1//===-- PPCInstrInfo.td - The PowerPC Instruction Set ------*- tablegen -*-===// 2// 3// The LLVM Compiler Infrastructure 4// 5// This file is distributed under the University of Illinois Open Source 6// License. See LICENSE.TXT for details. 7// 8//===----------------------------------------------------------------------===// 9// 10// This file describes the subset of the 32-bit PowerPC instruction set, as used 11// by the PowerPC instruction selector. 12// 13//===----------------------------------------------------------------------===// 14 15include "PPCInstrFormats.td" 16 17//===----------------------------------------------------------------------===// 18// PowerPC specific type constraints. 19// 20def SDT_PPCstfiwx : SDTypeProfile<0, 2, [ // stfiwx 21 SDTCisVT<0, f64>, SDTCisPtrTy<1> 22]>; 23def SDT_PPClfiwx : SDTypeProfile<1, 1, [ // lfiw[az]x 24 SDTCisVT<0, f64>, SDTCisPtrTy<1> 25]>; 26def SDT_PPCLxsizx : SDTypeProfile<1, 2, [ 27 SDTCisVT<0, f64>, SDTCisPtrTy<1>, SDTCisPtrTy<2> 28]>; 29def SDT_PPCstxsix : SDTypeProfile<0, 3, [ 30 SDTCisVT<0, f64>, SDTCisPtrTy<1>, SDTCisPtrTy<2> 31]>; 32def SDT_PPCcv_fp_to_int : SDTypeProfile<1, 1, [ 33 SDTCisFP<0>, SDTCisFP<1> 34 ]>; 35def SDT_PPCstore_scal_int_from_vsr : SDTypeProfile<0, 3, [ 36 SDTCisVT<0, f64>, SDTCisPtrTy<1>, SDTCisPtrTy<2> 37]>; 38def SDT_PPCVexts : SDTypeProfile<1, 2, [ 39 SDTCisVT<0, f64>, SDTCisVT<1, f64>, SDTCisPtrTy<2> 40]>; 41def SDT_PPCSExtVElems : SDTypeProfile<1, 1, [ 42 SDTCisVec<0>, SDTCisVec<1> 43]>; 44 45def SDT_PPCCallSeqStart : SDCallSeqStart<[ SDTCisVT<0, i32>, 46 SDTCisVT<1, i32> ]>; 47def SDT_PPCCallSeqEnd : SDCallSeqEnd<[ SDTCisVT<0, i32>, 48 SDTCisVT<1, i32> ]>; 49def SDT_PPCvperm : SDTypeProfile<1, 3, [ 50 SDTCisVT<3, v16i8>, SDTCisSameAs<0, 1>, SDTCisSameAs<0, 2> 51]>; 52 53def SDT_PPCVecSplat : SDTypeProfile<1, 2, [ SDTCisVec<0>, 54 SDTCisVec<1>, SDTCisInt<2> 55]>; 56 57def SDT_PPCVecShift : SDTypeProfile<1, 3, [ SDTCisVec<0>, 58 SDTCisVec<1>, SDTCisVec<2>, SDTCisPtrTy<3> 59]>; 60 61def SDT_PPCVecInsert : SDTypeProfile<1, 3, [ SDTCisVec<0>, 62 SDTCisVec<1>, SDTCisVec<2>, SDTCisInt<3> 63]>; 64 65def SDT_PPCVecReverse: SDTypeProfile<1, 1, [ SDTCisVec<0>, 66 SDTCisVec<1> 67]>; 68 69def SDT_PPCxxpermdi: SDTypeProfile<1, 3, [ SDTCisVec<0>, 70 SDTCisVec<1>, SDTCisVec<2>, SDTCisInt<3> 71]>; 72 73def SDT_PPCvcmp : SDTypeProfile<1, 3, [ 74 SDTCisSameAs<0, 1>, SDTCisSameAs<1, 2>, SDTCisVT<3, i32> 75]>; 76 77def SDT_PPCcondbr : SDTypeProfile<0, 3, [ 78 SDTCisVT<0, i32>, SDTCisVT<2, OtherVT> 79]>; 80 81def SDT_PPClbrx : SDTypeProfile<1, 2, [ 82 SDTCisInt<0>, SDTCisPtrTy<1>, SDTCisVT<2, OtherVT> 83]>; 84def SDT_PPCstbrx : SDTypeProfile<0, 3, [ 85 SDTCisInt<0>, SDTCisPtrTy<1>, SDTCisVT<2, OtherVT> 86]>; 87 88def SDT_PPCTC_ret : SDTypeProfile<0, 2, [ 89 SDTCisPtrTy<0>, SDTCisVT<1, i32> 90]>; 91 92def tocentry32 : Operand<iPTR> { 93 let MIOperandInfo = (ops i32imm:$imm); 94} 95 96def SDT_PPCqvfperm : SDTypeProfile<1, 3, [ 97 SDTCisVec<0>, SDTCisSameAs<0, 1>, SDTCisSameAs<0, 2>, SDTCisVec<3> 98]>; 99def SDT_PPCqvgpci : SDTypeProfile<1, 1, [ 100 SDTCisVec<0>, SDTCisInt<1> 101]>; 102def SDT_PPCqvaligni : SDTypeProfile<1, 3, [ 103 SDTCisVec<0>, SDTCisSameAs<0, 1>, SDTCisSameAs<0, 2>, SDTCisInt<3> 104]>; 105def SDT_PPCqvesplati : SDTypeProfile<1, 2, [ 106 SDTCisVec<0>, SDTCisSameAs<0, 1>, SDTCisInt<2> 107]>; 108 109def SDT_PPCqbflt : SDTypeProfile<1, 1, [ 110 SDTCisVec<0>, SDTCisVec<1> 111]>; 112 113def SDT_PPCqvlfsb : SDTypeProfile<1, 1, [ 114 SDTCisVec<0>, SDTCisPtrTy<1> 115]>; 116 117def SDT_PPCextswsli : SDTypeProfile<1, 2, [ // extswsli 118 SDTCisInt<0>, SDTCisInt<1>, SDTCisOpSmallerThanOp<1, 0>, SDTCisInt<2> 119]>; 120 121//===----------------------------------------------------------------------===// 122// PowerPC specific DAG Nodes. 123// 124 125def PPCfre : SDNode<"PPCISD::FRE", SDTFPUnaryOp, []>; 126def PPCfrsqrte: SDNode<"PPCISD::FRSQRTE", SDTFPUnaryOp, []>; 127 128def PPCfcfid : SDNode<"PPCISD::FCFID", SDTFPUnaryOp, []>; 129def PPCfcfidu : SDNode<"PPCISD::FCFIDU", SDTFPUnaryOp, []>; 130def PPCfcfids : SDNode<"PPCISD::FCFIDS", SDTFPRoundOp, []>; 131def PPCfcfidus: SDNode<"PPCISD::FCFIDUS", SDTFPRoundOp, []>; 132def PPCfctidz : SDNode<"PPCISD::FCTIDZ", SDTFPUnaryOp, []>; 133def PPCfctiwz : SDNode<"PPCISD::FCTIWZ", SDTFPUnaryOp, []>; 134def PPCfctiduz: SDNode<"PPCISD::FCTIDUZ",SDTFPUnaryOp, []>; 135def PPCfctiwuz: SDNode<"PPCISD::FCTIWUZ",SDTFPUnaryOp, []>; 136 137def PPCcv_fp_to_uint_in_vsr: 138 SDNode<"PPCISD::FP_TO_UINT_IN_VSR", SDT_PPCcv_fp_to_int, []>; 139def PPCcv_fp_to_sint_in_vsr: 140 SDNode<"PPCISD::FP_TO_SINT_IN_VSR", SDT_PPCcv_fp_to_int, []>; 141def PPCstore_scal_int_from_vsr: 142 SDNode<"PPCISD::ST_VSR_SCAL_INT", SDT_PPCstore_scal_int_from_vsr, 143 [SDNPHasChain, SDNPMayStore]>; 144def PPCstfiwx : SDNode<"PPCISD::STFIWX", SDT_PPCstfiwx, 145 [SDNPHasChain, SDNPMayStore]>; 146def PPClfiwax : SDNode<"PPCISD::LFIWAX", SDT_PPClfiwx, 147 [SDNPHasChain, SDNPMayLoad, SDNPMemOperand]>; 148def PPClfiwzx : SDNode<"PPCISD::LFIWZX", SDT_PPClfiwx, 149 [SDNPHasChain, SDNPMayLoad, SDNPMemOperand]>; 150def PPClxsizx : SDNode<"PPCISD::LXSIZX", SDT_PPCLxsizx, 151 [SDNPHasChain, SDNPMayLoad]>; 152def PPCstxsix : SDNode<"PPCISD::STXSIX", SDT_PPCstxsix, 153 [SDNPHasChain, SDNPMayStore]>; 154def PPCVexts : SDNode<"PPCISD::VEXTS", SDT_PPCVexts, []>; 155def PPCSExtVElems : SDNode<"PPCISD::SExtVElems", SDT_PPCSExtVElems, []>; 156 157// Extract FPSCR (not modeled at the DAG level). 158def PPCmffs : SDNode<"PPCISD::MFFS", 159 SDTypeProfile<1, 0, [SDTCisVT<0, f64>]>, []>; 160 161// Perform FADD in round-to-zero mode. 162def PPCfaddrtz: SDNode<"PPCISD::FADDRTZ", SDTFPBinOp, []>; 163 164 165def PPCfsel : SDNode<"PPCISD::FSEL", 166 // Type constraint for fsel. 167 SDTypeProfile<1, 3, [SDTCisSameAs<0, 2>, SDTCisSameAs<0, 3>, 168 SDTCisFP<0>, SDTCisVT<1, f64>]>, []>; 169 170def PPChi : SDNode<"PPCISD::Hi", SDTIntBinOp, []>; 171def PPClo : SDNode<"PPCISD::Lo", SDTIntBinOp, []>; 172def PPCtoc_entry: SDNode<"PPCISD::TOC_ENTRY", SDTIntBinOp, 173 [SDNPMayLoad, SDNPMemOperand]>; 174def PPCvmaddfp : SDNode<"PPCISD::VMADDFP", SDTFPTernaryOp, []>; 175def PPCvnmsubfp : SDNode<"PPCISD::VNMSUBFP", SDTFPTernaryOp, []>; 176 177def PPCppc32GOT : SDNode<"PPCISD::PPC32_GOT", SDTIntLeaf, []>; 178 179def PPCaddisGotTprelHA : SDNode<"PPCISD::ADDIS_GOT_TPREL_HA", SDTIntBinOp>; 180def PPCldGotTprelL : SDNode<"PPCISD::LD_GOT_TPREL_L", SDTIntBinOp, 181 [SDNPMayLoad]>; 182def PPCaddTls : SDNode<"PPCISD::ADD_TLS", SDTIntBinOp, []>; 183def PPCaddisTlsgdHA : SDNode<"PPCISD::ADDIS_TLSGD_HA", SDTIntBinOp>; 184def PPCaddiTlsgdL : SDNode<"PPCISD::ADDI_TLSGD_L", SDTIntBinOp>; 185def PPCgetTlsAddr : SDNode<"PPCISD::GET_TLS_ADDR", SDTIntBinOp>; 186def PPCaddiTlsgdLAddr : SDNode<"PPCISD::ADDI_TLSGD_L_ADDR", 187 SDTypeProfile<1, 3, [ 188 SDTCisSameAs<0, 1>, SDTCisSameAs<0, 2>, 189 SDTCisSameAs<0, 3>, SDTCisInt<0> ]>>; 190def PPCaddisTlsldHA : SDNode<"PPCISD::ADDIS_TLSLD_HA", SDTIntBinOp>; 191def PPCaddiTlsldL : SDNode<"PPCISD::ADDI_TLSLD_L", SDTIntBinOp>; 192def PPCgetTlsldAddr : SDNode<"PPCISD::GET_TLSLD_ADDR", SDTIntBinOp>; 193def PPCaddiTlsldLAddr : SDNode<"PPCISD::ADDI_TLSLD_L_ADDR", 194 SDTypeProfile<1, 3, [ 195 SDTCisSameAs<0, 1>, SDTCisSameAs<0, 2>, 196 SDTCisSameAs<0, 3>, SDTCisInt<0> ]>>; 197def PPCaddisDtprelHA : SDNode<"PPCISD::ADDIS_DTPREL_HA", SDTIntBinOp>; 198def PPCaddiDtprelL : SDNode<"PPCISD::ADDI_DTPREL_L", SDTIntBinOp>; 199 200def PPCvperm : SDNode<"PPCISD::VPERM", SDT_PPCvperm, []>; 201def PPCxxsplt : SDNode<"PPCISD::XXSPLT", SDT_PPCVecSplat, []>; 202def PPCvecinsert : SDNode<"PPCISD::VECINSERT", SDT_PPCVecInsert, []>; 203def PPCxxreverse : SDNode<"PPCISD::XXREVERSE", SDT_PPCVecReverse, []>; 204def PPCxxpermdi : SDNode<"PPCISD::XXPERMDI", SDT_PPCxxpermdi, []>; 205def PPCvecshl : SDNode<"PPCISD::VECSHL", SDT_PPCVecShift, []>; 206 207def PPCqvfperm : SDNode<"PPCISD::QVFPERM", SDT_PPCqvfperm, []>; 208def PPCqvgpci : SDNode<"PPCISD::QVGPCI", SDT_PPCqvgpci, []>; 209def PPCqvaligni : SDNode<"PPCISD::QVALIGNI", SDT_PPCqvaligni, []>; 210def PPCqvesplati : SDNode<"PPCISD::QVESPLATI", SDT_PPCqvesplati, []>; 211 212def PPCqbflt : SDNode<"PPCISD::QBFLT", SDT_PPCqbflt, []>; 213 214def PPCqvlfsb : SDNode<"PPCISD::QVLFSb", SDT_PPCqvlfsb, 215 [SDNPHasChain, SDNPMayLoad]>; 216 217def PPCcmpb : SDNode<"PPCISD::CMPB", SDTIntBinOp, []>; 218 219// These nodes represent the 32-bit PPC shifts that operate on 6-bit shift 220// amounts. These nodes are generated by the multi-precision shift code. 221def PPCsrl : SDNode<"PPCISD::SRL" , SDTIntShiftOp>; 222def PPCsra : SDNode<"PPCISD::SRA" , SDTIntShiftOp>; 223def PPCshl : SDNode<"PPCISD::SHL" , SDTIntShiftOp>; 224 225def PPCextswsli : SDNode<"PPCISD::EXTSWSLI" , SDT_PPCextswsli>; 226 227// Move 2 i64 values into a VSX register 228def PPCbuild_fp128: SDNode<"PPCISD::BUILD_FP128", 229 SDTypeProfile<1, 2, 230 [SDTCisFP<0>, SDTCisSameSizeAs<1,2>, 231 SDTCisSameAs<1,2>]>, 232 []>; 233 234// These are target-independent nodes, but have target-specific formats. 235def callseq_start : SDNode<"ISD::CALLSEQ_START", SDT_PPCCallSeqStart, 236 [SDNPHasChain, SDNPOutGlue]>; 237def callseq_end : SDNode<"ISD::CALLSEQ_END", SDT_PPCCallSeqEnd, 238 [SDNPHasChain, SDNPOptInGlue, SDNPOutGlue]>; 239 240def SDT_PPCCall : SDTypeProfile<0, -1, [SDTCisInt<0>]>; 241def PPCcall : SDNode<"PPCISD::CALL", SDT_PPCCall, 242 [SDNPHasChain, SDNPOptInGlue, SDNPOutGlue, 243 SDNPVariadic]>; 244def PPCcall_nop : SDNode<"PPCISD::CALL_NOP", SDT_PPCCall, 245 [SDNPHasChain, SDNPOptInGlue, SDNPOutGlue, 246 SDNPVariadic]>; 247def PPCmtctr : SDNode<"PPCISD::MTCTR", SDT_PPCCall, 248 [SDNPHasChain, SDNPOptInGlue, SDNPOutGlue]>; 249def PPCbctrl : SDNode<"PPCISD::BCTRL", SDTNone, 250 [SDNPHasChain, SDNPOptInGlue, SDNPOutGlue, 251 SDNPVariadic]>; 252def PPCbctrl_load_toc : SDNode<"PPCISD::BCTRL_LOAD_TOC", 253 SDTypeProfile<0, 1, []>, 254 [SDNPHasChain, SDNPOptInGlue, SDNPOutGlue, 255 SDNPVariadic]>; 256 257def retflag : SDNode<"PPCISD::RET_FLAG", SDTNone, 258 [SDNPHasChain, SDNPOptInGlue, SDNPVariadic]>; 259 260def PPCtc_return : SDNode<"PPCISD::TC_RETURN", SDT_PPCTC_ret, 261 [SDNPHasChain, SDNPOptInGlue, SDNPVariadic]>; 262 263def PPCeh_sjlj_setjmp : SDNode<"PPCISD::EH_SJLJ_SETJMP", 264 SDTypeProfile<1, 1, [SDTCisInt<0>, 265 SDTCisPtrTy<1>]>, 266 [SDNPHasChain, SDNPSideEffect]>; 267def PPCeh_sjlj_longjmp : SDNode<"PPCISD::EH_SJLJ_LONGJMP", 268 SDTypeProfile<0, 1, [SDTCisPtrTy<0>]>, 269 [SDNPHasChain, SDNPSideEffect]>; 270 271def SDT_PPCsc : SDTypeProfile<0, 1, [SDTCisInt<0>]>; 272def PPCsc : SDNode<"PPCISD::SC", SDT_PPCsc, 273 [SDNPHasChain, SDNPSideEffect]>; 274 275def PPCclrbhrb : SDNode<"PPCISD::CLRBHRB", SDTNone, 276 [SDNPHasChain, SDNPSideEffect]>; 277def PPCmfbhrbe : SDNode<"PPCISD::MFBHRBE", SDTIntBinOp, [SDNPHasChain]>; 278def PPCrfebb : SDNode<"PPCISD::RFEBB", SDT_PPCsc, 279 [SDNPHasChain, SDNPSideEffect]>; 280 281def PPCvcmp : SDNode<"PPCISD::VCMP" , SDT_PPCvcmp, []>; 282def PPCvcmp_o : SDNode<"PPCISD::VCMPo", SDT_PPCvcmp, [SDNPOutGlue]>; 283 284def PPCcondbranch : SDNode<"PPCISD::COND_BRANCH", SDT_PPCcondbr, 285 [SDNPHasChain, SDNPOptInGlue]>; 286 287// PPC-specific atomic operations. 288def PPCatomicCmpSwap_8 : 289 SDNode<"PPCISD::ATOMIC_CMP_SWAP_8", SDTAtomic3, 290 [SDNPHasChain, SDNPMayStore, SDNPMayLoad, SDNPMemOperand]>; 291def PPCatomicCmpSwap_16 : 292 SDNode<"PPCISD::ATOMIC_CMP_SWAP_16", SDTAtomic3, 293 [SDNPHasChain, SDNPMayStore, SDNPMayLoad, SDNPMemOperand]>; 294def PPClbrx : SDNode<"PPCISD::LBRX", SDT_PPClbrx, 295 [SDNPHasChain, SDNPMayLoad, SDNPMemOperand]>; 296def PPCstbrx : SDNode<"PPCISD::STBRX", SDT_PPCstbrx, 297 [SDNPHasChain, SDNPMayStore]>; 298 299// Instructions to set/unset CR bit 6 for SVR4 vararg calls 300def PPCcr6set : SDNode<"PPCISD::CR6SET", SDTNone, 301 [SDNPHasChain, SDNPOptInGlue, SDNPOutGlue]>; 302def PPCcr6unset : SDNode<"PPCISD::CR6UNSET", SDTNone, 303 [SDNPHasChain, SDNPOptInGlue, SDNPOutGlue]>; 304 305// Instructions to support dynamic alloca. 306def SDTDynOp : SDTypeProfile<1, 2, []>; 307def SDTDynAreaOp : SDTypeProfile<1, 1, []>; 308def PPCdynalloc : SDNode<"PPCISD::DYNALLOC", SDTDynOp, [SDNPHasChain]>; 309def PPCdynareaoffset : SDNode<"PPCISD::DYNAREAOFFSET", SDTDynAreaOp, [SDNPHasChain]>; 310 311//===----------------------------------------------------------------------===// 312// PowerPC specific transformation functions and pattern fragments. 313// 314 315def SHL32 : SDNodeXForm<imm, [{ 316 // Transformation function: 31 - imm 317 return getI32Imm(31 - N->getZExtValue(), SDLoc(N)); 318}]>; 319 320def SRL32 : SDNodeXForm<imm, [{ 321 // Transformation function: 32 - imm 322 return N->getZExtValue() ? getI32Imm(32 - N->getZExtValue(), SDLoc(N)) 323 : getI32Imm(0, SDLoc(N)); 324}]>; 325 326def LO16 : SDNodeXForm<imm, [{ 327 // Transformation function: get the low 16 bits. 328 return getI32Imm((unsigned short)N->getZExtValue(), SDLoc(N)); 329}]>; 330 331def HI16 : SDNodeXForm<imm, [{ 332 // Transformation function: shift the immediate value down into the low bits. 333 return getI32Imm((unsigned)N->getZExtValue() >> 16, SDLoc(N)); 334}]>; 335 336def HA16 : SDNodeXForm<imm, [{ 337 // Transformation function: shift the immediate value down into the low bits. 338 long Val = N->getZExtValue(); 339 return getI32Imm((Val - (signed short)Val) >> 16, SDLoc(N)); 340}]>; 341def MB : SDNodeXForm<imm, [{ 342 // Transformation function: get the start bit of a mask 343 unsigned mb = 0, me; 344 (void)isRunOfOnes((unsigned)N->getZExtValue(), mb, me); 345 return getI32Imm(mb, SDLoc(N)); 346}]>; 347 348def ME : SDNodeXForm<imm, [{ 349 // Transformation function: get the end bit of a mask 350 unsigned mb, me = 0; 351 (void)isRunOfOnes((unsigned)N->getZExtValue(), mb, me); 352 return getI32Imm(me, SDLoc(N)); 353}]>; 354def maskimm32 : PatLeaf<(imm), [{ 355 // maskImm predicate - True if immediate is a run of ones. 356 unsigned mb, me; 357 if (N->getValueType(0) == MVT::i32) 358 return isRunOfOnes((unsigned)N->getZExtValue(), mb, me); 359 else 360 return false; 361}]>; 362 363def imm32SExt16 : Operand<i32>, ImmLeaf<i32, [{ 364 // imm32SExt16 predicate - True if the i32 immediate fits in a 16-bit 365 // sign extended field. Used by instructions like 'addi'. 366 return (int32_t)Imm == (short)Imm; 367}]>; 368def imm64SExt16 : Operand<i64>, ImmLeaf<i64, [{ 369 // imm64SExt16 predicate - True if the i64 immediate fits in a 16-bit 370 // sign extended field. Used by instructions like 'addi'. 371 return (int64_t)Imm == (short)Imm; 372}]>; 373def immZExt16 : PatLeaf<(imm), [{ 374 // immZExt16 predicate - True if the immediate fits in a 16-bit zero extended 375 // field. Used by instructions like 'ori'. 376 return (uint64_t)N->getZExtValue() == (unsigned short)N->getZExtValue(); 377}], LO16>; 378def immAnyExt8 : ImmLeaf<i32, [{ return isInt<8>(Imm) || isUInt<8>(Imm); }]>; 379def immSExt5NonZero : ImmLeaf<i32, [{ return Imm && isInt<5>(Imm); }]>; 380 381// imm16Shifted* - These match immediates where the low 16-bits are zero. There 382// are two forms: imm16ShiftedSExt and imm16ShiftedZExt. These two forms are 383// identical in 32-bit mode, but in 64-bit mode, they return true if the 384// immediate fits into a sign/zero extended 32-bit immediate (with the low bits 385// clear). 386def imm16ShiftedZExt : PatLeaf<(imm), [{ 387 // imm16ShiftedZExt predicate - True if only bits in the top 16-bits of the 388 // immediate are set. Used by instructions like 'xoris'. 389 return (N->getZExtValue() & ~uint64_t(0xFFFF0000)) == 0; 390}], HI16>; 391 392def imm16ShiftedSExt : PatLeaf<(imm), [{ 393 // imm16ShiftedSExt predicate - True if only bits in the top 16-bits of the 394 // immediate are set. Used by instructions like 'addis'. Identical to 395 // imm16ShiftedZExt in 32-bit mode. 396 if (N->getZExtValue() & 0xFFFF) return false; 397 if (N->getValueType(0) == MVT::i32) 398 return true; 399 // For 64-bit, make sure it is sext right. 400 return N->getZExtValue() == (uint64_t)(int)N->getZExtValue(); 401}], HI16>; 402 403def imm64ZExt32 : Operand<i64>, ImmLeaf<i64, [{ 404 // imm64ZExt32 predicate - True if the i64 immediate fits in a 32-bit 405 // zero extended field. 406 return isUInt<32>(Imm); 407}]>; 408 409// Some r+i load/store instructions (such as LD, STD, LDU, etc.) that require 410// restricted memrix (4-aligned) constants are alignment sensitive. If these 411// offsets are hidden behind TOC entries than the values of the lower-order 412// bits cannot be checked directly. As a result, we need to also incorporate 413// an alignment check into the relevant patterns. 414 415def aligned4load : PatFrag<(ops node:$ptr), (load node:$ptr), [{ 416 return cast<LoadSDNode>(N)->getAlignment() >= 4; 417}]>; 418def aligned4store : PatFrag<(ops node:$val, node:$ptr), 419 (store node:$val, node:$ptr), [{ 420 return cast<StoreSDNode>(N)->getAlignment() >= 4; 421}]>; 422def aligned4sextloadi32 : PatFrag<(ops node:$ptr), (sextloadi32 node:$ptr), [{ 423 return cast<LoadSDNode>(N)->getAlignment() >= 4; 424}]>; 425def aligned4pre_store : PatFrag< 426 (ops node:$val, node:$base, node:$offset), 427 (pre_store node:$val, node:$base, node:$offset), [{ 428 return cast<StoreSDNode>(N)->getAlignment() >= 4; 429}]>; 430 431def unaligned4load : PatFrag<(ops node:$ptr), (load node:$ptr), [{ 432 return cast<LoadSDNode>(N)->getAlignment() < 4; 433}]>; 434def unaligned4store : PatFrag<(ops node:$val, node:$ptr), 435 (store node:$val, node:$ptr), [{ 436 return cast<StoreSDNode>(N)->getAlignment() < 4; 437}]>; 438def unaligned4sextloadi32 : PatFrag<(ops node:$ptr), (sextloadi32 node:$ptr), [{ 439 return cast<LoadSDNode>(N)->getAlignment() < 4; 440}]>; 441 442// This is a somewhat weaker condition than actually checking for 16-byte 443// alignment. It is simply checking that the displacement can be represented 444// as an immediate that is a multiple of 16 (i.e. the requirements for DQ-Form 445// instructions). 446def quadwOffsetLoad : PatFrag<(ops node:$ptr), (load node:$ptr), [{ 447 return isOffsetMultipleOf(N, 16); 448}]>; 449def quadwOffsetStore : PatFrag<(ops node:$val, node:$ptr), 450 (store node:$val, node:$ptr), [{ 451 return isOffsetMultipleOf(N, 16); 452}]>; 453def nonQuadwOffsetLoad : PatFrag<(ops node:$ptr), (load node:$ptr), [{ 454 return !isOffsetMultipleOf(N, 16); 455}]>; 456def nonQuadwOffsetStore : PatFrag<(ops node:$val, node:$ptr), 457 (store node:$val, node:$ptr), [{ 458 return !isOffsetMultipleOf(N, 16); 459}]>; 460 461//===----------------------------------------------------------------------===// 462// PowerPC Flag Definitions. 463 464class isPPC64 { bit PPC64 = 1; } 465class isDOT { bit RC = 1; } 466 467class RegConstraint<string C> { 468 string Constraints = C; 469} 470class NoEncode<string E> { 471 string DisableEncoding = E; 472} 473 474 475//===----------------------------------------------------------------------===// 476// PowerPC Operand Definitions. 477 478// In the default PowerPC assembler syntax, registers are specified simply 479// by number, so they cannot be distinguished from immediate values (without 480// looking at the opcode). This means that the default operand matching logic 481// for the asm parser does not work, and we need to specify custom matchers. 482// Since those can only be specified with RegisterOperand classes and not 483// directly on the RegisterClass, all instructions patterns used by the asm 484// parser need to use a RegisterOperand (instead of a RegisterClass) for 485// all their register operands. 486// For this purpose, we define one RegisterOperand for each RegisterClass, 487// using the same name as the class, just in lower case. 488 489def PPCRegGPRCAsmOperand : AsmOperandClass { 490 let Name = "RegGPRC"; let PredicateMethod = "isRegNumber"; 491} 492def gprc : RegisterOperand<GPRC> { 493 let ParserMatchClass = PPCRegGPRCAsmOperand; 494} 495def PPCRegG8RCAsmOperand : AsmOperandClass { 496 let Name = "RegG8RC"; let PredicateMethod = "isRegNumber"; 497} 498def g8rc : RegisterOperand<G8RC> { 499 let ParserMatchClass = PPCRegG8RCAsmOperand; 500} 501def PPCRegGPRCNoR0AsmOperand : AsmOperandClass { 502 let Name = "RegGPRCNoR0"; let PredicateMethod = "isRegNumber"; 503} 504def gprc_nor0 : RegisterOperand<GPRC_NOR0> { 505 let ParserMatchClass = PPCRegGPRCNoR0AsmOperand; 506} 507def PPCRegG8RCNoX0AsmOperand : AsmOperandClass { 508 let Name = "RegG8RCNoX0"; let PredicateMethod = "isRegNumber"; 509} 510def g8rc_nox0 : RegisterOperand<G8RC_NOX0> { 511 let ParserMatchClass = PPCRegG8RCNoX0AsmOperand; 512} 513def PPCRegF8RCAsmOperand : AsmOperandClass { 514 let Name = "RegF8RC"; let PredicateMethod = "isRegNumber"; 515} 516def f8rc : RegisterOperand<F8RC> { 517 let ParserMatchClass = PPCRegF8RCAsmOperand; 518} 519def PPCRegF4RCAsmOperand : AsmOperandClass { 520 let Name = "RegF4RC"; let PredicateMethod = "isRegNumber"; 521} 522def f4rc : RegisterOperand<F4RC> { 523 let ParserMatchClass = PPCRegF4RCAsmOperand; 524} 525def PPCRegVRRCAsmOperand : AsmOperandClass { 526 let Name = "RegVRRC"; let PredicateMethod = "isRegNumber"; 527} 528def vrrc : RegisterOperand<VRRC> { 529 let ParserMatchClass = PPCRegVRRCAsmOperand; 530} 531def PPCRegVFRCAsmOperand : AsmOperandClass { 532 let Name = "RegVFRC"; let PredicateMethod = "isRegNumber"; 533} 534def vfrc : RegisterOperand<VFRC> { 535 let ParserMatchClass = PPCRegVFRCAsmOperand; 536} 537def PPCRegCRBITRCAsmOperand : AsmOperandClass { 538 let Name = "RegCRBITRC"; let PredicateMethod = "isCRBitNumber"; 539} 540def crbitrc : RegisterOperand<CRBITRC> { 541 let ParserMatchClass = PPCRegCRBITRCAsmOperand; 542} 543def PPCRegCRRCAsmOperand : AsmOperandClass { 544 let Name = "RegCRRC"; let PredicateMethod = "isCCRegNumber"; 545} 546def crrc : RegisterOperand<CRRC> { 547 let ParserMatchClass = PPCRegCRRCAsmOperand; 548} 549def crrc0 : RegisterOperand<CRRC0> { 550 let ParserMatchClass = PPCRegCRRCAsmOperand; 551} 552 553def PPCRegSPERCAsmOperand : AsmOperandClass { 554 let Name = "RegSPERC"; let PredicateMethod = "isRegNumber"; 555} 556def sperc : RegisterOperand<SPERC> { 557 let ParserMatchClass = PPCRegSPERCAsmOperand; 558} 559def PPCRegSPE4RCAsmOperand : AsmOperandClass { 560 let Name = "RegSPE4RC"; let PredicateMethod = "isRegNumber"; 561} 562def spe4rc : RegisterOperand<SPE4RC> { 563 let ParserMatchClass = PPCRegSPE4RCAsmOperand; 564} 565 566def PPCU1ImmAsmOperand : AsmOperandClass { 567 let Name = "U1Imm"; let PredicateMethod = "isU1Imm"; 568 let RenderMethod = "addImmOperands"; 569} 570def u1imm : Operand<i32> { 571 let PrintMethod = "printU1ImmOperand"; 572 let ParserMatchClass = PPCU1ImmAsmOperand; 573} 574 575def PPCU2ImmAsmOperand : AsmOperandClass { 576 let Name = "U2Imm"; let PredicateMethod = "isU2Imm"; 577 let RenderMethod = "addImmOperands"; 578} 579def u2imm : Operand<i32> { 580 let PrintMethod = "printU2ImmOperand"; 581 let ParserMatchClass = PPCU2ImmAsmOperand; 582} 583 584def PPCATBitsAsHintAsmOperand : AsmOperandClass { 585 let Name = "ATBitsAsHint"; let PredicateMethod = "isATBitsAsHint"; 586 let RenderMethod = "addImmOperands"; // Irrelevant, predicate always fails. 587} 588def atimm : Operand<i32> { 589 let PrintMethod = "printATBitsAsHint"; 590 let ParserMatchClass = PPCATBitsAsHintAsmOperand; 591} 592 593def PPCU3ImmAsmOperand : AsmOperandClass { 594 let Name = "U3Imm"; let PredicateMethod = "isU3Imm"; 595 let RenderMethod = "addImmOperands"; 596} 597def u3imm : Operand<i32> { 598 let PrintMethod = "printU3ImmOperand"; 599 let ParserMatchClass = PPCU3ImmAsmOperand; 600} 601 602def PPCU4ImmAsmOperand : AsmOperandClass { 603 let Name = "U4Imm"; let PredicateMethod = "isU4Imm"; 604 let RenderMethod = "addImmOperands"; 605} 606def u4imm : Operand<i32> { 607 let PrintMethod = "printU4ImmOperand"; 608 let ParserMatchClass = PPCU4ImmAsmOperand; 609} 610def PPCS5ImmAsmOperand : AsmOperandClass { 611 let Name = "S5Imm"; let PredicateMethod = "isS5Imm"; 612 let RenderMethod = "addImmOperands"; 613} 614def s5imm : Operand<i32> { 615 let PrintMethod = "printS5ImmOperand"; 616 let ParserMatchClass = PPCS5ImmAsmOperand; 617 let DecoderMethod = "decodeSImmOperand<5>"; 618} 619def PPCU5ImmAsmOperand : AsmOperandClass { 620 let Name = "U5Imm"; let PredicateMethod = "isU5Imm"; 621 let RenderMethod = "addImmOperands"; 622} 623def u5imm : Operand<i32> { 624 let PrintMethod = "printU5ImmOperand"; 625 let ParserMatchClass = PPCU5ImmAsmOperand; 626 let DecoderMethod = "decodeUImmOperand<5>"; 627} 628def PPCU6ImmAsmOperand : AsmOperandClass { 629 let Name = "U6Imm"; let PredicateMethod = "isU6Imm"; 630 let RenderMethod = "addImmOperands"; 631} 632def u6imm : Operand<i32> { 633 let PrintMethod = "printU6ImmOperand"; 634 let ParserMatchClass = PPCU6ImmAsmOperand; 635 let DecoderMethod = "decodeUImmOperand<6>"; 636} 637def PPCU7ImmAsmOperand : AsmOperandClass { 638 let Name = "U7Imm"; let PredicateMethod = "isU7Imm"; 639 let RenderMethod = "addImmOperands"; 640} 641def u7imm : Operand<i32> { 642 let PrintMethod = "printU7ImmOperand"; 643 let ParserMatchClass = PPCU7ImmAsmOperand; 644 let DecoderMethod = "decodeUImmOperand<7>"; 645} 646def PPCU8ImmAsmOperand : AsmOperandClass { 647 let Name = "U8Imm"; let PredicateMethod = "isU8Imm"; 648 let RenderMethod = "addImmOperands"; 649} 650def u8imm : Operand<i32> { 651 let PrintMethod = "printU8ImmOperand"; 652 let ParserMatchClass = PPCU8ImmAsmOperand; 653 let DecoderMethod = "decodeUImmOperand<8>"; 654} 655def PPCU10ImmAsmOperand : AsmOperandClass { 656 let Name = "U10Imm"; let PredicateMethod = "isU10Imm"; 657 let RenderMethod = "addImmOperands"; 658} 659def u10imm : Operand<i32> { 660 let PrintMethod = "printU10ImmOperand"; 661 let ParserMatchClass = PPCU10ImmAsmOperand; 662 let DecoderMethod = "decodeUImmOperand<10>"; 663} 664def PPCU12ImmAsmOperand : AsmOperandClass { 665 let Name = "U12Imm"; let PredicateMethod = "isU12Imm"; 666 let RenderMethod = "addImmOperands"; 667} 668def u12imm : Operand<i32> { 669 let PrintMethod = "printU12ImmOperand"; 670 let ParserMatchClass = PPCU12ImmAsmOperand; 671 let DecoderMethod = "decodeUImmOperand<12>"; 672} 673def PPCS16ImmAsmOperand : AsmOperandClass { 674 let Name = "S16Imm"; let PredicateMethod = "isS16Imm"; 675 let RenderMethod = "addS16ImmOperands"; 676} 677def s16imm : Operand<i32> { 678 let PrintMethod = "printS16ImmOperand"; 679 let EncoderMethod = "getImm16Encoding"; 680 let ParserMatchClass = PPCS16ImmAsmOperand; 681 let DecoderMethod = "decodeSImmOperand<16>"; 682} 683def PPCU16ImmAsmOperand : AsmOperandClass { 684 let Name = "U16Imm"; let PredicateMethod = "isU16Imm"; 685 let RenderMethod = "addU16ImmOperands"; 686} 687def u16imm : Operand<i32> { 688 let PrintMethod = "printU16ImmOperand"; 689 let EncoderMethod = "getImm16Encoding"; 690 let ParserMatchClass = PPCU16ImmAsmOperand; 691 let DecoderMethod = "decodeUImmOperand<16>"; 692} 693def PPCS17ImmAsmOperand : AsmOperandClass { 694 let Name = "S17Imm"; let PredicateMethod = "isS17Imm"; 695 let RenderMethod = "addS16ImmOperands"; 696} 697def s17imm : Operand<i32> { 698 // This operand type is used for addis/lis to allow the assembler parser 699 // to accept immediates in the range -65536..65535 for compatibility with 700 // the GNU assembler. The operand is treated as 16-bit otherwise. 701 let PrintMethod = "printS16ImmOperand"; 702 let EncoderMethod = "getImm16Encoding"; 703 let ParserMatchClass = PPCS17ImmAsmOperand; 704 let DecoderMethod = "decodeSImmOperand<16>"; 705} 706 707def fpimm0 : PatLeaf<(fpimm), [{ return N->isExactlyValue(+0.0); }]>; 708 709def PPCDirectBrAsmOperand : AsmOperandClass { 710 let Name = "DirectBr"; let PredicateMethod = "isDirectBr"; 711 let RenderMethod = "addBranchTargetOperands"; 712} 713def directbrtarget : Operand<OtherVT> { 714 let PrintMethod = "printBranchOperand"; 715 let EncoderMethod = "getDirectBrEncoding"; 716 let ParserMatchClass = PPCDirectBrAsmOperand; 717} 718def absdirectbrtarget : Operand<OtherVT> { 719 let PrintMethod = "printAbsBranchOperand"; 720 let EncoderMethod = "getAbsDirectBrEncoding"; 721 let ParserMatchClass = PPCDirectBrAsmOperand; 722} 723def PPCCondBrAsmOperand : AsmOperandClass { 724 let Name = "CondBr"; let PredicateMethod = "isCondBr"; 725 let RenderMethod = "addBranchTargetOperands"; 726} 727def condbrtarget : Operand<OtherVT> { 728 let PrintMethod = "printBranchOperand"; 729 let EncoderMethod = "getCondBrEncoding"; 730 let ParserMatchClass = PPCCondBrAsmOperand; 731} 732def abscondbrtarget : Operand<OtherVT> { 733 let PrintMethod = "printAbsBranchOperand"; 734 let EncoderMethod = "getAbsCondBrEncoding"; 735 let ParserMatchClass = PPCCondBrAsmOperand; 736} 737def calltarget : Operand<iPTR> { 738 let PrintMethod = "printBranchOperand"; 739 let EncoderMethod = "getDirectBrEncoding"; 740 let ParserMatchClass = PPCDirectBrAsmOperand; 741} 742def abscalltarget : Operand<iPTR> { 743 let PrintMethod = "printAbsBranchOperand"; 744 let EncoderMethod = "getAbsDirectBrEncoding"; 745 let ParserMatchClass = PPCDirectBrAsmOperand; 746} 747def PPCCRBitMaskOperand : AsmOperandClass { 748 let Name = "CRBitMask"; let PredicateMethod = "isCRBitMask"; 749} 750def crbitm: Operand<i8> { 751 let PrintMethod = "printcrbitm"; 752 let EncoderMethod = "get_crbitm_encoding"; 753 let DecoderMethod = "decodeCRBitMOperand"; 754 let ParserMatchClass = PPCCRBitMaskOperand; 755} 756// Address operands 757// A version of ptr_rc which excludes R0 (or X0 in 64-bit mode). 758def PPCRegGxRCNoR0Operand : AsmOperandClass { 759 let Name = "RegGxRCNoR0"; let PredicateMethod = "isRegNumber"; 760} 761def ptr_rc_nor0 : Operand<iPTR>, PointerLikeRegClass<1> { 762 let ParserMatchClass = PPCRegGxRCNoR0Operand; 763} 764// A version of ptr_rc usable with the asm parser. 765def PPCRegGxRCOperand : AsmOperandClass { 766 let Name = "RegGxRC"; let PredicateMethod = "isRegNumber"; 767} 768def ptr_rc_idx : Operand<iPTR>, PointerLikeRegClass<0> { 769 let ParserMatchClass = PPCRegGxRCOperand; 770} 771 772def PPCDispRIOperand : AsmOperandClass { 773 let Name = "DispRI"; let PredicateMethod = "isS16Imm"; 774 let RenderMethod = "addS16ImmOperands"; 775} 776def dispRI : Operand<iPTR> { 777 let ParserMatchClass = PPCDispRIOperand; 778} 779def PPCDispRIXOperand : AsmOperandClass { 780 let Name = "DispRIX"; let PredicateMethod = "isS16ImmX4"; 781 let RenderMethod = "addImmOperands"; 782} 783def dispRIX : Operand<iPTR> { 784 let ParserMatchClass = PPCDispRIXOperand; 785} 786def PPCDispRIX16Operand : AsmOperandClass { 787 let Name = "DispRIX16"; let PredicateMethod = "isS16ImmX16"; 788 let RenderMethod = "addImmOperands"; 789} 790def dispRIX16 : Operand<iPTR> { 791 let ParserMatchClass = PPCDispRIX16Operand; 792} 793def PPCDispSPE8Operand : AsmOperandClass { 794 let Name = "DispSPE8"; let PredicateMethod = "isU8ImmX8"; 795 let RenderMethod = "addImmOperands"; 796} 797def dispSPE8 : Operand<iPTR> { 798 let ParserMatchClass = PPCDispSPE8Operand; 799} 800def PPCDispSPE4Operand : AsmOperandClass { 801 let Name = "DispSPE4"; let PredicateMethod = "isU7ImmX4"; 802 let RenderMethod = "addImmOperands"; 803} 804def dispSPE4 : Operand<iPTR> { 805 let ParserMatchClass = PPCDispSPE4Operand; 806} 807def PPCDispSPE2Operand : AsmOperandClass { 808 let Name = "DispSPE2"; let PredicateMethod = "isU6ImmX2"; 809 let RenderMethod = "addImmOperands"; 810} 811def dispSPE2 : Operand<iPTR> { 812 let ParserMatchClass = PPCDispSPE2Operand; 813} 814 815def memri : Operand<iPTR> { 816 let PrintMethod = "printMemRegImm"; 817 let MIOperandInfo = (ops dispRI:$imm, ptr_rc_nor0:$reg); 818 let EncoderMethod = "getMemRIEncoding"; 819 let DecoderMethod = "decodeMemRIOperands"; 820} 821def memrr : Operand<iPTR> { 822 let PrintMethod = "printMemRegReg"; 823 let MIOperandInfo = (ops ptr_rc_nor0:$ptrreg, ptr_rc_idx:$offreg); 824} 825def memrix : Operand<iPTR> { // memri where the imm is 4-aligned. 826 let PrintMethod = "printMemRegImm"; 827 let MIOperandInfo = (ops dispRIX:$imm, ptr_rc_nor0:$reg); 828 let EncoderMethod = "getMemRIXEncoding"; 829 let DecoderMethod = "decodeMemRIXOperands"; 830} 831def memrix16 : Operand<iPTR> { // memri, imm is 16-aligned, 12-bit, Inst{16:27} 832 let PrintMethod = "printMemRegImm"; 833 let MIOperandInfo = (ops dispRIX16:$imm, ptr_rc_nor0:$reg); 834 let EncoderMethod = "getMemRIX16Encoding"; 835 let DecoderMethod = "decodeMemRIX16Operands"; 836} 837def spe8dis : Operand<iPTR> { // SPE displacement where the imm is 8-aligned. 838 let PrintMethod = "printMemRegImm"; 839 let MIOperandInfo = (ops dispSPE8:$imm, ptr_rc_nor0:$reg); 840 let EncoderMethod = "getSPE8DisEncoding"; 841 let DecoderMethod = "decodeSPE8Operands"; 842} 843def spe4dis : Operand<iPTR> { // SPE displacement where the imm is 4-aligned. 844 let PrintMethod = "printMemRegImm"; 845 let MIOperandInfo = (ops dispSPE4:$imm, ptr_rc_nor0:$reg); 846 let EncoderMethod = "getSPE4DisEncoding"; 847 let DecoderMethod = "decodeSPE4Operands"; 848} 849def spe2dis : Operand<iPTR> { // SPE displacement where the imm is 2-aligned. 850 let PrintMethod = "printMemRegImm"; 851 let MIOperandInfo = (ops dispSPE2:$imm, ptr_rc_nor0:$reg); 852 let EncoderMethod = "getSPE2DisEncoding"; 853 let DecoderMethod = "decodeSPE2Operands"; 854} 855 856// A single-register address. This is used with the SjLj 857// pseudo-instructions which tranlates to LD/LWZ. These instructions requires 858// G8RC_NOX0 registers. 859def memr : Operand<iPTR> { 860 let MIOperandInfo = (ops ptr_rc_nor0:$ptrreg); 861} 862def PPCTLSRegOperand : AsmOperandClass { 863 let Name = "TLSReg"; let PredicateMethod = "isTLSReg"; 864 let RenderMethod = "addTLSRegOperands"; 865} 866def tlsreg32 : Operand<i32> { 867 let EncoderMethod = "getTLSRegEncoding"; 868 let ParserMatchClass = PPCTLSRegOperand; 869} 870def tlsgd32 : Operand<i32> {} 871def tlscall32 : Operand<i32> { 872 let PrintMethod = "printTLSCall"; 873 let MIOperandInfo = (ops calltarget:$func, tlsgd32:$sym); 874 let EncoderMethod = "getTLSCallEncoding"; 875} 876 877// PowerPC Predicate operand. 878def pred : Operand<OtherVT> { 879 let PrintMethod = "printPredicateOperand"; 880 let MIOperandInfo = (ops i32imm:$bibo, crrc:$reg); 881} 882 883// Define PowerPC specific addressing mode. 884def iaddr : ComplexPattern<iPTR, 2, "SelectAddrImm", [], []>; 885def xaddr : ComplexPattern<iPTR, 2, "SelectAddrIdx", [], []>; 886def xoaddr : ComplexPattern<iPTR, 2, "SelectAddrIdxOnly",[], []>; 887def ixaddr : ComplexPattern<iPTR, 2, "SelectAddrImmX4", [], []>; // "std" 888def iqaddr : ComplexPattern<iPTR, 2, "SelectAddrImmX16", [], []>; // "stxv" 889 890// The address in a single register. This is used with the SjLj 891// pseudo-instructions. 892def addr : ComplexPattern<iPTR, 1, "SelectAddr",[], []>; 893 894/// This is just the offset part of iaddr, used for preinc. 895def iaddroff : ComplexPattern<iPTR, 1, "SelectAddrImmOffs", [], []>; 896 897//===----------------------------------------------------------------------===// 898// PowerPC Instruction Predicate Definitions. 899def In32BitMode : Predicate<"!PPCSubTarget->isPPC64()">; 900def In64BitMode : Predicate<"PPCSubTarget->isPPC64()">; 901def IsBookE : Predicate<"PPCSubTarget->isBookE()">; 902def IsNotBookE : Predicate<"!PPCSubTarget->isBookE()">; 903def HasOnlyMSYNC : Predicate<"PPCSubTarget->hasOnlyMSYNC()">; 904def HasSYNC : Predicate<"!PPCSubTarget->hasOnlyMSYNC()">; 905def IsPPC4xx : Predicate<"PPCSubTarget->isPPC4xx()">; 906def IsPPC6xx : Predicate<"PPCSubTarget->isPPC6xx()">; 907def IsE500 : Predicate<"PPCSubTarget->isE500()">; 908def HasSPE : Predicate<"PPCSubTarget->hasSPE()">; 909def HasICBT : Predicate<"PPCSubTarget->hasICBT()">; 910def HasPartwordAtomics : Predicate<"PPCSubTarget->hasPartwordAtomics()">; 911def NoNaNsFPMath : Predicate<"TM.Options.NoNaNsFPMath">; 912def NaNsFPMath : Predicate<"!TM.Options.NoNaNsFPMath">; 913def HasBPERMD : Predicate<"PPCSubTarget->hasBPERMD()">; 914def HasExtDiv : Predicate<"PPCSubTarget->hasExtDiv()">; 915def IsISA3_0 : Predicate<"PPCSubTarget->isISA3_0()">; 916def HasFPU : Predicate<"PPCSubTarget->hasFPU()">; 917 918//===----------------------------------------------------------------------===// 919// PowerPC Multiclass Definitions. 920 921multiclass XForm_6r<bits<6> opcode, bits<10> xo, dag OOL, dag IOL, 922 string asmbase, string asmstr, InstrItinClass itin, 923 list<dag> pattern> { 924 let BaseName = asmbase in { 925 def NAME : XForm_6<opcode, xo, OOL, IOL, 926 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 927 pattern>, RecFormRel; 928 let Defs = [CR0] in 929 def o : XForm_6<opcode, xo, OOL, IOL, 930 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 931 []>, isDOT, RecFormRel; 932 } 933} 934 935multiclass XForm_6rc<bits<6> opcode, bits<10> xo, dag OOL, dag IOL, 936 string asmbase, string asmstr, InstrItinClass itin, 937 list<dag> pattern> { 938 let BaseName = asmbase in { 939 let Defs = [CARRY] in 940 def NAME : XForm_6<opcode, xo, OOL, IOL, 941 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 942 pattern>, RecFormRel; 943 let Defs = [CARRY, CR0] in 944 def o : XForm_6<opcode, xo, OOL, IOL, 945 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 946 []>, isDOT, RecFormRel; 947 } 948} 949 950multiclass XForm_10rc<bits<6> opcode, bits<10> xo, dag OOL, dag IOL, 951 string asmbase, string asmstr, InstrItinClass itin, 952 list<dag> pattern> { 953 let BaseName = asmbase in { 954 let Defs = [CARRY] in 955 def NAME : XForm_10<opcode, xo, OOL, IOL, 956 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 957 pattern>, RecFormRel; 958 let Defs = [CARRY, CR0] in 959 def o : XForm_10<opcode, xo, OOL, IOL, 960 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 961 []>, isDOT, RecFormRel; 962 } 963} 964 965multiclass XForm_11r<bits<6> opcode, bits<10> xo, dag OOL, dag IOL, 966 string asmbase, string asmstr, InstrItinClass itin, 967 list<dag> pattern> { 968 let BaseName = asmbase in { 969 def NAME : XForm_11<opcode, xo, OOL, IOL, 970 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 971 pattern>, RecFormRel; 972 let Defs = [CR0] in 973 def o : XForm_11<opcode, xo, OOL, IOL, 974 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 975 []>, isDOT, RecFormRel; 976 } 977} 978 979multiclass XOForm_1r<bits<6> opcode, bits<9> xo, bit oe, dag OOL, dag IOL, 980 string asmbase, string asmstr, InstrItinClass itin, 981 list<dag> pattern> { 982 let BaseName = asmbase in { 983 def NAME : XOForm_1<opcode, xo, oe, OOL, IOL, 984 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 985 pattern>, RecFormRel; 986 let Defs = [CR0] in 987 def o : XOForm_1<opcode, xo, oe, OOL, IOL, 988 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 989 []>, isDOT, RecFormRel; 990 } 991} 992 993// Multiclass for instructions for which the non record form is not cracked 994// and the record form is cracked (i.e. divw, mullw, etc.) 995multiclass XOForm_1rcr<bits<6> opcode, bits<9> xo, bit oe, dag OOL, dag IOL, 996 string asmbase, string asmstr, InstrItinClass itin, 997 list<dag> pattern> { 998 let BaseName = asmbase in { 999 def NAME : XOForm_1<opcode, xo, oe, OOL, IOL, 1000 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 1001 pattern>, RecFormRel; 1002 let Defs = [CR0] in 1003 def o : XOForm_1<opcode, xo, oe, OOL, IOL, 1004 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 1005 []>, isDOT, RecFormRel, PPC970_DGroup_First, 1006 PPC970_DGroup_Cracked; 1007 } 1008} 1009 1010multiclass XOForm_1rc<bits<6> opcode, bits<9> xo, bit oe, dag OOL, dag IOL, 1011 string asmbase, string asmstr, InstrItinClass itin, 1012 list<dag> pattern> { 1013 let BaseName = asmbase in { 1014 let Defs = [CARRY] in 1015 def NAME : XOForm_1<opcode, xo, oe, OOL, IOL, 1016 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 1017 pattern>, RecFormRel; 1018 let Defs = [CARRY, CR0] in 1019 def o : XOForm_1<opcode, xo, oe, OOL, IOL, 1020 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 1021 []>, isDOT, RecFormRel; 1022 } 1023} 1024 1025multiclass XOForm_3r<bits<6> opcode, bits<9> xo, bit oe, dag OOL, dag IOL, 1026 string asmbase, string asmstr, InstrItinClass itin, 1027 list<dag> pattern> { 1028 let BaseName = asmbase in { 1029 def NAME : XOForm_3<opcode, xo, oe, OOL, IOL, 1030 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 1031 pattern>, RecFormRel; 1032 let Defs = [CR0] in 1033 def o : XOForm_3<opcode, xo, oe, OOL, IOL, 1034 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 1035 []>, isDOT, RecFormRel; 1036 } 1037} 1038 1039multiclass XOForm_3rc<bits<6> opcode, bits<9> xo, bit oe, dag OOL, dag IOL, 1040 string asmbase, string asmstr, InstrItinClass itin, 1041 list<dag> pattern> { 1042 let BaseName = asmbase in { 1043 let Defs = [CARRY] in 1044 def NAME : XOForm_3<opcode, xo, oe, OOL, IOL, 1045 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 1046 pattern>, RecFormRel; 1047 let Defs = [CARRY, CR0] in 1048 def o : XOForm_3<opcode, xo, oe, OOL, IOL, 1049 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 1050 []>, isDOT, RecFormRel; 1051 } 1052} 1053 1054multiclass MForm_2r<bits<6> opcode, dag OOL, dag IOL, 1055 string asmbase, string asmstr, InstrItinClass itin, 1056 list<dag> pattern> { 1057 let BaseName = asmbase in { 1058 def NAME : MForm_2<opcode, OOL, IOL, 1059 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 1060 pattern>, RecFormRel; 1061 let Defs = [CR0] in 1062 def o : MForm_2<opcode, OOL, IOL, 1063 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 1064 []>, isDOT, RecFormRel; 1065 } 1066} 1067 1068multiclass MDForm_1r<bits<6> opcode, bits<3> xo, dag OOL, dag IOL, 1069 string asmbase, string asmstr, InstrItinClass itin, 1070 list<dag> pattern> { 1071 let BaseName = asmbase in { 1072 def NAME : MDForm_1<opcode, xo, OOL, IOL, 1073 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 1074 pattern>, RecFormRel; 1075 let Defs = [CR0] in 1076 def o : MDForm_1<opcode, xo, OOL, IOL, 1077 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 1078 []>, isDOT, RecFormRel; 1079 } 1080} 1081 1082multiclass MDSForm_1r<bits<6> opcode, bits<4> xo, dag OOL, dag IOL, 1083 string asmbase, string asmstr, InstrItinClass itin, 1084 list<dag> pattern> { 1085 let BaseName = asmbase in { 1086 def NAME : MDSForm_1<opcode, xo, OOL, IOL, 1087 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 1088 pattern>, RecFormRel; 1089 let Defs = [CR0] in 1090 def o : MDSForm_1<opcode, xo, OOL, IOL, 1091 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 1092 []>, isDOT, RecFormRel; 1093 } 1094} 1095 1096multiclass XSForm_1rc<bits<6> opcode, bits<9> xo, dag OOL, dag IOL, 1097 string asmbase, string asmstr, InstrItinClass itin, 1098 list<dag> pattern> { 1099 let BaseName = asmbase in { 1100 let Defs = [CARRY] in 1101 def NAME : XSForm_1<opcode, xo, OOL, IOL, 1102 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 1103 pattern>, RecFormRel; 1104 let Defs = [CARRY, CR0] in 1105 def o : XSForm_1<opcode, xo, OOL, IOL, 1106 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 1107 []>, isDOT, RecFormRel; 1108 } 1109} 1110 1111multiclass XSForm_1r<bits<6> opcode, bits<9> xo, dag OOL, dag IOL, 1112 string asmbase, string asmstr, InstrItinClass itin, 1113 list<dag> pattern> { 1114 let BaseName = asmbase in { 1115 def NAME : XSForm_1<opcode, xo, OOL, IOL, 1116 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 1117 pattern>, RecFormRel; 1118 let Defs = [CR0] in 1119 def o : XSForm_1<opcode, xo, OOL, IOL, 1120 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 1121 []>, isDOT, RecFormRel; 1122 } 1123} 1124 1125multiclass XForm_26r<bits<6> opcode, bits<10> xo, dag OOL, dag IOL, 1126 string asmbase, string asmstr, InstrItinClass itin, 1127 list<dag> pattern> { 1128 let BaseName = asmbase in { 1129 def NAME : XForm_26<opcode, xo, OOL, IOL, 1130 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 1131 pattern>, RecFormRel; 1132 let Defs = [CR1] in 1133 def o : XForm_26<opcode, xo, OOL, IOL, 1134 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 1135 []>, isDOT, RecFormRel; 1136 } 1137} 1138 1139multiclass XForm_28r<bits<6> opcode, bits<10> xo, dag OOL, dag IOL, 1140 string asmbase, string asmstr, InstrItinClass itin, 1141 list<dag> pattern> { 1142 let BaseName = asmbase in { 1143 def NAME : XForm_28<opcode, xo, OOL, IOL, 1144 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 1145 pattern>, RecFormRel; 1146 let Defs = [CR1] in 1147 def o : XForm_28<opcode, xo, OOL, IOL, 1148 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 1149 []>, isDOT, RecFormRel; 1150 } 1151} 1152 1153multiclass AForm_1r<bits<6> opcode, bits<5> xo, dag OOL, dag IOL, 1154 string asmbase, string asmstr, InstrItinClass itin, 1155 list<dag> pattern> { 1156 let BaseName = asmbase in { 1157 def NAME : AForm_1<opcode, xo, OOL, IOL, 1158 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 1159 pattern>, RecFormRel; 1160 let Defs = [CR1] in 1161 def o : AForm_1<opcode, xo, OOL, IOL, 1162 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 1163 []>, isDOT, RecFormRel; 1164 } 1165} 1166 1167multiclass AForm_2r<bits<6> opcode, bits<5> xo, dag OOL, dag IOL, 1168 string asmbase, string asmstr, InstrItinClass itin, 1169 list<dag> pattern> { 1170 let BaseName = asmbase in { 1171 def NAME : AForm_2<opcode, xo, OOL, IOL, 1172 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 1173 pattern>, RecFormRel; 1174 let Defs = [CR1] in 1175 def o : AForm_2<opcode, xo, OOL, IOL, 1176 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 1177 []>, isDOT, RecFormRel; 1178 } 1179} 1180 1181multiclass AForm_3r<bits<6> opcode, bits<5> xo, dag OOL, dag IOL, 1182 string asmbase, string asmstr, InstrItinClass itin, 1183 list<dag> pattern> { 1184 let BaseName = asmbase in { 1185 def NAME : AForm_3<opcode, xo, OOL, IOL, 1186 !strconcat(asmbase, !strconcat(" ", asmstr)), itin, 1187 pattern>, RecFormRel; 1188 let Defs = [CR1] in 1189 def o : AForm_3<opcode, xo, OOL, IOL, 1190 !strconcat(asmbase, !strconcat(". ", asmstr)), itin, 1191 []>, isDOT, RecFormRel; 1192 } 1193} 1194 1195//===----------------------------------------------------------------------===// 1196// PowerPC Instruction Definitions. 1197 1198// Pseudo-instructions: 1199 1200let hasCtrlDep = 1 in { 1201let Defs = [R1], Uses = [R1] in { 1202def ADJCALLSTACKDOWN : Pseudo<(outs), (ins u16imm:$amt1, u16imm:$amt2), 1203 "#ADJCALLSTACKDOWN $amt1 $amt2", 1204 [(callseq_start timm:$amt1, timm:$amt2)]>; 1205def ADJCALLSTACKUP : Pseudo<(outs), (ins u16imm:$amt1, u16imm:$amt2), 1206 "#ADJCALLSTACKUP $amt1 $amt2", 1207 [(callseq_end timm:$amt1, timm:$amt2)]>; 1208} 1209 1210def UPDATE_VRSAVE : Pseudo<(outs gprc:$rD), (ins gprc:$rS), 1211 "UPDATE_VRSAVE $rD, $rS", []>; 1212} 1213 1214let Defs = [R1], Uses = [R1] in 1215def DYNALLOC : Pseudo<(outs gprc:$result), (ins gprc:$negsize, memri:$fpsi), "#DYNALLOC", 1216 [(set i32:$result, 1217 (PPCdynalloc i32:$negsize, iaddr:$fpsi))]>; 1218def DYNAREAOFFSET : Pseudo<(outs i32imm:$result), (ins memri:$fpsi), "#DYNAREAOFFSET", 1219 [(set i32:$result, (PPCdynareaoffset iaddr:$fpsi))]>; 1220 1221// SELECT_CC_* - Used to implement the SELECT_CC DAG operation. Expanded after 1222// instruction selection into a branch sequence. 1223let usesCustomInserter = 1, // Expanded after instruction selection. 1224 PPC970_Single = 1 in { 1225 // Note that SELECT_CC_I4 and SELECT_CC_I8 use the no-r0 register classes 1226 // because either operand might become the first operand in an isel, and 1227 // that operand cannot be r0. 1228 def SELECT_CC_I4 : Pseudo<(outs gprc:$dst), (ins crrc:$cond, 1229 gprc_nor0:$T, gprc_nor0:$F, 1230 i32imm:$BROPC), "#SELECT_CC_I4", 1231 []>; 1232 def SELECT_CC_I8 : Pseudo<(outs g8rc:$dst), (ins crrc:$cond, 1233 g8rc_nox0:$T, g8rc_nox0:$F, 1234 i32imm:$BROPC), "#SELECT_CC_I8", 1235 []>; 1236 def SELECT_CC_F4 : Pseudo<(outs f4rc:$dst), (ins crrc:$cond, f4rc:$T, f4rc:$F, 1237 i32imm:$BROPC), "#SELECT_CC_F4", 1238 []>; 1239 def SELECT_CC_F8 : Pseudo<(outs f8rc:$dst), (ins crrc:$cond, f8rc:$T, f8rc:$F, 1240 i32imm:$BROPC), "#SELECT_CC_F8", 1241 []>; 1242 def SELECT_CC_F16 : Pseudo<(outs vrrc:$dst), (ins crrc:$cond, vrrc:$T, vrrc:$F, 1243 i32imm:$BROPC), "#SELECT_CC_F16", 1244 []>; 1245 def SELECT_CC_VRRC: Pseudo<(outs vrrc:$dst), (ins crrc:$cond, vrrc:$T, vrrc:$F, 1246 i32imm:$BROPC), "#SELECT_CC_VRRC", 1247 []>; 1248 1249 // SELECT_* pseudo instructions, like SELECT_CC_* but taking condition 1250 // register bit directly. 1251 def SELECT_I4 : Pseudo<(outs gprc:$dst), (ins crbitrc:$cond, 1252 gprc_nor0:$T, gprc_nor0:$F), "#SELECT_I4", 1253 [(set i32:$dst, (select i1:$cond, i32:$T, i32:$F))]>; 1254 def SELECT_I8 : Pseudo<(outs g8rc:$dst), (ins crbitrc:$cond, 1255 g8rc_nox0:$T, g8rc_nox0:$F), "#SELECT_I8", 1256 [(set i64:$dst, (select i1:$cond, i64:$T, i64:$F))]>; 1257let Predicates = [HasFPU] in { 1258 def SELECT_F4 : Pseudo<(outs f4rc:$dst), (ins crbitrc:$cond, 1259 f4rc:$T, f4rc:$F), "#SELECT_F4", 1260 [(set f32:$dst, (select i1:$cond, f32:$T, f32:$F))]>; 1261 def SELECT_F8 : Pseudo<(outs f8rc:$dst), (ins crbitrc:$cond, 1262 f8rc:$T, f8rc:$F), "#SELECT_F8", 1263 [(set f64:$dst, (select i1:$cond, f64:$T, f64:$F))]>; 1264 def SELECT_F16 : Pseudo<(outs vrrc:$dst), (ins crbitrc:$cond, 1265 vrrc:$T, vrrc:$F), "#SELECT_F16", 1266 [(set f128:$dst, (select i1:$cond, f128:$T, f128:$F))]>; 1267} 1268 def SELECT_VRRC: Pseudo<(outs vrrc:$dst), (ins crbitrc:$cond, 1269 vrrc:$T, vrrc:$F), "#SELECT_VRRC", 1270 [(set v4i32:$dst, 1271 (select i1:$cond, v4i32:$T, v4i32:$F))]>; 1272} 1273 1274// SPILL_CR - Indicate that we're dumping the CR register, so we'll need to 1275// scavenge a register for it. 1276let mayStore = 1 in { 1277def SPILL_CR : Pseudo<(outs), (ins crrc:$cond, memri:$F), 1278 "#SPILL_CR", []>; 1279def SPILL_CRBIT : Pseudo<(outs), (ins crbitrc:$cond, memri:$F), 1280 "#SPILL_CRBIT", []>; 1281} 1282 1283// RESTORE_CR - Indicate that we're restoring the CR register (previously 1284// spilled), so we'll need to scavenge a register for it. 1285let mayLoad = 1 in { 1286def RESTORE_CR : Pseudo<(outs crrc:$cond), (ins memri:$F), 1287 "#RESTORE_CR", []>; 1288def RESTORE_CRBIT : Pseudo<(outs crbitrc:$cond), (ins memri:$F), 1289 "#RESTORE_CRBIT", []>; 1290} 1291 1292let isTerminator = 1, isBarrier = 1, PPC970_Unit = 7 in { 1293 let isReturn = 1, Uses = [LR, RM] in 1294 def BLR : XLForm_2_ext<19, 16, 20, 0, 0, (outs), (ins), "blr", IIC_BrB, 1295 [(retflag)]>, Requires<[In32BitMode]>; 1296 let isBranch = 1, isIndirectBranch = 1, Uses = [CTR] in { 1297 def BCTR : XLForm_2_ext<19, 528, 20, 0, 0, (outs), (ins), "bctr", IIC_BrB, 1298 []>; 1299 1300 let isCodeGenOnly = 1 in { 1301 def BCCCTR : XLForm_2_br<19, 528, 0, (outs), (ins pred:$cond), 1302 "b${cond:cc}ctr${cond:pm} ${cond:reg}", IIC_BrB, 1303 []>; 1304 1305 def BCCTR : XLForm_2_br2<19, 528, 12, 0, (outs), (ins crbitrc:$bi), 1306 "bcctr 12, $bi, 0", IIC_BrB, []>; 1307 def BCCTRn : XLForm_2_br2<19, 528, 4, 0, (outs), (ins crbitrc:$bi), 1308 "bcctr 4, $bi, 0", IIC_BrB, []>; 1309 } 1310 } 1311} 1312 1313let Defs = [LR] in 1314 def MovePCtoLR : Pseudo<(outs), (ins), "#MovePCtoLR", []>, 1315 PPC970_Unit_BRU; 1316let Defs = [LR] in 1317 def MoveGOTtoLR : Pseudo<(outs), (ins), "#MoveGOTtoLR", []>, 1318 PPC970_Unit_BRU; 1319 1320let isBranch = 1, isTerminator = 1, hasCtrlDep = 1, PPC970_Unit = 7 in { 1321 let isBarrier = 1 in { 1322 def B : IForm<18, 0, 0, (outs), (ins directbrtarget:$dst), 1323 "b $dst", IIC_BrB, 1324 [(br bb:$dst)]>; 1325 def BA : IForm<18, 1, 0, (outs), (ins absdirectbrtarget:$dst), 1326 "ba $dst", IIC_BrB, []>; 1327 } 1328 1329 // BCC represents an arbitrary conditional branch on a predicate. 1330 // FIXME: should be able to write a pattern for PPCcondbranch, but can't use 1331 // a two-value operand where a dag node expects two operands. :( 1332 let isCodeGenOnly = 1 in { 1333 class BCC_class : BForm<16, 0, 0, (outs), (ins pred:$cond, condbrtarget:$dst), 1334 "b${cond:cc}${cond:pm} ${cond:reg}, $dst" 1335 /*[(PPCcondbranch crrc:$crS, imm:$opc, bb:$dst)]*/>; 1336 def BCC : BCC_class; 1337 1338 // The same as BCC, except that it's not a terminator. Used for introducing 1339 // control flow dependency without creating new blocks. 1340 let isTerminator = 0 in def CTRL_DEP : BCC_class; 1341 1342 def BCCA : BForm<16, 1, 0, (outs), (ins pred:$cond, abscondbrtarget:$dst), 1343 "b${cond:cc}a${cond:pm} ${cond:reg}, $dst">; 1344 1345 let isReturn = 1, Uses = [LR, RM] in 1346 def BCCLR : XLForm_2_br<19, 16, 0, (outs), (ins pred:$cond), 1347 "b${cond:cc}lr${cond:pm} ${cond:reg}", IIC_BrB, []>; 1348 } 1349 1350 let isCodeGenOnly = 1 in { 1351 let Pattern = [(brcond i1:$bi, bb:$dst)] in 1352 def BC : BForm_4<16, 12, 0, 0, (outs), (ins crbitrc:$bi, condbrtarget:$dst), 1353 "bc 12, $bi, $dst">; 1354 1355 let Pattern = [(brcond (not i1:$bi), bb:$dst)] in 1356 def BCn : BForm_4<16, 4, 0, 0, (outs), (ins crbitrc:$bi, condbrtarget:$dst), 1357 "bc 4, $bi, $dst">; 1358 1359 let isReturn = 1, Uses = [LR, RM] in 1360 def BCLR : XLForm_2_br2<19, 16, 12, 0, (outs), (ins crbitrc:$bi), 1361 "bclr 12, $bi, 0", IIC_BrB, []>; 1362 def BCLRn : XLForm_2_br2<19, 16, 4, 0, (outs), (ins crbitrc:$bi), 1363 "bclr 4, $bi, 0", IIC_BrB, []>; 1364 } 1365 1366 let isReturn = 1, Defs = [CTR], Uses = [CTR, LR, RM] in { 1367 def BDZLR : XLForm_2_ext<19, 16, 18, 0, 0, (outs), (ins), 1368 "bdzlr", IIC_BrB, []>; 1369 def BDNZLR : XLForm_2_ext<19, 16, 16, 0, 0, (outs), (ins), 1370 "bdnzlr", IIC_BrB, []>; 1371 def BDZLRp : XLForm_2_ext<19, 16, 27, 0, 0, (outs), (ins), 1372 "bdzlr+", IIC_BrB, []>; 1373 def BDNZLRp: XLForm_2_ext<19, 16, 25, 0, 0, (outs), (ins), 1374 "bdnzlr+", IIC_BrB, []>; 1375 def BDZLRm : XLForm_2_ext<19, 16, 26, 0, 0, (outs), (ins), 1376 "bdzlr-", IIC_BrB, []>; 1377 def BDNZLRm: XLForm_2_ext<19, 16, 24, 0, 0, (outs), (ins), 1378 "bdnzlr-", IIC_BrB, []>; 1379 } 1380 1381 let Defs = [CTR], Uses = [CTR] in { 1382 def BDZ : BForm_1<16, 18, 0, 0, (outs), (ins condbrtarget:$dst), 1383 "bdz $dst">; 1384 def BDNZ : BForm_1<16, 16, 0, 0, (outs), (ins condbrtarget:$dst), 1385 "bdnz $dst">; 1386 def BDZA : BForm_1<16, 18, 1, 0, (outs), (ins abscondbrtarget:$dst), 1387 "bdza $dst">; 1388 def BDNZA : BForm_1<16, 16, 1, 0, (outs), (ins abscondbrtarget:$dst), 1389 "bdnza $dst">; 1390 def BDZp : BForm_1<16, 27, 0, 0, (outs), (ins condbrtarget:$dst), 1391 "bdz+ $dst">; 1392 def BDNZp: BForm_1<16, 25, 0, 0, (outs), (ins condbrtarget:$dst), 1393 "bdnz+ $dst">; 1394 def BDZAp : BForm_1<16, 27, 1, 0, (outs), (ins abscondbrtarget:$dst), 1395 "bdza+ $dst">; 1396 def BDNZAp: BForm_1<16, 25, 1, 0, (outs), (ins abscondbrtarget:$dst), 1397 "bdnza+ $dst">; 1398 def BDZm : BForm_1<16, 26, 0, 0, (outs), (ins condbrtarget:$dst), 1399 "bdz- $dst">; 1400 def BDNZm: BForm_1<16, 24, 0, 0, (outs), (ins condbrtarget:$dst), 1401 "bdnz- $dst">; 1402 def BDZAm : BForm_1<16, 26, 1, 0, (outs), (ins abscondbrtarget:$dst), 1403 "bdza- $dst">; 1404 def BDNZAm: BForm_1<16, 24, 1, 0, (outs), (ins abscondbrtarget:$dst), 1405 "bdnza- $dst">; 1406 } 1407} 1408 1409// The unconditional BCL used by the SjLj setjmp code. 1410let isCall = 1, hasCtrlDep = 1, isCodeGenOnly = 1, PPC970_Unit = 7 in { 1411 let Defs = [LR], Uses = [RM] in { 1412 def BCLalways : BForm_2<16, 20, 31, 0, 1, (outs), (ins condbrtarget:$dst), 1413 "bcl 20, 31, $dst">; 1414 } 1415} 1416 1417let isCall = 1, PPC970_Unit = 7, Defs = [LR] in { 1418 // Convenient aliases for call instructions 1419 let Uses = [RM] in { 1420 def BL : IForm<18, 0, 1, (outs), (ins calltarget:$func), 1421 "bl $func", IIC_BrB, []>; // See Pat patterns below. 1422 def BLA : IForm<18, 1, 1, (outs), (ins abscalltarget:$func), 1423 "bla $func", IIC_BrB, [(PPCcall (i32 imm:$func))]>; 1424 1425 let isCodeGenOnly = 1 in { 1426 def BL_TLS : IForm<18, 0, 1, (outs), (ins tlscall32:$func), 1427 "bl $func", IIC_BrB, []>; 1428 def BCCL : BForm<16, 0, 1, (outs), (ins pred:$cond, condbrtarget:$dst), 1429 "b${cond:cc}l${cond:pm} ${cond:reg}, $dst">; 1430 def BCCLA : BForm<16, 1, 1, (outs), (ins pred:$cond, abscondbrtarget:$dst), 1431 "b${cond:cc}la${cond:pm} ${cond:reg}, $dst">; 1432 1433 def BCL : BForm_4<16, 12, 0, 1, (outs), 1434 (ins crbitrc:$bi, condbrtarget:$dst), 1435 "bcl 12, $bi, $dst">; 1436 def BCLn : BForm_4<16, 4, 0, 1, (outs), 1437 (ins crbitrc:$bi, condbrtarget:$dst), 1438 "bcl 4, $bi, $dst">; 1439 } 1440 } 1441 let Uses = [CTR, RM] in { 1442 def BCTRL : XLForm_2_ext<19, 528, 20, 0, 1, (outs), (ins), 1443 "bctrl", IIC_BrB, [(PPCbctrl)]>, 1444 Requires<[In32BitMode]>; 1445 1446 let isCodeGenOnly = 1 in { 1447 def BCCCTRL : XLForm_2_br<19, 528, 1, (outs), (ins pred:$cond), 1448 "b${cond:cc}ctrl${cond:pm} ${cond:reg}", IIC_BrB, 1449 []>; 1450 1451 def BCCTRL : XLForm_2_br2<19, 528, 12, 1, (outs), (ins crbitrc:$bi), 1452 "bcctrl 12, $bi, 0", IIC_BrB, []>; 1453 def BCCTRLn : XLForm_2_br2<19, 528, 4, 1, (outs), (ins crbitrc:$bi), 1454 "bcctrl 4, $bi, 0", IIC_BrB, []>; 1455 } 1456 } 1457 let Uses = [LR, RM] in { 1458 def BLRL : XLForm_2_ext<19, 16, 20, 0, 1, (outs), (ins), 1459 "blrl", IIC_BrB, []>; 1460 1461 let isCodeGenOnly = 1 in { 1462 def BCCLRL : XLForm_2_br<19, 16, 1, (outs), (ins pred:$cond), 1463 "b${cond:cc}lrl${cond:pm} ${cond:reg}", IIC_BrB, 1464 []>; 1465 1466 def BCLRL : XLForm_2_br2<19, 16, 12, 1, (outs), (ins crbitrc:$bi), 1467 "bclrl 12, $bi, 0", IIC_BrB, []>; 1468 def BCLRLn : XLForm_2_br2<19, 16, 4, 1, (outs), (ins crbitrc:$bi), 1469 "bclrl 4, $bi, 0", IIC_BrB, []>; 1470 } 1471 } 1472 let Defs = [CTR], Uses = [CTR, RM] in { 1473 def BDZL : BForm_1<16, 18, 0, 1, (outs), (ins condbrtarget:$dst), 1474 "bdzl $dst">; 1475 def BDNZL : BForm_1<16, 16, 0, 1, (outs), (ins condbrtarget:$dst), 1476 "bdnzl $dst">; 1477 def BDZLA : BForm_1<16, 18, 1, 1, (outs), (ins abscondbrtarget:$dst), 1478 "bdzla $dst">; 1479 def BDNZLA : BForm_1<16, 16, 1, 1, (outs), (ins abscondbrtarget:$dst), 1480 "bdnzla $dst">; 1481 def BDZLp : BForm_1<16, 27, 0, 1, (outs), (ins condbrtarget:$dst), 1482 "bdzl+ $dst">; 1483 def BDNZLp: BForm_1<16, 25, 0, 1, (outs), (ins condbrtarget:$dst), 1484 "bdnzl+ $dst">; 1485 def BDZLAp : BForm_1<16, 27, 1, 1, (outs), (ins abscondbrtarget:$dst), 1486 "bdzla+ $dst">; 1487 def BDNZLAp: BForm_1<16, 25, 1, 1, (outs), (ins abscondbrtarget:$dst), 1488 "bdnzla+ $dst">; 1489 def BDZLm : BForm_1<16, 26, 0, 1, (outs), (ins condbrtarget:$dst), 1490 "bdzl- $dst">; 1491 def BDNZLm: BForm_1<16, 24, 0, 1, (outs), (ins condbrtarget:$dst), 1492 "bdnzl- $dst">; 1493 def BDZLAm : BForm_1<16, 26, 1, 1, (outs), (ins abscondbrtarget:$dst), 1494 "bdzla- $dst">; 1495 def BDNZLAm: BForm_1<16, 24, 1, 1, (outs), (ins abscondbrtarget:$dst), 1496 "bdnzla- $dst">; 1497 } 1498 let Defs = [CTR], Uses = [CTR, LR, RM] in { 1499 def BDZLRL : XLForm_2_ext<19, 16, 18, 0, 1, (outs), (ins), 1500 "bdzlrl", IIC_BrB, []>; 1501 def BDNZLRL : XLForm_2_ext<19, 16, 16, 0, 1, (outs), (ins), 1502 "bdnzlrl", IIC_BrB, []>; 1503 def BDZLRLp : XLForm_2_ext<19, 16, 27, 0, 1, (outs), (ins), 1504 "bdzlrl+", IIC_BrB, []>; 1505 def BDNZLRLp: XLForm_2_ext<19, 16, 25, 0, 1, (outs), (ins), 1506 "bdnzlrl+", IIC_BrB, []>; 1507 def BDZLRLm : XLForm_2_ext<19, 16, 26, 0, 1, (outs), (ins), 1508 "bdzlrl-", IIC_BrB, []>; 1509 def BDNZLRLm: XLForm_2_ext<19, 16, 24, 0, 1, (outs), (ins), 1510 "bdnzlrl-", IIC_BrB, []>; 1511 } 1512} 1513 1514let isCall = 1, isTerminator = 1, isReturn = 1, isBarrier = 1, Uses = [RM] in 1515def TCRETURNdi :Pseudo< (outs), 1516 (ins calltarget:$dst, i32imm:$offset), 1517 "#TC_RETURNd $dst $offset", 1518 []>; 1519 1520 1521let isCall = 1, isTerminator = 1, isReturn = 1, isBarrier = 1, Uses = [RM] in 1522def TCRETURNai :Pseudo<(outs), (ins abscalltarget:$func, i32imm:$offset), 1523 "#TC_RETURNa $func $offset", 1524 [(PPCtc_return (i32 imm:$func), imm:$offset)]>; 1525 1526let isCall = 1, isTerminator = 1, isReturn = 1, isBarrier = 1, Uses = [RM] in 1527def TCRETURNri : Pseudo<(outs), (ins CTRRC:$dst, i32imm:$offset), 1528 "#TC_RETURNr $dst $offset", 1529 []>; 1530 1531 1532let isCodeGenOnly = 1 in { 1533 1534let isTerminator = 1, isBarrier = 1, PPC970_Unit = 7, isBranch = 1, 1535 isIndirectBranch = 1, isCall = 1, isReturn = 1, Uses = [CTR, RM] in 1536def TAILBCTR : XLForm_2_ext<19, 528, 20, 0, 0, (outs), (ins), "bctr", IIC_BrB, 1537 []>, Requires<[In32BitMode]>; 1538 1539let isBranch = 1, isTerminator = 1, hasCtrlDep = 1, PPC970_Unit = 7, 1540 isBarrier = 1, isCall = 1, isReturn = 1, Uses = [RM] in 1541def TAILB : IForm<18, 0, 0, (outs), (ins calltarget:$dst), 1542 "b $dst", IIC_BrB, 1543 []>; 1544 1545let isBranch = 1, isTerminator = 1, hasCtrlDep = 1, PPC970_Unit = 7, 1546 isBarrier = 1, isCall = 1, isReturn = 1, Uses = [RM] in 1547def TAILBA : IForm<18, 0, 0, (outs), (ins abscalltarget:$dst), 1548 "ba $dst", IIC_BrB, 1549 []>; 1550 1551} 1552 1553let hasSideEffects = 1, isBarrier = 1, usesCustomInserter = 1 in { 1554 let Defs = [CTR] in 1555 def EH_SjLj_SetJmp32 : Pseudo<(outs gprc:$dst), (ins memr:$buf), 1556 "#EH_SJLJ_SETJMP32", 1557 [(set i32:$dst, (PPCeh_sjlj_setjmp addr:$buf))]>, 1558 Requires<[In32BitMode]>; 1559 let isTerminator = 1 in 1560 def EH_SjLj_LongJmp32 : Pseudo<(outs), (ins memr:$buf), 1561 "#EH_SJLJ_LONGJMP32", 1562 [(PPCeh_sjlj_longjmp addr:$buf)]>, 1563 Requires<[In32BitMode]>; 1564} 1565 1566// This pseudo is never removed from the function, as it serves as 1567// a terminator. Size is set to 0 to prevent the builtin assembler 1568// from emitting it. 1569let isBranch = 1, isTerminator = 1, Size = 0 in { 1570 def EH_SjLj_Setup : Pseudo<(outs), (ins directbrtarget:$dst), 1571 "#EH_SjLj_Setup\t$dst", []>; 1572} 1573 1574// System call. 1575let PPC970_Unit = 7 in { 1576 def SC : SCForm<17, 1, (outs), (ins i32imm:$lev), 1577 "sc $lev", IIC_BrB, [(PPCsc (i32 imm:$lev))]>; 1578} 1579 1580// Branch history rolling buffer. 1581def CLRBHRB : XForm_0<31, 430, (outs), (ins), "clrbhrb", IIC_BrB, 1582 [(PPCclrbhrb)]>, 1583 PPC970_DGroup_Single; 1584// The $dmy argument used for MFBHRBE is not needed; however, including 1585// it avoids automatic generation of PPCFastISel::fastEmit_i(), which 1586// interferes with necessary special handling (see PPCFastISel.cpp). 1587def MFBHRBE : XFXForm_3p<31, 302, (outs gprc:$rD), 1588 (ins u10imm:$imm, u10imm:$dmy), 1589 "mfbhrbe $rD, $imm", IIC_BrB, 1590 [(set i32:$rD, 1591 (PPCmfbhrbe imm:$imm, imm:$dmy))]>, 1592 PPC970_DGroup_First; 1593 1594def RFEBB : XLForm_S<19, 146, (outs), (ins u1imm:$imm), "rfebb $imm", 1595 IIC_BrB, [(PPCrfebb (i32 imm:$imm))]>, 1596 PPC970_DGroup_Single; 1597 1598// DCB* instructions. 1599def DCBA : DCB_Form<758, 0, (outs), (ins memrr:$dst), "dcba $dst", 1600 IIC_LdStDCBF, [(int_ppc_dcba xoaddr:$dst)]>, 1601 PPC970_DGroup_Single; 1602def DCBI : DCB_Form<470, 0, (outs), (ins memrr:$dst), "dcbi $dst", 1603 IIC_LdStDCBF, [(int_ppc_dcbi xoaddr:$dst)]>, 1604 PPC970_DGroup_Single; 1605def DCBST : DCB_Form<54, 0, (outs), (ins memrr:$dst), "dcbst $dst", 1606 IIC_LdStDCBF, [(int_ppc_dcbst xoaddr:$dst)]>, 1607 PPC970_DGroup_Single; 1608def DCBZ : DCB_Form<1014, 0, (outs), (ins memrr:$dst), "dcbz $dst", 1609 IIC_LdStDCBF, [(int_ppc_dcbz xoaddr:$dst)]>, 1610 PPC970_DGroup_Single; 1611def DCBZL : DCB_Form<1014, 1, (outs), (ins memrr:$dst), "dcbzl $dst", 1612 IIC_LdStDCBF, [(int_ppc_dcbzl xoaddr:$dst)]>, 1613 PPC970_DGroup_Single; 1614 1615def DCBF : DCB_Form_hint<86, (outs), (ins u5imm:$TH, memrr:$dst), 1616 "dcbf $dst, $TH", IIC_LdStDCBF, []>, 1617 PPC970_DGroup_Single; 1618 1619let hasSideEffects = 0, mayLoad = 1, mayStore = 1 in { 1620def DCBT : DCB_Form_hint<278, (outs), (ins u5imm:$TH, memrr:$dst), 1621 "dcbt $dst, $TH", IIC_LdStDCBF, []>, 1622 PPC970_DGroup_Single; 1623def DCBTST : DCB_Form_hint<246, (outs), (ins u5imm:$TH, memrr:$dst), 1624 "dcbtst $dst, $TH", IIC_LdStDCBF, []>, 1625 PPC970_DGroup_Single; 1626} // hasSideEffects = 0 1627 1628def ICBLC : XForm_icbt<31, 230, (outs), (ins u4imm:$CT, memrr:$src), 1629 "icblc $CT, $src", IIC_LdStStore>, Requires<[HasICBT]>; 1630def ICBLQ : XForm_icbt<31, 198, (outs), (ins u4imm:$CT, memrr:$src), 1631 "icblq. $CT, $src", IIC_LdStLoad>, Requires<[HasICBT]>; 1632def ICBT : XForm_icbt<31, 22, (outs), (ins u4imm:$CT, memrr:$src), 1633 "icbt $CT, $src", IIC_LdStLoad>, Requires<[HasICBT]>; 1634def ICBTLS : XForm_icbt<31, 486, (outs), (ins u4imm:$CT, memrr:$src), 1635 "icbtls $CT, $src", IIC_LdStLoad>, Requires<[HasICBT]>; 1636 1637def : Pat<(int_ppc_dcbt xoaddr:$dst), 1638 (DCBT 0, xoaddr:$dst)>; 1639def : Pat<(int_ppc_dcbtst xoaddr:$dst), 1640 (DCBTST 0, xoaddr:$dst)>; 1641def : Pat<(int_ppc_dcbf xoaddr:$dst), 1642 (DCBF 0, xoaddr:$dst)>; 1643 1644def : Pat<(prefetch xoaddr:$dst, (i32 0), imm, (i32 1)), 1645 (DCBT 0, xoaddr:$dst)>; // data prefetch for loads 1646def : Pat<(prefetch xoaddr:$dst, (i32 1), imm, (i32 1)), 1647 (DCBTST 0, xoaddr:$dst)>; // data prefetch for stores 1648def : Pat<(prefetch xoaddr:$dst, (i32 0), imm, (i32 0)), 1649 (ICBT 0, xoaddr:$dst)>, Requires<[HasICBT]>; // inst prefetch (for read) 1650 1651// Atomic operations 1652// FIXME: some of these might be used with constant operands. This will result 1653// in constant materialization instructions that may be redundant. We currently 1654// clean this up in PPCMIPeephole with calls to 1655// PPCInstrInfo::convertToImmediateForm() but we should probably not emit them 1656// in the first place. 1657let usesCustomInserter = 1 in { 1658 let Defs = [CR0] in { 1659 def ATOMIC_LOAD_ADD_I8 : Pseudo< 1660 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_ADD_I8", 1661 [(set i32:$dst, (atomic_load_add_8 xoaddr:$ptr, i32:$incr))]>; 1662 def ATOMIC_LOAD_SUB_I8 : Pseudo< 1663 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_SUB_I8", 1664 [(set i32:$dst, (atomic_load_sub_8 xoaddr:$ptr, i32:$incr))]>; 1665 def ATOMIC_LOAD_AND_I8 : Pseudo< 1666 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_AND_I8", 1667 [(set i32:$dst, (atomic_load_and_8 xoaddr:$ptr, i32:$incr))]>; 1668 def ATOMIC_LOAD_OR_I8 : Pseudo< 1669 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_OR_I8", 1670 [(set i32:$dst, (atomic_load_or_8 xoaddr:$ptr, i32:$incr))]>; 1671 def ATOMIC_LOAD_XOR_I8 : Pseudo< 1672 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "ATOMIC_LOAD_XOR_I8", 1673 [(set i32:$dst, (atomic_load_xor_8 xoaddr:$ptr, i32:$incr))]>; 1674 def ATOMIC_LOAD_NAND_I8 : Pseudo< 1675 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_NAND_I8", 1676 [(set i32:$dst, (atomic_load_nand_8 xoaddr:$ptr, i32:$incr))]>; 1677 def ATOMIC_LOAD_MIN_I8 : Pseudo< 1678 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_MIN_I8", 1679 [(set i32:$dst, (atomic_load_min_8 xoaddr:$ptr, i32:$incr))]>; 1680 def ATOMIC_LOAD_MAX_I8 : Pseudo< 1681 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_MAX_I8", 1682 [(set i32:$dst, (atomic_load_max_8 xoaddr:$ptr, i32:$incr))]>; 1683 def ATOMIC_LOAD_UMIN_I8 : Pseudo< 1684 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_UMIN_I8", 1685 [(set i32:$dst, (atomic_load_umin_8 xoaddr:$ptr, i32:$incr))]>; 1686 def ATOMIC_LOAD_UMAX_I8 : Pseudo< 1687 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_UMAX_I8", 1688 [(set i32:$dst, (atomic_load_umax_8 xoaddr:$ptr, i32:$incr))]>; 1689 def ATOMIC_LOAD_ADD_I16 : Pseudo< 1690 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_ADD_I16", 1691 [(set i32:$dst, (atomic_load_add_16 xoaddr:$ptr, i32:$incr))]>; 1692 def ATOMIC_LOAD_SUB_I16 : Pseudo< 1693 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_SUB_I16", 1694 [(set i32:$dst, (atomic_load_sub_16 xoaddr:$ptr, i32:$incr))]>; 1695 def ATOMIC_LOAD_AND_I16 : Pseudo< 1696 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_AND_I16", 1697 [(set i32:$dst, (atomic_load_and_16 xoaddr:$ptr, i32:$incr))]>; 1698 def ATOMIC_LOAD_OR_I16 : Pseudo< 1699 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_OR_I16", 1700 [(set i32:$dst, (atomic_load_or_16 xoaddr:$ptr, i32:$incr))]>; 1701 def ATOMIC_LOAD_XOR_I16 : Pseudo< 1702 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_XOR_I16", 1703 [(set i32:$dst, (atomic_load_xor_16 xoaddr:$ptr, i32:$incr))]>; 1704 def ATOMIC_LOAD_NAND_I16 : Pseudo< 1705 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_NAND_I16", 1706 [(set i32:$dst, (atomic_load_nand_16 xoaddr:$ptr, i32:$incr))]>; 1707 def ATOMIC_LOAD_MIN_I16 : Pseudo< 1708 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_MIN_I16", 1709 [(set i32:$dst, (atomic_load_min_16 xoaddr:$ptr, i32:$incr))]>; 1710 def ATOMIC_LOAD_MAX_I16 : Pseudo< 1711 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_MAX_I16", 1712 [(set i32:$dst, (atomic_load_max_16 xoaddr:$ptr, i32:$incr))]>; 1713 def ATOMIC_LOAD_UMIN_I16 : Pseudo< 1714 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_UMIN_I16", 1715 [(set i32:$dst, (atomic_load_umin_16 xoaddr:$ptr, i32:$incr))]>; 1716 def ATOMIC_LOAD_UMAX_I16 : Pseudo< 1717 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_UMAX_I16", 1718 [(set i32:$dst, (atomic_load_umax_16 xoaddr:$ptr, i32:$incr))]>; 1719 def ATOMIC_LOAD_ADD_I32 : Pseudo< 1720 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_ADD_I32", 1721 [(set i32:$dst, (atomic_load_add_32 xoaddr:$ptr, i32:$incr))]>; 1722 def ATOMIC_LOAD_SUB_I32 : Pseudo< 1723 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_SUB_I32", 1724 [(set i32:$dst, (atomic_load_sub_32 xoaddr:$ptr, i32:$incr))]>; 1725 def ATOMIC_LOAD_AND_I32 : Pseudo< 1726 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_AND_I32", 1727 [(set i32:$dst, (atomic_load_and_32 xoaddr:$ptr, i32:$incr))]>; 1728 def ATOMIC_LOAD_OR_I32 : Pseudo< 1729 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_OR_I32", 1730 [(set i32:$dst, (atomic_load_or_32 xoaddr:$ptr, i32:$incr))]>; 1731 def ATOMIC_LOAD_XOR_I32 : Pseudo< 1732 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_XOR_I32", 1733 [(set i32:$dst, (atomic_load_xor_32 xoaddr:$ptr, i32:$incr))]>; 1734 def ATOMIC_LOAD_NAND_I32 : Pseudo< 1735 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_NAND_I32", 1736 [(set i32:$dst, (atomic_load_nand_32 xoaddr:$ptr, i32:$incr))]>; 1737 def ATOMIC_LOAD_MIN_I32 : Pseudo< 1738 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_MIN_I32", 1739 [(set i32:$dst, (atomic_load_min_32 xoaddr:$ptr, i32:$incr))]>; 1740 def ATOMIC_LOAD_MAX_I32 : Pseudo< 1741 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_MAX_I32", 1742 [(set i32:$dst, (atomic_load_max_32 xoaddr:$ptr, i32:$incr))]>; 1743 def ATOMIC_LOAD_UMIN_I32 : Pseudo< 1744 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_UMIN_I32", 1745 [(set i32:$dst, (atomic_load_umin_32 xoaddr:$ptr, i32:$incr))]>; 1746 def ATOMIC_LOAD_UMAX_I32 : Pseudo< 1747 (outs gprc:$dst), (ins memrr:$ptr, gprc:$incr), "#ATOMIC_LOAD_UMAX_I32", 1748 [(set i32:$dst, (atomic_load_umax_32 xoaddr:$ptr, i32:$incr))]>; 1749 1750 def ATOMIC_CMP_SWAP_I8 : Pseudo< 1751 (outs gprc:$dst), (ins memrr:$ptr, gprc:$old, gprc:$new), "#ATOMIC_CMP_SWAP_I8", 1752 [(set i32:$dst, (atomic_cmp_swap_8 xoaddr:$ptr, i32:$old, i32:$new))]>; 1753 def ATOMIC_CMP_SWAP_I16 : Pseudo< 1754 (outs gprc:$dst), (ins memrr:$ptr, gprc:$old, gprc:$new), "#ATOMIC_CMP_SWAP_I16 $dst $ptr $old $new", 1755 [(set i32:$dst, (atomic_cmp_swap_16 xoaddr:$ptr, i32:$old, i32:$new))]>; 1756 def ATOMIC_CMP_SWAP_I32 : Pseudo< 1757 (outs gprc:$dst), (ins memrr:$ptr, gprc:$old, gprc:$new), "#ATOMIC_CMP_SWAP_I32 $dst $ptr $old $new", 1758 [(set i32:$dst, (atomic_cmp_swap_32 xoaddr:$ptr, i32:$old, i32:$new))]>; 1759 1760 def ATOMIC_SWAP_I8 : Pseudo< 1761 (outs gprc:$dst), (ins memrr:$ptr, gprc:$new), "#ATOMIC_SWAP_i8", 1762 [(set i32:$dst, (atomic_swap_8 xoaddr:$ptr, i32:$new))]>; 1763 def ATOMIC_SWAP_I16 : Pseudo< 1764 (outs gprc:$dst), (ins memrr:$ptr, gprc:$new), "#ATOMIC_SWAP_I16", 1765 [(set i32:$dst, (atomic_swap_16 xoaddr:$ptr, i32:$new))]>; 1766 def ATOMIC_SWAP_I32 : Pseudo< 1767 (outs gprc:$dst), (ins memrr:$ptr, gprc:$new), "#ATOMIC_SWAP_I32", 1768 [(set i32:$dst, (atomic_swap_32 xoaddr:$ptr, i32:$new))]>; 1769 } 1770} 1771 1772def : Pat<(PPCatomicCmpSwap_8 xoaddr:$ptr, i32:$old, i32:$new), 1773 (ATOMIC_CMP_SWAP_I8 xoaddr:$ptr, i32:$old, i32:$new)>; 1774def : Pat<(PPCatomicCmpSwap_16 xoaddr:$ptr, i32:$old, i32:$new), 1775 (ATOMIC_CMP_SWAP_I16 xoaddr:$ptr, i32:$old, i32:$new)>; 1776 1777// Instructions to support atomic operations 1778let mayLoad = 1, mayStore = 0, hasSideEffects = 0 in { 1779def LBARX : XForm_1_memOp<31, 52, (outs gprc:$rD), (ins memrr:$src), 1780 "lbarx $rD, $src", IIC_LdStLWARX, []>, 1781 Requires<[HasPartwordAtomics]>; 1782 1783def LHARX : XForm_1_memOp<31, 116, (outs gprc:$rD), (ins memrr:$src), 1784 "lharx $rD, $src", IIC_LdStLWARX, []>, 1785 Requires<[HasPartwordAtomics]>; 1786 1787def LWARX : XForm_1_memOp<31, 20, (outs gprc:$rD), (ins memrr:$src), 1788 "lwarx $rD, $src", IIC_LdStLWARX, []>; 1789 1790// Instructions to support lock versions of atomics 1791// (EH=1 - see Power ISA 2.07 Book II 4.4.2) 1792def LBARXL : XForm_1_memOp<31, 52, (outs gprc:$rD), (ins memrr:$src), 1793 "lbarx $rD, $src, 1", IIC_LdStLWARX, []>, isDOT, 1794 Requires<[HasPartwordAtomics]>; 1795 1796def LHARXL : XForm_1_memOp<31, 116, (outs gprc:$rD), (ins memrr:$src), 1797 "lharx $rD, $src, 1", IIC_LdStLWARX, []>, isDOT, 1798 Requires<[HasPartwordAtomics]>; 1799 1800def LWARXL : XForm_1_memOp<31, 20, (outs gprc:$rD), (ins memrr:$src), 1801 "lwarx $rD, $src, 1", IIC_LdStLWARX, []>, isDOT; 1802 1803// The atomic instructions use the destination register as well as the next one 1804// or two registers in order (modulo 31). 1805let hasExtraSrcRegAllocReq = 1 in 1806def LWAT : X_RD5_RS5_IM5<31, 582, (outs gprc:$rD), (ins gprc:$rA, u5imm:$FC), 1807 "lwat $rD, $rA, $FC", IIC_LdStLoad>, 1808 Requires<[IsISA3_0]>; 1809} 1810 1811let Defs = [CR0], mayStore = 1, mayLoad = 0, hasSideEffects = 0 in { 1812def STBCX : XForm_1_memOp<31, 694, (outs), (ins gprc:$rS, memrr:$dst), 1813 "stbcx. $rS, $dst", IIC_LdStSTWCX, []>, 1814 isDOT, Requires<[HasPartwordAtomics]>; 1815 1816def STHCX : XForm_1_memOp<31, 726, (outs), (ins gprc:$rS, memrr:$dst), 1817 "sthcx. $rS, $dst", IIC_LdStSTWCX, []>, 1818 isDOT, Requires<[HasPartwordAtomics]>; 1819 1820def STWCX : XForm_1_memOp<31, 150, (outs), (ins gprc:$rS, memrr:$dst), 1821 "stwcx. $rS, $dst", IIC_LdStSTWCX, []>, isDOT; 1822} 1823 1824let mayStore = 1, mayLoad = 0, hasSideEffects = 0 in 1825def STWAT : X_RD5_RS5_IM5<31, 710, (outs), (ins gprc:$rS, gprc:$rA, u5imm:$FC), 1826 "stwat $rS, $rA, $FC", IIC_LdStStore>, 1827 Requires<[IsISA3_0]>; 1828 1829let isTerminator = 1, isBarrier = 1, hasCtrlDep = 1 in 1830def TRAP : XForm_24<31, 4, (outs), (ins), "trap", IIC_LdStLoad, [(trap)]>; 1831 1832def TWI : DForm_base<3, (outs), (ins u5imm:$to, gprc:$rA, s16imm:$imm), 1833 "twi $to, $rA, $imm", IIC_IntTrapW, []>; 1834def TW : XForm_1<31, 4, (outs), (ins u5imm:$to, gprc:$rA, gprc:$rB), 1835 "tw $to, $rA, $rB", IIC_IntTrapW, []>; 1836def TDI : DForm_base<2, (outs), (ins u5imm:$to, g8rc:$rA, s16imm:$imm), 1837 "tdi $to, $rA, $imm", IIC_IntTrapD, []>; 1838def TD : XForm_1<31, 68, (outs), (ins u5imm:$to, g8rc:$rA, g8rc:$rB), 1839 "td $to, $rA, $rB", IIC_IntTrapD, []>; 1840 1841//===----------------------------------------------------------------------===// 1842// PPC32 Load Instructions. 1843// 1844 1845// Unindexed (r+i) Loads. 1846let PPC970_Unit = 2 in { 1847def LBZ : DForm_1<34, (outs gprc:$rD), (ins memri:$src), 1848 "lbz $rD, $src", IIC_LdStLoad, 1849 [(set i32:$rD, (zextloadi8 iaddr:$src))]>; 1850def LHA : DForm_1<42, (outs gprc:$rD), (ins memri:$src), 1851 "lha $rD, $src", IIC_LdStLHA, 1852 [(set i32:$rD, (sextloadi16 iaddr:$src))]>, 1853 PPC970_DGroup_Cracked; 1854def LHZ : DForm_1<40, (outs gprc:$rD), (ins memri:$src), 1855 "lhz $rD, $src", IIC_LdStLoad, 1856 [(set i32:$rD, (zextloadi16 iaddr:$src))]>; 1857def LWZ : DForm_1<32, (outs gprc:$rD), (ins memri:$src), 1858 "lwz $rD, $src", IIC_LdStLoad, 1859 [(set i32:$rD, (load iaddr:$src))]>; 1860 1861let Predicates = [HasFPU] in { 1862def LFS : DForm_1<48, (outs f4rc:$rD), (ins memri:$src), 1863 "lfs $rD, $src", IIC_LdStLFD, 1864 [(set f32:$rD, (load iaddr:$src))]>; 1865def LFD : DForm_1<50, (outs f8rc:$rD), (ins memri:$src), 1866 "lfd $rD, $src", IIC_LdStLFD, 1867 [(set f64:$rD, (load iaddr:$src))]>; 1868} 1869 1870 1871// Unindexed (r+i) Loads with Update (preinc). 1872let mayLoad = 1, mayStore = 0, hasSideEffects = 0 in { 1873def LBZU : DForm_1<35, (outs gprc:$rD, ptr_rc_nor0:$ea_result), (ins memri:$addr), 1874 "lbzu $rD, $addr", IIC_LdStLoadUpd, 1875 []>, RegConstraint<"$addr.reg = $ea_result">, 1876 NoEncode<"$ea_result">; 1877 1878def LHAU : DForm_1<43, (outs gprc:$rD, ptr_rc_nor0:$ea_result), (ins memri:$addr), 1879 "lhau $rD, $addr", IIC_LdStLHAU, 1880 []>, RegConstraint<"$addr.reg = $ea_result">, 1881 NoEncode<"$ea_result">; 1882 1883def LHZU : DForm_1<41, (outs gprc:$rD, ptr_rc_nor0:$ea_result), (ins memri:$addr), 1884 "lhzu $rD, $addr", IIC_LdStLoadUpd, 1885 []>, RegConstraint<"$addr.reg = $ea_result">, 1886 NoEncode<"$ea_result">; 1887 1888def LWZU : DForm_1<33, (outs gprc:$rD, ptr_rc_nor0:$ea_result), (ins memri:$addr), 1889 "lwzu $rD, $addr", IIC_LdStLoadUpd, 1890 []>, RegConstraint<"$addr.reg = $ea_result">, 1891 NoEncode<"$ea_result">; 1892 1893let Predicates = [HasFPU] in { 1894def LFSU : DForm_1<49, (outs f4rc:$rD, ptr_rc_nor0:$ea_result), (ins memri:$addr), 1895 "lfsu $rD, $addr", IIC_LdStLFDU, 1896 []>, RegConstraint<"$addr.reg = $ea_result">, 1897 NoEncode<"$ea_result">; 1898 1899def LFDU : DForm_1<51, (outs f8rc:$rD, ptr_rc_nor0:$ea_result), (ins memri:$addr), 1900 "lfdu $rD, $addr", IIC_LdStLFDU, 1901 []>, RegConstraint<"$addr.reg = $ea_result">, 1902 NoEncode<"$ea_result">; 1903} 1904 1905 1906// Indexed (r+r) Loads with Update (preinc). 1907def LBZUX : XForm_1_memOp<31, 119, (outs gprc:$rD, ptr_rc_nor0:$ea_result), 1908 (ins memrr:$addr), 1909 "lbzux $rD, $addr", IIC_LdStLoadUpdX, 1910 []>, RegConstraint<"$addr.ptrreg = $ea_result">, 1911 NoEncode<"$ea_result">; 1912 1913def LHAUX : XForm_1_memOp<31, 375, (outs gprc:$rD, ptr_rc_nor0:$ea_result), 1914 (ins memrr:$addr), 1915 "lhaux $rD, $addr", IIC_LdStLHAUX, 1916 []>, RegConstraint<"$addr.ptrreg = $ea_result">, 1917 NoEncode<"$ea_result">; 1918 1919def LHZUX : XForm_1_memOp<31, 311, (outs gprc:$rD, ptr_rc_nor0:$ea_result), 1920 (ins memrr:$addr), 1921 "lhzux $rD, $addr", IIC_LdStLoadUpdX, 1922 []>, RegConstraint<"$addr.ptrreg = $ea_result">, 1923 NoEncode<"$ea_result">; 1924 1925def LWZUX : XForm_1_memOp<31, 55, (outs gprc:$rD, ptr_rc_nor0:$ea_result), 1926 (ins memrr:$addr), 1927 "lwzux $rD, $addr", IIC_LdStLoadUpdX, 1928 []>, RegConstraint<"$addr.ptrreg = $ea_result">, 1929 NoEncode<"$ea_result">; 1930 1931let Predicates = [HasFPU] in { 1932def LFSUX : XForm_1_memOp<31, 567, (outs f4rc:$rD, ptr_rc_nor0:$ea_result), 1933 (ins memrr:$addr), 1934 "lfsux $rD, $addr", IIC_LdStLFDUX, 1935 []>, RegConstraint<"$addr.ptrreg = $ea_result">, 1936 NoEncode<"$ea_result">; 1937 1938def LFDUX : XForm_1_memOp<31, 631, (outs f8rc:$rD, ptr_rc_nor0:$ea_result), 1939 (ins memrr:$addr), 1940 "lfdux $rD, $addr", IIC_LdStLFDUX, 1941 []>, RegConstraint<"$addr.ptrreg = $ea_result">, 1942 NoEncode<"$ea_result">; 1943} 1944} 1945} 1946 1947// Indexed (r+r) Loads. 1948// 1949let PPC970_Unit = 2, mayLoad = 1, mayStore = 0 in { 1950def LBZX : XForm_1_memOp<31, 87, (outs gprc:$rD), (ins memrr:$src), 1951 "lbzx $rD, $src", IIC_LdStLoad, 1952 [(set i32:$rD, (zextloadi8 xaddr:$src))]>; 1953def LHAX : XForm_1_memOp<31, 343, (outs gprc:$rD), (ins memrr:$src), 1954 "lhax $rD, $src", IIC_LdStLHA, 1955 [(set i32:$rD, (sextloadi16 xaddr:$src))]>, 1956 PPC970_DGroup_Cracked; 1957def LHZX : XForm_1_memOp<31, 279, (outs gprc:$rD), (ins memrr:$src), 1958 "lhzx $rD, $src", IIC_LdStLoad, 1959 [(set i32:$rD, (zextloadi16 xaddr:$src))]>; 1960def LWZX : XForm_1_memOp<31, 23, (outs gprc:$rD), (ins memrr:$src), 1961 "lwzx $rD, $src", IIC_LdStLoad, 1962 [(set i32:$rD, (load xaddr:$src))]>; 1963def LHBRX : XForm_1_memOp<31, 790, (outs gprc:$rD), (ins memrr:$src), 1964 "lhbrx $rD, $src", IIC_LdStLoad, 1965 [(set i32:$rD, (PPClbrx xoaddr:$src, i16))]>; 1966def LWBRX : XForm_1_memOp<31, 534, (outs gprc:$rD), (ins memrr:$src), 1967 "lwbrx $rD, $src", IIC_LdStLoad, 1968 [(set i32:$rD, (PPClbrx xoaddr:$src, i32))]>; 1969 1970let Predicates = [HasFPU] in { 1971def LFSX : XForm_25_memOp<31, 535, (outs f4rc:$frD), (ins memrr:$src), 1972 "lfsx $frD, $src", IIC_LdStLFD, 1973 [(set f32:$frD, (load xaddr:$src))]>; 1974def LFDX : XForm_25_memOp<31, 599, (outs f8rc:$frD), (ins memrr:$src), 1975 "lfdx $frD, $src", IIC_LdStLFD, 1976 [(set f64:$frD, (load xaddr:$src))]>; 1977 1978def LFIWAX : XForm_25_memOp<31, 855, (outs f8rc:$frD), (ins memrr:$src), 1979 "lfiwax $frD, $src", IIC_LdStLFD, 1980 [(set f64:$frD, (PPClfiwax xoaddr:$src))]>; 1981def LFIWZX : XForm_25_memOp<31, 887, (outs f8rc:$frD), (ins memrr:$src), 1982 "lfiwzx $frD, $src", IIC_LdStLFD, 1983 [(set f64:$frD, (PPClfiwzx xoaddr:$src))]>; 1984} 1985} 1986 1987// Load Multiple 1988def LMW : DForm_1<46, (outs gprc:$rD), (ins memri:$src), 1989 "lmw $rD, $src", IIC_LdStLMW, []>; 1990 1991//===----------------------------------------------------------------------===// 1992// PPC32 Store Instructions. 1993// 1994 1995// Unindexed (r+i) Stores. 1996let PPC970_Unit = 2, mayStore = 1, mayLoad = 0 in { 1997def STB : DForm_1<38, (outs), (ins gprc:$rS, memri:$src), 1998 "stb $rS, $src", IIC_LdStStore, 1999 [(truncstorei8 i32:$rS, iaddr:$src)]>; 2000def STH : DForm_1<44, (outs), (ins gprc:$rS, memri:$src), 2001 "sth $rS, $src", IIC_LdStStore, 2002 [(truncstorei16 i32:$rS, iaddr:$src)]>; 2003def STW : DForm_1<36, (outs), (ins gprc:$rS, memri:$src), 2004 "stw $rS, $src", IIC_LdStStore, 2005 [(store i32:$rS, iaddr:$src)]>; 2006let Predicates = [HasFPU] in { 2007def STFS : DForm_1<52, (outs), (ins f4rc:$rS, memri:$dst), 2008 "stfs $rS, $dst", IIC_LdStSTFD, 2009 [(store f32:$rS, iaddr:$dst)]>; 2010def STFD : DForm_1<54, (outs), (ins f8rc:$rS, memri:$dst), 2011 "stfd $rS, $dst", IIC_LdStSTFD, 2012 [(store f64:$rS, iaddr:$dst)]>; 2013} 2014} 2015 2016// Unindexed (r+i) Stores with Update (preinc). 2017let PPC970_Unit = 2, mayStore = 1, mayLoad = 0 in { 2018def STBU : DForm_1<39, (outs ptr_rc_nor0:$ea_res), (ins gprc:$rS, memri:$dst), 2019 "stbu $rS, $dst", IIC_LdStStoreUpd, []>, 2020 RegConstraint<"$dst.reg = $ea_res">, NoEncode<"$ea_res">; 2021def STHU : DForm_1<45, (outs ptr_rc_nor0:$ea_res), (ins gprc:$rS, memri:$dst), 2022 "sthu $rS, $dst", IIC_LdStStoreUpd, []>, 2023 RegConstraint<"$dst.reg = $ea_res">, NoEncode<"$ea_res">; 2024def STWU : DForm_1<37, (outs ptr_rc_nor0:$ea_res), (ins gprc:$rS, memri:$dst), 2025 "stwu $rS, $dst", IIC_LdStStoreUpd, []>, 2026 RegConstraint<"$dst.reg = $ea_res">, NoEncode<"$ea_res">; 2027let Predicates = [HasFPU] in { 2028def STFSU : DForm_1<53, (outs ptr_rc_nor0:$ea_res), (ins f4rc:$rS, memri:$dst), 2029 "stfsu $rS, $dst", IIC_LdStSTFDU, []>, 2030 RegConstraint<"$dst.reg = $ea_res">, NoEncode<"$ea_res">; 2031def STFDU : DForm_1<55, (outs ptr_rc_nor0:$ea_res), (ins f8rc:$rS, memri:$dst), 2032 "stfdu $rS, $dst", IIC_LdStSTFDU, []>, 2033 RegConstraint<"$dst.reg = $ea_res">, NoEncode<"$ea_res">; 2034} 2035} 2036 2037// Patterns to match the pre-inc stores. We can't put the patterns on 2038// the instruction definitions directly as ISel wants the address base 2039// and offset to be separate operands, not a single complex operand. 2040def : Pat<(pre_truncsti8 i32:$rS, iPTR:$ptrreg, iaddroff:$ptroff), 2041 (STBU $rS, iaddroff:$ptroff, $ptrreg)>; 2042def : Pat<(pre_truncsti16 i32:$rS, iPTR:$ptrreg, iaddroff:$ptroff), 2043 (STHU $rS, iaddroff:$ptroff, $ptrreg)>; 2044def : Pat<(pre_store i32:$rS, iPTR:$ptrreg, iaddroff:$ptroff), 2045 (STWU $rS, iaddroff:$ptroff, $ptrreg)>; 2046def : Pat<(pre_store f32:$rS, iPTR:$ptrreg, iaddroff:$ptroff), 2047 (STFSU $rS, iaddroff:$ptroff, $ptrreg)>; 2048def : Pat<(pre_store f64:$rS, iPTR:$ptrreg, iaddroff:$ptroff), 2049 (STFDU $rS, iaddroff:$ptroff, $ptrreg)>; 2050 2051// Indexed (r+r) Stores. 2052let PPC970_Unit = 2 in { 2053def STBX : XForm_8_memOp<31, 215, (outs), (ins gprc:$rS, memrr:$dst), 2054 "stbx $rS, $dst", IIC_LdStStore, 2055 [(truncstorei8 i32:$rS, xaddr:$dst)]>, 2056 PPC970_DGroup_Cracked; 2057def STHX : XForm_8_memOp<31, 407, (outs), (ins gprc:$rS, memrr:$dst), 2058 "sthx $rS, $dst", IIC_LdStStore, 2059 [(truncstorei16 i32:$rS, xaddr:$dst)]>, 2060 PPC970_DGroup_Cracked; 2061def STWX : XForm_8_memOp<31, 151, (outs), (ins gprc:$rS, memrr:$dst), 2062 "stwx $rS, $dst", IIC_LdStStore, 2063 [(store i32:$rS, xaddr:$dst)]>, 2064 PPC970_DGroup_Cracked; 2065 2066def STHBRX: XForm_8_memOp<31, 918, (outs), (ins gprc:$rS, memrr:$dst), 2067 "sthbrx $rS, $dst", IIC_LdStStore, 2068 [(PPCstbrx i32:$rS, xoaddr:$dst, i16)]>, 2069 PPC970_DGroup_Cracked; 2070def STWBRX: XForm_8_memOp<31, 662, (outs), (ins gprc:$rS, memrr:$dst), 2071 "stwbrx $rS, $dst", IIC_LdStStore, 2072 [(PPCstbrx i32:$rS, xoaddr:$dst, i32)]>, 2073 PPC970_DGroup_Cracked; 2074 2075let Predicates = [HasFPU] in { 2076def STFIWX: XForm_28_memOp<31, 983, (outs), (ins f8rc:$frS, memrr:$dst), 2077 "stfiwx $frS, $dst", IIC_LdStSTFD, 2078 [(PPCstfiwx f64:$frS, xoaddr:$dst)]>; 2079 2080def STFSX : XForm_28_memOp<31, 663, (outs), (ins f4rc:$frS, memrr:$dst), 2081 "stfsx $frS, $dst", IIC_LdStSTFD, 2082 [(store f32:$frS, xaddr:$dst)]>; 2083def STFDX : XForm_28_memOp<31, 727, (outs), (ins f8rc:$frS, memrr:$dst), 2084 "stfdx $frS, $dst", IIC_LdStSTFD, 2085 [(store f64:$frS, xaddr:$dst)]>; 2086} 2087} 2088 2089// Indexed (r+r) Stores with Update (preinc). 2090let PPC970_Unit = 2, mayStore = 1, mayLoad = 0 in { 2091def STBUX : XForm_8_memOp<31, 247, (outs ptr_rc_nor0:$ea_res), 2092 (ins gprc:$rS, memrr:$dst), 2093 "stbux $rS, $dst", IIC_LdStStoreUpd, []>, 2094 RegConstraint<"$dst.ptrreg = $ea_res">, 2095 NoEncode<"$ea_res">, 2096 PPC970_DGroup_Cracked; 2097def STHUX : XForm_8_memOp<31, 439, (outs ptr_rc_nor0:$ea_res), 2098 (ins gprc:$rS, memrr:$dst), 2099 "sthux $rS, $dst", IIC_LdStStoreUpd, []>, 2100 RegConstraint<"$dst.ptrreg = $ea_res">, 2101 NoEncode<"$ea_res">, 2102 PPC970_DGroup_Cracked; 2103def STWUX : XForm_8_memOp<31, 183, (outs ptr_rc_nor0:$ea_res), 2104 (ins gprc:$rS, memrr:$dst), 2105 "stwux $rS, $dst", IIC_LdStStoreUpd, []>, 2106 RegConstraint<"$dst.ptrreg = $ea_res">, 2107 NoEncode<"$ea_res">, 2108 PPC970_DGroup_Cracked; 2109let Predicates = [HasFPU] in { 2110def STFSUX: XForm_8_memOp<31, 695, (outs ptr_rc_nor0:$ea_res), 2111 (ins f4rc:$rS, memrr:$dst), 2112 "stfsux $rS, $dst", IIC_LdStSTFDU, []>, 2113 RegConstraint<"$dst.ptrreg = $ea_res">, 2114 NoEncode<"$ea_res">, 2115 PPC970_DGroup_Cracked; 2116def STFDUX: XForm_8_memOp<31, 759, (outs ptr_rc_nor0:$ea_res), 2117 (ins f8rc:$rS, memrr:$dst), 2118 "stfdux $rS, $dst", IIC_LdStSTFDU, []>, 2119 RegConstraint<"$dst.ptrreg = $ea_res">, 2120 NoEncode<"$ea_res">, 2121 PPC970_DGroup_Cracked; 2122} 2123} 2124 2125// Patterns to match the pre-inc stores. We can't put the patterns on 2126// the instruction definitions directly as ISel wants the address base 2127// and offset to be separate operands, not a single complex operand. 2128def : Pat<(pre_truncsti8 i32:$rS, iPTR:$ptrreg, iPTR:$ptroff), 2129 (STBUX $rS, $ptrreg, $ptroff)>; 2130def : Pat<(pre_truncsti16 i32:$rS, iPTR:$ptrreg, iPTR:$ptroff), 2131 (STHUX $rS, $ptrreg, $ptroff)>; 2132def : Pat<(pre_store i32:$rS, iPTR:$ptrreg, iPTR:$ptroff), 2133 (STWUX $rS, $ptrreg, $ptroff)>; 2134let Predicates = [HasFPU] in { 2135def : Pat<(pre_store f32:$rS, iPTR:$ptrreg, iPTR:$ptroff), 2136 (STFSUX $rS, $ptrreg, $ptroff)>; 2137def : Pat<(pre_store f64:$rS, iPTR:$ptrreg, iPTR:$ptroff), 2138 (STFDUX $rS, $ptrreg, $ptroff)>; 2139} 2140 2141// Store Multiple 2142def STMW : DForm_1<47, (outs), (ins gprc:$rS, memri:$dst), 2143 "stmw $rS, $dst", IIC_LdStLMW, []>; 2144 2145def SYNC : XForm_24_sync<31, 598, (outs), (ins i32imm:$L), 2146 "sync $L", IIC_LdStSync, []>; 2147 2148let isCodeGenOnly = 1 in { 2149 def MSYNC : XForm_24_sync<31, 598, (outs), (ins), 2150 "msync", IIC_LdStSync, []> { 2151 let L = 0; 2152 } 2153} 2154 2155def : Pat<(int_ppc_sync), (SYNC 0)>, Requires<[HasSYNC]>; 2156def : Pat<(int_ppc_lwsync), (SYNC 1)>, Requires<[HasSYNC]>; 2157def : Pat<(int_ppc_sync), (MSYNC)>, Requires<[HasOnlyMSYNC]>; 2158def : Pat<(int_ppc_lwsync), (MSYNC)>, Requires<[HasOnlyMSYNC]>; 2159 2160//===----------------------------------------------------------------------===// 2161// PPC32 Arithmetic Instructions. 2162// 2163 2164let PPC970_Unit = 1 in { // FXU Operations. 2165def ADDI : DForm_2<14, (outs gprc:$rD), (ins gprc_nor0:$rA, s16imm:$imm), 2166 "addi $rD, $rA, $imm", IIC_IntSimple, 2167 [(set i32:$rD, (add i32:$rA, imm32SExt16:$imm))]>; 2168let BaseName = "addic" in { 2169let Defs = [CARRY] in 2170def ADDIC : DForm_2<12, (outs gprc:$rD), (ins gprc:$rA, s16imm:$imm), 2171 "addic $rD, $rA, $imm", IIC_IntGeneral, 2172 [(set i32:$rD, (addc i32:$rA, imm32SExt16:$imm))]>, 2173 RecFormRel, PPC970_DGroup_Cracked; 2174let Defs = [CARRY, CR0] in 2175def ADDICo : DForm_2<13, (outs gprc:$rD), (ins gprc:$rA, s16imm:$imm), 2176 "addic. $rD, $rA, $imm", IIC_IntGeneral, 2177 []>, isDOT, RecFormRel; 2178} 2179def ADDIS : DForm_2<15, (outs gprc:$rD), (ins gprc_nor0:$rA, s17imm:$imm), 2180 "addis $rD, $rA, $imm", IIC_IntSimple, 2181 [(set i32:$rD, (add i32:$rA, imm16ShiftedSExt:$imm))]>; 2182let isCodeGenOnly = 1 in 2183def LA : DForm_2<14, (outs gprc:$rD), (ins gprc_nor0:$rA, s16imm:$sym), 2184 "la $rD, $sym($rA)", IIC_IntGeneral, 2185 [(set i32:$rD, (add i32:$rA, 2186 (PPClo tglobaladdr:$sym, 0)))]>; 2187def MULLI : DForm_2< 7, (outs gprc:$rD), (ins gprc:$rA, s16imm:$imm), 2188 "mulli $rD, $rA, $imm", IIC_IntMulLI, 2189 [(set i32:$rD, (mul i32:$rA, imm32SExt16:$imm))]>; 2190let Defs = [CARRY] in 2191def SUBFIC : DForm_2< 8, (outs gprc:$rD), (ins gprc:$rA, s16imm:$imm), 2192 "subfic $rD, $rA, $imm", IIC_IntGeneral, 2193 [(set i32:$rD, (subc imm32SExt16:$imm, i32:$rA))]>; 2194 2195let isReMaterializable = 1, isAsCheapAsAMove = 1, isMoveImm = 1 in { 2196 def LI : DForm_2_r0<14, (outs gprc:$rD), (ins s16imm:$imm), 2197 "li $rD, $imm", IIC_IntSimple, 2198 [(set i32:$rD, imm32SExt16:$imm)]>; 2199 def LIS : DForm_2_r0<15, (outs gprc:$rD), (ins s17imm:$imm), 2200 "lis $rD, $imm", IIC_IntSimple, 2201 [(set i32:$rD, imm16ShiftedSExt:$imm)]>; 2202} 2203} 2204 2205let PPC970_Unit = 1 in { // FXU Operations. 2206let Defs = [CR0] in { 2207def ANDIo : DForm_4<28, (outs gprc:$dst), (ins gprc:$src1, u16imm:$src2), 2208 "andi. $dst, $src1, $src2", IIC_IntGeneral, 2209 [(set i32:$dst, (and i32:$src1, immZExt16:$src2))]>, 2210 isDOT; 2211def ANDISo : DForm_4<29, (outs gprc:$dst), (ins gprc:$src1, u16imm:$src2), 2212 "andis. $dst, $src1, $src2", IIC_IntGeneral, 2213 [(set i32:$dst, (and i32:$src1, imm16ShiftedZExt:$src2))]>, 2214 isDOT; 2215} 2216def ORI : DForm_4<24, (outs gprc:$dst), (ins gprc:$src1, u16imm:$src2), 2217 "ori $dst, $src1, $src2", IIC_IntSimple, 2218 [(set i32:$dst, (or i32:$src1, immZExt16:$src2))]>; 2219def ORIS : DForm_4<25, (outs gprc:$dst), (ins gprc:$src1, u16imm:$src2), 2220 "oris $dst, $src1, $src2", IIC_IntSimple, 2221 [(set i32:$dst, (or i32:$src1, imm16ShiftedZExt:$src2))]>; 2222def XORI : DForm_4<26, (outs gprc:$dst), (ins gprc:$src1, u16imm:$src2), 2223 "xori $dst, $src1, $src2", IIC_IntSimple, 2224 [(set i32:$dst, (xor i32:$src1, immZExt16:$src2))]>; 2225def XORIS : DForm_4<27, (outs gprc:$dst), (ins gprc:$src1, u16imm:$src2), 2226 "xoris $dst, $src1, $src2", IIC_IntSimple, 2227 [(set i32:$dst, (xor i32:$src1, imm16ShiftedZExt:$src2))]>; 2228 2229def NOP : DForm_4_zero<24, (outs), (ins), "nop", IIC_IntSimple, 2230 []>; 2231let isCodeGenOnly = 1 in { 2232// The POWER6 and POWER7 have special group-terminating nops. 2233def NOP_GT_PWR6 : DForm_4_fixedreg_zero<24, 1, (outs), (ins), 2234 "ori 1, 1, 0", IIC_IntSimple, []>; 2235def NOP_GT_PWR7 : DForm_4_fixedreg_zero<24, 2, (outs), (ins), 2236 "ori 2, 2, 0", IIC_IntSimple, []>; 2237} 2238 2239let isCompare = 1, hasSideEffects = 0 in { 2240 def CMPWI : DForm_5_ext<11, (outs crrc:$crD), (ins gprc:$rA, s16imm:$imm), 2241 "cmpwi $crD, $rA, $imm", IIC_IntCompare>; 2242 def CMPLWI : DForm_6_ext<10, (outs crrc:$dst), (ins gprc:$src1, u16imm:$src2), 2243 "cmplwi $dst, $src1, $src2", IIC_IntCompare>; 2244 def CMPRB : X_BF3_L1_RS5_RS5<31, 192, (outs crbitrc:$BF), 2245 (ins u1imm:$L, g8rc:$rA, g8rc:$rB), 2246 "cmprb $BF, $L, $rA, $rB", IIC_IntCompare, []>, 2247 Requires<[IsISA3_0]>; 2248} 2249} 2250 2251let PPC970_Unit = 1, hasSideEffects = 0 in { // FXU Operations. 2252let isCommutable = 1 in { 2253defm NAND : XForm_6r<31, 476, (outs gprc:$rA), (ins gprc:$rS, gprc:$rB), 2254 "nand", "$rA, $rS, $rB", IIC_IntSimple, 2255 [(set i32:$rA, (not (and i32:$rS, i32:$rB)))]>; 2256defm AND : XForm_6r<31, 28, (outs gprc:$rA), (ins gprc:$rS, gprc:$rB), 2257 "and", "$rA, $rS, $rB", IIC_IntSimple, 2258 [(set i32:$rA, (and i32:$rS, i32:$rB))]>; 2259} // isCommutable 2260defm ANDC : XForm_6r<31, 60, (outs gprc:$rA), (ins gprc:$rS, gprc:$rB), 2261 "andc", "$rA, $rS, $rB", IIC_IntSimple, 2262 [(set i32:$rA, (and i32:$rS, (not i32:$rB)))]>; 2263let isCommutable = 1 in { 2264defm OR : XForm_6r<31, 444, (outs gprc:$rA), (ins gprc:$rS, gprc:$rB), 2265 "or", "$rA, $rS, $rB", IIC_IntSimple, 2266 [(set i32:$rA, (or i32:$rS, i32:$rB))]>; 2267defm NOR : XForm_6r<31, 124, (outs gprc:$rA), (ins gprc:$rS, gprc:$rB), 2268 "nor", "$rA, $rS, $rB", IIC_IntSimple, 2269 [(set i32:$rA, (not (or i32:$rS, i32:$rB)))]>; 2270} // isCommutable 2271defm ORC : XForm_6r<31, 412, (outs gprc:$rA), (ins gprc:$rS, gprc:$rB), 2272 "orc", "$rA, $rS, $rB", IIC_IntSimple, 2273 [(set i32:$rA, (or i32:$rS, (not i32:$rB)))]>; 2274let isCommutable = 1 in { 2275defm EQV : XForm_6r<31, 284, (outs gprc:$rA), (ins gprc:$rS, gprc:$rB), 2276 "eqv", "$rA, $rS, $rB", IIC_IntSimple, 2277 [(set i32:$rA, (not (xor i32:$rS, i32:$rB)))]>; 2278defm XOR : XForm_6r<31, 316, (outs gprc:$rA), (ins gprc:$rS, gprc:$rB), 2279 "xor", "$rA, $rS, $rB", IIC_IntSimple, 2280 [(set i32:$rA, (xor i32:$rS, i32:$rB))]>; 2281} // isCommutable 2282defm SLW : XForm_6r<31, 24, (outs gprc:$rA), (ins gprc:$rS, gprc:$rB), 2283 "slw", "$rA, $rS, $rB", IIC_IntGeneral, 2284 [(set i32:$rA, (PPCshl i32:$rS, i32:$rB))]>; 2285defm SRW : XForm_6r<31, 536, (outs gprc:$rA), (ins gprc:$rS, gprc:$rB), 2286 "srw", "$rA, $rS, $rB", IIC_IntGeneral, 2287 [(set i32:$rA, (PPCsrl i32:$rS, i32:$rB))]>; 2288defm SRAW : XForm_6rc<31, 792, (outs gprc:$rA), (ins gprc:$rS, gprc:$rB), 2289 "sraw", "$rA, $rS, $rB", IIC_IntShift, 2290 [(set i32:$rA, (PPCsra i32:$rS, i32:$rB))]>; 2291} 2292 2293let PPC970_Unit = 1 in { // FXU Operations. 2294let hasSideEffects = 0 in { 2295defm SRAWI : XForm_10rc<31, 824, (outs gprc:$rA), (ins gprc:$rS, u5imm:$SH), 2296 "srawi", "$rA, $rS, $SH", IIC_IntShift, 2297 [(set i32:$rA, (sra i32:$rS, (i32 imm:$SH)))]>; 2298defm CNTLZW : XForm_11r<31, 26, (outs gprc:$rA), (ins gprc:$rS), 2299 "cntlzw", "$rA, $rS", IIC_IntGeneral, 2300 [(set i32:$rA, (ctlz i32:$rS))]>; 2301defm CNTTZW : XForm_11r<31, 538, (outs gprc:$rA), (ins gprc:$rS), 2302 "cnttzw", "$rA, $rS", IIC_IntGeneral, 2303 [(set i32:$rA, (cttz i32:$rS))]>, Requires<[IsISA3_0]>; 2304defm EXTSB : XForm_11r<31, 954, (outs gprc:$rA), (ins gprc:$rS), 2305 "extsb", "$rA, $rS", IIC_IntSimple, 2306 [(set i32:$rA, (sext_inreg i32:$rS, i8))]>; 2307defm EXTSH : XForm_11r<31, 922, (outs gprc:$rA), (ins gprc:$rS), 2308 "extsh", "$rA, $rS", IIC_IntSimple, 2309 [(set i32:$rA, (sext_inreg i32:$rS, i16))]>; 2310 2311let isCommutable = 1 in 2312def CMPB : XForm_6<31, 508, (outs gprc:$rA), (ins gprc:$rS, gprc:$rB), 2313 "cmpb $rA, $rS, $rB", IIC_IntGeneral, 2314 [(set i32:$rA, (PPCcmpb i32:$rS, i32:$rB))]>; 2315} 2316let isCompare = 1, hasSideEffects = 0 in { 2317 def CMPW : XForm_16_ext<31, 0, (outs crrc:$crD), (ins gprc:$rA, gprc:$rB), 2318 "cmpw $crD, $rA, $rB", IIC_IntCompare>; 2319 def CMPLW : XForm_16_ext<31, 32, (outs crrc:$crD), (ins gprc:$rA, gprc:$rB), 2320 "cmplw $crD, $rA, $rB", IIC_IntCompare>; 2321} 2322} 2323let PPC970_Unit = 3, Predicates = [HasFPU] in { // FPU Operations. 2324//def FCMPO : XForm_17<63, 32, (outs CRRC:$crD), (ins FPRC:$fA, FPRC:$fB), 2325// "fcmpo $crD, $fA, $fB", IIC_FPCompare>; 2326let isCompare = 1, hasSideEffects = 0 in { 2327 def FCMPUS : XForm_17<63, 0, (outs crrc:$crD), (ins f4rc:$fA, f4rc:$fB), 2328 "fcmpu $crD, $fA, $fB", IIC_FPCompare>; 2329 let Interpretation64Bit = 1, isCodeGenOnly = 1 in 2330 def FCMPUD : XForm_17<63, 0, (outs crrc:$crD), (ins f8rc:$fA, f8rc:$fB), 2331 "fcmpu $crD, $fA, $fB", IIC_FPCompare>; 2332} 2333 2334def FTDIV: XForm_17<63, 128, (outs crrc:$crD), (ins f8rc:$fA, f8rc:$fB), 2335 "ftdiv $crD, $fA, $fB", IIC_FPCompare>; 2336def FTSQRT: XForm_17a<63, 160, (outs crrc:$crD), (ins f8rc:$fB), 2337 "ftsqrt $crD, $fB", IIC_FPCompare>; 2338 2339let Uses = [RM] in { 2340 let hasSideEffects = 0 in { 2341 defm FCTIW : XForm_26r<63, 14, (outs f8rc:$frD), (ins f8rc:$frB), 2342 "fctiw", "$frD, $frB", IIC_FPGeneral, 2343 []>; 2344 defm FCTIWU : XForm_26r<63, 142, (outs f8rc:$frD), (ins f8rc:$frB), 2345 "fctiwu", "$frD, $frB", IIC_FPGeneral, 2346 []>; 2347 defm FCTIWZ : XForm_26r<63, 15, (outs f8rc:$frD), (ins f8rc:$frB), 2348 "fctiwz", "$frD, $frB", IIC_FPGeneral, 2349 [(set f64:$frD, (PPCfctiwz f64:$frB))]>; 2350 2351 defm FRSP : XForm_26r<63, 12, (outs f4rc:$frD), (ins f8rc:$frB), 2352 "frsp", "$frD, $frB", IIC_FPGeneral, 2353 [(set f32:$frD, (fpround f64:$frB))]>; 2354 2355 let Interpretation64Bit = 1, isCodeGenOnly = 1 in 2356 defm FRIND : XForm_26r<63, 392, (outs f8rc:$frD), (ins f8rc:$frB), 2357 "frin", "$frD, $frB", IIC_FPGeneral, 2358 [(set f64:$frD, (fround f64:$frB))]>; 2359 defm FRINS : XForm_26r<63, 392, (outs f4rc:$frD), (ins f4rc:$frB), 2360 "frin", "$frD, $frB", IIC_FPGeneral, 2361 [(set f32:$frD, (fround f32:$frB))]>; 2362 } 2363 2364 let hasSideEffects = 0 in { 2365 let Interpretation64Bit = 1, isCodeGenOnly = 1 in 2366 defm FRIPD : XForm_26r<63, 456, (outs f8rc:$frD), (ins f8rc:$frB), 2367 "frip", "$frD, $frB", IIC_FPGeneral, 2368 [(set f64:$frD, (fceil f64:$frB))]>; 2369 defm FRIPS : XForm_26r<63, 456, (outs f4rc:$frD), (ins f4rc:$frB), 2370 "frip", "$frD, $frB", IIC_FPGeneral, 2371 [(set f32:$frD, (fceil f32:$frB))]>; 2372 let Interpretation64Bit = 1, isCodeGenOnly = 1 in 2373 defm FRIZD : XForm_26r<63, 424, (outs f8rc:$frD), (ins f8rc:$frB), 2374 "friz", "$frD, $frB", IIC_FPGeneral, 2375 [(set f64:$frD, (ftrunc f64:$frB))]>; 2376 defm FRIZS : XForm_26r<63, 424, (outs f4rc:$frD), (ins f4rc:$frB), 2377 "friz", "$frD, $frB", IIC_FPGeneral, 2378 [(set f32:$frD, (ftrunc f32:$frB))]>; 2379 let Interpretation64Bit = 1, isCodeGenOnly = 1 in 2380 defm FRIMD : XForm_26r<63, 488, (outs f8rc:$frD), (ins f8rc:$frB), 2381 "frim", "$frD, $frB", IIC_FPGeneral, 2382 [(set f64:$frD, (ffloor f64:$frB))]>; 2383 defm FRIMS : XForm_26r<63, 488, (outs f4rc:$frD), (ins f4rc:$frB), 2384 "frim", "$frD, $frB", IIC_FPGeneral, 2385 [(set f32:$frD, (ffloor f32:$frB))]>; 2386 2387 defm FSQRT : XForm_26r<63, 22, (outs f8rc:$frD), (ins f8rc:$frB), 2388 "fsqrt", "$frD, $frB", IIC_FPSqrtD, 2389 [(set f64:$frD, (fsqrt f64:$frB))]>; 2390 defm FSQRTS : XForm_26r<59, 22, (outs f4rc:$frD), (ins f4rc:$frB), 2391 "fsqrts", "$frD, $frB", IIC_FPSqrtS, 2392 [(set f32:$frD, (fsqrt f32:$frB))]>; 2393 } 2394 } 2395} 2396 2397/// Note that FMR is defined as pseudo-ops on the PPC970 because they are 2398/// often coalesced away and we don't want the dispatch group builder to think 2399/// that they will fill slots (which could cause the load of a LSU reject to 2400/// sneak into a d-group with a store). 2401let hasSideEffects = 0, Predicates = [HasFPU] in 2402defm FMR : XForm_26r<63, 72, (outs f4rc:$frD), (ins f4rc:$frB), 2403 "fmr", "$frD, $frB", IIC_FPGeneral, 2404 []>, // (set f32:$frD, f32:$frB) 2405 PPC970_Unit_Pseudo; 2406 2407let PPC970_Unit = 3, hasSideEffects = 0, Predicates = [HasFPU] in { // FPU Operations. 2408// These are artificially split into two different forms, for 4/8 byte FP. 2409defm FABSS : XForm_26r<63, 264, (outs f4rc:$frD), (ins f4rc:$frB), 2410 "fabs", "$frD, $frB", IIC_FPGeneral, 2411 [(set f32:$frD, (fabs f32:$frB))]>; 2412let Interpretation64Bit = 1, isCodeGenOnly = 1 in 2413defm FABSD : XForm_26r<63, 264, (outs f8rc:$frD), (ins f8rc:$frB), 2414 "fabs", "$frD, $frB", IIC_FPGeneral, 2415 [(set f64:$frD, (fabs f64:$frB))]>; 2416defm FNABSS : XForm_26r<63, 136, (outs f4rc:$frD), (ins f4rc:$frB), 2417 "fnabs", "$frD, $frB", IIC_FPGeneral, 2418 [(set f32:$frD, (fneg (fabs f32:$frB)))]>; 2419let Interpretation64Bit = 1, isCodeGenOnly = 1 in 2420defm FNABSD : XForm_26r<63, 136, (outs f8rc:$frD), (ins f8rc:$frB), 2421 "fnabs", "$frD, $frB", IIC_FPGeneral, 2422 [(set f64:$frD, (fneg (fabs f64:$frB)))]>; 2423defm FNEGS : XForm_26r<63, 40, (outs f4rc:$frD), (ins f4rc:$frB), 2424 "fneg", "$frD, $frB", IIC_FPGeneral, 2425 [(set f32:$frD, (fneg f32:$frB))]>; 2426let Interpretation64Bit = 1, isCodeGenOnly = 1 in 2427defm FNEGD : XForm_26r<63, 40, (outs f8rc:$frD), (ins f8rc:$frB), 2428 "fneg", "$frD, $frB", IIC_FPGeneral, 2429 [(set f64:$frD, (fneg f64:$frB))]>; 2430 2431defm FCPSGNS : XForm_28r<63, 8, (outs f4rc:$frD), (ins f4rc:$frA, f4rc:$frB), 2432 "fcpsgn", "$frD, $frA, $frB", IIC_FPGeneral, 2433 [(set f32:$frD, (fcopysign f32:$frB, f32:$frA))]>; 2434let Interpretation64Bit = 1, isCodeGenOnly = 1 in 2435defm FCPSGND : XForm_28r<63, 8, (outs f8rc:$frD), (ins f8rc:$frA, f8rc:$frB), 2436 "fcpsgn", "$frD, $frA, $frB", IIC_FPGeneral, 2437 [(set f64:$frD, (fcopysign f64:$frB, f64:$frA))]>; 2438 2439// Reciprocal estimates. 2440defm FRE : XForm_26r<63, 24, (outs f8rc:$frD), (ins f8rc:$frB), 2441 "fre", "$frD, $frB", IIC_FPGeneral, 2442 [(set f64:$frD, (PPCfre f64:$frB))]>; 2443defm FRES : XForm_26r<59, 24, (outs f4rc:$frD), (ins f4rc:$frB), 2444 "fres", "$frD, $frB", IIC_FPGeneral, 2445 [(set f32:$frD, (PPCfre f32:$frB))]>; 2446defm FRSQRTE : XForm_26r<63, 26, (outs f8rc:$frD), (ins f8rc:$frB), 2447 "frsqrte", "$frD, $frB", IIC_FPGeneral, 2448 [(set f64:$frD, (PPCfrsqrte f64:$frB))]>; 2449defm FRSQRTES : XForm_26r<59, 26, (outs f4rc:$frD), (ins f4rc:$frB), 2450 "frsqrtes", "$frD, $frB", IIC_FPGeneral, 2451 [(set f32:$frD, (PPCfrsqrte f32:$frB))]>; 2452} 2453 2454// XL-Form instructions. condition register logical ops. 2455// 2456let hasSideEffects = 0 in 2457def MCRF : XLForm_3<19, 0, (outs crrc:$BF), (ins crrc:$BFA), 2458 "mcrf $BF, $BFA", IIC_BrMCR>, 2459 PPC970_DGroup_First, PPC970_Unit_CRU; 2460 2461// FIXME: According to the ISA (section 2.5.1 of version 2.06), the 2462// condition-register logical instructions have preferred forms. Specifically, 2463// it is preferred that the bit specified by the BT field be in the same 2464// condition register as that specified by the bit BB. We might want to account 2465// for this via hinting the register allocator and anti-dep breakers, or we 2466// could constrain the register class to force this constraint and then loosen 2467// it during register allocation via convertToThreeAddress or some similar 2468// mechanism. 2469 2470let isCommutable = 1 in { 2471def CRAND : XLForm_1<19, 257, (outs crbitrc:$CRD), 2472 (ins crbitrc:$CRA, crbitrc:$CRB), 2473 "crand $CRD, $CRA, $CRB", IIC_BrCR, 2474 [(set i1:$CRD, (and i1:$CRA, i1:$CRB))]>; 2475 2476def CRNAND : XLForm_1<19, 225, (outs crbitrc:$CRD), 2477 (ins crbitrc:$CRA, crbitrc:$CRB), 2478 "crnand $CRD, $CRA, $CRB", IIC_BrCR, 2479 [(set i1:$CRD, (not (and i1:$CRA, i1:$CRB)))]>; 2480 2481def CROR : XLForm_1<19, 449, (outs crbitrc:$CRD), 2482 (ins crbitrc:$CRA, crbitrc:$CRB), 2483 "cror $CRD, $CRA, $CRB", IIC_BrCR, 2484 [(set i1:$CRD, (or i1:$CRA, i1:$CRB))]>; 2485 2486def CRXOR : XLForm_1<19, 193, (outs crbitrc:$CRD), 2487 (ins crbitrc:$CRA, crbitrc:$CRB), 2488 "crxor $CRD, $CRA, $CRB", IIC_BrCR, 2489 [(set i1:$CRD, (xor i1:$CRA, i1:$CRB))]>; 2490 2491def CRNOR : XLForm_1<19, 33, (outs crbitrc:$CRD), 2492 (ins crbitrc:$CRA, crbitrc:$CRB), 2493 "crnor $CRD, $CRA, $CRB", IIC_BrCR, 2494 [(set i1:$CRD, (not (or i1:$CRA, i1:$CRB)))]>; 2495 2496def CREQV : XLForm_1<19, 289, (outs crbitrc:$CRD), 2497 (ins crbitrc:$CRA, crbitrc:$CRB), 2498 "creqv $CRD, $CRA, $CRB", IIC_BrCR, 2499 [(set i1:$CRD, (not (xor i1:$CRA, i1:$CRB)))]>; 2500} // isCommutable 2501 2502def CRANDC : XLForm_1<19, 129, (outs crbitrc:$CRD), 2503 (ins crbitrc:$CRA, crbitrc:$CRB), 2504 "crandc $CRD, $CRA, $CRB", IIC_BrCR, 2505 [(set i1:$CRD, (and i1:$CRA, (not i1:$CRB)))]>; 2506 2507def CRORC : XLForm_1<19, 417, (outs crbitrc:$CRD), 2508 (ins crbitrc:$CRA, crbitrc:$CRB), 2509 "crorc $CRD, $CRA, $CRB", IIC_BrCR, 2510 [(set i1:$CRD, (or i1:$CRA, (not i1:$CRB)))]>; 2511 2512let isCodeGenOnly = 1 in { 2513def CRSET : XLForm_1_ext<19, 289, (outs crbitrc:$dst), (ins), 2514 "creqv $dst, $dst, $dst", IIC_BrCR, 2515 [(set i1:$dst, 1)]>; 2516 2517def CRUNSET: XLForm_1_ext<19, 193, (outs crbitrc:$dst), (ins), 2518 "crxor $dst, $dst, $dst", IIC_BrCR, 2519 [(set i1:$dst, 0)]>; 2520 2521let Defs = [CR1EQ], CRD = 6 in { 2522def CR6SET : XLForm_1_ext<19, 289, (outs), (ins), 2523 "creqv 6, 6, 6", IIC_BrCR, 2524 [(PPCcr6set)]>; 2525 2526def CR6UNSET: XLForm_1_ext<19, 193, (outs), (ins), 2527 "crxor 6, 6, 6", IIC_BrCR, 2528 [(PPCcr6unset)]>; 2529} 2530} 2531 2532// XFX-Form instructions. Instructions that deal with SPRs. 2533// 2534 2535def MFSPR : XFXForm_1<31, 339, (outs gprc:$RT), (ins i32imm:$SPR), 2536 "mfspr $RT, $SPR", IIC_SprMFSPR>; 2537def MTSPR : XFXForm_1<31, 467, (outs), (ins i32imm:$SPR, gprc:$RT), 2538 "mtspr $SPR, $RT", IIC_SprMTSPR>; 2539 2540def MFTB : XFXForm_1<31, 371, (outs gprc:$RT), (ins i32imm:$SPR), 2541 "mftb $RT, $SPR", IIC_SprMFTB>; 2542 2543def MFPMR : XFXForm_1<31, 334, (outs gprc:$RT), (ins i32imm:$SPR), 2544 "mfpmr $RT, $SPR", IIC_SprMFPMR>; 2545 2546def MTPMR : XFXForm_1<31, 462, (outs), (ins i32imm:$SPR, gprc:$RT), 2547 "mtpmr $SPR, $RT", IIC_SprMTPMR>; 2548 2549 2550// A pseudo-instruction used to implement the read of the 64-bit cycle counter 2551// on a 32-bit target. 2552let hasSideEffects = 1, usesCustomInserter = 1 in 2553def ReadTB : Pseudo<(outs gprc:$lo, gprc:$hi), (ins), 2554 "#ReadTB", []>; 2555 2556let Uses = [CTR] in { 2557def MFCTR : XFXForm_1_ext<31, 339, 9, (outs gprc:$rT), (ins), 2558 "mfctr $rT", IIC_SprMFSPR>, 2559 PPC970_DGroup_First, PPC970_Unit_FXU; 2560} 2561let Defs = [CTR], Pattern = [(PPCmtctr i32:$rS)] in { 2562def MTCTR : XFXForm_7_ext<31, 467, 9, (outs), (ins gprc:$rS), 2563 "mtctr $rS", IIC_SprMTSPR>, 2564 PPC970_DGroup_First, PPC970_Unit_FXU; 2565} 2566let hasSideEffects = 1, isCodeGenOnly = 1, Defs = [CTR] in { 2567let Pattern = [(int_ppc_mtctr i32:$rS)] in 2568def MTCTRloop : XFXForm_7_ext<31, 467, 9, (outs), (ins gprc:$rS), 2569 "mtctr $rS", IIC_SprMTSPR>, 2570 PPC970_DGroup_First, PPC970_Unit_FXU; 2571} 2572 2573let Defs = [LR] in { 2574def MTLR : XFXForm_7_ext<31, 467, 8, (outs), (ins gprc:$rS), 2575 "mtlr $rS", IIC_SprMTSPR>, 2576 PPC970_DGroup_First, PPC970_Unit_FXU; 2577} 2578let Uses = [LR] in { 2579def MFLR : XFXForm_1_ext<31, 339, 8, (outs gprc:$rT), (ins), 2580 "mflr $rT", IIC_SprMFSPR>, 2581 PPC970_DGroup_First, PPC970_Unit_FXU; 2582} 2583 2584let isCodeGenOnly = 1 in { 2585 // Move to/from VRSAVE: despite being a SPR, the VRSAVE register is renamed 2586 // like a GPR on the PPC970. As such, copies in and out have the same 2587 // performance characteristics as an OR instruction. 2588 def MTVRSAVE : XFXForm_7_ext<31, 467, 256, (outs), (ins gprc:$rS), 2589 "mtspr 256, $rS", IIC_IntGeneral>, 2590 PPC970_DGroup_Single, PPC970_Unit_FXU; 2591 def MFVRSAVE : XFXForm_1_ext<31, 339, 256, (outs gprc:$rT), (ins), 2592 "mfspr $rT, 256", IIC_IntGeneral>, 2593 PPC970_DGroup_First, PPC970_Unit_FXU; 2594 2595 def MTVRSAVEv : XFXForm_7_ext<31, 467, 256, 2596 (outs VRSAVERC:$reg), (ins gprc:$rS), 2597 "mtspr 256, $rS", IIC_IntGeneral>, 2598 PPC970_DGroup_Single, PPC970_Unit_FXU; 2599 def MFVRSAVEv : XFXForm_1_ext<31, 339, 256, (outs gprc:$rT), 2600 (ins VRSAVERC:$reg), 2601 "mfspr $rT, 256", IIC_IntGeneral>, 2602 PPC970_DGroup_First, PPC970_Unit_FXU; 2603} 2604 2605// Aliases for mtvrsave/mfvrsave to mfspr/mtspr. 2606def : InstAlias<"mtvrsave $rS", (MTVRSAVE gprc:$rS)>; 2607def : InstAlias<"mfvrsave $rS", (MFVRSAVE gprc:$rS)>; 2608 2609// SPILL_VRSAVE - Indicate that we're dumping the VRSAVE register, 2610// so we'll need to scavenge a register for it. 2611let mayStore = 1 in 2612def SPILL_VRSAVE : Pseudo<(outs), (ins VRSAVERC:$vrsave, memri:$F), 2613 "#SPILL_VRSAVE", []>; 2614 2615// RESTORE_VRSAVE - Indicate that we're restoring the VRSAVE register (previously 2616// spilled), so we'll need to scavenge a register for it. 2617let mayLoad = 1 in 2618def RESTORE_VRSAVE : Pseudo<(outs VRSAVERC:$vrsave), (ins memri:$F), 2619 "#RESTORE_VRSAVE", []>; 2620 2621let hasSideEffects = 0 in { 2622// mtocrf's input needs to be prepared by shifting by an amount dependent 2623// on the cr register selected. Thus, post-ra anti-dep breaking must not 2624// later change that register assignment. 2625let hasExtraDefRegAllocReq = 1 in { 2626def MTOCRF: XFXForm_5a<31, 144, (outs crbitm:$FXM), (ins gprc:$ST), 2627 "mtocrf $FXM, $ST", IIC_BrMCRX>, 2628 PPC970_DGroup_First, PPC970_Unit_CRU; 2629 2630// Similarly to mtocrf, the mask for mtcrf must be prepared in a way that 2631// is dependent on the cr fields being set. 2632def MTCRF : XFXForm_5<31, 144, (outs), (ins i32imm:$FXM, gprc:$rS), 2633 "mtcrf $FXM, $rS", IIC_BrMCRX>, 2634 PPC970_MicroCode, PPC970_Unit_CRU; 2635} // hasExtraDefRegAllocReq = 1 2636 2637// mfocrf's input needs to be prepared by shifting by an amount dependent 2638// on the cr register selected. Thus, post-ra anti-dep breaking must not 2639// later change that register assignment. 2640let hasExtraSrcRegAllocReq = 1 in { 2641def MFOCRF: XFXForm_5a<31, 19, (outs gprc:$rT), (ins crbitm:$FXM), 2642 "mfocrf $rT, $FXM", IIC_SprMFCRF>, 2643 PPC970_DGroup_First, PPC970_Unit_CRU; 2644 2645// Similarly to mfocrf, the mask for mfcrf must be prepared in a way that 2646// is dependent on the cr fields being copied. 2647def MFCR : XFXForm_3<31, 19, (outs gprc:$rT), (ins), 2648 "mfcr $rT", IIC_SprMFCR>, 2649 PPC970_MicroCode, PPC970_Unit_CRU; 2650} // hasExtraSrcRegAllocReq = 1 2651 2652def MCRXRX : X_BF3<31, 576, (outs crrc:$BF), (ins), 2653 "mcrxrx $BF", IIC_BrMCRX>, Requires<[IsISA3_0]>; 2654} // hasSideEffects = 0 2655 2656let Predicates = [HasFPU] in { 2657// Pseudo instruction to perform FADD in round-to-zero mode. 2658let usesCustomInserter = 1, Uses = [RM] in { 2659 def FADDrtz: Pseudo<(outs f8rc:$FRT), (ins f8rc:$FRA, f8rc:$FRB), "", 2660 [(set f64:$FRT, (PPCfaddrtz f64:$FRA, f64:$FRB))]>; 2661} 2662 2663// The above pseudo gets expanded to make use of the following instructions 2664// to manipulate FPSCR. Note that FPSCR is not modeled at the DAG level. 2665let Uses = [RM], Defs = [RM] in { 2666 def MTFSB0 : XForm_43<63, 70, (outs), (ins u5imm:$FM), 2667 "mtfsb0 $FM", IIC_IntMTFSB0, []>, 2668 PPC970_DGroup_Single, PPC970_Unit_FPU; 2669 def MTFSB1 : XForm_43<63, 38, (outs), (ins u5imm:$FM), 2670 "mtfsb1 $FM", IIC_IntMTFSB0, []>, 2671 PPC970_DGroup_Single, PPC970_Unit_FPU; 2672 let isCodeGenOnly = 1 in 2673 def MTFSFb : XFLForm<63, 711, (outs), (ins i32imm:$FM, f8rc:$rT), 2674 "mtfsf $FM, $rT", IIC_IntMTFSB0, []>, 2675 PPC970_DGroup_Single, PPC970_Unit_FPU; 2676} 2677let Uses = [RM] in { 2678 def MFFS : XForm_42<63, 583, (outs f8rc:$rT), (ins), 2679 "mffs $rT", IIC_IntMFFS, 2680 [(set f64:$rT, (PPCmffs))]>, 2681 PPC970_DGroup_Single, PPC970_Unit_FPU; 2682 2683 let Defs = [CR1] in 2684 def MFFSo : XForm_42<63, 583, (outs f8rc:$rT), (ins), 2685 "mffs. $rT", IIC_IntMFFS, []>, isDOT; 2686 2687 def MFFSCE : X_FRT5_XO2_XO3_XO10<63, 0, 1, 583, (outs f8rc:$rT), (ins), 2688 "mffsce $rT", IIC_IntMFFS, []>, 2689 PPC970_DGroup_Single, PPC970_Unit_FPU; 2690 2691 def MFFSCDRN : X_FRT5_XO2_XO3_FRB5_XO10<63, 2, 4, 583, (outs f8rc:$rT), 2692 (ins f8rc:$FRB), "mffscdrn $rT, $FRB", 2693 IIC_IntMFFS, []>, 2694 PPC970_DGroup_Single, PPC970_Unit_FPU; 2695 2696 def MFFSCDRNI : X_FRT5_XO2_XO3_DRM3_XO10<63, 2, 5, 583, (outs f8rc:$rT), 2697 (ins u3imm:$DRM), 2698 "mffscdrni $rT, $DRM", 2699 IIC_IntMFFS, []>, 2700 PPC970_DGroup_Single, PPC970_Unit_FPU; 2701 2702 def MFFSCRN : X_FRT5_XO2_XO3_FRB5_XO10<63, 2, 6, 583, (outs f8rc:$rT), 2703 (ins f8rc:$FRB), "mffscrn $rT, $FRB", 2704 IIC_IntMFFS, []>, 2705 PPC970_DGroup_Single, PPC970_Unit_FPU; 2706 2707 def MFFSCRNI : X_FRT5_XO2_XO3_RM2_X10<63, 2, 7, 583, (outs f8rc:$rT), 2708 (ins u2imm:$RM), "mffscrni $rT, $RM", 2709 IIC_IntMFFS, []>, 2710 PPC970_DGroup_Single, PPC970_Unit_FPU; 2711 2712 def MFFSL : X_FRT5_XO2_XO3_XO10<63, 3, 0, 583, (outs f8rc:$rT), (ins), 2713 "mffsl $rT", IIC_IntMFFS, []>, 2714 PPC970_DGroup_Single, PPC970_Unit_FPU; 2715} 2716} 2717 2718let Predicates = [IsISA3_0] in { 2719def MODSW : XForm_8<31, 779, (outs gprc:$rT), (ins gprc:$rA, gprc:$rB), 2720 "modsw $rT, $rA, $rB", IIC_IntDivW, 2721 [(set i32:$rT, (srem i32:$rA, i32:$rB))]>; 2722def MODUW : XForm_8<31, 267, (outs gprc:$rT), (ins gprc:$rA, gprc:$rB), 2723 "moduw $rT, $rA, $rB", IIC_IntDivW, 2724 [(set i32:$rT, (urem i32:$rA, i32:$rB))]>; 2725} 2726 2727let PPC970_Unit = 1, hasSideEffects = 0 in { // FXU Operations. 2728// XO-Form instructions. Arithmetic instructions that can set overflow bit 2729let isCommutable = 1 in 2730defm ADD4 : XOForm_1r<31, 266, 0, (outs gprc:$rT), (ins gprc:$rA, gprc:$rB), 2731 "add", "$rT, $rA, $rB", IIC_IntSimple, 2732 [(set i32:$rT, (add i32:$rA, i32:$rB))]>; 2733let isCodeGenOnly = 1 in 2734def ADD4TLS : XOForm_1<31, 266, 0, (outs gprc:$rT), (ins gprc:$rA, tlsreg32:$rB), 2735 "add $rT, $rA, $rB", IIC_IntSimple, 2736 [(set i32:$rT, (add i32:$rA, tglobaltlsaddr:$rB))]>; 2737let isCommutable = 1 in 2738defm ADDC : XOForm_1rc<31, 10, 0, (outs gprc:$rT), (ins gprc:$rA, gprc:$rB), 2739 "addc", "$rT, $rA, $rB", IIC_IntGeneral, 2740 [(set i32:$rT, (addc i32:$rA, i32:$rB))]>, 2741 PPC970_DGroup_Cracked; 2742 2743defm DIVW : XOForm_1rcr<31, 491, 0, (outs gprc:$rT), (ins gprc:$rA, gprc:$rB), 2744 "divw", "$rT, $rA, $rB", IIC_IntDivW, 2745 [(set i32:$rT, (sdiv i32:$rA, i32:$rB))]>; 2746defm DIVWU : XOForm_1rcr<31, 459, 0, (outs gprc:$rT), (ins gprc:$rA, gprc:$rB), 2747 "divwu", "$rT, $rA, $rB", IIC_IntDivW, 2748 [(set i32:$rT, (udiv i32:$rA, i32:$rB))]>; 2749def DIVWE : XOForm_1<31, 427, 0, (outs gprc:$rT), (ins gprc:$rA, gprc:$rB), 2750 "divwe $rT, $rA, $rB", IIC_IntDivW, 2751 [(set i32:$rT, (int_ppc_divwe gprc:$rA, gprc:$rB))]>, 2752 Requires<[HasExtDiv]>; 2753let Defs = [CR0] in 2754def DIVWEo : XOForm_1<31, 427, 0, (outs gprc:$rT), (ins gprc:$rA, gprc:$rB), 2755 "divwe. $rT, $rA, $rB", IIC_IntDivW, 2756 []>, isDOT, PPC970_DGroup_Cracked, PPC970_DGroup_First, 2757 Requires<[HasExtDiv]>; 2758def DIVWEU : XOForm_1<31, 395, 0, (outs gprc:$rT), (ins gprc:$rA, gprc:$rB), 2759 "divweu $rT, $rA, $rB", IIC_IntDivW, 2760 [(set i32:$rT, (int_ppc_divweu gprc:$rA, gprc:$rB))]>, 2761 Requires<[HasExtDiv]>; 2762let Defs = [CR0] in 2763def DIVWEUo : XOForm_1<31, 395, 0, (outs gprc:$rT), (ins gprc:$rA, gprc:$rB), 2764 "divweu. $rT, $rA, $rB", IIC_IntDivW, 2765 []>, isDOT, PPC970_DGroup_Cracked, PPC970_DGroup_First, 2766 Requires<[HasExtDiv]>; 2767let isCommutable = 1 in { 2768defm MULHW : XOForm_1r<31, 75, 0, (outs gprc:$rT), (ins gprc:$rA, gprc:$rB), 2769 "mulhw", "$rT, $rA, $rB", IIC_IntMulHW, 2770 [(set i32:$rT, (mulhs i32:$rA, i32:$rB))]>; 2771defm MULHWU : XOForm_1r<31, 11, 0, (outs gprc:$rT), (ins gprc:$rA, gprc:$rB), 2772 "mulhwu", "$rT, $rA, $rB", IIC_IntMulHWU, 2773 [(set i32:$rT, (mulhu i32:$rA, i32:$rB))]>; 2774defm MULLW : XOForm_1r<31, 235, 0, (outs gprc:$rT), (ins gprc:$rA, gprc:$rB), 2775 "mullw", "$rT, $rA, $rB", IIC_IntMulHW, 2776 [(set i32:$rT, (mul i32:$rA, i32:$rB))]>; 2777} // isCommutable 2778defm SUBF : XOForm_1r<31, 40, 0, (outs gprc:$rT), (ins gprc:$rA, gprc:$rB), 2779 "subf", "$rT, $rA, $rB", IIC_IntGeneral, 2780 [(set i32:$rT, (sub i32:$rB, i32:$rA))]>; 2781defm SUBFC : XOForm_1rc<31, 8, 0, (outs gprc:$rT), (ins gprc:$rA, gprc:$rB), 2782 "subfc", "$rT, $rA, $rB", IIC_IntGeneral, 2783 [(set i32:$rT, (subc i32:$rB, i32:$rA))]>, 2784 PPC970_DGroup_Cracked; 2785defm NEG : XOForm_3r<31, 104, 0, (outs gprc:$rT), (ins gprc:$rA), 2786 "neg", "$rT, $rA", IIC_IntSimple, 2787 [(set i32:$rT, (ineg i32:$rA))]>; 2788let Uses = [CARRY] in { 2789let isCommutable = 1 in 2790defm ADDE : XOForm_1rc<31, 138, 0, (outs gprc:$rT), (ins gprc:$rA, gprc:$rB), 2791 "adde", "$rT, $rA, $rB", IIC_IntGeneral, 2792 [(set i32:$rT, (adde i32:$rA, i32:$rB))]>; 2793defm ADDME : XOForm_3rc<31, 234, 0, (outs gprc:$rT), (ins gprc:$rA), 2794 "addme", "$rT, $rA", IIC_IntGeneral, 2795 [(set i32:$rT, (adde i32:$rA, -1))]>; 2796defm ADDZE : XOForm_3rc<31, 202, 0, (outs gprc:$rT), (ins gprc:$rA), 2797 "addze", "$rT, $rA", IIC_IntGeneral, 2798 [(set i32:$rT, (adde i32:$rA, 0))]>; 2799defm SUBFE : XOForm_1rc<31, 136, 0, (outs gprc:$rT), (ins gprc:$rA, gprc:$rB), 2800 "subfe", "$rT, $rA, $rB", IIC_IntGeneral, 2801 [(set i32:$rT, (sube i32:$rB, i32:$rA))]>; 2802defm SUBFME : XOForm_3rc<31, 232, 0, (outs gprc:$rT), (ins gprc:$rA), 2803 "subfme", "$rT, $rA", IIC_IntGeneral, 2804 [(set i32:$rT, (sube -1, i32:$rA))]>; 2805defm SUBFZE : XOForm_3rc<31, 200, 0, (outs gprc:$rT), (ins gprc:$rA), 2806 "subfze", "$rT, $rA", IIC_IntGeneral, 2807 [(set i32:$rT, (sube 0, i32:$rA))]>; 2808} 2809} 2810 2811// A-Form instructions. Most of the instructions executed in the FPU are of 2812// this type. 2813// 2814let PPC970_Unit = 3, hasSideEffects = 0, Predicates = [HasFPU] in { // FPU Operations. 2815let Uses = [RM] in { 2816let isCommutable = 1 in { 2817 defm FMADD : AForm_1r<63, 29, 2818 (outs f8rc:$FRT), (ins f8rc:$FRA, f8rc:$FRC, f8rc:$FRB), 2819 "fmadd", "$FRT, $FRA, $FRC, $FRB", IIC_FPFused, 2820 [(set f64:$FRT, (fma f64:$FRA, f64:$FRC, f64:$FRB))]>; 2821 defm FMADDS : AForm_1r<59, 29, 2822 (outs f4rc:$FRT), (ins f4rc:$FRA, f4rc:$FRC, f4rc:$FRB), 2823 "fmadds", "$FRT, $FRA, $FRC, $FRB", IIC_FPGeneral, 2824 [(set f32:$FRT, (fma f32:$FRA, f32:$FRC, f32:$FRB))]>; 2825 defm FMSUB : AForm_1r<63, 28, 2826 (outs f8rc:$FRT), (ins f8rc:$FRA, f8rc:$FRC, f8rc:$FRB), 2827 "fmsub", "$FRT, $FRA, $FRC, $FRB", IIC_FPFused, 2828 [(set f64:$FRT, 2829 (fma f64:$FRA, f64:$FRC, (fneg f64:$FRB)))]>; 2830 defm FMSUBS : AForm_1r<59, 28, 2831 (outs f4rc:$FRT), (ins f4rc:$FRA, f4rc:$FRC, f4rc:$FRB), 2832 "fmsubs", "$FRT, $FRA, $FRC, $FRB", IIC_FPGeneral, 2833 [(set f32:$FRT, 2834 (fma f32:$FRA, f32:$FRC, (fneg f32:$FRB)))]>; 2835 defm FNMADD : AForm_1r<63, 31, 2836 (outs f8rc:$FRT), (ins f8rc:$FRA, f8rc:$FRC, f8rc:$FRB), 2837 "fnmadd", "$FRT, $FRA, $FRC, $FRB", IIC_FPFused, 2838 [(set f64:$FRT, 2839 (fneg (fma f64:$FRA, f64:$FRC, f64:$FRB)))]>; 2840 defm FNMADDS : AForm_1r<59, 31, 2841 (outs f4rc:$FRT), (ins f4rc:$FRA, f4rc:$FRC, f4rc:$FRB), 2842 "fnmadds", "$FRT, $FRA, $FRC, $FRB", IIC_FPGeneral, 2843 [(set f32:$FRT, 2844 (fneg (fma f32:$FRA, f32:$FRC, f32:$FRB)))]>; 2845 defm FNMSUB : AForm_1r<63, 30, 2846 (outs f8rc:$FRT), (ins f8rc:$FRA, f8rc:$FRC, f8rc:$FRB), 2847 "fnmsub", "$FRT, $FRA, $FRC, $FRB", IIC_FPFused, 2848 [(set f64:$FRT, (fneg (fma f64:$FRA, f64:$FRC, 2849 (fneg f64:$FRB))))]>; 2850 defm FNMSUBS : AForm_1r<59, 30, 2851 (outs f4rc:$FRT), (ins f4rc:$FRA, f4rc:$FRC, f4rc:$FRB), 2852 "fnmsubs", "$FRT, $FRA, $FRC, $FRB", IIC_FPGeneral, 2853 [(set f32:$FRT, (fneg (fma f32:$FRA, f32:$FRC, 2854 (fneg f32:$FRB))))]>; 2855} // isCommutable 2856} 2857// FSEL is artificially split into 4 and 8-byte forms for the result. To avoid 2858// having 4 of these, force the comparison to always be an 8-byte double (code 2859// should use an FMRSD if the input comparison value really wants to be a float) 2860// and 4/8 byte forms for the result and operand type.. 2861let Interpretation64Bit = 1, isCodeGenOnly = 1 in 2862defm FSELD : AForm_1r<63, 23, 2863 (outs f8rc:$FRT), (ins f8rc:$FRA, f8rc:$FRC, f8rc:$FRB), 2864 "fsel", "$FRT, $FRA, $FRC, $FRB", IIC_FPGeneral, 2865 [(set f64:$FRT, (PPCfsel f64:$FRA, f64:$FRC, f64:$FRB))]>; 2866defm FSELS : AForm_1r<63, 23, 2867 (outs f4rc:$FRT), (ins f8rc:$FRA, f4rc:$FRC, f4rc:$FRB), 2868 "fsel", "$FRT, $FRA, $FRC, $FRB", IIC_FPGeneral, 2869 [(set f32:$FRT, (PPCfsel f64:$FRA, f32:$FRC, f32:$FRB))]>; 2870let Uses = [RM] in { 2871 let isCommutable = 1 in { 2872 defm FADD : AForm_2r<63, 21, 2873 (outs f8rc:$FRT), (ins f8rc:$FRA, f8rc:$FRB), 2874 "fadd", "$FRT, $FRA, $FRB", IIC_FPAddSub, 2875 [(set f64:$FRT, (fadd f64:$FRA, f64:$FRB))]>; 2876 defm FADDS : AForm_2r<59, 21, 2877 (outs f4rc:$FRT), (ins f4rc:$FRA, f4rc:$FRB), 2878 "fadds", "$FRT, $FRA, $FRB", IIC_FPGeneral, 2879 [(set f32:$FRT, (fadd f32:$FRA, f32:$FRB))]>; 2880 } // isCommutable 2881 defm FDIV : AForm_2r<63, 18, 2882 (outs f8rc:$FRT), (ins f8rc:$FRA, f8rc:$FRB), 2883 "fdiv", "$FRT, $FRA, $FRB", IIC_FPDivD, 2884 [(set f64:$FRT, (fdiv f64:$FRA, f64:$FRB))]>; 2885 defm FDIVS : AForm_2r<59, 18, 2886 (outs f4rc:$FRT), (ins f4rc:$FRA, f4rc:$FRB), 2887 "fdivs", "$FRT, $FRA, $FRB", IIC_FPDivS, 2888 [(set f32:$FRT, (fdiv f32:$FRA, f32:$FRB))]>; 2889 let isCommutable = 1 in { 2890 defm FMUL : AForm_3r<63, 25, 2891 (outs f8rc:$FRT), (ins f8rc:$FRA, f8rc:$FRC), 2892 "fmul", "$FRT, $FRA, $FRC", IIC_FPFused, 2893 [(set f64:$FRT, (fmul f64:$FRA, f64:$FRC))]>; 2894 defm FMULS : AForm_3r<59, 25, 2895 (outs f4rc:$FRT), (ins f4rc:$FRA, f4rc:$FRC), 2896 "fmuls", "$FRT, $FRA, $FRC", IIC_FPGeneral, 2897 [(set f32:$FRT, (fmul f32:$FRA, f32:$FRC))]>; 2898 } // isCommutable 2899 defm FSUB : AForm_2r<63, 20, 2900 (outs f8rc:$FRT), (ins f8rc:$FRA, f8rc:$FRB), 2901 "fsub", "$FRT, $FRA, $FRB", IIC_FPAddSub, 2902 [(set f64:$FRT, (fsub f64:$FRA, f64:$FRB))]>; 2903 defm FSUBS : AForm_2r<59, 20, 2904 (outs f4rc:$FRT), (ins f4rc:$FRA, f4rc:$FRB), 2905 "fsubs", "$FRT, $FRA, $FRB", IIC_FPGeneral, 2906 [(set f32:$FRT, (fsub f32:$FRA, f32:$FRB))]>; 2907 } 2908} 2909 2910let hasSideEffects = 0 in { 2911let PPC970_Unit = 1 in { // FXU Operations. 2912 let isSelect = 1 in 2913 def ISEL : AForm_4<31, 15, 2914 (outs gprc:$rT), (ins gprc_nor0:$rA, gprc:$rB, crbitrc:$cond), 2915 "isel $rT, $rA, $rB, $cond", IIC_IntISEL, 2916 []>; 2917} 2918 2919let PPC970_Unit = 1 in { // FXU Operations. 2920// M-Form instructions. rotate and mask instructions. 2921// 2922let isCommutable = 1 in { 2923// RLWIMI can be commuted if the rotate amount is zero. 2924defm RLWIMI : MForm_2r<20, (outs gprc:$rA), 2925 (ins gprc:$rSi, gprc:$rS, u5imm:$SH, u5imm:$MB, 2926 u5imm:$ME), "rlwimi", "$rA, $rS, $SH, $MB, $ME", 2927 IIC_IntRotate, []>, PPC970_DGroup_Cracked, 2928 RegConstraint<"$rSi = $rA">, NoEncode<"$rSi">; 2929} 2930let BaseName = "rlwinm" in { 2931def RLWINM : MForm_2<21, 2932 (outs gprc:$rA), (ins gprc:$rS, u5imm:$SH, u5imm:$MB, u5imm:$ME), 2933 "rlwinm $rA, $rS, $SH, $MB, $ME", IIC_IntGeneral, 2934 []>, RecFormRel; 2935let Defs = [CR0] in 2936def RLWINMo : MForm_2<21, 2937 (outs gprc:$rA), (ins gprc:$rS, u5imm:$SH, u5imm:$MB, u5imm:$ME), 2938 "rlwinm. $rA, $rS, $SH, $MB, $ME", IIC_IntGeneral, 2939 []>, isDOT, RecFormRel, PPC970_DGroup_Cracked; 2940} 2941defm RLWNM : MForm_2r<23, (outs gprc:$rA), 2942 (ins gprc:$rS, gprc:$rB, u5imm:$MB, u5imm:$ME), 2943 "rlwnm", "$rA, $rS, $rB, $MB, $ME", IIC_IntGeneral, 2944 []>; 2945} 2946} // hasSideEffects = 0 2947 2948//===----------------------------------------------------------------------===// 2949// PowerPC Instruction Patterns 2950// 2951 2952// Arbitrary immediate support. Implement in terms of LIS/ORI. 2953def : Pat<(i32 imm:$imm), 2954 (ORI (LIS (HI16 imm:$imm)), (LO16 imm:$imm))>; 2955 2956// Implement the 'not' operation with the NOR instruction. 2957def i32not : OutPatFrag<(ops node:$in), 2958 (NOR $in, $in)>; 2959def : Pat<(not i32:$in), 2960 (i32not $in)>; 2961 2962// ADD an arbitrary immediate. 2963def : Pat<(add i32:$in, imm:$imm), 2964 (ADDIS (ADDI $in, (LO16 imm:$imm)), (HA16 imm:$imm))>; 2965// OR an arbitrary immediate. 2966def : Pat<(or i32:$in, imm:$imm), 2967 (ORIS (ORI $in, (LO16 imm:$imm)), (HI16 imm:$imm))>; 2968// XOR an arbitrary immediate. 2969def : Pat<(xor i32:$in, imm:$imm), 2970 (XORIS (XORI $in, (LO16 imm:$imm)), (HI16 imm:$imm))>; 2971// SUBFIC 2972def : Pat<(sub imm32SExt16:$imm, i32:$in), 2973 (SUBFIC $in, imm:$imm)>; 2974 2975// SHL/SRL 2976def : Pat<(shl i32:$in, (i32 imm:$imm)), 2977 (RLWINM $in, imm:$imm, 0, (SHL32 imm:$imm))>; 2978def : Pat<(srl i32:$in, (i32 imm:$imm)), 2979 (RLWINM $in, (SRL32 imm:$imm), imm:$imm, 31)>; 2980 2981// ROTL 2982def : Pat<(rotl i32:$in, i32:$sh), 2983 (RLWNM $in, $sh, 0, 31)>; 2984def : Pat<(rotl i32:$in, (i32 imm:$imm)), 2985 (RLWINM $in, imm:$imm, 0, 31)>; 2986 2987// RLWNM 2988def : Pat<(and (rotl i32:$in, i32:$sh), maskimm32:$imm), 2989 (RLWNM $in, $sh, (MB maskimm32:$imm), (ME maskimm32:$imm))>; 2990 2991// Calls 2992def : Pat<(PPCcall (i32 tglobaladdr:$dst)), 2993 (BL tglobaladdr:$dst)>; 2994def : Pat<(PPCcall (i32 texternalsym:$dst)), 2995 (BL texternalsym:$dst)>; 2996 2997def : Pat<(PPCtc_return (i32 tglobaladdr:$dst), imm:$imm), 2998 (TCRETURNdi tglobaladdr:$dst, imm:$imm)>; 2999 3000def : Pat<(PPCtc_return (i32 texternalsym:$dst), imm:$imm), 3001 (TCRETURNdi texternalsym:$dst, imm:$imm)>; 3002 3003def : Pat<(PPCtc_return CTRRC:$dst, imm:$imm), 3004 (TCRETURNri CTRRC:$dst, imm:$imm)>; 3005 3006 3007 3008// Hi and Lo for Darwin Global Addresses. 3009def : Pat<(PPChi tglobaladdr:$in, 0), (LIS tglobaladdr:$in)>; 3010def : Pat<(PPClo tglobaladdr:$in, 0), (LI tglobaladdr:$in)>; 3011def : Pat<(PPChi tconstpool:$in, 0), (LIS tconstpool:$in)>; 3012def : Pat<(PPClo tconstpool:$in, 0), (LI tconstpool:$in)>; 3013def : Pat<(PPChi tjumptable:$in, 0), (LIS tjumptable:$in)>; 3014def : Pat<(PPClo tjumptable:$in, 0), (LI tjumptable:$in)>; 3015def : Pat<(PPChi tblockaddress:$in, 0), (LIS tblockaddress:$in)>; 3016def : Pat<(PPClo tblockaddress:$in, 0), (LI tblockaddress:$in)>; 3017def : Pat<(PPChi tglobaltlsaddr:$g, i32:$in), 3018 (ADDIS $in, tglobaltlsaddr:$g)>; 3019def : Pat<(PPClo tglobaltlsaddr:$g, i32:$in), 3020 (ADDI $in, tglobaltlsaddr:$g)>; 3021def : Pat<(add i32:$in, (PPChi tglobaladdr:$g, 0)), 3022 (ADDIS $in, tglobaladdr:$g)>; 3023def : Pat<(add i32:$in, (PPChi tconstpool:$g, 0)), 3024 (ADDIS $in, tconstpool:$g)>; 3025def : Pat<(add i32:$in, (PPChi tjumptable:$g, 0)), 3026 (ADDIS $in, tjumptable:$g)>; 3027def : Pat<(add i32:$in, (PPChi tblockaddress:$g, 0)), 3028 (ADDIS $in, tblockaddress:$g)>; 3029 3030// Support for thread-local storage. 3031def PPC32GOT: Pseudo<(outs gprc:$rD), (ins), "#PPC32GOT", 3032 [(set i32:$rD, (PPCppc32GOT))]>; 3033 3034// Get the _GLOBAL_OFFSET_TABLE_ in PIC mode. 3035// This uses two output registers, the first as the real output, the second as a 3036// temporary register, used internally in code generation. 3037def PPC32PICGOT: Pseudo<(outs gprc:$rD, gprc:$rT), (ins), "#PPC32PICGOT", 3038 []>, NoEncode<"$rT">; 3039 3040def LDgotTprelL32: Pseudo<(outs gprc:$rD), (ins s16imm:$disp, gprc_nor0:$reg), 3041 "#LDgotTprelL32", 3042 [(set i32:$rD, 3043 (PPCldGotTprelL tglobaltlsaddr:$disp, i32:$reg))]>; 3044def : Pat<(PPCaddTls i32:$in, tglobaltlsaddr:$g), 3045 (ADD4TLS $in, tglobaltlsaddr:$g)>; 3046 3047def ADDItlsgdL32 : Pseudo<(outs gprc:$rD), (ins gprc_nor0:$reg, s16imm:$disp), 3048 "#ADDItlsgdL32", 3049 [(set i32:$rD, 3050 (PPCaddiTlsgdL i32:$reg, tglobaltlsaddr:$disp))]>; 3051// LR is a true define, while the rest of the Defs are clobbers. R3 is 3052// explicitly defined when this op is created, so not mentioned here. 3053let hasExtraSrcRegAllocReq = 1, hasExtraDefRegAllocReq = 1, 3054 Defs = [R0,R4,R5,R6,R7,R8,R9,R10,R11,R12,LR,CTR,CR0,CR1,CR5,CR6,CR7] in 3055def GETtlsADDR32 : Pseudo<(outs gprc:$rD), (ins gprc:$reg, tlsgd32:$sym), 3056 "GETtlsADDR32", 3057 [(set i32:$rD, 3058 (PPCgetTlsAddr i32:$reg, tglobaltlsaddr:$sym))]>; 3059// Combined op for ADDItlsgdL32 and GETtlsADDR32, late expanded. R3 and LR 3060// are true defines while the rest of the Defs are clobbers. 3061let hasExtraSrcRegAllocReq = 1, hasExtraDefRegAllocReq = 1, 3062 Defs = [R0,R3,R4,R5,R6,R7,R8,R9,R10,R11,R12,LR,CTR,CR0,CR1,CR5,CR6,CR7] in 3063def ADDItlsgdLADDR32 : Pseudo<(outs gprc:$rD), 3064 (ins gprc_nor0:$reg, s16imm:$disp, tlsgd32:$sym), 3065 "#ADDItlsgdLADDR32", 3066 [(set i32:$rD, 3067 (PPCaddiTlsgdLAddr i32:$reg, 3068 tglobaltlsaddr:$disp, 3069 tglobaltlsaddr:$sym))]>; 3070def ADDItlsldL32 : Pseudo<(outs gprc:$rD), (ins gprc_nor0:$reg, s16imm:$disp), 3071 "#ADDItlsldL32", 3072 [(set i32:$rD, 3073 (PPCaddiTlsldL i32:$reg, tglobaltlsaddr:$disp))]>; 3074// LR is a true define, while the rest of the Defs are clobbers. R3 is 3075// explicitly defined when this op is created, so not mentioned here. 3076let hasExtraSrcRegAllocReq = 1, hasExtraDefRegAllocReq = 1, 3077 Defs = [R0,R4,R5,R6,R7,R8,R9,R10,R11,R12,LR,CTR,CR0,CR1,CR5,CR6,CR7] in 3078def GETtlsldADDR32 : Pseudo<(outs gprc:$rD), (ins gprc:$reg, tlsgd32:$sym), 3079 "GETtlsldADDR32", 3080 [(set i32:$rD, 3081 (PPCgetTlsldAddr i32:$reg, 3082 tglobaltlsaddr:$sym))]>; 3083// Combined op for ADDItlsldL32 and GETtlsADDR32, late expanded. R3 and LR 3084// are true defines while the rest of the Defs are clobbers. 3085let hasExtraSrcRegAllocReq = 1, hasExtraDefRegAllocReq = 1, 3086 Defs = [R0,R3,R4,R5,R6,R7,R8,R9,R10,R11,R12,LR,CTR,CR0,CR1,CR5,CR6,CR7] in 3087def ADDItlsldLADDR32 : Pseudo<(outs gprc:$rD), 3088 (ins gprc_nor0:$reg, s16imm:$disp, tlsgd32:$sym), 3089 "#ADDItlsldLADDR32", 3090 [(set i32:$rD, 3091 (PPCaddiTlsldLAddr i32:$reg, 3092 tglobaltlsaddr:$disp, 3093 tglobaltlsaddr:$sym))]>; 3094def ADDIdtprelL32 : Pseudo<(outs gprc:$rD), (ins gprc_nor0:$reg, s16imm:$disp), 3095 "#ADDIdtprelL32", 3096 [(set i32:$rD, 3097 (PPCaddiDtprelL i32:$reg, tglobaltlsaddr:$disp))]>; 3098def ADDISdtprelHA32 : Pseudo<(outs gprc:$rD), (ins gprc_nor0:$reg, s16imm:$disp), 3099 "#ADDISdtprelHA32", 3100 [(set i32:$rD, 3101 (PPCaddisDtprelHA i32:$reg, 3102 tglobaltlsaddr:$disp))]>; 3103 3104// Support for Position-independent code 3105def LWZtoc : Pseudo<(outs gprc:$rD), (ins tocentry32:$disp, gprc:$reg), 3106 "#LWZtoc", 3107 [(set i32:$rD, 3108 (PPCtoc_entry tglobaladdr:$disp, i32:$reg))]>; 3109// Get Global (GOT) Base Register offset, from the word immediately preceding 3110// the function label. 3111def UpdateGBR : Pseudo<(outs gprc:$rD, gprc:$rT), (ins gprc:$rI), "#UpdateGBR", []>; 3112 3113 3114// Standard shifts. These are represented separately from the real shifts above 3115// so that we can distinguish between shifts that allow 5-bit and 6-bit shift 3116// amounts. 3117def : Pat<(sra i32:$rS, i32:$rB), 3118 (SRAW $rS, $rB)>; 3119def : Pat<(srl i32:$rS, i32:$rB), 3120 (SRW $rS, $rB)>; 3121def : Pat<(shl i32:$rS, i32:$rB), 3122 (SLW $rS, $rB)>; 3123 3124def : Pat<(zextloadi1 iaddr:$src), 3125 (LBZ iaddr:$src)>; 3126def : Pat<(zextloadi1 xaddr:$src), 3127 (LBZX xaddr:$src)>; 3128def : Pat<(extloadi1 iaddr:$src), 3129 (LBZ iaddr:$src)>; 3130def : Pat<(extloadi1 xaddr:$src), 3131 (LBZX xaddr:$src)>; 3132def : Pat<(extloadi8 iaddr:$src), 3133 (LBZ iaddr:$src)>; 3134def : Pat<(extloadi8 xaddr:$src), 3135 (LBZX xaddr:$src)>; 3136def : Pat<(extloadi16 iaddr:$src), 3137 (LHZ iaddr:$src)>; 3138def : Pat<(extloadi16 xaddr:$src), 3139 (LHZX xaddr:$src)>; 3140let Predicates = [HasFPU] in { 3141def : Pat<(f64 (extloadf32 iaddr:$src)), 3142 (COPY_TO_REGCLASS (LFS iaddr:$src), F8RC)>; 3143def : Pat<(f64 (extloadf32 xaddr:$src)), 3144 (COPY_TO_REGCLASS (LFSX xaddr:$src), F8RC)>; 3145 3146def : Pat<(f64 (fpextend f32:$src)), 3147 (COPY_TO_REGCLASS $src, F8RC)>; 3148} 3149 3150// Only seq_cst fences require the heavyweight sync (SYNC 0). 3151// All others can use the lightweight sync (SYNC 1). 3152// source: http://www.cl.cam.ac.uk/~pes20/cpp/cpp0xmappings.html 3153// The rule for seq_cst is duplicated to work with both 64 bits and 32 bits 3154// versions of Power. 3155def : Pat<(atomic_fence (i64 7), (imm)), (SYNC 0)>, Requires<[HasSYNC]>; 3156def : Pat<(atomic_fence (i32 7), (imm)), (SYNC 0)>, Requires<[HasSYNC]>; 3157def : Pat<(atomic_fence (imm), (imm)), (SYNC 1)>, Requires<[HasSYNC]>; 3158def : Pat<(atomic_fence (imm), (imm)), (MSYNC)>, Requires<[HasOnlyMSYNC]>; 3159 3160let Predicates = [HasFPU] in { 3161// Additional FNMSUB patterns: -a*c + b == -(a*c - b) 3162def : Pat<(fma (fneg f64:$A), f64:$C, f64:$B), 3163 (FNMSUB $A, $C, $B)>; 3164def : Pat<(fma f64:$A, (fneg f64:$C), f64:$B), 3165 (FNMSUB $A, $C, $B)>; 3166def : Pat<(fma (fneg f32:$A), f32:$C, f32:$B), 3167 (FNMSUBS $A, $C, $B)>; 3168def : Pat<(fma f32:$A, (fneg f32:$C), f32:$B), 3169 (FNMSUBS $A, $C, $B)>; 3170 3171// FCOPYSIGN's operand types need not agree. 3172def : Pat<(fcopysign f64:$frB, f32:$frA), 3173 (FCPSGND (COPY_TO_REGCLASS $frA, F8RC), $frB)>; 3174def : Pat<(fcopysign f32:$frB, f64:$frA), 3175 (FCPSGNS (COPY_TO_REGCLASS $frA, F4RC), $frB)>; 3176} 3177 3178include "PPCInstrAltivec.td" 3179include "PPCInstrSPE.td" 3180include "PPCInstr64Bit.td" 3181include "PPCInstrVSX.td" 3182include "PPCInstrQPX.td" 3183include "PPCInstrHTM.td" 3184 3185def crnot : OutPatFrag<(ops node:$in), 3186 (CRNOR $in, $in)>; 3187def : Pat<(not i1:$in), 3188 (crnot $in)>; 3189 3190// Patterns for arithmetic i1 operations. 3191def : Pat<(add i1:$a, i1:$b), 3192 (CRXOR $a, $b)>; 3193def : Pat<(sub i1:$a, i1:$b), 3194 (CRXOR $a, $b)>; 3195def : Pat<(mul i1:$a, i1:$b), 3196 (CRAND $a, $b)>; 3197 3198// We're sometimes asked to materialize i1 -1, which is just 1 in this case 3199// (-1 is used to mean all bits set). 3200def : Pat<(i1 -1), (CRSET)>; 3201 3202// i1 extensions, implemented in terms of isel. 3203def : Pat<(i32 (zext i1:$in)), 3204 (SELECT_I4 $in, (LI 1), (LI 0))>; 3205def : Pat<(i32 (sext i1:$in)), 3206 (SELECT_I4 $in, (LI -1), (LI 0))>; 3207 3208def : Pat<(i64 (zext i1:$in)), 3209 (SELECT_I8 $in, (LI8 1), (LI8 0))>; 3210def : Pat<(i64 (sext i1:$in)), 3211 (SELECT_I8 $in, (LI8 -1), (LI8 0))>; 3212 3213// FIXME: We should choose either a zext or a sext based on other constants 3214// already around. 3215def : Pat<(i32 (anyext i1:$in)), 3216 (SELECT_I4 $in, (LI 1), (LI 0))>; 3217def : Pat<(i64 (anyext i1:$in)), 3218 (SELECT_I8 $in, (LI8 1), (LI8 0))>; 3219 3220// match setcc on i1 variables. 3221// CRANDC is: 3222// 1 1 : F 3223// 1 0 : T 3224// 0 1 : F 3225// 0 0 : F 3226// 3227// LT is: 3228// -1 -1 : F 3229// -1 0 : T 3230// 0 -1 : F 3231// 0 0 : F 3232// 3233// ULT is: 3234// 1 1 : F 3235// 1 0 : F 3236// 0 1 : T 3237// 0 0 : F 3238def : Pat<(i1 (setcc i1:$s1, i1:$s2, SETLT)), 3239 (CRANDC $s1, $s2)>; 3240def : Pat<(i1 (setcc i1:$s1, i1:$s2, SETULT)), 3241 (CRANDC $s2, $s1)>; 3242// CRORC is: 3243// 1 1 : T 3244// 1 0 : T 3245// 0 1 : F 3246// 0 0 : T 3247// 3248// LE is: 3249// -1 -1 : T 3250// -1 0 : T 3251// 0 -1 : F 3252// 0 0 : T 3253// 3254// ULE is: 3255// 1 1 : T 3256// 1 0 : F 3257// 0 1 : T 3258// 0 0 : T 3259def : Pat<(i1 (setcc i1:$s1, i1:$s2, SETLE)), 3260 (CRORC $s1, $s2)>; 3261def : Pat<(i1 (setcc i1:$s1, i1:$s2, SETULE)), 3262 (CRORC $s2, $s1)>; 3263 3264def : Pat<(i1 (setcc i1:$s1, i1:$s2, SETEQ)), 3265 (CREQV $s1, $s2)>; 3266 3267// GE is: 3268// -1 -1 : T 3269// -1 0 : F 3270// 0 -1 : T 3271// 0 0 : T 3272// 3273// UGE is: 3274// 1 1 : T 3275// 1 0 : T 3276// 0 1 : F 3277// 0 0 : T 3278def : Pat<(i1 (setcc i1:$s1, i1:$s2, SETGE)), 3279 (CRORC $s2, $s1)>; 3280def : Pat<(i1 (setcc i1:$s1, i1:$s2, SETUGE)), 3281 (CRORC $s1, $s2)>; 3282 3283// GT is: 3284// -1 -1 : F 3285// -1 0 : F 3286// 0 -1 : T 3287// 0 0 : F 3288// 3289// UGT is: 3290// 1 1 : F 3291// 1 0 : T 3292// 0 1 : F 3293// 0 0 : F 3294def : Pat<(i1 (setcc i1:$s1, i1:$s2, SETGT)), 3295 (CRANDC $s2, $s1)>; 3296def : Pat<(i1 (setcc i1:$s1, i1:$s2, SETUGT)), 3297 (CRANDC $s1, $s2)>; 3298 3299def : Pat<(i1 (setcc i1:$s1, i1:$s2, SETNE)), 3300 (CRXOR $s1, $s2)>; 3301 3302// match setcc on non-i1 (non-vector) variables. Note that SETUEQ, SETOGE, 3303// SETOLE, SETONE, SETULT and SETUGT should be expanded by legalize for 3304// floating-point types. 3305 3306multiclass CRNotPat<dag pattern, dag result> { 3307 def : Pat<pattern, (crnot result)>; 3308 def : Pat<(not pattern), result>; 3309 3310 // We can also fold the crnot into an extension: 3311 def : Pat<(i32 (zext pattern)), 3312 (SELECT_I4 result, (LI 0), (LI 1))>; 3313 def : Pat<(i32 (sext pattern)), 3314 (SELECT_I4 result, (LI 0), (LI -1))>; 3315 3316 // We can also fold the crnot into an extension: 3317 def : Pat<(i64 (zext pattern)), 3318 (SELECT_I8 result, (LI8 0), (LI8 1))>; 3319 def : Pat<(i64 (sext pattern)), 3320 (SELECT_I8 result, (LI8 0), (LI8 -1))>; 3321 3322 // FIXME: We should choose either a zext or a sext based on other constants 3323 // already around. 3324 def : Pat<(i32 (anyext pattern)), 3325 (SELECT_I4 result, (LI 0), (LI 1))>; 3326 3327 def : Pat<(i64 (anyext pattern)), 3328 (SELECT_I8 result, (LI8 0), (LI8 1))>; 3329} 3330 3331// FIXME: Because of what seems like a bug in TableGen's type-inference code, 3332// we need to write imm:$imm in the output patterns below, not just $imm, or 3333// else the resulting matcher will not correctly add the immediate operand 3334// (making it a register operand instead). 3335 3336// extended SETCC. 3337multiclass ExtSetCCPat<CondCode cc, PatFrag pfrag, 3338 OutPatFrag rfrag, OutPatFrag rfrag8> { 3339 def : Pat<(i32 (zext (i1 (pfrag i32:$s1, cc)))), 3340 (rfrag $s1)>; 3341 def : Pat<(i64 (zext (i1 (pfrag i64:$s1, cc)))), 3342 (rfrag8 $s1)>; 3343 def : Pat<(i64 (zext (i1 (pfrag i32:$s1, cc)))), 3344 (INSERT_SUBREG (i64 (IMPLICIT_DEF)), (rfrag $s1), sub_32)>; 3345 def : Pat<(i32 (zext (i1 (pfrag i64:$s1, cc)))), 3346 (EXTRACT_SUBREG (rfrag8 $s1), sub_32)>; 3347 3348 def : Pat<(i32 (anyext (i1 (pfrag i32:$s1, cc)))), 3349 (rfrag $s1)>; 3350 def : Pat<(i64 (anyext (i1 (pfrag i64:$s1, cc)))), 3351 (rfrag8 $s1)>; 3352 def : Pat<(i64 (anyext (i1 (pfrag i32:$s1, cc)))), 3353 (INSERT_SUBREG (i64 (IMPLICIT_DEF)), (rfrag $s1), sub_32)>; 3354 def : Pat<(i32 (anyext (i1 (pfrag i64:$s1, cc)))), 3355 (EXTRACT_SUBREG (rfrag8 $s1), sub_32)>; 3356} 3357 3358// Note that we do all inversions below with i(32|64)not, instead of using 3359// (xori x, 1) because on the A2 nor has single-cycle latency while xori 3360// has 2-cycle latency. 3361 3362defm : ExtSetCCPat<SETEQ, 3363 PatFrag<(ops node:$in, node:$cc), 3364 (setcc $in, 0, $cc)>, 3365 OutPatFrag<(ops node:$in), 3366 (RLWINM (CNTLZW $in), 27, 31, 31)>, 3367 OutPatFrag<(ops node:$in), 3368 (RLDICL (CNTLZD $in), 58, 63)> >; 3369 3370defm : ExtSetCCPat<SETNE, 3371 PatFrag<(ops node:$in, node:$cc), 3372 (setcc $in, 0, $cc)>, 3373 OutPatFrag<(ops node:$in), 3374 (RLWINM (i32not (CNTLZW $in)), 27, 31, 31)>, 3375 OutPatFrag<(ops node:$in), 3376 (RLDICL (i64not (CNTLZD $in)), 58, 63)> >; 3377 3378defm : ExtSetCCPat<SETLT, 3379 PatFrag<(ops node:$in, node:$cc), 3380 (setcc $in, 0, $cc)>, 3381 OutPatFrag<(ops node:$in), 3382 (RLWINM $in, 1, 31, 31)>, 3383 OutPatFrag<(ops node:$in), 3384 (RLDICL $in, 1, 63)> >; 3385 3386defm : ExtSetCCPat<SETGE, 3387 PatFrag<(ops node:$in, node:$cc), 3388 (setcc $in, 0, $cc)>, 3389 OutPatFrag<(ops node:$in), 3390 (RLWINM (i32not $in), 1, 31, 31)>, 3391 OutPatFrag<(ops node:$in), 3392 (RLDICL (i64not $in), 1, 63)> >; 3393 3394defm : ExtSetCCPat<SETGT, 3395 PatFrag<(ops node:$in, node:$cc), 3396 (setcc $in, 0, $cc)>, 3397 OutPatFrag<(ops node:$in), 3398 (RLWINM (ANDC (NEG $in), $in), 1, 31, 31)>, 3399 OutPatFrag<(ops node:$in), 3400 (RLDICL (ANDC8 (NEG8 $in), $in), 1, 63)> >; 3401 3402defm : ExtSetCCPat<SETLE, 3403 PatFrag<(ops node:$in, node:$cc), 3404 (setcc $in, 0, $cc)>, 3405 OutPatFrag<(ops node:$in), 3406 (RLWINM (ORC $in, (NEG $in)), 1, 31, 31)>, 3407 OutPatFrag<(ops node:$in), 3408 (RLDICL (ORC8 $in, (NEG8 $in)), 1, 63)> >; 3409 3410defm : ExtSetCCPat<SETLT, 3411 PatFrag<(ops node:$in, node:$cc), 3412 (setcc $in, -1, $cc)>, 3413 OutPatFrag<(ops node:$in), 3414 (RLWINM (AND $in, (ADDI $in, 1)), 1, 31, 31)>, 3415 OutPatFrag<(ops node:$in), 3416 (RLDICL (AND8 $in, (ADDI8 $in, 1)), 1, 63)> >; 3417 3418defm : ExtSetCCPat<SETGE, 3419 PatFrag<(ops node:$in, node:$cc), 3420 (setcc $in, -1, $cc)>, 3421 OutPatFrag<(ops node:$in), 3422 (RLWINM (NAND $in, (ADDI $in, 1)), 1, 31, 31)>, 3423 OutPatFrag<(ops node:$in), 3424 (RLDICL (NAND8 $in, (ADDI8 $in, 1)), 1, 63)> >; 3425 3426defm : ExtSetCCPat<SETGT, 3427 PatFrag<(ops node:$in, node:$cc), 3428 (setcc $in, -1, $cc)>, 3429 OutPatFrag<(ops node:$in), 3430 (RLWINM (i32not $in), 1, 31, 31)>, 3431 OutPatFrag<(ops node:$in), 3432 (RLDICL (i64not $in), 1, 63)> >; 3433 3434defm : ExtSetCCPat<SETLE, 3435 PatFrag<(ops node:$in, node:$cc), 3436 (setcc $in, -1, $cc)>, 3437 OutPatFrag<(ops node:$in), 3438 (RLWINM $in, 1, 31, 31)>, 3439 OutPatFrag<(ops node:$in), 3440 (RLDICL $in, 1, 63)> >; 3441 3442// An extended SETCC with shift amount. 3443multiclass ExtSetCCShiftPat<CondCode cc, PatFrag pfrag, 3444 OutPatFrag rfrag, OutPatFrag rfrag8> { 3445 def : Pat<(i32 (zext (i1 (pfrag i32:$s1, i32:$sa, cc)))), 3446 (rfrag $s1, $sa)>; 3447 def : Pat<(i64 (zext (i1 (pfrag i64:$s1, i32:$sa, cc)))), 3448 (rfrag8 $s1, $sa)>; 3449 def : Pat<(i64 (zext (i1 (pfrag i32:$s1, i32:$sa, cc)))), 3450 (INSERT_SUBREG (i64 (IMPLICIT_DEF)), (rfrag $s1, $sa), sub_32)>; 3451 def : Pat<(i32 (zext (i1 (pfrag i64:$s1, i32:$sa, cc)))), 3452 (EXTRACT_SUBREG (rfrag8 $s1, $sa), sub_32)>; 3453 3454 def : Pat<(i32 (anyext (i1 (pfrag i32:$s1, i32:$sa, cc)))), 3455 (rfrag $s1, $sa)>; 3456 def : Pat<(i64 (anyext (i1 (pfrag i64:$s1, i32:$sa, cc)))), 3457 (rfrag8 $s1, $sa)>; 3458 def : Pat<(i64 (anyext (i1 (pfrag i32:$s1, i32:$sa, cc)))), 3459 (INSERT_SUBREG (i64 (IMPLICIT_DEF)), (rfrag $s1, $sa), sub_32)>; 3460 def : Pat<(i32 (anyext (i1 (pfrag i64:$s1, i32:$sa, cc)))), 3461 (EXTRACT_SUBREG (rfrag8 $s1, $sa), sub_32)>; 3462} 3463 3464defm : ExtSetCCShiftPat<SETNE, 3465 PatFrag<(ops node:$in, node:$sa, node:$cc), 3466 (setcc (and $in, (shl 1, $sa)), 0, $cc)>, 3467 OutPatFrag<(ops node:$in, node:$sa), 3468 (RLWNM $in, (SUBFIC $sa, 32), 31, 31)>, 3469 OutPatFrag<(ops node:$in, node:$sa), 3470 (RLDCL $in, (SUBFIC $sa, 64), 63)> >; 3471 3472defm : ExtSetCCShiftPat<SETEQ, 3473 PatFrag<(ops node:$in, node:$sa, node:$cc), 3474 (setcc (and $in, (shl 1, $sa)), 0, $cc)>, 3475 OutPatFrag<(ops node:$in, node:$sa), 3476 (RLWNM (i32not $in), 3477 (SUBFIC $sa, 32), 31, 31)>, 3478 OutPatFrag<(ops node:$in, node:$sa), 3479 (RLDCL (i64not $in), 3480 (SUBFIC $sa, 64), 63)> >; 3481 3482// SETCC for i32. 3483def : Pat<(i1 (setcc i32:$s1, immZExt16:$imm, SETULT)), 3484 (EXTRACT_SUBREG (CMPLWI $s1, imm:$imm), sub_lt)>; 3485def : Pat<(i1 (setcc i32:$s1, imm32SExt16:$imm, SETLT)), 3486 (EXTRACT_SUBREG (CMPWI $s1, imm:$imm), sub_lt)>; 3487def : Pat<(i1 (setcc i32:$s1, immZExt16:$imm, SETUGT)), 3488 (EXTRACT_SUBREG (CMPLWI $s1, imm:$imm), sub_gt)>; 3489def : Pat<(i1 (setcc i32:$s1, imm32SExt16:$imm, SETGT)), 3490 (EXTRACT_SUBREG (CMPWI $s1, imm:$imm), sub_gt)>; 3491def : Pat<(i1 (setcc i32:$s1, imm32SExt16:$imm, SETEQ)), 3492 (EXTRACT_SUBREG (CMPWI $s1, imm:$imm), sub_eq)>; 3493def : Pat<(i1 (setcc i32:$s1, immZExt16:$imm, SETEQ)), 3494 (EXTRACT_SUBREG (CMPLWI $s1, imm:$imm), sub_eq)>; 3495 3496// For non-equality comparisons, the default code would materialize the 3497// constant, then compare against it, like this: 3498// lis r2, 4660 3499// ori r2, r2, 22136 3500// cmpw cr0, r3, r2 3501// beq cr0,L6 3502// Since we are just comparing for equality, we can emit this instead: 3503// xoris r0,r3,0x1234 3504// cmplwi cr0,r0,0x5678 3505// beq cr0,L6 3506 3507def : Pat<(i1 (setcc i32:$s1, imm:$imm, SETEQ)), 3508 (EXTRACT_SUBREG (CMPLWI (XORIS $s1, (HI16 imm:$imm)), 3509 (LO16 imm:$imm)), sub_eq)>; 3510 3511defm : CRNotPat<(i1 (setcc i32:$s1, immZExt16:$imm, SETUGE)), 3512 (EXTRACT_SUBREG (CMPLWI $s1, imm:$imm), sub_lt)>; 3513defm : CRNotPat<(i1 (setcc i32:$s1, imm32SExt16:$imm, SETGE)), 3514 (EXTRACT_SUBREG (CMPWI $s1, imm:$imm), sub_lt)>; 3515defm : CRNotPat<(i1 (setcc i32:$s1, immZExt16:$imm, SETULE)), 3516 (EXTRACT_SUBREG (CMPLWI $s1, imm:$imm), sub_gt)>; 3517defm : CRNotPat<(i1 (setcc i32:$s1, imm32SExt16:$imm, SETLE)), 3518 (EXTRACT_SUBREG (CMPWI $s1, imm:$imm), sub_gt)>; 3519defm : CRNotPat<(i1 (setcc i32:$s1, imm32SExt16:$imm, SETNE)), 3520 (EXTRACT_SUBREG (CMPWI $s1, imm:$imm), sub_eq)>; 3521defm : CRNotPat<(i1 (setcc i32:$s1, immZExt16:$imm, SETNE)), 3522 (EXTRACT_SUBREG (CMPLWI $s1, imm:$imm), sub_eq)>; 3523 3524defm : CRNotPat<(i1 (setcc i32:$s1, imm:$imm, SETNE)), 3525 (EXTRACT_SUBREG (CMPLWI (XORIS $s1, (HI16 imm:$imm)), 3526 (LO16 imm:$imm)), sub_eq)>; 3527 3528def : Pat<(i1 (setcc i32:$s1, i32:$s2, SETULT)), 3529 (EXTRACT_SUBREG (CMPLW $s1, $s2), sub_lt)>; 3530def : Pat<(i1 (setcc i32:$s1, i32:$s2, SETLT)), 3531 (EXTRACT_SUBREG (CMPW $s1, $s2), sub_lt)>; 3532def : Pat<(i1 (setcc i32:$s1, i32:$s2, SETUGT)), 3533 (EXTRACT_SUBREG (CMPLW $s1, $s2), sub_gt)>; 3534def : Pat<(i1 (setcc i32:$s1, i32:$s2, SETGT)), 3535 (EXTRACT_SUBREG (CMPW $s1, $s2), sub_gt)>; 3536def : Pat<(i1 (setcc i32:$s1, i32:$s2, SETEQ)), 3537 (EXTRACT_SUBREG (CMPW $s1, $s2), sub_eq)>; 3538 3539defm : CRNotPat<(i1 (setcc i32:$s1, i32:$s2, SETUGE)), 3540 (EXTRACT_SUBREG (CMPLW $s1, $s2), sub_lt)>; 3541defm : CRNotPat<(i1 (setcc i32:$s1, i32:$s2, SETGE)), 3542 (EXTRACT_SUBREG (CMPW $s1, $s2), sub_lt)>; 3543defm : CRNotPat<(i1 (setcc i32:$s1, i32:$s2, SETULE)), 3544 (EXTRACT_SUBREG (CMPLW $s1, $s2), sub_gt)>; 3545defm : CRNotPat<(i1 (setcc i32:$s1, i32:$s2, SETLE)), 3546 (EXTRACT_SUBREG (CMPW $s1, $s2), sub_gt)>; 3547defm : CRNotPat<(i1 (setcc i32:$s1, i32:$s2, SETNE)), 3548 (EXTRACT_SUBREG (CMPW $s1, $s2), sub_eq)>; 3549 3550// SETCC for i64. 3551def : Pat<(i1 (setcc i64:$s1, immZExt16:$imm, SETULT)), 3552 (EXTRACT_SUBREG (CMPLDI $s1, imm:$imm), sub_lt)>; 3553def : Pat<(i1 (setcc i64:$s1, imm64SExt16:$imm, SETLT)), 3554 (EXTRACT_SUBREG (CMPDI $s1, imm:$imm), sub_lt)>; 3555def : Pat<(i1 (setcc i64:$s1, immZExt16:$imm, SETUGT)), 3556 (EXTRACT_SUBREG (CMPLDI $s1, imm:$imm), sub_gt)>; 3557def : Pat<(i1 (setcc i64:$s1, imm64SExt16:$imm, SETGT)), 3558 (EXTRACT_SUBREG (CMPDI $s1, imm:$imm), sub_gt)>; 3559def : Pat<(i1 (setcc i64:$s1, imm64SExt16:$imm, SETEQ)), 3560 (EXTRACT_SUBREG (CMPDI $s1, imm:$imm), sub_eq)>; 3561def : Pat<(i1 (setcc i64:$s1, immZExt16:$imm, SETEQ)), 3562 (EXTRACT_SUBREG (CMPLDI $s1, imm:$imm), sub_eq)>; 3563 3564// For non-equality comparisons, the default code would materialize the 3565// constant, then compare against it, like this: 3566// lis r2, 4660 3567// ori r2, r2, 22136 3568// cmpd cr0, r3, r2 3569// beq cr0,L6 3570// Since we are just comparing for equality, we can emit this instead: 3571// xoris r0,r3,0x1234 3572// cmpldi cr0,r0,0x5678 3573// beq cr0,L6 3574 3575def : Pat<(i1 (setcc i64:$s1, imm64ZExt32:$imm, SETEQ)), 3576 (EXTRACT_SUBREG (CMPLDI (XORIS8 $s1, (HI16 imm:$imm)), 3577 (LO16 imm:$imm)), sub_eq)>; 3578 3579defm : CRNotPat<(i1 (setcc i64:$s1, immZExt16:$imm, SETUGE)), 3580 (EXTRACT_SUBREG (CMPLDI $s1, imm:$imm), sub_lt)>; 3581defm : CRNotPat<(i1 (setcc i64:$s1, imm64SExt16:$imm, SETGE)), 3582 (EXTRACT_SUBREG (CMPDI $s1, imm:$imm), sub_lt)>; 3583defm : CRNotPat<(i1 (setcc i64:$s1, immZExt16:$imm, SETULE)), 3584 (EXTRACT_SUBREG (CMPLDI $s1, imm:$imm), sub_gt)>; 3585defm : CRNotPat<(i1 (setcc i64:$s1, imm64SExt16:$imm, SETLE)), 3586 (EXTRACT_SUBREG (CMPDI $s1, imm:$imm), sub_gt)>; 3587defm : CRNotPat<(i1 (setcc i64:$s1, imm64SExt16:$imm, SETNE)), 3588 (EXTRACT_SUBREG (CMPDI $s1, imm:$imm), sub_eq)>; 3589defm : CRNotPat<(i1 (setcc i64:$s1, immZExt16:$imm, SETNE)), 3590 (EXTRACT_SUBREG (CMPLDI $s1, imm:$imm), sub_eq)>; 3591 3592defm : CRNotPat<(i1 (setcc i64:$s1, imm64ZExt32:$imm, SETNE)), 3593 (EXTRACT_SUBREG (CMPLDI (XORIS8 $s1, (HI16 imm:$imm)), 3594 (LO16 imm:$imm)), sub_eq)>; 3595 3596def : Pat<(i1 (setcc i64:$s1, i64:$s2, SETULT)), 3597 (EXTRACT_SUBREG (CMPLD $s1, $s2), sub_lt)>; 3598def : Pat<(i1 (setcc i64:$s1, i64:$s2, SETLT)), 3599 (EXTRACT_SUBREG (CMPD $s1, $s2), sub_lt)>; 3600def : Pat<(i1 (setcc i64:$s1, i64:$s2, SETUGT)), 3601 (EXTRACT_SUBREG (CMPLD $s1, $s2), sub_gt)>; 3602def : Pat<(i1 (setcc i64:$s1, i64:$s2, SETGT)), 3603 (EXTRACT_SUBREG (CMPD $s1, $s2), sub_gt)>; 3604def : Pat<(i1 (setcc i64:$s1, i64:$s2, SETEQ)), 3605 (EXTRACT_SUBREG (CMPD $s1, $s2), sub_eq)>; 3606 3607defm : CRNotPat<(i1 (setcc i64:$s1, i64:$s2, SETUGE)), 3608 (EXTRACT_SUBREG (CMPLD $s1, $s2), sub_lt)>; 3609defm : CRNotPat<(i1 (setcc i64:$s1, i64:$s2, SETGE)), 3610 (EXTRACT_SUBREG (CMPD $s1, $s2), sub_lt)>; 3611defm : CRNotPat<(i1 (setcc i64:$s1, i64:$s2, SETULE)), 3612 (EXTRACT_SUBREG (CMPLD $s1, $s2), sub_gt)>; 3613defm : CRNotPat<(i1 (setcc i64:$s1, i64:$s2, SETLE)), 3614 (EXTRACT_SUBREG (CMPD $s1, $s2), sub_gt)>; 3615defm : CRNotPat<(i1 (setcc i64:$s1, i64:$s2, SETNE)), 3616 (EXTRACT_SUBREG (CMPD $s1, $s2), sub_eq)>; 3617 3618// SETCC for f32. 3619let Predicates = [HasFPU] in { 3620def : Pat<(i1 (setcc f32:$s1, f32:$s2, SETOLT)), 3621 (EXTRACT_SUBREG (FCMPUS $s1, $s2), sub_lt)>; 3622def : Pat<(i1 (setcc f32:$s1, f32:$s2, SETLT)), 3623 (EXTRACT_SUBREG (FCMPUS $s1, $s2), sub_lt)>; 3624def : Pat<(i1 (setcc f32:$s1, f32:$s2, SETOGT)), 3625 (EXTRACT_SUBREG (FCMPUS $s1, $s2), sub_gt)>; 3626def : Pat<(i1 (setcc f32:$s1, f32:$s2, SETGT)), 3627 (EXTRACT_SUBREG (FCMPUS $s1, $s2), sub_gt)>; 3628def : Pat<(i1 (setcc f32:$s1, f32:$s2, SETOEQ)), 3629 (EXTRACT_SUBREG (FCMPUS $s1, $s2), sub_eq)>; 3630def : Pat<(i1 (setcc f32:$s1, f32:$s2, SETEQ)), 3631 (EXTRACT_SUBREG (FCMPUS $s1, $s2), sub_eq)>; 3632def : Pat<(i1 (setcc f32:$s1, f32:$s2, SETUO)), 3633 (EXTRACT_SUBREG (FCMPUS $s1, $s2), sub_un)>; 3634 3635defm : CRNotPat<(i1 (setcc f32:$s1, f32:$s2, SETUGE)), 3636 (EXTRACT_SUBREG (FCMPUS $s1, $s2), sub_lt)>; 3637defm : CRNotPat<(i1 (setcc f32:$s1, f32:$s2, SETGE)), 3638 (EXTRACT_SUBREG (FCMPUS $s1, $s2), sub_lt)>; 3639defm : CRNotPat<(i1 (setcc f32:$s1, f32:$s2, SETULE)), 3640 (EXTRACT_SUBREG (FCMPUS $s1, $s2), sub_gt)>; 3641defm : CRNotPat<(i1 (setcc f32:$s1, f32:$s2, SETLE)), 3642 (EXTRACT_SUBREG (FCMPUS $s1, $s2), sub_gt)>; 3643defm : CRNotPat<(i1 (setcc f32:$s1, f32:$s2, SETUNE)), 3644 (EXTRACT_SUBREG (FCMPUS $s1, $s2), sub_eq)>; 3645defm : CRNotPat<(i1 (setcc f32:$s1, f32:$s2, SETNE)), 3646 (EXTRACT_SUBREG (FCMPUS $s1, $s2), sub_eq)>; 3647defm : CRNotPat<(i1 (setcc f32:$s1, f32:$s2, SETO)), 3648 (EXTRACT_SUBREG (FCMPUS $s1, $s2), sub_un)>; 3649 3650// SETCC for f64. 3651def : Pat<(i1 (setcc f64:$s1, f64:$s2, SETOLT)), 3652 (EXTRACT_SUBREG (FCMPUD $s1, $s2), sub_lt)>; 3653def : Pat<(i1 (setcc f64:$s1, f64:$s2, SETLT)), 3654 (EXTRACT_SUBREG (FCMPUD $s1, $s2), sub_lt)>; 3655def : Pat<(i1 (setcc f64:$s1, f64:$s2, SETOGT)), 3656 (EXTRACT_SUBREG (FCMPUD $s1, $s2), sub_gt)>; 3657def : Pat<(i1 (setcc f64:$s1, f64:$s2, SETGT)), 3658 (EXTRACT_SUBREG (FCMPUD $s1, $s2), sub_gt)>; 3659def : Pat<(i1 (setcc f64:$s1, f64:$s2, SETOEQ)), 3660 (EXTRACT_SUBREG (FCMPUD $s1, $s2), sub_eq)>; 3661def : Pat<(i1 (setcc f64:$s1, f64:$s2, SETEQ)), 3662 (EXTRACT_SUBREG (FCMPUD $s1, $s2), sub_eq)>; 3663def : Pat<(i1 (setcc f64:$s1, f64:$s2, SETUO)), 3664 (EXTRACT_SUBREG (FCMPUD $s1, $s2), sub_un)>; 3665 3666defm : CRNotPat<(i1 (setcc f64:$s1, f64:$s2, SETUGE)), 3667 (EXTRACT_SUBREG (FCMPUD $s1, $s2), sub_lt)>; 3668defm : CRNotPat<(i1 (setcc f64:$s1, f64:$s2, SETGE)), 3669 (EXTRACT_SUBREG (FCMPUD $s1, $s2), sub_lt)>; 3670defm : CRNotPat<(i1 (setcc f64:$s1, f64:$s2, SETULE)), 3671 (EXTRACT_SUBREG (FCMPUD $s1, $s2), sub_gt)>; 3672defm : CRNotPat<(i1 (setcc f64:$s1, f64:$s2, SETLE)), 3673 (EXTRACT_SUBREG (FCMPUD $s1, $s2), sub_gt)>; 3674defm : CRNotPat<(i1 (setcc f64:$s1, f64:$s2, SETUNE)), 3675 (EXTRACT_SUBREG (FCMPUD $s1, $s2), sub_eq)>; 3676defm : CRNotPat<(i1 (setcc f64:$s1, f64:$s2, SETNE)), 3677 (EXTRACT_SUBREG (FCMPUD $s1, $s2), sub_eq)>; 3678defm : CRNotPat<(i1 (setcc f64:$s1, f64:$s2, SETO)), 3679 (EXTRACT_SUBREG (FCMPUD $s1, $s2), sub_un)>; 3680 3681// SETCC for f128. 3682def : Pat<(i1 (setcc f128:$s1, f128:$s2, SETOLT)), 3683 (EXTRACT_SUBREG (XSCMPUQP $s1, $s2), sub_lt)>; 3684def : Pat<(i1 (setcc f128:$s1, f128:$s2, SETLT)), 3685 (EXTRACT_SUBREG (XSCMPUQP $s1, $s2), sub_lt)>; 3686def : Pat<(i1 (setcc f128:$s1, f128:$s2, SETOGT)), 3687 (EXTRACT_SUBREG (XSCMPUQP $s1, $s2), sub_gt)>; 3688def : Pat<(i1 (setcc f128:$s1, f128:$s2, SETGT)), 3689 (EXTRACT_SUBREG (XSCMPUQP $s1, $s2), sub_gt)>; 3690def : Pat<(i1 (setcc f128:$s1, f128:$s2, SETOEQ)), 3691 (EXTRACT_SUBREG (XSCMPUQP $s1, $s2), sub_eq)>; 3692def : Pat<(i1 (setcc f128:$s1, f128:$s2, SETEQ)), 3693 (EXTRACT_SUBREG (XSCMPUQP $s1, $s2), sub_eq)>; 3694def : Pat<(i1 (setcc f128:$s1, f128:$s2, SETUO)), 3695 (EXTRACT_SUBREG (XSCMPUQP $s1, $s2), sub_un)>; 3696 3697defm : CRNotPat<(i1 (setcc f128:$s1, f128:$s2, SETUGE)), 3698 (EXTRACT_SUBREG (XSCMPUQP $s1, $s2), sub_lt)>; 3699defm : CRNotPat<(i1 (setcc f128:$s1, f128:$s2, SETGE)), 3700 (EXTRACT_SUBREG (XSCMPUQP $s1, $s2), sub_lt)>; 3701defm : CRNotPat<(i1 (setcc f128:$s1, f128:$s2, SETULE)), 3702 (EXTRACT_SUBREG (XSCMPUQP $s1, $s2), sub_gt)>; 3703defm : CRNotPat<(i1 (setcc f128:$s1, f128:$s2, SETLE)), 3704 (EXTRACT_SUBREG (XSCMPUQP $s1, $s2), sub_gt)>; 3705defm : CRNotPat<(i1 (setcc f128:$s1, f128:$s2, SETUNE)), 3706 (EXTRACT_SUBREG (XSCMPUQP $s1, $s2), sub_eq)>; 3707defm : CRNotPat<(i1 (setcc f128:$s1, f128:$s2, SETNE)), 3708 (EXTRACT_SUBREG (XSCMPUQP $s1, $s2), sub_eq)>; 3709defm : CRNotPat<(i1 (setcc f128:$s1, f128:$s2, SETO)), 3710 (EXTRACT_SUBREG (XSCMPUQP $s1, $s2), sub_un)>; 3711 3712} 3713 3714// This must be in this file because it relies on patterns defined in this file 3715// after the inclusion of the instruction sets. 3716let Predicates = [HasSPE] in { 3717// SETCC for f32. 3718def : Pat<(i1 (setcc f32:$s1, f32:$s2, SETOLT)), 3719 (EXTRACT_SUBREG (EFSCMPLT $s1, $s2), sub_gt)>; 3720def : Pat<(i1 (setcc f32:$s1, f32:$s2, SETLT)), 3721 (EXTRACT_SUBREG (EFSCMPLT $s1, $s2), sub_gt)>; 3722def : Pat<(i1 (setcc f32:$s1, f32:$s2, SETOGT)), 3723 (EXTRACT_SUBREG (EFSCMPGT $s1, $s2), sub_gt)>; 3724def : Pat<(i1 (setcc f32:$s1, f32:$s2, SETGT)), 3725 (EXTRACT_SUBREG (EFSCMPGT $s1, $s2), sub_gt)>; 3726def : Pat<(i1 (setcc f32:$s1, f32:$s2, SETOEQ)), 3727 (EXTRACT_SUBREG (EFSCMPEQ $s1, $s2), sub_gt)>; 3728def : Pat<(i1 (setcc f32:$s1, f32:$s2, SETEQ)), 3729 (EXTRACT_SUBREG (EFSCMPEQ $s1, $s2), sub_gt)>; 3730 3731defm : CRNotPat<(i1 (setcc f32:$s1, f32:$s2, SETUGE)), 3732 (EXTRACT_SUBREG (EFSCMPLT $s1, $s2), sub_gt)>; 3733defm : CRNotPat<(i1 (setcc f32:$s1, f32:$s2, SETGE)), 3734 (EXTRACT_SUBREG (EFSCMPLT $s1, $s2), sub_gt)>; 3735defm : CRNotPat<(i1 (setcc f32:$s1, f32:$s2, SETULE)), 3736 (EXTRACT_SUBREG (EFSCMPGT $s1, $s2), sub_gt)>; 3737defm : CRNotPat<(i1 (setcc f32:$s1, f32:$s2, SETLE)), 3738 (EXTRACT_SUBREG (EFSCMPGT $s1, $s2), sub_gt)>; 3739defm : CRNotPat<(i1 (setcc f32:$s1, f32:$s2, SETUNE)), 3740 (EXTRACT_SUBREG (EFSCMPEQ $s1, $s2), sub_gt)>; 3741defm : CRNotPat<(i1 (setcc f32:$s1, f32:$s2, SETNE)), 3742 (EXTRACT_SUBREG (EFSCMPEQ $s1, $s2), sub_gt)>; 3743 3744// SETCC for f64. 3745def : Pat<(i1 (setcc f64:$s1, f64:$s2, SETOLT)), 3746 (EXTRACT_SUBREG (EFDCMPLT $s1, $s2), sub_gt)>; 3747def : Pat<(i1 (setcc f64:$s1, f64:$s2, SETLT)), 3748 (EXTRACT_SUBREG (EFDCMPLT $s1, $s2), sub_gt)>; 3749def : Pat<(i1 (setcc f64:$s1, f64:$s2, SETOGT)), 3750 (EXTRACT_SUBREG (EFDCMPGT $s1, $s2), sub_gt)>; 3751def : Pat<(i1 (setcc f64:$s1, f64:$s2, SETGT)), 3752 (EXTRACT_SUBREG (EFDCMPGT $s1, $s2), sub_gt)>; 3753def : Pat<(i1 (setcc f64:$s1, f64:$s2, SETOEQ)), 3754 (EXTRACT_SUBREG (EFDCMPEQ $s1, $s2), sub_gt)>; 3755def : Pat<(i1 (setcc f64:$s1, f64:$s2, SETEQ)), 3756 (EXTRACT_SUBREG (EFDCMPEQ $s1, $s2), sub_gt)>; 3757 3758defm : CRNotPat<(i1 (setcc f64:$s1, f64:$s2, SETUGE)), 3759 (EXTRACT_SUBREG (EFDCMPLT $s1, $s2), sub_gt)>; 3760defm : CRNotPat<(i1 (setcc f64:$s1, f64:$s2, SETGE)), 3761 (EXTRACT_SUBREG (EFDCMPLT $s1, $s2), sub_gt)>; 3762defm : CRNotPat<(i1 (setcc f64:$s1, f64:$s2, SETULE)), 3763 (EXTRACT_SUBREG (EFDCMPGT $s1, $s2), sub_gt)>; 3764defm : CRNotPat<(i1 (setcc f64:$s1, f64:$s2, SETLE)), 3765 (EXTRACT_SUBREG (EFDCMPGT $s1, $s2), sub_gt)>; 3766defm : CRNotPat<(i1 (setcc f64:$s1, f64:$s2, SETUNE)), 3767 (EXTRACT_SUBREG (EFDCMPEQ $s1, $s2), sub_gt)>; 3768defm : CRNotPat<(i1 (setcc f64:$s1, f64:$s2, SETNE)), 3769 (EXTRACT_SUBREG (EFDCMPEQ $s1, $s2), sub_gt)>; 3770} 3771// match select on i1 variables: 3772def : Pat<(i1 (select i1:$cond, i1:$tval, i1:$fval)), 3773 (CROR (CRAND $cond , $tval), 3774 (CRAND (crnot $cond), $fval))>; 3775 3776// match selectcc on i1 variables: 3777// select (lhs == rhs), tval, fval is: 3778// ((lhs == rhs) & tval) | (!(lhs == rhs) & fval) 3779def : Pat <(i1 (selectcc i1:$lhs, i1:$rhs, i1:$tval, i1:$fval, SETLT)), 3780 (CROR (CRAND (CRANDC $lhs, $rhs), $tval), 3781 (CRAND (CRORC $rhs, $lhs), $fval))>; 3782def : Pat <(i1 (selectcc i1:$lhs, i1:$rhs, i1:$tval, i1:$fval, SETULT)), 3783 (CROR (CRAND (CRANDC $rhs, $lhs), $tval), 3784 (CRAND (CRORC $lhs, $rhs), $fval))>; 3785def : Pat <(i1 (selectcc i1:$lhs, i1:$rhs, i1:$tval, i1:$fval, SETLE)), 3786 (CROR (CRAND (CRORC $lhs, $rhs), $tval), 3787 (CRAND (CRANDC $rhs, $lhs), $fval))>; 3788def : Pat <(i1 (selectcc i1:$lhs, i1:$rhs, i1:$tval, i1:$fval, SETULE)), 3789 (CROR (CRAND (CRORC $rhs, $lhs), $tval), 3790 (CRAND (CRANDC $lhs, $rhs), $fval))>; 3791def : Pat <(i1 (selectcc i1:$lhs, i1:$rhs, i1:$tval, i1:$fval, SETEQ)), 3792 (CROR (CRAND (CREQV $lhs, $rhs), $tval), 3793 (CRAND (CRXOR $lhs, $rhs), $fval))>; 3794def : Pat <(i1 (selectcc i1:$lhs, i1:$rhs, i1:$tval, i1:$fval, SETGE)), 3795 (CROR (CRAND (CRORC $rhs, $lhs), $tval), 3796 (CRAND (CRANDC $lhs, $rhs), $fval))>; 3797def : Pat <(i1 (selectcc i1:$lhs, i1:$rhs, i1:$tval, i1:$fval, SETUGE)), 3798 (CROR (CRAND (CRORC $lhs, $rhs), $tval), 3799 (CRAND (CRANDC $rhs, $lhs), $fval))>; 3800def : Pat <(i1 (selectcc i1:$lhs, i1:$rhs, i1:$tval, i1:$fval, SETGT)), 3801 (CROR (CRAND (CRANDC $rhs, $lhs), $tval), 3802 (CRAND (CRORC $lhs, $rhs), $fval))>; 3803def : Pat <(i1 (selectcc i1:$lhs, i1:$rhs, i1:$tval, i1:$fval, SETUGT)), 3804 (CROR (CRAND (CRANDC $lhs, $rhs), $tval), 3805 (CRAND (CRORC $rhs, $lhs), $fval))>; 3806def : Pat <(i1 (selectcc i1:$lhs, i1:$rhs, i1:$tval, i1:$fval, SETNE)), 3807 (CROR (CRAND (CREQV $lhs, $rhs), $fval), 3808 (CRAND (CRXOR $lhs, $rhs), $tval))>; 3809 3810// match selectcc on i1 variables with non-i1 output. 3811def : Pat<(i32 (selectcc i1:$lhs, i1:$rhs, i32:$tval, i32:$fval, SETLT)), 3812 (SELECT_I4 (CRANDC $lhs, $rhs), $tval, $fval)>; 3813def : Pat<(i32 (selectcc i1:$lhs, i1:$rhs, i32:$tval, i32:$fval, SETULT)), 3814 (SELECT_I4 (CRANDC $rhs, $lhs), $tval, $fval)>; 3815def : Pat<(i32 (selectcc i1:$lhs, i1:$rhs, i32:$tval, i32:$fval, SETLE)), 3816 (SELECT_I4 (CRORC $lhs, $rhs), $tval, $fval)>; 3817def : Pat<(i32 (selectcc i1:$lhs, i1:$rhs, i32:$tval, i32:$fval, SETULE)), 3818 (SELECT_I4 (CRORC $rhs, $lhs), $tval, $fval)>; 3819def : Pat<(i32 (selectcc i1:$lhs, i1:$rhs, i32:$tval, i32:$fval, SETEQ)), 3820 (SELECT_I4 (CREQV $lhs, $rhs), $tval, $fval)>; 3821def : Pat<(i32 (selectcc i1:$lhs, i1:$rhs, i32:$tval, i32:$fval, SETGE)), 3822 (SELECT_I4 (CRORC $rhs, $lhs), $tval, $fval)>; 3823def : Pat<(i32 (selectcc i1:$lhs, i1:$rhs, i32:$tval, i32:$fval, SETUGE)), 3824 (SELECT_I4 (CRORC $lhs, $rhs), $tval, $fval)>; 3825def : Pat<(i32 (selectcc i1:$lhs, i1:$rhs, i32:$tval, i32:$fval, SETGT)), 3826 (SELECT_I4 (CRANDC $rhs, $lhs), $tval, $fval)>; 3827def : Pat<(i32 (selectcc i1:$lhs, i1:$rhs, i32:$tval, i32:$fval, SETUGT)), 3828 (SELECT_I4 (CRANDC $lhs, $rhs), $tval, $fval)>; 3829def : Pat<(i32 (selectcc i1:$lhs, i1:$rhs, i32:$tval, i32:$fval, SETNE)), 3830 (SELECT_I4 (CRXOR $lhs, $rhs), $tval, $fval)>; 3831 3832def : Pat<(i64 (selectcc i1:$lhs, i1:$rhs, i64:$tval, i64:$fval, SETLT)), 3833 (SELECT_I8 (CRANDC $lhs, $rhs), $tval, $fval)>; 3834def : Pat<(i64 (selectcc i1:$lhs, i1:$rhs, i64:$tval, i64:$fval, SETULT)), 3835 (SELECT_I8 (CRANDC $rhs, $lhs), $tval, $fval)>; 3836def : Pat<(i64 (selectcc i1:$lhs, i1:$rhs, i64:$tval, i64:$fval, SETLE)), 3837 (SELECT_I8 (CRORC $lhs, $rhs), $tval, $fval)>; 3838def : Pat<(i64 (selectcc i1:$lhs, i1:$rhs, i64:$tval, i64:$fval, SETULE)), 3839 (SELECT_I8 (CRORC $rhs, $lhs), $tval, $fval)>; 3840def : Pat<(i64 (selectcc i1:$lhs, i1:$rhs, i64:$tval, i64:$fval, SETEQ)), 3841 (SELECT_I8 (CREQV $lhs, $rhs), $tval, $fval)>; 3842def : Pat<(i64 (selectcc i1:$lhs, i1:$rhs, i64:$tval, i64:$fval, SETGE)), 3843 (SELECT_I8 (CRORC $rhs, $lhs), $tval, $fval)>; 3844def : Pat<(i64 (selectcc i1:$lhs, i1:$rhs, i64:$tval, i64:$fval, SETUGE)), 3845 (SELECT_I8 (CRORC $lhs, $rhs), $tval, $fval)>; 3846def : Pat<(i64 (selectcc i1:$lhs, i1:$rhs, i64:$tval, i64:$fval, SETGT)), 3847 (SELECT_I8 (CRANDC $rhs, $lhs), $tval, $fval)>; 3848def : Pat<(i64 (selectcc i1:$lhs, i1:$rhs, i64:$tval, i64:$fval, SETUGT)), 3849 (SELECT_I8 (CRANDC $lhs, $rhs), $tval, $fval)>; 3850def : Pat<(i64 (selectcc i1:$lhs, i1:$rhs, i64:$tval, i64:$fval, SETNE)), 3851 (SELECT_I8 (CRXOR $lhs, $rhs), $tval, $fval)>; 3852 3853let Predicates = [HasFPU] in { 3854def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETLT)), 3855 (SELECT_F4 (CRANDC $lhs, $rhs), $tval, $fval)>; 3856def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETULT)), 3857 (SELECT_F4 (CRANDC $rhs, $lhs), $tval, $fval)>; 3858def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETLE)), 3859 (SELECT_F4 (CRORC $lhs, $rhs), $tval, $fval)>; 3860def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETULE)), 3861 (SELECT_F4 (CRORC $rhs, $lhs), $tval, $fval)>; 3862def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETEQ)), 3863 (SELECT_F4 (CREQV $lhs, $rhs), $tval, $fval)>; 3864def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETGE)), 3865 (SELECT_F4 (CRORC $rhs, $lhs), $tval, $fval)>; 3866def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETUGE)), 3867 (SELECT_F4 (CRORC $lhs, $rhs), $tval, $fval)>; 3868def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETGT)), 3869 (SELECT_F4 (CRANDC $rhs, $lhs), $tval, $fval)>; 3870def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETUGT)), 3871 (SELECT_F4 (CRANDC $lhs, $rhs), $tval, $fval)>; 3872def : Pat<(f32 (selectcc i1:$lhs, i1:$rhs, f32:$tval, f32:$fval, SETNE)), 3873 (SELECT_F4 (CRXOR $lhs, $rhs), $tval, $fval)>; 3874 3875def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETLT)), 3876 (SELECT_F8 (CRANDC $lhs, $rhs), $tval, $fval)>; 3877def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETULT)), 3878 (SELECT_F8 (CRANDC $rhs, $lhs), $tval, $fval)>; 3879def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETLE)), 3880 (SELECT_F8 (CRORC $lhs, $rhs), $tval, $fval)>; 3881def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETULE)), 3882 (SELECT_F8 (CRORC $rhs, $lhs), $tval, $fval)>; 3883def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETEQ)), 3884 (SELECT_F8 (CREQV $lhs, $rhs), $tval, $fval)>; 3885def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETGE)), 3886 (SELECT_F8 (CRORC $rhs, $lhs), $tval, $fval)>; 3887def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETUGE)), 3888 (SELECT_F8 (CRORC $lhs, $rhs), $tval, $fval)>; 3889def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETGT)), 3890 (SELECT_F8 (CRANDC $rhs, $lhs), $tval, $fval)>; 3891def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETUGT)), 3892 (SELECT_F8 (CRANDC $lhs, $rhs), $tval, $fval)>; 3893def : Pat<(f64 (selectcc i1:$lhs, i1:$rhs, f64:$tval, f64:$fval, SETNE)), 3894 (SELECT_F8 (CRXOR $lhs, $rhs), $tval, $fval)>; 3895} 3896 3897def : Pat<(f128 (selectcc i1:$lhs, i1:$rhs, f128:$tval, f128:$fval, SETLT)), 3898 (SELECT_F16 (CRANDC $lhs, $rhs), $tval, $fval)>; 3899def : Pat<(f128 (selectcc i1:$lhs, i1:$rhs, f128:$tval, f128:$fval, SETULT)), 3900 (SELECT_F16 (CRANDC $rhs, $lhs), $tval, $fval)>; 3901def : Pat<(f128 (selectcc i1:$lhs, i1:$rhs, f128:$tval, f128:$fval, SETLE)), 3902 (SELECT_F16 (CRORC $lhs, $rhs), $tval, $fval)>; 3903def : Pat<(f128 (selectcc i1:$lhs, i1:$rhs, f128:$tval, f128:$fval, SETULE)), 3904 (SELECT_F16 (CRORC $rhs, $lhs), $tval, $fval)>; 3905def : Pat<(f128 (selectcc i1:$lhs, i1:$rhs, f128:$tval, f128:$fval, SETEQ)), 3906 (SELECT_F16 (CREQV $lhs, $rhs), $tval, $fval)>; 3907def : Pat<(f128 (selectcc i1:$lhs, i1:$rhs, f128:$tval, f128:$fval, SETGE)), 3908 (SELECT_F16 (CRORC $rhs, $lhs), $tval, $fval)>; 3909def : Pat<(f128 (selectcc i1:$lhs, i1:$rhs, f128:$tval, f128:$fval, SETUGE)), 3910 (SELECT_F16 (CRORC $lhs, $rhs), $tval, $fval)>; 3911def : Pat<(f128 (selectcc i1:$lhs, i1:$rhs, f128:$tval, f128:$fval, SETGT)), 3912 (SELECT_F16 (CRANDC $rhs, $lhs), $tval, $fval)>; 3913def : Pat<(f128 (selectcc i1:$lhs, i1:$rhs, f128:$tval, f128:$fval, SETUGT)), 3914 (SELECT_F16 (CRANDC $lhs, $rhs), $tval, $fval)>; 3915def : Pat<(f128 (selectcc i1:$lhs, i1:$rhs, f128:$tval, f128:$fval, SETNE)), 3916 (SELECT_F16 (CRXOR $lhs, $rhs), $tval, $fval)>; 3917 3918def : Pat<(v4i32 (selectcc i1:$lhs, i1:$rhs, v4i32:$tval, v4i32:$fval, SETLT)), 3919 (SELECT_VRRC (CRANDC $lhs, $rhs), $tval, $fval)>; 3920def : Pat<(v4i32 (selectcc i1:$lhs, i1:$rhs, v4i32:$tval, v4i32:$fval, SETULT)), 3921 (SELECT_VRRC (CRANDC $rhs, $lhs), $tval, $fval)>; 3922def : Pat<(v4i32 (selectcc i1:$lhs, i1:$rhs, v4i32:$tval, v4i32:$fval, SETLE)), 3923 (SELECT_VRRC (CRORC $lhs, $rhs), $tval, $fval)>; 3924def : Pat<(v4i32 (selectcc i1:$lhs, i1:$rhs, v4i32:$tval, v4i32:$fval, SETULE)), 3925 (SELECT_VRRC (CRORC $rhs, $lhs), $tval, $fval)>; 3926def : Pat<(v4i32 (selectcc i1:$lhs, i1:$rhs, v4i32:$tval, v4i32:$fval, SETEQ)), 3927 (SELECT_VRRC (CREQV $lhs, $rhs), $tval, $fval)>; 3928def : Pat<(v4i32 (selectcc i1:$lhs, i1:$rhs, v4i32:$tval, v4i32:$fval, SETGE)), 3929 (SELECT_VRRC (CRORC $rhs, $lhs), $tval, $fval)>; 3930def : Pat<(v4i32 (selectcc i1:$lhs, i1:$rhs, v4i32:$tval, v4i32:$fval, SETUGE)), 3931 (SELECT_VRRC (CRORC $lhs, $rhs), $tval, $fval)>; 3932def : Pat<(v4i32 (selectcc i1:$lhs, i1:$rhs, v4i32:$tval, v4i32:$fval, SETGT)), 3933 (SELECT_VRRC (CRANDC $rhs, $lhs), $tval, $fval)>; 3934def : Pat<(v4i32 (selectcc i1:$lhs, i1:$rhs, v4i32:$tval, v4i32:$fval, SETUGT)), 3935 (SELECT_VRRC (CRANDC $lhs, $rhs), $tval, $fval)>; 3936def : Pat<(v4i32 (selectcc i1:$lhs, i1:$rhs, v4i32:$tval, v4i32:$fval, SETNE)), 3937 (SELECT_VRRC (CRXOR $lhs, $rhs), $tval, $fval)>; 3938 3939let usesCustomInserter = 1 in { 3940def ANDIo_1_EQ_BIT : Pseudo<(outs crbitrc:$dst), (ins gprc:$in), 3941 "#ANDIo_1_EQ_BIT", 3942 [(set i1:$dst, (trunc (not i32:$in)))]>; 3943def ANDIo_1_GT_BIT : Pseudo<(outs crbitrc:$dst), (ins gprc:$in), 3944 "#ANDIo_1_GT_BIT", 3945 [(set i1:$dst, (trunc i32:$in))]>; 3946 3947def ANDIo_1_EQ_BIT8 : Pseudo<(outs crbitrc:$dst), (ins g8rc:$in), 3948 "#ANDIo_1_EQ_BIT8", 3949 [(set i1:$dst, (trunc (not i64:$in)))]>; 3950def ANDIo_1_GT_BIT8 : Pseudo<(outs crbitrc:$dst), (ins g8rc:$in), 3951 "#ANDIo_1_GT_BIT8", 3952 [(set i1:$dst, (trunc i64:$in))]>; 3953} 3954 3955def : Pat<(i1 (not (trunc i32:$in))), 3956 (ANDIo_1_EQ_BIT $in)>; 3957def : Pat<(i1 (not (trunc i64:$in))), 3958 (ANDIo_1_EQ_BIT8 $in)>; 3959 3960//===----------------------------------------------------------------------===// 3961// PowerPC Instructions used for assembler/disassembler only 3962// 3963 3964// FIXME: For B=0 or B > 8, the registers following RT are used. 3965// WARNING: Do not add patterns for this instruction without fixing this. 3966def LSWI : XForm_base_r3xo_memOp<31, 597, (outs gprc:$RT), 3967 (ins gprc:$A, u5imm:$B), 3968 "lswi $RT, $A, $B", IIC_LdStLoad, []>; 3969 3970// FIXME: For B=0 or B > 8, the registers following RT are used. 3971// WARNING: Do not add patterns for this instruction without fixing this. 3972def STSWI : XForm_base_r3xo_memOp<31, 725, (outs), 3973 (ins gprc:$RT, gprc:$A, u5imm:$B), 3974 "stswi $RT, $A, $B", IIC_LdStLoad, []>; 3975 3976def ISYNC : XLForm_2_ext<19, 150, 0, 0, 0, (outs), (ins), 3977 "isync", IIC_SprISYNC, []>; 3978 3979def ICBI : XForm_1a<31, 982, (outs), (ins memrr:$src), 3980 "icbi $src", IIC_LdStICBI, []>; 3981 3982// We used to have EIEIO as value but E[0-9A-Z] is a reserved name 3983def EnforceIEIO : XForm_24_eieio<31, 854, (outs), (ins), 3984 "eieio", IIC_LdStLoad, []>; 3985 3986def WAIT : XForm_24_sync<31, 30, (outs), (ins i32imm:$L), 3987 "wait $L", IIC_LdStLoad, []>; 3988 3989def MBAR : XForm_mbar<31, 854, (outs), (ins u5imm:$MO), 3990 "mbar $MO", IIC_LdStLoad>, Requires<[IsBookE]>; 3991 3992def MTSR: XForm_sr<31, 210, (outs), (ins gprc:$RS, u4imm:$SR), 3993 "mtsr $SR, $RS", IIC_SprMTSR>; 3994 3995def MFSR: XForm_sr<31, 595, (outs gprc:$RS), (ins u4imm:$SR), 3996 "mfsr $RS, $SR", IIC_SprMFSR>; 3997 3998def MTSRIN: XForm_srin<31, 242, (outs), (ins gprc:$RS, gprc:$RB), 3999 "mtsrin $RS, $RB", IIC_SprMTSR>; 4000 4001def MFSRIN: XForm_srin<31, 659, (outs gprc:$RS), (ins gprc:$RB), 4002 "mfsrin $RS, $RB", IIC_SprMFSR>; 4003 4004def MTMSR: XForm_mtmsr<31, 146, (outs), (ins gprc:$RS, i32imm:$L), 4005 "mtmsr $RS, $L", IIC_SprMTMSR>; 4006 4007def WRTEE: XForm_mtmsr<31, 131, (outs), (ins gprc:$RS), 4008 "wrtee $RS", IIC_SprMTMSR>, Requires<[IsBookE]> { 4009 let L = 0; 4010} 4011 4012def WRTEEI: I<31, (outs), (ins i1imm:$E), "wrteei $E", IIC_SprMTMSR>, 4013 Requires<[IsBookE]> { 4014 bits<1> E; 4015 4016 let Inst{16} = E; 4017 let Inst{21-30} = 163; 4018} 4019 4020def DCCCI : XForm_tlb<454, (outs), (ins gprc:$A, gprc:$B), 4021 "dccci $A, $B", IIC_LdStLoad>, Requires<[IsPPC4xx]>; 4022def ICCCI : XForm_tlb<966, (outs), (ins gprc:$A, gprc:$B), 4023 "iccci $A, $B", IIC_LdStLoad>, Requires<[IsPPC4xx]>; 4024 4025def : InstAlias<"dci 0", (DCCCI R0, R0)>, Requires<[IsPPC4xx]>; 4026def : InstAlias<"dccci", (DCCCI R0, R0)>, Requires<[IsPPC4xx]>; 4027def : InstAlias<"ici 0", (ICCCI R0, R0)>, Requires<[IsPPC4xx]>; 4028def : InstAlias<"iccci", (ICCCI R0, R0)>, Requires<[IsPPC4xx]>; 4029 4030def MFMSR : XForm_rs<31, 83, (outs gprc:$RT), (ins), 4031 "mfmsr $RT", IIC_SprMFMSR, []>; 4032 4033def MTMSRD : XForm_mtmsr<31, 178, (outs), (ins gprc:$RS, i32imm:$L), 4034 "mtmsrd $RS, $L", IIC_SprMTMSRD>; 4035 4036def MCRFS : XLForm_3<63, 64, (outs crrc:$BF), (ins crrc:$BFA), 4037 "mcrfs $BF, $BFA", IIC_BrMCR>; 4038 4039def MTFSFI : XLForm_4<63, 134, (outs crrc:$BF), (ins i32imm:$U, i32imm:$W), 4040 "mtfsfi $BF, $U, $W", IIC_IntMFFS>; 4041 4042def MTFSFIo : XLForm_4<63, 134, (outs crrc:$BF), (ins i32imm:$U, i32imm:$W), 4043 "mtfsfi. $BF, $U, $W", IIC_IntMFFS>, isDOT; 4044 4045def : InstAlias<"mtfsfi $BF, $U", (MTFSFI crrc:$BF, i32imm:$U, 0)>; 4046def : InstAlias<"mtfsfi. $BF, $U", (MTFSFIo crrc:$BF, i32imm:$U, 0)>; 4047 4048let Predicates = [HasFPU] in { 4049def MTFSF : XFLForm_1<63, 711, (outs), 4050 (ins i32imm:$FLM, f8rc:$FRB, i32imm:$L, i32imm:$W), 4051 "mtfsf $FLM, $FRB, $L, $W", IIC_IntMFFS, []>; 4052def MTFSFo : XFLForm_1<63, 711, (outs), 4053 (ins i32imm:$FLM, f8rc:$FRB, i32imm:$L, i32imm:$W), 4054 "mtfsf. $FLM, $FRB, $L, $W", IIC_IntMFFS, []>, isDOT; 4055 4056def : InstAlias<"mtfsf $FLM, $FRB", (MTFSF i32imm:$FLM, f8rc:$FRB, 0, 0)>; 4057def : InstAlias<"mtfsf. $FLM, $FRB", (MTFSFo i32imm:$FLM, f8rc:$FRB, 0, 0)>; 4058} 4059 4060def SLBIE : XForm_16b<31, 434, (outs), (ins gprc:$RB), 4061 "slbie $RB", IIC_SprSLBIE, []>; 4062 4063def SLBMTE : XForm_26<31, 402, (outs), (ins gprc:$RS, gprc:$RB), 4064 "slbmte $RS, $RB", IIC_SprSLBMTE, []>; 4065 4066def SLBMFEE : XForm_26<31, 915, (outs gprc:$RT), (ins gprc:$RB), 4067 "slbmfee $RT, $RB", IIC_SprSLBMFEE, []>; 4068 4069def SLBMFEV : XLForm_1_gen<31, 851, (outs gprc:$RT), (ins gprc:$RB), 4070 "slbmfev $RT, $RB", IIC_SprSLBMFEV, []>; 4071 4072def SLBIA : XForm_0<31, 498, (outs), (ins), "slbia", IIC_SprSLBIA, []>; 4073 4074def TLBIA : XForm_0<31, 370, (outs), (ins), 4075 "tlbia", IIC_SprTLBIA, []>; 4076 4077def TLBSYNC : XForm_0<31, 566, (outs), (ins), 4078 "tlbsync", IIC_SprTLBSYNC, []>; 4079 4080def TLBIEL : XForm_16b<31, 274, (outs), (ins gprc:$RB), 4081 "tlbiel $RB", IIC_SprTLBIEL, []>; 4082 4083def TLBLD : XForm_16b<31, 978, (outs), (ins gprc:$RB), 4084 "tlbld $RB", IIC_LdStLoad, []>, Requires<[IsPPC6xx]>; 4085def TLBLI : XForm_16b<31, 1010, (outs), (ins gprc:$RB), 4086 "tlbli $RB", IIC_LdStLoad, []>, Requires<[IsPPC6xx]>; 4087 4088def TLBIE : XForm_26<31, 306, (outs), (ins gprc:$RS, gprc:$RB), 4089 "tlbie $RB,$RS", IIC_SprTLBIE, []>; 4090 4091def TLBSX : XForm_tlb<914, (outs), (ins gprc:$A, gprc:$B), "tlbsx $A, $B", 4092 IIC_LdStLoad>, Requires<[IsBookE]>; 4093 4094def TLBIVAX : XForm_tlb<786, (outs), (ins gprc:$A, gprc:$B), "tlbivax $A, $B", 4095 IIC_LdStLoad>, Requires<[IsBookE]>; 4096 4097def TLBRE : XForm_24_eieio<31, 946, (outs), (ins), 4098 "tlbre", IIC_LdStLoad, []>, Requires<[IsBookE]>; 4099 4100def TLBWE : XForm_24_eieio<31, 978, (outs), (ins), 4101 "tlbwe", IIC_LdStLoad, []>, Requires<[IsBookE]>; 4102 4103def TLBRE2 : XForm_tlbws<31, 946, (outs gprc:$RS), (ins gprc:$A, i1imm:$WS), 4104 "tlbre $RS, $A, $WS", IIC_LdStLoad, []>, Requires<[IsPPC4xx]>; 4105 4106def TLBWE2 : XForm_tlbws<31, 978, (outs), (ins gprc:$RS, gprc:$A, i1imm:$WS), 4107 "tlbwe $RS, $A, $WS", IIC_LdStLoad, []>, Requires<[IsPPC4xx]>; 4108 4109def TLBSX2 : XForm_base_r3xo<31, 914, (outs), (ins gprc:$RST, gprc:$A, gprc:$B), 4110 "tlbsx $RST, $A, $B", IIC_LdStLoad, []>, 4111 Requires<[IsPPC4xx]>; 4112def TLBSX2D : XForm_base_r3xo<31, 914, (outs), 4113 (ins gprc:$RST, gprc:$A, gprc:$B), 4114 "tlbsx. $RST, $A, $B", IIC_LdStLoad, []>, 4115 Requires<[IsPPC4xx]>, isDOT; 4116 4117def RFID : XForm_0<19, 18, (outs), (ins), "rfid", IIC_IntRFID, []>; 4118 4119def RFI : XForm_0<19, 50, (outs), (ins), "rfi", IIC_SprRFI, []>, 4120 Requires<[IsBookE]>; 4121def RFCI : XForm_0<19, 51, (outs), (ins), "rfci", IIC_BrB, []>, 4122 Requires<[IsBookE]>; 4123 4124def RFDI : XForm_0<19, 39, (outs), (ins), "rfdi", IIC_BrB, []>, 4125 Requires<[IsE500]>; 4126def RFMCI : XForm_0<19, 38, (outs), (ins), "rfmci", IIC_BrB, []>, 4127 Requires<[IsE500]>; 4128 4129def MFDCR : XFXForm_1<31, 323, (outs gprc:$RT), (ins i32imm:$SPR), 4130 "mfdcr $RT, $SPR", IIC_SprMFSPR>, Requires<[IsPPC4xx]>; 4131def MTDCR : XFXForm_1<31, 451, (outs), (ins gprc:$RT, i32imm:$SPR), 4132 "mtdcr $SPR, $RT", IIC_SprMTSPR>, Requires<[IsPPC4xx]>; 4133 4134def HRFID : XLForm_1_np<19, 274, (outs), (ins), "hrfid", IIC_BrB, []>; 4135def NAP : XLForm_1_np<19, 434, (outs), (ins), "nap", IIC_BrB, []>; 4136 4137def ATTN : XForm_attn<0, 256, (outs), (ins), "attn", IIC_BrB>; 4138 4139def LBZCIX : XForm_base_r3xo_memOp<31, 853, (outs gprc:$RST), 4140 (ins gprc:$A, gprc:$B), 4141 "lbzcix $RST, $A, $B", IIC_LdStLoad, []>; 4142def LHZCIX : XForm_base_r3xo_memOp<31, 821, (outs gprc:$RST), 4143 (ins gprc:$A, gprc:$B), 4144 "lhzcix $RST, $A, $B", IIC_LdStLoad, []>; 4145def LWZCIX : XForm_base_r3xo_memOp<31, 789, (outs gprc:$RST), 4146 (ins gprc:$A, gprc:$B), 4147 "lwzcix $RST, $A, $B", IIC_LdStLoad, []>; 4148def LDCIX : XForm_base_r3xo_memOp<31, 885, (outs gprc:$RST), 4149 (ins gprc:$A, gprc:$B), 4150 "ldcix $RST, $A, $B", IIC_LdStLoad, []>; 4151 4152def STBCIX : XForm_base_r3xo_memOp<31, 981, (outs), 4153 (ins gprc:$RST, gprc:$A, gprc:$B), 4154 "stbcix $RST, $A, $B", IIC_LdStLoad, []>; 4155def STHCIX : XForm_base_r3xo_memOp<31, 949, (outs), 4156 (ins gprc:$RST, gprc:$A, gprc:$B), 4157 "sthcix $RST, $A, $B", IIC_LdStLoad, []>; 4158def STWCIX : XForm_base_r3xo_memOp<31, 917, (outs), 4159 (ins gprc:$RST, gprc:$A, gprc:$B), 4160 "stwcix $RST, $A, $B", IIC_LdStLoad, []>; 4161def STDCIX : XForm_base_r3xo_memOp<31, 1013, (outs), 4162 (ins gprc:$RST, gprc:$A, gprc:$B), 4163 "stdcix $RST, $A, $B", IIC_LdStLoad, []>; 4164 4165// External PID Load Store Instructions 4166 4167def LBEPX : XForm_1<31, 95, (outs gprc:$rD), (ins memrr:$src), 4168 "lbepx $rD, $src", IIC_LdStLoad, []>, 4169 Requires<[IsE500]>; 4170 4171def LFDEPX : XForm_25<31, 607, (outs f8rc:$frD), (ins memrr:$src), 4172 "lfdepx $frD, $src", IIC_LdStLFD, []>, 4173 Requires<[IsE500]>; 4174 4175def LHEPX : XForm_1<31, 287, (outs gprc:$rD), (ins memrr:$src), 4176 "lhepx $rD, $src", IIC_LdStLoad, []>, 4177 Requires<[IsE500]>; 4178 4179def LWEPX : XForm_1<31, 31, (outs gprc:$rD), (ins memrr:$src), 4180 "lwepx $rD, $src", IIC_LdStLoad, []>, 4181 Requires<[IsE500]>; 4182 4183def STBEPX : XForm_8<31, 223, (outs), (ins gprc:$rS, memrr:$dst), 4184 "stbepx $rS, $dst", IIC_LdStStore, []>, 4185 Requires<[IsE500]>; 4186 4187def STFDEPX : XForm_28_memOp<31, 735, (outs), (ins f8rc:$frS, memrr:$dst), 4188 "stfdepx $frS, $dst", IIC_LdStSTFD, []>, 4189 Requires<[IsE500]>; 4190 4191def STHEPX : XForm_8<31, 415, (outs), (ins gprc:$rS, memrr:$dst), 4192 "sthepx $rS, $dst", IIC_LdStStore, []>, 4193 Requires<[IsE500]>; 4194 4195def STWEPX : XForm_8<31, 159, (outs), (ins gprc:$rS, memrr:$dst), 4196 "stwepx $rS, $dst", IIC_LdStStore, []>, 4197 Requires<[IsE500]>; 4198 4199def DCBFEP : DCB_Form<127, 0, (outs), (ins memrr:$dst), "dcbfep $dst", 4200 IIC_LdStDCBF, []>, Requires<[IsE500]>; 4201 4202def DCBSTEP : DCB_Form<63, 0, (outs), (ins memrr:$dst), "dcbstep $dst", 4203 IIC_LdStDCBF, []>, Requires<[IsE500]>; 4204 4205def DCBTEP : DCB_Form_hint<319, (outs), (ins memrr:$dst, u5imm:$TH), 4206 "dcbtep $TH, $dst", IIC_LdStDCBF, []>, 4207 Requires<[IsE500]>; 4208 4209def DCBTSTEP : DCB_Form_hint<255, (outs), (ins memrr:$dst, u5imm:$TH), 4210 "dcbtstep $TH, $dst", IIC_LdStDCBF, []>, 4211 Requires<[IsE500]>; 4212 4213def DCBZEP : DCB_Form<1023, 0, (outs), (ins memrr:$dst), "dcbzep $dst", 4214 IIC_LdStDCBF, []>, Requires<[IsE500]>; 4215 4216def DCBZLEP : DCB_Form<1023, 1, (outs), (ins memrr:$dst), "dcbzlep $dst", 4217 IIC_LdStDCBF, []>, Requires<[IsE500]>; 4218 4219def ICBIEP : XForm_1a<31, 991, (outs), (ins memrr:$src), "icbiep $src", 4220 IIC_LdStICBI, []>, Requires<[IsE500]>; 4221 4222//===----------------------------------------------------------------------===// 4223// PowerPC Assembler Instruction Aliases 4224// 4225 4226// Pseudo-instructions for alternate assembly syntax (never used by codegen). 4227// These are aliases that require C++ handling to convert to the target 4228// instruction, while InstAliases can be handled directly by tblgen. 4229class PPCAsmPseudo<string asm, dag iops> 4230 : Instruction { 4231 let Namespace = "PPC"; 4232 bit PPC64 = 0; // Default value, override with isPPC64 4233 4234 let OutOperandList = (outs); 4235 let InOperandList = iops; 4236 let Pattern = []; 4237 let AsmString = asm; 4238 let isAsmParserOnly = 1; 4239 let isPseudo = 1; 4240 let hasNoSchedulingInfo = 1; 4241} 4242 4243def : InstAlias<"sc", (SC 0)>; 4244 4245def : InstAlias<"sync", (SYNC 0)>, Requires<[HasSYNC]>; 4246def : InstAlias<"msync", (SYNC 0), 0>, Requires<[HasSYNC]>; 4247def : InstAlias<"lwsync", (SYNC 1)>, Requires<[HasSYNC]>; 4248def : InstAlias<"ptesync", (SYNC 2)>, Requires<[HasSYNC]>; 4249 4250def : InstAlias<"wait", (WAIT 0)>; 4251def : InstAlias<"waitrsv", (WAIT 1)>; 4252def : InstAlias<"waitimpl", (WAIT 2)>; 4253 4254def : InstAlias<"mbar", (MBAR 0)>, Requires<[IsBookE]>; 4255 4256def DCBTx : PPCAsmPseudo<"dcbt $dst", (ins memrr:$dst)>; 4257def DCBTSTx : PPCAsmPseudo<"dcbtst $dst", (ins memrr:$dst)>; 4258 4259def DCBTCT : PPCAsmPseudo<"dcbtct $dst, $TH", (ins memrr:$dst, u5imm:$TH)>; 4260def DCBTDS : PPCAsmPseudo<"dcbtds $dst, $TH", (ins memrr:$dst, u5imm:$TH)>; 4261def DCBTT : PPCAsmPseudo<"dcbtt $dst", (ins memrr:$dst)>; 4262 4263def DCBTSTCT : PPCAsmPseudo<"dcbtstct $dst, $TH", (ins memrr:$dst, u5imm:$TH)>; 4264def DCBTSTDS : PPCAsmPseudo<"dcbtstds $dst, $TH", (ins memrr:$dst, u5imm:$TH)>; 4265def DCBTSTT : PPCAsmPseudo<"dcbtstt $dst", (ins memrr:$dst)>; 4266 4267def DCBFx : PPCAsmPseudo<"dcbf $dst", (ins memrr:$dst)>; 4268def DCBFL : PPCAsmPseudo<"dcbfl $dst", (ins memrr:$dst)>; 4269def DCBFLP : PPCAsmPseudo<"dcbflp $dst", (ins memrr:$dst)>; 4270 4271def : InstAlias<"crset $bx", (CREQV crbitrc:$bx, crbitrc:$bx, crbitrc:$bx)>; 4272def : InstAlias<"crclr $bx", (CRXOR crbitrc:$bx, crbitrc:$bx, crbitrc:$bx)>; 4273def : InstAlias<"crmove $bx, $by", (CROR crbitrc:$bx, crbitrc:$by, crbitrc:$by)>; 4274def : InstAlias<"crnot $bx, $by", (CRNOR crbitrc:$bx, crbitrc:$by, crbitrc:$by)>; 4275 4276def : InstAlias<"mtxer $Rx", (MTSPR 1, gprc:$Rx)>; 4277def : InstAlias<"mfxer $Rx", (MFSPR gprc:$Rx, 1)>; 4278 4279def : InstAlias<"mfrtcu $Rx", (MFSPR gprc:$Rx, 4)>; 4280def : InstAlias<"mfrtcl $Rx", (MFSPR gprc:$Rx, 5)>; 4281 4282def : InstAlias<"mtdscr $Rx", (MTSPR 17, gprc:$Rx)>; 4283def : InstAlias<"mfdscr $Rx", (MFSPR gprc:$Rx, 17)>; 4284 4285def : InstAlias<"mtdsisr $Rx", (MTSPR 18, gprc:$Rx)>; 4286def : InstAlias<"mfdsisr $Rx", (MFSPR gprc:$Rx, 18)>; 4287 4288def : InstAlias<"mtdar $Rx", (MTSPR 19, gprc:$Rx)>; 4289def : InstAlias<"mfdar $Rx", (MFSPR gprc:$Rx, 19)>; 4290 4291def : InstAlias<"mtdec $Rx", (MTSPR 22, gprc:$Rx)>; 4292def : InstAlias<"mfdec $Rx", (MFSPR gprc:$Rx, 22)>; 4293 4294def : InstAlias<"mtsdr1 $Rx", (MTSPR 25, gprc:$Rx)>; 4295def : InstAlias<"mfsdr1 $Rx", (MFSPR gprc:$Rx, 25)>; 4296 4297def : InstAlias<"mtsrr0 $Rx", (MTSPR 26, gprc:$Rx)>; 4298def : InstAlias<"mfsrr0 $Rx", (MFSPR gprc:$Rx, 26)>; 4299 4300def : InstAlias<"mtsrr1 $Rx", (MTSPR 27, gprc:$Rx)>; 4301def : InstAlias<"mfsrr1 $Rx", (MFSPR gprc:$Rx, 27)>; 4302 4303def : InstAlias<"mtsrr2 $Rx", (MTSPR 990, gprc:$Rx)>, Requires<[IsPPC4xx]>; 4304def : InstAlias<"mfsrr2 $Rx", (MFSPR gprc:$Rx, 990)>, Requires<[IsPPC4xx]>; 4305 4306def : InstAlias<"mtsrr3 $Rx", (MTSPR 991, gprc:$Rx)>, Requires<[IsPPC4xx]>; 4307def : InstAlias<"mfsrr3 $Rx", (MFSPR gprc:$Rx, 991)>, Requires<[IsPPC4xx]>; 4308 4309def : InstAlias<"mtcfar $Rx", (MTSPR 28, gprc:$Rx)>; 4310def : InstAlias<"mfcfar $Rx", (MFSPR gprc:$Rx, 28)>; 4311 4312def : InstAlias<"mtamr $Rx", (MTSPR 29, gprc:$Rx)>; 4313def : InstAlias<"mfamr $Rx", (MFSPR gprc:$Rx, 29)>; 4314 4315def : InstAlias<"mtpid $Rx", (MTSPR 48, gprc:$Rx)>, Requires<[IsBookE]>; 4316def : InstAlias<"mfpid $Rx", (MFSPR gprc:$Rx, 48)>, Requires<[IsBookE]>; 4317 4318def : InstAlias<"mftb $Rx", (MFTB gprc:$Rx, 268)>; 4319def : InstAlias<"mftbl $Rx", (MFTB gprc:$Rx, 268)>; 4320def : InstAlias<"mftbu $Rx", (MFTB gprc:$Rx, 269)>; 4321 4322def : InstAlias<"mttbl $Rx", (MTSPR 284, gprc:$Rx)>; 4323def : InstAlias<"mttbu $Rx", (MTSPR 285, gprc:$Rx)>; 4324 4325def : InstAlias<"mftblo $Rx", (MFSPR gprc:$Rx, 989)>, Requires<[IsPPC4xx]>; 4326def : InstAlias<"mttblo $Rx", (MTSPR 989, gprc:$Rx)>, Requires<[IsPPC4xx]>; 4327def : InstAlias<"mftbhi $Rx", (MFSPR gprc:$Rx, 988)>, Requires<[IsPPC4xx]>; 4328def : InstAlias<"mttbhi $Rx", (MTSPR 988, gprc:$Rx)>, Requires<[IsPPC4xx]>; 4329 4330def : InstAlias<"xnop", (XORI R0, R0, 0)>; 4331 4332def : InstAlias<"mr $rA, $rB", (OR8 g8rc:$rA, g8rc:$rB, g8rc:$rB)>; 4333def : InstAlias<"mr. $rA, $rB", (OR8o g8rc:$rA, g8rc:$rB, g8rc:$rB)>; 4334 4335def : InstAlias<"not $rA, $rB", (NOR8 g8rc:$rA, g8rc:$rB, g8rc:$rB)>; 4336def : InstAlias<"not. $rA, $rB", (NOR8o g8rc:$rA, g8rc:$rB, g8rc:$rB)>; 4337 4338def : InstAlias<"mtcr $rA", (MTCRF8 255, g8rc:$rA)>; 4339 4340foreach BATR = 0-3 in { 4341 def : InstAlias<"mtdbatu "#BATR#", $Rx", 4342 (MTSPR !add(BATR, !add(BATR, 536)), gprc:$Rx)>, 4343 Requires<[IsPPC6xx]>; 4344 def : InstAlias<"mfdbatu $Rx, "#BATR, 4345 (MFSPR gprc:$Rx, !add(BATR, !add(BATR, 536)))>, 4346 Requires<[IsPPC6xx]>; 4347 def : InstAlias<"mtdbatl "#BATR#", $Rx", 4348 (MTSPR !add(BATR, !add(BATR, 537)), gprc:$Rx)>, 4349 Requires<[IsPPC6xx]>; 4350 def : InstAlias<"mfdbatl $Rx, "#BATR, 4351 (MFSPR gprc:$Rx, !add(BATR, !add(BATR, 537)))>, 4352 Requires<[IsPPC6xx]>; 4353 def : InstAlias<"mtibatu "#BATR#", $Rx", 4354 (MTSPR !add(BATR, !add(BATR, 528)), gprc:$Rx)>, 4355 Requires<[IsPPC6xx]>; 4356 def : InstAlias<"mfibatu $Rx, "#BATR, 4357 (MFSPR gprc:$Rx, !add(BATR, !add(BATR, 528)))>, 4358 Requires<[IsPPC6xx]>; 4359 def : InstAlias<"mtibatl "#BATR#", $Rx", 4360 (MTSPR !add(BATR, !add(BATR, 529)), gprc:$Rx)>, 4361 Requires<[IsPPC6xx]>; 4362 def : InstAlias<"mfibatl $Rx, "#BATR, 4363 (MFSPR gprc:$Rx, !add(BATR, !add(BATR, 529)))>, 4364 Requires<[IsPPC6xx]>; 4365} 4366 4367foreach BR = 0-7 in { 4368 def : InstAlias<"mfbr"#BR#" $Rx", 4369 (MFDCR gprc:$Rx, !add(BR, 0x80))>, 4370 Requires<[IsPPC4xx]>; 4371 def : InstAlias<"mtbr"#BR#" $Rx", 4372 (MTDCR gprc:$Rx, !add(BR, 0x80))>, 4373 Requires<[IsPPC4xx]>; 4374} 4375 4376def : InstAlias<"mtdccr $Rx", (MTSPR 1018, gprc:$Rx)>, Requires<[IsPPC4xx]>; 4377def : InstAlias<"mfdccr $Rx", (MFSPR gprc:$Rx, 1018)>, Requires<[IsPPC4xx]>; 4378 4379def : InstAlias<"mticcr $Rx", (MTSPR 1019, gprc:$Rx)>, Requires<[IsPPC4xx]>; 4380def : InstAlias<"mficcr $Rx", (MFSPR gprc:$Rx, 1019)>, Requires<[IsPPC4xx]>; 4381 4382def : InstAlias<"mtdear $Rx", (MTSPR 981, gprc:$Rx)>, Requires<[IsPPC4xx]>; 4383def : InstAlias<"mfdear $Rx", (MFSPR gprc:$Rx, 981)>, Requires<[IsPPC4xx]>; 4384 4385def : InstAlias<"mtesr $Rx", (MTSPR 980, gprc:$Rx)>, Requires<[IsPPC4xx]>; 4386def : InstAlias<"mfesr $Rx", (MFSPR gprc:$Rx, 980)>, Requires<[IsPPC4xx]>; 4387 4388def : InstAlias<"mfspefscr $Rx", (MFSPR gprc:$Rx, 512)>; 4389def : InstAlias<"mtspefscr $Rx", (MTSPR 512, gprc:$Rx)>; 4390 4391def : InstAlias<"mttcr $Rx", (MTSPR 986, gprc:$Rx)>, Requires<[IsPPC4xx]>; 4392def : InstAlias<"mftcr $Rx", (MFSPR gprc:$Rx, 986)>, Requires<[IsPPC4xx]>; 4393 4394def LAx : PPCAsmPseudo<"la $rA, $addr", (ins gprc:$rA, memri:$addr)>; 4395 4396def SUBI : PPCAsmPseudo<"subi $rA, $rB, $imm", 4397 (ins gprc:$rA, gprc:$rB, s16imm:$imm)>; 4398def SUBIS : PPCAsmPseudo<"subis $rA, $rB, $imm", 4399 (ins gprc:$rA, gprc:$rB, s16imm:$imm)>; 4400def SUBIC : PPCAsmPseudo<"subic $rA, $rB, $imm", 4401 (ins gprc:$rA, gprc:$rB, s16imm:$imm)>; 4402def SUBICo : PPCAsmPseudo<"subic. $rA, $rB, $imm", 4403 (ins gprc:$rA, gprc:$rB, s16imm:$imm)>; 4404 4405def : InstAlias<"sub $rA, $rB, $rC", (SUBF8 g8rc:$rA, g8rc:$rC, g8rc:$rB)>; 4406def : InstAlias<"sub. $rA, $rB, $rC", (SUBF8o g8rc:$rA, g8rc:$rC, g8rc:$rB)>; 4407def : InstAlias<"subc $rA, $rB, $rC", (SUBFC8 g8rc:$rA, g8rc:$rC, g8rc:$rB)>; 4408def : InstAlias<"subc. $rA, $rB, $rC", (SUBFC8o g8rc:$rA, g8rc:$rC, g8rc:$rB)>; 4409 4410def : InstAlias<"mtmsrd $RS", (MTMSRD gprc:$RS, 0)>; 4411def : InstAlias<"mtmsr $RS", (MTMSR gprc:$RS, 0)>; 4412 4413def : InstAlias<"mfasr $RT", (MFSPR gprc:$RT, 280)>; 4414def : InstAlias<"mtasr $RT", (MTSPR 280, gprc:$RT)>; 4415 4416foreach SPRG = 0-3 in { 4417 def : InstAlias<"mfsprg $RT, "#SPRG, (MFSPR gprc:$RT, !add(SPRG, 272))>; 4418 def : InstAlias<"mfsprg"#SPRG#" $RT", (MFSPR gprc:$RT, !add(SPRG, 272))>; 4419 def : InstAlias<"mtsprg "#SPRG#", $RT", (MTSPR !add(SPRG, 272), gprc:$RT)>; 4420 def : InstAlias<"mtsprg"#SPRG#" $RT", (MTSPR !add(SPRG, 272), gprc:$RT)>; 4421} 4422foreach SPRG = 4-7 in { 4423 def : InstAlias<"mfsprg $RT, "#SPRG, (MFSPR gprc:$RT, !add(SPRG, 256))>, 4424 Requires<[IsBookE]>; 4425 def : InstAlias<"mfsprg"#SPRG#" $RT", (MFSPR gprc:$RT, !add(SPRG, 256))>, 4426 Requires<[IsBookE]>; 4427 def : InstAlias<"mtsprg "#SPRG#", $RT", (MTSPR !add(SPRG, 256), gprc:$RT)>, 4428 Requires<[IsBookE]>; 4429 def : InstAlias<"mtsprg"#SPRG#" $RT", (MTSPR !add(SPRG, 256), gprc:$RT)>, 4430 Requires<[IsBookE]>; 4431} 4432 4433def : InstAlias<"mtasr $RS", (MTSPR 280, gprc:$RS)>; 4434 4435def : InstAlias<"mfdec $RT", (MFSPR gprc:$RT, 22)>; 4436def : InstAlias<"mtdec $RT", (MTSPR 22, gprc:$RT)>; 4437 4438def : InstAlias<"mfpvr $RT", (MFSPR gprc:$RT, 287)>; 4439 4440def : InstAlias<"mfsdr1 $RT", (MFSPR gprc:$RT, 25)>; 4441def : InstAlias<"mtsdr1 $RT", (MTSPR 25, gprc:$RT)>; 4442 4443def : InstAlias<"mfsrr0 $RT", (MFSPR gprc:$RT, 26)>; 4444def : InstAlias<"mfsrr1 $RT", (MFSPR gprc:$RT, 27)>; 4445def : InstAlias<"mtsrr0 $RT", (MTSPR 26, gprc:$RT)>; 4446def : InstAlias<"mtsrr1 $RT", (MTSPR 27, gprc:$RT)>; 4447 4448def : InstAlias<"tlbie $RB", (TLBIE R0, gprc:$RB)>; 4449 4450def : InstAlias<"tlbrehi $RS, $A", (TLBRE2 gprc:$RS, gprc:$A, 0)>, 4451 Requires<[IsPPC4xx]>; 4452def : InstAlias<"tlbrelo $RS, $A", (TLBRE2 gprc:$RS, gprc:$A, 1)>, 4453 Requires<[IsPPC4xx]>; 4454def : InstAlias<"tlbwehi $RS, $A", (TLBWE2 gprc:$RS, gprc:$A, 0)>, 4455 Requires<[IsPPC4xx]>; 4456def : InstAlias<"tlbwelo $RS, $A", (TLBWE2 gprc:$RS, gprc:$A, 1)>, 4457 Requires<[IsPPC4xx]>; 4458 4459def EXTLWI : PPCAsmPseudo<"extlwi $rA, $rS, $n, $b", 4460 (ins gprc:$rA, gprc:$rS, u5imm:$n, u5imm:$b)>; 4461def EXTLWIo : PPCAsmPseudo<"extlwi. $rA, $rS, $n, $b", 4462 (ins gprc:$rA, gprc:$rS, u5imm:$n, u5imm:$b)>; 4463def EXTRWI : PPCAsmPseudo<"extrwi $rA, $rS, $n, $b", 4464 (ins gprc:$rA, gprc:$rS, u5imm:$n, u5imm:$b)>; 4465def EXTRWIo : PPCAsmPseudo<"extrwi. $rA, $rS, $n, $b", 4466 (ins gprc:$rA, gprc:$rS, u5imm:$n, u5imm:$b)>; 4467def INSLWI : PPCAsmPseudo<"inslwi $rA, $rS, $n, $b", 4468 (ins gprc:$rA, gprc:$rS, u5imm:$n, u5imm:$b)>; 4469def INSLWIo : PPCAsmPseudo<"inslwi. $rA, $rS, $n, $b", 4470 (ins gprc:$rA, gprc:$rS, u5imm:$n, u5imm:$b)>; 4471def INSRWI : PPCAsmPseudo<"insrwi $rA, $rS, $n, $b", 4472 (ins gprc:$rA, gprc:$rS, u5imm:$n, u5imm:$b)>; 4473def INSRWIo : PPCAsmPseudo<"insrwi. $rA, $rS, $n, $b", 4474 (ins gprc:$rA, gprc:$rS, u5imm:$n, u5imm:$b)>; 4475def ROTRWI : PPCAsmPseudo<"rotrwi $rA, $rS, $n", 4476 (ins gprc:$rA, gprc:$rS, u5imm:$n)>; 4477def ROTRWIo : PPCAsmPseudo<"rotrwi. $rA, $rS, $n", 4478 (ins gprc:$rA, gprc:$rS, u5imm:$n)>; 4479def SLWI : PPCAsmPseudo<"slwi $rA, $rS, $n", 4480 (ins gprc:$rA, gprc:$rS, u5imm:$n)>; 4481def SLWIo : PPCAsmPseudo<"slwi. $rA, $rS, $n", 4482 (ins gprc:$rA, gprc:$rS, u5imm:$n)>; 4483def SRWI : PPCAsmPseudo<"srwi $rA, $rS, $n", 4484 (ins gprc:$rA, gprc:$rS, u5imm:$n)>; 4485def SRWIo : PPCAsmPseudo<"srwi. $rA, $rS, $n", 4486 (ins gprc:$rA, gprc:$rS, u5imm:$n)>; 4487def CLRRWI : PPCAsmPseudo<"clrrwi $rA, $rS, $n", 4488 (ins gprc:$rA, gprc:$rS, u5imm:$n)>; 4489def CLRRWIo : PPCAsmPseudo<"clrrwi. $rA, $rS, $n", 4490 (ins gprc:$rA, gprc:$rS, u5imm:$n)>; 4491def CLRLSLWI : PPCAsmPseudo<"clrlslwi $rA, $rS, $b, $n", 4492 (ins gprc:$rA, gprc:$rS, u5imm:$b, u5imm:$n)>; 4493def CLRLSLWIo : PPCAsmPseudo<"clrlslwi. $rA, $rS, $b, $n", 4494 (ins gprc:$rA, gprc:$rS, u5imm:$b, u5imm:$n)>; 4495 4496def : InstAlias<"rotlwi $rA, $rS, $n", (RLWINM gprc:$rA, gprc:$rS, u5imm:$n, 0, 31)>; 4497def : InstAlias<"rotlwi. $rA, $rS, $n", (RLWINMo gprc:$rA, gprc:$rS, u5imm:$n, 0, 31)>; 4498def : InstAlias<"rotlw $rA, $rS, $rB", (RLWNM gprc:$rA, gprc:$rS, gprc:$rB, 0, 31)>; 4499def : InstAlias<"rotlw. $rA, $rS, $rB", (RLWNMo gprc:$rA, gprc:$rS, gprc:$rB, 0, 31)>; 4500def : InstAlias<"clrlwi $rA, $rS, $n", (RLWINM gprc:$rA, gprc:$rS, 0, u5imm:$n, 31)>; 4501def : InstAlias<"clrlwi. $rA, $rS, $n", (RLWINMo gprc:$rA, gprc:$rS, 0, u5imm:$n, 31)>; 4502 4503def : InstAlias<"cntlzw $rA, $rS", (CNTLZW gprc:$rA, gprc:$rS)>; 4504def : InstAlias<"cntlzw. $rA, $rS", (CNTLZWo gprc:$rA, gprc:$rS)>; 4505// The POWER variant 4506def : MnemonicAlias<"cntlz", "cntlzw">; 4507def : MnemonicAlias<"cntlz.", "cntlzw.">; 4508 4509def EXTLDI : PPCAsmPseudo<"extldi $rA, $rS, $n, $b", 4510 (ins g8rc:$rA, g8rc:$rS, u6imm:$n, u6imm:$b)>; 4511def EXTLDIo : PPCAsmPseudo<"extldi. $rA, $rS, $n, $b", 4512 (ins g8rc:$rA, g8rc:$rS, u6imm:$n, u6imm:$b)>; 4513def EXTRDI : PPCAsmPseudo<"extrdi $rA, $rS, $n, $b", 4514 (ins g8rc:$rA, g8rc:$rS, u6imm:$n, u6imm:$b)>; 4515def EXTRDIo : PPCAsmPseudo<"extrdi. $rA, $rS, $n, $b", 4516 (ins g8rc:$rA, g8rc:$rS, u6imm:$n, u6imm:$b)>; 4517def INSRDI : PPCAsmPseudo<"insrdi $rA, $rS, $n, $b", 4518 (ins g8rc:$rA, g8rc:$rS, u6imm:$n, u6imm:$b)>; 4519def INSRDIo : PPCAsmPseudo<"insrdi. $rA, $rS, $n, $b", 4520 (ins g8rc:$rA, g8rc:$rS, u6imm:$n, u6imm:$b)>; 4521def ROTRDI : PPCAsmPseudo<"rotrdi $rA, $rS, $n", 4522 (ins g8rc:$rA, g8rc:$rS, u6imm:$n)>; 4523def ROTRDIo : PPCAsmPseudo<"rotrdi. $rA, $rS, $n", 4524 (ins g8rc:$rA, g8rc:$rS, u6imm:$n)>; 4525def SLDI : PPCAsmPseudo<"sldi $rA, $rS, $n", 4526 (ins g8rc:$rA, g8rc:$rS, u6imm:$n)>; 4527def SLDIo : PPCAsmPseudo<"sldi. $rA, $rS, $n", 4528 (ins g8rc:$rA, g8rc:$rS, u6imm:$n)>; 4529def SRDI : PPCAsmPseudo<"srdi $rA, $rS, $n", 4530 (ins g8rc:$rA, g8rc:$rS, u6imm:$n)>; 4531def SRDIo : PPCAsmPseudo<"srdi. $rA, $rS, $n", 4532 (ins g8rc:$rA, g8rc:$rS, u6imm:$n)>; 4533def CLRRDI : PPCAsmPseudo<"clrrdi $rA, $rS, $n", 4534 (ins g8rc:$rA, g8rc:$rS, u6imm:$n)>; 4535def CLRRDIo : PPCAsmPseudo<"clrrdi. $rA, $rS, $n", 4536 (ins g8rc:$rA, g8rc:$rS, u6imm:$n)>; 4537def CLRLSLDI : PPCAsmPseudo<"clrlsldi $rA, $rS, $b, $n", 4538 (ins g8rc:$rA, g8rc:$rS, u6imm:$b, u6imm:$n)>; 4539def CLRLSLDIo : PPCAsmPseudo<"clrlsldi. $rA, $rS, $b, $n", 4540 (ins g8rc:$rA, g8rc:$rS, u6imm:$b, u6imm:$n)>; 4541def SUBPCIS : PPCAsmPseudo<"subpcis $RT, $D", (ins g8rc:$RT, s16imm:$D)>; 4542 4543def : InstAlias<"rotldi $rA, $rS, $n", (RLDICL g8rc:$rA, g8rc:$rS, u6imm:$n, 0)>; 4544def : InstAlias<"rotldi. $rA, $rS, $n", (RLDICLo g8rc:$rA, g8rc:$rS, u6imm:$n, 0)>; 4545def : InstAlias<"rotld $rA, $rS, $rB", (RLDCL g8rc:$rA, g8rc:$rS, gprc:$rB, 0)>; 4546def : InstAlias<"rotld. $rA, $rS, $rB", (RLDCLo g8rc:$rA, g8rc:$rS, gprc:$rB, 0)>; 4547def : InstAlias<"clrldi $rA, $rS, $n", (RLDICL g8rc:$rA, g8rc:$rS, 0, u6imm:$n)>; 4548def : InstAlias<"clrldi $rA, $rS, $n", 4549 (RLDICL_32_64 g8rc:$rA, gprc:$rS, 0, u6imm:$n)>; 4550def : InstAlias<"clrldi. $rA, $rS, $n", (RLDICLo g8rc:$rA, g8rc:$rS, 0, u6imm:$n)>; 4551def : InstAlias<"lnia $RT", (ADDPCIS g8rc:$RT, 0)>; 4552 4553def RLWINMbm : PPCAsmPseudo<"rlwinm $rA, $rS, $n, $b", 4554 (ins g8rc:$rA, g8rc:$rS, u5imm:$n, i32imm:$b)>; 4555def RLWINMobm : PPCAsmPseudo<"rlwinm. $rA, $rS, $n, $b", 4556 (ins g8rc:$rA, g8rc:$rS, u5imm:$n, i32imm:$b)>; 4557def RLWIMIbm : PPCAsmPseudo<"rlwimi $rA, $rS, $n, $b", 4558 (ins g8rc:$rA, g8rc:$rS, u5imm:$n, i32imm:$b)>; 4559def RLWIMIobm : PPCAsmPseudo<"rlwimi. $rA, $rS, $n, $b", 4560 (ins g8rc:$rA, g8rc:$rS, u5imm:$n, i32imm:$b)>; 4561def RLWNMbm : PPCAsmPseudo<"rlwnm $rA, $rS, $n, $b", 4562 (ins g8rc:$rA, g8rc:$rS, u5imm:$n, i32imm:$b)>; 4563def RLWNMobm : PPCAsmPseudo<"rlwnm. $rA, $rS, $n, $b", 4564 (ins g8rc:$rA, g8rc:$rS, u5imm:$n, i32imm:$b)>; 4565 4566// These generic branch instruction forms are used for the assembler parser only. 4567// Defs and Uses are conservative, since we don't know the BO value. 4568let PPC970_Unit = 7, isBranch = 1 in { 4569 let Defs = [CTR], Uses = [CTR, RM] in { 4570 def gBC : BForm_3<16, 0, 0, (outs), 4571 (ins u5imm:$bo, crbitrc:$bi, condbrtarget:$dst), 4572 "bc $bo, $bi, $dst">; 4573 def gBCA : BForm_3<16, 1, 0, (outs), 4574 (ins u5imm:$bo, crbitrc:$bi, abscondbrtarget:$dst), 4575 "bca $bo, $bi, $dst">; 4576 let isAsmParserOnly = 1 in { 4577 def gBCat : BForm_3_at<16, 0, 0, (outs), 4578 (ins u5imm:$bo, atimm:$at, crbitrc:$bi, 4579 condbrtarget:$dst), 4580 "bc$at $bo, $bi, $dst">; 4581 def gBCAat : BForm_3_at<16, 1, 0, (outs), 4582 (ins u5imm:$bo, atimm:$at, crbitrc:$bi, 4583 abscondbrtarget:$dst), 4584 "bca$at $bo, $bi, $dst">; 4585 } // isAsmParserOnly = 1 4586 } 4587 let Defs = [LR, CTR], Uses = [CTR, RM] in { 4588 def gBCL : BForm_3<16, 0, 1, (outs), 4589 (ins u5imm:$bo, crbitrc:$bi, condbrtarget:$dst), 4590 "bcl $bo, $bi, $dst">; 4591 def gBCLA : BForm_3<16, 1, 1, (outs), 4592 (ins u5imm:$bo, crbitrc:$bi, abscondbrtarget:$dst), 4593 "bcla $bo, $bi, $dst">; 4594 let isAsmParserOnly = 1 in { 4595 def gBCLat : BForm_3_at<16, 0, 1, (outs), 4596 (ins u5imm:$bo, atimm:$at, crbitrc:$bi, 4597 condbrtarget:$dst), 4598 "bcl$at $bo, $bi, $dst">; 4599 def gBCLAat : BForm_3_at<16, 1, 1, (outs), 4600 (ins u5imm:$bo, atimm:$at, crbitrc:$bi, 4601 abscondbrtarget:$dst), 4602 "bcla$at $bo, $bi, $dst">; 4603 } // // isAsmParserOnly = 1 4604 } 4605 let Defs = [CTR], Uses = [CTR, LR, RM] in 4606 def gBCLR : XLForm_2<19, 16, 0, (outs), 4607 (ins u5imm:$bo, crbitrc:$bi, i32imm:$bh), 4608 "bclr $bo, $bi, $bh", IIC_BrB, []>; 4609 let Defs = [LR, CTR], Uses = [CTR, LR, RM] in 4610 def gBCLRL : XLForm_2<19, 16, 1, (outs), 4611 (ins u5imm:$bo, crbitrc:$bi, i32imm:$bh), 4612 "bclrl $bo, $bi, $bh", IIC_BrB, []>; 4613 let Defs = [CTR], Uses = [CTR, LR, RM] in 4614 def gBCCTR : XLForm_2<19, 528, 0, (outs), 4615 (ins u5imm:$bo, crbitrc:$bi, i32imm:$bh), 4616 "bcctr $bo, $bi, $bh", IIC_BrB, []>; 4617 let Defs = [LR, CTR], Uses = [CTR, LR, RM] in 4618 def gBCCTRL : XLForm_2<19, 528, 1, (outs), 4619 (ins u5imm:$bo, crbitrc:$bi, i32imm:$bh), 4620 "bcctrl $bo, $bi, $bh", IIC_BrB, []>; 4621} 4622 4623multiclass BranchSimpleMnemonicAT<string pm, int at> { 4624 def : InstAlias<"bc"#pm#" $bo, $bi, $dst", (gBCat u5imm:$bo, at, crbitrc:$bi, 4625 condbrtarget:$dst)>; 4626 def : InstAlias<"bca"#pm#" $bo, $bi, $dst", (gBCAat u5imm:$bo, at, crbitrc:$bi, 4627 condbrtarget:$dst)>; 4628 def : InstAlias<"bcl"#pm#" $bo, $bi, $dst", (gBCLat u5imm:$bo, at, crbitrc:$bi, 4629 condbrtarget:$dst)>; 4630 def : InstAlias<"bcla"#pm#" $bo, $bi, $dst", (gBCLAat u5imm:$bo, at, crbitrc:$bi, 4631 condbrtarget:$dst)>; 4632} 4633defm : BranchSimpleMnemonicAT<"+", 3>; 4634defm : BranchSimpleMnemonicAT<"-", 2>; 4635 4636def : InstAlias<"bclr $bo, $bi", (gBCLR u5imm:$bo, crbitrc:$bi, 0)>; 4637def : InstAlias<"bclrl $bo, $bi", (gBCLRL u5imm:$bo, crbitrc:$bi, 0)>; 4638def : InstAlias<"bcctr $bo, $bi", (gBCCTR u5imm:$bo, crbitrc:$bi, 0)>; 4639def : InstAlias<"bcctrl $bo, $bi", (gBCCTRL u5imm:$bo, crbitrc:$bi, 0)>; 4640 4641multiclass BranchSimpleMnemonic1<string name, string pm, int bo> { 4642 def : InstAlias<"b"#name#pm#" $bi, $dst", (gBC bo, crbitrc:$bi, condbrtarget:$dst)>; 4643 def : InstAlias<"b"#name#"a"#pm#" $bi, $dst", (gBCA bo, crbitrc:$bi, abscondbrtarget:$dst)>; 4644 def : InstAlias<"b"#name#"lr"#pm#" $bi", (gBCLR bo, crbitrc:$bi, 0)>; 4645 def : InstAlias<"b"#name#"l"#pm#" $bi, $dst", (gBCL bo, crbitrc:$bi, condbrtarget:$dst)>; 4646 def : InstAlias<"b"#name#"la"#pm#" $bi, $dst", (gBCLA bo, crbitrc:$bi, abscondbrtarget:$dst)>; 4647 def : InstAlias<"b"#name#"lrl"#pm#" $bi", (gBCLRL bo, crbitrc:$bi, 0)>; 4648} 4649multiclass BranchSimpleMnemonic2<string name, string pm, int bo> 4650 : BranchSimpleMnemonic1<name, pm, bo> { 4651 def : InstAlias<"b"#name#"ctr"#pm#" $bi", (gBCCTR bo, crbitrc:$bi, 0)>; 4652 def : InstAlias<"b"#name#"ctrl"#pm#" $bi", (gBCCTRL bo, crbitrc:$bi, 0)>; 4653} 4654defm : BranchSimpleMnemonic2<"t", "", 12>; 4655defm : BranchSimpleMnemonic2<"f", "", 4>; 4656defm : BranchSimpleMnemonic2<"t", "-", 14>; 4657defm : BranchSimpleMnemonic2<"f", "-", 6>; 4658defm : BranchSimpleMnemonic2<"t", "+", 15>; 4659defm : BranchSimpleMnemonic2<"f", "+", 7>; 4660defm : BranchSimpleMnemonic1<"dnzt", "", 8>; 4661defm : BranchSimpleMnemonic1<"dnzf", "", 0>; 4662defm : BranchSimpleMnemonic1<"dzt", "", 10>; 4663defm : BranchSimpleMnemonic1<"dzf", "", 2>; 4664 4665multiclass BranchExtendedMnemonicPM<string name, string pm, int bibo> { 4666 def : InstAlias<"b"#name#pm#" $cc, $dst", 4667 (BCC bibo, crrc:$cc, condbrtarget:$dst)>; 4668 def : InstAlias<"b"#name#pm#" $dst", 4669 (BCC bibo, CR0, condbrtarget:$dst)>; 4670 4671 def : InstAlias<"b"#name#"a"#pm#" $cc, $dst", 4672 (BCCA bibo, crrc:$cc, abscondbrtarget:$dst)>; 4673 def : InstAlias<"b"#name#"a"#pm#" $dst", 4674 (BCCA bibo, CR0, abscondbrtarget:$dst)>; 4675 4676 def : InstAlias<"b"#name#"lr"#pm#" $cc", 4677 (BCCLR bibo, crrc:$cc)>; 4678 def : InstAlias<"b"#name#"lr"#pm, 4679 (BCCLR bibo, CR0)>; 4680 4681 def : InstAlias<"b"#name#"ctr"#pm#" $cc", 4682 (BCCCTR bibo, crrc:$cc)>; 4683 def : InstAlias<"b"#name#"ctr"#pm, 4684 (BCCCTR bibo, CR0)>; 4685 4686 def : InstAlias<"b"#name#"l"#pm#" $cc, $dst", 4687 (BCCL bibo, crrc:$cc, condbrtarget:$dst)>; 4688 def : InstAlias<"b"#name#"l"#pm#" $dst", 4689 (BCCL bibo, CR0, condbrtarget:$dst)>; 4690 4691 def : InstAlias<"b"#name#"la"#pm#" $cc, $dst", 4692 (BCCLA bibo, crrc:$cc, abscondbrtarget:$dst)>; 4693 def : InstAlias<"b"#name#"la"#pm#" $dst", 4694 (BCCLA bibo, CR0, abscondbrtarget:$dst)>; 4695 4696 def : InstAlias<"b"#name#"lrl"#pm#" $cc", 4697 (BCCLRL bibo, crrc:$cc)>; 4698 def : InstAlias<"b"#name#"lrl"#pm, 4699 (BCCLRL bibo, CR0)>; 4700 4701 def : InstAlias<"b"#name#"ctrl"#pm#" $cc", 4702 (BCCCTRL bibo, crrc:$cc)>; 4703 def : InstAlias<"b"#name#"ctrl"#pm, 4704 (BCCCTRL bibo, CR0)>; 4705} 4706multiclass BranchExtendedMnemonic<string name, int bibo> { 4707 defm : BranchExtendedMnemonicPM<name, "", bibo>; 4708 defm : BranchExtendedMnemonicPM<name, "-", !add(bibo, 2)>; 4709 defm : BranchExtendedMnemonicPM<name, "+", !add(bibo, 3)>; 4710} 4711defm : BranchExtendedMnemonic<"lt", 12>; 4712defm : BranchExtendedMnemonic<"gt", 44>; 4713defm : BranchExtendedMnemonic<"eq", 76>; 4714defm : BranchExtendedMnemonic<"un", 108>; 4715defm : BranchExtendedMnemonic<"so", 108>; 4716defm : BranchExtendedMnemonic<"ge", 4>; 4717defm : BranchExtendedMnemonic<"nl", 4>; 4718defm : BranchExtendedMnemonic<"le", 36>; 4719defm : BranchExtendedMnemonic<"ng", 36>; 4720defm : BranchExtendedMnemonic<"ne", 68>; 4721defm : BranchExtendedMnemonic<"nu", 100>; 4722defm : BranchExtendedMnemonic<"ns", 100>; 4723 4724def : InstAlias<"cmpwi $rA, $imm", (CMPWI CR0, gprc:$rA, s16imm:$imm)>; 4725def : InstAlias<"cmpw $rA, $rB", (CMPW CR0, gprc:$rA, gprc:$rB)>; 4726def : InstAlias<"cmplwi $rA, $imm", (CMPLWI CR0, gprc:$rA, u16imm:$imm)>; 4727def : InstAlias<"cmplw $rA, $rB", (CMPLW CR0, gprc:$rA, gprc:$rB)>; 4728def : InstAlias<"cmpdi $rA, $imm", (CMPDI CR0, g8rc:$rA, s16imm64:$imm)>; 4729def : InstAlias<"cmpd $rA, $rB", (CMPD CR0, g8rc:$rA, g8rc:$rB)>; 4730def : InstAlias<"cmpldi $rA, $imm", (CMPLDI CR0, g8rc:$rA, u16imm64:$imm)>; 4731def : InstAlias<"cmpld $rA, $rB", (CMPLD CR0, g8rc:$rA, g8rc:$rB)>; 4732 4733def : InstAlias<"cmpi $bf, 0, $rA, $imm", (CMPWI crrc:$bf, gprc:$rA, s16imm:$imm)>; 4734def : InstAlias<"cmp $bf, 0, $rA, $rB", (CMPW crrc:$bf, gprc:$rA, gprc:$rB)>; 4735def : InstAlias<"cmpli $bf, 0, $rA, $imm", (CMPLWI crrc:$bf, gprc:$rA, u16imm:$imm)>; 4736def : InstAlias<"cmpl $bf, 0, $rA, $rB", (CMPLW crrc:$bf, gprc:$rA, gprc:$rB)>; 4737def : InstAlias<"cmpi $bf, 1, $rA, $imm", (CMPDI crrc:$bf, g8rc:$rA, s16imm64:$imm)>; 4738def : InstAlias<"cmp $bf, 1, $rA, $rB", (CMPD crrc:$bf, g8rc:$rA, g8rc:$rB)>; 4739def : InstAlias<"cmpli $bf, 1, $rA, $imm", (CMPLDI crrc:$bf, g8rc:$rA, u16imm64:$imm)>; 4740def : InstAlias<"cmpl $bf, 1, $rA, $rB", (CMPLD crrc:$bf, g8rc:$rA, g8rc:$rB)>; 4741 4742multiclass TrapExtendedMnemonic<string name, int to> { 4743 def : InstAlias<"td"#name#"i $rA, $imm", (TDI to, g8rc:$rA, s16imm:$imm)>; 4744 def : InstAlias<"td"#name#" $rA, $rB", (TD to, g8rc:$rA, g8rc:$rB)>; 4745 def : InstAlias<"tw"#name#"i $rA, $imm", (TWI to, gprc:$rA, s16imm:$imm)>; 4746 def : InstAlias<"tw"#name#" $rA, $rB", (TW to, gprc:$rA, gprc:$rB)>; 4747} 4748defm : TrapExtendedMnemonic<"lt", 16>; 4749defm : TrapExtendedMnemonic<"le", 20>; 4750defm : TrapExtendedMnemonic<"eq", 4>; 4751defm : TrapExtendedMnemonic<"ge", 12>; 4752defm : TrapExtendedMnemonic<"gt", 8>; 4753defm : TrapExtendedMnemonic<"nl", 12>; 4754defm : TrapExtendedMnemonic<"ne", 24>; 4755defm : TrapExtendedMnemonic<"ng", 20>; 4756defm : TrapExtendedMnemonic<"llt", 2>; 4757defm : TrapExtendedMnemonic<"lle", 6>; 4758defm : TrapExtendedMnemonic<"lge", 5>; 4759defm : TrapExtendedMnemonic<"lgt", 1>; 4760defm : TrapExtendedMnemonic<"lnl", 5>; 4761defm : TrapExtendedMnemonic<"lng", 6>; 4762defm : TrapExtendedMnemonic<"u", 31>; 4763 4764// Atomic loads 4765def : Pat<(atomic_load_8 iaddr:$src), (LBZ memri:$src)>; 4766def : Pat<(atomic_load_16 iaddr:$src), (LHZ memri:$src)>; 4767def : Pat<(atomic_load_32 iaddr:$src), (LWZ memri:$src)>; 4768def : Pat<(atomic_load_8 xaddr:$src), (LBZX memrr:$src)>; 4769def : Pat<(atomic_load_16 xaddr:$src), (LHZX memrr:$src)>; 4770def : Pat<(atomic_load_32 xaddr:$src), (LWZX memrr:$src)>; 4771 4772// Atomic stores 4773def : Pat<(atomic_store_8 iaddr:$ptr, i32:$val), (STB gprc:$val, memri:$ptr)>; 4774def : Pat<(atomic_store_16 iaddr:$ptr, i32:$val), (STH gprc:$val, memri:$ptr)>; 4775def : Pat<(atomic_store_32 iaddr:$ptr, i32:$val), (STW gprc:$val, memri:$ptr)>; 4776def : Pat<(atomic_store_8 xaddr:$ptr, i32:$val), (STBX gprc:$val, memrr:$ptr)>; 4777def : Pat<(atomic_store_16 xaddr:$ptr, i32:$val), (STHX gprc:$val, memrr:$ptr)>; 4778def : Pat<(atomic_store_32 xaddr:$ptr, i32:$val), (STWX gprc:$val, memrr:$ptr)>; 4779 4780let Predicates = [IsISA3_0] in { 4781 4782// Copy-Paste Facility 4783// We prefix 'CP' to COPY due to name conflict in Target.td. We also prefix to 4784// PASTE for naming consistency. 4785let mayLoad = 1 in 4786def CP_COPY : X_L1_RA5_RB5<31, 774, "copy" , gprc, IIC_LdStCOPY, []>; 4787 4788let mayStore = 1 in 4789def CP_PASTE : X_L1_RA5_RB5<31, 902, "paste" , gprc, IIC_LdStPASTE, []>; 4790 4791let mayStore = 1, Defs = [CR0] in 4792def CP_PASTEo : X_L1_RA5_RB5<31, 902, "paste.", gprc, IIC_LdStPASTE, []>, isDOT; 4793 4794def CP_COPYx : PPCAsmPseudo<"copy $rA, $rB" , (ins gprc:$rA, gprc:$rB)>; 4795def CP_PASTEx : PPCAsmPseudo<"paste $rA, $rB", (ins gprc:$rA, gprc:$rB)>; 4796def CP_COPY_FIRST : PPCAsmPseudo<"copy_first $rA, $rB", 4797 (ins gprc:$rA, gprc:$rB)>; 4798def CP_PASTE_LAST : PPCAsmPseudo<"paste_last $rA, $rB", 4799 (ins gprc:$rA, gprc:$rB)>; 4800def CP_ABORT : XForm_0<31, 838, (outs), (ins), "cp_abort", IIC_SprABORT, []>; 4801 4802// Message Synchronize 4803def MSGSYNC : XForm_0<31, 886, (outs), (ins), "msgsync", IIC_SprMSGSYNC, []>; 4804 4805// Power-Saving Mode Instruction: 4806def STOP : XForm_0<19, 370, (outs), (ins), "stop", IIC_SprSTOP, []>; 4807 4808} // IsISA3_0 4809 4810// Fast 32-bit reverse bits algorithm: 4811// Step 1: 1-bit swap (swap odd 1-bit and even 1-bit): 4812// n = ((n >> 1) & 0x55555555) | ((n << 1) & 0xAAAAAAAA); 4813// Step 2: 2-bit swap (swap odd 2-bit and even 2-bit): 4814// n = ((n >> 2) & 0x33333333) | ((n << 2) & 0xCCCCCCCC); 4815// Step 3: 4-bit swap (swap odd 4-bit and even 4-bit): 4816// n = ((n >> 4) & 0x0F0F0F0F) | ((n << 4) & 0xF0F0F0F0); 4817// Step 4: byte reverse (Suppose n = [B1,B2,B3,B4]): 4818// Step 4.1: Put B4,B2 in the right position (rotate left 3 bytes): 4819// n' = (n rotl 24); After which n' = [B4, B1, B2, B3] 4820// Step 4.2: Insert B3 to the right position: 4821// n' = rlwimi n', n, 8, 8, 15; After which n' = [B4, B3, B2, B3] 4822// Step 4.3: Insert B1 to the right position: 4823// n' = rlwimi n', n, 8, 24, 31; After which n' = [B4, B3, B2, B1] 4824def MaskValues { 4825 dag Lo1 = (ORI (LIS 0x5555), 0x5555); 4826 dag Hi1 = (ORI (LIS 0xAAAA), 0xAAAA); 4827 dag Lo2 = (ORI (LIS 0x3333), 0x3333); 4828 dag Hi2 = (ORI (LIS 0xCCCC), 0xCCCC); 4829 dag Lo4 = (ORI (LIS 0x0F0F), 0x0F0F); 4830 dag Hi4 = (ORI (LIS 0xF0F0), 0xF0F0); 4831} 4832 4833def Shift1 { 4834 dag Right = (RLWINM $A, 31, 1, 31); 4835 dag Left = (RLWINM $A, 1, 0, 30); 4836} 4837 4838def Swap1 { 4839 dag Bit = (OR (AND Shift1.Right, MaskValues.Lo1), 4840 (AND Shift1.Left, MaskValues.Hi1)); 4841} 4842 4843def Shift2 { 4844 dag Right = (RLWINM Swap1.Bit, 30, 2, 31); 4845 dag Left = (RLWINM Swap1.Bit, 2, 0, 29); 4846} 4847 4848def Swap2 { 4849 dag Bits = (OR (AND Shift2.Right, MaskValues.Lo2), 4850 (AND Shift2.Left, MaskValues.Hi2)); 4851} 4852 4853def Shift4 { 4854 dag Right = (RLWINM Swap2.Bits, 28, 4, 31); 4855 dag Left = (RLWINM Swap2.Bits, 4, 0, 27); 4856} 4857 4858def Swap4 { 4859 dag Bits = (OR (AND Shift4.Right, MaskValues.Lo4), 4860 (AND Shift4.Left, MaskValues.Hi4)); 4861} 4862 4863def Rotate { 4864 dag Left3Bytes = (RLWINM Swap4.Bits, 24, 0, 31); 4865} 4866 4867def RotateInsertByte3 { 4868 dag Left = (RLWIMI Rotate.Left3Bytes, Swap4.Bits, 8, 8, 15); 4869} 4870 4871def RotateInsertByte1 { 4872 dag Left = (RLWIMI RotateInsertByte3.Left, Swap4.Bits, 8, 24, 31); 4873} 4874 4875def : Pat<(i32 (bitreverse i32:$A)), 4876 (RLDICL_32 RotateInsertByte1.Left, 0, 32)>; 4877 4878// Fast 64-bit reverse bits algorithm: 4879// Step 1: 1-bit swap (swap odd 1-bit and even 1-bit): 4880// n = ((n >> 1) & 0x5555555555555555) | ((n << 1) & 0xAAAAAAAAAAAAAAAA); 4881// Step 2: 2-bit swap (swap odd 2-bit and even 2-bit): 4882// n = ((n >> 2) & 0x3333333333333333) | ((n << 2) & 0xCCCCCCCCCCCCCCCC); 4883// Step 3: 4-bit swap (swap odd 4-bit and even 4-bit): 4884// n = ((n >> 4) & 0x0F0F0F0F0F0F0F0F) | ((n << 4) & 0xF0F0F0F0F0F0F0F0); 4885// Step 4: byte reverse (Suppose n = [B0,B1,B2,B3,B4,B5,B6,B7]): 4886// Apply the same byte reverse algorithm mentioned above for the fast 32-bit 4887// reverse to both the high 32 bit and low 32 bit of the 64 bit value. And 4888// then OR them together to get the final result. 4889def MaskValues64 { 4890 dag Lo1 = (i64 (INSERT_SUBREG (i64 (IMPLICIT_DEF)), MaskValues.Lo1, sub_32)); 4891 dag Hi1 = (i64 (INSERT_SUBREG (i64 (IMPLICIT_DEF)), MaskValues.Hi1, sub_32)); 4892 dag Lo2 = (i64 (INSERT_SUBREG (i64 (IMPLICIT_DEF)), MaskValues.Lo2, sub_32)); 4893 dag Hi2 = (i64 (INSERT_SUBREG (i64 (IMPLICIT_DEF)), MaskValues.Hi2, sub_32)); 4894 dag Lo4 = (i64 (INSERT_SUBREG (i64 (IMPLICIT_DEF)), MaskValues.Lo4, sub_32)); 4895 dag Hi4 = (i64 (INSERT_SUBREG (i64 (IMPLICIT_DEF)), MaskValues.Hi4, sub_32)); 4896} 4897 4898def DWMaskValues { 4899 dag Lo1 = (ORI8 (ORIS8 (RLDICR MaskValues64.Lo1, 32, 31), 0x5555), 0x5555); 4900 dag Hi1 = (ORI8 (ORIS8 (RLDICR MaskValues64.Hi1, 32, 31), 0xAAAA), 0xAAAA); 4901 dag Lo2 = (ORI8 (ORIS8 (RLDICR MaskValues64.Lo2, 32, 31), 0x3333), 0x3333); 4902 dag Hi2 = (ORI8 (ORIS8 (RLDICR MaskValues64.Hi2, 32, 31), 0xCCCC), 0xCCCC); 4903 dag Lo4 = (ORI8 (ORIS8 (RLDICR MaskValues64.Lo4, 32, 31), 0x0F0F), 0x0F0F); 4904 dag Hi4 = (ORI8 (ORIS8 (RLDICR MaskValues64.Hi4, 32, 31), 0xF0F0), 0xF0F0); 4905} 4906 4907def DWSwapInByte { 4908 dag Swap1 = (OR8 (AND8 (RLDICL $A, 63, 1), DWMaskValues.Lo1), 4909 (AND8 (RLDICR $A, 1, 62), DWMaskValues.Hi1)); 4910 dag Swap2 = (OR8 (AND8 (RLDICL Swap1, 62, 2), DWMaskValues.Lo2), 4911 (AND8 (RLDICR Swap1, 2, 61), DWMaskValues.Hi2)); 4912 dag Swap4 = (OR8 (AND8 (RLDICL Swap2, 60, 4), DWMaskValues.Lo4), 4913 (AND8 (RLDICR Swap2, 4, 59), DWMaskValues.Hi4)); 4914} 4915 4916// Intra-byte swap is done, now start inter-byte swap. 4917def DWBytes4567 { 4918 dag Word = (i32 (EXTRACT_SUBREG DWSwapInByte.Swap4, sub_32)); 4919} 4920 4921def DWBytes7456 { 4922 dag Word = (RLWINM DWBytes4567.Word, 24, 0, 31); 4923} 4924 4925def DWBytes7656 { 4926 dag Word = (RLWIMI DWBytes7456.Word, DWBytes4567.Word, 8, 8, 15); 4927} 4928 4929// B7 B6 B5 B4 in the right order 4930def DWBytes7654 { 4931 dag Word = (RLWIMI DWBytes7656.Word, DWBytes4567.Word, 8, 24, 31); 4932 dag DWord = 4933 (i64 (INSERT_SUBREG (i64 (IMPLICIT_DEF)), Word, sub_32)); 4934} 4935 4936def DWBytes0123 { 4937 dag Word = (i32 (EXTRACT_SUBREG (RLDICL DWSwapInByte.Swap4, 32, 32), sub_32)); 4938} 4939 4940def DWBytes3012 { 4941 dag Word = (RLWINM DWBytes0123.Word, 24, 0, 31); 4942} 4943 4944def DWBytes3212 { 4945 dag Word = (RLWIMI DWBytes3012.Word, DWBytes0123.Word, 8, 8, 15); 4946} 4947 4948// B3 B2 B1 B0 in the right order 4949def DWBytes3210 { 4950 dag Word = (RLWIMI DWBytes3212.Word, DWBytes0123.Word, 8, 24, 31); 4951 dag DWord = 4952 (i64 (INSERT_SUBREG (i64 (IMPLICIT_DEF)), Word, sub_32)); 4953} 4954 4955// Now both high word and low word are reversed, next 4956// swap the high word and low word. 4957def : Pat<(i64 (bitreverse i64:$A)), 4958 (OR8 (RLDICR DWBytes7654.DWord, 32, 31), DWBytes3210.DWord)>; 4959