package MAC import chisel3._ import chisel3.util._ import freechips.rocketchip.tilelink._ import freechips.rocketchip.diplomacy._ import org.chipsalliance.cde.config._ abstract class MacTileLinkBase(edgeIn: TLEdgeIn, edgeOut: TLEdgeOut) extends Module{ class MacTileLinkSlaveIO extends Bundle{ val A = Flipped(Decoupled(new TLBundleA(edgeIn.bundle))) val D = Decoupled(new TLBundleD(edgeIn.bundle)) } class MacTileLinkMasterIO extends Bundle{ val A = Decoupled(new TLBundleA(edgeOut.bundle)) val D = Flipped(Decoupled(new TLBundleD(edgeOut.bundle))) } class MacTileLinkIO extends Bundle{ val tlSlv = new MacTileLinkSlaveIO val tlMst = new MacTileLinkMasterIO // Rx Status signals val InvalidSymbol = Input(Bool()) // Invalid symbol was received during reception in 100 Mbps mode val LatchedCrcError = Input(Bool()) // CRC error val RxLateCollision = Input(Bool()) // Late collision occured while receiving frame val ShortFrame = Input(Bool()) // Frame shorter then the minimum size (r_MinFL) was received while small packets are enabled (r_RecSmall) val DribbleNibble = Input(Bool()) // Extra nibble received val ReceivedPacketTooBig = Input(Bool()) // Received packet is bigger than r_MaxFL val RxLength = Input(UInt(16.W)) // Length of the incoming frame val LoadRxStatus = Input(Bool()) // Rx status was loaded val ReceivedPacketGood = Input(Bool()) // Received packet's length and CRC are good val AddressMiss = Input(Bool()) // When a packet is received AddressMiss status is written to the Rx BD val r_RxFlow = Input(Bool()) val r_PassAll = Input(Bool()) val ReceivedPauseFrm = Input(Bool()) // Tx Status signals val RetryCntLatched = Input(UInt(4.W)) // Latched Retry Counter val RetryLimit = Input(Bool()) // Retry limit reached (Retry Max value +1 attempts were made) val LateCollLatched = Input(Bool()) // Late collision occured val DeferLatched = Input(Bool()) // Defer indication (Frame was defered before sucessfully sent) val RstDeferLatched = Output(Bool()) val CarrierSenseLost = Input(Bool()) // Carrier Sense was lost during the frame transmission // Tx val MTxClk = Input(Bool()) // Transmit clock (from PHY) val TxUsedData = Input(Bool()) // Transmit packet used data val TxRetry = Input(Bool()) // Transmit packet retry val TxAbort = Input(Bool()) // Transmit packet abort val TxDone = Input(Bool()) // Transmission ended val TxStartFrm = Output(Bool()) // Transmit packet start frame val TxEndFrm = Output(Bool()) // Transmit packet end frame val TxData = Output(UInt(8.W)) // Transmit packet data byte val TxUnderRun = Output(Bool()) // Transmit packet under-run val PerPacketCrcEn = Output(Bool()) // Per packet crc enable val PerPacketPad = Output(Bool()) // Per packet pading // Rx val MRxClk = Input(Bool()) // Receive clock (from PHY) val RxData = Input(UInt(8.W)) // Received data byte (from PHY) val RxValid = Input(Bool()) val RxStartFrm = Input(Bool()) val RxEndFrm = Input(Bool()) val RxAbort = Input(Bool()) // This signal is set when address doesn't match. val RxStatusWriteLatched_sync2 = Output(Bool()) //Register val r_TxEn = Input(Bool()) // Transmit enable val r_RxEn = Input(Bool()) // Receive enable val r_TxBDNum = Input(UInt(8.W)) // Receive buffer descriptor number // Interrupts val TxB_IRQ = Output(Bool()) val TxE_IRQ = Output(Bool()) val RxB_IRQ = Output(Bool()) val RxE_IRQ = Output(Bool()) val Busy_IRQ = Output(Bool()) val asyncReset = Input(AsyncReset()) } val io = IO(new MacTileLinkIO) val (_, _, isLastD, transDCnt) = edgeOut.count(io.tlMst.D) val BDCs = Wire(UInt(4.W)) val TxB_IRQ = RegInit(false.B); io.TxB_IRQ := TxB_IRQ val TxE_IRQ = RegInit(false.B); io.TxE_IRQ := TxE_IRQ val RxB_IRQ = RegInit(false.B); io.RxB_IRQ := RxB_IRQ val RxE_IRQ = RegInit(false.B); io.RxE_IRQ := RxE_IRQ val TxUnderRun_wb = RegInit(false.B) val TxBDRead = RegInit(true.B) val TxStatusWrite = Wire(Bool()) val TxLength = RegInit(0.U(16.W)) val LatchedTxLength = RegInit(0.U(16.W)) val TxStatus = RegInit(0.U(4.W)) //[14:11] val RxStatus = RegInit(0.U(2.W)) //[14:13] val TxStartFrm_wb = RegInit(false.B) // Synchronizing TxRetry TxDone_wb TxAbort signal (synchronized to WISHBONE clock) val TxRetry_wb = ShiftRegisters( io.TxRetry, 3, false.B, true.B ) val TxAbort_wb = ShiftRegisters( io.TxAbort, 3, false.B, true.B ) val TxDone_wb = ShiftRegisters( io.TxDone, 3, false.B, true.B ) val TxRetryPacket = RegInit(false.B) val TxRetryPacket_NotCleared = RegInit(false.B) val TxDonePacket = RegInit(false.B) val TxDonePacket_NotCleared = RegInit(false.B) val TxAbortPacket = RegInit(false.B) val TxAbortPacket_NotCleared = RegInit(false.B) val RxBDReady = RegInit(false.B) val RxReady = RegInit(false.B) val TxBDReady = RegInit(false.B) val RxBDRead = RegInit(false.B) val BlockingTxStatusWrite = RegInit(false.B) val BlockingTxBDRead = RegInit(false.B) val RxBDAddress = RegInit(0.U(7.W)) //[7:1] val TxBDAddress = RegInit(0.U(7.W)) //[7:1] val ShiftEnded = RegInit(false.B) val RxOverrun = RegInit(false.B) val BDWrite = RegInit(0.U(4.W)) // BD Write Enable for access from WISHBONE side val BDRead = RegInit(false.B) // BD Read access from WISHBONE side val RxBDDataIn = Wire(UInt(32.W)) // Rx BD data in val TxBDDataIn = Wire(UInt(32.W)) // Tx BD data in val TxEndFrm_wb = RegInit(false.B) val TxRetryPulse = Wire(Bool()) val TxDonePulse = Wire(Bool()) val TxAbortPulse = Wire(Bool()) val RxStatusWrite = Wire(Bool()) val RxBufferFull = Wire(Bool()) val RxBufferAlmostEmpty = Wire(Bool()) val RxBufferEmpty = Wire(Bool()) val BDAck = Reg(Bool()); // Delayed stage signals val WbEn = RegInit(true.B) val WbEn_q = RegNext(WbEn, false.B) val RxEn = RegInit(false.B) val RxEn_q = RegNext(RxEn, false.B) val TxEn = RegInit(false.B) val TxEn_q = RegNext(TxEn, false.B) val r_TxEn_q = RegNext(io.r_TxEn, false.B) val r_RxEn_q = RegNext(io.r_RxEn, false.B) val ram_ce = true.B val ram_we = Wire(UInt(4.W)) val ram_oe = Wire(Bool()) val ram_addr = RegInit(0.U(8.W)) val ram_di = RegInit(0.U(32.W)) val ram_do = Wire(UInt(32.W)) val txBuffDesc = ram_do.asTypeOf(new TxBuffDesc) val rxBuffDesc = ram_do.asTypeOf(new RxBuffDesc) val TxPointerRead = RegInit(false.B) val TxEn_needed = RegInit(false.B) val RxEn_needed = RegInit(false.B) val RxPointerRead = RegInit(false.B) // RX shift ending signals val ShiftEnded_rck_txclk = Wire(Bool()) val ShiftEndedSync1 = RegNext( ShiftEnded_rck_txclk, false.B) val ShiftEndedSync2 = RegNext( ShiftEndedSync1, false.B) val ShiftEndedSync3 = RegInit(false.B) val StartOccured = RegInit(false.B) val TxStartFrm_sync_txclk = Wire(Bool()) val TxStartFrm_syncb1 = RegNext(TxStartFrm_sync_txclk, false.B) val TxStartFrm_syncb2 = RegNext(TxStartFrm_syncb1, false.B) val TxFifoClear = Wire(Bool()) val TxBufferAlmostFull = Wire(Bool()) val TxBufferFull = Wire(Bool()) val TxBufferEmpty = Wire(Bool()) val TxBufferAlmostEmpty = Wire(Bool()) val BlockReadTxDataFromMemory = RegInit(false.B) val TxData_wb = Wire(UInt(32.W)) val ReadTxDataFromFifo_wb = Wire(Bool()) val txfifo_cnt = Wire(UInt(5.W)) val rxfifo_cnt = Wire(UInt(5.W)) val ReadTxDataFromMemory = RegInit(false.B) val WriteRxDataToMemory = Wire(Bool()) val MasterWbTX = RegInit(false.B) val MasterWbRX = RegInit(false.B) val TxPointerMSB = RegInit(0.U(30.W)) //[31:2] val TxPointerLSB = RegInit(0.U(2.W)) val TxPointerLSB_rst = RegInit(0.U(2.W)) val RxPointerMSB = RegInit(0.U(30.W)) //[31:2] val RxPointerLSB_rst = RegInit(0.U(2.W)) val cyc_cleared = RegInit(false.B) val RxByteSel = Wire(UInt(4.W)) // Start: Generation of the ReadTxDataFromFifo_tck signal and synchronization to the WB_CLK_I val ReadTxDataFromFifo_tck_txclk = Wire(Bool()) val ReadTxDataFromFifo_sync = ShiftRegisters( ReadTxDataFromFifo_tck_txclk, 3, false.B, true.B) val RxAbortLatched_rxclk = Wire(Bool()) val RxAbortSync = ShiftRegisters( RxAbortLatched_rxclk, 4, false.B, true.B ) val WriteRxDataToFifo_rxclk = Wire(Bool()) val WriteRxDataToFifoSync = ShiftRegisters(WriteRxDataToFifo_rxclk, 3, false.B, true.B) val LatchedRxStartFrm_rxclk = Wire(Bool()) val SyncRxStartFrm = ShiftRegisters(LatchedRxStartFrm_rxclk, 3, false.B, true.B) val RxStatusWriteLatched = RegInit(false.B) val RxStatusWriteLatched_syncb = ShiftRegister(io.RxStatusWriteLatched_sync2, 2, false.B, true.B) when(true.B){ BDAck := (BDWrite.orR & WbEn & WbEn_q) | (BDRead & WbEn & ~WbEn_q) } // Generic synchronous single-port RAM interface val bd_ram = Module(new MacSRAM) val BD_WB_DAT_O = ram_do bd_ram.io.ce := ram_ce bd_ram.io.we := ram_we.asBools bd_ram.io.oe := ram_oe bd_ram.io.addr := ram_addr bd_ram.io.di := ram_di ram_do := bd_ram.io.dato ram_we := (BDWrite & Fill(4,(WbEn & WbEn_q)) ) | Fill(4, (TxStatusWrite | RxStatusWrite) ) ram_oe := (BDRead & WbEn & WbEn_q) | (TxEn & TxEn_q & (TxBDRead | TxPointerRead)) | (RxEn & RxEn_q & (RxBDRead | RxPointerRead)) when(~TxBDReady & io.r_TxEn & WbEn & ~WbEn_q){ TxEn_needed := true.B } .elsewhen(TxPointerRead & TxEn & TxEn_q){ TxEn_needed := false.B } // Enabling access to the RAM for three devices. val RAMAccessEnable = Cat(WbEn_q, RxEn_q, TxEn_q, RxEn_needed, TxEn_needed) // Switching between three stages depends on enable signals when( RAMAccessEnable === BitPat("b1001?") ){ // synopsys parallel_case WbEn := false.B RxEn := true.B // wb access stage and r_RxEn is enabled TxEn := false.B ram_addr := Cat(RxBDAddress, RxPointerRead) ram_di := RxBDDataIn } .elsewhen( RAMAccessEnable === BitPat("b10001") ){ WbEn := false.B RxEn := false.B TxEn := true.B // wb access stage, r_RxEn is disabled but r_TxEn is enabled ram_addr := Cat(TxBDAddress, TxPointerRead) //[7,1] + [0] ram_di := TxBDDataIn } .elsewhen( RAMAccessEnable === BitPat("b010?0") ){ WbEn := true.B // RxEn access stage and r_TxEn is disabled RxEn := false.B TxEn := false.B ram_addr := io.tlSlv.A.bits.address(9,2) // [11:2 ] -> [9:2]; ram_di := io.tlSlv.A.bits.data BDWrite := BDCs & Fill(4,(io.tlSlv.A.bits.opcode === 0.U) || (io.tlSlv.A.bits.opcode === 1.U)) BDRead := BDCs.orR & (io.tlSlv.A.bits.opcode === 4.U) } .elsewhen( RAMAccessEnable === BitPat("b010?1") ){ WbEn := false.B RxEn := false.B TxEn := true.B // RxEn access stage and r_TxEn is enabled ram_addr := Cat(TxBDAddress, TxPointerRead) ram_di := TxBDDataIn } .elsewhen( RAMAccessEnable === BitPat("b001??") ){ WbEn := true.B // TxEn access stage (we always go to wb access stage) RxEn := false.B TxEn := false.B ram_addr := io.tlSlv.A.bits.address(9,2) //[11:2 ] ->[9:2] ram_di := io.tlSlv.A.bits.data BDWrite := BDCs & Fill(4,(io.tlSlv.A.bits.opcode === 0.U) || (io.tlSlv.A.bits.opcode === 1.U)) BDRead := BDCs.orR & (io.tlSlv.A.bits.opcode === 4.U) } .elsewhen( RAMAccessEnable === BitPat("b10000") ){ WbEn := false.B // WbEn access stage and there is no need for other stages. WbEn needs to be switched off for a bit } .elsewhen( RAMAccessEnable === BitPat("b00000") ){ WbEn := true.B // Idle state. We go to WbEn access stage. RxEn := false.B TxEn := false.B ram_addr := io.tlSlv.A.bits.address(9,2) // [11:2 ] -> [9:2] ram_di := io.tlSlv.A.bits.data BDWrite := BDCs & Fill(4,(io.tlSlv.A.bits.opcode === 0.U) || (io.tlSlv.A.bits.opcode === 1.U)) BDRead := BDCs.orR & (io.tlSlv.A.bits.opcode === 4.U) } val ResetTxBDReady = TxDonePulse | TxAbortPulse | TxRetryPulse // Latching READY status of the Tx buffer descriptor when(TxEn & TxEn_q & TxBDRead){ // TxBDReady is sampled only once at the beginning. TxBDReady := txBuffDesc.rd & (txBuffDesc.len > 4.U) } .elsewhen(ResetTxBDReady){ // Only packets larger then 4 bytes are transmitted. TxBDReady := false.B } val StartTxBDRead = (TxRetryPacket_NotCleared | TxStatusWrite) & ~BlockingTxBDRead & ~TxBDReady // Reading the Tx buffer descriptor when(StartTxBDRead){ TxBDRead := true.B } .elsewhen(TxBDReady){ TxBDRead := false.B } val StartTxPointerRead = TxBDRead & TxBDReady // Reading Tx BD pointer // Reading Tx BD Pointer when(StartTxPointerRead){ TxPointerRead := true.B } .elsewhen(TxEn_q){ TxPointerRead := false.B } // Writing status back to the Tx buffer descriptor TxStatusWrite := (TxDonePacket_NotCleared | TxAbortPacket_NotCleared) & TxEn & TxEn_q & ~BlockingTxStatusWrite // Status writing must occur only once. Meanwhile it is blocked. when(~TxDone_wb(1) & ~TxAbort_wb(1)){ BlockingTxStatusWrite := false.B } .elsewhen(TxStatusWrite){ BlockingTxStatusWrite := true.B } val BlockingTxStatusWrite_sync2_txclk = Wire(Bool()) val BlockingTxStatusWrite_sync3_txclk = Wire(Bool()) io.RstDeferLatched := BlockingTxStatusWrite_sync2_txclk & ~BlockingTxStatusWrite_sync3_txclk // TxBDRead state is activated only once. when(StartTxBDRead){ BlockingTxBDRead := true.B } .elsewhen(~StartTxBDRead & ~TxBDReady){ BlockingTxBDRead := false.B } // Latching status from the tx buffer descriptor Data is avaliable one cycle after the access is started (at that time signal TxEn is not active) when(TxEn & TxEn_q & TxBDRead){ TxStatus := Cat(txBuffDesc.irq, txBuffDesc.wr, txBuffDesc.pad, txBuffDesc.crc) } //Latching length from the buffer descriptor; when(TxEn & TxEn_q & TxBDRead){ TxLength := txBuffDesc.len } .elsewhen( MasterWbTX & io.tlMst.D.fire ){ //tx tileRead when( TxLength < 4.U ){ TxLength := 0.U } .elsewhen(TxPointerLSB_rst === 0.U){ TxLength := TxLength - 4.U // Length is subtracted at the data request } .elsewhen(TxPointerLSB_rst === 1.U){ TxLength := TxLength - 3.U // Length is subtracted at the data request } .elsewhen(TxPointerLSB_rst === 2.U){ TxLength := TxLength - 2.U // Length is subtracted at the data request } .elsewhen(TxPointerLSB_rst === 3.U){ TxLength := TxLength - 1.U // Length is subtracted at the data request } } //Latching length from the buffer descriptor; when(TxEn & TxEn_q & TxBDRead){ LatchedTxLength := txBuffDesc.len } when(TxEn & TxEn_q & TxPointerRead){ TxPointerMSB := ram_do(31,2) // Latching Tx buffer pointer from buffer descriptor. Only 30 MSB bits are latched because TxPointerMSB is only used for word-aligned accesses. TxPointerLSB := ram_do(1,0) // Latching 2 MSB bits of the buffer descriptor. Since word accesses are performed, valid data does not necesserly start at byte 0 (could be byte 0, 1, 2 or 3). This signals are used for proper selection of the star byte (TxData and TxByteCnt) are set by this two bits. } .elsewhen( io.tlMst.D.fire & io.tlMst.D.bits.opcode === 1.U ){ TxPointerMSB := TxPointerMSB + 1.U // TxPointer is word-aligned } // Latching 2 MSB bits of the buffer descriptor. After the read access, TxLength needs to be decremented for the number of the valid bytes (1 to 4 bytes are valid in the first word). After the first read all bytes are valid so this two bits are reset to zero. when(TxEn & TxEn_q & TxPointerRead){ TxPointerLSB_rst := ram_do(1,0) } .elsewhen( MasterWbTX & io.tlMst.D.fire ){ // After first access pointer is word alligned TxPointerLSB_rst := 0.U } val isTlMstBusy = RegInit(false.B) when( (TxLength === 0.U) | TxAbortPulse | TxRetryPulse){ ReadTxDataFromMemory := false.B } .elsewhen(TxEn & TxEn_q & TxPointerRead){ ReadTxDataFromMemory := true.B } val ReadTxDataFromMemory_2 = ReadTxDataFromMemory & ~BlockReadTxDataFromMemory; when( (TxBufferAlmostFull | TxLength <= 4.U) & MasterWbTX & isTlMstBusy & (~(TxAbortPacket_NotCleared | TxRetryPacket_NotCleared))){ BlockReadTxDataFromMemory := true.B } .elsewhen(ReadTxDataFromFifo_wb | TxDonePacket | TxAbortPacket | TxRetryPacket){ BlockReadTxDataFromMemory := false.B } TxFifoClear := (TxAbortPacket | TxRetryPacket) val tx_fifo = Module( new MacFifo(dw = 32, dp = 16) ) tx_fifo.io.data_in := io.tlMst.D.bits.data tx_fifo.io.write := io.tlMst.D.fire & io.tlMst.D.bits.opcode === 1.U tx_fifo.io.read := ReadTxDataFromFifo_wb & ~TxBufferEmpty tx_fifo.io.clear := TxFifoClear TxData_wb := tx_fifo.io.data_out TxBufferFull := tx_fifo.io.full TxBufferAlmostFull := tx_fifo.io.almost_full TxBufferAlmostEmpty := tx_fifo.io.almost_empty TxBufferEmpty := tx_fifo.io.empty txfifo_cnt := tx_fifo.io.cnt // Start: Generation of the TxStartFrm_wb which is then synchronized to the MTxClk when(TxBDReady & ~StartOccured & (TxBufferFull | TxLength === 0.U)){ TxStartFrm_wb := true.B } .elsewhen(TxStartFrm_syncb2){ TxStartFrm_wb := false.B } // StartOccured: TxStartFrm_wb occurs only ones at the beginning. Then it's blocked. when(TxStartFrm_wb){ StartOccured := true.B } .elsewhen(ResetTxBDReady){ StartOccured := false.B } // TxEndFrm_wb: indicator of the end of frame when((TxLength === 0.U) & TxBufferAlmostEmpty & io.TxUsedData){ TxEndFrm_wb := true.B } .elsewhen(TxRetryPulse | TxDonePulse | TxAbortPulse){ TxEndFrm_wb := false.B } // Marks which bytes are valid within the word. val TxValidBytes = Mux(TxLength < 4.U, TxLength(1,0), 0.U) val TxValidBytesLatched = RegInit(0.U(2.W)) // val LatchValidBytes = RegNext((TxLength < 4.U) & TxBDReady, false.B) // val LatchValidBytes_q = RegNext(LatchValidBytes, false.B) val LatchValidBytes = ShiftRegisters((TxLength < 4.U) & TxBDReady, 2, false.B, true.B) // Latching valid bytes when(LatchValidBytes(0) & ~LatchValidBytes(1)){ TxValidBytesLatched := TxValidBytes } .elsewhen(TxRetryPulse | TxDonePulse | TxAbortPulse){ TxValidBytesLatched := 0.U } // dontTouch(TxStatus) val TxIRQEn = TxStatus.extract(3) //[14:11] val WrapTxStatusBit = TxStatus.extract(2) io.PerPacketPad := TxStatus.extract(1) io.PerPacketCrcEn := TxStatus.extract(0) val RxIRQEn = RxStatus.extract(1) //[14:13] val WrapRxStatusBit = RxStatus.extract(0) // Temporary Tx and Rx buffer descriptor address//[7:1] val TempTxBDAddress = Mux( TxStatusWrite & ~WrapTxStatusBit, (TxBDAddress + 1.U), 0.U ) // Tx BD increment or wrap (last BD) val TempRxBDAddress = Mux( WrapRxStatusBit, io.r_TxBDNum(6,0), (RxBDAddress + 1.U) ) // Using first Rx BD / Using next Rx BD // Latching Tx buffer descriptor address when(io.r_TxEn & (~r_TxEn_q)){ TxBDAddress := 0.U } .elsewhen(TxStatusWrite){ TxBDAddress := TempTxBDAddress } // Latching Rx buffer descriptor address when(io.r_RxEn & (~r_RxEn_q)){ RxBDAddress := io.r_TxBDNum(6,0) } .elsewhen(RxStatusWrite){ RxBDAddress := TempRxBDAddress; } val TxStatusInLatched = Cat(io.TxUnderRun, io.RetryCntLatched, io.RetryLimit, io.LateCollLatched, io.DeferLatched, io.CarrierSenseLost) val LatchedRxLength_rxclk = Wire(UInt(16.W)) val RxStatusInLatched_rxclk = Wire(UInt(9.W)) RxBDDataIn := Cat(LatchedRxLength_rxclk, 0.U(1.W), RxStatus, 0.U(4.W), RxStatusInLatched_rxclk) TxBDDataIn := Cat(LatchedTxLength, 0.U(1.W), TxStatus, 0.U(2.W), TxStatusInLatched) // Signals used for various purposes TxRetryPulse := TxRetry_wb(1) & ~TxRetry_wb(2) TxDonePulse := TxDone_wb(1) & ~TxDone_wb(2) TxAbortPulse := TxAbort_wb(1) & ~TxAbort_wb(2) val TxError = io.TxUnderRun | io.RetryLimit | io.LateCollLatched | io.CarrierSenseLost val TxAbortPacketBlocked = RegInit(false.B) when( TxAbort_wb(1) & (~TxAbortPacketBlocked) & MasterWbTX & io.tlMst.D.fire & isLastD | TxAbort_wb(1) & (~TxAbortPacketBlocked) & (~MasterWbTX) ){ TxAbortPacket := true.B } .otherwise{ TxAbortPacket := false.B } when(TxEn & TxEn_q & TxAbortPacket_NotCleared){ TxAbortPacket_NotCleared := false.B } .elsewhen( TxAbort_wb(1) & (~TxAbortPacketBlocked) & MasterWbTX & io.tlMst.D.fire & isLastD | TxAbort_wb(1) & (~TxAbortPacketBlocked) & (~MasterWbTX) ){ TxAbortPacket_NotCleared := true.B } when(~TxAbort_wb(1) & TxAbort_wb(2)){ TxAbortPacketBlocked := false.B } .elsewhen(TxAbortPacket){ TxAbortPacketBlocked := true.B } val TxRetryPacketBlocked = RegInit(false.B) when( TxRetry_wb(1) & ~TxRetryPacketBlocked & MasterWbTX & io.tlMst.D.fire & isLastD | TxRetry_wb(1) & ~TxRetryPacketBlocked & ~MasterWbTX ){ TxRetryPacket := true.B } .otherwise{ TxRetryPacket := false.B } when(StartTxBDRead){ TxRetryPacket_NotCleared := false.B } .elsewhen( TxRetry_wb(1) & ~TxRetryPacketBlocked & MasterWbTX & io.tlMst.D.fire & isLastD | TxRetry_wb(1) & ~TxRetryPacketBlocked & ~MasterWbTX ){ TxRetryPacket_NotCleared := true.B } when(~TxRetry_wb(1) & TxRetry_wb(2)){ TxRetryPacketBlocked := false.B } .elsewhen(TxRetryPacket){ TxRetryPacketBlocked := true.B } val TxDonePacketBlocked = RegInit(false.B) when( TxDone_wb(1) & ~TxDonePacketBlocked & MasterWbTX & io.tlMst.D.fire & isLastD | TxDone_wb(1) & ~TxDonePacketBlocked & ~MasterWbTX ){ TxDonePacket := true.B }.otherwise{ TxDonePacket := false.B } when(TxEn & TxEn_q & TxDonePacket_NotCleared){ TxDonePacket_NotCleared := false.B } .elsewhen( TxDone_wb(1) & ~TxDonePacketBlocked & MasterWbTX & io.tlMst.D.fire & isLastD | TxDone_wb(1) & ~TxDonePacketBlocked & ~MasterWbTX ){ TxDonePacket_NotCleared := true.B } when(~TxDone_wb(1) & TxDone_wb(2)){ TxDonePacketBlocked := false.B } .elsewhen(TxDonePacket){ TxDonePacketBlocked := true.B } // Tx under run when(TxAbortPulse){ TxUnderRun_wb := false.B } .elsewhen(TxBufferEmpty & ReadTxDataFromFifo_wb){ TxUnderRun_wb := true.B } ReadTxDataFromFifo_wb := ReadTxDataFromFifo_sync(1) & ~ReadTxDataFromFifo_sync(2) val StartRxBDRead = RxStatusWrite | (RxAbortSync(2) & ~RxAbortSync(3)) | (io.r_RxEn & ~r_RxEn_q) // Reading the Rx buffer descriptor when(StartRxBDRead & ~RxReady){ RxBDRead := true.B } .elsewhen(RxBDReady){ RxBDRead := false.B } // Reading of the next receive buffer descriptor starts after reception status is written to the previous one. // Latching READY status of the Rx buffer descriptor when(RxPointerRead){ RxBDReady := false.B } .elsewhen(RxEn & RxEn_q & RxBDRead){ RxBDReady := rxBuffDesc.e // RxBDReady is sampled only once at the beginning } // Latching Rx buffer descriptor status Data is avaliable one cycle after the access is started (at that time signal RxEn is not active) when(RxEn & RxEn_q & RxBDRead){ RxStatus := Cat(rxBuffDesc.irq, rxBuffDesc.wrap) } // RxReady generation when(ShiftEnded | RxAbortSync(1) & ~RxAbortSync(2) | ~io.r_RxEn & r_RxEn_q){ RxReady := false.B } .elsewhen(RxEn & RxEn_q & RxPointerRead){ RxReady := true.B } // Reading Rx BD pointer val StartRxPointerRead = RxBDRead & RxBDReady // Reading Tx BD Pointer when(StartRxPointerRead){ RxPointerRead := true.B } .elsewhen(RxEn & RxEn_q){ RxPointerRead := false.B } //Latching Rx buffer pointer from buffer descriptor; when(RxEn & RxEn_q & RxPointerRead){ RxPointerMSB := ram_do(31,2) } .elsewhen(MasterWbRX & io.tlMst.A.fire ){ RxPointerMSB := RxPointerMSB + 1.U // Word access (always word access. m_wb_sel_o are used for selecting bytes) } //Latching last addresses from buffer descriptor (used as byte-half-word indicator); when(MasterWbRX & io.tlMst.A.fire ){// After first write all RxByteSel are active RxPointerLSB_rst := 0.U } .elsewhen(RxEn & RxEn_q & RxPointerRead){ RxPointerLSB_rst := ram_do(1,0) } RxByteSel := Mux1H(Seq( (RxPointerLSB_rst === 0.U) -> "hf".U, (RxPointerLSB_rst === 1.U) -> "h7".U, (RxPointerLSB_rst === 2.U) -> "h3".U, (RxPointerLSB_rst === 3.U) -> "h1".U, )) when(~RxReady & io.r_RxEn & WbEn & ~WbEn_q){ RxEn_needed := true.B } .elsewhen(RxPointerRead & RxEn & RxEn_q){ RxEn_needed := false.B } // Reception status is written back to the buffer descriptor after the end of frame is detected. RxStatusWrite := ShiftEnded & RxEn & RxEn_q val LastByteIn_rxclk = Wire(Bool()) val RxByteCnt_rxclk = Wire(UInt(2.W)) val RxEnableWindow_rxclk = Wire(Bool()) val StartShiftWillEnd = LastByteIn_rxclk | io.RxValid & io.RxEndFrm & RxByteCnt_rxclk.andR & RxEnableWindow_rxclk // Indicating start of the reception process val ShiftWillEnd_rxclk = Wire(Bool()) val SetWriteRxDataToFifo = (io.RxValid & RxReady & ~io.RxStartFrm & RxEnableWindow_rxclk & (RxByteCnt_rxclk.andR)) | (io.RxValid & RxReady & io.RxStartFrm & (RxPointerLSB_rst.andR)) | (ShiftWillEnd_rxclk & LastByteIn_rxclk & (RxByteCnt_rxclk.andR)) val WriteRxDataToFifo_wb = WriteRxDataToFifoSync(1) & ~WriteRxDataToFifoSync(2) val RxFifoReset = SyncRxStartFrm(1) & ~SyncRxStartFrm(2) val rx_fifo = Module(new MacFifo(dw = 32, dp = 16)) val RxDataLatched2_rxclk = Wire(UInt(32.W)) rx_fifo.io.data_in := RxDataLatched2_rxclk rx_fifo.io.write := WriteRxDataToFifo_wb & ~RxBufferFull rx_fifo.io.read := MasterWbRX & io.tlMst.A.fire rx_fifo.io.clear := RxFifoReset RxBufferFull := rx_fifo.io.full RxBufferAlmostEmpty := rx_fifo.io.almost_empty RxBufferEmpty := rx_fifo.io.empty rxfifo_cnt := rx_fifo.io.cnt WriteRxDataToMemory := ~RxBufferEmpty when(ShiftEndedSync1 & ~ShiftEndedSync2){ ShiftEndedSync3 := true.B } .elsewhen(ShiftEnded){ ShiftEndedSync3 := false.B } // Generation of the end-of-frame signal when(ShiftEndedSync3 & MasterWbRX & io.tlMst.A.fire & RxBufferAlmostEmpty & ~ShiftEnded){ ShiftEnded := true.B } .elsewhen(RxStatusWrite){ ShiftEnded := false.B } val RxStatusIn = Cat(io.ReceivedPauseFrm, io.AddressMiss, RxOverrun, io.InvalidSymbol, io.DribbleNibble, io.ReceivedPacketTooBig, io.ShortFrame, io.LatchedCrcError, io.RxLateCollision) // Rx overrun when(RxStatusWrite){ RxOverrun := false.B } .elsewhen(RxBufferFull & WriteRxDataToFifo_wb){ RxOverrun := true.B } // ShortFrame (RxStatusInLatched[2]) can not set an error because short frames are aborted when signal r_RecSmall is set to 0 in MODER register. // AddressMiss is identifying that a frame was received because of the promiscous mode and is not an error val RxError = (RxStatusInLatched_rxclk(6,3).orR) | (RxStatusInLatched_rxclk(1,0).orR) // Latching and synchronizing RxStatusWrite signal. This signal is used for clearing the ReceivedPauseFrm signal when(RxStatusWriteLatched_syncb){ RxStatusWriteLatched := false.B } .elsewhen(RxStatusWrite){ RxStatusWriteLatched := true.B } // Tx Done Interrupt when(TxStatusWrite & TxIRQEn){ TxB_IRQ := ~TxError } .otherwise{ TxB_IRQ := false.B } // Tx Error Interrupt when(TxStatusWrite & TxIRQEn){ TxE_IRQ := TxError } .otherwise{ TxE_IRQ := false.B } // Rx Done Interrupt when(RxStatusWrite & RxIRQEn & io.ReceivedPacketGood & (~io.ReceivedPauseFrm | io.ReceivedPauseFrm & io.r_PassAll & (~io.r_RxFlow))){ RxB_IRQ := (~RxError) } .otherwise{ RxB_IRQ := false.B } // Rx Error Interrupt when(RxStatusWrite & RxIRQEn & (~io.ReceivedPauseFrm | io.ReceivedPauseFrm & io.r_PassAll & (~io.r_RxFlow))){ RxE_IRQ := RxError } .otherwise{ RxE_IRQ := false.B } // Busy Interrupt val Busy_IRQ_rck_rxclk = Wire(Bool()) val Busy_IRQ_sync = ShiftRegisters(Busy_IRQ_rck_rxclk, 3) io.Busy_IRQ := Busy_IRQ_sync(1) & ~Busy_IRQ_sync(2) // Connected to registers // val CsMiss = Wire(Bool()) BDCs := Fill(4, io.tlSlv.A.valid & io.tlSlv.A.bits.mask.orR & io.tlSlv.A.bits.address(10)) & io.tlSlv.A.bits.mask // 0x400 - 0x7FF // CsMiss := io.tlSlv.A.valid & io.tlSlv.A.bits.mask.orR & io.tlSlv.A.bits.address(11) // 0x800 - 0xfFF // When access to the address between 0x800 and 0xfff occurs, acknowledge is set but data is not valid. val slvAInfo = RegEnable( io.tlSlv.A.bits, io.tlSlv.A.fire ) val slvDValid = RegInit(false.B); io.tlSlv.D.valid := slvDValid val slvDDat = Reg(UInt(32.W)) when( io.tlSlv.D.fire ){ slvDValid := false.B } .elsewhen(io.tlSlv.A.fire){ slvDValid := true.B slvDDat := BD_WB_DAT_O } when(slvAInfo.opcode === 4.U) { io.tlSlv.D.bits := edgeIn.AccessAck(slvAInfo, slvDDat) } .otherwise { io.tlSlv.D.bits := edgeIn.AccessAck(slvAInfo) } io.tlSlv.A.ready := BDAck assert( ~(io.tlSlv.A.ready & ~io.tlSlv.A.valid) ) // when( io.tlSlv.A.fire & (~(io.tlSlv.A.bits.mask.orR) | CsMiss) ){ // assert( false.B, "Assert Failed, tileLink access an undefine region!" ) // } val mstAValid = RegInit(false.B) val mstABits = Reg(new TLBundleA(edgeOut.bundle)) // val tlMstStateDnxt = WireDefault() // val tlMstState = RegNext( ) when( io.tlMst.A.fire ){ mstAValid := false.B } .elsewhen( MasterWbRX & ~isTlMstBusy ) { mstAValid := true.B mstABits := edgeOut.Put( fromSource = 0.U, toAddress = RxPointerMSB << 2, lgSize = log2Ceil(32/8).U, data = rx_fifo.io.data_out, mask = RxByteSel, )._2 } .elsewhen( MasterWbTX & ~isTlMstBusy ){ mstAValid := true.B mstABits := edgeOut.Get( fromSource = 0.U, toAddress = TxPointerMSB << 2, lgSize = log2Ceil(32/8).U, )._2 } when( io.tlMst.A.fire ){ isTlMstBusy := true.B } .elsewhen( io.tlMst.D.fire ){ isTlMstBusy := false.B } when( ~MasterWbTX & ~MasterWbRX ){ when( WriteRxDataToMemory ){ MasterWbRX := true.B } .elsewhen(ReadTxDataFromMemory_2) { MasterWbTX := true.B } } .elsewhen( ~MasterWbTX & MasterWbRX){ //1.4A + 1D fifo to memory when( io.tlMst.D.fire & isLastD & ~WriteRxDataToMemory ){ MasterWbRX := false.B } } .elsewhen( MasterWbTX & ~MasterWbRX){ //1 A + 1.4D memory to fifo when( io.tlMst.D.fire & isLastD & ~ReadTxDataFromMemory_2 ){ MasterWbTX := false.B } } when(io.tlMst.D.fire & io.tlMst.D.bits.opcode === 1.U) { assert( MasterWbTX ) } when(io.tlMst.D.fire & io.tlMst.D.bits.opcode === 0.U) { assert( MasterWbRX ) } val tlMstAValid_dbg = RegInit(true.B) io.tlMst.A.valid := mstAValid & tlMstAValid_dbg io.tlMst.A.bits := mstABits val tlMstDReady = RegInit(true.B) dontTouch(tlMstDReady) dontTouch(tlMstAValid_dbg) io.tlMst.D.ready := tlMstDReady } trait MacTileLinkTXClk{ this: MacTileLinkBase => withClockAndReset( io.MTxClk.asClock, io.asyncReset ) { val Flop = RegInit(false.B) // Synchronizing BlockingTxStatusWrite to MTxClk val BlockingTxStatusWrite_sync1 = RegNext(BlockingTxStatusWrite, false.B) val BlockingTxStatusWrite_sync2 = RegNext(BlockingTxStatusWrite_sync1, false.B); BlockingTxStatusWrite_sync2_txclk := BlockingTxStatusWrite_sync2 val BlockingTxStatusWrite_sync3 = RegNext(BlockingTxStatusWrite_sync2, false.B); BlockingTxStatusWrite_sync3_txclk := BlockingTxStatusWrite_sync3 // Synchronizing TxStartFrm_wb to MTxClk val TxStartFrm_sync = ShiftRegister( TxStartFrm_wb, 2, false.B, true.B ); TxStartFrm_sync_txclk := TxStartFrm_sync val TxStartFrm = RegInit(false.B); io.TxStartFrm := TxStartFrm val TxEndFrm = RegInit(false.B); io.TxEndFrm := TxEndFrm val TxData = RegInit(0.U(8.W)); io.TxData := TxData val TxUnderRun = RegInit(false.B); io.TxUnderRun := TxUnderRun val TxDataLatched = RegInit(0.U(32.W)) val TxByteCnt = RegInit(0.U(2.W)) val LastWord = RegInit(false.B) val ReadTxDataFromFifo_tck = RegInit(false.B); ReadTxDataFromFifo_tck_txclk := ReadTxDataFromFifo_tck // Generating delayed signals val TxAbort_q = RegNext( io.TxAbort, false.B) val TxRetry_q = RegNext( io.TxRetry, false.B) val TxUsedData_q = RegNext( io.TxUsedData, false.B) val ReadTxDataFromFifo_syncb = ShiftRegisters(ReadTxDataFromFifo_sync(1), 3, false.B, true.B) // Changes for tx occur every second clock. Flop is used for this manner. when( io.TxDone | io.TxAbort | TxRetry_q){ Flop := false.B } .elsewhen ( io.TxUsedData ){ Flop := ~Flop } when(TxStartFrm_sync){ TxStartFrm := true.B } .elsewhen(TxUsedData_q | ~TxStartFrm_sync & (io.TxRetry & (~TxRetry_q) | io.TxAbort & (~TxAbort_q))){ TxStartFrm := false.B } // Indication of the last word when( (TxEndFrm | io.TxAbort | io.TxRetry) & Flop ){ LastWord := false.B } .elsewhen( io.TxUsedData & Flop & TxByteCnt === 3.U ){ LastWord := TxEndFrm_wb } // Tx end frame generation when(Flop & TxEndFrm | io.TxAbort | TxRetry_q){ TxEndFrm := false.B } .elsewhen(Flop & LastWord){ TxEndFrm := Mux1H(Seq( (TxValidBytesLatched === 1.U) -> (TxByteCnt === 0.U), (TxValidBytesLatched === 2.U) -> (TxByteCnt === 1.U), (TxValidBytesLatched === 3.U) -> (TxByteCnt === 2.U), (TxValidBytesLatched === 0.U) -> (TxByteCnt === 3.U), )) } // Tx data selection (latching) when( TxStartFrm_sync & ~TxStartFrm ){ TxData := Mux1H(Seq( ( TxPointerLSB === 0.U ) -> TxData_wb( 7, 0),// little Endian Byte Ordering ( TxPointerLSB === 1.U ) -> TxData_wb(15, 8),// little Endian Byte Ordering ( TxPointerLSB === 2.U ) -> TxData_wb(23,16),// little Endian Byte Ordering ( TxPointerLSB === 3.U ) -> TxData_wb(31,24),// little Endian Byte Ordering )) } .elsewhen( TxStartFrm & io.TxUsedData & TxPointerLSB === 3.U ){ TxData := TxData_wb( 7, 0) // little Endian Byte Ordering } .elsewhen(io.TxUsedData & Flop){ TxData := Mux1H(Seq( (TxByteCnt === 0.U) -> TxDataLatched( 7, 0),// little Endian Byte Ordering (TxByteCnt === 1.U) -> TxDataLatched(15, 8), (TxByteCnt === 2.U) -> TxDataLatched(23,16), (TxByteCnt === 3.U) -> TxDataLatched(31,24), )) } // Latching tx data when( TxStartFrm_sync & ~TxStartFrm | io.TxUsedData & Flop & TxByteCnt === 3.U | TxStartFrm & io.TxUsedData & Flop & TxByteCnt === 0.U){ TxDataLatched := TxData_wb } val TxUnderRun_sync1 = RegInit(false.B) // Tx under run when(TxUnderRun_wb){ TxUnderRun_sync1 := true.B } .elsewhen(BlockingTxStatusWrite_sync2){ TxUnderRun_sync1 := false.B } // Tx under run when(BlockingTxStatusWrite_sync2){ TxUnderRun := false.B } .elsewhen(TxUnderRun_sync1){ TxUnderRun := true.B } // Tx Byte counter when(TxAbort_q | TxRetry_q){ TxByteCnt := 0.U } .elsewhen(TxStartFrm & ~io.TxUsedData){ TxByteCnt := Mux1H(Seq( ( TxPointerLSB === 0.U ) -> 1.U, ( TxPointerLSB === 1.U ) -> 2.U, ( TxPointerLSB === 2.U ) -> 3.U, ( TxPointerLSB === 3.U ) -> 0.U, )) } .elsewhen(io.TxUsedData & Flop){ TxByteCnt := TxByteCnt + 1.U } when(TxStartFrm_sync & ~TxStartFrm | io.TxUsedData & Flop & TxByteCnt === 3.U & ~LastWord | TxStartFrm & io.TxUsedData & Flop & TxByteCnt === 0.U ){ ReadTxDataFromFifo_tck := true.B } .elsewhen(ReadTxDataFromFifo_syncb(1) & ~ReadTxDataFromFifo_syncb(2)){ ReadTxDataFromFifo_tck := false.B } } } trait MacTileLinkRXClk{ this: MacTileLinkBase => withClockAndReset( io.MRxClk.asClock, io.asyncReset ){ val RxDataLatched2 = RegInit(0.U(32.W)); RxDataLatched2_rxclk := RxDataLatched2 val RxDataLatched1 = RegInit(0.U(24.W)) // Little Endian Byte Ordering[23:0] val RxValidBytes = RegInit(1.U(2.W)) val RxByteCnt = RegInit(0.U(2.W)); RxByteCnt_rxclk := RxByteCnt val LastByteIn = RegInit(false.B); LastByteIn_rxclk := LastByteIn val ShiftWillEnd = RegInit(false.B); ShiftWillEnd_rxclk := ShiftWillEnd val WriteRxDataToFifo = RegInit(false.B); WriteRxDataToFifo_rxclk := WriteRxDataToFifo val RxAbortLatched = RegInit(false.B); RxAbortLatched_rxclk := RxAbortLatched val LatchedRxLength = RegEnable(io.RxLength, 0.U(16.W), io.LoadRxStatus); LatchedRxLength_rxclk := LatchedRxLength val RxStatusInLatched = RegEnable(RxStatusIn, 0.U(9.W), io.LoadRxStatus); RxStatusInLatched_rxclk := RxStatusInLatched val ShiftEnded_rck = RegInit(false.B); ShiftEnded_rck_txclk := ShiftEnded_rck val ShiftEndedSync = ShiftRegisters(ShiftEndedSync2, 2, false.B, true.B) val RxAbortSyncb = ShiftRegister( RxAbortSync(1), 2, false.B, true.B ) val RxEnableWindow = RegInit(false.B); RxEnableWindow_rxclk := RxEnableWindow val LatchedRxStartFrm = RegInit(false.B); LatchedRxStartFrm_rxclk := LatchedRxStartFrm val RxStatusWriteLatched_sync = ShiftRegister(RxStatusWriteLatched, 2, false.B, true.B); io.RxStatusWriteLatched_sync2 := RxStatusWriteLatched_sync // Indicating that last byte is being reveived when(ShiftWillEnd & RxByteCnt.andR | io.RxAbort){ LastByteIn := false.B } .elsewhen(io.RxValid & RxReady & io.RxEndFrm & ~(RxByteCnt.andR) & RxEnableWindow){ LastByteIn := true.B } // Indicating that data reception will end when(ShiftEnded_rck | io.RxAbort){ ShiftWillEnd := false.B } .elsewhen(StartShiftWillEnd){ ShiftWillEnd := true.B } // Receive byte counter when(ShiftEnded_rck | io.RxAbort){ RxByteCnt := 0.U } .elsewhen(io.RxValid & io.RxStartFrm & RxReady){ RxByteCnt := Mux1H(Seq( ( RxPointerLSB_rst === 0.U ) -> 1.U, ( RxPointerLSB_rst === 1.U ) -> 2.U, ( RxPointerLSB_rst === 2.U ) -> 3.U, ( RxPointerLSB_rst === 3.U ) -> 0.U, )) } .elsewhen(io.RxValid & RxEnableWindow & RxReady | LastByteIn){ RxByteCnt := RxByteCnt + 1.U } // Indicates how many bytes are valid within the last word when(io.RxValid & io.RxStartFrm){ RxValidBytes := Mux1H(Seq( ( RxPointerLSB_rst === 0.U ) -> 1.U, ( RxPointerLSB_rst === 1.U ) -> 2.U, ( RxPointerLSB_rst === 2.U ) -> 3.U, ( RxPointerLSB_rst === 3.U ) -> 0.U, )) } .elsewhen(io.RxValid & ~LastByteIn & ~io.RxStartFrm & RxEnableWindow){ RxValidBytes := RxValidBytes + 1.U } when(io.RxValid & RxReady & ~LastByteIn){ when(io.RxStartFrm){ RxDataLatched1 := Mux1H(Seq( ( RxPointerLSB_rst === 0.U ) -> Cat(RxDataLatched1(23, 8), io.RxData),// Little Endian Byte Ordering ( RxPointerLSB_rst === 1.U ) -> Cat(RxDataLatched1(23,16), io.RxData, RxDataLatched1( 7,0)), ( RxPointerLSB_rst === 2.U ) -> Cat( io.RxData, RxDataLatched1(15,0)), ( RxPointerLSB_rst === 3.U ) -> RxDataLatched1, )) } .elsewhen(RxEnableWindow){ RxDataLatched1 := Mux1H(Seq( ( RxByteCnt === 0.U ) -> Cat(RxDataLatched1(23, 8), io.RxData),// Little Endian Byte Ordering ( RxByteCnt === 1.U ) -> Cat(RxDataLatched1(23,16), io.RxData, RxDataLatched1( 7,0)), ( RxByteCnt === 2.U ) -> Cat( io.RxData, RxDataLatched1(15,0)), ( RxByteCnt === 3.U ) -> RxDataLatched1, )) } } // Assembling data that will be written to the rx_fifo when(SetWriteRxDataToFifo & ~ShiftWillEnd){ RxDataLatched2 := Cat(io.RxData, RxDataLatched1)// Little Endian Byte Ordering } .elsewhen(SetWriteRxDataToFifo & ShiftWillEnd){ RxDataLatched2 := Mux1H(Seq( // Little Endian Byte Ordering ( RxValidBytes === 0.U ) -> Cat(io.RxData, RxDataLatched1), ( RxValidBytes === 1.U ) -> Cat(0.U(24.W), RxDataLatched1(7,0) ), ( RxValidBytes === 2.U ) -> Cat(0.U(16.W), RxDataLatched1(15, 0) ), ( RxValidBytes === 3.U ) -> Cat(0.U(8.W), RxDataLatched1 ), )) } when(SetWriteRxDataToFifo & ~io.RxAbort){ WriteRxDataToFifo := true.B } .elsewhen(WriteRxDataToFifoSync(1) | io.RxAbort){ WriteRxDataToFifo := false.B } when(io.RxStartFrm & ~SyncRxStartFrm(1)){ LatchedRxStartFrm := true.B } .elsewhen(SyncRxStartFrm(1)){ LatchedRxStartFrm := false.B } // Generation of the end-of-frame signal when(~io.RxAbort & SetWriteRxDataToFifo & StartShiftWillEnd){ ShiftEnded_rck := true.B } .elsewhen(io.RxAbort | ShiftEndedSync(0) & ShiftEndedSync(1)){ ShiftEnded_rck := false.B } // Generation of the end-of-frame signal when(io.RxStartFrm){ RxEnableWindow := true.B } .elsewhen(io.RxEndFrm | io.RxAbort){ RxEnableWindow := false.B } when(RxAbortSyncb){ RxAbortLatched := false.B } .elsewhen(io.RxAbort){ RxAbortLatched := true.B } val Busy_IRQ_rck = RegInit(false.B); Busy_IRQ_rck_rxclk := Busy_IRQ_rck val Busy_IRQ_syncb = ShiftRegister( Busy_IRQ_sync(1), 2, false.B, true.B ) when(io.RxValid & io.RxStartFrm & ~RxReady){ Busy_IRQ_rck := true.B } .elsewhen(Busy_IRQ_syncb){ Busy_IRQ_rck := false.B } } } class MacTileLink(edgeIn: TLEdgeIn, edgeOut: TLEdgeOut) extends MacTileLinkBase(edgeIn, edgeOut) with MacTileLinkTXClk with MacTileLinkRXClk