xref: /XiangShan/src/main/scala/xiangshan/backend/CtrlBlock.scala (revision d8a24b06c3eacc036d00675b373ff01f4fbe0023)
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
18
19import chipsalliance.rocketchip.config.Parameters
20import chisel3._
21import chisel3.util._
22import freechips.rocketchip.diplomacy.{LazyModule, LazyModuleImp}
23import utility._
24import utils._
25import xiangshan.ExceptionNO._
26import xiangshan._
27import xiangshan.backend.Bundles.{DecodedInst, DynInst, ExceptionInfo, ExuOutput}
28import xiangshan.backend.ctrlblock.{DebugLSIO, DebugLsInfoBundle, LsTopdownInfo, MemCtrl, RedirectGenerator}
29import xiangshan.backend.datapath.DataConfig.VAddrData
30import xiangshan.backend.decode.{DecodeStage, FusionDecoder}
31import xiangshan.backend.dispatch.{Dispatch, DispatchQueue}
32import xiangshan.backend.fu.PFEvent
33import xiangshan.backend.fu.vector.Bundles.VType
34import xiangshan.backend.rename.{Rename, RenameTableWrapper, SnapshotGenerator}
35import xiangshan.backend.rob.{Rob, RobCSRIO, RobLsqIO, RobPtr}
36import xiangshan.frontend.{FtqRead, Ftq_RF_Components}
37
38class CtrlToFtqIO(implicit p: Parameters) extends XSBundle {
39  def numRedirect = backendParams.numRedirect
40  val rob_commits = Vec(CommitWidth, Valid(new RobCommitInfo))
41  val redirect = Valid(new Redirect)
42}
43
44class CtrlBlock(params: BackendParams)(implicit p: Parameters) extends LazyModule {
45  val rob = LazyModule(new Rob(params))
46
47  lazy val module = new CtrlBlockImp(this)(p, params)
48
49}
50
51class CtrlBlockImp(
52  override val wrapper: CtrlBlock
53)(implicit
54  p: Parameters,
55  params: BackendParams
56) extends LazyModuleImp(wrapper)
57  with HasXSParameter
58  with HasCircularQueuePtrHelper
59  with HasPerfEvents
60{
61  val pcMemRdIndexes = new NamedIndexes(Seq(
62    "exu"       -> params.numPcReadPort,
63    "redirect"  -> 1,
64    "memPred"   -> 1,
65    "robFlush"  -> 1,
66    "load"      -> params.LduCnt,
67  ))
68
69  private val numPcMemReadForExu = params.numPcReadPort
70  private val numPcMemRead = pcMemRdIndexes.maxIdx
71
72  println(s"pcMem read num: $numPcMemRead")
73  println(s"pcMem read num for exu: $numPcMemReadForExu")
74
75  val io = IO(new CtrlBlockIO())
76
77  val decode = Module(new DecodeStage)
78  val fusionDecoder = Module(new FusionDecoder)
79  val rat = Module(new RenameTableWrapper)
80  val rename = Module(new Rename)
81  val dispatch = Module(new Dispatch)
82  val intDq = Module(new DispatchQueue(dpParams.IntDqSize, RenameWidth, dpParams.IntDqDeqWidth))
83  val fpDq = Module(new DispatchQueue(dpParams.FpDqSize, RenameWidth, dpParams.FpDqDeqWidth))
84  val lsDq = Module(new DispatchQueue(dpParams.LsDqSize, RenameWidth, dpParams.LsDqDeqWidth))
85  val redirectGen = Module(new RedirectGenerator)
86  private val pcMem = Module(new SyncDataModuleTemplate(new Ftq_RF_Components, FtqSize, numPcMemRead, 1, "BackendPC"))
87  private val rob = wrapper.rob.module
88  private val memCtrl = Module(new MemCtrl(params))
89
90  private val disableFusion = decode.io.csrCtrl.singlestep || !decode.io.csrCtrl.fusion_enable
91
92  private val s0_robFlushRedirect = rob.io.flushOut
93  private val s1_robFlushRedirect = Wire(Valid(new Redirect))
94  s1_robFlushRedirect.valid := RegNext(s0_robFlushRedirect.valid)
95  s1_robFlushRedirect.bits := RegEnable(s0_robFlushRedirect.bits, s0_robFlushRedirect.valid)
96
97  pcMem.io.raddr(pcMemRdIndexes("robFlush").head) := s0_robFlushRedirect.bits.ftqIdx.value
98  private val s1_robFlushPc = pcMem.io.rdata(pcMemRdIndexes("robFlush").head).getPc(RegNext(s0_robFlushRedirect.bits.ftqOffset))
99  private val s3_redirectGen = redirectGen.io.stage2Redirect
100  private val s1_s3_redirect = Mux(s1_robFlushRedirect.valid, s1_robFlushRedirect, s3_redirectGen)
101  private val s2_s4_pendingRedirectValid = RegInit(false.B)
102  when (s1_s3_redirect.valid) {
103    s2_s4_pendingRedirectValid := true.B
104  }.elsewhen (RegNext(io.frontend.toFtq.redirect.valid)) {
105    s2_s4_pendingRedirectValid := false.B
106  }
107
108  // Redirect will be RegNext at ExuBlocks and IssueBlocks
109  val s2_s4_redirect = RegNextWithEnable(s1_s3_redirect)
110  val s3_s5_redirect = RegNextWithEnable(s2_s4_redirect)
111
112  private val delayedNotFlushedWriteBack = io.fromWB.wbData.map(x => {
113    val valid = x.valid
114    val killedByOlder = x.bits.robIdx.needFlush(Seq(s1_s3_redirect, s2_s4_redirect, s3_s5_redirect))
115    val delayed = Wire(Valid(new ExuOutput(x.bits.params)))
116    delayed.valid := RegNext(valid && !killedByOlder)
117    delayed.bits := RegEnable(x.bits, x.valid)
118    delayed
119  })
120
121  private val exuPredecode = VecInit(
122    delayedNotFlushedWriteBack.filter(_.bits.redirect.nonEmpty).map(x => x.bits.predecodeInfo.get)
123  )
124
125  private val exuRedirects: IndexedSeq[ValidIO[Redirect]] = delayedNotFlushedWriteBack.filter(_.bits.redirect.nonEmpty).map(x => {
126    val out = Wire(Valid(new Redirect()))
127    out.valid := x.valid && x.bits.redirect.get.valid && x.bits.redirect.get.bits.cfiUpdate.isMisPred
128    out.bits := x.bits.redirect.get.bits
129    out.bits.debugIsCtrl := true.B
130    out.bits.debugIsMemVio := false.B
131    out
132  })
133
134  private val memViolation = io.fromMem.violation
135  val loadReplay = Wire(ValidIO(new Redirect))
136  loadReplay.valid := RegNext(memViolation.valid &&
137    !memViolation.bits.robIdx.needFlush(Seq(s1_s3_redirect, s2_s4_redirect))
138  )
139  loadReplay.bits := RegEnable(memViolation.bits, memViolation.valid)
140  loadReplay.bits.debugIsCtrl := false.B
141  loadReplay.bits.debugIsMemVio := true.B
142
143  val pdestReverse = rob.io.commits.info.map(info => info.pdest).reverse
144
145  pcMem.io.raddr(pcMemRdIndexes("redirect").head) := redirectGen.io.redirectPcRead.ptr.value
146  redirectGen.io.redirectPcRead.data := pcMem.io.rdata(pcMemRdIndexes("redirect").head).getPc(RegNext(redirectGen.io.redirectPcRead.offset))
147  pcMem.io.raddr(pcMemRdIndexes("memPred").head) := redirectGen.io.memPredPcRead.ptr.value
148  redirectGen.io.memPredPcRead.data := pcMem.io.rdata(pcMemRdIndexes("memPred").head).getPc(RegNext(redirectGen.io.memPredPcRead.offset))
149
150  for ((pcMemIdx, i) <- pcMemRdIndexes("load").zipWithIndex) {
151    pcMem.io.raddr(pcMemIdx) := io.memLdPcRead(i).ptr.value
152    io.memLdPcRead(i).data := pcMem.io.rdata(pcMemIdx).getPc(RegNext(io.memLdPcRead(i).offset))
153  }
154
155  redirectGen.io.hartId := io.fromTop.hartId
156  redirectGen.io.exuRedirect := exuRedirects
157  redirectGen.io.exuOutPredecode := exuPredecode // garded by exuRedirect.valid
158  redirectGen.io.loadReplay <> loadReplay
159
160  redirectGen.io.robFlush := s1_robFlushRedirect.valid
161
162  val s6_frontendFlushValid = DelayN(s1_robFlushRedirect.valid, 5)
163  val frontendFlushBits = RegEnable(s1_robFlushRedirect.bits, s1_robFlushRedirect.valid) // ??
164  // When ROB commits an instruction with a flush, we notify the frontend of the flush without the commit.
165  // Flushes to frontend may be delayed by some cycles and commit before flush causes errors.
166  // Thus, we make all flush reasons to behave the same as exceptions for frontend.
167  for (i <- 0 until CommitWidth) {
168    // why flushOut: instructions with flushPipe are not commited to frontend
169    // If we commit them to frontend, it will cause flush after commit, which is not acceptable by frontend.
170    val s1_isCommit = rob.io.commits.commitValid(i) && rob.io.commits.isCommit && !s0_robFlushRedirect.valid
171    io.frontend.toFtq.rob_commits(i).valid := RegNext(s1_isCommit)
172    io.frontend.toFtq.rob_commits(i).bits := RegEnable(rob.io.commits.info(i), s1_isCommit)
173  }
174  io.frontend.toFtq.redirect.valid := s6_frontendFlushValid || s3_redirectGen.valid
175  io.frontend.toFtq.redirect.bits := Mux(s6_frontendFlushValid, frontendFlushBits, s3_redirectGen.bits)
176  // Be careful here:
177  // T0: rob.io.flushOut, s0_robFlushRedirect
178  // T1: s1_robFlushRedirect, rob.io.exception.valid
179  // T2: csr.redirect.valid
180  // T3: csr.exception.valid
181  // T4: csr.trapTarget
182  // T5: ctrlBlock.trapTarget
183  // T6: io.frontend.toFtq.stage2Redirect.valid
184  val s2_robFlushPc = RegEnable(Mux(s1_robFlushRedirect.bits.flushItself(),
185    s1_robFlushPc, // replay inst
186    s1_robFlushPc + Mux(s1_robFlushRedirect.bits.isRVC, 2.U, 4.U) // flush pipe
187  ), s1_robFlushRedirect.valid)
188  private val s2_csrIsXRet = io.robio.csr.isXRet
189  private val s5_csrIsTrap = DelayN(rob.io.exception.valid, 4)
190  private val s2_s5_trapTargetFromCsr = io.robio.csr.trapTarget
191
192  val flushTarget = Mux(s2_csrIsXRet || s5_csrIsTrap, s2_s5_trapTargetFromCsr, s2_robFlushPc)
193  when (s6_frontendFlushValid) {
194    io.frontend.toFtq.redirect.bits.level := RedirectLevel.flush
195    io.frontend.toFtq.redirect.bits.cfiUpdate.target := RegNext(flushTarget)
196  }
197
198  // vtype commit
199  decode.io.commitVType.bits := io.fromDataPath.vtype
200  decode.io.commitVType.valid := RegNext(rob.io.isVsetFlushPipe)
201
202  io.toDataPath.vtypeAddr := rob.io.vconfigPdest
203
204  // vtype walk
205  val isVsetSeq = rob.io.commits.walkValid.zip(rob.io.commits.info).map { case (valid, info) => valid && info.isVset }.reverse
206  val walkVTypeReverse = rob.io.commits.info.map(info => info.vtype).reverse
207  val walkVType = PriorityMux(isVsetSeq, walkVTypeReverse)
208
209  decode.io.walkVType.bits := walkVType.asTypeOf(new VType)
210  decode.io.walkVType.valid := rob.io.commits.isWalk && isVsetSeq.reduce(_ || _)
211
212  decode.io.isRedirect := s1_s3_redirect.valid
213
214  decode.io.in.zip(io.frontend.cfVec).foreach { case (decodeIn, frontendCf) =>
215    decodeIn.valid := frontendCf.valid
216    frontendCf.ready := decodeIn.ready
217    decodeIn.bits.connectCtrlFlow(frontendCf.bits)
218  }
219  decode.io.csrCtrl := RegNext(io.csrCtrl)
220  decode.io.intRat <> rat.io.intReadPorts
221  decode.io.fpRat <> rat.io.fpReadPorts
222  decode.io.vecRat <> rat.io.vecReadPorts
223  decode.io.fusion := 0.U.asTypeOf(decode.io.fusion) // Todo
224  decode.io.stallReason.in <> io.frontend.stallReason
225
226  // snapshot check
227  val snpt = Module(new SnapshotGenerator(rename.io.out.head.bits.robIdx))
228  snpt.io.enq := rename.io.out.head.bits.snapshot && rename.io.out.head.fire
229  snpt.io.enqData.head := rename.io.out.head.bits.robIdx
230  snpt.io.deq := snpt.io.valids(snpt.io.deqPtr.value) && rob.io.commits.isCommit &&
231    Cat(rob.io.commits.commitValid.zip(rob.io.commits.robIdx).map(x => x._1 && x._2 === snpt.io.snapshots(snpt.io.deqPtr.value))).orR
232  snpt.io.flush := s1_s3_redirect.valid
233
234  val useSnpt = VecInit.tabulate(RenameSnapshotNum)(idx =>
235    snpt.io.valids(idx) && s1_s3_redirect.bits.robIdx >= snpt.io.snapshots(idx)
236  ).reduceTree(_ || _)
237  val snptSelect = MuxCase(
238    0.U(log2Ceil(RenameSnapshotNum).W),
239    (1 to RenameSnapshotNum).map(i => (snpt.io.enqPtr - i.U).value).map(idx =>
240      (snpt.io.valids(idx) && s1_s3_redirect.bits.robIdx >= snpt.io.snapshots(idx), idx)
241    )
242  )
243
244  rob.io.snpt.snptEnq := DontCare
245  rob.io.snpt.snptDeq := snpt.io.deq
246  rob.io.snpt.useSnpt := useSnpt
247  rob.io.snpt.snptSelect := snptSelect
248  rat.io.snpt.snptEnq := rename.io.out.head.bits.snapshot && rename.io.out.head.fire
249  rat.io.snpt.snptDeq := snpt.io.deq
250  rat.io.snpt.useSnpt := useSnpt
251  rat.io.snpt.snptSelect := snptSelect
252
253  val decodeHasException = decode.io.out.map(x => x.bits.exceptionVec(instrPageFault) || x.bits.exceptionVec(instrAccessFault))
254  // fusion decoder
255  for (i <- 0 until DecodeWidth) {
256    fusionDecoder.io.in(i).valid := decode.io.out(i).valid && !(decodeHasException(i) || disableFusion)
257    fusionDecoder.io.in(i).bits := decode.io.out(i).bits.instr
258    if (i > 0) {
259      fusionDecoder.io.inReady(i - 1) := decode.io.out(i).ready
260    }
261  }
262
263  private val decodePipeRename = Wire(Vec(RenameWidth, DecoupledIO(new DecodedInst)))
264
265  for (i <- 0 until RenameWidth) {
266    PipelineConnect(decode.io.out(i), decodePipeRename(i), rename.io.in(i).ready,
267      s1_s3_redirect.valid || s2_s4_pendingRedirectValid, moduleName = Some("decodePipeRenameModule"))
268
269    decodePipeRename(i).ready := rename.io.in(i).ready
270    rename.io.in(i).valid := decodePipeRename(i).valid && !fusionDecoder.io.clear(i)
271    rename.io.in(i).bits := decodePipeRename(i).bits
272  }
273
274  for (i <- 0 until RenameWidth - 1) {
275    fusionDecoder.io.dec(i) := decodePipeRename(i).bits
276    rename.io.fusionInfo(i) := fusionDecoder.io.info(i)
277
278    // update the first RenameWidth - 1 instructions
279    decode.io.fusion(i) := fusionDecoder.io.out(i).valid && rename.io.out(i).fire
280    when (fusionDecoder.io.out(i).valid) {
281      fusionDecoder.io.out(i).bits.update(rename.io.in(i).bits)
282      // TODO: remove this dirty code for ftq update
283      val sameFtqPtr = rename.io.in(i).bits.ftqPtr.value === rename.io.in(i + 1).bits.ftqPtr.value
284      val ftqOffset0 = rename.io.in(i).bits.ftqOffset
285      val ftqOffset1 = rename.io.in(i + 1).bits.ftqOffset
286      val ftqOffsetDiff = ftqOffset1 - ftqOffset0
287      val cond1 = sameFtqPtr && ftqOffsetDiff === 1.U
288      val cond2 = sameFtqPtr && ftqOffsetDiff === 2.U
289      val cond3 = !sameFtqPtr && ftqOffset1 === 0.U
290      val cond4 = !sameFtqPtr && ftqOffset1 === 1.U
291      rename.io.in(i).bits.commitType := Mux(cond1, 4.U, Mux(cond2, 5.U, Mux(cond3, 6.U, 7.U)))
292      XSError(!cond1 && !cond2 && !cond3 && !cond4, p"new condition $sameFtqPtr $ftqOffset0 $ftqOffset1\n")
293    }
294
295  }
296
297  // memory dependency predict
298  // when decode, send fold pc to mdp
299  private val mdpFlodPcVec = Wire(Vec(DecodeWidth, UInt(MemPredPCWidth.W)))
300  for (i <- 0 until DecodeWidth) {
301    mdpFlodPcVec(i) := Mux(
302      decode.io.out(i).fire,
303      decode.io.in(i).bits.foldpc,
304      rename.io.in(i).bits.foldpc
305    )
306  }
307
308  // currently, we only update mdp info when isReplay
309  memCtrl.io.redirect := s1_s3_redirect
310  memCtrl.io.csrCtrl := io.csrCtrl                          // RegNext in memCtrl
311  memCtrl.io.stIn := io.fromMem.stIn                        // RegNext in memCtrl
312  memCtrl.io.memPredUpdate := redirectGen.io.memPredUpdate  // RegNext in memCtrl
313  memCtrl.io.mdpFlodPcVec := mdpFlodPcVec
314  memCtrl.io.dispatchLFSTio <> dispatch.io.lfst
315
316  rat.io.redirect := s1_s3_redirect.valid
317  rat.io.robCommits := rob.io.rabCommits
318  rat.io.diffCommits := rob.io.diffCommits
319  rat.io.intRenamePorts := rename.io.intRenamePorts
320  rat.io.fpRenamePorts := rename.io.fpRenamePorts
321  rat.io.vecRenamePorts := rename.io.vecRenamePorts
322
323  rename.io.redirect := s1_s3_redirect
324  rename.io.robCommits <> rob.io.rabCommits
325  rename.io.waittable := (memCtrl.io.waitTable2Rename zip decode.io.out).map{ case(waittable2rename, decodeOut) =>
326    RegEnable(waittable2rename, decodeOut.fire)
327  }
328  rename.io.ssit := memCtrl.io.ssit2Rename
329  rename.io.intReadPorts := VecInit(rat.io.intReadPorts.map(x => VecInit(x.map(_.data))))
330  rename.io.fpReadPorts := VecInit(rat.io.fpReadPorts.map(x => VecInit(x.map(_.data))))
331  rename.io.vecReadPorts := VecInit(rat.io.vecReadPorts.map(x => VecInit(x.map(_.data))))
332  rename.io.int_need_free := rat.io.int_need_free
333  rename.io.int_old_pdest := rat.io.int_old_pdest
334  rename.io.fp_old_pdest := rat.io.fp_old_pdest
335  rename.io.vec_old_pdest := rat.io.vec_old_pdest
336  rename.io.debug_int_rat := rat.io.debug_int_rat
337  rename.io.debug_fp_rat := rat.io.debug_fp_rat
338  rename.io.debug_vec_rat := rat.io.debug_vec_rat
339  rename.io.debug_vconfig_rat := rat.io.debug_vconfig_rat
340  rename.io.stallReason.in <> decode.io.stallReason.out
341  rename.io.snpt.snptEnq := DontCare
342  rename.io.snpt.snptDeq := snpt.io.deq
343  rename.io.snpt.useSnpt := useSnpt
344  rename.io.snpt.snptSelect := snptSelect
345
346  // prevent rob from generating snapshot when full here
347  val renameOut = Wire(chiselTypeOf(rename.io.out))
348  renameOut <> rename.io.out
349  when(isFull(snpt.io.enqPtr, snpt.io.deqPtr)) {
350    renameOut.head.bits.snapshot := false.B
351  }
352
353  // pipeline between rename and dispatch
354  for (i <- 0 until RenameWidth) {
355    PipelineConnect(renameOut(i), dispatch.io.fromRename(i), dispatch.io.recv(i), s1_s3_redirect.valid)
356  }
357
358  dispatch.io.hartId := io.fromTop.hartId
359  dispatch.io.redirect := s1_s3_redirect
360  dispatch.io.enqRob <> rob.io.enq
361  dispatch.io.robHead := rob.io.debugRobHead
362  dispatch.io.stallReason <> rename.io.stallReason.out
363  dispatch.io.lqCanAccept := io.lqCanAccept
364  dispatch.io.sqCanAccept := io.sqCanAccept
365  dispatch.io.robHeadNotReady := rob.io.headNotReady
366  dispatch.io.robFull := rob.io.robFull
367  dispatch.io.singleStep := RegNext(io.csrCtrl.singlestep)
368
369  intDq.io.enq <> dispatch.io.toIntDq
370  intDq.io.redirect <> s2_s4_redirect
371
372  fpDq.io.enq <> dispatch.io.toFpDq
373  fpDq.io.redirect <> s2_s4_redirect
374
375  lsDq.io.enq <> dispatch.io.toLsDq
376  lsDq.io.redirect <> s2_s4_redirect
377
378  io.toIssueBlock.intUops <> intDq.io.deq
379  io.toIssueBlock.vfUops  <> fpDq.io.deq
380  io.toIssueBlock.memUops <> lsDq.io.deq
381  io.toIssueBlock.allocPregs <> dispatch.io.allocPregs
382  io.toIssueBlock.flush   <> s2_s4_redirect
383
384  pcMem.io.wen.head   := RegNext(io.frontend.fromFtq.pc_mem_wen)
385  pcMem.io.waddr.head := RegNext(io.frontend.fromFtq.pc_mem_waddr)
386  pcMem.io.wdata.head := RegNext(io.frontend.fromFtq.pc_mem_wdata)
387
388  private val jumpPcVec         : Vec[UInt] = Wire(Vec(params.numPcReadPort, UInt(VAddrData().dataWidth.W)))
389  io.toIssueBlock.pcVec := jumpPcVec
390
391  io.toDataPath.flush := s2_s4_redirect
392  io.toExuBlock.flush := s2_s4_redirect
393
394  for ((pcMemIdx, i) <- pcMemRdIndexes("exu").zipWithIndex) {
395    pcMem.io.raddr(pcMemIdx) := intDq.io.deqNext(i).ftqPtr.value
396    jumpPcVec(i) := pcMem.io.rdata(pcMemIdx).getPc(RegNext(intDq.io.deqNext(i).ftqOffset))
397  }
398
399  val dqOuts = Seq(io.toIssueBlock.intUops) ++ Seq(io.toIssueBlock.vfUops) ++ Seq(io.toIssueBlock.memUops)
400  dqOuts.zipWithIndex.foreach { case (dqOut, dqIdx) =>
401    dqOut.map(_.bits.pc).zipWithIndex.map{ case (pc, portIdx) =>
402      if(params.allSchdParams(dqIdx).numPcReadPort > 0){
403        val realJumpPcVec = jumpPcVec.drop(params.allSchdParams.take(dqIdx).map(_.numPcReadPort).sum).take(params.allSchdParams(dqIdx).numPcReadPort)
404        pc := realJumpPcVec(portIdx)
405      }
406    }
407  }
408
409  rob.io.hartId := io.fromTop.hartId
410  rob.io.redirect := s1_s3_redirect
411  rob.io.writeback := delayedNotFlushedWriteBack
412
413  io.redirect := s1_s3_redirect
414
415  // rob to int block
416  io.robio.csr <> rob.io.csr
417  // When wfi is disabled, it will not block ROB commit.
418  rob.io.csr.wfiEvent := io.robio.csr.wfiEvent
419  rob.io.wfi_enable := decode.io.csrCtrl.wfi_enable
420
421  io.toTop.cpuHalt := DelayN(rob.io.cpu_halt, 5)
422
423  io.robio.csr.perfinfo.retiredInstr <> RegNext(rob.io.csr.perfinfo.retiredInstr)
424  io.robio.exception := rob.io.exception
425  io.robio.exception.bits.pc := s1_robFlushPc
426
427  // rob to mem block
428  io.robio.lsq <> rob.io.lsq
429
430  io.debug_int_rat := rat.io.diff_int_rat
431  io.debug_fp_rat := rat.io.diff_fp_rat
432  io.debug_vec_rat := rat.io.diff_vec_rat
433  io.debug_vconfig_rat := rat.io.diff_vconfig_rat
434
435  rob.io.debug_ls := io.robio.debug_ls
436  rob.io.debugHeadLsIssue := io.robio.robHeadLsIssue
437  rob.io.lsTopdownInfo := io.robio.lsTopdownInfo
438  io.robio.robDeqPtr := rob.io.robDeqPtr
439
440  io.perfInfo.ctrlInfo.robFull := RegNext(rob.io.robFull)
441  io.perfInfo.ctrlInfo.intdqFull := RegNext(intDq.io.dqFull)
442  io.perfInfo.ctrlInfo.fpdqFull := RegNext(fpDq.io.dqFull)
443  io.perfInfo.ctrlInfo.lsdqFull := RegNext(lsDq.io.dqFull)
444
445  val pfevent = Module(new PFEvent)
446  pfevent.io.distribute_csr := RegNext(io.csrCtrl.distribute_csr)
447  val csrevents = pfevent.io.hpmevent.slice(8,16)
448
449  val perfinfo = IO(new Bundle(){
450    val perfEventsRs      = Input(Vec(params.IqCnt, new PerfEvent))
451    val perfEventsEu0     = Input(Vec(6, new PerfEvent))
452    val perfEventsEu1     = Input(Vec(6, new PerfEvent))
453  })
454
455  val allPerfEvents = Seq(decode, rename, dispatch, intDq, fpDq, lsDq, rob).flatMap(_.getPerf)
456  val hpmEvents = allPerfEvents ++ perfinfo.perfEventsEu0 ++ perfinfo.perfEventsEu1 ++ perfinfo.perfEventsRs
457  val perfEvents = HPerfMonitor(csrevents, hpmEvents).getPerfEvents
458  generatePerfEvent()
459}
460
461class CtrlBlockIO()(implicit p: Parameters, params: BackendParams) extends XSBundle {
462  val fromTop = new Bundle {
463    val hartId = Input(UInt(8.W))
464  }
465  val toTop = new Bundle {
466    val cpuHalt = Output(Bool())
467  }
468  val frontend = Flipped(new FrontendToCtrlIO())
469  val toIssueBlock = new Bundle {
470    val flush = ValidIO(new Redirect)
471    val allocPregs = Vec(RenameWidth, Output(new ResetPregStateReq))
472    val intUops = Vec(dpParams.IntDqDeqWidth, DecoupledIO(new DynInst))
473    val vfUops = Vec(dpParams.FpDqDeqWidth, DecoupledIO(new DynInst))
474    val memUops = Vec(dpParams.LsDqDeqWidth, DecoupledIO(new DynInst))
475    val pcVec = Output(Vec(params.numPcReadPort, UInt(VAddrData().dataWidth.W)))
476  }
477  val fromDataPath = new Bundle{
478    val vtype = Input(new VType)
479  }
480  val toDataPath = new Bundle {
481    val vtypeAddr = Output(UInt(PhyRegIdxWidth.W))
482    val flush = ValidIO(new Redirect)
483  }
484  val toExuBlock = new Bundle {
485    val flush = ValidIO(new Redirect)
486  }
487  val fromWB = new Bundle {
488    val wbData = Flipped(MixedVec(params.genWrite2CtrlBundles))
489  }
490  val redirect = ValidIO(new Redirect)
491  val fromMem = new Bundle {
492    val stIn = Vec(params.StaCnt, Flipped(ValidIO(new DynInst))) // use storeSetHit, ssid, robIdx
493    val violation = Flipped(ValidIO(new Redirect))
494  }
495  val memLdPcRead = Vec(params.LduCnt, Flipped(new FtqRead(UInt(VAddrBits.W))))
496  val csrCtrl = Input(new CustomCSRCtrlIO)
497  val robio = new Bundle {
498    val csr = new RobCSRIO
499    val exception = ValidIO(new ExceptionInfo)
500    val lsq = new RobLsqIO
501    val lsTopdownInfo = Vec(params.LduCnt, Input(new LsTopdownInfo))
502    val debug_ls = Input(new DebugLSIO())
503    val robHeadLsIssue = Input(Bool())
504    val robDeqPtr = Output(new RobPtr)
505  }
506
507  val perfInfo = Output(new Bundle{
508    val ctrlInfo = new Bundle {
509      val robFull   = Bool()
510      val intdqFull = Bool()
511      val fpdqFull  = Bool()
512      val lsdqFull  = Bool()
513    }
514  })
515  val debug_int_rat = Vec(32, Output(UInt(PhyRegIdxWidth.W)))
516  val debug_fp_rat = Vec(32, Output(UInt(PhyRegIdxWidth.W)))
517  val debug_vec_rat = Vec(32, Output(UInt(PhyRegIdxWidth.W)))
518  val debug_vconfig_rat = Output(UInt(PhyRegIdxWidth.W)) // TODO: use me
519
520  val sqCanAccept = Input(Bool())
521  val lqCanAccept = Input(Bool())
522}
523
524class NamedIndexes(namedCnt: Seq[(String, Int)]) {
525  require(namedCnt.map(_._1).distinct.size == namedCnt.size, "namedCnt should not have the same name")
526
527  val maxIdx = namedCnt.map(_._2).sum
528  val nameRangeMap: Map[String, (Int, Int)] = namedCnt.indices.map { i =>
529    val begin = namedCnt.slice(0, i).map(_._2).sum
530    val end = begin + namedCnt(i)._2
531    (namedCnt(i)._1, (begin, end))
532  }.toMap
533
534  def apply(name: String): Seq[Int] = {
535    require(nameRangeMap.contains(name))
536    nameRangeMap(name)._1 until nameRangeMap(name)._2
537  }
538}
539