1package xiangshan.backend.datapath 2 3import org.chipsalliance.cde.config.Parameters 4import chisel3._ 5import chisel3.util._ 6import difftest.{DiffArchFpRegState, DiffArchIntRegState, DiffArchVecRegState, DifftestModule} 7import freechips.rocketchip.diplomacy.{LazyModule, LazyModuleImp} 8import utility._ 9import utils.SeqUtils._ 10import utils.{XSPerfAccumulate, XSPerfHistogram} 11import xiangshan._ 12import xiangshan.backend.BackendParams 13import xiangshan.backend.Bundles._ 14import xiangshan.backend.decode.ImmUnion 15import xiangshan.backend.datapath.DataConfig._ 16import xiangshan.backend.datapath.RdConfig._ 17import xiangshan.backend.issue.{ImmExtractor, IntScheduler, MemScheduler, VfScheduler} 18import xiangshan.backend.issue.EntryBundles._ 19import xiangshan.backend.regfile._ 20import xiangshan.backend.PcToDataPathIO 21 22class DataPath(params: BackendParams)(implicit p: Parameters) extends LazyModule { 23 override def shouldBeInlined: Boolean = false 24 25 private implicit val dpParams: BackendParams = params 26 lazy val module = new DataPathImp(this) 27 28 println(s"[DataPath] Preg Params: ") 29 println(s"[DataPath] Int R(${params.getRfReadSize(IntData())}), W(${params.getRfWriteSize(IntData())}) ") 30 println(s"[DataPath] Vf R(${params.getRfReadSize(VecData())}), W(${params.getRfWriteSize(VecData())}) ") 31} 32 33class DataPathImp(override val wrapper: DataPath)(implicit p: Parameters, params: BackendParams) 34 extends LazyModuleImp(wrapper) with HasXSParameter { 35 36 private val VCONFIG_PORT = params.vconfigPort 37 private val VLD_PORT = params.vldPort 38 39 val io = IO(new DataPathIO()) 40 41 private val (fromIntIQ, toIntIQ, toIntExu) = (io.fromIntIQ, io.toIntIQ, io.toIntExu) 42 private val (fromMemIQ, toMemIQ, toMemExu) = (io.fromMemIQ, io.toMemIQ, io.toMemExu) 43 private val (fromVfIQ , toVfIQ , toVfExu ) = (io.fromVfIQ , io.toVfIQ , io.toFpExu) 44 45 println(s"[DataPath] IntIQ(${fromIntIQ.size}), MemIQ(${fromMemIQ.size})") 46 println(s"[DataPath] IntExu(${fromIntIQ.map(_.size).sum}), MemExu(${fromMemIQ.map(_.size).sum})") 47 48 // just refences for convience 49 private val fromIQ: Seq[MixedVec[DecoupledIO[IssueQueueIssueBundle]]] = (fromIntIQ ++ fromVfIQ ++ fromMemIQ).toSeq 50 51 private val toIQs = toIntIQ ++ toVfIQ ++ toMemIQ 52 53 private val toExu: Seq[MixedVec[DecoupledIO[ExuInput]]] = (toIntExu ++ toVfExu ++ toMemExu).toSeq 54 55 private val fromFlattenIQ: Seq[DecoupledIO[IssueQueueIssueBundle]] = fromIQ.flatten 56 57 private val toFlattenExu: Seq[DecoupledIO[ExuInput]] = toExu.flatten 58 59 private val intWbBusyArbiter = Module(new IntRFWBCollideChecker(backendParams)) 60 private val vfWbBusyArbiter = Module(new VfRFWBCollideChecker(backendParams)) 61 private val intRFReadArbiter = Module(new IntRFReadArbiter(backendParams)) 62 private val vfRFReadArbiter = Module(new VfRFReadArbiter(backendParams)) 63 64 private val og0FailedVec2: MixedVec[Vec[Bool]] = Wire(MixedVec(fromIQ.map(x => Vec(x.size, Bool())).toSeq)) 65 private val og1FailedVec2: MixedVec[Vec[Bool]] = Wire(MixedVec(fromIQ.map(x => Vec(x.size, Bool())).toSeq)) 66 67 // port -> win 68 private val intRdArbWinner: Seq2[MixedVec[Bool]] = intRFReadArbiter.io.in.map(_.map(x => MixedVecInit(x.map(_.ready).toSeq)).toSeq).toSeq 69 private val vfRdArbWinner: Seq2[MixedVec[Bool]] = vfRFReadArbiter.io.in.map(_.map(x => MixedVecInit(x.map(_.ready).toSeq)).toSeq).toSeq 70 private val intWbNotBlock: Seq[MixedVec[Bool]] = intWbBusyArbiter.io.in.map(x => MixedVecInit(x.map(_.ready).toSeq)).toSeq 71 private val vfWbNotBlock: Seq[MixedVec[Bool]] = vfWbBusyArbiter.io.in.map(x => MixedVecInit(x.map(_.ready).toSeq)).toSeq 72 73 private val intRdNotBlock: Seq2[Bool] = intRdArbWinner.map(_.map(_.asUInt.andR)) 74 private val vfRdNotBlock: Seq2[Bool] = vfRdArbWinner.map(_.map(_.asUInt.andR)) 75 76 private val intRFReadReq: Seq3[ValidIO[RfReadPortWithConfig]] = fromIQ.map(x => x.map(xx => xx.bits.getIntRfReadValidBundle(xx.valid)).toSeq).toSeq 77 private val intDataSources: Seq[Seq[Vec[DataSource]]] = fromIQ.map(x => x.map(xx => xx.bits.common.dataSources).toSeq) 78 79 intRFReadArbiter.io.in.zip(intRFReadReq).zipWithIndex.foreach { case ((arbInSeq2, inRFReadReqSeq2), iqIdx) => 80 arbInSeq2.zip(inRFReadReqSeq2).zipWithIndex.foreach { case ((arbInSeq, inRFReadReqSeq), exuIdx) => 81 val srcIndices: Seq[Int] = fromIQ(iqIdx)(exuIdx).bits.exuParams.getRfReadSrcIdx(IntData()) 82 for (srcIdx <- 0 until fromIQ(iqIdx)(exuIdx).bits.exuParams.numRegSrc) { 83 if (srcIndices.contains(srcIdx) && inRFReadReqSeq.isDefinedAt(srcIdx)) { 84 arbInSeq(srcIdx).valid := inRFReadReqSeq(srcIdx).valid && intDataSources(iqIdx)(exuIdx)(srcIdx).readReg 85 arbInSeq(srcIdx).bits.addr := inRFReadReqSeq(srcIdx).bits.addr 86 } else { 87 arbInSeq(srcIdx).valid := false.B 88 arbInSeq(srcIdx).bits.addr := 0.U 89 } 90 } 91 } 92 } 93 94 private val vfRFReadReq: Seq3[ValidIO[RfReadPortWithConfig]] = fromIQ.map(x => x.map(xx => xx.bits.getVfRfReadValidBundle(xx.valid)).toSeq).toSeq 95 96 vfRFReadArbiter.io.in.zip(vfRFReadReq).zipWithIndex.foreach { case ((arbInSeq2, inRFReadReqSeq2), iqIdx) => 97 arbInSeq2.zip(inRFReadReqSeq2).zipWithIndex.foreach { case ((arbInSeq, inRFReadReqSeq), exuIdx) => 98 val srcIndices: Seq[Int] = VfRegSrcDataSet.flatMap(data => fromIQ(iqIdx)(exuIdx).bits.exuParams.getRfReadSrcIdx(data)).toSeq.sorted 99 for (srcIdx <- 0 until fromIQ(iqIdx)(exuIdx).bits.exuParams.numRegSrc) { 100 if (srcIndices.contains(srcIdx) && inRFReadReqSeq.isDefinedAt(srcIdx)) { 101 arbInSeq(srcIdx).valid := inRFReadReqSeq(srcIdx).valid 102 arbInSeq(srcIdx).bits.addr := inRFReadReqSeq(srcIdx).bits.addr 103 } else { 104 arbInSeq(srcIdx).valid := false.B 105 arbInSeq(srcIdx).bits.addr := 0.U 106 } 107 } 108 } 109 } 110 111 private val intRFWriteReq: Seq2[Bool] = fromIQ.map(x => x.map(xx => xx.valid && xx.bits.common.rfWen.getOrElse(false.B)).toSeq).toSeq 112 private val vfRFWriteReq: Seq2[Bool] = fromIQ.map(x => x.map(xx => xx.valid && xx.bits.common.getVfWen.getOrElse(false.B)).toSeq).toSeq 113 114 intWbBusyArbiter.io.in.zip(intRFWriteReq).foreach { case (arbInSeq, inRFWriteReqSeq) => 115 arbInSeq.zip(inRFWriteReqSeq).foreach { case (arbIn, inRFWriteReq) => 116 arbIn.valid := inRFWriteReq 117 } 118 } 119 120 vfWbBusyArbiter.io.in.zip(vfRFWriteReq).foreach { case (arbInSeq, inRFWriteReqSeq) => 121 arbInSeq.zip(inRFWriteReqSeq).foreach { case (arbIn, inRFWriteReq) => 122 arbIn.valid := inRFWriteReq 123 } 124 } 125 126 private val intSchdParams = params.schdParams(IntScheduler()) 127 private val vfSchdParams = params.schdParams(VfScheduler()) 128 private val memSchdParams = params.schdParams(MemScheduler()) 129 130 private val numIntRfReadByExu = intSchdParams.numIntRfReadByExu + memSchdParams.numIntRfReadByExu 131 private val numVfRfReadByExu = vfSchdParams.numVfRfReadByExu + memSchdParams.numVfRfReadByExu 132 // Todo: limit read port 133 private val numIntR = numIntRfReadByExu 134 private val numVfR = numVfRfReadByExu 135 println(s"[DataPath] RegFile read req needed by Exu: Int(${numIntRfReadByExu}), Vf(${numVfRfReadByExu})") 136 println(s"[DataPath] RegFile read port: Int(${numIntR}), Vf(${numVfR})") 137 138 private val schdParams = params.allSchdParams 139 140 private val pcReadFtqPtr = Wire(chiselTypeOf(io.pcFromPcTargetMem.fromDataPathFtqPtr)) 141 private val pcReadFtqOffset = Wire(chiselTypeOf(io.pcFromPcTargetMem.fromDataPathFtqOffset)) 142 private val pcRdata = io.pcFromPcTargetMem.toDataPathPC 143 private val intRfRaddr = Wire(Vec(params.numPregRd(IntData()), UInt(intSchdParams.pregIdxWidth.W))) 144 private val intRfRdata = Wire(Vec(params.numPregRd(IntData()), UInt(intSchdParams.rfDataWidth.W))) 145 private val intRfWen = Wire(Vec(io.fromIntWb.length, Bool())) 146 private val intRfWaddr = Wire(Vec(io.fromIntWb.length, UInt(intSchdParams.pregIdxWidth.W))) 147 private val intRfWdata = Wire(Vec(io.fromIntWb.length, UInt(intSchdParams.rfDataWidth.W))) 148 149 private val vfRfSplitNum = VLEN / XLEN 150 private val vfRfRaddr = Wire(Vec(params.numPregRd(VecData()), UInt(vfSchdParams.pregIdxWidth.W))) 151 private val vfRfRdata = Wire(Vec(params.numPregRd(VecData()), UInt(vfSchdParams.rfDataWidth.W))) 152 private val vfRfWen = Wire(Vec(vfRfSplitNum, Vec(io.fromVfWb.length, Bool()))) 153 private val vfRfWaddr = Wire(Vec(io.fromVfWb.length, UInt(vfSchdParams.pregIdxWidth.W))) 154 private val vfRfWdata = Wire(Vec(io.fromVfWb.length, UInt(vfSchdParams.rfDataWidth.W))) 155 156 val pcReadFtqPtrFormIQ = fromIntIQ.flatten.filter(x => x.bits.exuParams.needPc) 157 assert(pcReadFtqPtrFormIQ.size == pcReadFtqPtr.size, s"pcReadFtqPtrFormIQ.size ${pcReadFtqPtrFormIQ.size} not equal pcReadFtqPtr.size ${pcReadFtqPtr.size}") 158 pcReadFtqPtr.zip(pcReadFtqPtrFormIQ.map(_.bits.common.ftqIdx.get)).map(x => x._1 := x._2) 159 pcReadFtqOffset.zip(pcReadFtqPtrFormIQ.map(_.bits.common.ftqOffset.get)).map(x => x._1 := x._2) 160 io.pcFromPcTargetMem.fromDataPathFtqPtr := pcReadFtqPtr 161 io.pcFromPcTargetMem.fromDataPathFtqOffset := pcReadFtqOffset 162 private val intDebugRead: Option[(Vec[UInt], Vec[UInt])] = 163 if (env.AlwaysBasicDiff || env.EnableDifftest) { 164 Some(Wire(Vec(32, UInt(intSchdParams.pregIdxWidth.W))), Wire(Vec(32, UInt(XLEN.W)))) 165 } else { None } 166 private val vfDebugRead: Option[(Vec[UInt], Vec[UInt])] = 167 if (env.AlwaysBasicDiff || env.EnableDifftest) { 168 Some(Wire(Vec(32 + 32 + 1, UInt(vfSchdParams.pregIdxWidth.W))), Wire(Vec(32 + 32 + 1, UInt(VLEN.W)))) 169 } else { None } 170 171 private val fpDebugReadData: Option[Vec[UInt]] = 172 if (env.AlwaysBasicDiff || env.EnableDifftest) { 173 Some(Wire(Vec(32, UInt(XLEN.W)))) 174 } else { None } 175 private val vecDebugReadData: Option[Vec[UInt]] = 176 if (env.AlwaysBasicDiff || env.EnableDifftest) { 177 Some(Wire(Vec(64, UInt(64.W)))) // v0 = Cat(Vec(1), Vec(0)) 178 } else { None } 179 private val vconfigDebugReadData: Option[UInt] = 180 if (env.AlwaysBasicDiff || env.EnableDifftest) { 181 Some(Wire(UInt(64.W))) 182 } else { None } 183 184 185 fpDebugReadData.foreach(_ := vfDebugRead 186 .get._2 187 .slice(0, 32) 188 .map(_(63, 0)) 189 ) // fp only used [63, 0] 190 vecDebugReadData.foreach(_ := vfDebugRead 191 .get._2 192 .slice(32, 64) 193 .map(x => Seq(x(63, 0), x(127, 64))).flatten 194 ) 195 vconfigDebugReadData.foreach(_ := vfDebugRead 196 .get._2(64)(63, 0) 197 ) 198 199 io.debugVconfig.foreach(_ := vconfigDebugReadData.get) 200 201 IntRegFile("IntRegFile", intSchdParams.numPregs, intRfRaddr, intRfRdata, intRfWen, intRfWaddr, intRfWdata, 202 debugReadAddr = intDebugRead.map(_._1), 203 debugReadData = intDebugRead.map(_._2)) 204 VfRegFile("VfRegFile", vfSchdParams.numPregs, vfRfSplitNum, vfRfRaddr, vfRfRdata, vfRfWen, vfRfWaddr, vfRfWdata, 205 debugReadAddr = vfDebugRead.map(_._1), 206 debugReadData = vfDebugRead.map(_._2)) 207 208 intRfWaddr := io.fromIntWb.map(_.addr).toSeq 209 intRfWdata := io.fromIntWb.map(_.data).toSeq 210 intRfWen := io.fromIntWb.map(_.wen).toSeq 211 212 for (portIdx <- intRfRaddr.indices) { 213 if (intRFReadArbiter.io.out.isDefinedAt(portIdx)) 214 intRfRaddr(portIdx) := intRFReadArbiter.io.out(portIdx).bits.addr 215 else 216 intRfRaddr(portIdx) := 0.U 217 } 218 219 vfRfWaddr := io.fromVfWb.map(_.addr).toSeq 220 vfRfWdata := io.fromVfWb.map(_.data).toSeq 221 vfRfWen.foreach(_.zip(io.fromVfWb.map(_.wen)).foreach { case (wenSink, wenSource) => wenSink := wenSource } )// Todo: support fp multi-write 222 223 for (portIdx <- vfRfRaddr.indices) { 224 if (vfRFReadArbiter.io.out.isDefinedAt(portIdx)) 225 vfRfRaddr(portIdx) := vfRFReadArbiter.io.out(portIdx).bits.addr 226 else 227 vfRfRaddr(portIdx) := 0.U 228 } 229 230 vfRfRaddr(VCONFIG_PORT) := io.vconfigReadPort.addr 231 io.vconfigReadPort.data := vfRfRdata(VCONFIG_PORT) 232 // vfRfRaddr(VLD_PORT) := io.vldReadPort.addr 233 io.vldReadPort.data := DontCare 234 235 intDebugRead.foreach { case (addr, _) => 236 addr := io.debugIntRat.get 237 } 238 239 vfDebugRead.foreach { case (addr, _) => 240 addr := io.debugFpRat.get ++ io.debugVecRat.get :+ io.debugVconfigRat.get 241 } 242 println(s"[DataPath] " + 243 s"has intDebugRead: ${intDebugRead.nonEmpty}, " + 244 s"has vfDebugRead: ${vfDebugRead.nonEmpty}") 245 246 val s1_addrOHs = Reg(MixedVec( 247 fromIQ.map(x => MixedVec(x.map(_.bits.addrOH.cloneType).toSeq)).toSeq 248 )) 249 val s1_toExuValid: MixedVec[MixedVec[Bool]] = Reg(MixedVec( 250 toExu.map(x => MixedVec(x.map(_.valid.cloneType).toSeq)).toSeq 251 )) 252 val s1_toExuData: MixedVec[MixedVec[ExuInput]] = Reg(MixedVec(toExu.map(x => MixedVec(x.map(_.bits.cloneType).toSeq)).toSeq)) 253 val s1_toExuReady = Wire(MixedVec(toExu.map(x => MixedVec(x.map(_.ready.cloneType).toSeq)))) 254 val s1_srcType: MixedVec[MixedVec[Vec[UInt]]] = MixedVecInit(fromIQ.map(x => MixedVecInit(x.map(xx => RegEnable(xx.bits.srcType, xx.fire)).toSeq))) 255 256 val s1_intPregRData: MixedVec[MixedVec[Vec[UInt]]] = Wire(MixedVec(toExu.map(x => MixedVec(x.map(_.bits.src.cloneType).toSeq)))) 257 val s1_vfPregRData: MixedVec[MixedVec[Vec[UInt]]] = Wire(MixedVec(toExu.map(x => MixedVec(x.map(_.bits.src.cloneType).toSeq)))) 258 259 val rfrPortConfigs = schdParams.map(_.issueBlockParams).flatten.map(_.exuBlockParams.map(_.rfrPortConfigs)) 260 261 println(s"[DataPath] s1_intPregRData.flatten.flatten.size: ${s1_intPregRData.flatten.flatten.size}, intRfRdata.size: ${intRfRdata.size}") 262 s1_intPregRData.foreach(_.foreach(_.foreach(_ := 0.U))) 263 s1_intPregRData.zip(rfrPortConfigs).foreach { case (iqRdata, iqCfg) => 264 iqRdata.zip(iqCfg).foreach { case (iuRdata, iuCfg) => 265 val realIuCfg = iuCfg.map(x => if(x.size > 1) x.filter(_.isInstanceOf[IntRD]) else x).flatten 266 assert(iuRdata.size == realIuCfg.size, "iuRdata.size != realIuCfg.size") 267 iuRdata.zip(realIuCfg) 268 .filter { case (_, rfrPortConfig) => rfrPortConfig.isInstanceOf[IntRD] } 269 .foreach { case (sink, cfg) => sink := intRfRdata(cfg.port) } 270 } 271 } 272 273 println(s"[DataPath] s1_vfPregRData.flatten.flatten.size: ${s1_vfPregRData.flatten.flatten.size}, vfRfRdata.size: ${vfRfRdata.size}") 274 s1_vfPregRData.foreach(_.foreach(_.foreach(_ := 0.U))) 275 s1_vfPregRData.zip(rfrPortConfigs).foreach{ case(iqRdata, iqCfg) => 276 iqRdata.zip(iqCfg).foreach{ case(iuRdata, iuCfg) => 277 val realIuCfg = iuCfg.map(x => if(x.size > 1) x.filter(_.isInstanceOf[VfRD]) else x).flatten 278 assert(iuRdata.size == realIuCfg.size, "iuRdata.size != realIuCfg.size") 279 iuRdata.zip(realIuCfg) 280 .filter { case (_, rfrPortConfig) => rfrPortConfig.isInstanceOf[VfRD] } 281 .foreach { case (sink, cfg) => sink := vfRfRdata(cfg.port) } 282 } 283 } 284 285 for (i <- fromIQ.indices) { 286 for (j <- fromIQ(i).indices) { 287 // IQ(s0) --[Ctrl]--> s1Reg ---------- begin 288 // refs 289 val s1_valid = s1_toExuValid(i)(j) 290 val s1_ready = s1_toExuReady(i)(j) 291 val s1_data = s1_toExuData(i)(j) 292 val s1_addrOH = s1_addrOHs(i)(j) 293 val s0 = fromIQ(i)(j) // s0 294 val srcNotBlock = s0.bits.common.dataSources.zip(intRdArbWinner(i)(j) zip vfRdArbWinner(i)(j)).map { case (source, win) => 295 !source.readReg || win._1 && win._2 296 }.fold(true.B)(_ && _) 297 val notBlock = srcNotBlock && intWbNotBlock(i)(j) && vfWbNotBlock(i)(j) 298 val s1_flush = s0.bits.common.robIdx.needFlush(Seq(io.flush, RegNextWithEnable(io.flush))) 299 val s1_cancel = og1FailedVec2(i)(j) 300 val s1_ldCancel = LoadShouldCancel(s0.bits.common.loadDependency, io.ldCancel) 301 when (s0.fire && !s1_flush && notBlock && !s1_cancel && !s1_ldCancel) { 302 s1_valid := s0.valid 303 s1_data.fromIssueBundle(s0.bits) // no src data here 304 s1_addrOH := s0.bits.addrOH 305 }.otherwise { 306 s1_valid := false.B 307 } 308 s0.ready := (s1_ready || !s1_valid) && notBlock 309 // IQ(s0) --[Ctrl]--> s1Reg ---------- end 310 311 // IQ(s0) --[Data]--> s1Reg ---------- begin 312 // imm extract 313 when (s0.fire && !s1_flush && notBlock) { 314 if (s1_data.params.immType.nonEmpty && s1_data.src.size > 1) { 315 // rs1 is always int reg, rs2 may be imm 316 when(SrcType.isImm(s0.bits.srcType(1))) { 317 s1_data.src(1) := ImmExtractor( 318 s0.bits.common.imm, 319 s0.bits.immType, 320 s1_data.params.dataBitsMax, 321 s1_data.params.immType.map(_.litValue) 322 ) 323 } 324 } 325 if (s1_data.params.hasVecFu) { 326 // Fuck off riscv vector imm!!! Why not src1??? 327 when(SrcType.isImm(s0.bits.srcType(0))) { 328 s1_data.src(0) := ImmExtractor( 329 s0.bits.common.imm, 330 s0.bits.immType, 331 s1_data.params.dataBitsMax, 332 s1_data.params.immType.map(_.litValue) 333 ) 334 } 335 } else if (s1_data.params.hasLoadFu || s1_data.params.hasHyldaFu) { 336 // dirty code for fused_lui_load 337 when(SrcType.isImm(s0.bits.srcType(0))) { 338 s1_data.src(0) := SignExt(ImmUnion.U.toImm32(s0.bits.common.imm(s0.bits.common.imm.getWidth - 1, ImmUnion.I.len)), XLEN) 339 } 340 } 341 } 342 // IQ(s0) --[Data]--> s1Reg ---------- end 343 } 344 } 345 346 private val fromIQFire = fromIQ.map(_.map(_.fire)) 347 private val toExuFire = toExu.map(_.map(_.fire)) 348 toIQs.zipWithIndex.foreach { 349 case(toIQ, iqIdx) => 350 toIQ.zipWithIndex.foreach { 351 case (toIU, iuIdx) => 352 // IU: issue unit 353 val og0resp = toIU.og0resp 354 og0FailedVec2(iqIdx)(iuIdx) := fromIQ(iqIdx)(iuIdx).valid && (!fromIQFire(iqIdx)(iuIdx)) 355 og0resp.valid := og0FailedVec2(iqIdx)(iuIdx) 356 og0resp.bits.robIdx := fromIQ(iqIdx)(iuIdx).bits.common.robIdx 357 og0resp.bits.uopIdx.foreach(_ := fromIQ(iqIdx)(iuIdx).bits.common.vpu.get.vuopIdx) 358 og0resp.bits.resp := RespType.block 359 og0resp.bits.fuType := fromIQ(iqIdx)(iuIdx).bits.common.fuType 360 361 val og1resp = toIU.og1resp 362 og1FailedVec2(iqIdx)(iuIdx) := s1_toExuValid(iqIdx)(iuIdx) && !toExuFire(iqIdx)(iuIdx) 363 og1resp.valid := s1_toExuValid(iqIdx)(iuIdx) 364 og1resp.bits.robIdx := s1_toExuData(iqIdx)(iuIdx).robIdx 365 // respType: fuIdle ->IQ entry clear 366 // fuUncertain ->IQ entry no action 367 // fuBusy ->IQ entry issued set false, then re-issue 368 // Only hyu, lda and sta are fuUncertain at OG1 stage 369 og1resp.bits.resp := Mux(!og1FailedVec2(iqIdx)(iuIdx), 370 if (toIU.issueQueueParams.isMemAddrIQ) RespType.uncertain else RespType.success, 371 RespType.block 372 ) 373 og1resp.bits.fuType := s1_toExuData(iqIdx)(iuIdx).fuType 374 } 375 } 376 377 io.og0CancelOH := VecInit(fromFlattenIQ.map(x => x.valid && !x.fire)).asUInt 378 io.og1CancelOH := VecInit(toFlattenExu.map(x => x.valid && !x.fire)).asUInt 379 380 io.cancelToBusyTable.zipWithIndex.foreach { case (cancel, i) => 381 cancel.valid := fromFlattenIQ(i).valid && !fromFlattenIQ(i).fire && { 382 if (fromFlattenIQ(i).bits.common.rfWen.isDefined) 383 fromFlattenIQ(i).bits.common.rfWen.get && fromFlattenIQ(i).bits.common.pdest =/= 0.U 384 else 385 true.B 386 } 387 cancel.bits.rfWen := fromFlattenIQ(i).bits.common.rfWen.getOrElse(false.B) 388 cancel.bits.fpWen := fromFlattenIQ(i).bits.common.fpWen.getOrElse(false.B) 389 cancel.bits.vecWen := fromFlattenIQ(i).bits.common.vecWen.getOrElse(false.B) 390 cancel.bits.pdest := fromFlattenIQ(i).bits.common.pdest 391 } 392 393 for (i <- toExu.indices) { 394 for (j <- toExu(i).indices) { 395 // s1Reg --[Ctrl]--> exu(s1) ---------- begin 396 // refs 397 val sinkData = toExu(i)(j).bits 398 // assign 399 toExu(i)(j).valid := s1_toExuValid(i)(j) 400 s1_toExuReady(i)(j) := toExu(i)(j).ready 401 sinkData := s1_toExuData(i)(j) 402 // s1Reg --[Ctrl]--> exu(s1) ---------- end 403 404 // s1Reg --[Data]--> exu(s1) ---------- begin 405 // data source1: preg read data 406 for (k <- sinkData.src.indices) { 407 val srcDataTypeSet: Set[DataConfig] = sinkData.params.getSrcDataType(k) 408 409 val readRfMap: Seq[(Bool, UInt)] = (Seq(None) :+ 410 (if (s1_intPregRData(i)(j).isDefinedAt(k) && srcDataTypeSet.intersect(IntRegSrcDataSet).nonEmpty) 411 Some(SrcType.isXp(s1_srcType(i)(j)(k)) -> s1_intPregRData(i)(j)(k)) 412 else None) :+ 413 (if (s1_vfPregRData(i)(j).isDefinedAt(k) && srcDataTypeSet.intersect(VfRegSrcDataSet).nonEmpty) 414 Some(SrcType.isVfp(s1_srcType(i)(j)(k))-> s1_vfPregRData(i)(j)(k)) 415 else None) 416 ).filter(_.nonEmpty).map(_.get) 417 if (readRfMap.nonEmpty) 418 sinkData.src(k) := Mux1H(readRfMap) 419 } 420 421 // data source2: extracted imm and pc saved in s1Reg 422 if (sinkData.params.immType.nonEmpty && sinkData.src.size > 1) { 423 when(SrcType.isImm(s1_srcType(i)(j)(1))) { 424 sinkData.src(1) := s1_toExuData(i)(j).src(1) 425 } 426 } 427 if (sinkData.params.hasJmpFu) { 428 val index = pcReadFtqPtrFormIQ.map(_.bits.exuParams).indexOf(sinkData.params) 429 sinkData.pc.get := pcRdata(index) 430 } else if (sinkData.params.hasVecFu) { 431 when(SrcType.isImm(s1_srcType(i)(j)(0))) { 432 sinkData.src(0) := s1_toExuData(i)(j).src(0) 433 } 434 } else if (sinkData.params.hasLoadFu || sinkData.params.hasHyldaFu) { 435 when(SrcType.isImm(s1_srcType(i)(j)(0))) { 436 sinkData.src(0) := s1_toExuData(i)(j).src(0) 437 } 438 } 439 // s1Reg --[Data]--> exu(s1) ---------- end 440 } 441 } 442 443 if (env.AlwaysBasicDiff || env.EnableDifftest) { 444 val delayedCnt = 2 445 val difftestArchIntRegState = DifftestModule(new DiffArchIntRegState, delay = delayedCnt) 446 difftestArchIntRegState.coreid := io.hartId 447 difftestArchIntRegState.value := intDebugRead.get._2 448 449 val difftestArchFpRegState = DifftestModule(new DiffArchFpRegState, delay = delayedCnt) 450 difftestArchFpRegState.coreid := io.hartId 451 difftestArchFpRegState.value := fpDebugReadData.get 452 453 val difftestArchVecRegState = DifftestModule(new DiffArchVecRegState, delay = delayedCnt) 454 difftestArchVecRegState.coreid := io.hartId 455 difftestArchVecRegState.value := vecDebugReadData.get 456 } 457 458 val int_regcache_size = 48 459 val int_regcache_tag = RegInit(VecInit(Seq.fill(int_regcache_size)(0.U(intSchdParams.pregIdxWidth.W)))) 460 val int_regcache_enqPtr = RegInit(0.U(log2Up(int_regcache_size).W)) 461 int_regcache_enqPtr := int_regcache_enqPtr + PopCount(intRfWen) 462 for (i <- intRfWen.indices) { 463 when (intRfWen(i)) { 464 int_regcache_tag(int_regcache_enqPtr + PopCount(intRfWen.take(i))) := intRfWaddr(i) 465 } 466 } 467 468 val vf_regcache_size = 48 469 val vf_regcache_tag = RegInit(VecInit(Seq.fill(vf_regcache_size)(0.U(vfSchdParams.pregIdxWidth.W)))) 470 val vf_regcache_enqPtr = RegInit(0.U(log2Up(vf_regcache_size).W)) 471 vf_regcache_enqPtr := vf_regcache_enqPtr + PopCount(vfRfWen.head) 472 for (i <- vfRfWen.indices) { 473 when (vfRfWen.head(i)) { 474 vf_regcache_tag(vf_regcache_enqPtr + PopCount(vfRfWen.head.take(i))) := vfRfWaddr(i) 475 } 476 } 477 478 XSPerfHistogram(s"IntRegFileRead_hist", PopCount(intRFReadArbiter.io.in.flatten.flatten.map(_.valid)), true.B, 0, 20, 1) 479 XSPerfHistogram(s"VfRegFileRead_hist", PopCount(vfRFReadArbiter.io.in.flatten.flatten.map(_.valid)), true.B, 0, 20, 1) 480 XSPerfHistogram(s"IntRegFileWrite_hist", PopCount(intRFWriteReq.flatten), true.B, 0, 20, 1) 481 XSPerfHistogram(s"VfRegFileWrite_hist", PopCount(vfRFWriteReq.flatten), true.B, 0, 20, 1) 482 483 val int_regcache_part32 = (1 until 33).map(i => int_regcache_tag(int_regcache_enqPtr - i.U)) 484 val int_regcache_part24 = (1 until 24).map(i => int_regcache_tag(int_regcache_enqPtr - i.U)) 485 val int_regcache_part16 = (1 until 17).map(i => int_regcache_tag(int_regcache_enqPtr - i.U)) 486 val int_regcache_part8 = (1 until 9).map(i => int_regcache_tag(int_regcache_enqPtr - i.U)) 487 488 val int_regcache_48_hit_vec = intRFReadArbiter.io.in.flatten.flatten.map(x => x.valid && int_regcache_tag.map(_ === x.bits.addr).reduce(_ || _)) 489 val int_regcache_8_hit_vec = intRFReadArbiter.io.in.flatten.flatten.map(x => x.valid && int_regcache_part8.map(_ === x.bits.addr).reduce(_ || _)) 490 val int_regcache_16_hit_vec = intRFReadArbiter.io.in.flatten.flatten.map(x => x.valid && int_regcache_part16.map(_ === x.bits.addr).reduce(_ || _)) 491 val int_regcache_24_hit_vec = intRFReadArbiter.io.in.flatten.flatten.map(x => x.valid && int_regcache_part24.map(_ === x.bits.addr).reduce(_ || _)) 492 val int_regcache_32_hit_vec = intRFReadArbiter.io.in.flatten.flatten.map(x => x.valid && int_regcache_part32.map(_ === x.bits.addr).reduce(_ || _)) 493 XSPerfAccumulate("IntRegCache48Hit", PopCount(int_regcache_48_hit_vec)) 494 XSPerfAccumulate("IntRegCache8Hit", PopCount(int_regcache_8_hit_vec)) 495 XSPerfAccumulate("IntRegCache16Hit", PopCount(int_regcache_16_hit_vec)) 496 XSPerfAccumulate("IntRegCache24Hit", PopCount(int_regcache_24_hit_vec)) 497 XSPerfAccumulate("IntRegCache32Hit", PopCount(int_regcache_32_hit_vec)) 498 XSPerfHistogram("IntRegCache48Hit_hist", PopCount(int_regcache_48_hit_vec), true.B, 0, 16, 2) 499 500 XSPerfAccumulate(s"IntRFReadBeforeArb", PopCount(intRFReadArbiter.io.in.flatten.flatten.map(_.valid))) 501 XSPerfAccumulate(s"IntRFReadAfterArb", PopCount(intRFReadArbiter.io.out.map(_.valid))) 502 XSPerfAccumulate(s"VfRFReadBeforeArb", PopCount(vfRFReadArbiter.io.in.flatten.flatten.map(_.valid))) 503 XSPerfAccumulate(s"VfRFReadAfterArb", PopCount(vfRFReadArbiter.io.out.map(_.valid))) 504 XSPerfAccumulate(s"IntUopBeforeArb", PopCount(fromIntIQ.flatten.map(_.valid))) 505 XSPerfAccumulate(s"IntUopAfterArb", PopCount(fromIntIQ.flatten.map(_.fire))) 506 XSPerfAccumulate(s"MemUopBeforeArb", PopCount(fromMemIQ.flatten.map(_.valid))) 507 XSPerfAccumulate(s"MemUopAfterArb", PopCount(fromMemIQ.flatten.map(_.fire))) 508 XSPerfAccumulate(s"VfUopBeforeArb", PopCount(fromVfIQ.flatten.map(_.valid))) 509 XSPerfAccumulate(s"VfUopAfterArb", PopCount(fromVfIQ.flatten.map(_.fire))) 510 511 XSPerfHistogram(s"IntRFReadBeforeArb_hist", PopCount(intRFReadArbiter.io.in.flatten.flatten.map(_.valid)), true.B, 0, 16, 2) 512 XSPerfHistogram(s"IntRFReadAfterArb_hist", PopCount(intRFReadArbiter.io.out.map(_.valid)), true.B, 0, 16, 2) 513 XSPerfHistogram(s"VfRFReadBeforeArb_hist", PopCount(vfRFReadArbiter.io.in.flatten.flatten.map(_.valid)), true.B, 0, 16, 2) 514 XSPerfHistogram(s"VfRFReadAfterArb_hist", PopCount(vfRFReadArbiter.io.out.map(_.valid)), true.B, 0, 16, 2) 515 XSPerfHistogram(s"IntUopBeforeArb_hist", PopCount(fromIntIQ.flatten.map(_.valid)), true.B, 0, 8, 2) 516 XSPerfHistogram(s"IntUopAfterArb_hist", PopCount(fromIntIQ.flatten.map(_.fire)), true.B, 0, 8, 2) 517 XSPerfHistogram(s"MemUopBeforeArb_hist", PopCount(fromMemIQ.flatten.map(_.valid)), true.B, 0, 8, 2) 518 XSPerfHistogram(s"MemUopAfterArb_hist", PopCount(fromMemIQ.flatten.map(_.fire)), true.B, 0, 8, 2) 519 XSPerfHistogram(s"VfUopBeforeArb_hist", PopCount(fromVfIQ.flatten.map(_.valid)), true.B, 0, 8, 2) 520 XSPerfHistogram(s"VfUopAfterArb_hist", PopCount(fromVfIQ.flatten.map(_.fire)), true.B, 0, 8, 2) 521} 522 523class DataPathIO()(implicit p: Parameters, params: BackendParams) extends XSBundle { 524 // params 525 private val intSchdParams = params.schdParams(IntScheduler()) 526 private val vfSchdParams = params.schdParams(VfScheduler()) 527 private val memSchdParams = params.schdParams(MemScheduler()) 528 // bundles 529 val hartId = Input(UInt(8.W)) 530 531 val flush: ValidIO[Redirect] = Flipped(ValidIO(new Redirect)) 532 533 // Todo: check if this can be removed 534 val vconfigReadPort = new RfReadPort(XLEN, PhyRegIdxWidth) 535 536 val vldReadPort = new RfReadPort(VLEN, PhyRegIdxWidth) 537 538 val wbConfictRead = Input(MixedVec(params.allSchdParams.map(x => MixedVec(x.issueBlockParams.map(x => x.genWbConflictBundle()))))) 539 540 val fromIntIQ: MixedVec[MixedVec[DecoupledIO[IssueQueueIssueBundle]]] = 541 Flipped(MixedVec(intSchdParams.issueBlockParams.map(_.genIssueDecoupledBundle))) 542 543 val fromMemIQ: MixedVec[MixedVec[DecoupledIO[IssueQueueIssueBundle]]] = 544 Flipped(MixedVec(memSchdParams.issueBlockParams.map(_.genIssueDecoupledBundle))) 545 546 val fromVfIQ = Flipped(MixedVec(vfSchdParams.issueBlockParams.map(_.genIssueDecoupledBundle))) 547 548 val toIntIQ = MixedVec(intSchdParams.issueBlockParams.map(_.genOGRespBundle)) 549 550 val toMemIQ = MixedVec(memSchdParams.issueBlockParams.map(_.genOGRespBundle)) 551 552 val toVfIQ = MixedVec(vfSchdParams.issueBlockParams.map(_.genOGRespBundle)) 553 554 val og0CancelOH = Output(ExuOH(backendParams.numExu)) 555 556 val og1CancelOH = Output(ExuOH(backendParams.numExu)) 557 558 val ldCancel = Vec(backendParams.LduCnt + backendParams.HyuCnt, Flipped(new LoadCancelIO)) 559 560 val cancelToBusyTable = Vec(backendParams.numExu, ValidIO(new CancelSignal)) 561 562 val toIntExu: MixedVec[MixedVec[DecoupledIO[ExuInput]]] = intSchdParams.genExuInputBundle 563 564 val toFpExu: MixedVec[MixedVec[DecoupledIO[ExuInput]]] = MixedVec(vfSchdParams.genExuInputBundle) 565 566 val toMemExu: MixedVec[MixedVec[DecoupledIO[ExuInput]]] = memSchdParams.genExuInputBundle 567 568 val fromIntWb: MixedVec[RfWritePortWithConfig] = MixedVec(params.genIntWriteBackBundle) 569 570 val fromVfWb: MixedVec[RfWritePortWithConfig] = MixedVec(params.genVfWriteBackBundle) 571 572 val pcFromPcTargetMem = Flipped(new PcToDataPathIO(params)) 573 574 val debugIntRat = if (params.debugEn) Some(Input(Vec(32, UInt(intSchdParams.pregIdxWidth.W)))) else None 575 val debugFpRat = if (params.debugEn) Some(Input(Vec(32, UInt(vfSchdParams.pregIdxWidth.W)))) else None 576 val debugVecRat = if (params.debugEn) Some(Input(Vec(32, UInt(vfSchdParams.pregIdxWidth.W)))) else None 577 val debugVconfigRat = if (params.debugEn) Some(Input(UInt(vfSchdParams.pregIdxWidth.W))) else None 578 val debugVconfig = if (params.debugEn) Some(Output(UInt(XLEN.W))) else None 579} 580