} 432 433def extloadi8_glue : PatFrag<(ops node:$ptr), (extload_glue node:$ptr)> { 434 let IsLoad = 1; 435 let MemoryVT = i8; 436} 437 438def zextloadi8_glue : PatFrag<(ops node:$ptr), (zextload_glue node:$ptr)> { 439 let IsLoad = 1; 440 let MemoryVT = i8; 441} 442 443def extloadi16_glue : PatFrag<(ops node:$ptr), (extload_glue node:$ptr)> { 444 let IsLoad = 1; 445 let MemoryVT = i16; 446} 447 448def zextloadi16_glue : PatFrag<(ops node:$ptr), (zextload_glue node:$ptr)> { 449 let IsLoad = 1; 450 let MemoryVT = i16; 451} 452 453def sextloadi8_glue : PatFrag<(ops node:$ptr), (sextload_glue node:$ptr)> { 454 let IsLoad = 1; 455 let MemoryVT = i8; 456} 457 458def sextloadi16_glue : PatFrag<(ops node:$ptr), (sextload_glue node:$ptr)> { 459 let IsLoad = 1; 460 let MemoryVT = i16; 461} 462 463 464let IsLoad = 1, AddressSpaces = LoadAddress_local.AddrSpaces in { 465def load_local_m0 : PatFrag<(ops node:$ptr), (load_glue node:$ptr)> { 466 let IsNonExtLoad = 1; 467} 468 469let MemoryVT = i8 in { 470def extloadi8_local_m0 : PatFrag<(ops node:$ptr), (extloadi8_glue node:$ptr)>; 471def sextloadi8_local_m0 : PatFrag<(ops node:$ptr), (sextloadi8_glue node:$ptr)>; 472def zextloadi8_local_m0 : PatFrag<(ops node:$ptr), (zextloadi8_glue node:$ptr)>; 473} 474 475let MemoryVT = i16 in { 476def extloadi16_local_m0 : PatFrag<(ops node:$ptr), (extloadi16_glue node:$ptr)>; 477def sextloadi16_local_m0 : PatFrag<(ops node:$ptr), (sextloadi16_glue node:$ptr)>; 478def zextloadi16_local_m0 : PatFrag<(ops node:$ptr), (zextloadi16_glue node:$ptr)>; 479} 480 481def load_align8_local_m0 : PatFrag<(ops node:$ptr), 482 (load_local_m0 node:$ptr)>, Aligned<8> { 483 let IsLoad = 1; 484 let IsNonExtLoad = 1; 485} 486 487def load_align16_local_m0 : PatFrag<(ops node:$ptr), 488 (load_local_m0 node:$ptr)>, Aligned<16> { 489 let IsLoad = 1; 490 let IsNonExtLoad = 1; 491} 492 493} // End IsLoad = 1 494 495let IsAtomic = 1, AddressSpaces = LoadAddress_local.AddrSpaces in { 496def atomic_load_8_local_m0 : PatFrag<(ops node:$ptr), 497 (atomic_load_8_glue node:$ptr)> { 498 let MemoryVT = i8; 499} 500def atomic_load_16_local_m0 : PatFrag<(ops node:$ptr), 501 (atomic_load_16_glue node:$ptr)> { 502 let MemoryVT = i16; 503} 504def atomic_load_32_local_m0 : PatFrag<(ops node:$ptr), 505 (atomic_load_32_glue node:$ptr)> { 506 let MemoryVT = i32; 507} 508def atomic_load_64_local_m0 : PatFrag<(ops node:$ptr), 509 (atomic_load_64_glue node:$ptr)> { 510 let MemoryVT = i64; 511} 512 513} // End let AddressSpaces = LoadAddress_local.AddrSpaces 514 515 516def AMDGPUst_glue : SDNode <"ISD::STORE", SDTStore, 517 [SDNPHasChain, SDNPMayStore, SDNPMemOperand, SDNPInGlue] 518>; 519 520def AMDGPUatomic_st_glue : SDNode <"ISD::ATOMIC_STORE", SDTAtomicStore, 521 [SDNPHasChain, SDNPMayStore, SDNPMemOperand, SDNPInGlue] 522>; 523 524def unindexedstore_glue : PatFrag<(ops node:$val, node:$ptr), 525 (AMDGPUst_glue node:$val, node:$ptr)> { 526 let IsStore = 1; 527 let IsUnindexed = 1; 528} 529 530def store_glue : PatFrag<(ops node:$val, node:$ptr), 531 (unindexedstore_glue node:$val, node:$ptr)> { 532 let IsStore = 1; 533 let IsTruncStore = 0; 534} 535 536def truncstore_glue : PatFrag<(ops node:$val, node:$ptr), 537 (unindexedstore_glue node:$val, node:$ptr)> { 538 let IsStore = 1; 539 let IsTruncStore = 1; 540} 541 542def truncstorei8_glue : PatFrag<(ops node:$val, node:$ptr), 543 (truncstore_glue node:$val, node:$ptr)> { 544 let IsStore = 1; 545 let MemoryVT = i8; 546} 547 548def truncstorei16_glue : PatFrag<(ops node:$val, node:$ptr), 549 (truncstore_glue node:$val, node:$ptr)> { 550 let IsStore = 1; 551 let MemoryVT = i16; 552} 553 554let IsStore = 1, AddressSpaces = StoreAddress_local.AddrSpaces in { 555def store_local_m0 : PatFrag<(ops node:$val, node:$ptr), 556 (store_glue node:$val, node:$ptr)> { 557 let IsStore = 1; 558 let IsTruncStore = 0; 559} 560 561def truncstorei8_local_m0 : PatFrag<(ops node:$val, node:$ptr), 562 (unindexedstore_glue node:$val, node:$ptr)> { 563 let IsStore = 1; 564 let MemoryVT = i8; 565} 566 567def truncstorei16_local_m0 : PatFrag<(ops node:$val, node:$ptr), 568 (unindexedstore_glue node:$val, node:$ptr)> { 569 let IsStore = 1; 570 let MemoryVT = i16; 571} 572} 573 574def store_align8_local_m0 : PatFrag <(ops node:$value, node:$ptr), 575 (store_local_m0 node:$value, node:$ptr)>, 576 Aligned<8> { 577 let IsStore = 1; 578 let IsTruncStore = 0; 579} 580 581def store_align16_local_m0 : PatFrag <(ops node:$value, node:$ptr), 582 (store_local_m0 node:$value, node:$ptr)>, 583 Aligned<16> { 584 let IsStore = 1; 585 let IsTruncStore = 0; 586} 587 588let AddressSpaces = StoreAddress_local.AddrSpaces in { 589 590def atomic_store_local_8_m0 : PatFrag < 591 (ops node:$value, node:$ptr), 592 (AMDGPUatomic_st_glue node:$value, node:$ptr)> { 593 let IsAtomic = 1; 594 let MemoryVT = i8; 595} 596def atomic_store_local_16_m0 : PatFrag < 597 (ops node:$value, node:$ptr), 598 (AMDGPUatomic_st_glue node:$value, node:$ptr)> { 599 let IsAtomic = 1; 600 let MemoryVT = i16; 601} 602def atomic_store_local_32_m0 : PatFrag < 603 (ops node:$value, node:$ptr), 604 (AMDGPUatomic_st_glue node:$value, node:$ptr)> { 605 let IsAtomic = 1; 606 let MemoryVT = i32; 607} 608def atomic_store_local_64_m0 : PatFrag < 609 (ops node:$value, node:$ptr), 610 (AMDGPUatomic_st_glue node:$value, node:$ptr)> { 611 let IsAtomic = 1; 612 let MemoryVT = i64; 613} 614} // End let AddressSpaces = StoreAddress_local.AddrSpaces 615 616 617def si_setcc_uniform : PatFrag < 618 (ops node:$lhs, node:$rhs, node:$cond), 619 (setcc node:$lhs, node:$rhs, node:$cond), [{ 620 return !N->isDivergent(); 621}]>; 622 623//===----------------------------------------------------------------------===// 624// SDNodes PatFrags for a16 loads and stores with 3 components. 625// v3f16/v3i16 is widened to v4f16/v4i16, so we need to match on the memory 626// load/store size. 627//===----------------------------------------------------------------------===// 628 629class mubuf_intrinsic_load<SDPatternOperator name, ValueType vt> : PatFrag < 630 (ops node:$rsrc, node:$vindex, node:$voffset, node:$soffset, node:$offset, 631 node:$auxiliary, node:$idxen), 632 (name node:$rsrc, node:$vindex, node:$voffset, node:$soffset, node:$offset, 633 node:$auxiliary, node:$idxen)> { 634 let IsLoad = 1; 635 let MemoryVT = vt; 636} 637 638class mubuf_intrinsic_store<SDPatternOperator name, ValueType vt> : PatFrag < 639 (ops node:$vdata, node:$rsrc, node:$vindex, node:$voffset, node:$soffset, node:$offset, 640 node:$auxiliary, node:$idxen), 641 (name node:$vdata, node:$rsrc, node:$vindex, node:$voffset, node:$soffset, node:$offset, 642 node:$auxiliary, node:$idxen)> { 643 let IsStore = 1; 644 let MemoryVT = vt; 645} 646 647class mtbuf_intrinsic_load<SDPatternOperator name, ValueType vt> : PatFrag < 648 (ops node:$rsrc, node:$vindex, node:$voffset, node:$soffset, node:$offset, 649 node:$format, node:$auxiliary, node:$idxen), 650 (name node:$rsrc, node:$vindex, node:$voffset, node:$soffset, node:$offset, 651 node:$format, node:$auxiliary, node:$idxen)> { 652 let IsLoad = 1; 653 let MemoryVT = vt; 654} 655 656class mtbuf_intrinsic_store<SDPatternOperator name, ValueType vt> : PatFrag < 657 (ops node:$vdata, node:$rsrc, node:$vindex, node:$voffset, node:$soffset, node:$offset, 658 node:$format, node:$auxiliary, node:$idxen), 659 (name node:$vdata, node:$rsrc, node:$vindex, node:$voffset, node:$soffset, node:$offset, 660 node:$format, node:$auxiliary, node:$idxen)> { 661 let IsStore = 1; 662 let MemoryVT = vt; 663} 664 665//===----------------------------------------------------------------------===// 666// SDNodes PatFrags for d16 loads 667//===----------------------------------------------------------------------===// 668 669class LoadD16Frag <SDPatternOperator op> : PatFrag< 670 (ops node:$ptr, node:$tied_in), 671 (op node:$ptr, node:$tied_in)> { 672 let IsLoad = 1; 673} 674 675foreach as = [ "global", "flat", "constant", "local", "private", "region" ] in { 676let AddressSpaces = !cast<AddressSpaceList>("LoadAddress_"#as).AddrSpaces in { 677 678def load_d16_hi_#as : LoadD16Frag <SIload_d16_hi>; 679 680def az_extloadi8_d16_hi_#as : LoadD16Frag <SIload_d16_hi_u8> { 681 let MemoryVT = i8; 682} 683 684def sextloadi8_d16_hi_#as : LoadD16Frag <SIload_d16_hi_i8> { 685 let MemoryVT = i8; 686} 687 688def load_d16_lo_#as : LoadD16Frag <SIload_d16_lo>; 689 690def az_extloadi8_d16_lo_#as : LoadD16Frag <SIload_d16_lo_u8> { 691 let MemoryVT = i8; 692} 693 694def sextloadi8_d16_lo_#as : LoadD16Frag <SIload_d16_lo_i8> { 695 let MemoryVT = i8; 696} 697 698} // End let AddressSpaces = ... 699} // End foreach AddrSpace 700 701def lshr_rev : PatFrag < 702 (ops node:$src1, node:$src0), 703 (srl $src0, $src1) 704>; 705 706def ashr_rev : PatFrag < 707 (ops node:$src1, node:$src0), 708 (sra $src0, $src1) 709>; 710 711def lshl_rev : PatFrag < 712 (ops node:$src1, node:$src0), 713 (shl $src0, $src1) 714>; 715 716def add_ctpop : PatFrag < 717 (ops node:$src0, node:$src1), 718 (add (ctpop $src0), $src1) 719>; 720 721def xnor : PatFrag < 722 (ops node:$src0, node:$src1), 723 (not (xor $src0, $src1)) 724>; 725 726foreach I = 1-4 in { 727def shl#I#_add : PatFrag < 728 (ops node:$src0, node:$src1), 729 (add (shl_oneuse $src0, (i32 I)), $src1)> { 730 // FIXME: Poor substitute for disabling pattern in SelectionDAG 731 let PredicateCode = [{return false;}]; 732 let GISelPredicateCode = [{return true;}]; 733} 734} 735 736multiclass SIAtomicM0Glue2 <string op_name, bit is_amdgpu = 0, 737 SDTypeProfile tc = SDTAtomic2, 738 bit IsInt = 1> { 739 740 def _glue : SDNode < 741 !if(is_amdgpu, "AMDGPUISD", "ISD")#"::ATOMIC_"#op_name, tc, 742 [SDNPHasChain, SDNPMayStore, SDNPMayLoad, SDNPMemOperand, SDNPInGlue] 743 >; 744 745 let AddressSpaces = StoreAddress_local.AddrSpaces in { 746 defm _local_m0 : binary_atomic_op <!cast<SDNode>(NAME#"_glue"), IsInt>; 747 defm _local_m0 : ret_noret_binary_atomic_op <!cast<SDNode>(NAME#"_glue"), 748 IsInt>; 749 } 750 751 let AddressSpaces = StoreAddress_region.AddrSpaces in { 752 defm _region_m0 : binary_atomic_op <!cast<SDNode>(NAME#"_glue"), IsInt>; 753 defm _region_m0 : ret_noret_binary_atomic_op <!cast<SDNode>(NAME#"_glue"), 754 IsInt>; 755 } 756} 757 758defm atomic_load_add : SIAtomicM0Glue2 <"LOAD_ADD">; 759defm atomic_load_sub : SIAtomicM0Glue2 <"LOAD_SUB">; 760defm atomic_inc : SIAtomicM0Glue2 <"INC", 1>; 761defm atomic_dec : SIAtomicM0Glue2 <"DEC", 1>; 762defm atomic_load_and : SIAtomicM0Glue2 <"LOAD_AND">; 763defm atomic_load_min : SIAtomicM0Glue2 <"LOAD_MIN">; 764defm atomic_load_max : SIAtomicM0Glue2 <"LOAD_MAX">; 765defm atomic_load_or : SIAtomicM0Glue2 <"LOAD_OR">; 766defm atomic_load_xor : SIAtomicM0Glue2 <"LOAD_XOR">; 767defm atomic_load_umin : SIAtomicM0Glue2 <"LOAD_UMIN">; 768defm atomic_load_umax : SIAtomicM0Glue2 <"LOAD_UMAX">; 769defm atomic_swap : SIAtomicM0Glue2 <"SWAP">; 770defm atomic_load_fadd : SIAtomicM0Glue2 <"LOAD_FADD", 0, SDTAtomic2_f32, 0>; 771defm atomic_load_fmin : SIAtomicM0Glue2 <"LOAD_FMIN", 1, SDTAtomic2_f32, 0>; 772defm atomic_load_fmax : SIAtomicM0Glue2 <"LOAD_FMAX", 1, SDTAtomic2_f32, 0>; 773 774def as_i1timm : SDNodeXForm<timm, [{ 775 return CurDAG->getTargetConstant(N->getZExtValue(), SDLoc(N), MVT::i1); 776}]>; 777 778def as_i8imm : SDNodeXForm<imm, [{ 779 return CurDAG->getTargetConstant(N->getZExtValue(), SDLoc(N), MVT::i8); 780}]>; 781 782def as_i8timm : SDNodeXForm<timm, [{ 783 return CurDAG->getTargetConstant(N->getSExtValue(), SDLoc(N), MVT::i16); 784}]>; 785 786def as_i16imm : SDNodeXForm<imm, [{ 787 return CurDAG->getTargetConstant(N->getSExtValue(), SDLoc(N), MVT::i16); 788}]>; 789 790def as_i16timm : SDNodeXForm<timm, [{ 791 return CurDAG->getTargetConstant(N->getSExtValue(), SDLoc(N), MVT::i16); 792}]>; 793 794def as_i32imm: SDNodeXForm<imm, [{ 795 return CurDAG->getTargetConstant(N->getSExtValue(), SDLoc(N), MVT::i32); 796}]>; 797 798def as_i32timm: SDNodeXForm<timm, [{ 799 return CurDAG->getTargetConstant(N->getSExtValue(), SDLoc(N), MVT::i32); 800}]>; 801 802def as_i64imm: SDNodeXForm<imm, [{ 803 return CurDAG->getTargetConstant(N->getSExtValue(), SDLoc(N), MVT::i64); 804}]>; 805 806def cond_as_i32imm: SDNodeXForm<cond, [{ 807 return CurDAG->getTargetConstant(N->get(), SDLoc(N), MVT::i32); 808}]>; 809 810// Copied from the AArch64 backend: 811def bitcast_fpimm_to_i32 : SDNodeXForm<fpimm, [{ 812return CurDAG->getTargetConstant( 813 N->getValueAPF().bitcastToAPInt().getZExtValue(), SDLoc(N), MVT::i32); 814}]>; 815 816def frameindex_to_targetframeindex : SDNodeXForm<frameindex, [{ 817 auto FI = cast<FrameIndexSDNode>(N); 818 return CurDAG->getTargetFrameIndex(FI->getIndex(), MVT::i32); 819}]>; 820 821// Copied from the AArch64 backend: 822def bitcast_fpimm_to_i64 : SDNodeXForm<fpimm, [{ 823return CurDAG->getTargetConstant( 824 N->getValueAPF().bitcastToAPInt().getZExtValue(), SDLoc(N), MVT::i64); 825}]>; 826 827class bitextract_imm<int bitnum> : SDNodeXForm<imm, [{ 828 uint64_t Imm = N->getZExtValue(); 829 unsigned Bit = (Imm >> }] # bitnum # [{ ) & 1; 830 return CurDAG->getTargetConstant(Bit, SDLoc(N), MVT::i1); 831}]>; 832 833def SIMM16bit : ImmLeaf <i32, 834 [{return isInt<16>(Imm);}] 835>; 836 837def UIMM16bit : ImmLeaf <i32, 838 [{return isUInt<16>(Imm);}] 839>; 840 841def i64imm_32bit : ImmLeaf<i64, [{ 842 return (Imm & 0xffffffffULL) == static_cast<uint64_t>(Imm); 843}]>; 844 845def InlineImm16 : ImmLeaf<i16, [{ 846 return isInlineImmediate16(Imm); 847}]>; 848 849def InlineImm32 : ImmLeaf<i32, [{ 850 return isInlineImmediate32(Imm); 851}]>; 852 853def InlineImm64 : ImmLeaf<i64, [{ 854 return isInlineImmediate64(Imm); 855}]>; 856 857def InlineImmFP32 : FPImmLeaf<f32, [{ 858 return isInlineImmediate(Imm); 859}]>; 860 861def InlineImmFP64 : FPImmLeaf<f64, [{ 862 return isInlineImmediate(Imm); 863}]>; 864 865 866class VGPRImm <dag frag> : PatLeaf<frag, [{ 867 return isVGPRImm(N); 868}]>; 869 870def NegateImm : SDNodeXForm<imm, [{ 871 return CurDAG->getConstant(-N->getSExtValue(), SDLoc(N), MVT::i32); 872}]>; 873 874// TODO: When FP inline imm values work? 875def NegSubInlineConst32 : ImmLeaf<i32, [{ 876 return Imm < -16 && Imm >= -64; 877}], NegateImm>; 878 879def NegSubInlineIntConst16 : ImmLeaf<i16, [{ 880 return Imm < -16 && Imm >= -64; 881}], NegateImm>; 882 883def ShiftAmt32Imm : ImmLeaf <i32, [{ 884 return Imm < 32; 885}]>; 886 887def getNegV2I16Imm : SDNodeXForm<build_vector, [{ 888 return SDValue(packNegConstantV2I16(N, *CurDAG), 0); 889}]>; 890 891def NegSubInlineConstV216 : PatLeaf<(build_vector), [{ 892 assert(N->getNumOperands() == 2); 893 assert(N->getOperand(0).getValueType().getSizeInBits() == 16); 894 SDValue Src0 = N->getOperand(0); 895 SDValue Src1 = N->getOperand(1); 896 if (Src0 == Src1) 897 return isNegInlineImmediate(Src0.getNode()); 898 899 return (isNullConstantOrUndef(Src0) && isNegInlineImmediate(Src1.getNode())) || 900 (isNullConstantOrUndef(Src1) && isNegInlineImmediate(Src0.getNode())); 901}], getNegV2I16Imm>; 902 903 904def fp16_zeros_high_16bits : PatLeaf<(f16 VGPR_32:$src), [{ 905 return fp16SrcZerosHighBits(N->getOpcode()); 906}]>; 907 908 909//===----------------------------------------------------------------------===// 910// MUBUF/SMEM Patterns 911//===----------------------------------------------------------------------===// 912 913def extract_cpol : SDNodeXForm<timm, [{ 914 return CurDAG->getTargetConstant(N->getZExtValue() & AMDGPU::CPol::ALL, SDLoc(N), MVT::i8); 915}]>; 916 917def extract_swz : SDNodeXForm<timm, [{ 918 return CurDAG->getTargetConstant((N->getZExtValue() >> 3) & 1, SDLoc(N), MVT::i8); 919}]>; 920 921def set_glc : SDNodeXForm<timm, [{ 922 return CurDAG->getTargetConstant(N->getZExtValue() | AMDGPU::CPol::GLC, SDLoc(N), MVT::i8); 923}]>; 924 925//===----------------------------------------------------------------------===// 926// Custom Operands 927//===----------------------------------------------------------------------===// 928 929def SoppBrTarget : AsmOperandClass { 930 let Name = "SoppBrTarget"; 931 let ParserMethod = "parseSOppBrTarget"; 932} 933 934def sopp_brtarget : Operand<OtherVT> { 935 let EncoderMethod = "getSOPPBrEncoding"; 936 let DecoderMethod = "decodeSoppBrTarget"; 937 let OperandType = "OPERAND_PCREL"; 938 let ParserMatchClass = SoppBrTarget; 939} 940 941def si_ga : Operand<iPTR>; 942 943def InterpSlotMatchClass : AsmOperandClass { 944 let Name = "InterpSlot"; 945 let PredicateMethod = "isInterpSlot"; 946 let ParserMethod = "parseInterpSlot"; 947 let RenderMethod = "addImmOperands"; 948} 949 950def InterpSlot : Operand<i32> { 951 let PrintMethod = "printInterpSlot"; 952 let ParserMatchClass = InterpSlotMatchClass; 953 let OperandType = "OPERAND_IMMEDIATE"; 954} 955 956def AttrMatchClass : AsmOperandClass { 957 let Name = "Attr"; 958 let PredicateMethod = "isInterpAttr"; 959 let ParserMethod = "parseInterpAttr"; 960 let RenderMethod = "addImmOperands"; 961} 962 963// It appears to be necessary to create a separate operand for this to 964// be able to parse attr<num> with no space. 965def Attr : Operand<i32> { 966 let PrintMethod = "printInterpAttr"; 967 let ParserMatchClass = AttrMatchClass; 968 let OperandType = "OPERAND_IMMEDIATE"; 969} 970 971def AttrChanMatchClass : AsmOperandClass { 972 let Name = "AttrChan"; 973 let PredicateMethod = "isAttrChan"; 974 let RenderMethod = "addImmOperands"; 975} 976 977def AttrChan : Operand<i32> { 978 let PrintMethod = "printInterpAttrChan"; 979 let ParserMatchClass = AttrChanMatchClass; 980 let OperandType = "OPERAND_IMMEDIATE"; 981} 982 983def SendMsgMatchClass : AsmOperandClass { 984 let Name = "SendMsg"; 985 let PredicateMethod = "isSendMsg"; 986 let ParserMethod = "parseSendMsgOp"; 987 let RenderMethod = "addImmOperands"; 988} 989 990def SwizzleMatchClass : AsmOperandClass { 991 let Name = "Swizzle"; 992 let PredicateMethod = "isSwizzle"; 993 let ParserMethod = "parseSwizzleOp"; 994 let RenderMethod = "addImmOperands"; 995 let IsOptional = 1; 996} 997 998def EndpgmMatchClass : AsmOperandClass { 999 let Name = "EndpgmImm"; 1000 let PredicateMethod = "isEndpgm"; 1001 let ParserMethod = "parseEndpgmOp"; 1002 let RenderMethod = "addImmOperands"; 1003 let IsOptional = 1; 1004} 1005 1006def ExpTgtMatchClass : AsmOperandClass { 1007 let Name = "ExpTgt"; 1008 let PredicateMethod = "isExpTgt"; 1009 let ParserMethod = "parseExpTgt"; 1010 let RenderMethod = "printExpTgt"; 1011} 1012 1013def SWaitMatchClass : AsmOperandClass { 1014 let Name = "SWaitCnt"; 1015 let RenderMethod = "addImmOperands"; 1016 let ParserMethod = "parseSWaitCntOps"; 1017} 1018 1019def DepCtrMatchClass : AsmOperandClass { 1020 let Name = "DepCtr"; 1021 let RenderMethod = "addImmOperands"; 1022 let ParserMethod = "parseDepCtrOps"; 1023} 1024 1025def VReg32OrOffClass : AsmOperandClass { 1026 let Name = "VReg32OrOff"; 1027 let ParserMethod = "parseVReg32OrOff"; 1028} 1029 1030let OperandType = "OPERAND_IMMEDIATE" in { 1031def SendMsgImm : Operand<i32> { 1032 let PrintMethod = "printSendMsg"; 1033 let ParserMatchClass = SendMsgMatchClass; 1034} 1035 1036def SwizzleImm : Operand<i16> { 1037 let PrintMethod = "printSwizzle"; 1038 let ParserMatchClass = SwizzleMatchClass; 1039} 1040 1041def EndpgmImm : Operand<i16> { 1042 let PrintMethod = "printEndpgm"; 1043 let ParserMatchClass = EndpgmMatchClass; 1044} 1045 1046def WAIT_FLAG : Operand <i32> { 1047 let ParserMatchClass = SWaitMatchClass; 1048 let PrintMethod = "printWaitFlag"; 1049} 1050 1051def DepCtrImm : Operand <i32> { 1052 let ParserMatchClass = DepCtrMatchClass; 1053 let PrintMethod = "printDepCtr"; 1054} 1055} // End OperandType = "OPERAND_IMMEDIATE" 1056 1057include "SIInstrFormats.td" 1058include "VIInstrFormats.td" 1059 1060def BoolReg : AsmOperandClass { 1061 let Name = "BoolReg"; 1062 let ParserMethod = "parseBoolReg"; 1063 let RenderMethod = "addRegOperands"; 1064} 1065 1066class BoolRC : RegisterOperand<SReg_1> { 1067 let ParserMatchClass = BoolReg; 1068 let DecoderMethod = "decodeBoolReg"; 1069} 1070 1071def SSrc_i1 : RegisterOperand<SReg_1_XEXEC> { 1072 let ParserMatchClass = BoolReg; 1073 let DecoderMethod = "decodeBoolReg"; 1074} 1075 1076def VOPDstS64orS32 : BoolRC { 1077 let PrintMethod = "printVOPDst"; 1078} 1079 1080// SCSrc_i1 is the operand for pseudo instructions only. 1081// Boolean immediates shall not be exposed to codegen instructions. 1082def SCSrc_i1 : RegisterOperand<SReg_1_XEXEC> { 1083 let OperandNamespace = "AMDGPU"; 1084 let OperandType = "OPERAND_REG_IMM_INT32"; 1085 let ParserMatchClass = BoolReg; 1086 let DecoderMethod = "decodeBoolReg"; 1087} 1088 1089// ===----------------------------------------------------------------------===// 1090// ExpSrc* Special cases for exp src operands which are printed as 1091// "off" depending on en operand. 1092// ===----------------------------------------------------------------------===// 1093 1094def ExpSrc0 : RegisterOperand<VGPR_32> { 1095 let PrintMethod = "printExpSrc0"; 1096 let ParserMatchClass = VReg32OrOffClass; 1097} 1098 1099def ExpSrc1 : RegisterOperand<VGPR_32> { 1100 let PrintMethod = "printExpSrc1"; 1101 let ParserMatchClass = VReg32OrOffClass; 1102} 1103 1104def ExpSrc2 : RegisterOperand<VGPR_32> { 1105 let PrintMethod = "printExpSrc2"; 1106 let ParserMatchClass = VReg32OrOffClass; 1107} 1108 1109def ExpSrc3 : RegisterOperand<VGPR_32> { 1110 let PrintMethod = "printExpSrc3"; 1111 let ParserMatchClass = VReg32OrOffClass; 1112} 1113 1114class SDWASrc<ValueType vt> : RegisterOperand<VS_32> { 1115 let OperandNamespace = "AMDGPU"; 1116 string Type = !if(isFloatType<vt>.ret, "FP", "INT"); 1117 let OperandType = "OPERAND_REG_INLINE_C_"#Type#vt.Size; 1118 let DecoderMethod = "decodeSDWASrc"#vt.Size; 1119 let EncoderMethod = "getSDWASrcEncoding"; 1120} 1121 1122def SDWASrc_i32 : SDWASrc<i32>; 1123def SDWASrc_i16 : SDWASrc<i16>; 1124def SDWASrc_f32 : SDWASrc<f32>; 1125def SDWASrc_f16 : SDWASrc<f16>; 1126 1127def SDWAVopcDst : BoolRC { 1128 let OperandNamespace = "AMDGPU"; 1129 let OperandType = "OPERAND_SDWA_VOPC_DST"; 1130 let EncoderMethod = "getSDWAVopcDstEncoding"; 1131 let DecoderMethod = "decodeSDWAVopcDst"; 1132 let PrintMethod = "printVOPDst"; 1133} 1134 1135class NamedMatchClass<string CName, bit Optional = 1> : AsmOperandClass { 1136 let Name = "Imm"#CName; 1137 let PredicateMethod = "is"#CName; 1138 let ParserMethod = !if(Optional, "parseOptionalOperand", "parse"#CName); 1139 let RenderMethod = "addImmOperands"; 1140 let IsOptional = Optional; 1141 let DefaultMethod = !if(Optional, "default"#CName, ?); 1142} 1143 1144class NamedOperandBit<string Name, AsmOperandClass MatchClass> : Operand<i1> { 1145 let PrintMethod = "print"#Name; 1146 let ParserMatchClass = MatchClass; 1147} 1148 1149class NamedOperandBit_0<string Name, AsmOperandClass MatchClass> : 1150 OperandWithDefaultOps<i1, (ops (i1 0))> { 1151 let PrintMethod = "print"#Name; 1152 let ParserMatchClass = MatchClass; 1153} 1154 1155class NamedOperandBit_1<string Name, AsmOperandClass MatchClass> : 1156 OperandWithDefaultOps<i1, (ops (i1 1))> { 1157 let PrintMethod = "print"#Name; 1158 let ParserMatchClass = MatchClass; 1159} 1160 1161class NamedOperandU8<string Name, AsmOperandClass MatchClass> : Operand<i8> { 1162 let PrintMethod = "print"#Name; 1163 let ParserMatchClass = MatchClass; 1164} 1165 1166class NamedOperandU16<string Name, AsmOperandClass MatchClass> : Operand<i16> { 1167 let PrintMethod = "print"#Name; 1168 let ParserMatchClass = MatchClass; 1169} 1170 1171class NamedOperandU32<string Name, AsmOperandClass MatchClass> : Operand<i32> { 1172 let PrintMethod = "print"#Name; 1173 let ParserMatchClass = MatchClass; 1174} 1175 1176class NamedOperandU32_0<string Name, AsmOperandClass MatchClass> : 1177 OperandWithDefaultOps<i32, (ops (i32 0))> { 1178 let PrintMethod = "print"#Name; 1179 let ParserMatchClass = MatchClass; 1180} 1181 1182class NamedOperandU32Default0<string Name, AsmOperandClass MatchClass> : 1183 OperandWithDefaultOps<i32, (ops (i32 0))> { 1184 let PrintMethod = "print"#Name; 1185 let ParserMatchClass = MatchClass; 1186} 1187 1188class NamedOperandU32Default1<string Name, AsmOperandClass MatchClass> : 1189 OperandWithDefaultOps<i32, (ops (i32 1))> { 1190 let PrintMethod = "print"#Name; 1191 let ParserMatchClass = MatchClass; 1192} 1193 1194let OperandType = "OPERAND_IMMEDIATE" in { 1195 1196def offen : NamedOperandBit<"Offen", NamedMatchClass<"Offen">>; 1197def idxen : NamedOperandBit<"Idxen", NamedMatchClass<"Idxen">>; 1198def addr64 : NamedOperandBit<"Addr64", NamedMatchClass<"Addr64">>; 1199 1200def flat_offset : NamedOperandU16<"FlatOffset", NamedMatchClass<"FlatOffset">>; 1201def offset : NamedOperandU16<"Offset", NamedMatchClass<"Offset">>; 1202def offset0 : NamedOperandU8<"Offset0", NamedMatchClass<"Offset0">>; 1203def offset1 : NamedOperandU8<"Offset1", NamedMatchClass<"Offset1">>; 1204 1205def gds : NamedOperandBit<"GDS", NamedMatchClass<"GDS">>; 1206 1207def omod : NamedOperandU32<"OModSI", NamedMatchClass<"OModSI">>; 1208def omod0 : NamedOperandU32_0<"OModSI", NamedMatchClass<"OModSI">>; 1209 1210// We need to make the cases with a default of 0 distinct from no 1211// default to help deal with some cases where the operand appears 1212// before a mandatory operand. 1213def clampmod : NamedOperandBit<"ClampSI", NamedMatchClass<"ClampSI">>; 1214def clampmod0 : NamedOperandBit_0<"ClampSI", NamedMatchClass<"ClampSI">>; 1215def highmod : NamedOperandBit<"High", NamedMatchClass<"High">>; 1216 1217def CPol : NamedOperandU32<"CPol", NamedMatchClass<"CPol">>; 1218def CPol_0 : NamedOperandU32Default0<"CPol", NamedMatchClass<"CPol">>; 1219def CPol_GLC1 : NamedOperandU32Default1<"CPol", NamedMatchClass<"CPol">>; 1220 1221def TFE : NamedOperandBit<"TFE", NamedMatchClass<"TFE">>; 1222def TFE_0 : NamedOperandBit_0<"TFE", NamedMatchClass<"TFE">>; 1223def SWZ : NamedOperandBit<"SWZ", NamedMatchClass<"SWZ">>; 1224def SWZ_0 : NamedOperandBit_0<"SWZ", NamedMatchClass<"SWZ">>; 1225def UNorm : NamedOperandBit<"UNorm", NamedMatchClass<"UNorm">>; 1226def DA : NamedOperandBit<"DA", NamedMatchClass<"DA">>; 1227def R128A16 : NamedOperandBit<"R128A16", NamedMatchClass<"R128A16">>; 1228def GFX10A16 : NamedOperandBit<"GFX10A16", NamedMatchClass<"GFX10A16">>; 1229def D16 : NamedOperandBit<"D16", NamedMatchClass<"D16">>; 1230def LWE : NamedOperandBit<"LWE", NamedMatchClass<"LWE">>; 1231def exp_compr : NamedOperandBit<"ExpCompr", NamedMatchClass<"ExpCompr">>; 1232def exp_vm : NamedOperandBit<"ExpVM", NamedMatchClass<"ExpVM">>; 1233 1234def FORMAT : NamedOperandU8<"FORMAT", NamedMatchClass<"FORMAT", 0>>; 1235 1236def DMask : NamedOperandU16<"DMask", NamedMatchClass<"DMask">>; 1237def Dim : NamedOperandU8<"Dim", NamedMatchClass<"Dim", 0>>; 1238 1239def dpp8 : NamedOperandU32<"DPP8", NamedMatchClass<"DPP8", 0>>; 1240 1241def dpp_ctrl : NamedOperandU32<"DPPCtrl", NamedMatchClass<"DPPCtrl", 0>>; 1242def row_mask : NamedOperandU32<"RowMask", NamedMatchClass<"RowMask">>; 1243def bank_mask : NamedOperandU32<"BankMask", NamedMatchClass<"BankMask">>; 1244def bound_ctrl : NamedOperandBit<"BoundCtrl", NamedMatchClass<"BoundCtrl">>; 1245def FI : NamedOperandU32<"FI", NamedMatchClass<"FI">>; 1246 1247def dst_sel : NamedOperandU32<"SDWADstSel", NamedMatchClass<"SDWADstSel">>; 1248def src0_sel : NamedOperandU32<"SDWASrc0Sel", NamedMatchClass<"SDWASrc0Sel">>; 1249def src1_sel : NamedOperandU32<"SDWASrc1Sel", NamedMatchClass<"SDWASrc1Sel">>; 1250def dst_unused : NamedOperandU32<"SDWADstUnused", NamedMatchClass<"SDWADstUnused">>; 1251 1252def op_sel0 : NamedOperandU32Default0<"OpSel", NamedMatchClass<"OpSel">>; 1253def op_sel_hi0 : NamedOperandU32Default0<"OpSelHi", NamedMatchClass<"OpSelHi">>; 1254def neg_lo0 : NamedOperandU32Default0<"NegLo", NamedMatchClass<"NegLo">>; 1255def neg_hi0 : NamedOperandU32Default0<"NegHi", NamedMatchClass<"NegHi">>; 1256 1257def blgp : NamedOperandU32<"BLGP", NamedMatchClass<"BLGP">>; 1258def cbsz : NamedOperandU32<"CBSZ", NamedMatchClass<"CBSZ">>; 1259def abid : NamedOperandU32<"ABID", NamedMatchClass<"ABID">>; 1260 1261def hwreg : NamedOperandU32<"Hwreg", NamedMatchClass<"Hwreg", 0>>; 1262 1263def exp_tgt : NamedOperandU32<"ExpTgt", NamedMatchClass<"ExpTgt", 0>> { 1264 1265} 1266 1267} // End OperandType = "OPERAND_IMMEDIATE" 1268 1269class KImmMatchClass<int size> : AsmOperandClass { 1270 let Name = "KImmFP"#size; 1271 let PredicateMethod = "isKImmFP"#size; 1272 let ParserMethod = "parseImm"; 1273 let RenderMethod = "addKImmFP"#size#"Operands"; 1274} 1275 1276class kimmOperand<ValueType vt> : Operand<vt> { 1277 let OperandNamespace = "AMDGPU"; 1278 let OperandType = "OPERAND_KIMM"#vt.Size; 1279 let PrintMethod = "printU"#vt.Size#"ImmOperand"; 1280 let ParserMatchClass = !cast<AsmOperandClass>("KImmFP"#vt.Size#"MatchClass"); 1281 let DecoderMethod = "decodeOperand_f"#vt.Size#"kimm"; 1282} 1283 1284// 32-bit VALU immediate operand that uses the constant bus. 1285def KImmFP32MatchClass : KImmMatchClass<32>; 1286def f32kimm : kimmOperand<i32>; 1287 1288// 32-bit VALU immediate operand with a 16-bit value that uses the 1289// constant bus. 1290def KImmFP16MatchClass : KImmMatchClass<16>; 1291def f16kimm : kimmOperand<i16>; 1292 1293class FPInputModsMatchClass <int opSize> : AsmOperandClass { 1294 let Name = "RegOrImmWithFP"#opSize#"InputMods"; 1295 let ParserMethod = "parseRegOrImmWithFPInputMods"; 1296 let PredicateMethod = "isRegOrImmWithFP"#opSize#"InputMods"; 1297} 1298 1299def FP16InputModsMatchClass : FPInputModsMatchClass<16>; 1300def FP32InputModsMatchClass : FPInputModsMatchClass<32>; 1301def FP64InputModsMatchClass : FPInputModsMatchClass<64>; 1302 1303class InputMods <AsmOperandClass matchClass> : Operand <i32> { 1304 let OperandNamespace = "AMDGPU"; 1305 let OperandType = "OPERAND_INPUT_MODS"; 1306 let ParserMatchClass = matchClass; 1307} 1308 1309class FPInputMods <FPInputModsMatchClass matchClass> : InputMods <matchClass> { 1310 let PrintMethod = "printOperandAndFPInputMods"; 1311} 1312 1313def FP16InputMods : FPInputMods<FP16InputModsMatchClass>; 1314def FP32InputMods : FPInputMods<FP32InputModsMatchClass>; 1315def FP64InputMods : FPInputMods<FP64InputModsMatchClass>; 1316 1317class IntInputModsMatchClass <int opSize> : AsmOperandClass { 1318 let Name = "RegOrImmWithInt"#opSize#"InputMods"; 1319 let ParserMethod = "parseRegOrImmWithIntInputMods"; 1320 let PredicateMethod = "isRegOrImmWithInt"#opSize#"InputMods"; 1321} 1322def Int32InputModsMatchClass : IntInputModsMatchClass<32>; 1323def Int64InputModsMatchClass : IntInputModsMatchClass<64>; 1324 1325class IntInputMods <IntInputModsMatchClass matchClass> : InputMods <matchClass> { 1326 let PrintMethod = "printOperandAndIntInputMods"; 1327} 1328def Int32InputMods : IntInputMods<Int32InputModsMatchClass>; 1329def Int64InputMods : IntInputMods<Int64InputModsMatchClass>; 1330 1331class OpSelModsMatchClass : AsmOperandClass { 1332 let Name = "OpSelMods"; 1333 let ParserMethod = "parseRegOrImm"; 1334 let PredicateMethod = "isRegOrImm"; 1335} 1336 1337def IntOpSelModsMatchClass : OpSelModsMatchClass; 1338def IntOpSelMods : InputMods<IntOpSelModsMatchClass>; 1339 1340class FPSDWAInputModsMatchClass <int opSize> : AsmOperandClass { 1341 let Name = "SDWAWithFP"#opSize#"InputMods"; 1342 let ParserMethod = "parseRegOrImmWithFPInputMods"; 1343 let PredicateMethod = "isSDWAFP"#opSize#"Operand"; 1344} 1345 1346def FP16SDWAInputModsMatchClass : FPSDWAInputModsMatchClass<16>; 1347def FP32SDWAInputModsMatchClass : FPSDWAInputModsMatchClass<32>; 1348 1349class FPSDWAInputMods <FPSDWAInputModsMatchClass matchClass> : 1350 InputMods <matchClass> { 1351 let PrintMethod = "printOperandAndFPInputMods"; 1352} 1353 1354def FP16SDWAInputMods : FPSDWAInputMods<FP16SDWAInputModsMatchClass>; 1355def FP32SDWAInputMods : FPSDWAInputMods<FP32SDWAInputModsMatchClass>; 1356 1357def FPVRegInputModsMatchClass : AsmOperandClass { 1358 let Name = "VRegWithFPInputMods"; 1359 let ParserMethod = "parseRegWithFPInputMods"; 1360 let PredicateMethod = "isVRegWithInputMods"; 1361} 1362 1363def FPVRegInputMods : InputMods <FPVRegInputModsMatchClass> { 1364 let PrintMethod = "printOperandAndFPInputMods"; 1365} 1366 1367class IntSDWAInputModsMatchClass <int opSize> : AsmOperandClass { 1368 let Name = "SDWAWithInt"#opSize#"InputMods"; 1369 let ParserMethod = "parseRegOrImmWithIntInputMods"; 1370 let PredicateMethod = "isSDWAInt"#opSize#"Operand"; 1371} 1372 1373def Int16SDWAInputModsMatchClass : IntSDWAInputModsMatchClass<16>; 1374def Int32SDWAInputModsMatchClass : IntSDWAInputModsMatchClass<32>; 1375 1376class IntSDWAInputMods <IntSDWAInputModsMatchClass matchClass> : 1377 InputMods <matchClass> { 1378 let PrintMethod = "printOperandAndIntInputMods"; 1379} 1380 1381def Int16SDWAInputMods : IntSDWAInputMods<Int16SDWAInputModsMatchClass>; 1382def Int32SDWAInputMods : IntSDWAInputMods<Int32SDWAInputModsMatchClass>; 1383 1384def IntVRegInputModsMatchClass : AsmOperandClass { 1385 let Name = "VRegWithIntInputMods"; 1386 let ParserMethod = "parseRegWithIntInputMods"; 1387 let PredicateMethod = "isVRegWithInputMods"; 1388} 1389 1390def IntVRegInputMods : InputMods <IntVRegInputModsMatchClass> { 1391 let PrintMethod = "printOperandAndIntInputMods"; 1392} 1393 1394class PackedFPInputModsMatchClass <int opSize> : AsmOperandClass { 1395 let Name = "PackedFP"#opSize#"InputMods"; 1396 let ParserMethod = "parseRegOrImm"; 1397 let PredicateMethod = "isRegOrImm"; 1398// let PredicateMethod = "isPackedFP"#opSize#"InputMods"; 1399} 1400 1401class PackedIntInputModsMatchClass <int opSize> : AsmOperandClass { 1402 let Name = "PackedInt"#opSize#"InputMods"; 1403 let ParserMethod = "parseRegOrImm"; 1404 let PredicateMethod = "isRegOrImm"; 1405// let PredicateMethod = "isPackedInt"#opSize#"InputMods"; 1406} 1407 1408def PackedF16InputModsMatchClass : PackedFPInputModsMatchClass<16>; 1409def PackedI16InputModsMatchClass : PackedIntInputModsMatchClass<16>; 1410 1411class PackedFPInputMods <PackedFPInputModsMatchClass matchClass> : InputMods <matchClass> { 1412// let PrintMethod = "printPackedFPInputMods"; 1413} 1414 1415class PackedIntInputMods <PackedIntInputModsMatchClass matchClass> : InputMods <matchClass> { 1416 //let PrintMethod = "printPackedIntInputMods"; 1417} 1418 1419def PackedF16InputMods : PackedFPInputMods<PackedF16InputModsMatchClass>; 1420def PackedI16InputMods : PackedIntInputMods<PackedI16InputModsMatchClass>; 1421 1422//===----------------------------------------------------------------------===// 1423// Complex patterns 1424//===----------------------------------------------------------------------===// 1425 1426def DS1Addr1Offset : ComplexPattern<iPTR, 2, "SelectDS1Addr1Offset">; 1427def DS64Bit4ByteAligned : ComplexPattern<iPTR, 3, "SelectDS64Bit4ByteAligned">; 1428def DS128Bit8ByteAligned : ComplexPattern<iPTR, 3, "SelectDS128Bit8ByteAligned">; 1429 1430def MOVRELOffset : ComplexPattern<iPTR, 2, "SelectMOVRELOffset">; 1431 1432def VOP3Mods0 : ComplexPattern<untyped, 4, "SelectVOP3Mods0">; 1433def VOP3Mods : ComplexPattern<untyped, 2, "SelectVOP3Mods">; 1434def VOP3NoMods : ComplexPattern<untyped, 1, "SelectVOP3NoMods">; 1435// VOP3Mods, but the input source is known to never be NaN. 1436def VOP3Mods_nnan : ComplexPattern<fAny, 2, "SelectVOP3Mods_NNaN">; 1437 1438def VOP3OMods : ComplexPattern<untyped, 3, "SelectVOP3OMods">; 1439 1440def VOP3PMods : ComplexPattern<untyped, 2, "SelectVOP3PMods">; 1441 1442def VOP3PModsDOT : ComplexPattern<untyped, 2, "SelectVOP3PModsDOT">; 1443 1444def VOP3OpSel : ComplexPattern<untyped, 2, "SelectVOP3OpSel">; 1445 1446def VOP3OpSelMods : ComplexPattern<untyped, 2, "SelectVOP3OpSelMods">; 1447 1448def VOP3PMadMixMods : ComplexPattern<untyped, 2, "SelectVOP3PMadMixMods">; 1449 1450//===----------------------------------------------------------------------===// 1451// SI assembler operands 1452//===----------------------------------------------------------------------===// 1453 1454def SIOperand { 1455 int ZERO = 0x80; 1456 int VCC = 0x6A; 1457 int FLAT_SCR = 0x68; 1458} 1459 1460// This should be kept in sync with SISrcMods enum 1461def SRCMODS { 1462 int NONE = 0; 1463 int NEG = 1; 1464 int ABS = 2; 1465 int NEG_ABS = 3; 1466 1467 int NEG_HI = ABS; 1468 int OP_SEL_0 = 4; 1469 int OP_SEL_1 = 8; 1470 int DST_OP_SEL = 8; 1471} 1472 1473def DSTCLAMP { 1474 int NONE = 0; 1475 int ENABLE = 1; 1476} 1477 1478def DSTOMOD { 1479 int NONE = 0; 1480} 1481 1482def HWREG { 1483 int MODE = 1; 1484 int STATUS = 2; 1485 int TRAPSTS = 3; 1486 int HW_ID = 4; 1487 int GPR_ALLOC = 5; 1488 int LDS_ALLOC = 6; 1489 int IB_STS = 7; 1490 int MEM_BASES = 15; 1491 int TBA_LO = 16; 1492 int TBA_HI = 17; 1493 int TMA_LO = 18; 1494 int TMA_HI = 19; 1495 int FLAT_SCR_LO = 20; 1496 int FLAT_SCR_HI = 21; 1497 int XNACK_MASK = 22; 1498 int POPS_PACKER = 25; 1499 int SHADER_CYCLES = 29; 1500} 1501 1502class getHwRegImm<int Reg, int Offset = 0, int Size = 32> { 1503 int ret = !and(!or(Reg, 1504 !shl(Offset, 6), 1505 !shl(!add(Size, -1), 11)), 65535); 1506} 1507 1508//===----------------------------------------------------------------------===// 1509// 1510// SI Instruction multiclass helpers. 1511// 1512// Instructions with _32 take 32-bit operands. 1513// Instructions with _64 take 64-bit operands. 1514// 1515// VOP_* instructions can use either a 32-bit or 64-bit encoding. The 32-bit 1516// encoding is the standard encoding, but instruction that make use of 1517// any of the instruction modifiers must use the 64-bit encoding. 1518// 1519// Instructions with _e32 use the 32-bit encoding. 1520// Instructions with _e64 use the 64-bit encoding. 1521// 1522//===----------------------------------------------------------------------===// 1523 1524class SIMCInstr <string pseudo, int subtarget> { 1525 string PseudoInstr = pseudo; 1526 int Subtarget = subtarget; 1527} 1528 1529//===----------------------------------------------------------------------===// 1530// Vector ALU classes 1531//===----------------------------------------------------------------------===// 1532 1533class getNumSrcArgs<ValueType Src0, ValueType Src1, ValueType Src2> { 1534 int ret = 1535 !if (!eq(Src0.Value, untyped.Value), 0, 1536 !if (!eq(Src1.Value, untyped.Value), 1, // VOP1 1537 !if (!eq(Src2.Value, untyped.Value), 2, // VOP2 1538 3))); // VOP3 1539} 1540 1541// Returns the register class to use for the destination of VOP[123C] 1542// instructions for the given VT. 1543class getVALUDstForVT<ValueType VT> { 1544 RegisterOperand ret = !if(!eq(VT.Size, 32), VOPDstOperand<VGPR_32>, 1545 !if(!eq(VT.Size, 128), VOPDstOperand<VReg_128>, 1546 !if(!eq(VT.Size, 64), VOPDstOperand<VReg_64>, 1547 !if(!eq(VT.Size, 16), VOPDstOperand<VGPR_32>, 1548 VOPDstS64orS32)))); // else VT == i1 1549} 1550 1551// Returns the register class to use for the destination of VOP[12C] 1552// instructions with SDWA extension 1553class getSDWADstForVT<ValueType VT> { 1554 RegisterOperand ret = !if(!eq(VT.Size, 1), 1555 SDWAVopcDst, // VOPC 1556 VOPDstOperand<VGPR_32>); // VOP1/2 32-bit dst 1557} 1558 1559// Returns the register class to use for source 0 of VOP[12C] 1560// instructions for the given VT. 1561class getVOPSrc0ForVT<ValueType VT> { 1562 bit isFP = isFloatType<VT>.ret; 1563 1564 RegisterOperand ret = 1565 !if(isFP, 1566 !if(!eq(VT.Size, 64), 1567 VSrc_f64, 1568 !if(!eq(VT.Value, f16.Value), 1569 VSrc_f16, 1570 !if(!eq(VT.Value, v2f16.Value), 1571 VSrc_v2f16, 1572 !if(!eq(VT.Value, v4f16.Value), 1573 AVSrc_64, 1574 VSrc_f32 1575 ) 1576 ) 1577 ) 1578 ), 1579 !if(!eq(VT.Size, 64), 1580 VSrc_b64, 1581 !if(!eq(VT.Value, i16.Value), 1582 VSrc_b16, 1583 !if(!eq(VT.Value, v2i16.Value), 1584 VSrc_v2b16, 1585 VSrc_b32 1586 ) 1587 ) 1588 ) 1589 ); 1590} 1591 1592class getSOPSrcForVT<ValueType VT> { 1593 RegisterOperand ret = !if(!eq(VT.Size, 64), SSrc_b64, SSrc_b32); 1594} 1595 1596// Returns the vreg register class to use for source operand given VT 1597class getVregSrcForVT<ValueType VT> { 1598 RegisterClass ret = !if(!eq(VT.Size, 128), VReg_128, 1599 !if(!eq(VT.Size, 96), VReg_96, 1600 !if(!eq(VT.Size, 64), VReg_64, 1601 !if(!eq(VT.Size, 48), VReg_64, 1602 VGPR_32)))); 1603} 1604 1605class getSDWASrcForVT <ValueType VT> { 1606 bit isFP = isFloatType<VT>.ret; 1607 RegisterOperand retFlt = !if(!eq(VT.Size, 16), SDWASrc_f16, SDWASrc_f32); 1608 RegisterOperand retInt = !if(!eq(VT.Size, 16), SDWASrc_i16, SDWASrc_i32); 1609 RegisterOperand ret = !if(isFP, retFlt, retInt); 1610} 1611 1612// Returns the register class to use for sources of VOP3 instructions for the 1613// given VT. 1614class getVOP3SrcForVT<ValueType VT> { 1615 bit isFP = isFloatType<VT>.ret; 1616 RegisterOperand ret = 1617 !if(!eq(VT.Size, 128), 1618 VSrc_128, 1619 !if(!eq(VT.Size, 64), 1620 !if(isFP, 1621 !if(!eq(VT.Value, v2f32.Value), 1622 VSrc_v2f32, 1623 VSrc_f64), 1624 !if(!eq(VT.Value, v2i32.Value), 1625 VSrc_v2b32, 1626 VSrc_b64)), 1627 !if(!eq(VT.Value, i1.Value), 1628 SSrc_i1, 1629 !if(isFP, 1630 !if(!eq(VT.Value, f16.Value), 1631 VSrc_f16, 1632 !if(!eq(VT.Value, v2f16.Value), 1633 VSrc_v2f16, 1634 !if(!eq(VT.Value, v4f16.Value), 1635 AVSrc_64, 1636 VSrc_f32 1637 ) 1638 ) 1639 ), 1640 !if(!eq(VT.Value, i16.Value), 1641 VSrc_b16, 1642 !if(!eq(VT.Value, v2i16.Value), 1643 VSrc_v2b16, 1644 VSrc_b32 1645 ) 1646 ) 1647 ) 1648 ) 1649 ) 1650 ); 1651} 1652 1653// Float or packed int 1654class isModifierType<ValueType SrcVT> { 1655 bit ret = !or(!eq(SrcVT.Value, f16.Value), 1656 !eq(SrcVT.Value, f32.Value), 1657 !eq(SrcVT.Value, f64.Value), 1658 !eq(SrcVT.Value, v2f16.Value), 1659 !eq(SrcVT.Value, v2i16.Value), 1660 !eq(SrcVT.Value, v2f32.Value), 1661 !eq(SrcVT.Value, v2i32.Value)); 1662} 1663 1664// Return type of input modifiers operand for specified input operand 1665class getSrcMod <ValueType VT, bit EnableF32SrcMods> { 1666 bit isFP = isFloatType<VT>.ret; 1667 bit isPacked = isPackedType<VT>.ret; 1668 Operand ret = !if(!eq(VT.Size, 64), 1669 !if(isFP, FP64InputMods, Int64InputMods), 1670 !if(isFP, 1671 !if(!eq(VT.Value, f16.Value), 1672 FP16InputMods, 1673 FP32InputMods 1674 ), 1675 !if(EnableF32SrcMods, FP32InputMods, Int32InputMods)) 1676 ); 1677} 1678 1679class getOpSelMod <ValueType VT> { 1680 Operand ret = !if(!eq(VT.Value, f16.Value), FP16InputMods, IntOpSelMods); 1681} 1682 1683// Return type of input modifiers operand specified input operand for DPP 1684class getSrcModDPP <ValueType VT> { 1685 bit isFP = isFloatType<VT>.ret; 1686 Operand ret = !if(isFP, FPVRegInputMods, IntVRegInputMods); 1687} 1688 1689// Return type of input modifiers operand specified input operand for SDWA 1690class getSrcModSDWA <ValueType VT> { 1691 Operand ret = !if(!eq(VT.Value, f16.Value), FP16SDWAInputMods, 1692 !if(!eq(VT.Value, f32.Value), FP32SDWAInputMods, 1693 !if(!eq(VT.Value, i16.Value), Int16SDWAInputMods, 1694 Int32SDWAInputMods))); 1695} 1696 1697// Returns the input arguments for VOP[12C] instructions for the given SrcVT. 1698class getIns32 <RegisterOperand Src0RC, RegisterClass Src1RC, int NumSrcArgs> { 1699 dag ret = !if(!eq(NumSrcArgs, 1), (ins Src0RC:$src0), // VOP1 1700 !if(!eq(NumSrcArgs, 2), (ins Src0RC:$src0, Src1RC:$src1), // VOP2 1701 (ins))); 1702} 1703 1704// Returns the input arguments for VOP3 instructions for the given SrcVT. 1705class getIns64 <RegisterOperand Src0RC, RegisterOperand Src1RC, 1706 RegisterOperand Src2RC, int NumSrcArgs, 1707 bit HasClamp, bit HasModifiers, bit HasSrc2Mods, bit HasOMod, 1708 Operand Src0Mod, Operand Src1Mod, Operand Src2Mod> { 1709 1710 dag ret = 1711 !if (!eq(NumSrcArgs, 0), 1712 // VOP1 without input operands (V_NOP, V_CLREXCP) 1713 (ins), 1714 /* else */ 1715 !if (!eq(NumSrcArgs, 1), 1716 !if (HasModifiers, 1717 // VOP1 with modifiers 1718 !if(HasOMod, 1719 (ins Src0Mod:$src0_modifiers, Src0RC:$src0, 1720 clampmod0:$clamp, omod0:$omod), 1721 (ins Src0Mod:$src0_modifiers, Src0RC:$src0, 1722 clampmod0:$clamp)) 1723 /* else */, 1724 // VOP1 without modifiers 1725 !if (HasClamp, 1726 (ins Src0RC:$src0, clampmod0:$clamp), 1727 (ins Src0RC:$src0)) 1728 /* endif */ ), 1729 !if (!eq(NumSrcArgs, 2), 1730 !if (HasModifiers, 1731 // VOP 2 with modifiers 1732 !if(HasOMod, 1733 (ins Src0Mod:$src0_modifiers, Src0RC:$src0, 1734 Src1Mod:$src1_modifiers, Src1RC:$src1, 1735 clampmod0:$clamp, omod0:$omod), 1736 (ins Src0Mod:$src0_modifiers, Src0RC:$src0, 1737 Src1Mod:$src1_modifiers, Src1RC:$src1, 1738 clampmod0:$clamp)) 1739 /* else */, 1740 // VOP2 without modifiers 1741 !if (HasClamp, 1742 (ins Src0RC:$src0, Src1RC:$src1, clampmod0:$clamp), 1743 (ins Src0RC:$src0, Src1RC:$src1)) 1744 1745 /* endif */ ) 1746 /* NumSrcArgs == 3 */, 1747 !if (HasModifiers, 1748 !if (HasSrc2Mods, 1749 // VOP3 with modifiers 1750 !if (HasOMod, 1751 (ins Src0Mod:$src0_modifiers, Src0RC:$src0, 1752 Src1Mod:$src1_modifiers, Src1RC:$src1, 1753 Src2Mod:$src2_modifiers, Src2RC:$src2, 1754 clampmod0:$clamp, omod0:$omod), 1755 !if (HasClamp, 1756 (ins Src0Mod:$src0_modifiers, Src0RC:$src0, 1757 Src1Mod:$src1_modifiers, Src1RC:$src1, 1758 Src2Mod:$src2_modifiers, Src2RC:$src2, 1759 clampmod0:$clamp), 1760 (ins Src0Mod:$src0_modifiers, Src0RC:$src0, 1761 Src1Mod:$src1_modifiers, Src1RC:$src1, 1762 Src2Mod:$src2_modifiers, Src2RC:$src2))), 1763 // VOP3 with modifiers except src2 1764 !if (HasOMod, 1765 (ins Src0Mod:$src0_modifiers, Src0RC:$src0, 1766 Src1Mod:$src1_modifiers, Src1RC:$src1, 1767 Src2RC:$src2, clampmod0:$clamp, omod0:$omod), 1768 !if (HasClamp, 1769 (ins Src0Mod:$src0_modifiers, Src0RC:$src0, 1770 Src1Mod:$src1_modifiers, Src1RC:$src1, 1771 Src2RC:$src2, clampmod0:$clamp), 1772 (ins Src0Mod:$src0_modifiers, Src0RC:$src0, 1773 Src1Mod:$src1_modifiers, Src1RC:$src1, 1774 Src2RC:$src2)))) 1775 /* else */, 1776 // VOP3 without modifiers 1777 !if (HasClamp, 1778 (ins Src0RC:$src0, Src1RC:$src1, Src2RC:$src2, clampmod0:$clamp), 1779 (ins Src0RC:$src0, Src1RC:$src1, Src2RC:$src2)) 1780 /* endif */ )))); 1781} 1782 1783class getInsVOP3Base<RegisterOperand Src0RC, RegisterOperand Src1RC, 1784 RegisterOperand Src2RC, int NumSrcArgs, 1785 bit HasClamp, bit HasModifiers, bit HasSrc2Mods, bit HasOMod, 1786 Operand Src0Mod, Operand Src1Mod, Operand Src2Mod, bit HasOpSel, 1787 bit IsVOP3P> { 1788 // getInst64 handles clamp and omod. implicit mutex between vop3p and omod 1789 dag base = getIns64 <Src0RC, Src1RC, Src2RC, NumSrcArgs, 1790 HasClamp, HasModifiers, HasSrc2Mods, HasOMod, 1791 Src0Mod, Src1Mod, Src2Mod>.ret; 1792 dag opsel = (ins op_sel0:$op_sel); 1793 dag vop3pFields = (ins op_sel_hi0:$op_sel_hi, neg_lo0:$neg_lo, neg_hi0:$neg_hi); 1794 dag ret = !con(base, 1795 !if(HasOpSel, opsel,(ins)), 1796 !if(IsVOP3P, vop3pFields,(ins))); 1797} 1798 1799class getInsVOP3P <RegisterOperand Src0RC, RegisterOperand Src1RC, 1800 RegisterOperand Src2RC, int NumSrcArgs, bit HasClamp, 1801 Operand Src0Mod, Operand Src1Mod, Operand Src2Mod> { 1802 dag ret = getInsVOP3Base<Src0RC, Src1RC, Src2RC, NumSrcArgs, 1803 HasClamp, 1/*HasModifiers*/, 1/*HasSrc2Mods*/, 1804 0/*HasOMod*/, Src0Mod, Src1Mod, Src2Mod, 1805 1/*HasOpSel*/, 1/*IsVOP3P*/>.ret; 1806} 1807 1808class getInsVOP3OpSel <RegisterOperand Src0RC, RegisterOperand Src1RC, 1809 RegisterOperand Src2RC, int NumSrcArgs, 1810 bit HasClamp, bit HasOMod, 1811 Operand Src0Mod, Operand Src1Mod, Operand Src2Mod> { 1812 dag ret = getInsVOP3Base<Src0RC, Src1RC, 1813 Src2RC, NumSrcArgs, 1814 HasClamp, 1/*HasModifiers*/, 1/*HasSrc2Mods*/, HasOMod, 1815 Src0Mod, Src1Mod, Src2Mod, 1/*HasOpSel*/, 0>.ret; 1816} 1817 1818class getInsDPPBase <RegisterOperand OldRC, RegisterClass Src0RC, RegisterClass Src1RC, 1819 int NumSrcArgs, bit HasModifiers, 1820 Operand Src0Mod, Operand Src1Mod> { 1821 1822 dag ret = !if (!eq(NumSrcArgs, 0), 1823 // VOP1 without input operands (V_NOP) 1824 (ins ), 1825 !if (!eq(NumSrcArgs, 1), 1826 !if (HasModifiers, 1827 // VOP1_DPP with modifiers 1828 (ins OldRC:$old, Src0Mod:$src0_modifiers, 1829 Src0RC:$src0) 1830 /* else */, 1831 // VOP1_DPP without modifiers 1832 (ins OldRC:$old, Src0RC:$src0) 1833 /* endif */), 1834 !if (HasModifiers, 1835 // VOP2_DPP with modifiers 1836 (ins OldRC:$old, 1837 Src0Mod:$src0_modifiers, Src0RC:$src0, 1838 Src1Mod:$src1_modifiers, Src1RC:$src1) 1839 /* else */, 1840 // VOP2_DPP without modifiers 1841 (ins OldRC:$old, 1842 Src0RC:$src0, Src1RC:$src1) 1843 ))); 1844} 1845 1846class getInsDPP <RegisterOperand OldRC, RegisterClass Src0RC, RegisterClass Src1RC, 1847 int NumSrcArgs, bit HasModifiers, 1848 Operand Src0Mod, Operand Src1Mod> { 1849 dag ret = !con(getInsDPPBase<OldRC, Src0RC, Src1RC, NumSrcArgs, 1850 HasModifiers, Src0Mod, Src1Mod>.ret, 1851 (ins dpp_ctrl:$dpp_ctrl, row_mask:$row_mask, 1852 bank_mask:$bank_mask, bound_ctrl:$bound_ctrl)); 1853} 1854 1855class getInsDPP16 <RegisterOperand OldRC, RegisterClass Src0RC, RegisterClass Src1RC, 1856 int NumSrcArgs, bit HasModifiers, 1857 Operand Src0Mod, Operand Src1Mod> { 1858 dag ret = !con(getInsDPP<OldRC, Src0RC, Src1RC, NumSrcArgs, 1859 HasModifiers, Src0Mod, Src1Mod>.ret, 1860 (ins FI:$fi)); 1861} 1862 1863class getInsDPP8 <RegisterOperand OldRC, RegisterClass Src0RC, RegisterClass Src1RC, 1864 int NumSrcArgs, bit HasModifiers, 1865 Operand Src0Mod, Operand Src1Mod> { 1866 dag ret = !con(getInsDPPBase<OldRC, Src0RC, Src1RC, NumSrcArgs, 1867 HasModifiers, Src0Mod, Src1Mod>.ret, 1868 (ins dpp8:$dpp8, FI:$fi)); 1869} 1870 1871 1872// Ins for SDWA 1873class getInsSDWA <RegisterOperand Src0RC, RegisterOperand Src1RC, int NumSrcArgs, 1874 bit HasSDWAOMod, Operand Src0Mod, Operand Src1Mod, 1875 ValueType DstVT> { 1876 1877 dag ret = !if(!eq(NumSrcArgs, 0), 1878 // VOP1 without input operands (V_NOP) 1879 (ins), 1880 !if(!eq(NumSrcArgs, 1), 1881 // VOP1 1882 !if(!not(HasSDWAOMod), 1883 // VOP1_SDWA without omod 1884 (ins Src0Mod:$src0_modifiers, Src0RC:$src0, 1885 clampmod:$clamp, 1886 dst_sel:$dst_sel, dst_unused:$dst_unused, 1887 src0_sel:$src0_sel), 1888 // VOP1_SDWA with omod 1889 (ins Src0Mod:$src0_modifiers, Src0RC:$src0, 1890 clampmod:$clamp, omod:$omod, 1891 dst_sel:$dst_sel, dst_unused:$dst_unused, 1892 src0_sel:$src0_sel)), 1893 !if(!eq(NumSrcArgs, 2), 1894 !if(!eq(DstVT.Size, 1), 1895 // VOPC_SDWA 1896 (ins Src0Mod:$src0_modifiers, Src0RC:$src0, 1897 Src1Mod:$src1_modifiers, Src1RC:$src1, 1898 clampmod:$clamp, src0_sel:$src0_sel, src1_sel:$src1_sel), 1899 // VOP2_SDWA 1900 !if(!not(HasSDWAOMod), 1901 // VOP2_SDWA without omod 1902 (ins Src0Mod:$src0_modifiers, Src0RC:$src0, 1903 Src1Mod:$src1_modifiers, Src1RC:$src1, 1904 clampmod:$clamp, 1905 dst_sel:$dst_sel, dst_unused:$dst_unused, 1906 src0_sel:$src0_sel, src1_sel:$src1_sel), 1907 // VOP2_SDWA with omod 1908 (ins Src0Mod:$src0_modifiers, Src0RC:$src0, 1909 Src1Mod:$src1_modifiers, Src1RC:$src1, 1910 clampmod:$clamp, omod:$omod, 1911 dst_sel:$dst_sel, dst_unused:$dst_unused, 1912 src0_sel:$src0_sel, src1_sel:$src1_sel))), 1913 (ins)/* endif */))); 1914} 1915 1916// Outs for DPP 1917class getOutsDPP <bit HasDst, ValueType DstVT, RegisterOperand DstRCDPP> { 1918 dag ret = !if(HasDst, 1919 !if(!eq(DstVT.Size, 1), 1920 (outs), // no dst for VOPC, we use "vcc"-token as dst in SDWA VOPC instructions 1921 (outs DstRCDPP:$vdst)), 1922 (outs)); // V_NOP 1923} 1924 1925// Outs for SDWA 1926class getOutsSDWA <bit HasDst, ValueType DstVT, RegisterOperand DstRCSDWA> { 1927 dag ret = !if(HasDst, 1928 !if(!eq(DstVT.Size, 1), 1929 (outs DstRCSDWA:$sdst), 1930 (outs DstRCSDWA:$vdst)), 1931 (outs)); // V_NOP 1932} 1933 1934// Returns the assembly string for the inputs and outputs of a VOP[12C] 1935// instruction. This does not add the _e32 suffix, so it can be reused 1936// by getAsm64. 1937class getAsm32 <bit HasDst, int NumSrcArgs, ValueType DstVT = i32> { 1938 string dst = !if(!eq(DstVT.Size, 1), "$sdst", "$vdst"); // use $sdst for VOPC 1939 string src0 = ", $src0"; 1940 string src1 = ", $src1"; 1941 string src2 = ", $src2"; 1942 string ret = !if(HasDst, dst, "") # 1943 !if(!eq(NumSrcArgs, 1), src0, "") # 1944 !if(!eq(NumSrcArgs, 2), src0#src1, "") # 1945 !if(!eq(NumSrcArgs, 3), src0#src1#src2, ""); 1946} 1947 1948// Returns the assembly string for the inputs and outputs of a VOP3 1949// instruction. 1950class getAsm64 <bit HasDst, int NumSrcArgs, bit HasIntClamp, bit HasModifiers, 1951 bit HasOMod, ValueType DstVT = i32> { 1952 string dst = !if(!eq(DstVT.Size, 1), "$sdst", "$vdst"); // use $sdst for VOPC 1953 string src0 = !if(!eq(NumSrcArgs, 1), "$src0_modifiers", "$src0_modifiers,"); 1954 string src1 = !if(!eq(NumSrcArgs, 1), "", 1955 !if(!eq(NumSrcArgs, 2), " $src1_modifiers", 1956 " $src1_modifiers,")); 1957 string src2 = !if(!eq(NumSrcArgs, 3), " $src2_modifiers", ""); 1958 string iclamp = !if(HasIntClamp, "$clamp", ""); 1959 string ret = 1960 !if(!not(HasModifiers), 1961 getAsm32<HasDst, NumSrcArgs, DstVT>.ret # iclamp, 1962 dst#", "#src0#src1#src2#"$clamp"#!if(HasOMod, "$omod", "")); 1963} 1964 1965// Returns the assembly string for the inputs and outputs of a VOP3P 1966// instruction. 1967class getAsmVOP3P <int NumSrcArgs, bit HasModifiers, 1968 bit HasClamp> { 1969 string dst = "$vdst"; 1970 string src0 = !if(!eq(NumSrcArgs, 1), "$src0", "$src0,"); 1971 string src1 = !if(!eq(NumSrcArgs, 1), "", 1972 !if(!eq(NumSrcArgs, 2), " $src1", 1973 " $src1,")); 1974 string src2 = !if(!eq(NumSrcArgs, 3), " $src2", ""); 1975 1976 string mods = !if(HasModifiers, "$neg_lo$neg_hi", ""); 1977 string clamp = !if(HasClamp, "$clamp", ""); 1978 1979 // Each modifier is printed as an array of bits for each operand, so 1980 // all operands are printed as part of src0_modifiers. 1981 string ret = dst#", "#src0#src1#src2#"$op_sel$op_sel_hi"#mods#clamp; 1982} 1983 1984class getAsmVOP3OpSel <int NumSrcArgs, 1985 bit HasClamp, 1986 bit Src0HasMods, 1987 bit Src1HasMods, 1988 bit Src2HasMods> { 1989 string dst = "$vdst"; 1990 1991 string isrc0 = !if(!eq(NumSrcArgs, 1), "$src0", "$src0,"); 1992 string isrc1 = !if(!eq(NumSrcArgs, 1), "", 1993 !if(!eq(NumSrcArgs, 2), " $src1", 1994 " $src1,")); 1995 string isrc2 = !if(!eq(NumSrcArgs, 3), " $src2", ""); 1996 1997 string fsrc0 = !if(!eq(NumSrcArgs, 1), "$src0_modifiers", "$src0_modifiers,"); 1998 string fsrc1 = !if(!eq(NumSrcArgs, 1), "", 1999 !if(!eq(NumSrcArgs, 2), " $src1_modifiers", 2000 " $src1_modifiers,")); 2001 string fsrc2 = !if(!eq(NumSrcArgs, 3), " $src2_modifiers", ""); 2002 2003 string src0 = !if(Src0HasMods, fsrc0, isrc0); 2004 string src1 = !if(Src1HasMods, fsrc1, isrc1); 2005 string src2 = !if(Src2HasMods, fsrc2, isrc2); 2006 2007 string clamp = !if(HasClamp, "$clamp", ""); 2008 2009 string ret = dst#", "#src0#src1#src2#"$op_sel"#clamp; 2010} 2011 2012class getAsmDPP <bit HasDst, int NumSrcArgs, bit HasModifiers, ValueType DstVT = i32> { 2013 string dst = !if(HasDst, 2014 !if(!eq(DstVT.Size, 1), 2015 "$sdst", 2016 "$vdst"), 2017 ""); // use $sdst for VOPC 2018 string src0 = !if(!eq(NumSrcArgs, 1), "$src0_modifiers", "$src0_modifiers,"); 2019 string src1 = !if(!eq(NumSrcArgs, 1), "", 2020 !if(!eq(NumSrcArgs, 2), " $src1_modifiers", 2021 " $src1_modifiers,")); 2022 string args = !if(!not(HasModifiers), 2023 getAsm32<0, NumSrcArgs, DstVT>.ret, 2024 ", "#src0#src1); 2025 string ret = dst#args#" $dpp_ctrl$row_mask$bank_mask$bound_ctrl"; 2026} 2027 2028class getAsmDPP16 <bit HasDst, int NumSrcArgs, bit HasModifiers, ValueType DstVT = i32> { 2029 string ret = getAsmDPP<HasDst, NumSrcArgs, HasModifiers, DstVT>.ret#"$fi"; 2030} 2031 2032class getAsmDPP8 <bit HasDst, int NumSrcArgs, bit HasModifiers, ValueType DstVT = i32> 2033 : getAsmDPP<HasDst, NumSrcArgs, HasModifiers, DstVT> { 2034 let ret = dst#args#" $dpp8$fi"; 2035} 2036 2037 2038class getAsmSDWA <bit HasDst, int NumSrcArgs, ValueType DstVT = i32> { 2039 string dst = !if(HasDst, 2040 !if(!eq(DstVT.Size, 1), 2041 " vcc", // use vcc token as dst for VOPC instructions 2042 "$vdst"), 2043 ""); 2044 string src0 = "$src0_modifiers"; 2045 string src1 = "$src1_modifiers"; 2046 string args = !if(!eq(NumSrcArgs, 0), 2047 "", 2048 !if(!eq(NumSrcArgs, 1), 2049 ", "#src0#"$clamp", 2050 ", "#src0#", "#src1#"$clamp" 2051 ) 2052 ); 2053 string sdwa = !if(!eq(NumSrcArgs, 0), 2054 "", 2055 !if(!eq(NumSrcArgs, 1), 2056 " $dst_sel $dst_unused $src0_sel", 2057 !if(!eq(DstVT.Size, 1), 2058 " $src0_sel $src1_sel", // No dst_sel and dst_unused for VOPC 2059 " $dst_sel $dst_unused $src0_sel $src1_sel" 2060 ) 2061 ) 2062 ); 2063 string ret = dst#args#sdwa; 2064} 2065 2066class getAsmSDWA9 <bit HasDst, bit HasOMod, int NumSrcArgs, 2067 ValueType DstVT = i32> { 2068 string dst = !if(HasDst, 2069 !if(!eq(DstVT.Size, 1), 2070 "$sdst", // VOPC 2071 "$vdst"), // VOP1/2 2072 ""); 2073 string src0 = "$src0_modifiers"; 2074 string src1 = "$src1_modifiers"; 2075 string out_mods = !if(!not(HasOMod), "$clamp", "$clamp$omod"); 2076 string args = !if(!eq(NumSrcArgs, 0), "", 2077 !if(!eq(NumSrcArgs, 1), 2078 ", "#src0, 2079 ", "#src0#", "#src1 2080 ) 2081 ); 2082 string sdwa = !if(!eq(NumSrcArgs, 0), "", 2083 !if(!eq(NumSrcArgs, 1), 2084 out_mods#" $dst_sel $dst_unused $src0_sel", 2085 !if(!eq(DstVT.Size, 1), 2086 " $src0_sel $src1_sel", // No dst_sel, dst_unused and output modifiers for VOPC 2087 out_mods#" $dst_sel $dst_unused $src0_sel $src1_sel" 2088 ) 2089 ) 2090 ); 2091 string ret = dst#args#sdwa; 2092} 2093 2094class getHas64BitOps <int NumSrcArgs, ValueType DstVT, ValueType Src0VT, 2095 ValueType Src1VT> { 2096 bit ret = !if(!eq(NumSrcArgs, 3), 2097 0, 2098 !if(!eq(DstVT.Size, 64), 2099 1, 2100 !if(!eq(Src0VT.Size, 64), 2101 1, 2102 !if(!eq(Src1VT.Size, 64), 2103 1, 2104 0 2105 ) 2106 ) 2107 ) 2108 ); 2109} 2110 2111class getHasSDWA <int NumSrcArgs, ValueType DstVT = i32, ValueType Src0VT = i32, 2112 ValueType Src1VT = i32> { 2113 bit ret = !if(!eq(NumSrcArgs, 3), 2114 0, // NumSrcArgs == 3 - No SDWA for VOP3 2115 !if(!eq(DstVT.Size, 64), 2116 0, // 64-bit dst - No SDWA for 64-bit operands 2117 !if(!eq(Src0VT.Size, 64), 2118 0, // 64-bit src0 2119 !if(!eq(Src1VT.Size, 64), 2120 0, // 64-bit src2 2121 1 2122 ) 2123 ) 2124 ) 2125 ); 2126} 2127 2128class getHasDPP <int NumSrcArgs> { 2129 bit ret = !if(!eq(NumSrcArgs, 3), 2130 0, // NumSrcArgs == 3 - No DPP for VOP3 2131 1); 2132} 2133 2134class getHasExt64BitDPP <int NumSrcArgs, ValueType DstVT = i32, ValueType Src0VT = i32, 2135 ValueType Src1VT = i32> { 2136 bit ret = !and(getHasDPP<NumSrcArgs>.ret, 2137 getHas64BitOps<NumSrcArgs, DstVT, Src0VT, Src1VT>.ret); 2138} 2139 2140// Function that checks if instruction supports DPP and SDWA 2141class getHasExt <int NumSrcArgs, ValueType DstVT = i32, ValueType Src0VT = i32, 2142 ValueType Src1VT = i32> { 2143 bit ret = !or(getHasDPP<NumSrcArgs>.ret, 2144 getHasSDWA<NumSrcArgs, DstVT, Src0VT, Src1VT>.ret); 2145} 2146 2147// Return an AGPR+VGPR operand class for the given VGPR register class. 2148class getLdStRegisterOperand<RegisterClass RC> { 2149 RegisterOperand ret = 2150 !if(!eq(RC.Size, 32), AVLdSt_32, 2151 !if(!eq(RC.Size, 64), AVLdSt_64, 2152 !if(!eq(RC.Size, 96), AVLdSt_96, 2153 !if(!eq(RC.Size, 128), AVLdSt_128, 2154 !if(!eq(RC.Size, 160), AVLdSt_160, 2155 RegisterOperand<VReg_1> // invalid register 2156 ))))); 2157} 2158 2159class BitOr<bit a, bit b> { 2160 bit ret = !if(a, 1, !if(b, 1, 0)); 2161} 2162 2163class BitAnd<bit a, bit b> { 2164 bit ret = !if(a, !if(b, 1, 0), 0); 2165} 2166 2167def PatGenMode { 2168 int NoPattern = 0; 2169 int Pattern = 1; 2170} 2171 2172class VOPProfile <list<ValueType> _ArgVT, bit _EnableF32SrcMods = 0, 2173 bit _EnableClamp = 0> { 2174 2175 field list<ValueType> ArgVT = _ArgVT; 2176 field bit EnableF32SrcMods = _EnableF32SrcMods; 2177 field bit EnableClamp = _EnableClamp; 2178 2179 field ValueType DstVT = ArgVT[0]; 2180 field ValueType Src0VT = ArgVT[1]; 2181 field ValueType Src1VT = ArgVT[2]; 2182 field ValueType Src2VT = ArgVT[3]; 2183 field RegisterOperand DstRC = getVALUDstForVT<DstVT>.ret; 2184 field RegisterOperand DstRCDPP = getVALUDstForVT<DstVT>.ret; 2185 field RegisterOperand DstRCSDWA = getSDWADstForVT<DstVT>.ret; 2186 field RegisterOperand Src0RC32 = getVOPSrc0ForVT<Src0VT>.ret; 2187 field RegisterClass Src1RC32 = getVregSrcForVT<Src1VT>.ret; 2188 field RegisterOperand Src0RC64 = getVOP3SrcForVT<Src0VT>.ret; 2189 field RegisterOperand Src1RC64 = getVOP3SrcForVT<Src1VT>.ret; 2190 field RegisterOperand Src2RC64 = getVOP3SrcForVT<Src2VT>.ret; 2191 field RegisterClass Src0DPP = getVregSrcForVT<Src0VT>.ret; 2192 field RegisterClass Src1DPP = getVregSrcForVT<Src1VT>.ret; 2193 field RegisterOperand Src0SDWA = getSDWASrcForVT<Src0VT>.ret; 2194 field RegisterOperand Src1SDWA = getSDWASrcForVT<Src0VT>.ret; 2195 field Operand Src0Mod = getSrcMod<Src0VT, EnableF32SrcMods>.ret; 2196 field Operand Src1Mod = getSrcMod<Src1VT, EnableF32SrcMods>.ret; 2197 field Operand Src2Mod = getSrcMod<Src2VT, EnableF32SrcMods>.ret; 2198 field Operand Src0ModDPP = getSrcModDPP<Src0VT>.ret; 2199 field Operand Src1ModDPP = getSrcModDPP<Src1VT>.ret; 2200 field Operand Src0ModSDWA = getSrcModSDWA<Src0VT>.ret; 2201 field Operand Src1ModSDWA = getSrcModSDWA<Src1VT>.ret; 2202 2203 2204 field bit HasDst = !ne(DstVT.Value, untyped.Value); 2205 field bit HasDst32 = HasDst; 2206 field bit EmitDst = HasDst; // force dst encoding, see v_movreld_b32 special case 2207 field bit EmitDstSel = EmitDst; 2208 field int NumSrcArgs = getNumSrcArgs<Src0VT, Src1VT, Src2VT>.ret; 2209 field bit HasSrc0 = !ne(Src0VT.Value, untyped.Value); 2210 field bit HasSrc1 = !ne(Src1VT.Value, untyped.Value); 2211 field bit HasSrc2 = !ne(Src2VT.Value, untyped.Value); 2212 2213 // HasSrc*FloatMods affects the SDWA encoding. We ignore EnableF32SrcMods. 2214 field bit HasSrc0FloatMods = isFloatType<Src0VT>.ret; 2215 field bit HasSrc1FloatMods = isFloatType<Src1VT>.ret; 2216 field bit HasSrc2FloatMods = isFloatType<Src2VT>.ret; 2217 2218 // HasSrc*IntMods affects the SDWA encoding. We ignore EnableF32SrcMods. 2219 field bit HasSrc0IntMods = isIntType<Src0VT>.ret; 2220 field bit HasSrc1IntMods = isIntType<Src1VT>.ret; 2221 field bit HasSrc2IntMods = isIntType<Src2VT>.ret; 2222 2223 field bit HasClamp = !or(isModifierType<Src0VT>.ret, EnableClamp); 2224 field bit HasSDWAClamp = EmitDst; 2225 field bit HasFPClamp = !and(isFloatType<DstVT>.ret, HasClamp); 2226 field bit HasIntClamp = !if(isFloatType<DstVT>.ret, 0, HasClamp); 2227 field bit HasClampLo = HasClamp; 2228 field bit HasClampHi = !and(isPackedType<DstVT>.ret, HasClamp); 2229 field bit HasHigh = 0; 2230 2231 field bit IsPacked = isPackedType<Src0VT>.ret; 2232 field bit HasOpSel = IsPacked; 2233 field bit HasOMod = !if(HasOpSel, 0, isFloatType<DstVT>.ret); 2234 field bit HasSDWAOMod = isFloatType<DstVT>.ret; 2235 2236 field bit HasModifiers = !or(isModifierType<Src0VT>.ret, 2237 isModifierType<Src1VT>.ret, 2238 isModifierType<Src2VT>.ret, 2239 HasOMod, 2240 EnableF32SrcMods); 2241 2242 field bit HasSrc0Mods = HasModifiers; 2243 field bit HasSrc1Mods = !if(HasModifiers, !or(HasSrc1FloatMods, HasSrc1IntMods), 0); 2244 field bit HasSrc2Mods = !if(HasModifiers, !or(HasSrc2FloatMods, HasSrc2IntMods), 0); 2245 2246 field bit HasExt = getHasExt<NumSrcArgs, DstVT, Src0VT, Src1VT>.ret; 2247 field bit HasExtDPP = getHasDPP<NumSrcArgs>.ret; 2248 field bit HasExt64BitDPP = getHasExt64BitDPP<NumSrcArgs, DstVT, Src0VT, Src1VT>.ret; 2249 field bit HasExtSDWA = getHasSDWA<NumSrcArgs, DstVT, Src0VT, Src1VT>.ret; 2250 field bit HasExtSDWA9 = HasExtSDWA; 2251 field int NeedPatGen = PatGenMode.NoPattern; 2252 2253 field bit IsMAI = 0; 2254 field bit IsDOT = 0; 2255 field bit IsSingle = 0; 2256 2257 field Operand Src0PackedMod = !if(HasSrc0FloatMods, PackedF16InputMods, PackedI16InputMods); 2258 field Operand Src1PackedMod = !if(HasSrc1FloatMods, PackedF16InputMods, PackedI16InputMods); 2259 field Operand Src2PackedMod = !if(HasSrc2FloatMods, PackedF16InputMods, PackedI16InputMods); 2260 2261 field dag Outs = !if(HasDst,(outs DstRC:$vdst),(outs)); 2262 2263 // VOP3b instructions are a special case with a second explicit 2264 // output. This is manually overridden for them. 2265 field dag Outs32 = Outs; 2266 field dag Outs64 = Outs; 2267 field dag OutsDPP = getOutsDPP<HasDst, DstVT, DstRCDPP>.ret; 2268 field dag OutsDPP8 = getOutsDPP<HasDst, DstVT, DstRCDPP>.ret; 2269 field dag OutsSDWA = getOutsSDWA<HasDst, DstVT, DstRCSDWA>.ret; 2270 2271 field dag Ins32 = getIns32<Src0RC32, Src1RC32, NumSrcArgs>.ret; 2272 field dag Ins64 = getIns64<Src0RC64, Src1RC64, Src2RC64, NumSrcArgs, 2273 HasIntClamp, HasModifiers, HasSrc2Mods, 2274 HasOMod, Src0Mod, Src1Mod, Src2Mod>.ret; 2275 field dag InsVOP3P = getInsVOP3P<Src0RC64, Src1RC64, Src2RC64, 2276 NumSrcArgs, HasClamp, 2277 Src0PackedMod, Src1PackedMod, Src2PackedMod>.ret; 2278 field dag InsVOP3OpSel = getInsVOP3OpSel<Src0RC64, Src1RC64, Src2RC64, 2279 NumSrcArgs, HasClamp, HasOMod, 2280 getOpSelMod<Src0VT>.ret, 2281 getOpSelMod<Src1VT>.ret, 2282 getOpSelMod<Src2VT>.ret>.ret; 2283 field dag InsDPP = !if(HasExtDPP, 2284 getInsDPP<DstRCDPP, Src0DPP, Src1DPP, NumSrcArgs, 2285 HasModifiers, Src0ModDPP, Src1ModDPP>.ret, 2286 (ins)); 2287 field dag InsDPP16 = getInsDPP16<DstRCDPP, Src0DPP, Src1DPP, NumSrcArgs, 2288 HasModifiers, Src0ModDPP, Src1ModDPP>.ret; 2289 field dag InsDPP8 = getInsDPP8<DstRCDPP, Src0DPP, Src1DPP, NumSrcArgs, 0, 2290 Src0ModDPP, Src1ModDPP>.ret; 2291 field dag InsSDWA = getInsSDWA<Src0SDWA, Src1SDWA, NumSrcArgs, 2292 HasSDWAOMod, Src0ModSDWA, Src1ModSDWA, 2293 DstVT>.ret; 2294 2295 2296 field string Asm32 = getAsm32<HasDst, NumSrcArgs, DstVT>.ret; 2297 field string Asm64 = getAsm64<HasDst, NumSrcArgs, HasIntClamp, HasModifiers, HasOMod, DstVT>.ret; 2298 field string AsmVOP3P = getAsmVOP3P<NumSrcArgs, HasModifiers, HasClamp>.ret; 2299 field string AsmVOP3OpSel = getAsmVOP3OpSel<NumSrcArgs, 2300 HasClamp, 2301 HasSrc0FloatMods, 2302 HasSrc1FloatMods, 2303 HasSrc2FloatMods>.ret; 2304 field string AsmDPP = !if(HasExtDPP, 2305 getAsmDPP<HasDst, NumSrcArgs, HasModifiers, DstVT>.ret, ""); 2306 field string AsmDPP16 = getAsmDPP16<HasDst, NumSrcArgs, HasModifiers, DstVT>.ret; 2307 // DPP8 encoding has no fields for modifiers, and it is enforced by setting 2308 // the asm operand name via this HasModifiers flag 2309 field string AsmDPP8 = getAsmDPP8<HasDst, NumSrcArgs, 0 /*HasModifiers*/, DstVT>.ret; 2310 field string AsmSDWA = getAsmSDWA<HasDst, NumSrcArgs, DstVT>.ret; 2311 field string AsmSDWA9 = getAsmSDWA9<HasDst, HasSDWAOMod, NumSrcArgs, DstVT>.ret; 2312 2313 field string TieRegDPP = "$old"; 2314} 2315 2316class VOP_NO_EXT <VOPProfile p> : VOPProfile <p.ArgVT> { 2317 let HasExt = 0; 2318 let HasExtDPP = 0; 2319 let HasExt64BitDPP = 0; 2320 let HasExtSDWA = 0; 2321 let HasExtSDWA9 = 0; 2322} 2323 2324class VOP_PAT_GEN <VOPProfile p, int mode=PatGenMode.NoPattern> : VOPProfile <p.ArgVT> { 2325 let NeedPatGen = mode; 2326} 2327 2328def VOP_F16_F16 : VOPProfile <[f16, f16, untyped, untyped]>; 2329def VOP_F16_I16 : VOPProfile <[f16, i16, untyped, untyped]>; 2330def VOP_I16_F16 : VOPProfile <[i16, f16, untyped, untyped]>; 2331 2332def VOP_F16_F16_F16 : VOPProfile <[f16, f16, f16, untyped]>; 2333def VOP_F16_F16_I16 : VOPProfile <[f16, f16, i16, untyped]>; 2334def VOP_F16_F16_I32 : VOPProfile <[f16, f16, i32, untyped]>; 2335def VOP_I16_I16_I16 : VOPProfile <[i16, i16, i16, untyped]>; 2336def VOP_I16_I16_I16_ARITH : VOPProfile <[i16, i16, i16, untyped], 0, /*EnableClamp=*/1>; 2337 2338def VOP_I16_I16_I16_I16 : VOPProfile <[i16, i16, i16, i16, untyped]>; 2339def VOP_F16_F16_F16_F16 : VOPProfile <[f16, f16, f16, f16, untyped]>; 2340 2341def VOP_I32_I16_I16_I32 : VOPProfile <[i32, i16, i16, i32, untyped]>; 2342 2343def VOP_V2F16_V2F16_V2F16 : VOPProfile <[v2f16, v2f16, v2f16, untyped]>; 2344def VOP_V2I16_V2I16_V2I16 : VOPProfile <[v2i16, v2i16, v2i16, untyped]>; 2345def VOP_B32_F16_F16 : VOPProfile <[i32, f16, f16, untyped]>; 2346 2347def VOP_V2F16_V2F16_V2F16_V2F16 : VOPProfile <[v2f16, v2f16, v2f16, v2f16]>; 2348def VOP_V2I16_V2I16_V2I16_V2I16 : VOPProfile <[v2i16, v2i16, v2i16, v2i16]>; 2349def VOP_V2I16_F32_F32 : VOPProfile <[v2i16, f32, f32, untyped]>; 2350def VOP_V2I16_I32_I32 : VOPProfile <[v2i16, i32, i32, untyped]>; 2351 2352def VOP_F32_V2F16_V2F16_V2F16 : VOPProfile <[f32, v2f16, v2f16, v2f16]>; 2353 2354def VOP_NONE : VOPProfile <[untyped, untyped, untyped, untyped]>; 2355 2356def VOP_F32_F32 : VOPProfile <[f32, f32, untyped, untyped]>; 2357def VOP_F32_F64 : VOPProfile <[f32, f64, untyped, untyped]>; 2358def VOP_F32_I32 : VOPProfile <[f32, i32, untyped, untyped]>; 2359def VOP_F64_F32 : VOPProfile <[f64, f32, untyped, untyped]>; 2360def VOP_F64_F64 : VOPProfile <[f64, f64, untyped, untyped]>; 2361def VOP_F64_I32 : VOPProfile <[f64, i32, untyped, untyped]>; 2362def VOP_I32_F32 : VOPProfile <[i32, f32, untyped, untyped]>; 2363def VOP_I32_F64 : VOPProfile <[i32, f64, untyped, untyped]>; 2364def VOP_I32_I32 : VOPProfile <[i32, i32, untyped, untyped]>; 2365def VOP_F16_F32 : VOPProfile <[f16, f32, untyped, untyped]>; 2366def VOP_F32_F16 : VOPProfile <[f32, f16, untyped, untyped]>; 2367def VOP_I64_I64 : VOPProfile <[i64, i64, untyped, untyped]>; 2368 2369def VOP_F32_F32_F16 : VOPProfile <[f32, f32, f16, untyped]>; 2370def VOP_F32_F32_F32 : VOPProfile <[f32, f32, f32, untyped]>; 2371def VOP_F32_F32_I32 : VOPProfile <[f32, f32, i32, untyped]>; 2372def VOP_F64_F64_F64 : VOPProfile <[f64, f64, f64, untyped]>; 2373def VOP_F64_F64_I32 : VOPProfile <[f64, f64, i32, untyped]>; 2374def VOP_I32_F32_F32 : VOPProfile <[i32, f32, f32, untyped]>; 2375def VOP_I32_F32_I32 : VOPProfile <[i32, f32, i32, untyped]>; 2376def VOP_I32_I32_I32 : VOPProfile <[i32, i32, i32, untyped]>; 2377def VOP_I32_I32_I32_ARITH : VOPProfile <[i32, i32, i32, untyped], 0, /*EnableClamp=*/1>; 2378def VOP_V2F16_F32_F32 : VOPProfile <[v2f16, f32, f32, untyped]>; 2379def VOP_F32_F16_F16_F16 : VOPProfile <[f32, f16, f16, f16]>; 2380 2381def VOP_I64_I64_I32 : VOPProfile <[i64, i64, i32, untyped]>; 2382def VOP_I64_I32_I64 : VOPProfile <[i64, i32, i64, untyped]>; 2383def VOP_I64_I64_I64 : VOPProfile <[i64, i64, i64, untyped]>; 2384 2385def VOP_F16_F32_F16_F32 : VOPProfile <[f16, f32, f16, f32]>; 2386def VOP_F32_F32_F16_F16 : VOPProfile <[f32, f32, f16, f16]>; 2387def VOP_F32_F32_F32_F32 : VOPProfile <[f32, f32, f32, f32]>; 2388def VOP_F64_F64_F64_F64 : VOPProfile <[f64, f64, f64, f64]>; 2389def VOP_I32_I32_I32_I32 : VOPProfile <[i32, i32, i32, i32]>; 2390def VOP_I64_I32_I32_I64 : VOPProfile <[i64, i32, i32, i64]>; 2391def VOP_I32_F32_I32_I32 : VOPProfile <[i32, f32, i32, i32]>; 2392def VOP_I64_I64_I32_I64 : VOPProfile <[i64, i64, i32, i64]>; 2393def VOP_V4I32_I64_I32_V4I32 : VOPProfile <[v4i32, i64, i32, v4i32]>; 2394 2395def VOP_F32_V2F16_V2F16_F32 : VOPProfile <[f32, v2f16, v2f16, f32]>; 2396def VOP_I32_V2I16_V2I16_I32 : VOPProfile <[i32, v2i16, v2i16, i32]>; 2397 2398def VOP_V4F32_F32_F32_V4F32 : VOPProfile <[v4f32, f32, f32, v4f32]>; 2399def VOP_V16F32_F32_F32_V16F32 : VOPProfile <[v16f32, f32, f32, v16f32]>; 2400def VOP_V32F32_F32_F32_V32F32 : VOPProfile <[v32f32, f32, f32, v32f32]>; 2401def VOP_V4F32_V4F16_V4F16_V4F32 : VOPProfile <[v4f32, v4f16, v4f16, v4f32]>; 2402def VOP_V16F32_V4F16_V4F16_V16F32 : VOPProfile <[v16f32, v4f16, v4f16, v16f32]>; 2403def VOP_V32F32_V4F16_V4F16_V32F32 : VOPProfile <[v32f32, v4f16, v4f16, v32f32]>; 2404def VOP_V4F32_V2I16_V2I16_V4F32 : VOPProfile <[v4f32, v2i16, v2i16, v4f32]>; 2405def VOP_V16F32_V2I16_V2I16_V16F32 : VOPProfile <[v16f32, v2i16, v2i16, v16f32]>; 2406def VOP_V32F32_V2I16_V2I16_V32F32 : VOPProfile <[v32f32, v2i16, v2i16, v32f32]>; 2407def VOP_V4I32_I32_I32_V4I32 : VOPProfile <[v4i32, i32, i32, v4i32]>; 2408def VOP_V16I32_I32_I32_V16I32 : VOPProfile <[v16i32, i32, i32, v16i32]>; 2409def VOP_V32I32_I32_I32_V32I32 : VOPProfile <[v32i32, i32, i32, v32i32]>; 2410 2411def VOP_V4F64_F64_F64_V4F64 : VOPProfile <[v4f64, f64, f64, v4f64]>; 2412def VOP_V1F64_F64_F64_V1F64 : VOPProfile <[v1f64, f64, f64, v1f64]>; 2413 2414def VOP_V2F32_V2F32_V2F32_V2F32 : VOPProfile <[v2f32, v2f32, v2f32, v2f32]>; 2415def VOP_V2F32_V2F32_V2F32 : VOPProfile <[v2f32, v2f32, v2f32, untyped]>; 2416def VOP_V2I32_V2I32_V2I32 : VOPProfile <[v2i32, v2i32, v2i32, untyped]>; 2417def VOP_V4F32_V4I16_V4I16_V4F32 : VOPProfile <[v4f32, v4i16, v4i16, v4f32]>; 2418def VOP_V16F32_V4I16_V4I16_V16F32 : VOPProfile <[v16f32, v4i16, v4i16, v16f32]>; 2419def VOP_V32F32_V4I16_V4I16_V32F32 : VOPProfile <[v32f32, v4i16, v4i16, v32f32]>; 2420 2421def VOP_V4I32_I64_I64_V4I32 : VOPProfile <[v4i32, i64, i64, v4i32]>; 2422def VOP_V16I32_I64_I64_V16I32 : VOPProfile <[v16i32, i64, i64, v16i32]>; 2423def VOP_V4F32_V2F32_V2F32_V4F32 : VOPProfile <[v4f32, v2f32, v2f32, v4f32]>; 2424def VOP_V16F32_V2F32_V2F32_V16F32 : VOPProfile <[v16f32, v2f32, v2f32, v16f32]>; 2425 2426def VOP_V4F32_V4F16_V8F16_I32 : VOPProfile <[v4f32, v4f16, v8f16, i32]>; 2427def VOP_V16F32_V4F16_V8F16_I32 : VOPProfile <[v16f32, v4f16, v8f16, i32]>; 2428def VOP_V4F32_V4I16_V8I16_I32 : VOPProfile <[v4f32, v4i16, v8i16, i32]>; 2429def VOP_V16F32_V4I16_V8I16_I32 : VOPProfile <[v16f32, v4i16, v8i16, i32]>; 2430def VOP_V4I32_V2I32_V4I32_I32 : VOPProfile <[v4i32, v2i32, v4i32, i32]>; 2431def VOP_V16I32_V2I32_V4I32_I32 : VOPProfile <[v16i32, v2i32, v4i32, i32]>; 2432 2433class Commutable_REV <string revOp, bit isOrig> { 2434 string RevOp = revOp; 2435 bit IsOrig = isOrig; 2436} 2437 2438class AtomicNoRet <string noRetOp, bit isRet> { 2439 string NoRetOp = noRetOp; 2440 bit IsRet = isRet; 2441} 2442 2443//===----------------------------------------------------------------------===// 2444// Interpolation opcodes 2445//===----------------------------------------------------------------------===// 2446 2447class VINTRPDstOperand <RegisterClass rc> : RegisterOperand <rc, "printVINTRPDst">; 2448 2449class VINTRP_Pseudo <string opName, dag outs, dag ins, list<dag> pattern> : 2450 VINTRPCommon <outs, ins, "", pattern>, 2451 SIMCInstr<opName, SIEncodingFamily.NONE> { 2452 let isPseudo = 1; 2453 let isCodeGenOnly = 1; 2454} 2455 2456// FIXME-GFX10: WIP. 2457class VINTRP_Real_si <bits <2> op, string opName, dag outs, dag ins, 2458 string asm, int encodingFamily> : 2459 VINTRPCommon <outs, ins, asm, []>, 2460 VINTRPe <op>, 2461 SIMCInstr<opName, encodingFamily> { 2462} 2463 2464class VINTRP_Real_vi <bits <2> op, string opName, dag outs, dag ins, 2465 string asm> : 2466 VINTRPCommon <outs, ins, asm, []>, 2467 VINTRPe_vi <op>, 2468 SIMCInstr<opName, SIEncodingFamily.VI> { 2469 let AssemblerPredicate = VIAssemblerPredicate; 2470 let DecoderNamespace = "GFX8"; 2471} 2472 2473// FIXME-GFX10: WIP. 2474multiclass VINTRP_m <bits <2> op, dag outs, dag ins, string asm, 2475 list<dag> pattern = []> { 2476 def "" : VINTRP_Pseudo <NAME, outs, ins, pattern>; 2477 2478 let AssemblerPredicate = isGFX6GFX7, DecoderNamespace = "GFX6GFX7" in { 2479 def _si : VINTRP_Real_si <op, NAME, outs, ins, asm, SIEncodingFamily.SI>; 2480 } // End AssemblerPredicate = isGFX6GFX7, DecoderNamespace = "GFX6GFX7" 2481 2482 def _vi : VINTRP_Real_vi <op, NAME, outs, ins, asm>; 2483 2484 let AssemblerPredicate = isGFX10Plus, DecoderNamespace = "GFX10" in { 2485 def _gfx10 : VINTRP_Real_si<op, NAME, outs, ins, asm, SIEncodingFamily.GFX10>; 2486 } // End AssemblerPredicate = isGFX10Plus, DecoderNamespace = "GFX10" 2487} 2488//===----------------------------------------------------------------------===// 2489// Vector instruction mappings 2490//===----------------------------------------------------------------------===// 2491 2492// Maps an opcode in e32 form to its e64 equivalent 2493def getVOPe64 : InstrMapping { 2494 let FilterClass = "VOP"; 2495 let RowFields = ["OpName"]; 2496 let ColFields = ["Size", "VOP3"]; 2497 let KeyCol = ["4", "0"]; 2498 let ValueCols = [["8", "1"]]; 2499} 2500 2501// Maps an opcode in e64 form to its e32 equivalent 2502def getVOPe32 : InstrMapping { 2503 let FilterClass = "VOP"; 2504 let RowFields = ["OpName"]; 2505 let ColFields = ["Size", "VOP3"]; 2506 let KeyCol = ["8", "1"]; 2507 let ValueCols = [["4", "0"]]; 2508} 2509 2510// Maps ordinary instructions to their SDWA counterparts 2511def getSDWAOp : InstrMapping { 2512 let FilterClass = "VOP"; 2513 let RowFields = ["OpName"]; 2514 let ColFields = ["AsmVariantName"]; 2515 let KeyCol = ["Default"]; 2516 let ValueCols = [["SDWA"]]; 2517} 2518 2519// Maps SDWA instructions to their ordinary counterparts 2520def getBasicFromSDWAOp : InstrMapping { 2521 let FilterClass = "VOP"; 2522 let RowFields = ["OpName"]; 2523 let ColFields = ["AsmVariantName"]; 2524 let KeyCol = ["SDWA"]; 2525 let ValueCols = [["Default"]]; 2526} 2527 2528// Maps ordinary instructions to their DPP counterparts 2529def getDPPOp32 : InstrMapping { 2530 let FilterClass = "VOP"; 2531 let RowFields = ["OpName"]; 2532 let ColFields = ["AsmVariantName"]; 2533 let KeyCol = ["Default"]; 2534 let ValueCols = [["DPP"]]; 2535} 2536 2537// Maps an commuted opcode to its original version 2538def getCommuteOrig : InstrMapping { 2539 let FilterClass = "Commutable_REV"; 2540 let RowFields = ["RevOp"]; 2541 let ColFields = ["IsOrig"]; 2542 let KeyCol = ["0"]; 2543 let ValueCols = [["1"]]; 2544} 2545 2546// Maps an original opcode to its commuted version 2547def getCommuteRev : InstrMapping { 2548 let FilterClass = "Commutable_REV"; 2549 let RowFields = ["RevOp"]; 2550 let ColFields = ["IsOrig"]; 2551 let KeyCol = ["1"]; 2552 let ValueCols = [["0"]]; 2553} 2554 2555def getMCOpcodeGen : InstrMapping { 2556 let FilterClass = "SIMCInstr"; 2557 let RowFields = ["PseudoInstr"]; 2558 let ColFields = ["Subtarget"]; 2559 let KeyCol = [!cast<string>(SIEncodingFamily.NONE)]; 2560 let ValueCols = [[!cast<string>(SIEncodingFamily.SI)], 2561 [!cast<string>(SIEncodingFamily.VI)], 2562 [!cast<string>(SIEncodingFamily.SDWA)], 2563 [!cast<string>(SIEncodingFamily.SDWA9)], 2564 // GFX80 encoding is added to work around a multiple matching 2565 // issue for buffer instructions with unpacked d16 data. This 2566 // does not actually change the encoding, and thus may be 2567 // removed later. 2568 [!cast<string>(SIEncodingFamily.GFX80)], 2569 [!cast<string>(SIEncodingFamily.GFX9)], 2570 [!cast<string>(SIEncodingFamily.GFX10)], 2571 [!cast<string>(SIEncodingFamily.SDWA10)], 2572 [!cast<string>(SIEncodingFamily.GFX90A)], 2573 [!cast<string>(SIEncodingFamily.GFX940)]]; 2574} 2575 2576// Get equivalent SOPK instruction. 2577def getSOPKOp : InstrMapping { 2578 let FilterClass = "SOPKInstTable"; 2579 let RowFields = ["BaseCmpOp"]; 2580 let ColFields = ["IsSOPK"]; 2581 let KeyCol = ["0"]; 2582 let ValueCols = [["1"]]; 2583} 2584 2585def getAddr64Inst : InstrMapping { 2586 let FilterClass = "MUBUFAddr64Table"; 2587 let RowFields = ["OpName"]; 2588 let ColFields = ["IsAddr64"]; 2589 let KeyCol = ["0"]; 2590 let ValueCols = [["1"]]; 2591} 2592 2593def getIfAddr64Inst : InstrMapping { 2594 let FilterClass = "MUBUFAddr64Table"; 2595 let RowFields = ["OpName"]; 2596 let ColFields = ["IsAddr64"]; 2597 let KeyCol = ["1"]; 2598 let ValueCols = [["1"]]; 2599} 2600 2601def getMUBUFNoLdsInst : InstrMapping { 2602 let FilterClass = "MUBUFLdsTable"; 2603 let RowFields = ["OpName"]; 2604 let ColFields = ["IsLds"]; 2605 let KeyCol = ["1"]; 2606 let ValueCols = [["0"]]; 2607} 2608 2609// Maps an atomic opcode to its returnless version. 2610def getAtomicNoRetOp : InstrMapping { 2611 let FilterClass = "AtomicNoRet"; 2612 let RowFields = ["NoRetOp"]; 2613 let ColFields = ["IsRet"]; 2614 let KeyCol = ["1"]; 2615 let ValueCols = [["0"]]; 2616} 2617 2618// Maps a GLOBAL to its SADDR form. 2619def getGlobalSaddrOp : InstrMapping { 2620 let FilterClass = "GlobalSaddrTable"; 2621 let RowFields = ["SaddrOp"]; 2622 let ColFields = ["IsSaddr"]; 2623 let KeyCol = ["0"]; 2624 let ValueCols = [["1"]]; 2625} 2626 2627// Maps a GLOBAL SADDR to its VADDR form. 2628def getGlobalVaddrOp : InstrMapping { 2629 let FilterClass = "GlobalSaddrTable"; 2630 let RowFields = ["SaddrOp"]; 2631 let ColFields = ["IsSaddr"]; 2632 let KeyCol = ["1"]; 2633 let ValueCols = [["0"]]; 2634} 2635 2636// Maps a v_cmpx opcode with sdst to opcode without sdst. 2637def getVCMPXNoSDstOp : InstrMapping { 2638 let FilterClass = "VCMPXNoSDstTable"; 2639 let RowFields = ["NoSDstOp"]; 2640 let ColFields = ["HasSDst"]; 2641 let KeyCol = ["1"]; 2642 let ValueCols = [["0"]]; 2643} 2644 2645// Maps a SOPP to a SOPP with S_NOP 2646def getSOPPWithRelaxation : InstrMapping { 2647 let FilterClass = "SOPPRelaxTable"; 2648 let RowFields = ["KeyName"]; 2649 let ColFields = ["IsRelaxed"]; 2650 let KeyCol = ["0"]; 2651 let ValueCols = [["1"]]; 2652} 2653 2654// Maps flat scratch opcodes by addressing modes 2655def getFlatScratchInstSTfromSS : InstrMapping { 2656 let FilterClass = "FlatScratchInst"; 2657 let RowFields = ["SVOp"]; 2658 let ColFields = ["Mode"]; 2659 let KeyCol = ["SS"]; 2660 let ValueCols = [["ST"]]; 2661} 2662 2663def getFlatScratchInstSSfromSV : InstrMapping { 2664 let FilterClass = "FlatScratchInst"; 2665 let RowFields = ["SVOp"]; 2666 let ColFields = ["Mode"]; 2667 let KeyCol = ["SV"]; 2668 let ValueCols = [["SS"]]; 2669} 2670 2671def getFlatScratchInstSVfromSVS : InstrMapping { 2672 let FilterClass = "FlatScratchInst"; 2673 let RowFields = ["SVOp"]; 2674 let ColFields = ["Mode"]; 2675 let KeyCol = ["SVS"]; 2676 let ValueCols = [["SV"]]; 2677} 2678 2679def getFlatScratchInstSVfromSS : InstrMapping { 2680 let FilterClass = "FlatScratchInst"; 2681 let RowFields = ["SVOp"]; 2682 let ColFields = ["Mode"]; 2683 let KeyCol = ["SS"]; 2684 let ValueCols = [["SV"]]; 2685} 2686 2687def getMFMAEarlyClobberOp : InstrMapping { 2688 let FilterClass = "MFMATable"; 2689 let RowFields = ["FMAOp"]; 2690 let ColFields = ["IsMac"]; 2691 let KeyCol = ["1"]; 2692 let ValueCols = [["0"]]; 2693} 2694 2695// Maps an v_cmp instruction to its v_cmpx equivalent. 2696def getVCMPXOpFromVCMP : InstrMapping { 2697 let FilterClass = "VCMPVCMPXTable"; 2698 let RowFields = ["VCMPOp"]; 2699 let ColFields = ["IsVCMPX"]; 2700 let KeyCol = ["0"]; 2701 let ValueCols = [["1"]]; 2702} 2703 2704include "SIInstructions.td" 2705 2706include "DSInstructions.td" 2707include "MIMGInstructions.td" 2708