xref: /XiangShan/src/main/scala/xiangshan/backend/rob/Rob.scala (revision db5ce9f7d76adb2836ced325a8da153cee09841b)
1/***************************************************************************************
2* Copyright (c) 2020-2021 Institute of Computing Technology, Chinese Academy of Sciences
3* Copyright (c) 2020-2021 Peng Cheng Laboratory
4*
5* XiangShan is licensed under Mulan PSL v2.
6* You can use this software according to the terms and conditions of the Mulan PSL v2.
7* You may obtain a copy of Mulan PSL v2 at:
8*          http://license.coscl.org.cn/MulanPSL2
9*
10* THIS SOFTWARE IS PROVIDED ON AN "AS IS" BASIS, WITHOUT WARRANTIES OF ANY KIND,
11* EITHER EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO NON-INFRINGEMENT,
12* MERCHANTABILITY OR FIT FOR A PARTICULAR PURPOSE.
13*
14* See the Mulan PSL v2 for more details.
15***************************************************************************************/
16
17package xiangshan.backend.rob
18
19import org.chipsalliance.cde.config.Parameters
20import chisel3._
21import chisel3.util._
22import difftest._
23import freechips.rocketchip.diplomacy.{LazyModule, LazyModuleImp}
24import utility._
25import utils._
26import xiangshan._
27import xiangshan.backend.BackendParams
28import xiangshan.backend.Bundles.{DynInst, ExceptionInfo, ExuOutput}
29import xiangshan.backend.fu.{FuConfig, FuType}
30import xiangshan.frontend.FtqPtr
31import xiangshan.mem.{LqPtr, LsqEnqIO, SqPtr}
32import xiangshan.backend.Bundles.{DynInst, ExceptionInfo, ExuOutput}
33import xiangshan.backend.ctrlblock.{DebugLSIO, DebugLsInfo, LsTopdownInfo}
34import xiangshan.backend.fu.vector.Bundles.VType
35import xiangshan.backend.rename.SnapshotGenerator
36import yunsuan.VfaluType
37import xiangshan.backend.rob.RobBundles._
38
39class Rob(params: BackendParams)(implicit p: Parameters) extends LazyModule with HasXSParameter {
40  override def shouldBeInlined: Boolean = false
41
42  lazy val module = new RobImp(this)(p, params)
43}
44
45class RobImp(override val wrapper: Rob)(implicit p: Parameters, params: BackendParams) extends LazyModuleImp(wrapper)
46  with HasXSParameter with HasCircularQueuePtrHelper with HasPerfEvents {
47
48  private val LduCnt = params.LduCnt
49  private val StaCnt = params.StaCnt
50  private val HyuCnt = params.HyuCnt
51
52  val io = IO(new Bundle() {
53    val hartId = Input(UInt(hartIdLen.W))
54    val redirect = Input(Valid(new Redirect))
55    val enq = new RobEnqIO
56    val flushOut = ValidIO(new Redirect)
57    val exception = ValidIO(new ExceptionInfo)
58    // exu + brq
59    val writeback: MixedVec[ValidIO[ExuOutput]] = Flipped(params.genWrite2CtrlBundles)
60    val exuWriteback: MixedVec[ValidIO[ExuOutput]] = Flipped(params.genWrite2CtrlBundles)
61    val writebackNums = Flipped(Vec(writeback.size - params.StdCnt, ValidIO(UInt(writeback.size.U.getWidth.W))))
62    val writebackNeedFlush = Input(Vec(params.allExuParams.filter(_.needExceptionGen).length, Bool()))
63    val commits = Output(new RobCommitIO)
64    val rabCommits = Output(new RabCommitIO)
65    val diffCommits = if (backendParams.debugEn) Some(Output(new DiffCommitIO)) else None
66    val isVsetFlushPipe = Output(Bool())
67    val lsq = new RobLsqIO
68    val robDeqPtr = Output(new RobPtr)
69    val csr = new RobCSRIO
70    val snpt = Input(new SnapshotPort)
71    val robFull = Output(Bool())
72    val headNotReady = Output(Bool())
73    val cpu_halt = Output(Bool())
74    val wfi_enable = Input(Bool())
75    val toDecode = new Bundle {
76      val isResumeVType = Output(Bool())
77      val walkVType = ValidIO(VType())
78      val commitVType = new Bundle {
79        val vtype = ValidIO(VType())
80        val hasVsetvl = Output(Bool())
81      }
82    }
83    val readGPAMemAddr = ValidIO(new Bundle {
84      val ftqPtr = new FtqPtr()
85      val ftqOffset = UInt(log2Up(PredictWidth).W)
86    })
87    val readGPAMemData = Input(UInt(GPAddrBits.W))
88    val vstartIsZero = Input(Bool())
89
90    val debug_ls = Flipped(new DebugLSIO)
91    val debugRobHead = Output(new DynInst)
92    val debugEnqLsq = Input(new LsqEnqIO)
93    val debugHeadLsIssue = Input(Bool())
94    val lsTopdownInfo = Vec(LduCnt + HyuCnt, Input(new LsTopdownInfo))
95    val debugTopDown = new Bundle {
96      val toCore = new RobCoreTopDownIO
97      val toDispatch = new RobDispatchTopDownIO
98      val robHeadLqIdx = Valid(new LqPtr)
99    }
100    val debugRolling = new RobDebugRollingIO
101  })
102
103  val exuWBs: Seq[ValidIO[ExuOutput]] = io.exuWriteback.filter(!_.bits.params.hasStdFu).toSeq
104  val stdWBs: Seq[ValidIO[ExuOutput]] = io.exuWriteback.filter(_.bits.params.hasStdFu).toSeq
105  val fflagsWBs = io.exuWriteback.filter(x => x.bits.fflags.nonEmpty).toSeq
106  val exceptionWBs = io.writeback.filter(x => x.bits.exceptionVec.nonEmpty).toSeq
107  val redirectWBs = io.writeback.filter(x => x.bits.redirect.nonEmpty).toSeq
108  val vxsatWBs = io.exuWriteback.filter(x => x.bits.vxsat.nonEmpty).toSeq
109
110  val numExuWbPorts = exuWBs.length
111  val numStdWbPorts = stdWBs.length
112  val bankAddrWidth = log2Up(CommitWidth)
113
114  println(s"Rob: size $RobSize, numExuWbPorts: $numExuWbPorts, numStdWbPorts: $numStdWbPorts, commitwidth: $CommitWidth")
115
116  val rab = Module(new RenameBuffer(RabSize))
117  val vtypeBuffer = Module(new VTypeBuffer(VTypeBufferSize))
118  val bankNum = 8
119  assert(RobSize % bankNum == 0, "RobSize % bankNum must be 0")
120  val robEntries = Reg(Vec(RobSize, new RobEntryBundle))
121  // pointers
122  // For enqueue ptr, we don't duplicate it since only enqueue needs it.
123  val enqPtrVec = Wire(Vec(RenameWidth, new RobPtr))
124  val deqPtrVec = Wire(Vec(CommitWidth, new RobPtr))
125  val walkPtrVec = Reg(Vec(CommitWidth, new RobPtr))
126  val walkPtrTrue = Reg(new RobPtr)
127  val lastWalkPtr = Reg(new RobPtr)
128  val allowEnqueue = RegInit(true.B)
129
130  /**
131   * Enqueue (from dispatch)
132   */
133  // special cases
134  val hasBlockBackward = RegInit(false.B)
135  val hasWaitForward = RegInit(false.B)
136  val doingSvinval = RegInit(false.B)
137  val enqPtr = enqPtrVec(0)
138  val deqPtr = deqPtrVec(0)
139  val walkPtr = walkPtrVec(0)
140  val allocatePtrVec = VecInit((0 until RenameWidth).map(i => enqPtrVec(PopCount(io.enq.req.take(i).map(req => req.valid && req.bits.firstUop)))))
141  io.enq.canAccept := allowEnqueue && !hasBlockBackward && rab.io.canEnq && vtypeBuffer.io.canEnq
142  io.enq.resp := allocatePtrVec
143  val canEnqueue = VecInit(io.enq.req.map(req => req.valid && req.bits.firstUop && io.enq.canAccept))
144  val timer = GTimer()
145  // robEntries enqueue
146  for (i <- 0 until RobSize) {
147    val enqOH = VecInit(canEnqueue.zip(allocatePtrVec.map(_.value === i.U)).map(x => x._1 && x._2))
148    assert(PopCount(enqOH) < 2.U, s"robEntries$i enqOH is not one hot")
149    when(enqOH.asUInt.orR && !io.redirect.valid){
150      connectEnq(robEntries(i), Mux1H(enqOH, io.enq.req.map(_.bits)))
151    }
152  }
153  // robBanks0 include robidx : 0 8 16 24 32 ...
154  val robBanks = VecInit((0 until bankNum).map(i => VecInit(robEntries.zipWithIndex.filter(_._2 % bankNum == i).map(_._1))))
155  // each Bank has 20 Entries, read addr is one hot
156  // all banks use same raddr
157  val eachBankEntrieNum = robBanks(0).length
158  val robBanksRaddrThisLine = RegInit(1.U(eachBankEntrieNum.W))
159  val robBanksRaddrNextLine = Wire(UInt(eachBankEntrieNum.W))
160  robBanksRaddrThisLine := robBanksRaddrNextLine
161  val bankNumWidth = log2Up(bankNum)
162  val deqPtrWidth = deqPtr.value.getWidth
163  val robIdxThisLine = VecInit((0 until bankNum).map(i => Cat(deqPtr.value(deqPtrWidth - 1, bankNumWidth), i.U(bankNumWidth.W))))
164  val robIdxNextLine = VecInit((0 until bankNum).map(i => Cat(deqPtr.value(deqPtrWidth - 1, bankNumWidth) + 1.U, i.U(bankNumWidth.W))))
165  // robBanks read
166  val robBanksRdataThisLine = VecInit(robBanks.map{ case bank =>
167    Mux1H(robBanksRaddrThisLine, bank)
168  })
169  val robBanksRdataNextLine = VecInit(robBanks.map{ case bank =>
170    val shiftBank = bank.drop(1) :+ bank(0)
171    Mux1H(robBanksRaddrThisLine, shiftBank)
172  })
173  val robBanksRdataThisLineUpdate = Wire(Vec(CommitWidth, new RobEntryBundle))
174  val robBanksRdataNextLineUpdate = Wire(Vec(CommitWidth, new RobEntryBundle))
175  val commitValidThisLine = Wire(Vec(CommitWidth, Bool()))
176  val hasCommitted = RegInit(VecInit(Seq.fill(CommitWidth)(false.B)))
177  val donotNeedWalk = RegInit(VecInit(Seq.fill(CommitWidth)(false.B)))
178  val allCommitted = Wire(Bool())
179
180  when(allCommitted) {
181    hasCommitted := 0.U.asTypeOf(hasCommitted)
182  }.elsewhen(io.commits.isCommit){
183    for (i <- 0 until CommitWidth){
184      hasCommitted(i) := commitValidThisLine(i) || hasCommitted(i)
185    }
186  }
187  allCommitted := io.commits.isCommit && commitValidThisLine.last
188  val walkPtrHead = Wire(new RobPtr)
189  val changeBankAddrToDeqPtr = (walkPtrVec.head + CommitWidth.U) > lastWalkPtr
190  when(io.redirect.valid){
191    robBanksRaddrNextLine := UIntToOH(walkPtrHead.value(walkPtrHead.value.getWidth-1, bankAddrWidth))
192  }.elsewhen(allCommitted || io.commits.isWalk && !changeBankAddrToDeqPtr){
193    robBanksRaddrNextLine := Mux(robBanksRaddrThisLine.head(1) === 1.U, 1.U, robBanksRaddrThisLine << 1)
194  }.elsewhen(io.commits.isWalk && changeBankAddrToDeqPtr){
195    robBanksRaddrNextLine := UIntToOH(deqPtr.value(deqPtr.value.getWidth-1, bankAddrWidth))
196  }.otherwise(
197    robBanksRaddrNextLine := robBanksRaddrThisLine
198  )
199  val robDeqGroup = Reg(Vec(bankNum, new RobCommitEntryBundle))
200  val commitInfo = VecInit((0 until CommitWidth).map(i => robDeqGroup(deqPtrVec(i).value(bankAddrWidth-1,0)))).toSeq
201  val walkInfo = VecInit((0 until CommitWidth).map(i => robDeqGroup(walkPtrVec(i).value(bankAddrWidth-1, 0)))).toSeq
202  for (i <- 0 until CommitWidth) {
203    connectCommitEntry(robDeqGroup(i), robBanksRdataThisLineUpdate(i))
204    when(allCommitted){
205      connectCommitEntry(robDeqGroup(i), robBanksRdataNextLineUpdate(i))
206    }
207  }
208  // data for debug
209  // Warn: debug_* prefix should not exist in generated verilog.
210  val debug_microOp = DebugMem(RobSize, new DynInst)
211  val debug_exuData = Reg(Vec(RobSize, UInt(XLEN.W))) //for debug
212  val debug_exuDebug = Reg(Vec(RobSize, new DebugBundle)) //for debug
213  val debug_lsInfo = RegInit(VecInit(Seq.fill(RobSize)(DebugLsInfo.init)))
214  val debug_lsTopdownInfo = RegInit(VecInit(Seq.fill(RobSize)(LsTopdownInfo.init)))
215  val debug_lqIdxValid = RegInit(VecInit.fill(RobSize)(false.B))
216  val debug_lsIssued = RegInit(VecInit.fill(RobSize)(false.B))
217
218  val isEmpty = enqPtr === deqPtr
219  val snptEnq = io.enq.canAccept && io.enq.req.map(x => x.valid && x.bits.snapshot).reduce(_ || _)
220  val snapshotPtrVec = Wire(Vec(CommitWidth, new RobPtr))
221  snapshotPtrVec(0) := io.enq.req(0).bits.robIdx
222  for (i <- 1 until CommitWidth) {
223    snapshotPtrVec(i) := snapshotPtrVec(0) + i.U
224  }
225  val snapshots = SnapshotGenerator(snapshotPtrVec, snptEnq, io.snpt.snptDeq, io.redirect.valid, io.snpt.flushVec)
226  val debug_lsIssue = WireDefault(debug_lsIssued)
227  debug_lsIssue(deqPtr.value) := io.debugHeadLsIssue
228
229  /**
230   * states of Rob
231   */
232  val s_idle :: s_walk :: Nil = Enum(2)
233  val state = RegInit(s_idle)
234
235  val tip_computing :: tip_stalled :: tip_walk :: tip_drained :: Nil = Enum(4)
236  val tip_state = WireInit(0.U(4.W))
237  when(!isEmpty) {  // One or more inst in ROB
238    when(state === s_walk || io.redirect.valid) {
239      tip_state := tip_walk
240    }.elsewhen(io.commits.isCommit && PopCount(io.commits.commitValid) =/= 0.U) {
241      tip_state := tip_computing
242    }.otherwise {
243      tip_state := tip_stalled
244    }
245  }.otherwise {
246    tip_state := tip_drained
247  }
248  class TipEntry()(implicit p: Parameters) extends XSBundle {
249    val state = UInt(4.W)
250    val commits = new RobCommitIO()      // info of commit
251    val redirect = Valid(new Redirect)   // info of redirect
252    val redirect_pc = UInt(VAddrBits.W)  // PC of the redirect uop
253    val debugLsInfo = new DebugLsInfo()
254  }
255  val tip_table = ChiselDB.createTable("Tip_" + p(XSCoreParamsKey).HartId.toString, new TipEntry)
256  val tip_data = Wire(new TipEntry())
257  tip_data.state := tip_state
258  tip_data.commits := io.commits
259  tip_data.redirect := io.redirect
260  tip_data.redirect_pc := debug_microOp(io.redirect.bits.robIdx.value).pc
261  tip_data.debugLsInfo := debug_lsInfo(io.commits.robIdx(0).value)
262  tip_table.log(tip_data, true.B, "", clock, reset)
263
264  val exceptionGen = Module(new ExceptionGen(params))
265  val exceptionDataRead = exceptionGen.io.state
266  val fflagsDataRead = Wire(Vec(CommitWidth, UInt(5.W)))
267  val vxsatDataRead = Wire(Vec(CommitWidth, Bool()))
268  io.robDeqPtr := deqPtr
269  io.debugRobHead := debug_microOp(deqPtr.value)
270
271  /**
272   * connection of [[rab]]
273   */
274  rab.io.redirect.valid := io.redirect.valid
275
276  rab.io.req.zip(io.enq.req).map { case (dest, src) =>
277    dest.bits := src.bits
278    dest.valid := src.valid && io.enq.canAccept
279  }
280
281  val walkDestSizeDeqGroup = RegInit(VecInit(Seq.fill(CommitWidth)(0.U(log2Up(MaxUopSize + 1).W))))
282  val realDestSizeSeq = VecInit(robDeqGroup.zip(hasCommitted).map{case (r, h) => Mux(h, 0.U, r.realDestSize)})
283  val walkDestSizeSeq = VecInit(robDeqGroup.zip(donotNeedWalk).map{case (r, d) => Mux(d, 0.U, r.realDestSize)})
284  val commitSizeSumSeq = VecInit((0 until CommitWidth).map(i => realDestSizeSeq.take(i + 1).reduce(_ +& _)))
285  val walkSizeSumSeq   = VecInit((0 until CommitWidth).map(i => walkDestSizeSeq.take(i + 1).reduce(_ +& _)))
286  val commitSizeSumCond = VecInit(commitValidThisLine.zip(hasCommitted).map{case (c,h) => (c || h) && io.commits.isCommit})
287  val walkSizeSumCond   = VecInit(io.commits.walkValid.zip(donotNeedWalk).map{case (w,d) => (w || d) && io.commits.isWalk})
288  val commitSizeSum = PriorityMuxDefault(commitSizeSumCond.reverse.zip(commitSizeSumSeq.reverse), 0.U)
289  val walkSizeSum   = PriorityMuxDefault(walkSizeSumCond.reverse.zip(walkSizeSumSeq.reverse), 0.U)
290
291  rab.io.fromRob.commitSize := commitSizeSum
292  rab.io.fromRob.walkSize := walkSizeSum
293  rab.io.snpt := io.snpt
294  rab.io.snpt.snptEnq := snptEnq
295
296  io.rabCommits := rab.io.commits
297  io.diffCommits.foreach(_ := rab.io.diffCommits.get)
298
299  /**
300   * connection of [[vtypeBuffer]]
301   */
302
303  vtypeBuffer.io.redirect.valid := io.redirect.valid
304
305  vtypeBuffer.io.req.zip(io.enq.req).map { case (sink, source) =>
306    sink.valid := source.valid && io.enq.canAccept
307    sink.bits := source.bits
308  }
309
310  private val commitIsVTypeVec = VecInit(io.commits.commitValid.zip(io.commits.info).map { case (valid, info) => io.commits.isCommit && valid && info.isVset })
311  private val walkIsVTypeVec = VecInit(io.commits.walkValid.zip(walkInfo).map { case (valid, info) => io.commits.isWalk && valid && info.isVset })
312  vtypeBuffer.io.fromRob.commitSize := PopCount(commitIsVTypeVec)
313  vtypeBuffer.io.fromRob.walkSize := PopCount(walkIsVTypeVec)
314  vtypeBuffer.io.snpt := io.snpt
315  vtypeBuffer.io.snpt.snptEnq := snptEnq
316  io.toDecode.isResumeVType := vtypeBuffer.io.toDecode.isResumeVType
317  io.toDecode.commitVType := vtypeBuffer.io.toDecode.commitVType
318  io.toDecode.walkVType := vtypeBuffer.io.toDecode.walkVType
319
320  // When blockBackward instruction leaves Rob (commit or walk), hasBlockBackward should be set to false.B
321  // To reduce registers usage, for hasBlockBackward cases, we allow enqueue after ROB is empty.
322  when(isEmpty) {
323    hasBlockBackward := false.B
324  }
325  // When any instruction commits, hasNoSpecExec should be set to false.B
326  when(io.commits.hasWalkInstr || io.commits.hasCommitInstr) {
327    hasWaitForward := false.B
328  }
329
330  // The wait-for-interrupt (WFI) instruction waits in the ROB until an interrupt might need servicing.
331  // io.csr.wfiEvent will be asserted if the WFI can resume execution, and we change the state to s_wfi_idle.
332  // It does not affect how interrupts are serviced. Note that WFI is noSpecExec and it does not trigger interrupts.
333  val hasWFI = RegInit(false.B)
334  io.cpu_halt := hasWFI
335  // WFI Timeout: 2^20 = 1M cycles
336  val wfi_cycles = RegInit(0.U(20.W))
337  when(hasWFI) {
338    wfi_cycles := wfi_cycles + 1.U
339  }.elsewhen(!hasWFI && RegNext(hasWFI)) {
340    wfi_cycles := 0.U
341  }
342  val wfi_timeout = wfi_cycles.andR
343  when(RegNext(RegNext(io.csr.wfiEvent)) || io.flushOut.valid || wfi_timeout) {
344    hasWFI := false.B
345  }
346
347  for (i <- 0 until RenameWidth) {
348    // we don't check whether io.redirect is valid here since redirect has higher priority
349    when(canEnqueue(i)) {
350      val enqUop = io.enq.req(i).bits
351      val enqIndex = allocatePtrVec(i).value
352      // store uop in data module and debug_microOp Vec
353      debug_microOp(enqIndex) := enqUop
354      debug_microOp(enqIndex).debugInfo.dispatchTime := timer
355      debug_microOp(enqIndex).debugInfo.enqRsTime := timer
356      debug_microOp(enqIndex).debugInfo.selectTime := timer
357      debug_microOp(enqIndex).debugInfo.issueTime := timer
358      debug_microOp(enqIndex).debugInfo.writebackTime := timer
359      debug_microOp(enqIndex).debugInfo.tlbFirstReqTime := timer
360      debug_microOp(enqIndex).debugInfo.tlbRespTime := timer
361      debug_lsInfo(enqIndex) := DebugLsInfo.init
362      debug_lsTopdownInfo(enqIndex) := LsTopdownInfo.init
363      debug_lqIdxValid(enqIndex) := false.B
364      debug_lsIssued(enqIndex) := false.B
365      when (enqUop.waitForward) {
366        hasWaitForward := true.B
367      }
368      val enqHasTriggerCanFire = io.enq.req(i).bits.trigger.getFrontendCanFire
369      val enqHasException = ExceptionNO.selectFrontend(enqUop.exceptionVec).asUInt.orR
370      // the begin instruction of Svinval enqs so mark doingSvinval as true to indicate this process
371      when(!enqHasTriggerCanFire && !enqHasException && enqUop.isSvinvalBegin(enqUop.flushPipe)) {
372        doingSvinval := true.B
373      }
374      // the end instruction of Svinval enqs so clear doingSvinval
375      when(!enqHasTriggerCanFire && !enqHasException && enqUop.isSvinvalEnd(enqUop.flushPipe)) {
376        doingSvinval := false.B
377      }
378      // when we are in the process of Svinval software code area , only Svinval.vma and end instruction of Svinval can appear
379      assert(!doingSvinval || (enqUop.isSvinval(enqUop.flushPipe) || enqUop.isSvinvalEnd(enqUop.flushPipe) || enqUop.isNotSvinval))
380      when(enqUop.isWFI && !enqHasException && !enqHasTriggerCanFire) {
381        hasWFI := true.B
382      }
383
384      robEntries(enqIndex).mmio := false.B
385      robEntries(enqIndex).vls := enqUop.vlsInstr
386    }
387  }
388
389  for (i <- 0 until RenameWidth) {
390    val enqUop = io.enq.req(i)
391    when(enqUop.valid && enqUop.bits.blockBackward && io.enq.canAccept) {
392      hasBlockBackward := true.B
393    }
394  }
395
396  val dispatchNum = Mux(io.enq.canAccept, PopCount(io.enq.req.map(req => req.valid && req.bits.firstUop)), 0.U)
397  io.enq.isEmpty := RegNext(isEmpty && !VecInit(io.enq.req.map(_.valid)).asUInt.orR)
398
399  when(!io.wfi_enable) {
400    hasWFI := false.B
401  }
402  // sel vsetvl's flush position
403  val vs_idle :: vs_waitVinstr :: vs_waitFlush :: Nil = Enum(3)
404  val vsetvlState = RegInit(vs_idle)
405
406  val firstVInstrFtqPtr = RegInit(0.U.asTypeOf(new FtqPtr))
407  val firstVInstrFtqOffset = RegInit(0.U.asTypeOf(UInt(log2Up(PredictWidth).W)))
408  val firstVInstrRobIdx = RegInit(0.U.asTypeOf(new RobPtr))
409
410  val enq0 = io.enq.req(0)
411  val enq0IsVset = enq0.bits.isVset && enq0.bits.lastUop && canEnqueue(0)
412  val enq0IsVsetFlush = enq0IsVset && enq0.bits.flushPipe
413  val enqIsVInstrVec = io.enq.req.zip(canEnqueue).map { case (req, fire) => FuType.isVArith(req.bits.fuType) && fire }
414  // for vs_idle
415  val firstVInstrIdle = PriorityMux(enqIsVInstrVec.zip(io.enq.req).drop(1) :+ (true.B, 0.U.asTypeOf(io.enq.req(0).cloneType)))
416  // for vs_waitVinstr
417  val enqIsVInstrOrVset = (enqIsVInstrVec(0) || enq0IsVset) +: enqIsVInstrVec.drop(1)
418  val firstVInstrWait = PriorityMux(enqIsVInstrOrVset, io.enq.req)
419  when(vsetvlState === vs_idle) {
420    firstVInstrFtqPtr := firstVInstrIdle.bits.ftqPtr
421    firstVInstrFtqOffset := firstVInstrIdle.bits.ftqOffset
422    firstVInstrRobIdx := firstVInstrIdle.bits.robIdx
423  }.elsewhen(vsetvlState === vs_waitVinstr) {
424    when(Cat(enqIsVInstrOrVset).orR) {
425      firstVInstrFtqPtr := firstVInstrWait.bits.ftqPtr
426      firstVInstrFtqOffset := firstVInstrWait.bits.ftqOffset
427      firstVInstrRobIdx := firstVInstrWait.bits.robIdx
428    }
429  }
430
431  val hasVInstrAfterI = Cat(enqIsVInstrVec(0)).orR
432  when(vsetvlState === vs_idle && !io.redirect.valid) {
433    when(enq0IsVsetFlush) {
434      vsetvlState := Mux(hasVInstrAfterI, vs_waitFlush, vs_waitVinstr)
435    }
436  }.elsewhen(vsetvlState === vs_waitVinstr) {
437    when(io.redirect.valid) {
438      vsetvlState := vs_idle
439    }.elsewhen(Cat(enqIsVInstrOrVset).orR) {
440      vsetvlState := vs_waitFlush
441    }
442  }.elsewhen(vsetvlState === vs_waitFlush) {
443    when(io.redirect.valid) {
444      vsetvlState := vs_idle
445    }
446  }
447
448  // lqEnq
449  io.debugEnqLsq.needAlloc.map(_(0)).zip(io.debugEnqLsq.req).foreach { case (alloc, req) =>
450    when(io.debugEnqLsq.canAccept && alloc && req.valid) {
451      debug_microOp(req.bits.robIdx.value).lqIdx := req.bits.lqIdx
452      debug_lqIdxValid(req.bits.robIdx.value) := true.B
453    }
454  }
455
456  // lsIssue
457  when(io.debugHeadLsIssue) {
458    debug_lsIssued(deqPtr.value) := true.B
459  }
460
461  /**
462   * Writeback (from execution units)
463   */
464  for (wb <- exuWBs) {
465    when(wb.valid) {
466      val wbIdx = wb.bits.robIdx.value
467      debug_exuData(wbIdx) := wb.bits.data(0)
468      debug_exuDebug(wbIdx) := wb.bits.debug
469      debug_microOp(wbIdx).debugInfo.enqRsTime := wb.bits.debugInfo.enqRsTime
470      debug_microOp(wbIdx).debugInfo.selectTime := wb.bits.debugInfo.selectTime
471      debug_microOp(wbIdx).debugInfo.issueTime := wb.bits.debugInfo.issueTime
472      debug_microOp(wbIdx).debugInfo.writebackTime := wb.bits.debugInfo.writebackTime
473
474      // debug for lqidx and sqidx
475      debug_microOp(wbIdx).lqIdx := wb.bits.lqIdx.getOrElse(0.U.asTypeOf(new LqPtr))
476      debug_microOp(wbIdx).sqIdx := wb.bits.sqIdx.getOrElse(0.U.asTypeOf(new SqPtr))
477
478      val debug_Uop = debug_microOp(wbIdx)
479      XSInfo(true.B,
480        p"writebacked pc 0x${Hexadecimal(debug_Uop.pc)} wen ${debug_Uop.rfWen} " +
481          p"data 0x${Hexadecimal(wb.bits.data(0))} ldst ${debug_Uop.ldest} pdst ${debug_Uop.pdest} " +
482          p"skip ${wb.bits.debug.isMMIO} robIdx: ${wb.bits.robIdx}\n"
483      )
484    }
485  }
486
487  val writebackNum = PopCount(exuWBs.map(_.valid))
488  XSInfo(writebackNum =/= 0.U, "writebacked %d insts\n", writebackNum)
489
490  for (i <- 0 until LoadPipelineWidth) {
491    when(RegNext(io.lsq.mmio(i))) {
492      robEntries(RegEnable(io.lsq.uop(i).robIdx, io.lsq.mmio(i)).value).mmio := true.B
493    }
494  }
495
496
497  /**
498   * RedirectOut: Interrupt and Exceptions
499   */
500  val deqDispatchData = robEntries(deqPtr.value)
501  val debug_deqUop = debug_microOp(deqPtr.value)
502
503  val deqPtrEntry = robDeqGroup(deqPtr.value(bankAddrWidth-1,0))
504  val deqPtrEntryValid = deqPtrEntry.commit_v
505  val intrBitSetReg = RegNext(io.csr.intrBitSet)
506  val intrEnable = intrBitSetReg && !hasWaitForward && deqPtrEntry.interrupt_safe
507  val deqNeedFlush = deqPtrEntry.needFlush && deqPtrEntry.commit_v && deqPtrEntry.commit_w
508  val deqHitExceptionGenState = exceptionDataRead.valid && exceptionDataRead.bits.robIdx === deqPtr
509  val deqNeedFlushAndHitExceptionGenState = deqNeedFlush && deqHitExceptionGenState
510  val exceptionGenStateIsException = exceptionDataRead.bits.exceptionVec.asUInt.orR || exceptionDataRead.bits.singleStep || exceptionDataRead.bits.trigger.canFire
511  val deqHasException = deqNeedFlushAndHitExceptionGenState && exceptionGenStateIsException
512  val deqHasFlushPipe = deqNeedFlushAndHitExceptionGenState && exceptionDataRead.bits.flushPipe
513  val deqHasReplayInst = deqNeedFlushAndHitExceptionGenState && exceptionDataRead.bits.replayInst
514
515  XSDebug(deqHasException && exceptionDataRead.bits.singleStep, "Debug Mode: Deq has singlestep exception\n")
516  XSDebug(deqHasException && exceptionDataRead.bits.trigger.getFrontendCanFire, "Debug Mode: Deq has frontend trigger exception\n")
517  XSDebug(deqHasException && exceptionDataRead.bits.trigger.getBackendCanFire, "Debug Mode: Deq has backend trigger exception\n")
518
519  val isFlushPipe = deqPtrEntry.commit_w && (deqHasFlushPipe || deqHasReplayInst)
520
521  val isVsetFlushPipe = deqPtrEntry.commit_w && deqHasFlushPipe && exceptionDataRead.bits.isVset
522  //  val needModifyFtqIdxOffset = isVsetFlushPipe && (vsetvlState === vs_waitFlush)
523  val needModifyFtqIdxOffset = false.B
524  io.isVsetFlushPipe := isVsetFlushPipe
525  // io.flushOut will trigger redirect at the next cycle.
526  // Block any redirect or commit at the next cycle.
527  val lastCycleFlush = RegNext(io.flushOut.valid)
528
529  io.flushOut.valid := (state === s_idle) && deqPtrEntryValid && (intrEnable || deqHasException || isFlushPipe) && !lastCycleFlush
530  io.flushOut.bits := DontCare
531  io.flushOut.bits.isRVC := deqDispatchData.isRVC
532  io.flushOut.bits.robIdx := Mux(needModifyFtqIdxOffset, firstVInstrRobIdx, deqPtr)
533  io.flushOut.bits.ftqIdx := Mux(needModifyFtqIdxOffset, firstVInstrFtqPtr, deqDispatchData.ftqIdx)
534  io.flushOut.bits.ftqOffset := Mux(needModifyFtqIdxOffset, firstVInstrFtqOffset, deqDispatchData.ftqOffset)
535  io.flushOut.bits.level := Mux(deqHasReplayInst || intrEnable || deqHasException || needModifyFtqIdxOffset, RedirectLevel.flush, RedirectLevel.flushAfter) // TODO use this to implement "exception next"
536  io.flushOut.bits.interrupt := true.B
537  XSPerfAccumulate("interrupt_num", io.flushOut.valid && intrEnable)
538  XSPerfAccumulate("exception_num", io.flushOut.valid && deqHasException)
539  XSPerfAccumulate("flush_pipe_num", io.flushOut.valid && isFlushPipe)
540  XSPerfAccumulate("replay_inst_num", io.flushOut.valid && isFlushPipe && deqHasReplayInst)
541
542  val exceptionHappen = (state === s_idle) && deqPtrEntryValid && (intrEnable || deqHasException) && !lastCycleFlush
543  io.exception.valid := RegNext(exceptionHappen)
544  io.exception.bits.pc := RegEnable(debug_deqUop.pc, exceptionHappen)
545  io.exception.bits.gpaddr := io.readGPAMemData
546  io.exception.bits.instr := RegEnable(debug_deqUop.instr, exceptionHappen)
547  io.exception.bits.commitType := RegEnable(deqDispatchData.commitType, exceptionHappen)
548  io.exception.bits.exceptionVec := RegEnable(exceptionDataRead.bits.exceptionVec, exceptionHappen)
549  io.exception.bits.singleStep := RegEnable(exceptionDataRead.bits.singleStep, exceptionHappen)
550  io.exception.bits.crossPageIPFFix := RegEnable(exceptionDataRead.bits.crossPageIPFFix, exceptionHappen)
551  io.exception.bits.isInterrupt := RegEnable(intrEnable, exceptionHappen)
552  io.exception.bits.isHls := RegEnable(deqDispatchData.isHls, exceptionHappen)
553  io.exception.bits.vls := RegEnable(robEntries(deqPtr.value).vls, exceptionHappen)
554  io.exception.bits.trigger := RegEnable(exceptionDataRead.bits.trigger, exceptionHappen)
555
556  // data will be one cycle after valid
557  io.readGPAMemAddr.valid := exceptionHappen
558  io.readGPAMemAddr.bits.ftqPtr := exceptionDataRead.bits.ftqPtr
559  io.readGPAMemAddr.bits.ftqOffset := exceptionDataRead.bits.ftqOffset
560
561  XSDebug(io.flushOut.valid,
562    p"generate redirect: pc 0x${Hexadecimal(io.exception.bits.pc)} intr $intrEnable " +
563      p"excp $deqHasException flushPipe $isFlushPipe " +
564      p"Trap_target 0x${Hexadecimal(io.csr.trapTarget)} exceptionVec ${Binary(exceptionDataRead.bits.exceptionVec.asUInt)}\n")
565
566
567  /**
568   * Commits (and walk)
569   * They share the same width.
570   */
571  // T redirect.valid, T+1 use walkPtrVec read robEntries, T+2 start walk, shouldWalkVec used in T+2
572  val shouldWalkVec = Wire(Vec(CommitWidth,Bool()))
573  val walkingPtrVec = RegNext(walkPtrVec)
574  when(io.redirect.valid){
575    shouldWalkVec := 0.U.asTypeOf(shouldWalkVec)
576  }.elsewhen(RegNext(io.redirect.valid)){
577    shouldWalkVec := 0.U.asTypeOf(shouldWalkVec)
578  }.elsewhen(state === s_walk){
579    shouldWalkVec := VecInit(walkingPtrVec.map(_ <= lastWalkPtr).zip(donotNeedWalk).map(x => x._1 && !x._2))
580  }.otherwise(
581    shouldWalkVec := 0.U.asTypeOf(shouldWalkVec)
582  )
583  val walkFinished = walkPtrTrue > lastWalkPtr
584  rab.io.fromRob.walkEnd := state === s_walk && walkFinished
585  vtypeBuffer.io.fromRob.walkEnd := state === s_walk && walkFinished
586
587  require(RenameWidth <= CommitWidth)
588
589  // wiring to csr
590  val (wflags, dirtyFs) = (0 until CommitWidth).map(i => {
591    val v = io.commits.commitValid(i)
592    val info = io.commits.info(i)
593    (v & info.wflags, v & info.dirtyFs)
594  }).unzip
595  val fflags = Wire(Valid(UInt(5.W)))
596  fflags.valid := io.commits.isCommit && VecInit(wflags).asUInt.orR
597  fflags.bits := wflags.zip(fflagsDataRead).map({
598    case (w, f) => Mux(w, f, 0.U)
599  }).reduce(_ | _)
600  val dirtyVs = (0 until CommitWidth).map(i => {
601    val v = io.commits.commitValid(i)
602    val info = io.commits.info(i)
603    v & info.dirtyVs
604  })
605  val dirty_fs = io.commits.isCommit && VecInit(dirtyFs).asUInt.orR
606  val dirty_vs = io.commits.isCommit && VecInit(dirtyVs).asUInt.orR
607
608  val resetVstart = dirty_vs && !io.vstartIsZero
609
610  io.csr.vstart.valid := RegNext(Mux(exceptionHappen, exceptionDataRead.bits.vstartEn, resetVstart))
611  io.csr.vstart.bits := RegNext(Mux(exceptionHappen, exceptionDataRead.bits.vstart, 0.U))
612
613  val vxsat = Wire(Valid(Bool()))
614  vxsat.valid := io.commits.isCommit && vxsat.bits
615  vxsat.bits := io.commits.commitValid.zip(vxsatDataRead).map {
616    case (valid, vxsat) => valid & vxsat
617  }.reduce(_ | _)
618
619  // when mispredict branches writeback, stop commit in the next 2 cycles
620  // TODO: don't check all exu write back
621  val misPredWb = Cat(VecInit(redirectWBs.map(wb =>
622    wb.bits.redirect.get.bits.cfiUpdate.isMisPred && wb.bits.redirect.get.valid && wb.valid
623  ).toSeq)).orR
624  val misPredBlockCounter = Reg(UInt(3.W))
625  misPredBlockCounter := Mux(misPredWb,
626    "b111".U,
627    misPredBlockCounter >> 1.U
628  )
629  val misPredBlock = misPredBlockCounter(0)
630  val deqFlushBlockCounter = Reg(UInt(3.W))
631  val deqFlushBlock = deqFlushBlockCounter(0)
632  val deqHasFlushed = RegInit(false.B)
633  val deqHasCommitted = io.commits.isCommit && io.commits.commitValid(0)
634  val deqHitRedirectReg = RegNext(io.redirect.valid && io.redirect.bits.robIdx === deqPtr)
635  when(deqNeedFlush && deqHitRedirectReg){
636    deqFlushBlockCounter := "b111".U
637  }.otherwise{
638    deqFlushBlockCounter := deqFlushBlockCounter >> 1.U
639  }
640  when(deqHasCommitted){
641    deqHasFlushed := false.B
642  }.elsewhen(deqNeedFlush && io.flushOut.valid && !io.flushOut.bits.flushItself()){
643    deqHasFlushed := true.B
644  }
645  val blockCommit = misPredBlock || lastCycleFlush || hasWFI || io.redirect.valid || (deqNeedFlush && !deqHasFlushed) || deqFlushBlock
646
647  io.commits.isWalk := state === s_walk
648  io.commits.isCommit := state === s_idle && !blockCommit
649
650  val walk_v = VecInit(walkingPtrVec.map(ptr => robEntries(ptr.value).valid))
651  val commit_vDeqGroup = VecInit(robDeqGroup.map(_.commit_v))
652  val commit_wDeqGroup = VecInit(robDeqGroup.map(_.commit_w))
653  val realCommitLast = deqPtrVec(0).lineHeadPtr + Fill(bankAddrWidth, 1.U)
654  val commit_block = VecInit((0 until CommitWidth).map(i => !commit_wDeqGroup(i) && !hasCommitted(i)))
655  val allowOnlyOneCommit = VecInit(robDeqGroup.map(x => x.commit_v && x.needFlush)).asUInt.orR || intrBitSetReg
656  // for instructions that may block others, we don't allow them to commit
657  io.commits.commitValid := PriorityMux(commitValidThisLine, (0 until CommitWidth).map(i => (commitValidThisLine.asUInt >> i).asUInt.asTypeOf(io.commits.commitValid)))
658
659  for (i <- 0 until CommitWidth) {
660    // defaults: state === s_idle and instructions commit
661    // when intrBitSetReg, allow only one instruction to commit at each clock cycle
662    val isBlocked = intrEnable || (deqNeedFlush && !deqHasFlushed && !deqHasFlushPipe)
663    val isBlockedByOlder = if (i != 0) commit_block.asUInt(i, 0).orR || allowOnlyOneCommit && !hasCommitted.asUInt(i - 1, 0).andR else false.B
664    commitValidThisLine(i) := commit_vDeqGroup(i) && commit_wDeqGroup(i) && !isBlocked && !isBlockedByOlder && !hasCommitted(i)
665    io.commits.info(i) := commitInfo(i)
666    io.commits.robIdx(i) := deqPtrVec(i)
667
668    io.commits.walkValid(i) := shouldWalkVec(i)
669    when(state === s_walk) {
670      when(io.commits.isWalk && state === s_walk && shouldWalkVec(i)) {
671        XSError(!walk_v(i), s"The walking entry($i) should be valid\n")
672      }
673    }
674
675    XSInfo(io.commits.isCommit && io.commits.commitValid(i),
676      "retired pc %x wen %d ldest %d pdest %x data %x fflags: %b vxsat: %b\n",
677      debug_microOp(deqPtrVec(i).value).pc,
678      io.commits.info(i).rfWen,
679      io.commits.info(i).debug_ldest.getOrElse(0.U),
680      io.commits.info(i).debug_pdest.getOrElse(0.U),
681      debug_exuData(deqPtrVec(i).value),
682      fflagsDataRead(i),
683      vxsatDataRead(i)
684    )
685    XSInfo(state === s_walk && io.commits.walkValid(i), "walked pc %x wen %d ldst %d data %x\n",
686      debug_microOp(walkPtrVec(i).value).pc,
687      io.commits.info(i).rfWen,
688      io.commits.info(i).debug_ldest.getOrElse(0.U),
689      debug_exuData(walkPtrVec(i).value)
690    )
691  }
692
693  // sync fflags/dirty_fs/vxsat to csr
694  io.csr.fflags   := RegNextWithEnable(fflags)
695  io.csr.dirty_fs := GatedValidRegNext(dirty_fs)
696  io.csr.dirty_vs := GatedValidRegNext(dirty_vs)
697  io.csr.vxsat    := RegNextWithEnable(vxsat)
698
699  // commit load/store to lsq
700  val ldCommitVec = VecInit((0 until CommitWidth).map(i => io.commits.commitValid(i) && io.commits.info(i).commitType === CommitType.LOAD))
701  // TODO: Check if meet the require that only set scommit when commit scala store uop
702  val stCommitVec = VecInit((0 until CommitWidth).map(i => io.commits.commitValid(i) && io.commits.info(i).commitType === CommitType.STORE && !robEntries(deqPtrVec(i).value).vls ))
703  val deqPtrVec_next = Wire(Vec(CommitWidth, Output(new RobPtr)))
704  io.lsq.lcommit := RegNext(Mux(io.commits.isCommit, PopCount(ldCommitVec), 0.U))
705  io.lsq.scommit := RegNext(Mux(io.commits.isCommit, PopCount(stCommitVec), 0.U))
706  // indicate a pending load or store
707  io.lsq.pendingld := RegNext(io.commits.isCommit && io.commits.info(0).commitType === CommitType.LOAD && robEntries(deqPtr.value).valid && robEntries(deqPtr.value).mmio)
708  // TODO: Check if need deassert pendingst when it is vst
709  io.lsq.pendingst := RegNext(io.commits.isCommit && io.commits.info(0).commitType === CommitType.STORE && robEntries(deqPtr.value).valid)
710  // TODO: Check if set correctly when vector store is at the head of ROB
711  io.lsq.pendingVst := RegNext(io.commits.isCommit && io.commits.info(0).commitType === CommitType.STORE && robEntries(deqPtr.value).valid && robEntries(deqPtr.value).vls)
712  io.lsq.commit := RegNext(io.commits.isCommit && io.commits.commitValid(0))
713  io.lsq.pendingPtr := RegNext(deqPtr)
714  io.lsq.pendingPtrNext := RegNext(deqPtrVec_next.head)
715
716  /**
717   * state changes
718   * (1) redirect: switch to s_walk
719   * (2) walk: when walking comes to the end, switch to s_idle
720   */
721  val state_next = Mux(
722    io.redirect.valid || RegNext(io.redirect.valid), s_walk,
723    Mux(
724      state === s_walk && walkFinished && rab.io.status.walkEnd && vtypeBuffer.io.status.walkEnd, s_idle,
725      state
726    )
727  )
728  XSPerfAccumulate("s_idle_to_idle", state === s_idle && state_next === s_idle)
729  XSPerfAccumulate("s_idle_to_walk", state === s_idle && state_next === s_walk)
730  XSPerfAccumulate("s_walk_to_idle", state === s_walk && state_next === s_idle)
731  XSPerfAccumulate("s_walk_to_walk", state === s_walk && state_next === s_walk)
732  state := state_next
733
734  /**
735   * pointers and counters
736   */
737  val deqPtrGenModule = Module(new NewRobDeqPtrWrapper)
738  deqPtrGenModule.io.state := state
739  deqPtrGenModule.io.deq_v := commit_vDeqGroup
740  deqPtrGenModule.io.deq_w := commit_wDeqGroup
741  deqPtrGenModule.io.exception_state := exceptionDataRead
742  deqPtrGenModule.io.intrBitSetReg := intrBitSetReg
743  deqPtrGenModule.io.hasNoSpecExec := hasWaitForward
744  deqPtrGenModule.io.allowOnlyOneCommit := allowOnlyOneCommit
745  deqPtrGenModule.io.interrupt_safe := robDeqGroup(deqPtr.value(bankAddrWidth-1,0)).interrupt_safe
746  deqPtrGenModule.io.blockCommit := blockCommit
747  deqPtrGenModule.io.hasCommitted := hasCommitted
748  deqPtrGenModule.io.allCommitted := allCommitted
749  deqPtrVec := deqPtrGenModule.io.out
750  deqPtrVec_next := deqPtrGenModule.io.next_out
751
752  val enqPtrGenModule = Module(new RobEnqPtrWrapper)
753  enqPtrGenModule.io.redirect := io.redirect
754  enqPtrGenModule.io.allowEnqueue := allowEnqueue && rab.io.canEnq
755  enqPtrGenModule.io.hasBlockBackward := hasBlockBackward
756  enqPtrGenModule.io.enq := VecInit(io.enq.req.map(req => req.valid && req.bits.firstUop))
757  enqPtrVec := enqPtrGenModule.io.out
758
759  // next walkPtrVec:
760  // (1) redirect occurs: update according to state
761  // (2) walk: move forwards
762  val deqPtrReadBank = deqPtrVec_next(0).lineHeadPtr
763  val deqPtrVecForWalk = VecInit((0 until CommitWidth).map(i => deqPtrReadBank + i.U))
764  val snapPtrReadBank = snapshots(io.snpt.snptSelect)(0).lineHeadPtr
765  val snapPtrVecForWalk = VecInit((0 until CommitWidth).map(i => snapPtrReadBank + i.U))
766  val walkPtrVec_next: Vec[RobPtr] = Mux(io.redirect.valid,
767    Mux(io.snpt.useSnpt, snapPtrVecForWalk, deqPtrVecForWalk),
768    Mux((state === s_walk) && !walkFinished, VecInit(walkPtrVec.map(_ + CommitWidth.U)), walkPtrVec)
769  )
770  val walkPtrTrue_next: RobPtr = Mux(io.redirect.valid,
771    Mux(io.snpt.useSnpt, snapshots(io.snpt.snptSelect)(0), deqPtrVec_next(0)),
772    Mux((state === s_walk) && !walkFinished, walkPtrVec_next.head, walkPtrTrue)
773  )
774  walkPtrHead := walkPtrVec_next.head
775  walkPtrVec := walkPtrVec_next
776  walkPtrTrue := walkPtrTrue_next
777  // T io.redirect.valid, T+1 walkPtrLowBits update, T+2 donotNeedWalk update
778  val walkPtrLowBits = Reg(UInt(bankAddrWidth.W))
779  when(io.redirect.valid){
780    walkPtrLowBits := Mux(io.snpt.useSnpt, snapshots(io.snpt.snptSelect)(0).value(bankAddrWidth-1, 0), deqPtrVec_next(0).value(bankAddrWidth-1, 0))
781  }
782  when(io.redirect.valid) {
783    donotNeedWalk := Fill(donotNeedWalk.length, true.B).asTypeOf(donotNeedWalk)
784  }.elsewhen(RegNext(io.redirect.valid)){
785    donotNeedWalk := (0 until CommitWidth).map(i => (i.U < walkPtrLowBits))
786  }.otherwise{
787    donotNeedWalk := 0.U.asTypeOf(donotNeedWalk)
788  }
789  walkDestSizeDeqGroup.zip(walkPtrVec_next).map {
790    case (reg, ptrNext) => reg := robEntries(deqPtr.value).realDestSize
791  }
792  val numValidEntries = distanceBetween(enqPtr, deqPtr)
793  val commitCnt = PopCount(io.commits.commitValid)
794
795  allowEnqueue := numValidEntries + dispatchNum <= (RobSize - CommitWidth).U
796
797  val redirectWalkDistance = distanceBetween(io.redirect.bits.robIdx, deqPtrVec_next(0))
798  when(io.redirect.valid) {
799    lastWalkPtr := Mux(io.redirect.bits.flushItself(), io.redirect.bits.robIdx - 1.U, io.redirect.bits.robIdx)
800  }
801
802
803  /**
804   * States
805   * We put all the stage bits changes here.
806   *
807   * All events: (1) enqueue (dispatch); (2) writeback; (3) cancel; (4) dequeue (commit);
808   * All states: (1) valid; (2) writebacked; (3) flagBkup
809   */
810
811  val deqPtrGroup = Wire(Vec(2 * CommitWidth, new RobPtr))
812  deqPtrGroup.zipWithIndex.map { case (deq, i) => deq := deqPtrVec(0) + i.U }
813  val commitReadAddr = Mux(state === s_idle, VecInit(deqPtrVec.map(_.value)), VecInit(walkPtrVec.map(_.value)))
814
815  val redirectValidReg = RegNext(io.redirect.valid)
816  val redirectBegin = Reg(UInt(log2Up(RobSize).W))
817  val redirectEnd = Reg(UInt(log2Up(RobSize).W))
818  when(io.redirect.valid){
819    redirectBegin := Mux(io.redirect.bits.flushItself(), io.redirect.bits.robIdx.value - 1.U, io.redirect.bits.robIdx.value)
820    redirectEnd := enqPtr.value
821  }
822
823  // update robEntries valid
824  for (i <- 0 until RobSize) {
825    val enqOH = VecInit(canEnqueue.zip(allocatePtrVec.map(_.value === i.U)).map(x => x._1 && x._2))
826    val commitCond = io.commits.isCommit && io.commits.commitValid.zip(deqPtrVec.map(_.value === i.U)).map(x => x._1 && x._2).reduce(_ || _)
827    assert(PopCount(enqOH) < 2.U, s"robEntries$i enqOH is not one hot")
828    val needFlush = redirectValidReg && Mux(
829      redirectEnd > redirectBegin,
830      (i.U > redirectBegin) && (i.U < redirectEnd),
831      (i.U > redirectBegin) || (i.U < redirectEnd)
832    )
833    when(reset.asBool) {
834      robEntries(i).valid := false.B
835    }.elsewhen(commitCond) {
836      robEntries(i).valid := false.B
837    }.elsewhen(enqOH.asUInt.orR && !io.redirect.valid) {
838      robEntries(i).valid := true.B
839    }.elsewhen(needFlush){
840      robEntries(i).valid := false.B
841    }
842  }
843
844  // debug_inst update
845  for (i <- 0 until (LduCnt + StaCnt)) {
846    debug_lsInfo(io.debug_ls.debugLsInfo(i).s1_robIdx).s1SignalEnable(io.debug_ls.debugLsInfo(i))
847    debug_lsInfo(io.debug_ls.debugLsInfo(i).s2_robIdx).s2SignalEnable(io.debug_ls.debugLsInfo(i))
848    debug_lsInfo(io.debug_ls.debugLsInfo(i).s3_robIdx).s3SignalEnable(io.debug_ls.debugLsInfo(i))
849  }
850  for (i <- 0 until LduCnt) {
851    debug_lsTopdownInfo(io.lsTopdownInfo(i).s1.robIdx).s1SignalEnable(io.lsTopdownInfo(i))
852    debug_lsTopdownInfo(io.lsTopdownInfo(i).s2.robIdx).s2SignalEnable(io.lsTopdownInfo(i))
853  }
854
855  // status field: writebacked
856  // enqueue logic set 6 writebacked to false
857  for (i <- 0 until RenameWidth) {
858    when(canEnqueue(i)) {
859      val enqHasException = ExceptionNO.selectFrontend(io.enq.req(i).bits.exceptionVec).asUInt.orR
860      val enqHasTriggerCanFire = io.enq.req(i).bits.trigger.getFrontendCanFire
861      val enqIsWritebacked = io.enq.req(i).bits.eliminatedMove
862      val isStu = FuType.isStore(io.enq.req(i).bits.fuType)
863      robEntries(allocatePtrVec(i).value).commitTrigger := enqIsWritebacked && !enqHasException && !enqHasTriggerCanFire && !isStu
864    }
865  }
866  when(exceptionGen.io.out.valid) {
867    val wbIdx = exceptionGen.io.out.bits.robIdx.value
868    robEntries(wbIdx).commitTrigger := true.B
869  }
870
871  // writeback logic set numWbPorts writebacked to true
872  val blockWbSeq = Wire(Vec(exuWBs.length, Bool()))
873  blockWbSeq.map(_ := false.B)
874  for ((wb, blockWb) <- exuWBs.zip(blockWbSeq)) {
875    when(wb.valid) {
876      val wbIdx = wb.bits.robIdx.value
877      val wbHasException = wb.bits.exceptionVec.getOrElse(0.U).asUInt.orR
878      val wbHasTriggerCanFire = wb.bits.trigger.getOrElse(0.U).asTypeOf(io.enq.req(0).bits.trigger).getBackendCanFire //Todo: wb.bits.trigger.getHitBackend
879      val wbHasFlushPipe = wb.bits.flushPipe.getOrElse(false.B)
880      val wbHasReplayInst = wb.bits.replay.getOrElse(false.B) //Todo: && wb.bits.replayInst
881      blockWb := wbHasException || wbHasFlushPipe || wbHasReplayInst || wbHasTriggerCanFire
882      robEntries(wbIdx).commitTrigger := !blockWb
883    }
884  }
885
886  // if the first uop of an instruction is valid , write writebackedCounter
887  val uopEnqValidSeq = io.enq.req.map(req => io.enq.canAccept && req.valid)
888  val instEnqValidSeq = io.enq.req.map(req => io.enq.canAccept && req.valid && req.bits.firstUop)
889  val enqNeedWriteRFSeq = io.enq.req.map(_.bits.needWriteRf)
890  val enqRobIdxSeq = io.enq.req.map(req => req.bits.robIdx.value)
891  val enqUopNumVec = VecInit(io.enq.req.map(req => req.bits.numUops))
892  val enqWBNumVec = VecInit(io.enq.req.map(req => req.bits.numWB))
893  val enqEliminatedMoveVec = VecInit(io.enq.req.map(req => req.bits.eliminatedMove))
894
895  private val enqWriteStdVec: Vec[Bool] = VecInit(io.enq.req.map {
896    req => FuType.isAMO(req.bits.fuType) || FuType.isStore(req.bits.fuType)
897  })
898  val fflags_wb = fflagsWBs
899  val vxsat_wb = vxsatWBs
900  for (i <- 0 until RobSize) {
901
902    val robIdxMatchSeq = io.enq.req.map(_.bits.robIdx.value === i.U)
903    val uopCanEnqSeq = uopEnqValidSeq.zip(robIdxMatchSeq).map { case (valid, isMatch) => valid && isMatch }
904    val instCanEnqSeq = instEnqValidSeq.zip(robIdxMatchSeq).map { case (valid, isMatch) => valid && isMatch }
905    val instCanEnqFlag = Cat(instCanEnqSeq).orR
906    val realDestEnqNum = PopCount(enqNeedWriteRFSeq.zip(uopCanEnqSeq).map { case (writeFlag, valid) => writeFlag && valid })
907    when(!robEntries(i).valid && instCanEnqFlag){
908      robEntries(i).realDestSize := realDestEnqNum
909    }.elsewhen(robEntries(i).valid && Cat(uopCanEnqSeq).orR){
910      robEntries(i).realDestSize := robEntries(i).realDestSize + realDestEnqNum
911    }
912    val enqUopNum = PriorityMux(instCanEnqSeq, enqUopNumVec)
913    val enqWBNum = PriorityMux(instCanEnqSeq, enqWBNumVec)
914    val enqEliminatedMove = PriorityMux(instCanEnqSeq, enqEliminatedMoveVec)
915    val enqWriteStd = PriorityMux(instCanEnqSeq, enqWriteStdVec)
916
917    val canWbSeq = exuWBs.map(writeback => writeback.valid && writeback.bits.robIdx.value === i.U)
918    val canWbNoBlockSeq = canWbSeq.zip(blockWbSeq).map { case (canWb, blockWb) => canWb && !blockWb }
919    val canStdWbSeq = VecInit(stdWBs.map(writeback => writeback.valid && writeback.bits.robIdx.value === i.U))
920    val wbCnt = Mux1H(canWbSeq, io.writebackNums.map(_.bits))
921
922    val canWbExceptionSeq = exceptionWBs.map(writeback => writeback.valid && writeback.bits.robIdx.value === i.U)
923    val needFlush = robEntries(i).needFlush
924    val needFlushWriteBack = Wire(Bool())
925    needFlushWriteBack := Mux1H(canWbExceptionSeq, io.writebackNeedFlush)
926    when(robEntries(i).valid){
927      needFlush := needFlush || needFlushWriteBack
928    }
929
930    when(robEntries(i).valid && (needFlush || needFlushWriteBack)) {
931      // exception flush
932      robEntries(i).uopNum := robEntries(i).uopNum - wbCnt
933      robEntries(i).stdWritebacked := true.B
934    }.elsewhen(!robEntries(i).valid && instCanEnqFlag) {
935      // enq set num of uops
936      robEntries(i).uopNum := enqWBNum
937      robEntries(i).stdWritebacked := Mux(enqWriteStd, false.B, true.B)
938    }.elsewhen(robEntries(i).valid) {
939      // update by writing back
940      robEntries(i).uopNum := robEntries(i).uopNum - wbCnt
941      assert(!(robEntries(i).uopNum - wbCnt > robEntries(i).uopNum), s"robEntries $i uopNum is overflow!")
942      when(canStdWbSeq.asUInt.orR) {
943        robEntries(i).stdWritebacked := true.B
944      }
945    }
946
947    val fflagsCanWbSeq = fflags_wb.map(writeback => writeback.valid && writeback.bits.robIdx.value === i.U && writeback.bits.wflags.getOrElse(false.B))
948    val fflagsRes = fflagsCanWbSeq.zip(fflags_wb).map { case (canWb, wb) => Mux(canWb, wb.bits.fflags.get, 0.U) }.fold(false.B)(_ | _)
949    robEntries(i).fflags := Mux(!robEntries(i).valid && instCanEnqFlag, 0.U, robEntries(i).fflags | fflagsRes)
950
951    val vxsatCanWbSeq = vxsat_wb.map(writeback => writeback.valid && writeback.bits.robIdx.value === i.U)
952    val vxsatRes = vxsatCanWbSeq.zip(vxsat_wb).map { case (canWb, wb) => Mux(canWb, wb.bits.vxsat.get, 0.U) }.fold(false.B)(_ | _)
953    robEntries(i).vxsat := Mux(!robEntries(i).valid && instCanEnqFlag, 0.U, robEntries(i).vxsat | vxsatRes)
954  }
955
956  // begin update robBanksRdata
957  val robBanksRdata = VecInit(robBanksRdataThisLine ++ robBanksRdataNextLine)
958  val needUpdate = Wire(Vec(2 * CommitWidth, new RobEntryBundle))
959  needUpdate := VecInit(robBanksRdataThisLine ++ robBanksRdataNextLine)
960  val needUpdateRobIdx = robIdxThisLine ++ robIdxNextLine
961  for (i <- 0 until 2 * CommitWidth) {
962    val robIdxMatchSeq = io.enq.req.map(_.bits.robIdx.value === needUpdateRobIdx(i))
963    val uopCanEnqSeq = uopEnqValidSeq.zip(robIdxMatchSeq).map { case (valid, isMatch) => valid && isMatch }
964    val instCanEnqSeq = instEnqValidSeq.zip(robIdxMatchSeq).map { case (valid, isMatch) => valid && isMatch }
965    val instCanEnqFlag = Cat(instCanEnqSeq).orR
966    val realDestEnqNum = PopCount(enqNeedWriteRFSeq.zip(uopCanEnqSeq).map { case (writeFlag, valid) => writeFlag && valid })
967    when(!needUpdate(i).valid && instCanEnqFlag) {
968      needUpdate(i).realDestSize := realDestEnqNum
969    }.elsewhen(needUpdate(i).valid && instCanEnqFlag) {
970      needUpdate(i).realDestSize := robBanksRdata(i).realDestSize + realDestEnqNum
971    }
972    val enqUopNum = PriorityMux(instCanEnqSeq, enqUopNumVec)
973    val enqWBNum = PriorityMux(instCanEnqSeq, enqWBNumVec)
974    val enqEliminatedMove = PriorityMux(instCanEnqSeq, enqEliminatedMoveVec)
975    val enqWriteStd = PriorityMux(instCanEnqSeq, enqWriteStdVec)
976
977    val canWbSeq = exuWBs.map(writeback => writeback.valid && writeback.bits.robIdx.value === needUpdateRobIdx(i))
978    val canWbNoBlockSeq = canWbSeq.zip(blockWbSeq).map { case (canWb, blockWb) => canWb && !blockWb }
979    val canStdWbSeq = VecInit(stdWBs.map(writeback => writeback.valid && writeback.bits.robIdx.value === needUpdateRobIdx(i)))
980    val wbCnt = Mux1H(canWbSeq, io.writebackNums.map(_.bits))
981
982    val canWbExceptionSeq = exceptionWBs.map(writeback => writeback.valid && (writeback.bits.robIdx.value === needUpdateRobIdx(i)))
983    val needFlush = robBanksRdata(i).needFlush
984    val needFlushWriteBack = Wire(Bool())
985    needFlushWriteBack := Mux1H(canWbExceptionSeq, io.writebackNeedFlush)
986    when(needUpdate(i).valid) {
987      needUpdate(i).needFlush := needFlush || needFlushWriteBack
988    }
989
990    when(needUpdate(i).valid && (needFlush || needFlushWriteBack)) {
991      // exception flush
992      needUpdate(i).uopNum := robBanksRdata(i).uopNum - wbCnt
993      needUpdate(i).stdWritebacked := true.B
994    }.elsewhen(!needUpdate(i).valid && instCanEnqFlag) {
995      // enq set num of uops
996      needUpdate(i).uopNum := enqWBNum
997      needUpdate(i).stdWritebacked := Mux(enqWriteStd, false.B, true.B)
998    }.elsewhen(needUpdate(i).valid) {
999      // update by writing back
1000      needUpdate(i).uopNum := robBanksRdata(i).uopNum - wbCnt
1001      when(canStdWbSeq.asUInt.orR) {
1002        needUpdate(i).stdWritebacked := true.B
1003      }
1004    }
1005
1006    val fflagsCanWbSeq = fflags_wb.map(writeback => writeback.valid && writeback.bits.robIdx.value === needUpdateRobIdx(i) && writeback.bits.wflags.getOrElse(false.B))
1007    val fflagsRes = fflagsCanWbSeq.zip(fflags_wb).map { case (canWb, wb) => Mux(canWb, wb.bits.fflags.get, 0.U) }.fold(false.B)(_ | _)
1008    needUpdate(i).fflags := Mux(!robBanksRdata(i).valid && instCanEnqFlag, 0.U, robBanksRdata(i).fflags | fflagsRes)
1009
1010    val vxsatCanWbSeq = vxsat_wb.map(writeback => writeback.valid && writeback.bits.robIdx.value === needUpdateRobIdx(i))
1011    val vxsatRes = vxsatCanWbSeq.zip(vxsat_wb).map { case (canWb, wb) => Mux(canWb, wb.bits.vxsat.get, 0.U) }.fold(false.B)(_ | _)
1012    needUpdate(i).vxsat := Mux(!robBanksRdata(i).valid && instCanEnqFlag, 0.U, robBanksRdata(i).vxsat | vxsatRes)
1013  }
1014  robBanksRdataThisLineUpdate := VecInit(needUpdate.take(8))
1015  robBanksRdataNextLineUpdate := VecInit(needUpdate.drop(8))
1016  // end update robBanksRdata
1017
1018  // interrupt_safe
1019  for (i <- 0 until RenameWidth) {
1020    // We RegNext the updates for better timing.
1021    // Note that instructions won't change the system's states in this cycle.
1022    when(RegNext(canEnqueue(i))) {
1023      // For now, we allow non-load-store instructions to trigger interrupts
1024      // For MMIO instructions, they should not trigger interrupts since they may
1025      // be sent to lower level before it writes back.
1026      // However, we cannot determine whether a load/store instruction is MMIO.
1027      // Thus, we don't allow load/store instructions to trigger an interrupt.
1028      // TODO: support non-MMIO load-store instructions to trigger interrupts
1029      val allow_interrupts = !CommitType.isLoadStore(io.enq.req(i).bits.commitType) && !FuType.isFence(io.enq.req(i).bits.fuType) && !FuType.isCsr(io.enq.req(i).bits.fuType)
1030      robEntries(RegEnable(allocatePtrVec(i).value, canEnqueue(i))).interrupt_safe := RegEnable(allow_interrupts, canEnqueue(i))
1031    }
1032  }
1033
1034  /**
1035   * read and write of data modules
1036   */
1037  val commitReadAddr_next = Mux(state_next === s_idle,
1038    VecInit(deqPtrVec_next.map(_.value)),
1039    VecInit(walkPtrVec_next.map(_.value))
1040  )
1041
1042  exceptionGen.io.redirect <> io.redirect
1043  exceptionGen.io.flush := io.flushOut.valid
1044
1045  val canEnqueueEG = VecInit(io.enq.req.map(req => req.valid && io.enq.canAccept))
1046  for (i <- 0 until RenameWidth) {
1047    exceptionGen.io.enq(i).valid := canEnqueueEG(i)
1048    exceptionGen.io.enq(i).bits.robIdx := io.enq.req(i).bits.robIdx
1049    exceptionGen.io.enq(i).bits.ftqPtr := io.enq.req(i).bits.ftqPtr
1050    exceptionGen.io.enq(i).bits.ftqOffset := io.enq.req(i).bits.ftqOffset
1051    exceptionGen.io.enq(i).bits.exceptionVec := ExceptionNO.selectFrontend(io.enq.req(i).bits.exceptionVec)
1052    exceptionGen.io.enq(i).bits.hasException := io.enq.req(i).bits.hasException
1053    exceptionGen.io.enq(i).bits.flushPipe := io.enq.req(i).bits.flushPipe
1054    exceptionGen.io.enq(i).bits.isVset := io.enq.req(i).bits.isVset
1055    exceptionGen.io.enq(i).bits.replayInst := false.B
1056    XSError(canEnqueue(i) && io.enq.req(i).bits.replayInst, "enq should not set replayInst")
1057    exceptionGen.io.enq(i).bits.singleStep := io.enq.req(i).bits.singleStep
1058    exceptionGen.io.enq(i).bits.crossPageIPFFix := io.enq.req(i).bits.crossPageIPFFix
1059    exceptionGen.io.enq(i).bits.trigger.clear()
1060    exceptionGen.io.enq(i).bits.trigger.frontendHit := io.enq.req(i).bits.trigger.frontendHit
1061    exceptionGen.io.enq(i).bits.trigger.frontendCanFire := io.enq.req(i).bits.trigger.frontendCanFire
1062    exceptionGen.io.enq(i).bits.vstartEn := false.B //DontCare
1063    exceptionGen.io.enq(i).bits.vstart := 0.U //DontCare
1064  }
1065
1066  println(s"ExceptionGen:")
1067  println(s"num of exceptions: ${params.numException}")
1068  require(exceptionWBs.length == exceptionGen.io.wb.length,
1069    f"exceptionWBs.length: ${exceptionWBs.length}, " +
1070      f"exceptionGen.io.wb.length: ${exceptionGen.io.wb.length}")
1071  for (((wb, exc_wb), i) <- exceptionWBs.zip(exceptionGen.io.wb).zipWithIndex) {
1072    exc_wb.valid       := wb.valid
1073    exc_wb.bits.robIdx := wb.bits.robIdx
1074    // only enq inst use ftqPtr to read gpa
1075    exc_wb.bits.ftqPtr          := 0.U.asTypeOf(exc_wb.bits.ftqPtr)
1076    exc_wb.bits.ftqOffset       := 0.U.asTypeOf(exc_wb.bits.ftqOffset)
1077    exc_wb.bits.exceptionVec    := wb.bits.exceptionVec.get
1078    exc_wb.bits.hasException    := wb.bits.exceptionVec.get.asUInt.orR // Todo: use io.writebackNeedFlush(i) instead
1079    exc_wb.bits.flushPipe       := wb.bits.flushPipe.getOrElse(false.B)
1080    exc_wb.bits.isVset          := false.B
1081    exc_wb.bits.replayInst      := wb.bits.replay.getOrElse(false.B)
1082    exc_wb.bits.singleStep      := false.B
1083    exc_wb.bits.crossPageIPFFix := false.B
1084    // TODO: make trigger configurable
1085    val trigger = wb.bits.trigger.getOrElse(0.U).asTypeOf(exc_wb.bits.trigger)
1086    exc_wb.bits.trigger.clear() // Don't care frontend timing, chain, hit and canFire
1087    exc_wb.bits.trigger.backendHit := trigger.backendHit
1088    exc_wb.bits.trigger.backendCanFire := trigger.backendCanFire
1089    exc_wb.bits.vstartEn := false.B //wb.bits.vstartEn.getOrElse(false.B) // todo need add vstart in ExuOutput
1090    exc_wb.bits.vstart := 0.U //wb.bits.vstart.getOrElse(0.U)
1091    //    println(s"  [$i] ${configs.map(_.name)}: exception ${exceptionCases(i)}, " +
1092    //      s"flushPipe ${configs.exists(_.flushPipe)}, " +
1093    //      s"replayInst ${configs.exists(_.replayInst)}")
1094  }
1095
1096  fflagsDataRead := (0 until CommitWidth).map(i => robEntries(deqPtrVec(i).value).fflags)
1097  vxsatDataRead := (0 until CommitWidth).map(i => robEntries(deqPtrVec(i).value).vxsat)
1098
1099  val instrCntReg = RegInit(0.U(64.W))
1100  val fuseCommitCnt = PopCount(io.commits.commitValid.zip(io.commits.info).map { case (v, i) => RegNext(v && CommitType.isFused(i.commitType)) })
1101  val trueCommitCnt = RegNext(io.commits.commitValid.zip(io.commits.info).map { case (v, i) => Mux(v, i.instrSize, 0.U) }.reduce(_ +& _)) +& fuseCommitCnt
1102  val retireCounter = Mux(RegNext(io.commits.isCommit), trueCommitCnt, 0.U)
1103  val instrCnt = instrCntReg + retireCounter
1104  instrCntReg := instrCnt
1105  io.csr.perfinfo.retiredInstr := retireCounter
1106  io.robFull := !allowEnqueue
1107  io.headNotReady := commit_vDeqGroup.head && !commit_wDeqGroup.head
1108
1109  /**
1110   * debug info
1111   */
1112  XSDebug(p"enqPtr ${enqPtr} deqPtr ${deqPtr}\n")
1113  XSDebug("")
1114  XSError(isBefore(enqPtr, deqPtr) && !isFull(enqPtr, deqPtr), "\ndeqPtr is older than enqPtr!\n")
1115  for (i <- 0 until RobSize) {
1116    XSDebug(false, !robEntries(i).valid, "-")
1117    XSDebug(false, robEntries(i).valid && robEntries(i).isWritebacked, "w")
1118    XSDebug(false, robEntries(i).valid && !robEntries(i).isWritebacked, "v")
1119  }
1120  XSDebug(false, true.B, "\n")
1121
1122  for (i <- 0 until RobSize) {
1123    if (i % 4 == 0) XSDebug("")
1124    XSDebug(false, true.B, "%x ", debug_microOp(i).pc)
1125    XSDebug(false, !robEntries(i).valid, "- ")
1126    XSDebug(false, robEntries(i).valid && robEntries(i).isWritebacked, "w ")
1127    XSDebug(false, robEntries(i).valid && !robEntries(i).isWritebacked, "v ")
1128    if (i % 4 == 3) XSDebug(false, true.B, "\n")
1129  }
1130
1131  def ifCommit(counter: UInt): UInt = Mux(io.commits.isCommit, counter, 0.U)
1132
1133  def ifCommitReg(counter: UInt): UInt = Mux(RegNext(io.commits.isCommit), counter, 0.U)
1134
1135  val commitDebugUop = deqPtrVec.map(_.value).map(debug_microOp(_))
1136  XSPerfAccumulate("clock_cycle", 1.U)
1137  QueuePerf(RobSize, numValidEntries, numValidEntries === RobSize.U)
1138  XSPerfAccumulate("commitUop", ifCommit(commitCnt))
1139  XSPerfAccumulate("commitInstr", ifCommitReg(trueCommitCnt))
1140  XSPerfRolling("ipc", ifCommitReg(trueCommitCnt), 1000, clock, reset)
1141  XSPerfRolling("cpi", perfCnt = 1.U /*Cycle*/ , eventTrigger = ifCommitReg(trueCommitCnt), granularity = 1000, clock, reset)
1142  val commitIsMove = commitInfo.map(_.isMove)
1143  XSPerfAccumulate("commitInstrMove", ifCommit(PopCount(io.commits.commitValid.zip(commitIsMove).map { case (v, m) => v && m })))
1144  val commitMoveElim = commitDebugUop.map(_.debugInfo.eliminatedMove)
1145  XSPerfAccumulate("commitInstrMoveElim", ifCommit(PopCount(io.commits.commitValid zip commitMoveElim map { case (v, e) => v && e })))
1146  XSPerfAccumulate("commitInstrFused", ifCommitReg(fuseCommitCnt))
1147  val commitIsLoad = io.commits.info.map(_.commitType).map(_ === CommitType.LOAD)
1148  val commitLoadValid = io.commits.commitValid.zip(commitIsLoad).map { case (v, t) => v && t }
1149  XSPerfAccumulate("commitInstrLoad", ifCommit(PopCount(commitLoadValid)))
1150  val commitIsBranch = io.commits.info.map(_.commitType).map(_ === CommitType.BRANCH)
1151  val commitBranchValid = io.commits.commitValid.zip(commitIsBranch).map { case (v, t) => v && t }
1152  XSPerfAccumulate("commitInstrBranch", ifCommit(PopCount(commitBranchValid)))
1153  val commitLoadWaitBit = commitInfo.map(_.loadWaitBit)
1154  XSPerfAccumulate("commitInstrLoadWait", ifCommit(PopCount(commitLoadValid.zip(commitLoadWaitBit).map { case (v, w) => v && w })))
1155  val commitIsStore = io.commits.info.map(_.commitType).map(_ === CommitType.STORE)
1156  XSPerfAccumulate("commitInstrStore", ifCommit(PopCount(io.commits.commitValid.zip(commitIsStore).map { case (v, t) => v && t })))
1157  XSPerfAccumulate("writeback", PopCount((0 until RobSize).map(i => robEntries(i).valid && robEntries(i).isWritebacked)))
1158  // XSPerfAccumulate("enqInstr", PopCount(io.dp1Req.map(_.fire)))
1159  // XSPerfAccumulate("d2rVnR", PopCount(io.dp1Req.map(p => p.valid && !p.ready)))
1160  XSPerfAccumulate("walkInstr", Mux(io.commits.isWalk, PopCount(io.commits.walkValid), 0.U))
1161  XSPerfAccumulate("walkCycleTotal", state === s_walk)
1162  XSPerfAccumulate("waitRabWalkEnd", state === s_walk && walkFinished && !rab.io.status.walkEnd)
1163  private val walkCycle = RegInit(0.U(8.W))
1164  private val waitRabWalkCycle = RegInit(0.U(8.W))
1165  walkCycle := Mux(io.redirect.valid, 0.U, Mux(state === s_walk, walkCycle + 1.U, 0.U))
1166  waitRabWalkCycle := Mux(state === s_walk && walkFinished, 0.U, Mux(state === s_walk, walkCycle + 1.U, 0.U))
1167
1168  XSPerfHistogram("walkRobCycleHist", walkCycle, state === s_walk && walkFinished, 0, 32)
1169  XSPerfHistogram("walkRabExtraCycleHist", waitRabWalkCycle, state === s_walk && walkFinished && rab.io.status.walkEnd, 0, 32)
1170  XSPerfHistogram("walkTotalCycleHist", walkCycle, state === s_walk && state_next === s_idle, 0, 32)
1171
1172  private val deqNotWritebacked = robEntries(deqPtr.value).valid && !robEntries(deqPtr.value).isWritebacked
1173  private val deqStdNotWritebacked = robEntries(deqPtr.value).valid && !robEntries(deqPtr.value).stdWritebacked
1174  private val deqUopNotWritebacked = robEntries(deqPtr.value).valid && !robEntries(deqPtr.value).isUopWritebacked
1175  private val deqHeadInfo = debug_microOp(deqPtr.value)
1176  val deqUopCommitType = debug_microOp(deqPtr.value).commitType
1177
1178  XSPerfAccumulate("waitAluCycle", deqNotWritebacked && deqHeadInfo.fuType === FuType.alu.U)
1179  XSPerfAccumulate("waitMulCycle", deqNotWritebacked && deqHeadInfo.fuType === FuType.mul.U)
1180  XSPerfAccumulate("waitDivCycle", deqNotWritebacked && deqHeadInfo.fuType === FuType.div.U)
1181  XSPerfAccumulate("waitBrhCycle", deqNotWritebacked && deqHeadInfo.fuType === FuType.brh.U)
1182  XSPerfAccumulate("waitJmpCycle", deqNotWritebacked && deqHeadInfo.fuType === FuType.jmp.U)
1183  XSPerfAccumulate("waitCsrCycle", deqNotWritebacked && deqHeadInfo.fuType === FuType.csr.U)
1184  XSPerfAccumulate("waitFenCycle", deqNotWritebacked && deqHeadInfo.fuType === FuType.fence.U)
1185  XSPerfAccumulate("waitBkuCycle", deqNotWritebacked && deqHeadInfo.fuType === FuType.bku.U)
1186  XSPerfAccumulate("waitLduCycle", deqNotWritebacked && deqHeadInfo.fuType === FuType.ldu.U)
1187  XSPerfAccumulate("waitStuCycle", deqNotWritebacked && deqHeadInfo.fuType === FuType.stu.U)
1188  XSPerfAccumulate("waitStaCycle", deqUopNotWritebacked && deqHeadInfo.fuType === FuType.stu.U)
1189  XSPerfAccumulate("waitStdCycle", deqStdNotWritebacked && deqHeadInfo.fuType === FuType.stu.U)
1190  XSPerfAccumulate("waitAtmCycle", deqStdNotWritebacked && deqHeadInfo.fuType === FuType.mou.U)
1191
1192  XSPerfAccumulate("waitVfaluCycle", deqStdNotWritebacked && deqHeadInfo.fuType === FuType.vfalu.U)
1193  XSPerfAccumulate("waitVfmaCycle", deqStdNotWritebacked && deqHeadInfo.fuType === FuType.vfma.U)
1194  XSPerfAccumulate("waitVfdivCycle", deqStdNotWritebacked && deqHeadInfo.fuType === FuType.vfdiv.U)
1195
1196  val vfalufuop = Seq(VfaluType.vfadd, VfaluType.vfwadd, VfaluType.vfwadd_w, VfaluType.vfsub, VfaluType.vfwsub, VfaluType.vfwsub_w, VfaluType.vfmin, VfaluType.vfmax,
1197    VfaluType.vfmerge, VfaluType.vfmv, VfaluType.vfsgnj, VfaluType.vfsgnjn, VfaluType.vfsgnjx, VfaluType.vfeq, VfaluType.vfne, VfaluType.vflt, VfaluType.vfle, VfaluType.vfgt,
1198    VfaluType.vfge, VfaluType.vfclass, VfaluType.vfmv_f_s, VfaluType.vfmv_s_f, VfaluType.vfredusum, VfaluType.vfredmax, VfaluType.vfredmin, VfaluType.vfredosum, VfaluType.vfwredosum)
1199
1200  vfalufuop.zipWithIndex.map{
1201    case(fuoptype,i) =>  XSPerfAccumulate(s"waitVfalu_${i}Cycle", deqStdNotWritebacked && deqHeadInfo.fuOpType === fuoptype && deqHeadInfo.fuType === FuType.vfalu.U)
1202  }
1203
1204
1205
1206  XSPerfAccumulate("waitNormalCycle", deqNotWritebacked && deqUopCommitType === CommitType.NORMAL)
1207  XSPerfAccumulate("waitBranchCycle", deqNotWritebacked && deqUopCommitType === CommitType.BRANCH)
1208  XSPerfAccumulate("waitLoadCycle", deqNotWritebacked && deqUopCommitType === CommitType.LOAD)
1209  XSPerfAccumulate("waitStoreCycle", deqNotWritebacked && deqUopCommitType === CommitType.STORE)
1210  XSPerfAccumulate("robHeadPC", io.commits.info(0).debug_pc.getOrElse(0.U))
1211  XSPerfAccumulate("commitCompressCntAll", PopCount(io.commits.commitValid.zip(io.commits.info).map { case (valid, info) => io.commits.isCommit && valid && info.instrSize > 1.U }))
1212  (2 to RenameWidth).foreach(i =>
1213    XSPerfAccumulate(s"commitCompressCnt${i}", PopCount(io.commits.commitValid.zip(io.commits.info).map { case (valid, info) => io.commits.isCommit && valid && info.instrSize === i.U }))
1214  )
1215  XSPerfAccumulate("compressSize", io.commits.commitValid.zip(io.commits.info).map { case (valid, info) => Mux(io.commits.isCommit && valid && info.instrSize > 1.U, info.instrSize, 0.U) }.reduce(_ +& _))
1216  val dispatchLatency = commitDebugUop.map(uop => uop.debugInfo.dispatchTime - uop.debugInfo.renameTime)
1217  val enqRsLatency = commitDebugUop.map(uop => uop.debugInfo.enqRsTime - uop.debugInfo.dispatchTime)
1218  val selectLatency = commitDebugUop.map(uop => uop.debugInfo.selectTime - uop.debugInfo.enqRsTime)
1219  val issueLatency = commitDebugUop.map(uop => uop.debugInfo.issueTime - uop.debugInfo.selectTime)
1220  val executeLatency = commitDebugUop.map(uop => uop.debugInfo.writebackTime - uop.debugInfo.issueTime)
1221  val rsFuLatency = commitDebugUop.map(uop => uop.debugInfo.writebackTime - uop.debugInfo.enqRsTime)
1222  val commitLatency = commitDebugUop.map(uop => timer - uop.debugInfo.writebackTime)
1223
1224  def latencySum(cond: Seq[Bool], latency: Seq[UInt]): UInt = {
1225    cond.zip(latency).map(x => Mux(x._1, x._2, 0.U)).reduce(_ +& _)
1226  }
1227
1228  for (fuType <- FuType.functionNameMap.keys) {
1229    val fuName = FuType.functionNameMap(fuType)
1230    val commitIsFuType = io.commits.commitValid.zip(commitDebugUop).map(x => x._1 && x._2.fuType === fuType.U)
1231    XSPerfRolling(s"ipc_futype_${fuName}", ifCommit(PopCount(commitIsFuType)), 1000, clock, reset)
1232    XSPerfAccumulate(s"${fuName}_instr_cnt", ifCommit(PopCount(commitIsFuType)))
1233    XSPerfAccumulate(s"${fuName}_latency_dispatch", ifCommit(latencySum(commitIsFuType, dispatchLatency)))
1234    XSPerfAccumulate(s"${fuName}_latency_enq_rs", ifCommit(latencySum(commitIsFuType, enqRsLatency)))
1235    XSPerfAccumulate(s"${fuName}_latency_select", ifCommit(latencySum(commitIsFuType, selectLatency)))
1236    XSPerfAccumulate(s"${fuName}_latency_issue", ifCommit(latencySum(commitIsFuType, issueLatency)))
1237    XSPerfAccumulate(s"${fuName}_latency_execute", ifCommit(latencySum(commitIsFuType, executeLatency)))
1238    XSPerfAccumulate(s"${fuName}_latency_enq_rs_execute", ifCommit(latencySum(commitIsFuType, rsFuLatency)))
1239    XSPerfAccumulate(s"${fuName}_latency_commit", ifCommit(latencySum(commitIsFuType, commitLatency)))
1240  }
1241  XSPerfAccumulate(s"redirect_use_snapshot", io.redirect.valid && io.snpt.useSnpt)
1242
1243  // top-down info
1244  io.debugTopDown.toCore.robHeadVaddr.valid := debug_lsTopdownInfo(deqPtr.value).s1.vaddr_valid
1245  io.debugTopDown.toCore.robHeadVaddr.bits := debug_lsTopdownInfo(deqPtr.value).s1.vaddr_bits
1246  io.debugTopDown.toCore.robHeadPaddr.valid := debug_lsTopdownInfo(deqPtr.value).s2.paddr_valid
1247  io.debugTopDown.toCore.robHeadPaddr.bits := debug_lsTopdownInfo(deqPtr.value).s2.paddr_bits
1248  io.debugTopDown.toDispatch.robTrueCommit := ifCommitReg(trueCommitCnt)
1249  io.debugTopDown.toDispatch.robHeadLsIssue := debug_lsIssue(deqPtr.value)
1250  io.debugTopDown.robHeadLqIdx.valid := debug_lqIdxValid(deqPtr.value)
1251  io.debugTopDown.robHeadLqIdx.bits := debug_microOp(deqPtr.value).lqIdx
1252
1253  // rolling
1254  io.debugRolling.robTrueCommit := ifCommitReg(trueCommitCnt)
1255
1256  /**
1257   * DataBase info:
1258   * log trigger is at writeback valid
1259   * */
1260
1261  /**
1262   * @todo add InstInfoEntry back
1263   * @author Maxpicca-Li
1264   */
1265
1266  //difftest signals
1267  val firstValidCommit = (deqPtr + PriorityMux(io.commits.commitValid, VecInit(List.tabulate(CommitWidth)(_.U(log2Up(CommitWidth).W))))).value
1268
1269  val wdata = Wire(Vec(CommitWidth, UInt(XLEN.W)))
1270  val wpc = Wire(Vec(CommitWidth, UInt(XLEN.W)))
1271
1272  for (i <- 0 until CommitWidth) {
1273    val idx = deqPtrVec(i).value
1274    wdata(i) := debug_exuData(idx)
1275    wpc(i) := SignExt(commitDebugUop(i).pc, XLEN)
1276  }
1277
1278  if (env.EnableDifftest || env.AlwaysBasicDiff) {
1279    // These are the structures used by difftest only and should be optimized after synthesis.
1280    val dt_eliminatedMove = Mem(RobSize, Bool())
1281    val dt_isRVC = Mem(RobSize, Bool())
1282    val dt_exuDebug = Reg(Vec(RobSize, new DebugBundle))
1283    for (i <- 0 until RenameWidth) {
1284      when(canEnqueue(i)) {
1285        dt_eliminatedMove(allocatePtrVec(i).value) := io.enq.req(i).bits.eliminatedMove
1286        dt_isRVC(allocatePtrVec(i).value) := io.enq.req(i).bits.preDecodeInfo.isRVC
1287      }
1288    }
1289    for (wb <- exuWBs) {
1290      when(wb.valid) {
1291        val wbIdx = wb.bits.robIdx.value
1292        dt_exuDebug(wbIdx) := wb.bits.debug
1293      }
1294    }
1295    // Always instantiate basic difftest modules.
1296    for (i <- 0 until CommitWidth) {
1297      val uop = commitDebugUop(i)
1298      val commitInfo = io.commits.info(i)
1299      val ptr = deqPtrVec(i).value
1300      val exuOut = dt_exuDebug(ptr)
1301      val eliminatedMove = dt_eliminatedMove(ptr)
1302      val isRVC = dt_isRVC(ptr)
1303
1304      val difftest = DifftestModule(new DiffInstrCommit(MaxPhyPregs), delay = 3, dontCare = true)
1305      val dt_skip = Mux(eliminatedMove, false.B, exuOut.isMMIO || exuOut.isPerfCnt)
1306      difftest.coreid := io.hartId
1307      difftest.index := i.U
1308      difftest.valid := io.commits.commitValid(i) && io.commits.isCommit
1309      difftest.skip := dt_skip
1310      difftest.isRVC := isRVC
1311      difftest.rfwen := io.commits.commitValid(i) && commitInfo.rfWen && commitInfo.debug_ldest.get =/= 0.U
1312      difftest.fpwen := io.commits.commitValid(i) && uop.fpWen
1313      difftest.wpdest := commitInfo.debug_pdest.get
1314      difftest.wdest := commitInfo.debug_ldest.get
1315      difftest.nFused := CommitType.isFused(commitInfo.commitType).asUInt + commitInfo.instrSize - 1.U
1316      when(difftest.valid) {
1317        assert(CommitType.isFused(commitInfo.commitType).asUInt + commitInfo.instrSize >= 1.U)
1318      }
1319      if (env.EnableDifftest) {
1320        val uop = commitDebugUop(i)
1321        difftest.pc := SignExt(uop.pc, XLEN)
1322        difftest.instr := uop.instr
1323        difftest.robIdx := ZeroExt(ptr, 10)
1324        difftest.lqIdx := ZeroExt(uop.lqIdx.value, 7)
1325        difftest.sqIdx := ZeroExt(uop.sqIdx.value, 7)
1326        difftest.isLoad := io.commits.info(i).commitType === CommitType.LOAD
1327        difftest.isStore := io.commits.info(i).commitType === CommitType.STORE
1328        // Check LoadEvent only when isAmo or isLoad and skip MMIO
1329        val difftestLoadEvent = DifftestModule(new DiffLoadEvent, delay = 3)
1330        difftestLoadEvent.coreid := io.hartId
1331        difftestLoadEvent.index := i.U
1332        val loadCheck = (FuType.isAMO(uop.fuType) || FuType.isLoad(uop.fuType)) && !dt_skip
1333        difftestLoadEvent.valid    := io.commits.commitValid(i) && io.commits.isCommit && loadCheck
1334        difftestLoadEvent.paddr    := exuOut.paddr
1335        difftestLoadEvent.opType   := uop.fuOpType
1336        difftestLoadEvent.isAtomic := FuType.isAMO(uop.fuType)
1337        difftestLoadEvent.isLoad   := FuType.isLoad(uop.fuType)
1338      }
1339    }
1340  }
1341
1342  if (env.EnableDifftest || env.AlwaysBasicDiff) {
1343    val dt_isXSTrap = Mem(RobSize, Bool())
1344    for (i <- 0 until RenameWidth) {
1345      when(canEnqueue(i)) {
1346        dt_isXSTrap(allocatePtrVec(i).value) := io.enq.req(i).bits.isXSTrap
1347      }
1348    }
1349    val trapVec = io.commits.commitValid.zip(deqPtrVec).map { case (v, d) =>
1350      io.commits.isCommit && v && dt_isXSTrap(d.value)
1351    }
1352    val hitTrap = trapVec.reduce(_ || _)
1353    val difftest = DifftestModule(new DiffTrapEvent, dontCare = true)
1354    difftest.coreid := io.hartId
1355    difftest.hasTrap := hitTrap
1356    difftest.cycleCnt := timer
1357    difftest.instrCnt := instrCnt
1358    difftest.hasWFI := hasWFI
1359
1360    if (env.EnableDifftest) {
1361      val trapCode = PriorityMux(wdata.zip(trapVec).map(x => x._2 -> x._1))
1362      val trapPC = SignExt(PriorityMux(wpc.zip(trapVec).map(x => x._2 -> x._1)), XLEN)
1363      difftest.code := trapCode
1364      difftest.pc := trapPC
1365    }
1366  }
1367
1368  val validEntriesBanks = (0 until (RobSize + 31) / 32).map(i => RegNext(PopCount(robEntries.map(_.valid).drop(i * 32).take(32))))
1369  val validEntries = RegNext(VecInit(validEntriesBanks).reduceTree(_ +& _))
1370  val commitMoveVec = VecInit(io.commits.commitValid.zip(commitIsMove).map { case (v, m) => v && m })
1371  val commitLoadVec = VecInit(commitLoadValid)
1372  val commitBranchVec = VecInit(commitBranchValid)
1373  val commitLoadWaitVec = VecInit(commitLoadValid.zip(commitLoadWaitBit).map { case (v, w) => v && w })
1374  val commitStoreVec = VecInit(io.commits.commitValid.zip(commitIsStore).map { case (v, t) => v && t })
1375  val perfEvents = Seq(
1376    ("rob_interrupt_num      ", io.flushOut.valid && intrEnable),
1377    ("rob_exception_num      ", io.flushOut.valid && deqHasException),
1378    ("rob_flush_pipe_num     ", io.flushOut.valid && isFlushPipe),
1379    ("rob_replay_inst_num    ", io.flushOut.valid && isFlushPipe && deqHasReplayInst),
1380    ("rob_commitUop          ", ifCommit(commitCnt)),
1381    ("rob_commitInstr        ", ifCommitReg(trueCommitCnt)),
1382    ("rob_commitInstrMove    ", ifCommitReg(PopCount(RegNext(commitMoveVec)))),
1383    ("rob_commitInstrFused   ", ifCommitReg(fuseCommitCnt)),
1384    ("rob_commitInstrLoad    ", ifCommitReg(PopCount(RegNext(commitLoadVec)))),
1385    ("rob_commitInstrBranch  ", ifCommitReg(PopCount(RegNext(commitBranchVec)))),
1386    ("rob_commitInstrLoadWait", ifCommitReg(PopCount(RegNext(commitLoadWaitVec)))),
1387    ("rob_commitInstrStore   ", ifCommitReg(PopCount(RegNext(commitStoreVec)))),
1388    ("rob_walkInstr          ", Mux(io.commits.isWalk, PopCount(io.commits.walkValid), 0.U)),
1389    ("rob_walkCycle          ", (state === s_walk)),
1390    ("rob_1_4_valid          ", validEntries <= (RobSize / 4).U),
1391    ("rob_2_4_valid          ", validEntries > (RobSize / 4).U && validEntries <= (RobSize / 2).U),
1392    ("rob_3_4_valid          ", validEntries > (RobSize / 2).U && validEntries <= (RobSize * 3 / 4).U),
1393    ("rob_4_4_valid          ", validEntries > (RobSize * 3 / 4).U),
1394  )
1395  generatePerfEvent()
1396
1397  // dontTouch for debug
1398  if (backendParams.debugEn) {
1399    dontTouch(enqPtrVec)
1400    dontTouch(deqPtrVec)
1401    dontTouch(robEntries)
1402    dontTouch(robDeqGroup)
1403    dontTouch(robBanks)
1404    dontTouch(robBanksRaddrThisLine)
1405    dontTouch(robBanksRaddrNextLine)
1406    dontTouch(robBanksRdataThisLine)
1407    dontTouch(robBanksRdataNextLine)
1408    dontTouch(robBanksRdataThisLineUpdate)
1409    dontTouch(robBanksRdataNextLineUpdate)
1410    dontTouch(needUpdate)
1411    val exceptionWBsVec = MixedVecInit(exceptionWBs)
1412    dontTouch(exceptionWBsVec)
1413    dontTouch(commit_wDeqGroup)
1414    dontTouch(commit_vDeqGroup)
1415    dontTouch(commitSizeSumSeq)
1416    dontTouch(walkSizeSumSeq)
1417    dontTouch(commitSizeSumCond)
1418    dontTouch(walkSizeSumCond)
1419    dontTouch(commitSizeSum)
1420    dontTouch(walkSizeSum)
1421    dontTouch(realDestSizeSeq)
1422    dontTouch(walkDestSizeSeq)
1423    dontTouch(io.commits)
1424    dontTouch(commitIsVTypeVec)
1425    dontTouch(walkIsVTypeVec)
1426    dontTouch(commitValidThisLine)
1427    dontTouch(commitReadAddr_next)
1428    dontTouch(donotNeedWalk)
1429    dontTouch(walkPtrVec_next)
1430    dontTouch(walkPtrVec)
1431    dontTouch(deqPtrVec_next)
1432    dontTouch(deqPtrVecForWalk)
1433    dontTouch(snapPtrReadBank)
1434    dontTouch(snapPtrVecForWalk)
1435    dontTouch(shouldWalkVec)
1436    dontTouch(walkFinished)
1437    dontTouch(changeBankAddrToDeqPtr)
1438  }
1439  if (env.EnableDifftest) {
1440    io.commits.info.map(info => dontTouch(info.debug_pc.get))
1441  }
1442}
1443