1package xiangshan.mem 2 3import chisel3._ 4import chisel3.util._ 5import freechips.rocketchip.tile.HasFPUParameters 6import utils._ 7import xiangshan._ 8import xiangshan.cache._ 9import xiangshan.cache.{DCacheLineIO, DCacheWordIO, MemoryOpConstants, TlbRequestIO} 10import xiangshan.backend.LSUOpType 11import xiangshan.mem._ 12import xiangshan.backend.roq.RoqLsqIO 13import xiangshan.backend.fu.HasExceptionNO 14 15 16class LqPtr extends CircularQueuePtr(LqPtr.LoadQueueSize) { } 17 18object LqPtr extends HasXSParameter { 19 def apply(f: Bool, v: UInt): LqPtr = { 20 val ptr = Wire(new LqPtr) 21 ptr.flag := f 22 ptr.value := v 23 ptr 24 } 25} 26 27trait HasLoadHelper { this: XSModule => 28 def rdataHelper(uop: MicroOp, rdata: UInt): UInt = { 29 val fpWen = uop.ctrl.fpWen 30 LookupTree(uop.ctrl.fuOpType, List( 31 LSUOpType.lb -> SignExt(rdata(7, 0) , XLEN), 32 LSUOpType.lh -> SignExt(rdata(15, 0), XLEN), 33 LSUOpType.lw -> Mux(fpWen, rdata, SignExt(rdata(31, 0), XLEN)), 34 LSUOpType.ld -> Mux(fpWen, rdata, SignExt(rdata(63, 0), XLEN)), 35 LSUOpType.lbu -> ZeroExt(rdata(7, 0) , XLEN), 36 LSUOpType.lhu -> ZeroExt(rdata(15, 0), XLEN), 37 LSUOpType.lwu -> ZeroExt(rdata(31, 0), XLEN), 38 )) 39 } 40 41 def fpRdataHelper(uop: MicroOp, rdata: UInt): UInt = { 42 LookupTree(uop.ctrl.fuOpType, List( 43 LSUOpType.lw -> recode(rdata(31, 0), S), 44 LSUOpType.ld -> recode(rdata(63, 0), D) 45 )) 46 } 47} 48 49class LqEnqIO extends XSBundle { 50 val canAccept = Output(Bool()) 51 val sqCanAccept = Input(Bool()) 52 val needAlloc = Vec(RenameWidth, Input(Bool())) 53 val req = Vec(RenameWidth, Flipped(ValidIO(new MicroOp))) 54 val resp = Vec(RenameWidth, Output(new LqPtr)) 55} 56 57// Load Queue 58class LoadQueue extends XSModule 59 with HasDCacheParameters 60 with HasCircularQueuePtrHelper 61 with HasLoadHelper 62 with HasExceptionNO 63{ 64 val io = IO(new Bundle() { 65 val enq = new LqEnqIO 66 val brqRedirect = Input(Valid(new Redirect)) 67 val loadIn = Vec(LoadPipelineWidth, Flipped(Valid(new LsPipelineBundle))) 68 val storeIn = Vec(StorePipelineWidth, Flipped(Valid(new LsPipelineBundle))) 69 val loadDataForwarded = Vec(LoadPipelineWidth, Input(Bool())) 70 val ldout = Vec(2, DecoupledIO(new ExuOutput)) // writeback int load 71 val load_s1 = Vec(LoadPipelineWidth, Flipped(new LoadForwardQueryIO)) 72 val roq = Flipped(new RoqLsqIO) 73 val rollback = Output(Valid(new Redirect)) // replay now starts from load instead of store 74 val dcache = Flipped(ValidIO(new Refill)) 75 val uncache = new DCacheWordIO 76 val exceptionAddr = new ExceptionAddrIO 77 }) 78 79 val uop = Reg(Vec(LoadQueueSize, new MicroOp)) 80 // val data = Reg(Vec(LoadQueueSize, new LsRoqEntry)) 81 val dataModule = Module(new LoadQueueData(LoadQueueSize, wbNumRead = LoadPipelineWidth, wbNumWrite = LoadPipelineWidth)) 82 dataModule.io := DontCare 83 val vaddrModule = Module(new AsyncDataModuleTemplate(UInt(VAddrBits.W), LoadQueueSize, numRead = 1, numWrite = LoadPipelineWidth)) 84 vaddrModule.io := DontCare 85 val allocated = RegInit(VecInit(List.fill(LoadQueueSize)(false.B))) // lq entry has been allocated 86 val datavalid = RegInit(VecInit(List.fill(LoadQueueSize)(false.B))) // data is valid 87 val writebacked = RegInit(VecInit(List.fill(LoadQueueSize)(false.B))) // inst has been writebacked to CDB 88 val miss = Reg(Vec(LoadQueueSize, Bool())) // load inst missed, waiting for miss queue to accept miss request 89 // val listening = Reg(Vec(LoadQueueSize, Bool())) // waiting for refill result 90 val pending = Reg(Vec(LoadQueueSize, Bool())) // mmio pending: inst is an mmio inst, it will not be executed until it reachs the end of roq 91 92 val debug_mmio = Reg(Vec(LoadQueueSize, Bool())) // mmio: inst is an mmio inst 93 94 val enqPtrExt = RegInit(VecInit((0 until RenameWidth).map(_.U.asTypeOf(new LqPtr)))) 95 val deqPtrExt = RegInit(0.U.asTypeOf(new LqPtr)) 96 val deqPtrExtNext = Wire(new LqPtr) 97 val allowEnqueue = RegInit(true.B) 98 99 val enqPtr = enqPtrExt(0).value 100 val deqPtr = deqPtrExt.value 101 102 val deqMask = UIntToMask(deqPtr, LoadQueueSize) 103 val enqMask = UIntToMask(enqPtr, LoadQueueSize) 104 105 val commitCount = RegNext(io.roq.lcommit) 106 107 /** 108 * Enqueue at dispatch 109 * 110 * Currently, LoadQueue only allows enqueue when #emptyEntries > RenameWidth(EnqWidth) 111 */ 112 io.enq.canAccept := allowEnqueue 113 114 for (i <- 0 until RenameWidth) { 115 val offset = if (i == 0) 0.U else PopCount(io.enq.needAlloc.take(i)) 116 val lqIdx = enqPtrExt(offset) 117 val index = lqIdx.value 118 when (io.enq.req(i).valid && io.enq.canAccept && io.enq.sqCanAccept && !io.brqRedirect.valid) { 119 uop(index) := io.enq.req(i).bits 120 allocated(index) := true.B 121 datavalid(index) := false.B 122 writebacked(index) := false.B 123 miss(index) := false.B 124 // listening(index) := false.B 125 pending(index) := false.B 126 } 127 io.enq.resp(i) := lqIdx 128 } 129 XSDebug(p"(ready, valid): ${io.enq.canAccept}, ${Binary(Cat(io.enq.req.map(_.valid)))}\n") 130 131 /** 132 * Writeback load from load units 133 * 134 * Most load instructions writeback to regfile at the same time. 135 * However, 136 * (1) For an mmio instruction with exceptions, it writes back to ROB immediately. 137 * (2) For an mmio instruction without exceptions, it does not write back. 138 * The mmio instruction will be sent to lower level when it reaches ROB's head. 139 * After uncache response, it will write back through arbiter with loadUnit. 140 * (3) For cache misses, it is marked miss and sent to dcache later. 141 * After cache refills, it will write back through arbiter with loadUnit. 142 */ 143 for (i <- 0 until LoadPipelineWidth) { 144 dataModule.io.wb.wen(i) := false.B 145 vaddrModule.io.wen(i) := false.B 146 when(io.loadIn(i).fire()) { 147 when(io.loadIn(i).bits.miss) { 148 XSInfo(io.loadIn(i).valid, "load miss write to lq idx %d pc 0x%x vaddr %x paddr %x data %x mask %x forwardData %x forwardMask: %x mmio %x\n", 149 io.loadIn(i).bits.uop.lqIdx.asUInt, 150 io.loadIn(i).bits.uop.cf.pc, 151 io.loadIn(i).bits.vaddr, 152 io.loadIn(i).bits.paddr, 153 io.loadIn(i).bits.data, 154 io.loadIn(i).bits.mask, 155 io.loadIn(i).bits.forwardData.asUInt, 156 io.loadIn(i).bits.forwardMask.asUInt, 157 io.loadIn(i).bits.mmio 158 ) 159 }.otherwise { 160 XSInfo(io.loadIn(i).valid, "load hit write to cbd lqidx %d pc 0x%x vaddr %x paddr %x data %x mask %x forwardData %x forwardMask: %x mmio %x\n", 161 io.loadIn(i).bits.uop.lqIdx.asUInt, 162 io.loadIn(i).bits.uop.cf.pc, 163 io.loadIn(i).bits.vaddr, 164 io.loadIn(i).bits.paddr, 165 io.loadIn(i).bits.data, 166 io.loadIn(i).bits.mask, 167 io.loadIn(i).bits.forwardData.asUInt, 168 io.loadIn(i).bits.forwardMask.asUInt, 169 io.loadIn(i).bits.mmio 170 )} 171 val loadWbIndex = io.loadIn(i).bits.uop.lqIdx.value 172 datavalid(loadWbIndex) := (!io.loadIn(i).bits.miss || io.loadDataForwarded(i)) && !io.loadIn(i).bits.mmio 173 writebacked(loadWbIndex) := !io.loadIn(i).bits.miss && !io.loadIn(i).bits.mmio 174 175 val loadWbData = Wire(new LQDataEntry) 176 loadWbData.paddr := io.loadIn(i).bits.paddr 177 loadWbData.mask := io.loadIn(i).bits.mask 178 loadWbData.data := io.loadIn(i).bits.forwardData.asUInt // fwd data 179 loadWbData.fwdMask := io.loadIn(i).bits.forwardMask 180 dataModule.io.wbWrite(i, loadWbIndex, loadWbData) 181 dataModule.io.wb.wen(i) := true.B 182 183 vaddrModule.io.waddr(i) := loadWbIndex 184 vaddrModule.io.wdata(i) := io.loadIn(i).bits.vaddr 185 vaddrModule.io.wen(i) := true.B 186 187 debug_mmio(loadWbIndex) := io.loadIn(i).bits.mmio 188 189 val dcacheMissed = io.loadIn(i).bits.miss && !io.loadIn(i).bits.mmio 190 miss(loadWbIndex) := dcacheMissed && !io.loadDataForwarded(i) 191 pending(loadWbIndex) := io.loadIn(i).bits.mmio 192 uop(loadWbIndex).debugInfo.issueTime := io.loadIn(i).bits.uop.debugInfo.issueTime 193 } 194 } 195 196 when(io.dcache.valid) { 197 XSDebug("miss resp: paddr:0x%x data %x\n", io.dcache.bits.addr, io.dcache.bits.data) 198 } 199 200 // Refill 64 bit in a cycle 201 // Refill data comes back from io.dcache.resp 202 dataModule.io.refill.valid := io.dcache.valid 203 dataModule.io.refill.paddr := io.dcache.bits.addr 204 dataModule.io.refill.data := io.dcache.bits.data 205 206 (0 until LoadQueueSize).map(i => { 207 dataModule.io.refill.refillMask(i) := allocated(i) && miss(i) 208 when(dataModule.io.refill.valid && dataModule.io.refill.refillMask(i) && dataModule.io.refill.matchMask(i)) { 209 datavalid(i) := true.B 210 miss(i) := false.B 211 } 212 }) 213 214 // Writeback up to 2 missed load insts to CDB 215 // 216 // Pick 2 missed load (data refilled), write them back to cdb 217 // 2 refilled load will be selected from even/odd entry, separately 218 219 // Stage 0 220 // Generate writeback indexes 221 222 def getEvenBits(input: UInt): UInt = { 223 require(input.getWidth == LoadQueueSize) 224 VecInit((0 until LoadQueueSize/2).map(i => {input(2*i)})).asUInt 225 } 226 def getOddBits(input: UInt): UInt = { 227 require(input.getWidth == LoadQueueSize) 228 VecInit((0 until LoadQueueSize/2).map(i => {input(2*i+1)})).asUInt 229 } 230 231 val loadWbSel = Wire(Vec(LoadPipelineWidth, UInt(log2Up(LoadQueueSize).W))) // index selected last cycle 232 val loadWbSelV = Wire(Vec(LoadPipelineWidth, Bool())) // index selected in last cycle is valid 233 234 val loadWbSelVec = VecInit((0 until LoadQueueSize).map(i => { 235 allocated(i) && !writebacked(i) && datavalid(i) 236 })).asUInt() // use uint instead vec to reduce verilog lines 237 val evenDeqMask = getEvenBits(deqMask) 238 val oddDeqMask = getOddBits(deqMask) 239 // generate lastCycleSelect mask 240 val evenSelectMask = Mux(io.ldout(0).fire(), getEvenBits(UIntToOH(loadWbSel(0))), 0.U) 241 val oddSelectMask = Mux(io.ldout(1).fire(), getOddBits(UIntToOH(loadWbSel(1))), 0.U) 242 // generate real select vec 243 val loadEvenSelVec = getEvenBits(loadWbSelVec) & ~evenSelectMask 244 val loadOddSelVec = getOddBits(loadWbSelVec) & ~oddSelectMask 245 246 def toVec(a: UInt): Vec[Bool] = { 247 VecInit(a.asBools) 248 } 249 250 val loadWbSelGen = Wire(Vec(LoadPipelineWidth, UInt(log2Up(LoadQueueSize).W))) 251 val loadWbSelVGen = Wire(Vec(LoadPipelineWidth, Bool())) 252 loadWbSelGen(0) := Cat(getFirstOne(toVec(loadEvenSelVec), evenDeqMask), 0.U(1.W)) 253 loadWbSelVGen(0):= loadEvenSelVec.asUInt.orR 254 loadWbSelGen(1) := Cat(getFirstOne(toVec(loadOddSelVec), oddDeqMask), 1.U(1.W)) 255 loadWbSelVGen(1) := loadOddSelVec.asUInt.orR 256 257 (0 until LoadPipelineWidth).map(i => { 258 loadWbSel(i) := RegNext(loadWbSelGen(i)) 259 loadWbSelV(i) := RegNext(loadWbSelVGen(i), init = false.B) 260 when(io.ldout(i).fire()){ 261 // Mark them as writebacked, so they will not be selected in the next cycle 262 writebacked(loadWbSel(i)) := true.B 263 } 264 }) 265 266 // Stage 1 267 // Use indexes generated in cycle 0 to read data 268 // writeback data to cdb 269 (0 until LoadPipelineWidth).map(i => { 270 // data select 271 dataModule.io.wb.raddr(i) := loadWbSelGen(i) 272 val rdata = dataModule.io.wb.rdata(i).data 273 val seluop = uop(loadWbSel(i)) 274 val func = seluop.ctrl.fuOpType 275 val raddr = dataModule.io.wb.rdata(i).paddr 276 val rdataSel = LookupTree(raddr(2, 0), List( 277 "b000".U -> rdata(63, 0), 278 "b001".U -> rdata(63, 8), 279 "b010".U -> rdata(63, 16), 280 "b011".U -> rdata(63, 24), 281 "b100".U -> rdata(63, 32), 282 "b101".U -> rdata(63, 40), 283 "b110".U -> rdata(63, 48), 284 "b111".U -> rdata(63, 56) 285 )) 286 val rdataPartialLoad = rdataHelper(seluop, rdataSel) 287 288 // writeback missed int/fp load 289 // 290 // Int load writeback will finish (if not blocked) in one cycle 291 io.ldout(i).bits.uop := seluop 292 io.ldout(i).bits.uop.lqIdx := loadWbSel(i).asTypeOf(new LqPtr) 293 io.ldout(i).bits.data := rdataPartialLoad 294 io.ldout(i).bits.redirectValid := false.B 295 io.ldout(i).bits.redirect := DontCare 296 io.ldout(i).bits.brUpdate := DontCare 297 io.ldout(i).bits.debug.isMMIO := debug_mmio(loadWbSel(i)) 298 io.ldout(i).bits.debug.isPerfCnt := false.B 299 io.ldout(i).bits.fflags := DontCare 300 io.ldout(i).valid := loadWbSelV(i) 301 302 when(io.ldout(i).fire()) { 303 XSInfo("int load miss write to cbd roqidx %d lqidx %d pc 0x%x mmio %x\n", 304 io.ldout(i).bits.uop.roqIdx.asUInt, 305 io.ldout(i).bits.uop.lqIdx.asUInt, 306 io.ldout(i).bits.uop.cf.pc, 307 debug_mmio(loadWbSel(i)) 308 ) 309 } 310 311 }) 312 313 /** 314 * Load commits 315 * 316 * When load commited, mark it as !allocated and move deqPtrExt forward. 317 */ 318 (0 until CommitWidth).map(i => { 319 when(commitCount > i.U){ 320 allocated(deqPtr+i.U) := false.B 321 } 322 }) 323 324 def getFirstOne(mask: Vec[Bool], startMask: UInt) = { 325 val length = mask.length 326 val highBits = (0 until length).map(i => mask(i) & ~startMask(i)) 327 val highBitsUint = Cat(highBits.reverse) 328 PriorityEncoder(Mux(highBitsUint.orR(), highBitsUint, mask.asUInt)) 329 } 330 331 def getOldestInTwo(valid: Seq[Bool], uop: Seq[MicroOp]) = { 332 assert(valid.length == uop.length) 333 assert(valid.length == 2) 334 Mux(valid(0) && valid(1), 335 Mux(isAfter(uop(0).roqIdx, uop(1).roqIdx), uop(1), uop(0)), 336 Mux(valid(0) && !valid(1), uop(0), uop(1))) 337 } 338 339 def getAfterMask(valid: Seq[Bool], uop: Seq[MicroOp]) = { 340 assert(valid.length == uop.length) 341 val length = valid.length 342 (0 until length).map(i => { 343 (0 until length).map(j => { 344 Mux(valid(i) && valid(j), 345 isAfter(uop(i).roqIdx, uop(j).roqIdx), 346 Mux(!valid(i), true.B, false.B)) 347 }) 348 }) 349 } 350 351 /** 352 * Memory violation detection 353 * 354 * When store writes back, it searches LoadQueue for younger load instructions 355 * with the same load physical address. They loaded wrong data and need re-execution. 356 * 357 * Cycle 0: Store Writeback 358 * Generate match vector for store address with rangeMask(stPtr, enqPtr). 359 * Besides, load instructions in LoadUnit_S1 and S2 are also checked. 360 * Cycle 1: Redirect Generation 361 * There're three possible types of violations. Choose the oldest load. 362 * Prepare redirect request according to the detected violation. 363 * Cycle 2: Redirect Fire 364 * Fire redirect request (if valid) 365 */ 366 io.load_s1 := DontCare 367 def detectRollback(i: Int) = { 368 val startIndex = io.storeIn(i).bits.uop.lqIdx.value 369 val lqIdxMask = UIntToMask(startIndex, LoadQueueSize) 370 val xorMask = lqIdxMask ^ enqMask 371 val sameFlag = io.storeIn(i).bits.uop.lqIdx.flag === enqPtrExt(0).flag 372 val toEnqPtrMask = Mux(sameFlag, xorMask, ~xorMask) 373 374 // check if load already in lq needs to be rolledback 375 dataModule.io.violation(i).paddr := io.storeIn(i).bits.paddr 376 dataModule.io.violation(i).mask := io.storeIn(i).bits.mask 377 val addrMaskMatch = RegNext(dataModule.io.violation(i).violationMask) 378 val entryNeedCheck = RegNext(VecInit((0 until LoadQueueSize).map(j => { 379 allocated(j) && toEnqPtrMask(j) && (datavalid(j) || miss(j)) 380 }))) 381 val lqViolationVec = VecInit((0 until LoadQueueSize).map(j => { 382 addrMaskMatch(j) && entryNeedCheck(j) 383 })) 384 val lqViolation = lqViolationVec.asUInt().orR() 385 val lqViolationIndex = getFirstOne(lqViolationVec, RegNext(lqIdxMask)) 386 val lqViolationUop = uop(lqViolationIndex) 387 // lqViolationUop.lqIdx.flag := deqMask(lqViolationIndex) ^ deqPtrExt.flag 388 // lqViolationUop.lqIdx.value := lqViolationIndex 389 XSDebug(lqViolation, p"${Binary(Cat(lqViolationVec))}, $startIndex, $lqViolationIndex\n") 390 391 // when l/s writeback to roq together, check if rollback is needed 392 val wbViolationVec = RegNext(VecInit((0 until LoadPipelineWidth).map(j => { 393 io.loadIn(j).valid && 394 isAfter(io.loadIn(j).bits.uop.roqIdx, io.storeIn(i).bits.uop.roqIdx) && 395 io.storeIn(i).bits.paddr(PAddrBits - 1, 3) === io.loadIn(j).bits.paddr(PAddrBits - 1, 3) && 396 (io.storeIn(i).bits.mask & io.loadIn(j).bits.mask).orR 397 }))) 398 val wbViolation = wbViolationVec.asUInt().orR() 399 val wbViolationUop = getOldestInTwo(wbViolationVec, RegNext(VecInit(io.loadIn.map(_.bits.uop)))) 400 XSDebug(wbViolation, p"${Binary(Cat(wbViolationVec))}, $wbViolationUop\n") 401 402 // check if rollback is needed for load in l1 403 val l1ViolationVec = RegNext(VecInit((0 until LoadPipelineWidth).map(j => { 404 io.load_s1(j).valid && // L1 valid 405 isAfter(io.load_s1(j).uop.roqIdx, io.storeIn(i).bits.uop.roqIdx) && 406 io.storeIn(i).bits.paddr(PAddrBits - 1, 3) === io.load_s1(j).paddr(PAddrBits - 1, 3) && 407 (io.storeIn(i).bits.mask & io.load_s1(j).mask).orR 408 }))) 409 val l1Violation = l1ViolationVec.asUInt().orR() 410 val l1ViolationUop = getOldestInTwo(l1ViolationVec, RegNext(VecInit(io.load_s1.map(_.uop)))) 411 XSDebug(l1Violation, p"${Binary(Cat(l1ViolationVec))}, $l1ViolationUop\n") 412 413 val rollbackValidVec = Seq(lqViolation, wbViolation, l1Violation) 414 val rollbackUopVec = Seq(lqViolationUop, wbViolationUop, l1ViolationUop) 415 416 val mask = getAfterMask(rollbackValidVec, rollbackUopVec) 417 val oneAfterZero = mask(1)(0) 418 val rollbackUop = Mux(oneAfterZero && mask(2)(0), 419 rollbackUopVec(0), 420 Mux(!oneAfterZero && mask(2)(1), rollbackUopVec(1), rollbackUopVec(2))) 421 422 XSDebug( 423 l1Violation, 424 "need rollback (l4 load) pc %x roqidx %d target %x\n", 425 io.storeIn(i).bits.uop.cf.pc, io.storeIn(i).bits.uop.roqIdx.asUInt, l1ViolationUop.roqIdx.asUInt 426 ) 427 XSDebug( 428 lqViolation, 429 "need rollback (ld wb before store) pc %x roqidx %d target %x\n", 430 io.storeIn(i).bits.uop.cf.pc, io.storeIn(i).bits.uop.roqIdx.asUInt, lqViolationUop.roqIdx.asUInt 431 ) 432 XSDebug( 433 wbViolation, 434 "need rollback (ld/st wb together) pc %x roqidx %d target %x\n", 435 io.storeIn(i).bits.uop.cf.pc, io.storeIn(i).bits.uop.roqIdx.asUInt, wbViolationUop.roqIdx.asUInt 436 ) 437 438 (RegNext(io.storeIn(i).valid) && Cat(rollbackValidVec).orR, rollbackUop) 439 } 440 441 // rollback check 442 val rollback = Wire(Vec(StorePipelineWidth, Valid(new MicroOp))) 443 for (i <- 0 until StorePipelineWidth) { 444 val detectedRollback = detectRollback(i) 445 rollback(i).valid := detectedRollback._1 446 rollback(i).bits := detectedRollback._2 447 } 448 449 def rollbackSel(a: Valid[MicroOp], b: Valid[MicroOp]): ValidIO[MicroOp] = { 450 Mux( 451 a.valid, 452 Mux( 453 b.valid, 454 Mux(isAfter(a.bits.roqIdx, b.bits.roqIdx), b, a), // a,b both valid, sel oldest 455 a // sel a 456 ), 457 b // sel b 458 ) 459 } 460 461 val rollbackSelected = ParallelOperation(rollback, rollbackSel) 462 val lastCycleRedirect = RegNext(io.brqRedirect) 463 464 // S2: select rollback and generate rollback request 465 // Note that we use roqIdx - 1.U to flush the load instruction itself. 466 // Thus, here if last cycle's roqIdx equals to this cycle's roqIdx, it still triggers the redirect. 467 val rollbackGen = Wire(Valid(new Redirect)) 468 val rollbackReg = Reg(Valid(new Redirect)) 469 rollbackGen.valid := rollbackSelected.valid && 470 (!lastCycleRedirect.valid || !isAfter(rollbackSelected.bits.roqIdx, lastCycleRedirect.bits.roqIdx)) && 471 !(lastCycleRedirect.valid && lastCycleRedirect.bits.isUnconditional()) 472 473 rollbackGen.bits.roqIdx := rollbackSelected.bits.roqIdx 474 rollbackGen.bits.level := RedirectLevel.flush 475 rollbackGen.bits.interrupt := DontCare 476 rollbackGen.bits.pc := DontCare 477 rollbackGen.bits.target := rollbackSelected.bits.cf.pc 478 rollbackGen.bits.brTag := rollbackSelected.bits.brTag 479 480 rollbackReg := rollbackGen 481 482 // S3: fire rollback request 483 io.rollback := rollbackReg 484 io.rollback.valid := rollbackReg.valid && 485 (!lastCycleRedirect.valid || !isAfter(rollbackReg.bits.roqIdx, lastCycleRedirect.bits.roqIdx)) && 486 !(lastCycleRedirect.valid && lastCycleRedirect.bits.isUnconditional()) 487 488 when(io.rollback.valid) { 489 XSDebug("Mem rollback: pc %x roqidx %d\n", io.rollback.bits.pc, io.rollback.bits.roqIdx.asUInt) 490 } 491 492 /** 493 * Memory mapped IO / other uncached operations 494 * 495 * States: 496 * (1) writeback from store units: mark as pending 497 * (2) when they reach ROB's head, they can be sent to uncache channel 498 * (3) response from uncache channel: mark as datavalid 499 * (4) writeback to ROB (and other units): mark as writebacked 500 * (5) ROB commits the instruction: same as normal instructions 501 */ 502 //(2) when they reach ROB's head, they can be sent to uncache channel 503 val s_idle :: s_req :: s_resp :: s_wait :: Nil = Enum(4) 504 val uncacheState = RegInit(s_idle) 505 switch(uncacheState) { 506 is(s_idle) { 507 when(io.roq.pendingld && pending(deqPtr) && allocated(deqPtr)) { 508 uncacheState := s_req 509 } 510 } 511 is(s_req) { 512 when(io.uncache.req.fire()) { 513 uncacheState := s_resp 514 } 515 } 516 is(s_resp) { 517 when(io.uncache.resp.fire()) { 518 uncacheState := s_wait 519 } 520 } 521 is(s_wait) { 522 when(io.roq.commit) { 523 uncacheState := s_idle // ready for next mmio 524 } 525 } 526 } 527 io.uncache.req.valid := uncacheState === s_req 528 529 dataModule.io.uncache.raddr := deqPtrExtNext.value 530 531 io.uncache.req.bits.cmd := MemoryOpConstants.M_XRD 532 io.uncache.req.bits.addr := dataModule.io.uncache.rdata.paddr 533 io.uncache.req.bits.data := dataModule.io.uncache.rdata.data 534 io.uncache.req.bits.mask := dataModule.io.uncache.rdata.mask 535 536 io.uncache.req.bits.meta.id := DontCare 537 io.uncache.req.bits.meta.vaddr := DontCare 538 io.uncache.req.bits.meta.paddr := dataModule.io.uncache.rdata.paddr 539 io.uncache.req.bits.meta.uop := uop(deqPtr) 540 io.uncache.req.bits.meta.mmio := true.B 541 io.uncache.req.bits.meta.tlb_miss := false.B 542 io.uncache.req.bits.meta.mask := dataModule.io.uncache.rdata.mask 543 io.uncache.req.bits.meta.replay := false.B 544 545 io.uncache.resp.ready := true.B 546 547 when (io.uncache.req.fire()) { 548 pending(deqPtr) := false.B 549 550 XSDebug("uncache req: pc %x addr %x data %x op %x mask %x\n", 551 uop(deqPtr).cf.pc, 552 io.uncache.req.bits.addr, 553 io.uncache.req.bits.data, 554 io.uncache.req.bits.cmd, 555 io.uncache.req.bits.mask 556 ) 557 } 558 559 // (3) response from uncache channel: mark as datavalid 560 dataModule.io.uncache.wen := false.B 561 when(io.uncache.resp.fire()){ 562 datavalid(deqPtr) := true.B 563 dataModule.io.uncacheWrite(deqPtr, io.uncache.resp.bits.data(XLEN-1, 0)) 564 dataModule.io.uncache.wen := true.B 565 566 XSDebug("uncache resp: data %x\n", io.dcache.bits.data) 567 } 568 569 // Read vaddr for mem exception 570 vaddrModule.io.raddr(0) := deqPtr + commitCount 571 io.exceptionAddr.vaddr := vaddrModule.io.rdata(0) 572 573 // misprediction recovery / exception redirect 574 // invalidate lq term using robIdx 575 val needCancel = Wire(Vec(LoadQueueSize, Bool())) 576 for (i <- 0 until LoadQueueSize) { 577 needCancel(i) := uop(i).roqIdx.needFlush(io.brqRedirect) && allocated(i) 578 when (needCancel(i)) { 579 allocated(i) := false.B 580 } 581 } 582 583 /** 584 * update pointers 585 */ 586 val lastCycleCancelCount = PopCount(RegNext(needCancel)) 587 // when io.brqRedirect.valid, we don't allow eneuque even though it may fire. 588 val enqNumber = Mux(io.enq.canAccept && io.enq.sqCanAccept && !io.brqRedirect.valid, PopCount(io.enq.req.map(_.valid)), 0.U) 589 when (lastCycleRedirect.valid) { 590 // we recover the pointers in the next cycle after redirect 591 enqPtrExt := VecInit(enqPtrExt.map(_ - lastCycleCancelCount)) 592 }.otherwise { 593 enqPtrExt := VecInit(enqPtrExt.map(_ + enqNumber)) 594 } 595 596 deqPtrExtNext := deqPtrExt + commitCount 597 deqPtrExt := deqPtrExtNext 598 599 val lastLastCycleRedirect = RegNext(lastCycleRedirect.valid) 600 val validCount = distanceBetween(enqPtrExt(0), deqPtrExt) 601 602 allowEnqueue := validCount + enqNumber <= (LoadQueueSize - RenameWidth).U 603 604 // debug info 605 XSDebug("enqPtrExt %d:%d deqPtrExt %d:%d\n", enqPtrExt(0).flag, enqPtr, deqPtrExt.flag, deqPtr) 606 607 def PrintFlag(flag: Bool, name: String): Unit = { 608 when(flag) { 609 XSDebug(false, true.B, name) 610 }.otherwise { 611 XSDebug(false, true.B, " ") 612 } 613 } 614 615 for (i <- 0 until LoadQueueSize) { 616 if (i % 4 == 0) XSDebug("") 617 XSDebug(false, true.B, "%x [%x] ", uop(i).cf.pc, dataModule.io.debug(i).paddr) 618 PrintFlag(allocated(i), "a") 619 PrintFlag(allocated(i) && datavalid(i), "v") 620 PrintFlag(allocated(i) && writebacked(i), "w") 621 PrintFlag(allocated(i) && miss(i), "m") 622 // PrintFlag(allocated(i) && listening(i), "l") 623 PrintFlag(allocated(i) && pending(i), "p") 624 XSDebug(false, true.B, " ") 625 if (i % 4 == 3 || i == LoadQueueSize - 1) XSDebug(false, true.B, "\n") 626 } 627 628} 629