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 utils._ 23import xiangshan._ 24import xiangshan.backend.decode.{DecodeStage, ImmUnion} 25import xiangshan.backend.dispatch.{Dispatch, DispatchQueue} 26import xiangshan.backend.rename.{Rename, RenameTableWrapper} 27import xiangshan.backend.rob.{Rob, RobCSRIO, RobLsqIO} 28import xiangshan.backend.fu.{PFEvent} 29import xiangshan.frontend.{FtqPtr, FtqRead} 30import xiangshan.mem.LsqEnqIO 31import difftest._ 32 33class CtrlToFtqIO(implicit p: Parameters) extends XSBundle { 34 val rob_commits = Vec(CommitWidth, Valid(new RobCommitInfo)) 35 val stage2Redirect = Valid(new Redirect) 36 val stage3Redirect = ValidIO(new Redirect) 37 val robFlush = ValidIO(new Redirect) 38} 39 40class RedirectGenerator(implicit p: Parameters) extends XSModule 41 with HasCircularQueuePtrHelper { 42 val numRedirect = exuParameters.JmpCnt + exuParameters.AluCnt 43 val io = IO(new Bundle() { 44 val exuMispredict = Vec(numRedirect, Flipped(ValidIO(new ExuOutput))) 45 val loadReplay = Flipped(ValidIO(new Redirect)) 46 val flush = Input(Bool()) 47 val stage1PcRead = Vec(numRedirect+1, new FtqRead(UInt(VAddrBits.W))) 48 val stage2Redirect = ValidIO(new Redirect) 49 val stage3Redirect = ValidIO(new Redirect) 50 val memPredUpdate = Output(new MemPredUpdateReq) 51 val memPredPcRead = new FtqRead(UInt(VAddrBits.W)) // read req send form stage 2 52 }) 53 /* 54 LoadQueue Jump ALU0 ALU1 ALU2 ALU3 exception Stage1 55 | | | | | | | 56 |============= reg & compare =====| | ======== 57 | | 58 | | 59 | | Stage2 60 | | 61 redirect (flush backend) | 62 | | 63 === reg === | ======== 64 | | 65 |----- mux (exception first) -----| Stage3 66 | 67 redirect (send to frontend) 68 */ 69 private class Wrapper(val n: Int) extends Bundle { 70 val redirect = new Redirect 71 val valid = Bool() 72 val idx = UInt(log2Up(n).W) 73 } 74 def selectOldestRedirect(xs: Seq[Valid[Redirect]]): Vec[Bool] = { 75 val compareVec = (0 until xs.length).map(i => (0 until i).map(j => isAfter(xs(j).bits.robIdx, xs(i).bits.robIdx))) 76 val resultOnehot = VecInit((0 until xs.length).map(i => Cat((0 until xs.length).map(j => 77 (if (j < i) !xs(j).valid || compareVec(i)(j) 78 else if (j == i) xs(i).valid 79 else !xs(j).valid || !compareVec(j)(i)) 80 )).andR)) 81 resultOnehot 82 } 83 84 val redirects = io.exuMispredict.map(_.bits.redirect) :+ io.loadReplay.bits 85 val stage1FtqReadPcs = 86 (io.stage1PcRead zip redirects).map{ case (r, redirect) => 87 r(redirect.ftqIdx, redirect.ftqOffset) 88 } 89 90 def getRedirect(exuOut: Valid[ExuOutput]): ValidIO[Redirect] = { 91 val redirect = Wire(Valid(new Redirect)) 92 redirect.valid := exuOut.valid && exuOut.bits.redirect.cfiUpdate.isMisPred 93 redirect.bits := exuOut.bits.redirect 94 redirect 95 } 96 97 val jumpOut = io.exuMispredict.head 98 val allRedirect = VecInit(io.exuMispredict.map(x => getRedirect(x)) :+ io.loadReplay) 99 val oldestOneHot = selectOldestRedirect(allRedirect) 100 val needFlushVec = VecInit(allRedirect.map(_.bits.robIdx.needFlush(io.stage2Redirect) || io.flush)) 101 val oldestValid = VecInit(oldestOneHot.zip(needFlushVec).map{ case (v, f) => v && !f }).asUInt.orR 102 val oldestExuOutput = Mux1H(io.exuMispredict.indices.map(oldestOneHot), io.exuMispredict) 103 val oldestRedirect = Mux1H(oldestOneHot, allRedirect) 104 105 val s1_jumpTarget = RegEnable(jumpOut.bits.redirect.cfiUpdate.target, jumpOut.valid) 106 val s1_imm12_reg = RegNext(oldestExuOutput.bits.uop.ctrl.imm(11, 0)) 107 val s1_pd = RegNext(oldestExuOutput.bits.uop.cf.pd) 108 val s1_redirect_bits_reg = RegNext(oldestRedirect.bits) 109 val s1_redirect_valid_reg = RegNext(oldestValid) 110 val s1_redirect_onehot = RegNext(oldestOneHot) 111 112 // stage1 -> stage2 113 io.stage2Redirect.valid := s1_redirect_valid_reg && !io.flush 114 io.stage2Redirect.bits := s1_redirect_bits_reg 115 io.stage2Redirect.bits.cfiUpdate := DontCare 116 117 val s1_isReplay = s1_redirect_onehot.last 118 val s1_isJump = s1_redirect_onehot.head 119 val real_pc = Mux1H(s1_redirect_onehot, stage1FtqReadPcs) 120 val brTarget = real_pc + SignExt(ImmUnion.B.toImm32(s1_imm12_reg), XLEN) 121 val snpc = real_pc + Mux(s1_pd.isRVC, 2.U, 4.U) 122 val target = Mux(s1_isReplay, 123 real_pc, // replay from itself 124 Mux(s1_redirect_bits_reg.cfiUpdate.taken, 125 Mux(s1_isJump, s1_jumpTarget, brTarget), 126 snpc 127 ) 128 ) 129 130 // get pc from ftq 131 // valid only if redirect is caused by load violation 132 // store_pc is used to update store set 133 val store_pc = io.memPredPcRead(s1_redirect_bits_reg.stFtqIdx, s1_redirect_bits_reg.stFtqOffset) 134 135 // update load violation predictor if load violation redirect triggered 136 io.memPredUpdate.valid := RegNext(s1_isReplay && s1_redirect_valid_reg, init = false.B) 137 // update wait table 138 io.memPredUpdate.waddr := RegNext(XORFold(real_pc(VAddrBits-1, 1), MemPredPCWidth)) 139 io.memPredUpdate.wdata := true.B 140 // update store set 141 io.memPredUpdate.ldpc := RegNext(XORFold(real_pc(VAddrBits-1, 1), MemPredPCWidth)) 142 // store pc is ready 1 cycle after s1_isReplay is judged 143 io.memPredUpdate.stpc := XORFold(store_pc(VAddrBits-1, 1), MemPredPCWidth) 144 145 val s2_target = RegEnable(target, enable = s1_redirect_valid_reg) 146 val s2_pd = RegEnable(s1_pd, enable = s1_redirect_valid_reg) 147 val s2_pc = RegEnable(real_pc, enable = s1_redirect_valid_reg) 148 val s2_redirect_bits_reg = RegEnable(s1_redirect_bits_reg, enable = s1_redirect_valid_reg) 149 val s2_redirect_valid_reg = RegNext(s1_redirect_valid_reg && !io.flush, init = false.B) 150 151 io.stage3Redirect.valid := s2_redirect_valid_reg 152 io.stage3Redirect.bits := s2_redirect_bits_reg 153 val stage3CfiUpdate = io.stage3Redirect.bits.cfiUpdate 154 stage3CfiUpdate.pc := s2_pc 155 stage3CfiUpdate.pd := s2_pd 156 stage3CfiUpdate.predTaken := s2_redirect_bits_reg.cfiUpdate.predTaken 157 stage3CfiUpdate.target := s2_target 158 stage3CfiUpdate.taken := s2_redirect_bits_reg.cfiUpdate.taken 159 stage3CfiUpdate.isMisPred := s2_redirect_bits_reg.cfiUpdate.isMisPred 160 161 // recover runahead checkpoint if redirect 162 if (!env.FPGAPlatform) { 163 val runahead_redirect = Module(new DifftestRunaheadRedirectEvent) 164 runahead_redirect.io.clock := clock 165 runahead_redirect.io.coreid := hardId.U 166 runahead_redirect.io.valid := io.stage3Redirect.valid 167 runahead_redirect.io.pc := s2_pc // for debug only 168 runahead_redirect.io.target_pc := s2_target // for debug only 169 runahead_redirect.io.checkpoint_id := io.stage3Redirect.bits.debug_runahead_checkpoint_id // make sure it is right 170 } 171} 172 173class CtrlBlock(implicit p: Parameters) extends XSModule 174 with HasCircularQueuePtrHelper { 175 val io = IO(new Bundle { 176 val frontend = Flipped(new FrontendToCtrlIO) 177 val allocPregs = Vec(RenameWidth, Output(new ResetPregStateReq)) 178 val dispatch = Vec(3*dpParams.IntDqDeqWidth, DecoupledIO(new MicroOp)) 179 // from int block 180 val exuRedirect = Vec(exuParameters.AluCnt + exuParameters.JmpCnt, Flipped(ValidIO(new ExuOutput))) 181 val stIn = Vec(exuParameters.StuCnt, Flipped(ValidIO(new ExuInput))) 182 val stOut = Vec(exuParameters.StuCnt, Flipped(ValidIO(new ExuOutput))) 183 val memoryViolation = Flipped(ValidIO(new Redirect)) 184 val jumpPc = Output(UInt(VAddrBits.W)) 185 val jalr_target = Output(UInt(VAddrBits.W)) 186 val robio = new Bundle { 187 // to int block 188 val toCSR = new RobCSRIO 189 val exception = ValidIO(new ExceptionInfo) 190 // to mem block 191 val lsq = new RobLsqIO 192 } 193 val csrCtrl = Input(new CustomCSRCtrlIO) 194 val perfInfo = Output(new Bundle{ 195 val ctrlInfo = new Bundle { 196 val robFull = Input(Bool()) 197 val intdqFull = Input(Bool()) 198 val fpdqFull = Input(Bool()) 199 val lsdqFull = Input(Bool()) 200 } 201 }) 202 val writeback = Vec(NRIntWritePorts + NRFpWritePorts, Flipped(ValidIO(new ExuOutput))) 203 // redirect out 204 val redirect = ValidIO(new Redirect) 205 val debug_int_rat = Vec(32, Output(UInt(PhyRegIdxWidth.W))) 206 val debug_fp_rat = Vec(32, Output(UInt(PhyRegIdxWidth.W))) 207 }) 208 209 val decode = Module(new DecodeStage) 210 val rat = Module(new RenameTableWrapper) 211 val rename = Module(new Rename) 212 val dispatch = Module(new Dispatch) 213 val intDq = Module(new DispatchQueue(dpParams.IntDqSize, RenameWidth, dpParams.IntDqDeqWidth, "int")) 214 val fpDq = Module(new DispatchQueue(dpParams.FpDqSize, RenameWidth, dpParams.FpDqDeqWidth, "fp")) 215 val lsDq = Module(new DispatchQueue(dpParams.LsDqSize, RenameWidth, dpParams.LsDqDeqWidth, "ls")) 216 val redirectGen = Module(new RedirectGenerator) 217 218 val robWbSize = NRIntWritePorts + NRFpWritePorts + exuParameters.StuCnt 219 val rob = Module(new Rob(robWbSize)) 220 221 val robPcRead = io.frontend.fromFtq.getRobFlushPcRead 222 val flushPC = robPcRead(rob.io.flushOut.bits.ftqIdx, rob.io.flushOut.bits.ftqOffset) 223 224 val flushRedirect = Wire(Valid(new Redirect)) 225 flushRedirect.valid := RegNext(rob.io.flushOut.valid) 226 flushRedirect.bits := RegEnable(rob.io.flushOut.bits, rob.io.flushOut.valid) 227 flushRedirect.bits.cfiUpdate.target := Mux(io.robio.toCSR.isXRet || rob.io.exception.valid, 228 io.robio.toCSR.trapTarget, 229 Mux(flushRedirect.bits.flushItself(), 230 flushPC, // replay inst 231 flushPC + 4.U // flush pipe 232 ) 233 ) 234 235 val flushRedirectReg = Wire(Valid(new Redirect)) 236 flushRedirectReg.valid := RegNext(flushRedirect.valid, init = false.B) 237 flushRedirectReg.bits := RegEnable(flushRedirect.bits, enable = flushRedirect.valid) 238 239 val stage2Redirect = Mux(flushRedirect.valid, flushRedirect, redirectGen.io.stage2Redirect) 240 val stage3Redirect = Mux(flushRedirectReg.valid, flushRedirectReg, redirectGen.io.stage3Redirect) 241 242 val exuRedirect = io.exuRedirect.map(x => { 243 val valid = x.valid && x.bits.redirectValid 244 val killedByOlder = x.bits.uop.robIdx.needFlush(stage2Redirect) 245 val delayed = Wire(Valid(new ExuOutput)) 246 delayed.valid := RegNext(valid && !killedByOlder, init = false.B) 247 delayed.bits := RegEnable(x.bits, x.valid) 248 delayed 249 }) 250 val loadReplay = Wire(Valid(new Redirect)) 251 loadReplay.valid := RegNext(io.memoryViolation.valid && 252 !io.memoryViolation.bits.robIdx.needFlush(stage2Redirect), 253 init = false.B 254 ) 255 loadReplay.bits := RegEnable(io.memoryViolation.bits, io.memoryViolation.valid) 256 io.frontend.fromFtq.getRedirectPcRead <> redirectGen.io.stage1PcRead 257 io.frontend.fromFtq.getMemPredPcRead <> redirectGen.io.memPredPcRead 258 redirectGen.io.exuMispredict <> exuRedirect 259 redirectGen.io.loadReplay <> loadReplay 260 redirectGen.io.flush := RegNext(rob.io.flushOut.valid) 261 262 for(i <- 0 until CommitWidth){ 263 io.frontend.toFtq.rob_commits(i).valid := rob.io.commits.valid(i) && !rob.io.commits.isWalk 264 io.frontend.toFtq.rob_commits(i).bits := rob.io.commits.info(i) 265 } 266 io.frontend.toFtq.stage2Redirect <> stage2Redirect 267 io.frontend.toFtq.robFlush <> RegNext(rob.io.flushOut) 268 io.frontend.toFtq.stage3Redirect := stage3Redirect 269 270 decode.io.in <> io.frontend.cfVec 271 // currently, we only update wait table when isReplay 272 decode.io.memPredUpdate(0) <> RegNext(redirectGen.io.memPredUpdate) 273 decode.io.memPredUpdate(1) := DontCare 274 decode.io.memPredUpdate(1).valid := false.B 275 decode.io.csrCtrl := RegNext(io.csrCtrl) 276 277 rat.io.robCommits := rob.io.commits 278 for ((r, i) <- rat.io.intReadPorts.zipWithIndex) { 279 val raddr = decode.io.out(i).bits.ctrl.lsrc.take(2) :+ decode.io.out(i).bits.ctrl.ldest 280 r.map(_.addr).zip(raddr).foreach(x => x._1 := x._2) 281 rename.io.intReadPorts(i) := r.map(_.data) 282 r.foreach(_.hold := !rename.io.in(i).ready) 283 } 284 rat.io.intRenamePorts := rename.io.intRenamePorts 285 for ((r, i) <- rat.io.fpReadPorts.zipWithIndex) { 286 val raddr = decode.io.out(i).bits.ctrl.lsrc.take(3) :+ decode.io.out(i).bits.ctrl.ldest 287 r.map(_.addr).zip(raddr).foreach(x => x._1 := x._2) 288 rename.io.fpReadPorts(i) := r.map(_.data) 289 r.foreach(_.hold := !rename.io.in(i).ready) 290 } 291 rat.io.fpRenamePorts := rename.io.fpRenamePorts 292 rat.io.debug_int_rat <> io.debug_int_rat 293 rat.io.debug_fp_rat <> io.debug_fp_rat 294 295 // pipeline between decode and rename 296 for (i <- 0 until RenameWidth) { 297 PipelineConnect(decode.io.out(i), rename.io.in(i), rename.io.in(i).ready, 298 stage2Redirect.valid || stage3Redirect.valid) 299 } 300 301 rename.io.redirect <> stage2Redirect 302 rename.io.robCommits <> rob.io.commits 303 304 // pipeline between rename and dispatch 305 for (i <- 0 until RenameWidth) { 306 PipelineConnect(rename.io.out(i), dispatch.io.fromRename(i), dispatch.io.recv(i), stage2Redirect.valid) 307 } 308 309 dispatch.io.redirect <> stage2Redirect 310 dispatch.io.enqRob <> rob.io.enq 311 dispatch.io.toIntDq <> intDq.io.enq 312 dispatch.io.toFpDq <> fpDq.io.enq 313 dispatch.io.toLsDq <> lsDq.io.enq 314 dispatch.io.allocPregs <> io.allocPregs 315 dispatch.io.csrCtrl <> io.csrCtrl 316 dispatch.io.storeIssue <> io.stIn 317 dispatch.io.singleStep := false.B 318 319 intDq.io.redirect <> stage2Redirect 320 fpDq.io.redirect <> stage2Redirect 321 lsDq.io.redirect <> stage2Redirect 322 323 io.dispatch <> intDq.io.deq ++ lsDq.io.deq ++ fpDq.io.deq 324 325 val pingpong = RegInit(false.B) 326 pingpong := !pingpong 327 val jumpInst = Mux(pingpong && (exuParameters.AluCnt > 2).B, io.dispatch(2).bits, io.dispatch(0).bits) 328 val jumpPcRead = io.frontend.fromFtq.getJumpPcRead 329 io.jumpPc := jumpPcRead(jumpInst.cf.ftqPtr, jumpInst.cf.ftqOffset) 330 val jumpTargetRead = io.frontend.fromFtq.target_read 331 io.jalr_target := jumpTargetRead(jumpInst.cf.ftqPtr, jumpInst.cf.ftqOffset) 332 333 rob.io.redirect <> stage2Redirect 334 val exeWbResults = VecInit(io.writeback ++ io.stOut) 335 val timer = GTimer() 336 for((rob_wb, wb) <- rob.io.exeWbResults.zip(exeWbResults)) { 337 rob_wb.valid := RegNext(wb.valid && !wb.bits.uop.robIdx.needFlush(stage2Redirect)) 338 rob_wb.bits := RegNext(wb.bits) 339 rob_wb.bits.uop.debugInfo.writebackTime := timer 340 } 341 342 io.redirect <> stage2Redirect 343 344 // rob to int block 345 io.robio.toCSR <> rob.io.csr 346 io.robio.toCSR.perfinfo.retiredInstr <> RegNext(rob.io.csr.perfinfo.retiredInstr) 347 io.robio.exception := rob.io.exception 348 io.robio.exception.bits.uop.cf.pc := flushPC 349 350 // rob to mem block 351 io.robio.lsq <> rob.io.lsq 352 353 io.perfInfo.ctrlInfo.robFull := RegNext(rob.io.robFull) 354 io.perfInfo.ctrlInfo.intdqFull := RegNext(intDq.io.dqFull) 355 io.perfInfo.ctrlInfo.fpdqFull := RegNext(fpDq.io.dqFull) 356 io.perfInfo.ctrlInfo.lsdqFull := RegNext(lsDq.io.dqFull) 357 358 val pfevent = Module(new PFEvent) 359 val csrevents = pfevent.io.hpmevent.slice(8,16) 360 val perfinfo = IO(new Bundle(){ 361 val perfEvents = Output(new PerfEventsBundle(csrevents.length)) 362 val perfEventsRs = Input(new PerfEventsBundle(NumRs)) 363 val perfEventsEu0 = Input(new PerfEventsBundle(10)) 364 val perfEventsEu1 = Input(new PerfEventsBundle(10)) 365 }) 366 367 if(print_perfcounter){ 368 val decode_perf = decode.perfEvents.map(_._1).zip(decode.perfinfo.perfEvents.perf_events) 369 val rename_perf = rename.perfEvents.map(_._1).zip(rename.perfinfo.perfEvents.perf_events) 370 val dispat_perf = dispatch.perfEvents.map(_._1).zip(dispatch.perfinfo.perfEvents.perf_events) 371 val intdq_perf = intDq.perfEvents.map(_._1).zip(intDq.perfinfo.perfEvents.perf_events) 372 val fpdq_perf = fpDq.perfEvents.map(_._1).zip(fpDq.perfinfo.perfEvents.perf_events) 373 val lsdq_perf = lsDq.perfEvents.map(_._1).zip(lsDq.perfinfo.perfEvents.perf_events) 374 val rob_perf = rob.perfEvents.map(_._1).zip(rob.perfinfo.perfEvents.perf_events) 375 val perfEvents = decode_perf ++ rename_perf ++ dispat_perf ++ intdq_perf ++ fpdq_perf ++ lsdq_perf ++ rob_perf 376 377 for (((perf_name,perf),i) <- perfEvents.zipWithIndex) { 378 println(s"ctrl perf $i: $perf_name") 379 } 380 } 381 382 val hpmEvents = decode.perfinfo.perfEvents.perf_events ++ rename.perfinfo.perfEvents.perf_events ++ 383 dispatch.perfinfo.perfEvents.perf_events ++ 384 intDq.perfinfo.perfEvents.perf_events ++ fpDq.perfinfo.perfEvents.perf_events ++ 385 lsDq.perfinfo.perfEvents.perf_events ++ rob.perfinfo.perfEvents.perf_events ++ 386 perfinfo.perfEventsEu0.perf_events ++ perfinfo.perfEventsEu1.perf_events ++ 387 perfinfo.perfEventsRs.perf_events 388 389 val perf_length = hpmEvents.length 390 val hpm_ctrl = Module(new HPerfmonitor(perf_length,csrevents.length)) 391 hpm_ctrl.io.hpm_event := csrevents 392 hpm_ctrl.io.events_sets.perf_events := hpmEvents 393 perfinfo.perfEvents := RegNext(hpm_ctrl.io.events_selected) 394 pfevent.io.distribute_csr := RegNext(io.csrCtrl.distribute_csr) 395} 396