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rocket-chip/uncore/src/main/scala/cache.scala

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// See LICENSE for license details.
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package uncore
import Chisel._
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case object CacheName extends Field[String]
case object NSets extends Field[Int]
case object NWays extends Field[Int]
case object BlockOffBits extends Field[Int]
case object RowBits extends Field[Int]
case object WordBits extends Field[Int]
case object Replacer extends Field[() => ReplacementPolicy]
abstract trait CacheParameters extends UsesParameters {
val paddrBits = params(PAddrBits)
val vaddrBits = params(VAddrBits)
val pgIdxBits = params(PgIdxBits)
val nSets = params(NSets)
val blockOffBits = params(BlockOffBits)
val idxBits = log2Up(nSets)
val untagBits = blockOffBits + idxBits
val tagBits = paddrBits - untagBits
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val nWays = params(NWays)
val wayBits = log2Up(nWays)
val isDM = nWays == 1
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val wordBits = params(WordBits)
val wordBytes = wordBits/8
val wordOffBits = log2Up(wordBytes)
val rowBits = params(RowBits)
val rowWords = rowBits/wordBits
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val rowBytes = rowBits/8
val rowOffBits = log2Up(rowBytes)
}
abstract class CacheBundle extends Bundle with CacheParameters
abstract class CacheModule extends Module with CacheParameters
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abstract class ReplacementPolicy {
def way: UInt
def miss: Unit
def hit: Unit
}
class RandomReplacement(ways: Int) extends ReplacementPolicy {
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private val replace = Bool()
replace := Bool(false)
val lfsr = LFSR16(replace)
def way = if(ways == 1) UInt(0) else lfsr(log2Up(ways)-1,0)
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def miss = replace := Bool(true)
def hit = {}
}
abstract class Metadata extends CacheBundle {
val tag = Bits(width = tagBits)
val coh: CoherenceMetadata
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}
class MetaReadReq extends CacheBundle {
val idx = Bits(width = idxBits)
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}
class MetaWriteReq[T <: Metadata](gen: T) extends MetaReadReq {
val way_en = Bits(width = nWays)
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val data = gen.clone
override def clone = new MetaWriteReq(gen).asInstanceOf[this.type]
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}
class MetadataArray[T <: Metadata](makeRstVal: () => T) extends CacheModule {
val rstVal = makeRstVal()
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val io = new Bundle {
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val read = Decoupled(new MetaReadReq).flip
val write = Decoupled(new MetaWriteReq(rstVal.clone)).flip
val resp = Vec.fill(nWays){rstVal.clone.asOutput}
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}
val metabits = rstVal.getWidth
val rst_cnt = Reg(init=UInt(0, log2Up(nSets+1)))
val rst = rst_cnt < UInt(nSets)
val waddr = Mux(rst, rst_cnt, io.write.bits.idx)
val wdata = Mux(rst, rstVal, io.write.bits.data).toBits
val wmask = Mux(rst, SInt(-1), io.write.bits.way_en)
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when (rst) { rst_cnt := rst_cnt+UInt(1) }
val tag_arr = Mem(UInt(width = metabits*nWays), nSets, seqRead = true)
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when (rst || io.write.valid) {
tag_arr.write(waddr, Fill(nWays, wdata), FillInterleaved(metabits, wmask))
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}
val tags = tag_arr(RegEnable(io.read.bits.idx, io.read.valid))
for (w <- 0 until nWays) {
val m = tags(metabits*(w+1)-1, metabits*w)
io.resp(w) := rstVal.clone.fromBits(m)
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}
io.read.ready := !rst && !io.write.valid // so really this could be a 6T RAM
io.write.ready := !rst
}
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abstract trait L2HellaCacheParameters extends CacheParameters
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with CoherenceAgentParameters {
val idxMSB = idxBits-1
val idxLSB = 0
val refillCyclesPerBeat = params(TLDataBits)/rowBits
val refillCycles = refillCyclesPerBeat*params(TLDataBeats)
}
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abstract class L2HellaCacheBundle extends Bundle with L2HellaCacheParameters
abstract class L2HellaCacheModule extends Module with L2HellaCacheParameters
trait HasL2Id extends Bundle with CoherenceAgentParameters {
val id = UInt(width = log2Up(nTransactors))
}
trait HasL2InternalRequestState extends L2HellaCacheBundle {
val tag_match = Bool()
val meta = new L2Metadata
val way_en = Bits(width = nWays)
}
object L2Metadata {
def apply(tag: Bits, coh: MasterMetadata) = {
val meta = new L2Metadata
meta.tag := tag
meta.coh := coh
meta
}
}
class L2Metadata extends Metadata with L2HellaCacheParameters {
val coh = new MasterMetadata
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}
class L2MetaReadReq extends MetaReadReq with HasL2Id {
val tag = Bits(width = tagBits)
}
class L2MetaWriteReq extends MetaWriteReq[L2Metadata](new L2Metadata)
with HasL2Id {
override def clone = new L2MetaWriteReq().asInstanceOf[this.type]
}
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class L2MetaResp extends L2HellaCacheBundle
with HasL2Id
with HasL2InternalRequestState
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trait HasL2MetaReadIO extends L2HellaCacheBundle {
val read = Decoupled(new L2MetaReadReq)
val resp = Valid(new L2MetaResp).flip
}
trait HasL2MetaWriteIO extends L2HellaCacheBundle {
val write = Decoupled(new L2MetaWriteReq)
}
class L2MetaRWIO extends L2HellaCacheBundle with HasL2MetaReadIO with HasL2MetaWriteIO
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class L2MetadataArray extends L2HellaCacheModule {
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val io = new L2MetaRWIO().flip
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val meta = Module(new MetadataArray(() => L2Metadata(UInt(0), co.masterMetadataOnFlush)))
meta.io.read <> io.read
meta.io.write <> io.write
val s1_tag = RegEnable(io.read.bits.tag, io.read.valid)
val s1_id = RegEnable(io.read.bits.id, io.read.valid)
def wayMap[T <: Data](f: Int => T) = Vec((0 until nWays).map(f))
val s1_clk_en = Reg(next = io.read.fire())
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val s1_tag_eq_way = wayMap((w: Int) => meta.io.resp(w).tag === s1_tag)
val s1_tag_match_way = wayMap((w: Int) => s1_tag_eq_way(w) && co.isValid(meta.io.resp(w).coh)).toBits
val s2_tag_match_way = RegEnable(s1_tag_match_way, s1_clk_en)
val s2_tag_match = s2_tag_match_way.orR
val s2_hit_coh = Mux1H(s2_tag_match_way, wayMap((w: Int) => RegEnable(meta.io.resp(w).coh, s1_clk_en)))
val replacer = params(Replacer)()
val s1_replaced_way_en = UIntToOH(replacer.way)
val s2_replaced_way_en = UIntToOH(RegEnable(replacer.way, s1_clk_en))
val s2_repl_meta = Mux1H(s2_replaced_way_en, wayMap((w: Int) =>
RegEnable(meta.io.resp(w), s1_clk_en && s1_replaced_way_en(w))).toSeq)
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when(!s2_tag_match) { replacer.miss }
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io.resp.valid := Reg(next = s1_clk_en)
io.resp.bits.id := RegEnable(s1_id, s1_clk_en)
io.resp.bits.tag_match := s2_tag_match
io.resp.bits.meta := Mux(s2_tag_match,
L2Metadata(s2_repl_meta.tag, s2_hit_coh),
s2_repl_meta)
io.resp.bits.way_en := Mux(s2_tag_match, s2_tag_match_way, s2_replaced_way_en)
}
class L2DataReadReq extends L2HellaCacheBundle with HasL2Id {
val way_en = Bits(width = nWays)
val addr = Bits(width = tlAddrBits)
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}
class L2DataWriteReq extends L2DataReadReq {
val wmask = Bits(width = tlWriteMaskBits)
val data = Bits(width = tlDataBits)
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}
class L2DataResp extends Bundle with HasL2Id with TileLinkParameters {
val data = Bits(width = tlDataBits)
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}
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trait HasL2DataReadIO extends L2HellaCacheBundle {
val read = Decoupled(new L2DataReadReq)
val resp = Valid(new L2DataResp).flip
}
trait HasL2DataWriteIO extends L2HellaCacheBundle {
val write = Decoupled(new L2DataWriteReq)
}
class L2DataRWIO extends L2HellaCacheBundle with HasL2DataReadIO with HasL2DataWriteIO
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class L2DataArray extends L2HellaCacheModule {
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val io = new L2DataRWIO().flip
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val waddr = io.write.bits.addr
val raddr = io.read.bits.addr
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val wmask = FillInterleaved(8, io.write.bits.wmask)
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val resp = (0 until nWays).map { w =>
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val array = Mem(Bits(width=rowBits), nSets*refillCycles, seqRead = true)
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val reg_raddr = Reg(UInt())
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when (io.write.bits.way_en(w) && io.write.valid) {
array.write(waddr, io.write.bits.data, wmask)
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}.elsewhen (io.read.bits.way_en(w) && io.read.valid) {
reg_raddr := raddr
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}
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array(reg_raddr)
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}
io.resp.valid := ShiftRegister(io.read.fire(), 1)
io.resp.bits.id := ShiftRegister(io.read.bits.id, 1)
io.resp.bits.data := Mux1H(ShiftRegister(io.read.bits.way_en, 1), resp)
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io.read.ready := !io.write.valid // TODO 1R/W vs 1R1W?
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io.write.ready := Bool(true)
}
class L2HellaCache(bankId: Int, innerId: String, outerId: String) extends
CoherenceAgent(innerId, outerId) with L2HellaCacheParameters {
require(isPow2(nSets))
require(isPow2(nWays))
val tshrfile = Module(new TSHRFile(bankId, innerId, outerId))
val meta = Module(new L2MetadataArray)
val data = Module(new L2DataArray)
tshrfile.io.inner <> io.inner
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tshrfile.io.meta <> meta.io
tshrfile.io.data <> data.io
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io.outer <> tshrfile.io.outer
io.incoherent <> tshrfile.io.incoherent
}
class TSHRFile(bankId: Int, innerId: String, outerId: String) extends L2HellaCacheModule {
val io = new Bundle {
val inner = Bundle(new TileLinkIO, {case TLId => innerId}).flip
val outer = Bundle(new UncachedTileLinkIO, {case TLId => outerId})
val incoherent = Vec.fill(nClients){Bool()}.asInput
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val meta = new L2MetaRWIO
val data = new L2DataRWIO
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}
// Wiring helper funcs
def doOutputArbitration[T <: Data](out: DecoupledIO[T],
ins: Seq[DecoupledIO[T]],
count: Int = 1,
lock: T => Bool = (a: T) => Bool(true)) {
val arb = Module(new LockingRRArbiter(out.bits.clone, ins.size, count, lock))
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out <> arb.io.out
arb.io.in zip ins map { case (a, in) => a <> in }
}
def doInputRouting[T <: HasL2Id](in: ValidIO[T], outs: Seq[ValidIO[T]]) {
outs.map(_.bits := in.bits)
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outs.zipWithIndex.map { case (o, i) => o.valid := in.valid && (UInt(i) === in.bits.id) }
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}
// Create TSHRs for outstanding transactions
val trackerList = (0 until nReleaseTransactors).map { id =>
Module(new L2VoluntaryReleaseTracker(id, bankId, innerId, outerId))
} ++ (nReleaseTransactors until nTransactors).map { id =>
Module(new L2AcquireTracker(id, bankId, innerId, outerId))
}
// Propagate incoherence flags
trackerList.map(_.io.tile_incoherent := io.incoherent.toBits)
// Handle acquire transaction initiation
val acquire = io.inner.acquire
val any_acquire_conflict = trackerList.map(_.io.has_acquire_conflict).reduce(_||_)
val block_acquires = any_acquire_conflict
val alloc_arb = Module(new Arbiter(Bool(), trackerList.size))
for( i <- 0 until trackerList.size ) {
val t = trackerList(i).io.inner
alloc_arb.io.in(i).valid := t.acquire.ready
t.acquire.bits := acquire.bits
t.acquire.valid := alloc_arb.io.in(i).ready
}
acquire.ready := trackerList.map(_.io.inner.acquire.ready).reduce(_||_) && !block_acquires
alloc_arb.io.out.ready := acquire.valid && !block_acquires
// Handle releases, which might be voluntary and might have data
val release = io.inner.release
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val release_idx = Vec(trackerList.map(_.io.has_release_match)).indexWhere{b: Bool => b}
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for( i <- 0 until trackerList.size ) {
val t = trackerList(i).io.inner
t.release.bits := release.bits
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t.release.valid := release.valid && (release_idx === UInt(i))
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}
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release.ready := Vec(trackerList.map(_.io.inner.release.ready)).read(release_idx)
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// Wire finished transaction acks
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val finish = io.inner.finish
val finish_idx = finish.bits.payload.master_xact_id
trackerList.zipWithIndex.map { case (t, i) =>
t.io.inner.finish.valid := finish.valid && finish_idx === UInt(i)
}
trackerList.map(_.io.inner.finish.bits := finish.bits)
finish.ready := Vec(trackerList.map(_.io.inner.finish.ready)).read(finish_idx)
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// Wire probe requests to clients
doOutputArbitration(io.inner.probe, trackerList.map(_.io.inner.probe))
// Wire grant reply to initiating client
def hasData(m: LogicalNetworkIO[Grant]) = co.messageHasData(m.payload)
doOutputArbitration(io.inner.grant, trackerList.map(_.io.inner.grant), tlDataBeats, hasData _)
// Create an arbiter for the one memory port
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val outer_arb = Module(new UncachedTileLinkIOArbiterThatPassesId(trackerList.size),
{case TLId => outerId})
outer_arb.io.in zip trackerList map { case(arb, t) => arb <> t.io.outer }
io.outer <> outer_arb.io.out
// Wire local memories
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doOutputArbitration(io.meta.read, trackerList.map(_.io.meta.read))
doOutputArbitration(io.meta.write, trackerList.map(_.io.meta.write))
doOutputArbitration(io.data.read, trackerList.map(_.io.data.read))
doOutputArbitration(io.data.write, trackerList.map(_.io.data.write))
doInputRouting(io.meta.resp, trackerList.map(_.io.meta.resp))
doInputRouting(io.data.resp, trackerList.map(_.io.data.resp))
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}
abstract class L2XactTracker(innerId: String, outerId: String) extends L2HellaCacheModule {
val io = new Bundle {
val inner = Bundle(new TileLinkIO, {case TLId => innerId}).flip
val outer = Bundle(new UncachedTileLinkIO, {case TLId => outerId})
val tile_incoherent = Bits(INPUT, nClients)
val has_acquire_conflict = Bool(OUTPUT)
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val has_release_match = Bool(OUTPUT)
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val data = new L2DataRWIO
val meta = new L2MetaRWIO
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}
val c_acq = io.inner.acquire.bits
val c_rel = io.inner.release.bits
val c_gnt = io.inner.grant.bits
val c_ack = io.inner.finish.bits
val m_gnt = io.outer.grant.bits
def mergeData(acq: Acquire, old_data: UInt, new_data: UInt): UInt = {
//TODO apply acq's write mask
Mux(co.messageHasData(acq), old_data, new_data)
}
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}
class L2VoluntaryReleaseTracker(trackerId: Int, bankId: Int, innerId: String, outerId: String) extends L2XactTracker(innerId, outerId) {
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val s_idle :: s_meta_read :: s_meta_resp :: s_data_write :: s_meta_write :: s_grant :: s_busy :: Nil = Enum(UInt(), 7)
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val state = Reg(init=s_idle)
val xact_src = Reg(io.inner.release.bits.header.src.clone)
val xact_r_type = Reg(io.inner.release.bits.payload.r_type)
val xact_addr = Reg(io.inner.release.bits.payload.addr.clone)
val xact_client_xact_id = Reg(io.inner.release.bits.payload.client_xact_id.clone)
val xact_data = Vec.fill(tlDataBeats){ Reg(io.inner.release.bits.payload.data.clone) }
val xact_tag_match = Reg{ Bool() }
val xact_meta = Reg{ new L2Metadata }
val xact_way_en = Reg{ Bits(width = nWays) }
val xact = Release(xact_r_type, xact_addr, xact_client_xact_id)
val collect_inner_data = Reg(init=Bool(false))
val (inner_data_cnt, inner_data_done) =
Counter(io.inner.release.fire() && co.messageHasData(io.inner.release.bits.payload), tlDataBeats)
val (local_data_cnt, local_data_done) =
Counter(io.data.write.fire(), tlDataBeats)
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io.has_acquire_conflict := Bool(false)
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io.has_release_match := co.isVoluntary(c_rel.payload)
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io.outer.grant.ready := Bool(false)
io.outer.acquire.valid := Bool(false)
io.inner.acquire.ready := Bool(false)
io.inner.probe.valid := Bool(false)
io.inner.release.ready := Bool(false)
io.inner.grant.valid := Bool(false)
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io.inner.finish.ready := Bool(false)
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io.inner.grant.bits.header.src := UInt(bankId)
io.inner.grant.bits.header.dst := xact_src
io.inner.grant.bits.payload := Grant(Bool(false),
co.getGrantTypeOnVoluntaryWriteback(xact_meta.coh),
xact_client_xact_id,
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UInt(trackerId))
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io.data.read.valid := Bool(false)
io.data.write.valid := Bool(false)
io.data.write.bits.id := UInt(trackerId)
io.data.write.bits.way_en := xact_way_en
io.data.write.bits.addr := Cat(xact_addr, local_data_cnt)
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io.data.write.bits.wmask := SInt(-1)
io.data.write.bits.data := xact_data(local_data_cnt)
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io.meta.read.valid := Bool(false)
io.meta.read.bits.id := UInt(trackerId)
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io.meta.read.bits.idx := xact_addr(idxMSB,idxLSB)
io.meta.read.bits.tag := xact_addr >> UInt(idxBits)
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io.meta.write.valid := Bool(false)
io.meta.write.bits.id := UInt(trackerId)
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io.meta.write.bits.idx := xact_addr(idxMSB,idxLSB)
io.meta.write.bits.way_en := xact_way_en
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io.meta.write.bits.data.tag := xact_addr >> UInt(idxBits)
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io.meta.write.bits.data.coh := co.masterMetadataOnRelease(xact,
xact_meta.coh,
xact_src)
when(collect_inner_data) {
io.inner.release.ready := Bool(true)
when(io.inner.release.valid) {
xact_data(inner_data_cnt) := c_rel.payload.data
}
when(inner_data_done) { collect_inner_data := Bool(false) }
}
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switch (state) {
is(s_idle) {
io.inner.release.ready := Bool(true)
when( io.inner.release.valid ) {
xact_src := c_rel.header.src
xact_r_type := c_rel.payload.r_type
xact_addr := c_rel.payload.addr
xact_client_xact_id := c_rel.payload.client_xact_id
xact_data(UInt(0)) := c_rel.payload.data
collect_inner_data := co.messageHasData(c_rel.payload)
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state := s_meta_read
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}
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}
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is(s_meta_read) {
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io.meta.read.valid := Bool(true)
when(io.meta.read.ready) { state := s_meta_resp }
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}
is(s_meta_resp) {
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when(io.meta.resp.valid) {
xact_tag_match := io.meta.resp.bits.tag_match
xact_meta := io.meta.resp.bits.meta
xact_way_en := io.meta.resp.bits.way_en
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state := Mux(io.meta.resp.bits.tag_match,
Mux(co.messageHasData(xact), s_data_write, s_meta_write),
s_grant)
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}
}
is(s_data_write) {
io.data.write.valid := (if(tlDataBeats == 1) Bool(true)
else !collect_inner_data || (local_data_cnt < inner_data_cnt))
when(local_data_done) { state := s_meta_write }
}
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is(s_meta_write) {
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io.meta.write.valid := Bool(true)
when(io.meta.write.ready) { state := s_grant }
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}
is(s_grant) {
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io.inner.grant.valid := Bool(true)
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when(io.inner.grant.ready) {
state := Mux(co.requiresAckForGrant(c_gnt.payload),
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s_busy, s_idle)
}
}
is(s_busy) {
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io.inner.finish.ready := Bool(true)
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when(io.inner.finish.valid) { state := s_idle }
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}
}
}
class L2AcquireTracker(trackerId: Int, bankId: Int, innerId: String, outerId: String) extends L2XactTracker(innerId, outerId) {
val s_idle :: s_meta_read :: s_meta_resp :: s_probe :: s_data_read_wb :: s_data_resp_wb :: s_outer_write_wb :: s_outer_read :: s_outer_resp :: s_data_read_hit :: s_data_resp_hit :: s_data_write :: s_outer_write_acq :: s_meta_write :: s_grant :: s_busy :: Nil = Enum(UInt(), 16)
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val state = Reg(init=s_idle)
val xact_src = Reg(io.inner.acquire.bits.header.src.clone)
val xact_uncached = Reg(io.inner.acquire.bits.payload.uncached.clone)
val xact_a_type = Reg(io.inner.acquire.bits.payload.a_type.clone)
val xact_addr = Reg(io.inner.acquire.bits.payload.addr.clone)
val xact_client_xact_id = Reg(io.inner.acquire.bits.payload.client_xact_id.clone)
val xact_subblock = Reg(io.inner.acquire.bits.payload.subblock.clone)
val xact_data = Vec.fill(tlDataBeats){ Reg(io.inner.acquire.bits.payload.data.clone) }
val xact_tag_match = Reg{ Bool() }
val xact_meta = Reg{ new L2Metadata }
val xact_way_en = Reg{ Bits(width = nWays) }
val xact = Acquire(xact_uncached, xact_a_type, xact_addr, xact_client_xact_id, UInt(0), xact_subblock)
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val crel_had_data = Reg(init = Bool(false))
val crel_was_voluntary = Reg(init = Bool(false))
val crel_wb_src = Reg(init = UInt(0, width = log2Up(nClients)))
val crel_wb_g_type = Reg(init = UInt(0, width = co.grantTypeWidth))
val wb_buffer = Vec.fill(tlDataBeats){ Reg(io.inner.acquire.bits.payload.data.clone) }
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val wb_addr = Cat(xact_meta.tag, xact_addr(idxMSB,idxLSB))
val collect_cacq_data = Reg(init=Bool(false))
//TODO: zero width wires
val (cacq_data_cnt, cacq_data_done) =
Counter(io.inner.acquire.fire() && co.messageHasData(io.inner.acquire.bits.payload), tlDataBeats)
val (crel_data_cnt, crel_data_done) =
Counter(io.inner.release.fire() && co.messageHasData(io.inner.release.bits.payload), tlDataBeats)
val (cgnt_data_cnt, cgnt_data_done) =
Counter(io.inner.grant.fire() && co.messageHasData(io.inner.grant.bits.payload), tlDataBeats)
val (outer_data_write_cnt, outer_data_write_done) =
Counter(io.outer.acquire.fire() && co.messageHasData(io.outer.acquire.bits.payload), tlDataBeats)
val (outer_data_resp_cnt, outer_data_resp_done) =
Counter(io.outer.grant.fire() && co.messageHasData(io.outer.grant.bits.payload), tlDataBeats)
val (local_data_read_cnt, local_data_read_done) = Counter(io.data.read.fire(), tlDataBeats)
val (local_data_write_cnt, local_data_write_done) = Counter(io.data.write.fire(), tlDataBeats)
val (local_data_resp_cnt, local_data_resp_done) = Counter(io.data.resp.valid, tlDataBeats)
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val release_count = Reg(init = UInt(0, width = log2Up(nClients+1)))
val pending_probes = Reg(init = co.dir.flush)
val curr_p_id = co.dir.next(pending_probes)
val needs_writeback = !xact_tag_match && co.needsWriteback(xact_meta.coh)
val is_hit = xact_tag_match && co.isHit(xact, xact_meta.coh)
val needs_probes = co.requiresProbes(xact, xact_meta.coh)
//TODO: uncached does or does not allocate
//TODO: Are there any races between lines with the same idx?
//TODO: Allow hit under miss for stores
io.has_acquire_conflict := co.isCoherenceConflict(xact.addr, c_acq.payload.addr) &&
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xact.addr(idxMSB,idxLSB) === c_acq.payload.addr(idxMSB,idxLSB) &&
(state != s_idle) &&
!collect_cacq_data
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io.has_release_match := !co.isVoluntary(c_rel.payload) &&
(co.isCoherenceConflict(xact.addr, c_rel.payload.addr) ||
co.isCoherenceConflict(wb_addr, c_rel.payload.addr)) &&
(state === s_probe)
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val next_coh_on_release = co.masterMetadataOnRelease(
c_rel.payload,
xact_meta.coh,
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c_rel.header.src)
val next_coh_on_grant = co.masterMetadataOnGrant(
c_gnt.payload,
xact_meta.coh,
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c_gnt.header.dst)
val outer_write_acq = Bundle(UncachedWrite(xact_addr, UInt(trackerId), xact_data(outer_data_write_cnt)),
{ case TLId => outerId })
val outer_write_wb = Bundle(UncachedWrite(wb_addr, UInt(trackerId), wb_buffer(outer_data_write_cnt)),
{ case TLId => outerId })
val outer_read = Bundle(UncachedRead( xact_addr, UInt(trackerId)), { case TLId => outerId })
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io.outer.acquire.valid := Bool(false)
io.outer.acquire.bits.payload := outer_read //default
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io.outer.acquire.bits.header.src := UInt(bankId)
io.outer.grant.ready := Bool(true) //grant.data -> xact.data
val cprb_for_cacq = Probe(co.getProbeType(xact, xact_meta.coh), xact_addr)
val cprb_for_mvwb = Probe(co.getProbeTypeOnVoluntaryWriteback, wb_addr)
//TODO cprb_for_mprb
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io.inner.probe.valid := Bool(false)
io.inner.probe.bits.header.src := UInt(bankId)
io.inner.probe.bits.header.dst := curr_p_id
io.inner.probe.bits.payload := Mux(!xact_tag_match && needs_writeback,
cprb_for_mvwb,
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cprb_for_cacq)
val cgnt_for_cacq = Grant(xact_uncached, co.getGrantType(xact, xact_meta.coh),
xact_client_xact_id,
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UInt(trackerId),
xact_data(cgnt_data_cnt))
val cgnt_for_cvwb = Grant(Bool(false), crel_wb_g_type, UInt(0), UInt(trackerId), UInt(0))
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io.inner.grant.valid := Bool(false)
io.inner.grant.bits.header.src := UInt(bankId)
io.inner.grant.bits.header.dst := Mux(crel_was_voluntary, crel_wb_src, xact_src)
io.inner.grant.bits.payload := Mux(crel_was_voluntary, cgnt_for_cvwb, cgnt_for_cacq)
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io.inner.acquire.ready := Bool(false)
io.inner.release.ready := Bool(false)
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io.inner.finish.ready := Bool(false)
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io.data.read.valid := Bool(false)
io.data.read.bits.id := UInt(trackerId)
io.data.read.bits.way_en := xact_way_en
io.data.read.bits.addr := Cat(xact_addr, local_data_read_cnt)
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io.data.write.valid := Bool(false)
io.data.write.bits.id := UInt(trackerId)
io.data.write.bits.way_en := xact_way_en
io.data.write.bits.addr := Cat(xact_addr, local_data_write_cnt)
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io.data.write.bits.wmask := SInt(-1)
io.data.write.bits.data := xact_data(local_data_write_cnt)
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io.meta.read.valid := Bool(false)
io.meta.read.bits.id := UInt(trackerId)
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io.meta.read.bits.idx := xact_addr(idxMSB,idxLSB)
io.meta.read.bits.tag := xact_addr >> UInt(idxBits)
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io.meta.write.valid := Bool(false)
io.meta.write.bits.id := UInt(trackerId)
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io.meta.write.bits.idx := xact_addr(idxMSB,idxLSB)
io.meta.write.bits.way_en := xact_way_en
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io.meta.write.bits.data.tag := xact_addr >> UInt(idxBits)
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io.meta.write.bits.data.coh := next_coh_on_grant
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when(collect_cacq_data) {
io.inner.acquire.ready := Bool(true)
when(io.inner.acquire.valid) {
xact_data(cacq_data_cnt) := c_acq.payload.data
}
when(cacq_data_done) { collect_cacq_data := Bool(false) }
}
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switch (state) {
is(s_idle) {
io.inner.acquire.ready := Bool(true)
when( io.inner.acquire.valid ) {
xact_uncached := c_acq.payload.uncached
xact_a_type := c_acq.payload.a_type
xact_addr := c_acq.payload.addr
xact_client_xact_id := c_acq.payload.client_xact_id
xact_data(UInt(0)) := c_acq.payload.data
xact_subblock := c_acq.payload.subblock
xact_src := c_acq.header.src
collect_cacq_data := co.messageHasData(c_acq.payload)
state := s_meta_read
}
}
is(s_meta_read) {
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io.meta.read.valid := Bool(true)
when(io.meta.read.ready) { state := s_meta_resp }
}
is(s_meta_resp) {
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when(io.meta.resp.valid) {
xact_tag_match := io.meta.resp.bits.tag_match
xact_meta := io.meta.resp.bits.meta
xact_way_en := io.meta.resp.bits.way_en
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val coh = io.meta.resp.bits.meta.coh
val _tag_match = io.meta.resp.bits.tag_match
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val _needs_writeback = !_tag_match && co.needsWriteback(coh)
val _is_hit = _tag_match && co.isHit(xact, coh)
val _needs_probes = co.requiresProbes(xact, coh)
when(_needs_probes) {
val mask_incoherent = co.dir.full(coh.sharers) & ~io.tile_incoherent
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val mask_self = mask_incoherent &
~(!(co.requiresSelfProbe(xact) || _needs_writeback) << xact_src)
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pending_probes := mask_self
release_count := co.dir.count(mask_self)
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crel_had_data := Bool(false)
crel_was_voluntary := Bool(false)
}
state := Mux(_tag_match,
Mux(_is_hit,
Mux(_needs_probes, s_probe, s_data_read_hit),
Mux(_needs_probes, s_probe, s_outer_read)),
Mux(_needs_writeback,
Mux(_needs_probes, s_probe, s_data_read_wb),
s_outer_read))
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}
}
is(s_probe) {
io.inner.probe.valid := !co.dir.none(pending_probes)
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when(io.inner.probe.ready) {
pending_probes := co.dir.pop(pending_probes, curr_p_id)
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}
// Handle releases, which may have data being written back
io.inner.release.ready := Bool(true)
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when(io.inner.release.valid) {
xact_meta.coh := next_coh_on_release
// Handle released dirty data
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when(co.messageHasData(c_rel.payload)) {
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crel_had_data := Bool(true)
when(xact_tag_match) { // Hit, so merge new write with released data
//TODO make sure cacq data is actually present before merging
xact_data(crel_data_cnt) := mergeData(xact,
xact_data(crel_data_cnt),
io.inner.release.bits.payload.data)
} .otherwise { // Miss, we're voluntarily evicting this data
wb_buffer(crel_data_cnt) := io.inner.release.bits.payload.data
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}
}
// Voluntary releases don't count against the release countdown
// because we will get a further release ack from that client in
// response to our probe. We don't send a grant acknowledging
// a writeback or decrement release_count until we've received
// all the data beats.
when(co.isVoluntary(c_rel.payload)) {
when(!co.messageHasData(c_rel.payload) || crel_data_done) {
crel_was_voluntary := Bool(true)
crel_wb_src := c_rel.header.src
crel_wb_g_type := co.getGrantTypeOnVoluntaryWriteback(xact_meta.coh)
}
} .otherwise {
when(!co.messageHasData(c_rel.payload) || crel_data_done) {
release_count := release_count - UInt(1)
}
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}
}
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// If we saw a voluntary writeback, we need to send an extra grant
// to acknowledge it.
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when(crel_was_voluntary) {
io.inner.grant.valid := Bool(true)
when(io.inner.grant.ready) {
crel_was_voluntary := Bool(false)
}
}
when(release_count === UInt(0) && !crel_was_voluntary) {
state := Mux(xact_tag_match,
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Mux(is_hit,
Mux(crel_had_data, s_data_write, s_data_read_hit),
s_outer_read),
Mux(crel_had_data, s_outer_write_wb, s_data_read_wb))
}
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}
is(s_data_read_wb) {
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io.data.read.valid := Bool(true)
when(local_data_read_done) { state := s_data_resp_wb }
when(io.data.resp.valid) {
wb_buffer(local_data_resp_cnt) := io.data.resp.bits.data
}
}
is(s_data_resp_wb) {
when(io.data.resp.valid) { wb_buffer(local_data_resp_cnt) := io.data.resp.bits.data }
when(local_data_resp_done) { state := s_outer_write_wb }
}
is(s_outer_write_wb) {
io.outer.acquire.valid := Bool(true)
io.outer.acquire.bits.payload := outer_write_wb
when(outer_data_write_done) {
state := s_outer_read
}
}
is(s_outer_read) {
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io.outer.acquire.valid := Bool(true)
io.outer.acquire.bits.payload := outer_read
when(io.outer.acquire.ready) {
state := s_outer_resp
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}
}
is(s_outer_resp) {
io.outer.grant.ready := Bool(true)
when(io.outer.grant.valid) {
//TODO make sure cacq data is actually present before merging
xact_data(outer_data_resp_cnt) := mergeData(xact, xact_data(outer_data_resp_cnt),
io.outer.grant.bits.payload.data)
//TODO: set pending client state in xact_meta.coh
when(outer_data_resp_done) {
state := Mux(co.messageHasData(io.outer.grant.bits.payload),
s_data_write, s_data_read_hit)
}
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}
}
is(s_data_read_hit) {
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io.data.read.valid := Bool(true)
when(io.data.resp.valid) {
//TODO make sure cacq data is actually present before merging
xact_data(local_data_resp_cnt) := mergeData(xact, xact_data(local_data_resp_cnt),
io.data.resp.bits.data)
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}
when(local_data_read_done) { state := s_data_resp_hit }
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}
is(s_data_resp_hit) {
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when(io.data.resp.valid) {
xact_data(local_data_resp_cnt) := mergeData(xact, xact_data(local_data_resp_cnt),
io.data.resp.bits.data)
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}
when(local_data_resp_done) { state := s_meta_write }
}
is(s_data_write) {
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io.data.write.valid := Bool(true)
when(local_data_write_done) {
state := s_meta_write
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}
}
is(s_meta_write) {
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io.meta.write.valid := Bool(true)
when(io.meta.write.ready) { state := s_grant }
}
is(s_grant) {
io.inner.grant.valid := Bool(true)
when(!co.messageHasData(c_gnt.payload) || cgnt_data_done) {
state := Mux(co.requiresAckForGrant(c_gnt.payload),
s_busy, s_idle)
}
}
is(s_busy) {
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io.inner.finish.ready := Bool(true)
when(io.inner.finish.valid) { state := s_idle }
}
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}
}