package Switch import chisel3._ import chisel3.util._ import org.chipsalliance.cde.config._ import freechips.rocketchip.diplomacy._ import freechips.rocketchip.tilelink._ class SwitchMux(edgeOut: TLEdgeOut)(implicit p: Parameters) extends SwitchModule{ class MacTileLinkMasterIO extends Bundle{ val A = Decoupled(new TLBundleA(edgeOut.bundle)) val D = Flipped(Decoupled(new TLBundleD(edgeOut.bundle))) } class SwitchMuxIO(implicit p: Parameters) extends SwitchBundle{ val dmaMst = new MacTileLinkMasterIO val triTx = Input(Bool()) val rxEnq = Vec(chn, Flipped(new Receive_Enq_Bundle)) val txDeq = Vec(chn, new Transmit_Bundle) } val io: SwitchMuxIO = IO(new SwitchMuxIO) val (_, _, isLastD, transDCnt) = edgeOut.count(io.dmaMst.D) val rxBuff = Module(new RxBuff) rxBuff.io.enq <> io.rxEnq(0) val txBuff = Module(new TxBuff) txBuff.io.deq <> io.txDeq(0) def stateIdle = 0.U def stateRx = 1.U def stateTx = 2.U val stateNxt = Wire(UInt(2.W)) val stateCur = RegNext(stateNxt, stateIdle) stateNxt := Mux1H(Seq( ( stateCur === stateIdle ) -> Mux( rxBuff.io.deq.header.fire, stateRx, Mux( txBuff.io.enq.req.fire, stateTx, stateIdle ) ), ( stateCur === stateRx ) -> Mux( rxBuff.io.deq.ctrl.fire, stateIdle, stateRx ), ( stateCur === stateTx ) -> Mux( txBuff.io.enq.resp.fire, stateIdle, stateTx ), )) def ptr = "h80002000".U def txLength = 8.U def PerPacketCrcEn = true.B def PerPacketPad = true.B rxBuff.io.deq.ctrl.ready := stateCur === stateRx & io.dmaMst.D.fire & isLastD val txReqValid = RegInit(false.B) when( txBuff.io.enq.req.fire ){ txReqValid := false.B } .elsewhen( io.triTx ){ txReqValid := true.B } txBuff.io.enq.req.valid := txReqValid && stateCur === stateIdle txBuff.io.enq.req.bits.txLength := txLength txBuff.io.enq.req.bits.PerPacketCrcEn := PerPacketCrcEn txBuff.io.enq.req.bits.PerPacketPad := PerPacketPad txBuff.io.enq.resp.ready := true.B val dmaTxAValid = RegInit(false.B) val dmaTxABits = Reg(new TLBundleA(edgeOut.bundle)) val dmaAddress = Reg( UInt(32.W) ) when( stateCur === stateIdle && stateNxt =/= stateIdle ){ dmaAddress := ptr } .elsewhen( io.dmaMst.A.fire ){ dmaAddress := dmaAddress + 4.U } rxBuff.io.deq.data.ready := io.dmaMst.A.fire & (stateCur === stateRx) assert( ~(rxBuff.io.deq.data.ready & ~rxBuff.io.deq.data.valid) ) rxBuff.io.deq.header.ready := ~io.triTx && ~txReqValid when( io.dmaMst.A.fire ){ dmaTxAValid := false.B } .elsewhen( txBuff.io.enq.req.fire | (stateCur === stateTx & io.dmaMst.D.fire & isLastD & dmaAddress < (ptr + txLength)) ){ dmaTxAValid := true.B dmaTxABits := edgeOut.Get( fromSource = 0.U, toAddress = dmaAddress >> 2 << 2, lgSize = log2Ceil(32/8).U, )._2 } .elsewhen( rxBuff.io.deq.header.fire | (stateCur === stateRx & io.dmaMst.D.fire & isLastD & rxBuff.io.deq.data.valid ) ) { dmaTxAValid := true.B dmaTxABits := edgeOut.Put( fromSource = 0.U, toAddress = dmaAddress >> 2 << 2, lgSize = log2Ceil(32/8).U, data = rxBuff.io.deq.data.bits, mask = "b1111".U, )._2 } io.dmaMst.A.valid := dmaTxAValid io.dmaMst.A.bits := dmaTxABits txBuff.io.enq.data.valid := io.dmaMst.D.valid & stateCur === stateTx txBuff.io.enq.data.bits := io.dmaMst.D.bits.data io.dmaMst.D.ready := Mux1H(Seq( ( stateCur === stateRx ) -> true.B, ( stateCur === stateTx ) -> txBuff.io.enq.data.ready, )) }