1package xiangshan.backend.decode 2 3import org.chipsalliance.cde.config.Parameters 4import chisel3._ 5import chisel3.util.BitPat.bitPatToUInt 6import chisel3.util._ 7import freechips.rocketchip.util.uintToBitPat 8import freechips.rocketchip.rocket.Instructions._ 9import utils._ 10import xiangshan.ExceptionNO.illegalInstr 11import xiangshan.backend.fu.FuType 12import xiangshan._ 13import yunsuan.{VfpuType, VipuType, VimacType, VpermType, VialuFixType, VfaluType, VfmaType, VfdivType, VfcvtType, VidivType} 14import xiangshan.backend.decode.Zvbb._ 15 16abstract class VecDecode extends XSDecodeBase { 17 def generate() : List[BitPat] 18 def asOldDecodeOutput(): List[BitPat] = { 19 val src1::src2::src3::fu::fuOp::xWen::fWen::vWen::mWen::vxsatWen::xsTrap::noSpec::blockBack::flushPipe::selImm::Nil = generate() 20 List (src1, src2, src3, fu, fuOp, xWen, fWen, xsTrap, noSpec, blockBack, flushPipe, selImm) 21 } 22 def asFirstStageDecodeOutput(): List[BitPat] = { 23 val src1::src2::src3::fu::fuOp::xWen::fWen::vWen::mWen::vxsatWen::xsTrap::noSpec::blockBack::flushPipe::selImm::Nil = generate() 24 List (src1, src2, src3, fu, fuOp, xWen, fWen, bitPatToUInt(vWen) | bitPatToUInt(mWen), xsTrap, noSpec, blockBack, flushPipe, selImm) 25 } 26} 27 28case class OPIVV( 29 fu: FuType.OHType, 30 fuOp: BitPat, 31 vWen: Boolean, 32 mWen: Boolean, 33 vxsatWen: Boolean, 34 uopSplitType: BitPat = UopSplitType.VEC_VVV, 35 src1: BitPat = SrcType.vp, 36 src2: BitPat = SrcType.vp, 37 src3: BitPat = SrcType.vp 38) extends XSDecodeBase { 39 def generate() : List[BitPat] = { 40 XSDecode(src1, src2, src3, fu, fuOp, SelImm.X, uopSplitType, 41 xWen = F, fWen = F, vWen = vWen, mWen = mWen, xsTrap = F, noSpec = F, blockBack = F, flushPipe = F).generate() 42 } 43} 44 45case class OPIVX( 46 fu: FuType.OHType, 47 fuOp: BitPat, 48 vWen: Boolean, 49 mWen: Boolean, 50 vxsatWen: Boolean, 51 uopSplitType: BitPat = UopSplitType.VEC_VXV, 52 src1: BitPat = SrcType.xp, 53 src2: BitPat = SrcType.vp, 54 src3: BitPat = SrcType.vp 55) extends XSDecodeBase { 56 def generate() : List[BitPat] = { 57 XSDecode(src1, src2, src3, fu, fuOp, SelImm.X, uopSplitType, 58 xWen = F, fWen = F, vWen = vWen, mWen = mWen, xsTrap = F, noSpec = F, blockBack = F, flushPipe = F).generate() 59 } 60} 61 62case class OPIVI( 63 fu: FuType.OHType, 64 fuOp: BitPat, 65 vWen: Boolean, 66 mWen: Boolean, 67 vxsatWen: Boolean, 68 selImm: BitPat = SelImm.IMM_OPIVIS, 69 uopSplitType: BitPat = UopSplitType.VEC_VXV, 70 src1: BitPat = SrcType.imm, 71 src2: BitPat = SrcType.vp, 72 src3: BitPat = SrcType.vp 73) extends XSDecodeBase { 74 def generate() : List[BitPat] = { 75 XSDecode(src1, src2, src3, fu, fuOp, selImm, uopSplitType, 76 xWen = F, fWen = F, vWen = vWen, mWen = mWen, xsTrap = F, noSpec = F, blockBack = F, flushPipe = F).generate() 77 } 78} 79 80case class OPMVV( 81 vdRen: Boolean, 82 fu: FuType.OHType, 83 fuOp: BitPat, 84 xWen: Boolean, 85 vWen: Boolean, 86 mWen: Boolean, 87 uopSplitType: BitPat = UopSplitType.dummy, 88 src1: BitPat = SrcType.vp, 89 src2: BitPat = SrcType.vp 90) extends XSDecodeBase { 91 private def src3: BitPat = if (vdRen) SrcType.vp else SrcType.X 92 def generate() : List[BitPat] = { 93 XSDecode(src1, src2, src3, fu, fuOp, SelImm.X, uopSplitType, xWen, F, vWen, mWen, F, F, F, F).generate() 94 } 95} 96 97case class OPMVX( 98 vdRen: Boolean, 99 fu: FuType.OHType, 100 fuOp: BitPat, 101 xWen: Boolean, 102 vWen: Boolean, 103 mWen: Boolean, 104 uopSplitType: BitPat = UopSplitType.dummy, 105 src1: BitPat = SrcType.xp, 106 src2: BitPat = SrcType.vp 107) extends XSDecodeBase { 108 private def src3: BitPat = if (vdRen) SrcType.vp else SrcType.X 109 def generate() : List[BitPat] = { 110 XSDecode(src1, src2, src3, fu, fuOp, SelImm.X, uopSplitType, 111 xWen = xWen, fWen = F, vWen = vWen, mWen = mWen, xsTrap = F, noSpec = F, blockBack = F, flushPipe = F).generate() 112 } 113} 114 115case class OPFVV( 116 src1: BitPat, 117 src3: BitPat, 118 fu: FuType.OHType, 119 fuOp: BitPat, 120 fWen: Boolean, 121 vWen: Boolean, 122 mWen: Boolean, 123 uopSplitType: BitPat = UopSplitType.dummy, 124 src2: BitPat = SrcType.vp 125) extends XSDecodeBase { 126 def generate() : List[BitPat] = { 127 XSDecode(src1, src2, src3, fu, fuOp, SelImm.X, uopSplitType, 128 xWen = F, fWen = fWen, vWen = vWen, mWen = mWen, xsTrap = F, noSpec = F, blockBack = F, flushPipe = F).generate() 129 } 130} 131 132case class OPFFF(src1: BitPat, src3: BitPat, fu: FuType.OHType, fuOp: BitPat, xWen: Boolean, fWen: Boolean, vWen: Boolean, uopSplitType: BitPat = UopSplitType.dummy) extends XSDecodeBase { 133 def generate() : List[BitPat] = { 134 XSDecode(src1, SrcType.fp, src3, fu, fuOp, SelImm.X, uopSplitType, 135 xWen = xWen, fWen = fWen, vWen = vWen, mWen = F, xsTrap = F, noSpec = F, blockBack = F, flushPipe = F, canRobCompress = T).generate() 136 } 137} 138 139case class OPFVF( 140 src1: BitPat, 141 src3: BitPat, 142 fu: FuType.OHType, 143 fuOp: BitPat, 144 fWen: Boolean, 145 vWen: Boolean, 146 mWen: Boolean, 147 uopSplitType: BitPat = UopSplitType.dummy, 148 src2: BitPat = SrcType.vp 149) extends XSDecodeBase { 150 def generate() : List[BitPat] = { 151 XSDecode(src1, src2, src3, fu, fuOp, SelImm.X, uopSplitType, 152 xWen = F, fWen = fWen, vWen = vWen, mWen = mWen, xsTrap = F, noSpec = F, blockBack = F, flushPipe = F).generate() 153 } 154} 155 156case class VSET(vli: Boolean, vtypei: Boolean, fuOp: BitPat, flushPipe: Boolean, selImm: BitPat, uopSplitType: BitPat = UopSplitType.VSET) extends XSDecodeBase { 157 def generate() : List[BitPat] = { 158 val src1 = if (vli) SrcType.imm else SrcType.xp 159 val src2 = if (vtypei) SrcType.imm else SrcType.xp 160 XSDecode(src1, src2, SrcType.X, FuType.vsetiwf, fuOp, selImm, uopSplitType, 161 xWen = F, fWen = F, vWen = F, mWen = F, xsTrap = F, noSpec = F, blockBack = F, flushPipe = flushPipe).generate() 162 } 163} 164 165case class VLD(src2: BitPat, fuOp: BitPat, strided: Boolean = false, indexed: Boolean = false, ff: Boolean = false, 166 mask: Boolean = false, whole: Boolean = false, ordered: Boolean = false, uopSplitType: BitPat = UopSplitType.VEC_US_LDST) extends XSDecodeBase { 167 def generate() : List[BitPat] = { 168 val fu = FuType.vldu 169 val src1 = SrcType.xp 170 val src3 = SrcType.vp 171 XSDecode(src1, src2, src3, fu, fuOp, SelImm.X, uopSplitType, 172 xWen = F, fWen = F, vWen = T, mWen = F, xsTrap = F, noSpec = F, blockBack = F, flushPipe = F).generate() 173 } 174} 175 176case class VST(src2: BitPat, fuOp: BitPat, strided: Boolean = false, indexed: Boolean = false, 177 mask: Boolean = false, whole: Boolean = false, ordered: Boolean = false, uopSplitType: BitPat = UopSplitType.VEC_US_LDST) extends XSDecodeBase { 178 def generate() : List[BitPat] = { 179 val fu = FuType.vstu 180 val src1 = SrcType.xp 181 val src3 = SrcType.vp 182 XSDecode(src1, src2, src3, fu, fuOp, SelImm.X, uopSplitType, 183 xWen = F, fWen = F, vWen = F, mWen = F, xsTrap = F, noSpec = F, blockBack = F, flushPipe = F).generate() 184 } 185} 186 187object VecDecoder extends DecodeConstants { 188 val opivv: Array[(BitPat, XSDecodeBase)] = Array( 189 VADD_VV -> OPIVV(FuType.vialuF, VialuFixType.vadd_vv, T, F, F), 190 VSUB_VV -> OPIVV(FuType.vialuF, VialuFixType.vsub_vv, T, F, F), 191 192 VMINU_VV -> OPIVV(FuType.vialuF, VialuFixType.vminu_vv, T, F, F), 193 VMIN_VV -> OPIVV(FuType.vialuF, VialuFixType.vmin_vv, T, F, F), 194 VMAXU_VV -> OPIVV(FuType.vialuF, VialuFixType.vmaxu_vv, T, F, F), 195 VMAX_VV -> OPIVV(FuType.vialuF, VialuFixType.vmax_vv, T, F, F), 196 197 VAND_VV -> OPIVV(FuType.vialuF, VialuFixType.vand_vv, T, F, F), 198 VOR_VV -> OPIVV(FuType.vialuF, VialuFixType.vor_vv, T, F, F), 199 VXOR_VV -> OPIVV(FuType.vialuF, VialuFixType.vxor_vv, T, F, F), 200 201 VRGATHER_VV -> OPIVV(FuType.vppu, VpermType.vrgather, T, F, F, UopSplitType.VEC_RGATHER), 202 VRGATHEREI16_VV -> OPIVV(FuType.vppu, VpermType.vrgatherei16, T, F, F, UopSplitType.VEC_RGATHEREI16), 203 204 VADC_VVM -> OPIVV(FuType.vialuF, VialuFixType.vadc_vvm, T, F, F), 205 VMADC_VVM -> OPIVV(FuType.vialuF, VialuFixType.vmadc_vvm, F, T, F, UopSplitType.VEC_VVM), 206 VMADC_VV -> OPIVV(FuType.vialuF, VialuFixType.vmadc_vv, F, T, F, UopSplitType.VEC_VVM), 207 208 VSBC_VVM -> OPIVV(FuType.vialuF, VialuFixType.vsbc_vvm, T, F, F), 209 VMSBC_VV -> OPIVV(FuType.vialuF, VialuFixType.vmsbc_vv, F, T, F, UopSplitType.VEC_VVM), 210 VMSBC_VVM -> OPIVV(FuType.vialuF, VialuFixType.vmsbc_vvm, F, T, F, UopSplitType.VEC_VVM), 211 212 VMERGE_VVM -> OPIVV(FuType.vialuF, VialuFixType.vmerge_vvm, T, F, F), 213 214 VMV_V_V -> OPIVV(FuType.vialuF, VialuFixType.vmv_v_v, T, F, F, src2 = SrcType.no), // vd[i] = vs1[i], vs2=v0 215 216 VMSEQ_VV -> OPIVV(FuType.vialuF, VialuFixType.vmseq_vv, F, T, F, UopSplitType.VEC_VVM), 217 VMSNE_VV -> OPIVV(FuType.vialuF, VialuFixType.vmsne_vv, F, T, F, UopSplitType.VEC_VVM), 218 VMSLTU_VV -> OPIVV(FuType.vialuF, VialuFixType.vmsltu_vv, F, T, F, UopSplitType.VEC_VVM), 219 VMSLT_VV -> OPIVV(FuType.vialuF, VialuFixType.vmslt_vv, F, T, F, UopSplitType.VEC_VVM), 220 VMSLEU_VV -> OPIVV(FuType.vialuF, VialuFixType.vmsleu_vv, F, T, F, UopSplitType.VEC_VVM), 221 VMSLE_VV -> OPIVV(FuType.vialuF, VialuFixType.vmsle_vv, F, T, F, UopSplitType.VEC_VVM), 222 223 VSLL_VV -> OPIVV(FuType.vialuF, VialuFixType.vsll_vv, T, F, F), 224 VSRL_VV -> OPIVV(FuType.vialuF, VialuFixType.vsrl_vv, T, F, F), 225 VSRA_VV -> OPIVV(FuType.vialuF, VialuFixType.vsra_vv, T, F, F), 226 VNSRL_WV -> OPIVV(FuType.vialuF, VialuFixType.vnsrl_wv, T, F, F, UopSplitType.VEC_WVV), 227 VNSRA_WV -> OPIVV(FuType.vialuF, VialuFixType.vnsra_wv, T, F, F, UopSplitType.VEC_WVV), 228 229 VSADDU_VV -> OPIVV(FuType.vialuF, VialuFixType.vsaddu_vv, T, F, T), 230 VSADD_VV -> OPIVV(FuType.vialuF, VialuFixType.vsadd_vv, T, F, T), 231 VSSUBU_VV -> OPIVV(FuType.vialuF, VialuFixType.vssubu_vv, T, F, T), 232 VSSUB_VV -> OPIVV(FuType.vialuF, VialuFixType.vssub_vv, T, F, T), 233 234 VSMUL_VV -> OPIVV(FuType.vimac, VimacType.vsmul, T, F, T), 235 236 VSSRL_VV -> OPIVV(FuType.vialuF, VialuFixType.vssrl_vv, T, F, F), 237 VSSRA_VV -> OPIVV(FuType.vialuF, VialuFixType.vssra_vv, T, F, F), 238 239 VNCLIPU_WV -> OPIVV(FuType.vialuF, VialuFixType.vnclipu_wv, T, F, T, UopSplitType.VEC_WVV), 240 VNCLIP_WV -> OPIVV(FuType.vialuF, VialuFixType.vnclip_wv, T, F, T, UopSplitType.VEC_WVV), 241 242 VWREDSUMU_VS -> OPIVV(FuType.vipu, VipuType.vwredsumu_vs, T, F, F, UopSplitType.VEC_VWW), 243 VWREDSUM_VS -> OPIVV(FuType.vipu, VipuType.vwredsum_vs, T, F, F, UopSplitType.VEC_VWW), 244 245 // Zvbb 246 VANDN_VV -> OPIVV(FuType.vialuF, VialuFixType.vandn_vv, T, F, F), 247 VROL_VV -> OPIVV(FuType.vialuF, VialuFixType.vrol_vv, T, F, F, UopSplitType.VEC_VVV), 248 VROR_VV -> OPIVV(FuType.vialuF, VialuFixType.vror_vv, T, F, F, UopSplitType.VEC_VVV), 249 VWSLL_VV -> OPIVV(FuType.vialuF, VialuFixType.vwsll_vv, T, F, F, UopSplitType.VEC_VVW), 250 ) 251 252 val opivx: Array[(BitPat, XSDecodeBase)] = Array( 253 VADD_VX -> OPIVX(FuType.vialuF, VialuFixType.vadd_vv, T, F, F), 254 VSUB_VX -> OPIVX(FuType.vialuF, VialuFixType.vsub_vv, T, F, F), 255 VRSUB_VX -> OPIVX(FuType.vialuF, VialuFixType.vrsub_vv, T, F, F), 256 257 VMINU_VX -> OPIVX(FuType.vialuF, VialuFixType.vminu_vv, T, F, F), 258 VMIN_VX -> OPIVX(FuType.vialuF, VialuFixType.vmin_vv, T, F, F), 259 VMAXU_VX -> OPIVX(FuType.vialuF, VialuFixType.vmaxu_vv, T, F, F), 260 VMAX_VX -> OPIVX(FuType.vialuF, VialuFixType.vmax_vv, T, F, F), 261 262 VAND_VX -> OPIVX(FuType.vialuF, VialuFixType.vand_vv, T, F, F), 263 VOR_VX -> OPIVX(FuType.vialuF, VialuFixType.vor_vv, T, F, F), 264 VXOR_VX -> OPIVX(FuType.vialuF, VialuFixType.vxor_vv, T, F, F), 265 266 VRGATHER_VX -> OPIVX(FuType.vppu, VpermType.vrgather_vx, T, F, F, UopSplitType.VEC_RGATHER_VX), 267 268 VSLIDEUP_VX -> OPIVX(FuType.vppu, VpermType.vslideup, T, F, F, UopSplitType.VEC_SLIDEUP), 269 VSLIDEDOWN_VX -> OPIVX(FuType.vppu, VpermType.vslidedown, T, F, F, UopSplitType.VEC_SLIDEDOWN), 270 271 VADC_VXM -> OPIVX(FuType.vialuF, VialuFixType.vadc_vvm, T, F, F), 272 VMADC_VXM -> OPIVX(FuType.vialuF, VialuFixType.vmadc_vvm, F, T, F, UopSplitType.VEC_VXM), 273 VMADC_VX -> OPIVX(FuType.vialuF, VialuFixType.vmadc_vv, F, T, F, UopSplitType.VEC_VXM), 274 VSBC_VXM -> OPIVX(FuType.vialuF, VialuFixType.vsbc_vvm, T, F, F), 275 VMSBC_VX -> OPIVX(FuType.vialuF, VialuFixType.vmsbc_vv, F, T, F, UopSplitType.VEC_VXM), 276 VMSBC_VXM -> OPIVX(FuType.vialuF, VialuFixType.vmsbc_vvm, F, T, F, UopSplitType.VEC_VXM), 277 278 VMERGE_VXM -> OPIVX(FuType.vialuF, VialuFixType.vmerge_vvm, T, F, F), 279 280 VMV_V_X -> OPIVX(FuType.vialuF, VialuFixType.vmv_v_v, T, F, F, src2 = SrcType.no), // vd[i] = x[rs1], vs2 = v0 281 282 VMSEQ_VX -> OPIVX(FuType.vialuF, VialuFixType.vmseq_vv, F, T, F, UopSplitType.VEC_VXM), 283 VMSNE_VX -> OPIVX(FuType.vialuF, VialuFixType.vmsne_vv, F, T, F, UopSplitType.VEC_VXM), 284 VMSLTU_VX -> OPIVX(FuType.vialuF, VialuFixType.vmsltu_vv, F, T, F, UopSplitType.VEC_VXM), 285 VMSLT_VX -> OPIVX(FuType.vialuF, VialuFixType.vmslt_vv, F, T, F, UopSplitType.VEC_VXM), 286 VMSLEU_VX -> OPIVX(FuType.vialuF, VialuFixType.vmsleu_vv, F, T, F, UopSplitType.VEC_VXM), 287 VMSLE_VX -> OPIVX(FuType.vialuF, VialuFixType.vmsle_vv, F, T, F, UopSplitType.VEC_VXM), 288 VMSGTU_VX -> OPIVX(FuType.vialuF, VialuFixType.vmsgtu_vv, F, T, F, UopSplitType.VEC_VXM), 289 VMSGT_VX -> OPIVX(FuType.vialuF, VialuFixType.vmsgt_vv, F, T, F, UopSplitType.VEC_VXM), 290 291 VSLL_VX -> OPIVX(FuType.vialuF, VialuFixType.vsll_vv, T, F, F), 292 VSRL_VX -> OPIVX(FuType.vialuF, VialuFixType.vsrl_vv, T, F, F), 293 VSRA_VX -> OPIVX(FuType.vialuF, VialuFixType.vsra_vv, T, F, F), 294 VNSRL_WX -> OPIVX(FuType.vialuF, VialuFixType.vnsrl_wv, T, F, F, UopSplitType.VEC_WXV), 295 VNSRA_WX -> OPIVX(FuType.vialuF, VialuFixType.vnsra_wv, T, F, F, UopSplitType.VEC_WXV), 296 297 VSADDU_VX -> OPIVX(FuType.vialuF, VialuFixType.vsaddu_vv, T, F, T), 298 VSADD_VX -> OPIVX(FuType.vialuF, VialuFixType.vsadd_vv, T, F, T), 299 VSSUBU_VX -> OPIVX(FuType.vialuF, VialuFixType.vssubu_vv, T, F, T), 300 VSSUB_VX -> OPIVX(FuType.vialuF, VialuFixType.vssub_vv, T, F, T), 301 302 VSMUL_VX -> OPIVX(FuType.vimac, VimacType.vsmul, T, F, T, UopSplitType.VEC_VXV), 303 304 VSSRL_VX -> OPIVX(FuType.vialuF, VialuFixType.vssrl_vv, T, F, F), 305 VSSRA_VX -> OPIVX(FuType.vialuF, VialuFixType.vssra_vv, T, F, F), 306 307 VNCLIPU_WX -> OPIVX(FuType.vialuF, VialuFixType.vnclipu_wv, T, F, T, UopSplitType.VEC_WXV), 308 VNCLIP_WX -> OPIVX(FuType.vialuF, VialuFixType.vnclip_wv, T, F, T, UopSplitType.VEC_WXV), 309 310 // Zvbb 311 VANDN_VX -> OPIVX(FuType.vialuF, VialuFixType.vandn_vv, T, F, F), 312 VROL_VX -> OPIVX(FuType.vialuF, VialuFixType.vrol_vv, T, F, F, UopSplitType.VEC_VXV), 313 VROR_VX -> OPIVX(FuType.vialuF, VialuFixType.vror_vv, T, F, F, UopSplitType.VEC_VXV), 314 VWSLL_VX -> OPIVX(FuType.vialuF, VialuFixType.vwsll_vv, T, F, F, UopSplitType.VEC_VXW), 315 ) 316 317 val opivi: Array[(BitPat, XSDecodeBase)] = Array( 318 VADD_VI -> OPIVI(FuType.vialuF, VialuFixType.vadd_vv, T, F, F), 319 VRSUB_VI -> OPIVI(FuType.vialuF, VialuFixType.vrsub_vv, T, F, F), 320 321 VAND_VI -> OPIVI(FuType.vialuF, VialuFixType.vand_vv, T, F, F), 322 VOR_VI -> OPIVI(FuType.vialuF, VialuFixType.vor_vv, T, F, F), 323 VXOR_VI -> OPIVI(FuType.vialuF, VialuFixType.vxor_vv, T, F, F), 324 325 VRGATHER_VI -> OPIVI(FuType.vppu, VpermType.vrgather_vx, T, F, F, selImm = SelImm.IMM_OPIVIU, uopSplitType = UopSplitType.VEC_RGATHER_VX), 326 327 VSLIDEUP_VI -> OPIVI(FuType.vppu, VpermType.vslideup, T, F, F, selImm = SelImm.IMM_OPIVIU, uopSplitType = UopSplitType.VEC_SLIDEUP), 328 VSLIDEDOWN_VI -> OPIVI(FuType.vppu, VpermType.vslidedown, T, F, F, selImm = SelImm.IMM_OPIVIU, uopSplitType = UopSplitType.VEC_SLIDEDOWN), 329 330 VADC_VIM -> OPIVI(FuType.vialuF, VialuFixType.vadc_vvm, T, F, F), 331 VMADC_VIM -> OPIVI(FuType.vialuF, VialuFixType.vmadc_vvm, T, F, F, uopSplitType = UopSplitType.VEC_VXM), 332 VMADC_VI -> OPIVI(FuType.vialuF, VialuFixType.vmadc_vv, T, F, F, uopSplitType = UopSplitType.VEC_VXM), 333 334 VMERGE_VIM -> OPIVI(FuType.vialuF, VialuFixType.vmerge_vvm, T, F, F), 335 336 VMV_V_I -> OPIVI(FuType.vialuF, VialuFixType.vmv_v_v, T, F, F, src2 = SrcType.no), // vd[i] = imm, vs2 = v0 337 338 VMSEQ_VI -> OPIVI(FuType.vialuF, VialuFixType.vmseq_vv, F, T, F, uopSplitType = UopSplitType.VEC_VXM), 339 VMSNE_VI -> OPIVI(FuType.vialuF, VialuFixType.vmsne_vv, F, T, F, uopSplitType = UopSplitType.VEC_VXM), 340 VMSLEU_VI -> OPIVI(FuType.vialuF, VialuFixType.vmsleu_vv, F, T, F, selImm = SelImm.IMM_OPIVIS, uopSplitType = UopSplitType.VEC_VXM), 341 VMSLE_VI -> OPIVI(FuType.vialuF, VialuFixType.vmsle_vv, F, T, F, uopSplitType = UopSplitType.VEC_VXM), 342 VMSGTU_VI -> OPIVI(FuType.vialuF, VialuFixType.vmsgtu_vv, F, T, F, selImm = SelImm.IMM_OPIVIS, uopSplitType = UopSplitType.VEC_VXM), 343 VMSGT_VI -> OPIVI(FuType.vialuF, VialuFixType.vmsgt_vv, F, T, F, uopSplitType = UopSplitType.VEC_VXM), 344 345 VSLL_VI -> OPIVI(FuType.vialuF, VialuFixType.vsll_vv, T, F, F, selImm = SelImm.IMM_OPIVIU), 346 VSRL_VI -> OPIVI(FuType.vialuF, VialuFixType.vsrl_vv, T, F, F, selImm = SelImm.IMM_OPIVIU), 347 VSRA_VI -> OPIVI(FuType.vialuF, VialuFixType.vsra_vv, T, F, F, selImm = SelImm.IMM_OPIVIU), 348 VNSRL_WI -> OPIVI(FuType.vialuF, VialuFixType.vnsrl_wv, T, F, F, selImm = SelImm.IMM_OPIVIU, uopSplitType = UopSplitType.VEC_WXV), 349 VNSRA_WI -> OPIVI(FuType.vialuF, VialuFixType.vnsra_wv, T, F, F, selImm = SelImm.IMM_OPIVIU, uopSplitType = UopSplitType.VEC_WXV), 350 351 VSADDU_VI -> OPIVI(FuType.vialuF, VialuFixType.vsaddu_vv, T, F, T, selImm = SelImm.IMM_OPIVIS), 352 VSADD_VI -> OPIVI(FuType.vialuF, VialuFixType.vsadd_vv, T, F, T), 353 354 VSSRL_VI -> OPIVI(FuType.vialuF, VialuFixType.vssrl_vv, T, F, F, selImm = SelImm.IMM_OPIVIU), 355 VSSRA_VI -> OPIVI(FuType.vialuF, VialuFixType.vssra_vv, T, F, F, selImm = SelImm.IMM_OPIVIU), 356 357 VNCLIPU_WI -> OPIVI(FuType.vialuF, VialuFixType.vnclipu_wv, T, F, T, selImm = SelImm.IMM_OPIVIU, uopSplitType = UopSplitType.VEC_WXV), 358 VNCLIP_WI -> OPIVI(FuType.vialuF, VialuFixType.vnclip_wv, T, F, T, uopSplitType = UopSplitType.VEC_WXV), 359 360 VMV1R_V -> OPIVI(FuType.vppu, VpermType.vmv1r, T, F, F, uopSplitType = UopSplitType.VEC_MVNR, src1 = SrcType.no), // vmv1r.v vd, vs2 361 VMV2R_V -> OPIVI(FuType.vppu, VpermType.vmv2r, T, F, F, uopSplitType = UopSplitType.VEC_MVNR, src1 = SrcType.no), // vmv2r.v vd, vs2 362 VMV4R_V -> OPIVI(FuType.vppu, VpermType.vmv4r, T, F, F, uopSplitType = UopSplitType.VEC_MVNR, src1 = SrcType.no), // vmv4r.v vd, vs2 363 VMV8R_V -> OPIVI(FuType.vppu, VpermType.vmv8r, T, F, F, uopSplitType = UopSplitType.VEC_MVNR, src1 = SrcType.no), // vmv8r.v vd, vs2 364 365 // Zvbb 366 VROR_VI -> OPIVI(FuType.vialuF, VialuFixType.vror_vv, T, F, F, selImm = SelImm.IMM_VRORVI, UopSplitType.VEC_VXV), 367 VWSLL_VI -> OPIVI(FuType.vialuF, VialuFixType.vwsll_vv, T, F, F, selImm = SelImm.IMM_OPIVIU, UopSplitType.VEC_VXW), 368 ) 369 370 val opmvv: Array[(BitPat, XSDecodeBase)] = Array( 371 VAADD_VV -> OPMVV(T, FuType.vialuF, VialuFixType.vaadd_vv, F, T, F, UopSplitType.VEC_VVV), 372 VAADDU_VV -> OPMVV(T, FuType.vialuF, VialuFixType.vaaddu_vv, F, T, F, UopSplitType.VEC_VVV), 373 VASUB_VV -> OPMVV(T, FuType.vialuF, VialuFixType.vasub_vv, F, T, F, UopSplitType.VEC_VVV), 374 VASUBU_VV -> OPMVV(T, FuType.vialuF, VialuFixType.vasubu_vv, F, T, F, UopSplitType.VEC_VVV), 375 VCOMPRESS_VM -> OPMVV(T, FuType.vppu, VpermType.vcompress, F, T, F, UopSplitType.VEC_COMPRESS), 376 VCPOP_M -> OPMVV(T, FuType.vipu, VipuType.vcpop_m, T, F, F, UopSplitType.VEC_M0X, src1 = SrcType.no), // vcpop.m rd, vs2, vm 377 VDIV_VV -> OPMVV(T, FuType.vidiv, VidivType.vdiv, F, T, F, UopSplitType.VEC_VVV), 378 VDIVU_VV -> OPMVV(T, FuType.vidiv, VidivType.vdivu, F, T, F, UopSplitType.VEC_VVV), 379 VFIRST_M -> OPMVV(T, FuType.vipu, VipuType.vfirst_m, T, F, F, UopSplitType.VEC_M0X_VFIRST, src1 = SrcType.no), // vfirst.m rd, vs2, vm 380 VID_V -> OPMVV(T, FuType.vipu, VipuType.vid_v, F, T, F, UopSplitType.VEC_MVV, src1 = SrcType.no, src2 = SrcType.no), // vid.v vd, vm 381 VIOTA_M -> OPMVV(T, FuType.vipu, VipuType.viota_m, F, T, F, UopSplitType.VEC_MVV, src1 = SrcType.no), // viota.m vd, vs2, vm 382 383 VMACC_VV -> OPMVV(T, FuType.vimac, VimacType.vmacc, F, T, F, UopSplitType.VEC_VVV), 384 VMADD_VV -> OPMVV(T, FuType.vimac, VimacType.vmadd, F, T, F, UopSplitType.VEC_VVV), 385 VMAND_MM -> OPMVV(T, FuType.vialuF, VialuFixType.vmand_mm, F, T, F, UopSplitType.VEC_MMM), 386 VMANDN_MM -> OPMVV(T, FuType.vialuF, VialuFixType.vmandn_mm, F, T, F, UopSplitType.VEC_MMM), 387 VMNAND_MM -> OPMVV(T, FuType.vialuF, VialuFixType.vmnand_mm, F, T, F, UopSplitType.VEC_MMM), 388 VMNOR_MM -> OPMVV(T, FuType.vialuF, VialuFixType.vmnor_mm, F, T, F, UopSplitType.VEC_MMM), 389 VMOR_MM -> OPMVV(T, FuType.vialuF, VialuFixType.vmor_mm, F, T, F, UopSplitType.VEC_MMM), 390 VMORN_MM -> OPMVV(T, FuType.vialuF, VialuFixType.vmorn_mm, F, T, F, UopSplitType.VEC_MMM), 391 VMXNOR_MM -> OPMVV(T, FuType.vialuF, VialuFixType.vmxnor_mm, F, T, F, UopSplitType.VEC_MMM), 392 VMXOR_MM -> OPMVV(T, FuType.vialuF, VialuFixType.vmxor_mm, F, T, F, UopSplitType.VEC_MMM), 393 VMSBF_M -> OPMVV(T, FuType.vipu, VipuType.vmsbf_m, F, T, F, UopSplitType.VEC_M0M, src1 = SrcType.no), // vmsbf.m vd, vs2, vm 394 VMSIF_M -> OPMVV(T, FuType.vipu, VipuType.vmsif_m, F, T, F, UopSplitType.VEC_M0M, src1 = SrcType.no), // vmsif.m vd, vs2, vm 395 VMSOF_M -> OPMVV(T, FuType.vipu, VipuType.vmsof_m, F, T, F, UopSplitType.VEC_M0M, src1 = SrcType.no), // vmsof.m vd, vs2, vm 396 VMUL_VV -> OPMVV(T, FuType.vimac, VimacType.vmul, F, T, F, UopSplitType.VEC_VVV), 397 VMULH_VV -> OPMVV(T, FuType.vimac, VimacType.vmulh, F, T, F, UopSplitType.VEC_VVV), 398 VMULHSU_VV -> OPMVV(T, FuType.vimac, VimacType.vmulhsu, F, T, F, UopSplitType.VEC_VVV), 399 VMULHU_VV -> OPMVV(T, FuType.vimac, VimacType.vmulhu, F, T, F, UopSplitType.VEC_VVV), 400 401 VMV_X_S -> OPMVV(T, FuType.vipu, VipuType.vmv_x_s, T, F, F, src1 = SrcType.no), // vmv.x.s rd, vs2 # x[rd] = vs2[0] 402 VNMSAC_VV -> OPMVV(T, FuType.vimac, VimacType.vnmsac, F, T, F, UopSplitType.VEC_VVV), 403 VNMSUB_VV -> OPMVV(T, FuType.vimac, VimacType.vnmsub, F, T, F, UopSplitType.VEC_VVV), 404 VREDAND_VS -> OPMVV(T, FuType.vipu, VipuType.vredand_vs, F, T, F, UopSplitType.VEC_VRED), 405 VREDMAX_VS -> OPMVV(T, FuType.vipu, VipuType.vredmax_vs, F, T, F, UopSplitType.VEC_VRED), 406 VREDMAXU_VS -> OPMVV(T, FuType.vipu, VipuType.vredmaxu_vs, F, T, F, UopSplitType.VEC_VRED), 407 VREDMIN_VS -> OPMVV(T, FuType.vipu, VipuType.vredmin_vs, F, T, F, UopSplitType.VEC_VRED), 408 VREDMINU_VS -> OPMVV(T, FuType.vipu, VipuType.vredminu_vs, F, T, F, UopSplitType.VEC_VRED), 409 VREDOR_VS -> OPMVV(T, FuType.vipu, VipuType.vredor_vs, F, T, F, UopSplitType.VEC_VRED), 410 VREDSUM_VS -> OPMVV(T, FuType.vipu, VipuType.vredsum_vs, F, T, F, UopSplitType.VEC_VRED), 411 VREDXOR_VS -> OPMVV(T, FuType.vipu, VipuType.vredxor_vs, F, T, F, UopSplitType.VEC_VRED), 412 VREM_VV -> OPMVV(T, FuType.vidiv, VidivType.vrem, F, T, F, UopSplitType.VEC_VVV), 413 VREMU_VV -> OPMVV(T, FuType.vidiv, VidivType.vremu, F, T, F, UopSplitType.VEC_VVV), 414 VSEXT_VF2 -> OPMVV(T, FuType.vialuF, VialuFixType.vsext_vf2, F, T, F, UopSplitType.VEC_EXT2, src1 = SrcType.no), // vsext.vf2 vd, vs2, vm 415 VSEXT_VF4 -> OPMVV(T, FuType.vialuF, VialuFixType.vsext_vf4, F, T, F, UopSplitType.VEC_EXT4, src1 = SrcType.no), // vsext.vf4 vd, vs2, vm 416 VSEXT_VF8 -> OPMVV(T, FuType.vialuF, VialuFixType.vsext_vf8, F, T, F, UopSplitType.VEC_EXT8, src1 = SrcType.no), // vsext.vf8 vd, vs2, vm 417 VZEXT_VF2 -> OPMVV(T, FuType.vialuF, VialuFixType.vzext_vf2, F, T, F, UopSplitType.VEC_EXT2, src1 = SrcType.no), // vzext.vf2 vd, vs2, vm 418 VZEXT_VF4 -> OPMVV(T, FuType.vialuF, VialuFixType.vzext_vf4, F, T, F, UopSplitType.VEC_EXT4, src1 = SrcType.no), // vzext.vf4 vd, vs2, vm 419 VZEXT_VF8 -> OPMVV(T, FuType.vialuF, VialuFixType.vzext_vf8, F, T, F, UopSplitType.VEC_EXT8, src1 = SrcType.no), // vzext.vf8 vd, vs2, vm 420 VWADD_VV -> OPMVV(T, FuType.vialuF, VialuFixType.vwadd_vv, F, T, F, UopSplitType.VEC_VVW), 421 VWADD_WV -> OPMVV(T, FuType.vialuF, VialuFixType.vwadd_wv, F, T, F, UopSplitType.VEC_WVW), 422 VWADDU_VV -> OPMVV(T, FuType.vialuF, VialuFixType.vwaddu_vv, F, T, F, UopSplitType.VEC_VVW), 423 VWADDU_WV -> OPMVV(T, FuType.vialuF, VialuFixType.vwaddu_wv, F, T, F, UopSplitType.VEC_WVW), 424 VWMACC_VV -> OPMVV(T, FuType.vimac, VimacType.vwmacc, F, T, F, UopSplitType.VEC_VVW), 425 VWMACCSU_VV -> OPMVV(T, FuType.vimac, VimacType.vwmaccsu, F, T, F, UopSplitType.VEC_VVW), 426 VWMACCU_VV -> OPMVV(T, FuType.vimac, VimacType.vwmaccu, F, T, F, UopSplitType.VEC_VVW), 427 VWMUL_VV -> OPMVV(T, FuType.vimac, VimacType.vwmul, F, T, F, UopSplitType.VEC_VVW), 428 VWMULSU_VV -> OPMVV(T, FuType.vimac, VimacType.vwmulsu, F, T, F, UopSplitType.VEC_VVW), 429 VWMULU_VV -> OPMVV(T, FuType.vimac, VimacType.vwmulu, F, T, F, UopSplitType.VEC_VVW), 430 VWSUB_VV -> OPMVV(T, FuType.vialuF, VialuFixType.vwsub_vv, F, T, F, UopSplitType.VEC_VVW), 431 VWSUB_WV -> OPMVV(T, FuType.vialuF, VialuFixType.vwsub_wv, F, T, F, UopSplitType.VEC_WVW), 432 VWSUBU_VV -> OPMVV(T, FuType.vialuF, VialuFixType.vwsubu_vv, F, T, F, UopSplitType.VEC_VVW), 433 VWSUBU_WV -> OPMVV(T, FuType.vialuF, VialuFixType.vwsubu_wv, F, T, F, UopSplitType.VEC_WVW), 434 435 // Zvbb 436 VBREV_V -> OPMVV(T, FuType.vialuF, VialuFixType.vbrev_v, F, T, F, UopSplitType.VEC_VVV, src1 = SrcType.no), 437 VBREV8_V -> OPMVV(T, FuType.vialuF, VialuFixType.vbrev8_v, F, T, F, UopSplitType.VEC_VVV, src1 = SrcType.no), 438 VREV8_V -> OPMVV(T, FuType.vialuF, VialuFixType.vrev8_v, F, T, F, UopSplitType.VEC_VVV, src1 = SrcType.no), 439 VCLZ_V -> OPMVV(T, FuType.vialuF, VialuFixType.vclz_v, F, T, F, UopSplitType.VEC_VVV, src1 = SrcType.no), 440 VCTZ_V -> OPMVV(T, FuType.vialuF, VialuFixType.vctz_v, F, T, F, UopSplitType.VEC_VVV, src1 = SrcType.no), 441 VCPOP_V -> OPMVV(T, FuType.vialuF, VialuFixType.vcpop_v, F, T, F, UopSplitType.VEC_VVV, src1 = SrcType.no), 442 ) 443 444 val opmvx: Array[(BitPat, XSDecodeBase)] = Array( 445 VAADD_VX -> OPMVX(T, FuType.vialuF, VialuFixType.vaadd_vv, F, T, F, UopSplitType.VEC_VXV), 446 VAADDU_VX -> OPMVX(T, FuType.vialuF, VialuFixType.vaaddu_vv, F, T, F, UopSplitType.VEC_VXV), 447 VASUB_VX -> OPMVX(T, FuType.vialuF, VialuFixType.vasub_vv, F, T, F, UopSplitType.VEC_VXV), 448 VASUBU_VX -> OPMVX(T, FuType.vialuF, VialuFixType.vasubu_vv, F, T, F, UopSplitType.VEC_VXV), 449 VDIV_VX -> OPMVX(T, FuType.vidiv, VidivType.vdiv, F, T, F, UopSplitType.VEC_VXV), 450 VDIVU_VX -> OPMVX(T, FuType.vidiv, VidivType.vdivu, F, T, F, UopSplitType.VEC_VXV), 451 VMACC_VX -> OPMVX(T, FuType.vimac, VimacType.vmacc, F, T, F, UopSplitType.VEC_VXV), 452 VMADD_VX -> OPMVX(T, FuType.vimac, VimacType.vmadd, F, T, F, UopSplitType.VEC_VXV), 453 VMUL_VX -> OPMVX(T, FuType.vimac, VimacType.vmul, F, T, F, UopSplitType.VEC_VXV), 454 VMULH_VX -> OPMVX(T, FuType.vimac, VimacType.vmulh, F, T, F, UopSplitType.VEC_VXV), 455 VMULHSU_VX -> OPMVX(T, FuType.vimac, VimacType.vmulhsu, F, T, F, UopSplitType.VEC_VXV), 456 VMULHU_VX -> OPMVX(T, FuType.vimac, VimacType.vmulhu, F, T, F, UopSplitType.VEC_VXV), 457 VMV_S_X -> OPMVX(T, FuType.vialuF, VialuFixType.vmv_s_x, F, T, F, UopSplitType.VEC_0XV, src2 = SrcType.no), // vmv.s.x vd, rs1 # vd[0] = x[rs1] (vs2=0) 458 459 VNMSAC_VX -> OPMVX(T, FuType.vimac, VimacType.vnmsac, F, T, F, UopSplitType.VEC_VXV), 460 VNMSUB_VX -> OPMVX(T, FuType.vimac, VimacType.vnmsub, F, T, F, UopSplitType.VEC_VXV), 461 VREM_VX -> OPMVX(T, FuType.vidiv, VidivType.vrem, F, T, F, UopSplitType.VEC_VXV), 462 VREMU_VX -> OPMVX(T, FuType.vidiv, VidivType.vremu, F, T, F, UopSplitType.VEC_VXV), 463 464 VSLIDE1DOWN_VX -> OPMVX(T, FuType.vppu, VpermType.vslide1down, F, T, F, UopSplitType.VEC_SLIDE1DOWN), 465 VSLIDE1UP_VX -> OPMVX(T, FuType.vppu, VpermType.vslide1up, F, T, F, UopSplitType.VEC_SLIDE1UP), 466 VWADD_VX -> OPMVX(T, FuType.vialuF, VialuFixType.vwadd_vv, F, T, F, UopSplitType.VEC_VXW), 467 VWADD_WX -> OPMVX(T, FuType.vialuF, VialuFixType.vwadd_wv, F, T, F, UopSplitType.VEC_WXW), 468 VWADDU_VX -> OPMVX(T, FuType.vialuF, VialuFixType.vwaddu_vv, F, T, F, UopSplitType.VEC_VXW), 469 VWADDU_WX -> OPMVX(T, FuType.vialuF, VialuFixType.vwaddu_wv, F, T, F, UopSplitType.VEC_WXW), 470 471 // OutOfMemoryError 472 VWMACC_VX -> OPMVX(T, FuType.vimac, VimacType.vwmacc, F, T, F, UopSplitType.VEC_VXW), 473 VWMACCSU_VX -> OPMVX(T, FuType.vimac, VimacType.vwmaccsu, F, T, F, UopSplitType.VEC_VXW), 474 VWMACCU_VX -> OPMVX(T, FuType.vimac, VimacType.vwmaccu, F, T, F, UopSplitType.VEC_VXW), 475 476 VWMACCUS_VX -> OPMVX(T, FuType.vimac, VimacType.vwmaccus, F, T, F, UopSplitType.VEC_VXW), 477 VWMUL_VX -> OPMVX(T, FuType.vimac, VimacType.vwmul, F, T, F, UopSplitType.VEC_VXW), 478 VWMULSU_VX -> OPMVX(T, FuType.vimac, VimacType.vwmulsu, F, T, F, UopSplitType.VEC_VXW), 479 // Ok 480 VWMULU_VX -> OPMVX(T, FuType.vimac, VimacType.vwmulu, F, T, F, UopSplitType.VEC_VXW), 481 VWSUB_VX -> OPMVX(T, FuType.vialuF, VialuFixType.vwsub_vv, F, T, F, UopSplitType.VEC_VXW), 482 VWSUB_WX -> OPMVX(T, FuType.vialuF, VialuFixType.vwsub_wv, F, T, F, UopSplitType.VEC_WXW), 483 VWSUBU_VX -> OPMVX(T, FuType.vialuF, VialuFixType.vwsubu_vv, F, T, F, UopSplitType.VEC_VXW), 484 VWSUBU_WX -> OPMVX(T, FuType.vialuF, VialuFixType.vwsubu_wv, F, T, F, UopSplitType.VEC_WXW), 485 ) 486 487 val opfff: Array[(BitPat, XSDecodeBase)] = Array( 488 // Scalar Float Point 489 FADD_S -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfadd, F, T, F, UopSplitType.SCA_SIM), 490 FADD_D -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfadd, F, T, F, UopSplitType.SCA_SIM), 491 FSUB_S -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfsub, F, T, F, UopSplitType.SCA_SIM), 492 FSUB_D -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfsub, F, T, F, UopSplitType.SCA_SIM), 493 FEQ_S -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfeq , T, F, F, UopSplitType.SCA_SIM), 494 FLT_S -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vflt , T, F, F, UopSplitType.SCA_SIM), 495 FLE_S -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfle , T, F, F, UopSplitType.SCA_SIM), 496 FEQ_D -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfeq , T, F, F, UopSplitType.SCA_SIM), 497 FLT_D -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vflt , T, F, F, UopSplitType.SCA_SIM), 498 FLE_D -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfle , T, F, F, UopSplitType.SCA_SIM), 499 FMIN_S -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfmin, F, T, F, UopSplitType.SCA_SIM), 500 FMIN_D -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfmin, F, T, F, UopSplitType.SCA_SIM), 501 FMAX_S -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfmax, F, T, F, UopSplitType.SCA_SIM), 502 FMAX_D -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfmax, F, T, F, UopSplitType.SCA_SIM), 503 // donot wflags 504 FCLASS_S -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfclass, T, F, F, UopSplitType.SCA_SIM), 505 FCLASS_D -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfclass, T, F, F, UopSplitType.SCA_SIM), 506 FSGNJ_S -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfsgnj , F, T, F, UopSplitType.SCA_SIM), 507 FSGNJ_D -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfsgnj , F, T, F, UopSplitType.SCA_SIM), 508 FSGNJX_S -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfsgnjx, F, T, F, UopSplitType.SCA_SIM), 509 FSGNJX_D -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfsgnjx, F, T, F, UopSplitType.SCA_SIM), 510 FSGNJN_S -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfsgnjn, F, T, F, UopSplitType.SCA_SIM), 511 FSGNJN_D -> OPFFF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfsgnjn, F, T, F, UopSplitType.SCA_SIM), 512 513 FMUL_S -> OPFFF(SrcType.fp, SrcType.X, FuType.vfma , VfmaType.vfmul, F, T, F, UopSplitType.SCA_SIM), 514 FMUL_D -> OPFFF(SrcType.fp, SrcType.X, FuType.vfma , VfmaType.vfmul, F, T, F, UopSplitType.SCA_SIM), 515 516 FDIV_S -> OPFFF(SrcType.fp, SrcType.X, FuType.vfdiv, VfdivType.vfdiv , F, T, F, UopSplitType.SCA_SIM), 517 FDIV_D -> OPFFF(SrcType.fp, SrcType.X, FuType.vfdiv, VfdivType.vfdiv , F, T, F, UopSplitType.SCA_SIM), 518 FSQRT_S -> OPFFF(SrcType.fp, SrcType.X, FuType.vfdiv, VfdivType.vfsqrt, F, T, F, UopSplitType.SCA_SIM), 519 FSQRT_D -> OPFFF(SrcType.fp, SrcType.X, FuType.vfdiv, VfdivType.vfsqrt, F, T, F, UopSplitType.SCA_SIM), 520 521 FMADD_S -> OPFFF(SrcType.fp, SrcType.fp, FuType.vfma, VfmaType.vfmacc , F, T, F, UopSplitType.SCA_SIM), 522 FMSUB_S -> OPFFF(SrcType.fp, SrcType.fp, FuType.vfma, VfmaType.vfmsac , F, T, F, UopSplitType.SCA_SIM), 523 FNMADD_S -> OPFFF(SrcType.fp, SrcType.fp, FuType.vfma, VfmaType.vfnmacc, F, T, F, UopSplitType.SCA_SIM), 524 FNMSUB_S -> OPFFF(SrcType.fp, SrcType.fp, FuType.vfma, VfmaType.vfnmsac, F, T, F, UopSplitType.SCA_SIM), 525 FMADD_D -> OPFFF(SrcType.fp, SrcType.fp, FuType.vfma, VfmaType.vfmacc , F, T, F, UopSplitType.SCA_SIM), 526 FMSUB_D -> OPFFF(SrcType.fp, SrcType.fp, FuType.vfma, VfmaType.vfmsac , F, T, F, UopSplitType.SCA_SIM), 527 FNMADD_D -> OPFFF(SrcType.fp, SrcType.fp, FuType.vfma, VfmaType.vfnmacc, F, T, F, UopSplitType.SCA_SIM), 528 FNMSUB_D -> OPFFF(SrcType.fp, SrcType.fp, FuType.vfma, VfmaType.vfnmsac, F, T, F, UopSplitType.SCA_SIM), 529 ) 530 531 val opfvv: Array[(BitPat, XSDecodeBase)] = Array( 532 // 13.2. Vector Single-Width Floating-Point Add/Subtract Instructions 533 VFADD_VV -> OPFVV(SrcType.vp, SrcType.vp , FuType.vfalu, VfaluType.vfadd, F, T, F, UopSplitType.VEC_VVV), 534 VFSUB_VV -> OPFVV(SrcType.vp, SrcType.vp , FuType.vfalu, VfaluType.vfsub, F, T, F, UopSplitType.VEC_VVV), 535 536 // 13.3. Vector Widening Floating-Point Add/Subtract Instructions 537 VFWADD_VV -> OPFVV(SrcType.vp, SrcType.vp , FuType.vfalu, VfaluType.vfwadd , F, T, F, UopSplitType.VEC_VVW), 538 VFWSUB_VV -> OPFVV(SrcType.vp, SrcType.vp , FuType.vfalu, VfaluType.vfwsub , F, T, F, UopSplitType.VEC_VVW), 539 VFWADD_WV -> OPFVV(SrcType.vp, SrcType.vp , FuType.vfalu, VfaluType.vfwadd_w, F, T, F, UopSplitType.VEC_WVW), 540 VFWSUB_WV -> OPFVV(SrcType.vp, SrcType.vp , FuType.vfalu, VfaluType.vfwsub_w, F, T, F, UopSplitType.VEC_WVW), 541 542 // 13.4. Vector Single-Width Floating-Point Multiply/Divide Instructions 543 VFMUL_VV -> OPFVV(SrcType.vp, SrcType.vp , FuType.vfma, VfmaType.vfmul, F, T, F, UopSplitType.VEC_VVV), 544 VFDIV_VV -> OPFVV(SrcType.vp, SrcType.vp , FuType.vfdiv, VfdivType.vfdiv , F, T, F, UopSplitType.VEC_VVV), 545 546 // 13.5. Vector Widening Floating-Point Multiply 547 VFWMUL_VV -> OPFVV(SrcType.vp, SrcType.vp , FuType.vfma, VfmaType.vfmul_w, F, T, F, UopSplitType.VEC_VVW), 548 549 // 13.6. Vector Single-Width Floating-Point Fused Multiply-Add Instructions 550 VFMACC_VV -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfma, VfmaType.vfmacc , F, T, F, UopSplitType.VEC_VVV), 551 VFNMACC_VV -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfma, VfmaType.vfnmacc, F, T, F, UopSplitType.VEC_VVV), 552 VFMSAC_VV -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfma, VfmaType.vfmsac , F, T, F, UopSplitType.VEC_VVV), 553 VFNMSAC_VV -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfma, VfmaType.vfnmsac, F, T, F, UopSplitType.VEC_VVV), 554 VFMADD_VV -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfma, VfmaType.vfmadd , F, T, F, UopSplitType.VEC_VVV), 555 VFNMADD_VV -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfma, VfmaType.vfnmadd, F, T, F, UopSplitType.VEC_VVV), 556 VFMSUB_VV -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfma, VfmaType.vfmsub , F, T, F, UopSplitType.VEC_VVV), 557 VFNMSUB_VV -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfma, VfmaType.vfnmsub, F, T, F, UopSplitType.VEC_VVV), 558 559 // 13.7. Vector Widening Floating-Point Fused Multiply-Add Instructions 560 VFWMACC_VV -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfma, VfmaType.vfmacc_w , F, T, F, UopSplitType.VEC_VVW), 561 VFWNMACC_VV -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfma, VfmaType.vfnmacc_w, F, T, F, UopSplitType.VEC_VVW), 562 VFWMSAC_VV -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfma, VfmaType.vfmsac_w , F, T, F, UopSplitType.VEC_VVW), 563 VFWNMSAC_VV -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfma, VfmaType.vfnmsac_w, F, T, F, UopSplitType.VEC_VVW), 564 565 // 13.8. Vector Floating-Point Square-Root Instruction 566 VFSQRT_V -> OPFVV(SrcType.X , SrcType.vp , FuType.vfdiv, VfdivType.vfsqrt, F, T, F, UopSplitType.VEC_VVV), // vfsqrt.v vd, vs2, vm 567 568 // 13.9. Vector Floating-Point Reciprocal Square-Root Estimate Instruction 569 VFRSQRT7_V -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfrsqrt7, F, T, F, UopSplitType.VEC_VVV), // vfrsqrt7.v vd, vs2, vm 570 571 // 13.10. Vector Floating-Point Reciprocal Estimate Instruction 572 VFREC7_V -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfrec7, F, T, F, UopSplitType.VEC_VVV), // vfrec7.v vd, vs2, vm 573 574 // 13.11. Vector Floating-Point MIN/MAX Instructions 575 VFMIN_VV -> OPFVV(SrcType.vp, SrcType.vp , FuType.vfalu, VfaluType.vfmin, F, T, F, UopSplitType.VEC_VVV), 576 VFMAX_VV -> OPFVV(SrcType.vp, SrcType.vp , FuType.vfalu, VfaluType.vfmax, F, T, F, UopSplitType.VEC_VVV), 577 578 // 13.12. Vector Floating-Point Sign-Injection Instructions 579 VFSGNJ_VV -> OPFVV(SrcType.vp, SrcType.vp , FuType.vfalu, VfaluType.vfsgnj , F, T, F, UopSplitType.VEC_VVV), 580 VFSGNJN_VV -> OPFVV(SrcType.vp, SrcType.vp , FuType.vfalu, VfaluType.vfsgnjn, F, T, F, UopSplitType.VEC_VVV), 581 VFSGNJX_VV -> OPFVV(SrcType.vp, SrcType.vp , FuType.vfalu, VfaluType.vfsgnjx, F, T, F, UopSplitType.VEC_VVV), 582 583 // 13.13. Vector Floating-Point Compare Instructions 584 VMFEQ_VV -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfalu, VfaluType.vfeq, F, T, F, UopSplitType.VEC_VVM), 585 VMFNE_VV -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfalu, VfaluType.vfne, F, T, F, UopSplitType.VEC_VVM), 586 VMFLT_VV -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfalu, VfaluType.vflt, F, T, F, UopSplitType.VEC_VVM), 587 VMFLE_VV -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfalu, VfaluType.vfle, F, T, F, UopSplitType.VEC_VVM), 588 589 // 13.14. Vector Floating-Point Classify Instruction 590 VFCLASS_V -> OPFVV(SrcType.X , SrcType.vp , FuType.vfalu, VfaluType.vfclass, F, T, F, UopSplitType.VEC_VVV), 591 592 // 13.17. Single-Width Floating-Point/Integer Type-Convert Instructions 593 VFCVT_XU_F_V -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfcvt_xufv, F, T, F, UopSplitType.VEC_VVV), 594 VFCVT_X_F_V -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfcvt_xfv, F, T, F, UopSplitType.VEC_VVV), 595 VFCVT_RTZ_XU_F_V -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfcvt_rtz_xufv, F, T, F, UopSplitType.VEC_VVV), 596 VFCVT_RTZ_X_F_V -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfcvt_rtz_xfv, F, T, F, UopSplitType.VEC_VVV), 597 VFCVT_F_XU_V -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfcvt_fxuv, F, T, F, UopSplitType.VEC_VVV), 598 VFCVT_F_X_V -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfcvt_fxv, F, T, F, UopSplitType.VEC_VVV), 599 600 // 13.18. Widening Floating-Point/Integer Type-Convert Instructions 601 VFWCVT_XU_F_V -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfwcvt_xufv, F, T, F, UopSplitType.VEC_VVW), 602 VFWCVT_X_F_V -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfwcvt_xfv, F, T, F, UopSplitType.VEC_VVW), 603 VFWCVT_RTZ_XU_F_V -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfwcvt_rtz_xufv, F, T, F, UopSplitType.VEC_VVW), 604 VFWCVT_RTZ_X_F_V -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfwcvt_rtz_xfv, F, T, F, UopSplitType.VEC_VVW), 605 VFWCVT_F_XU_V -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfwcvt_fxuv, F, T, F, UopSplitType.VEC_VVW), 606 VFWCVT_F_X_V -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfwcvt_fxv, F, T, F, UopSplitType.VEC_VVW), 607 VFWCVT_F_F_V -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfwcvt_ffv, F, T, F, UopSplitType.VEC_VVW), 608 609 // ! 610 // 13.19. Narrowing Floating-Point/Integer Type-Convert Instructions 611 VFNCVT_XU_F_W -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfncvt_xufw, F, T, F, UopSplitType.VEC_WVV), 612 VFNCVT_X_F_W -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfncvt_xfw, F, T, F, UopSplitType.VEC_WVV), 613 VFNCVT_RTZ_XU_F_W -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfncvt_rtz_xufw, F, T, F, UopSplitType.VEC_WVV), 614 VFNCVT_RTZ_X_F_W -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfncvt_rtz_xfw, F, T, F, UopSplitType.VEC_WVV), 615 VFNCVT_F_XU_W -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfncvt_fxuw, F, T, F, UopSplitType.VEC_WVV), 616 VFNCVT_F_X_W -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfncvt_fxw, F, T, F, UopSplitType.VEC_WVV), 617 VFNCVT_F_F_W -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfncvt_ffw, F, T, F, UopSplitType.VEC_WVV), 618 VFNCVT_ROD_F_F_W -> OPFVV(SrcType.X , SrcType.vp , FuType.vfcvt, VfcvtType.vfncvt_rod_ffw, F, T, F, UopSplitType.VEC_WVV), 619 // 14.3. Vector Single-Width Floating-Point Reduction Instructions 620 VFREDOSUM_VS -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfalu, VfaluType.vfredosum, F, T, F, UopSplitType.VEC_VFREDOSUM), 621 VFREDUSUM_VS -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfalu, VfaluType.vfredusum, F, T, F, UopSplitType.VEC_VFRED), 622 VFREDMAX_VS -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfalu, VfaluType.vfredmax , F, T, F, UopSplitType.VEC_VFRED), 623 VFREDMIN_VS -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfalu, VfaluType.vfredmin , F, T, F, UopSplitType.VEC_VFRED), 624 625 // 14.4. Vector Widening Floating-Point Reduction Instructions 626 VFWREDOSUM_VS -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfalu, VfaluType.vfwredosum, F, T, F, UopSplitType.VEC_VFREDOSUM), 627 VFWREDUSUM_VS -> OPFVV(SrcType.vp, SrcType.vp, FuType.vfalu, VfaluType.vfwredosum, F, T, F, UopSplitType.VEC_VFREDOSUM), 628 629 ) 630 631 val opfvf: Array[(BitPat, XSDecodeBase)] = Array( 632 // 13.2. Vector Single-Width Floating-Point Add/Subtract Instructions 633 VFADD_VF -> OPFVF(SrcType.fp, SrcType.vp , FuType.vfalu, VfaluType.vfadd, F, T, F, UopSplitType.VEC_VFV), 634 VFSUB_VF -> OPFVF(SrcType.fp, SrcType.vp , FuType.vfalu, VfpuType.vfsub , F, T, F, UopSplitType.VEC_VFV), 635 VFRSUB_VF -> OPFVF(SrcType.fp, SrcType.vp , FuType.vfalu, VfpuType.vfsub , F, T, F, UopSplitType.VEC_VFV), 636 637 // 13.3. Vector Widening Floating-Point Add/Subtract Instructions 638 VFWADD_VF -> OPFVF(SrcType.fp, SrcType.vp , FuType.vfalu, VfaluType.vfwadd, F, T, F, UopSplitType.VEC_VFW), 639 VFWSUB_VF -> OPFVF(SrcType.fp, SrcType.vp , FuType.vfalu, VfaluType.vfwsub, F, T, F, UopSplitType.VEC_VFW), 640 VFWADD_WF -> OPFVF(SrcType.fp, SrcType.vp , FuType.vfalu, VfaluType.vfwadd_w, F, T, F, UopSplitType.VEC_WFW), 641 VFWSUB_WF -> OPFVF(SrcType.fp, SrcType.vp , FuType.vfalu, VfaluType.vfwsub_w, F, T, F, UopSplitType.VEC_WFW), 642 643 // 13.4. Vector Single-Width Floating-Point Multiply/Divide Instructions 644 VFMUL_VF -> OPFVF(SrcType.fp, SrcType.vp , FuType.vfma, VfmaType.vfmul, F, T, F, UopSplitType.VEC_VFV), 645 VFDIV_VF -> OPFVF(SrcType.fp, SrcType.vp , FuType.vfdiv, VfdivType.vfdiv, F, T, F, UopSplitType.VEC_VFV), 646 VFRDIV_VF -> OPFVF(SrcType.fp, SrcType.vp , FuType.vfdiv, VfdivType.vfdiv, F, T, F, UopSplitType.VEC_VFV), 647 648 // 13.5. Vector Widening Floating-Point Multiply 649 VFWMUL_VF -> OPFVF(SrcType.fp, SrcType.vp , FuType.vfma, VfmaType.vfmul_w, F, T, F, UopSplitType.VEC_VFW), 650 651 // 13.6. Vector Single-Width Floating-Point Fused Multiply-Add Instructions 652 VFMACC_VF -> OPFVF(SrcType.fp, SrcType.vp, FuType.vfma, VfmaType.vfmacc , F, T, F, UopSplitType.VEC_VFV), 653 VFNMACC_VF -> OPFVF(SrcType.fp, SrcType.vp, FuType.vfma, VfmaType.vfnmacc, F, T, F, UopSplitType.VEC_VFV), 654 VFMSAC_VF -> OPFVF(SrcType.fp, SrcType.vp, FuType.vfma, VfmaType.vfmsac , F, T, F, UopSplitType.VEC_VFV), 655 VFNMSAC_VF -> OPFVF(SrcType.fp, SrcType.vp, FuType.vfma, VfmaType.vfnmsac, F, T, F, UopSplitType.VEC_VFV), 656 VFMADD_VF -> OPFVF(SrcType.fp, SrcType.vp, FuType.vfma, VfmaType.vfmadd , F, T, F, UopSplitType.VEC_VFV), 657 VFNMADD_VF -> OPFVF(SrcType.fp, SrcType.vp, FuType.vfma, VfmaType.vfnmadd, F, T, F, UopSplitType.VEC_VFV), 658 VFMSUB_VF -> OPFVF(SrcType.fp, SrcType.vp, FuType.vfma, VfmaType.vfmsub , F, T, F, UopSplitType.VEC_VFV), 659 VFNMSUB_VF -> OPFVF(SrcType.fp, SrcType.vp, FuType.vfma, VfmaType.vfnmsub, F, T, F, UopSplitType.VEC_VFV), 660 661 // 13.7. Vector Widening Floating-Point Fused Multiply-Add Instructions 662 VFWMACC_VF -> OPFVF(SrcType.fp, SrcType.vp, FuType.vfma, VfmaType.vfmacc_w , F, T, F, UopSplitType.VEC_VFW), 663 VFWNMACC_VF -> OPFVF(SrcType.fp, SrcType.vp, FuType.vfma, VfmaType.vfnmacc_w, F, T, F, UopSplitType.VEC_VFW), 664 VFWMSAC_VF -> OPFVF(SrcType.fp, SrcType.vp, FuType.vfma, VfmaType.vfmsac_w , F, T, F, UopSplitType.VEC_VFW), 665 VFWNMSAC_VF -> OPFVF(SrcType.fp, SrcType.vp, FuType.vfma, VfmaType.vfnmsac_w, F, T, F, UopSplitType.VEC_VFW), 666 667 // 13.11. Vector Floating-Point MIN/MAX Instructions 668 VFMIN_VF -> OPFVF(SrcType.fp, SrcType.vp , FuType.vfalu, VfaluType.vfmin, F, T, F, UopSplitType.VEC_VFV), 669 VFMAX_VF -> OPFVF(SrcType.fp, SrcType.vp , FuType.vfalu, VfaluType.vfmax, F, T, F, UopSplitType.VEC_VFV), 670 671 // 13.12. Vector Floating-Point Sign-Injection Instructions 672 VFSGNJ_VF -> OPFVF(SrcType.fp, SrcType.vp , FuType.vfalu, VfpuType.vfsgnj , F, T, F, UopSplitType.VEC_VFV), 673 VFSGNJN_VF -> OPFVF(SrcType.fp, SrcType.vp , FuType.vfalu, VfpuType.vfsgnjn, F, T, F, UopSplitType.VEC_VFV), 674 VFSGNJX_VF -> OPFVF(SrcType.fp, SrcType.vp , FuType.vfalu, VfpuType.vfsgnjx, F, T, F, UopSplitType.VEC_VFV), 675 676 // 13.13. Vector Floating-Point Compare Instructions 677 VMFEQ_VF -> OPFVF(SrcType.fp, SrcType.vp, FuType.vfalu, VfaluType.vfeq, F, F, T, UopSplitType.VEC_VFM), 678 VMFNE_VF -> OPFVF(SrcType.fp, SrcType.vp, FuType.vfalu, VfaluType.vfne, F, F, T, UopSplitType.VEC_VFM), 679 VMFLT_VF -> OPFVF(SrcType.fp, SrcType.vp, FuType.vfalu, VfaluType.vflt, F, F, T, UopSplitType.VEC_VFM), 680 VMFLE_VF -> OPFVF(SrcType.fp, SrcType.vp, FuType.vfalu, VfaluType.vfle, F, F, T, UopSplitType.VEC_VFM), 681 VMFGT_VF -> OPFVF(SrcType.fp, SrcType.vp, FuType.vfalu, VfaluType.vfgt, F, F, T, UopSplitType.VEC_VFM), 682 VMFGE_VF -> OPFVF(SrcType.fp, SrcType.vp, FuType.vfalu, VfaluType.vfge, F, F, T, UopSplitType.VEC_VFM), 683 684 // 13.15. Vector Floating-Point Merge Instruction 685 VFMERGE_VFM -> OPFVF(SrcType.fp, SrcType.vp , FuType.vfalu, VfaluType.vfmerge, F, T, F, UopSplitType.VEC_VFV), 686 687 // 13.16. Vector Floating-Point Move Instruction 688 VFMV_V_F -> OPFVF(SrcType.fp, SrcType.vp , FuType.vfalu, VfaluType.vfmv, F, T, F, UopSplitType.VEC_VFV, src2 = SrcType.X), // vfmv.v.f vd, rs1 # vd[i] = f[rs1] 689 690 // 16.2. Floating-Point Scalar Move Instructions 691 VFMV_F_S -> OPFVF(SrcType.X, SrcType.X, FuType.vfalu, VfaluType.vfmv_f_s, T, F, F, UopSplitType.SCA_SIM), // f[rd] = vs2[0] (rs1=0) 692 VFMV_S_F -> OPFVF(SrcType.fp, SrcType.X, FuType.vfalu, VfaluType.vfmv_s_f, F, T, F, UopSplitType.VEC_0XV, src2 = SrcType.X), // vd[0] = f[rs1] (vs2=0) 693 // 16.3.3. Vector Slide1up 694 VFSLIDE1UP_VF -> OPFVF(SrcType.fp, SrcType.vp , FuType.vppu, VpermType.vfslide1up, F, T, F, UopSplitType.VEC_FSLIDE1UP),// vd[0]=f[rs1], vd[i+1] = vs2[i] 695 696 // 16.3.4. Vector Slide1down Instruction 697 // vslide1down.vx vd, vs2, rs1, vm # vd[i] = vs2[i+1], vd[vl-1]=x[rs1] 698 VFSLIDE1DOWN_VF -> OPFVF(SrcType.fp, SrcType.vp , FuType.vppu, VpermType.vfslide1down, F, T, F, UopSplitType.VEC_FSLIDE1DOWN),// vd[i] = vs2[i+1], vd[vl-1]=f[rs1] 699 ) 700 701 val vset: Array[(BitPat, XSDecodeBase)] = Array( 702 VSETVLI -> VSET(vli = F, vtypei = T, VSETOpType.uvsetvcfg_xi, flushPipe = F, SelImm.IMM_VSETVLI), 703 VSETIVLI -> VSET(vli = T, vtypei = T, VSETOpType.uvsetvcfg_ii, flushPipe = F, SelImm.IMM_VSETIVLI), 704 VSETVL -> VSET(vli = F, vtypei = F, VSETOpType.uvsetvcfg_xx, flushPipe = T, SelImm.X), // flush pipe 705 ) 706 707 val vls: Array[(BitPat, XSDecodeBase)] = Array( 708 // 7.4. Vector Unit-Stride Instructions 709 VLE8_V -> VLD(SrcType.X, VlduType.vle), 710 VLE16_V -> VLD(SrcType.X, VlduType.vle), 711 VLE32_V -> VLD(SrcType.X, VlduType.vle), 712 VLE64_V -> VLD(SrcType.X, VlduType.vle), 713 VSE8_V -> VST(SrcType.X, VstuType.vse), 714 VSE16_V -> VST(SrcType.X, VstuType.vse), 715 VSE32_V -> VST(SrcType.X, VstuType.vse), 716 VSE64_V -> VST(SrcType.X, VstuType.vse), 717 VLM_V -> VLD(SrcType.X, VlduType.vlm, mask = T), 718 VSM_V -> VST(SrcType.X, VstuType.vsm, mask = T), 719 // 7.5. Vector Strided Instructions 720 VLSE8_V -> VLD(SrcType.xp, VlduType.vlse, uopSplitType = UopSplitType.VEC_S_LDST, strided = T), 721 VLSE16_V -> VLD(SrcType.xp, VlduType.vlse, uopSplitType = UopSplitType.VEC_S_LDST, strided = T), 722 VLSE32_V -> VLD(SrcType.xp, VlduType.vlse, uopSplitType = UopSplitType.VEC_S_LDST, strided = T), 723 VLSE64_V -> VLD(SrcType.xp, VlduType.vlse, uopSplitType = UopSplitType.VEC_S_LDST, strided = T), 724 VSSE8_V -> VST(SrcType.xp, VstuType.vsse, uopSplitType = UopSplitType.VEC_S_LDST, strided = T), 725 VSSE16_V -> VST(SrcType.xp, VstuType.vsse, uopSplitType = UopSplitType.VEC_S_LDST, strided = T), 726 VSSE32_V -> VST(SrcType.xp, VstuType.vsse, uopSplitType = UopSplitType.VEC_S_LDST, strided = T), 727 VSSE64_V -> VST(SrcType.xp, VstuType.vsse, uopSplitType = UopSplitType.VEC_S_LDST, strided = T), 728 // 7.6. Vector Indexed Instructions 729 VLUXEI8_V -> VLD(SrcType.vp, VlduType.vluxe, uopSplitType = UopSplitType.VEC_I_LDST, indexed = T, ordered = F), 730 VLUXEI16_V -> VLD(SrcType.vp, VlduType.vluxe, uopSplitType = UopSplitType.VEC_I_LDST, indexed = T, ordered = F), 731 VLUXEI32_V -> VLD(SrcType.vp, VlduType.vluxe, uopSplitType = UopSplitType.VEC_I_LDST, indexed = T, ordered = F), 732 VLUXEI64_V -> VLD(SrcType.vp, VlduType.vluxe, uopSplitType = UopSplitType.VEC_I_LDST, indexed = T, ordered = F), 733 VLOXEI8_V -> VLD(SrcType.vp, VlduType.vloxe, uopSplitType = UopSplitType.VEC_I_LDST, indexed = T, ordered = T), 734 VLOXEI16_V -> VLD(SrcType.vp, VlduType.vloxe, uopSplitType = UopSplitType.VEC_I_LDST, indexed = T, ordered = T), 735 VLOXEI32_V -> VLD(SrcType.vp, VlduType.vloxe, uopSplitType = UopSplitType.VEC_I_LDST, indexed = T, ordered = T), 736 VLOXEI64_V -> VLD(SrcType.vp, VlduType.vloxe, uopSplitType = UopSplitType.VEC_I_LDST, indexed = T, ordered = T), 737 VSUXEI8_V -> VST(SrcType.vp, VstuType.vsuxe, uopSplitType = UopSplitType.VEC_I_LDST, indexed = T, ordered = F), 738 VSUXEI16_V -> VST(SrcType.vp, VstuType.vsuxe, uopSplitType = UopSplitType.VEC_I_LDST, indexed = T, ordered = F), 739 VSUXEI32_V -> VST(SrcType.vp, VstuType.vsuxe, uopSplitType = UopSplitType.VEC_I_LDST, indexed = T, ordered = F), 740 VSUXEI64_V -> VST(SrcType.vp, VstuType.vsuxe, uopSplitType = UopSplitType.VEC_I_LDST, indexed = T, ordered = F), 741 VSOXEI8_V -> VST(SrcType.vp, VstuType.vsoxe, uopSplitType = UopSplitType.VEC_I_LDST, indexed = T, ordered = T), 742 VSOXEI16_V -> VST(SrcType.vp, VstuType.vsoxe, uopSplitType = UopSplitType.VEC_I_LDST, indexed = T, ordered = T), 743 VSOXEI32_V -> VST(SrcType.vp, VstuType.vsoxe, uopSplitType = UopSplitType.VEC_I_LDST, indexed = T, ordered = T), 744 VSOXEI64_V -> VST(SrcType.vp, VstuType.vsoxe, uopSplitType = UopSplitType.VEC_I_LDST, indexed = T, ordered = T), 745 // 7.7. Unit-stride Fault-Only-First Loads 746 VLE8FF_V -> VLD(SrcType.X, VlduType.vleff, ff = T), 747 VLE16FF_V -> VLD(SrcType.X, VlduType.vleff, ff = T), 748 VLE32FF_V -> VLD(SrcType.X, VlduType.vleff, ff = T), 749 VLE64FF_V -> VLD(SrcType.X, VlduType.vleff, ff = T), 750 // 7.8. Vector Load/Store Segment Instructions 751 // 7.8.1. Vector Unit-Stride Segment Loads and Stores 752 // TODO 753 // 7.8.2. Vector Strided Segment Loads and Stores 754 // TODO 755 // 7.8.3. Vector Indexed Segment Loads and Stores 756 // TODO 757 // 7.9. Vector Load/Store Whole Register Instructions 758 VL1RE8_V -> VLD(SrcType.X, VlduType.vlr, whole = T), 759 VL1RE16_V -> VLD(SrcType.X, VlduType.vlr, whole = T), 760 VL1RE32_V -> VLD(SrcType.X, VlduType.vlr, whole = T), 761 VL1RE64_V -> VLD(SrcType.X, VlduType.vlr, whole = T), 762 VL2RE8_V -> VLD(SrcType.X, VlduType.vlr, whole = T), 763 VL2RE16_V -> VLD(SrcType.X, VlduType.vlr, whole = T), 764 VL2RE32_V -> VLD(SrcType.X, VlduType.vlr, whole = T), 765 VL2RE64_V -> VLD(SrcType.X, VlduType.vlr, whole = T), 766 VL4RE8_V -> VLD(SrcType.X, VlduType.vlr, whole = T), 767 VL4RE16_V -> VLD(SrcType.X, VlduType.vlr, whole = T), 768 VL4RE32_V -> VLD(SrcType.X, VlduType.vlr, whole = T), 769 VL4RE64_V -> VLD(SrcType.X, VlduType.vlr, whole = T), 770 VL8RE8_V -> VLD(SrcType.X, VlduType.vlr, whole = T), 771 VL8RE16_V -> VLD(SrcType.X, VlduType.vlr, whole = T), 772 VL8RE32_V -> VLD(SrcType.X, VlduType.vlr, whole = T), 773 VL8RE64_V -> VLD(SrcType.X, VlduType.vlr, whole = T), 774 VS1R_V -> VST(SrcType.X, VstuType.vsr, whole = T), 775 VS2R_V -> VST(SrcType.X, VstuType.vsr, whole = T), 776 VS4R_V -> VST(SrcType.X, VstuType.vsr, whole = T), 777 VS8R_V -> VST(SrcType.X, VstuType.vsr, whole = T), 778 ) 779 780 override val decodeArray: Array[(BitPat, XSDecodeBase)] = vset ++ 781 opivv ++ opivx ++ opivi ++ opmvv ++ opmvx ++ opfvv ++ opfvf ++ opfff ++ vls 782} 783