package BACK import chisel3._ import chisel3.util._ //work in 100MHZ class CDRInIO extends Bundle{ val axis = Decoupled(new AXIS_Bundle(8)) val serDat = Input(Bool()) val overCLK = Input(Bool()) } abstract class CDRInBase extends Module{ def sampleRate: Int = 4 require( sampleRate == 4 ) val io: CDRInIO = IO(new CDRInIO) } trait CDRInOverSample{ this: CDRInBase => val sampleReg = withClockAndReset(io.overCLK.asClock, reset.asBool){ ShiftRegisters( RegNext(io.serDat), sampleRate ) } // val arbShiftData = for( i <- 0 until sampleRate ) yield { RegInit(0.U(24.W)) } // val arbSel = Reg(UInt( log2Ceil(sampleRate).W )) // val isArbLock = RegInit(false.B) // for( i <- 0 until sampleRate ){ // arbShiftData(i) := Cat( arbShiftData(i)(22,0), RegNext(sampleReg(i)) ) // when( arbShiftData(i) === "h5A5A5A".U & ~isArbLock ){ // isArbLock := true.B // arbSel := i.U // } // } // when( ( 0 until sampleRate ).map{ i => (arbShiftData(i) === 0.U) }.reduce(_&_) ){ // isArbLock := false.B // } // val syncSerDat = // Mux1H( (0 until sampleRate).map{ i => (( arbSel === i.U ) -> ShiftRegister( sampleReg(i), 2) ) } ) val arbCnt = withClockAndReset(io.overCLK.asClock, reset.asBool){ RegInit("b0001".U(sampleRate.W)) } arbCnt := Cat( arbCnt << 1, arbCnt.extract(3) ) val arbLock = withClockAndReset(io.overCLK.asClock, reset.asBool){ Reg(UInt( sampleRate.W )) } when( sampleReg(0) ^ sampleReg(1) ){ arbLock := arbCnt } val asyncSerDat = Mux1H(Seq( (arbLock === "b0001".U & arbCnt === "b0001".U) -> sampleReg(3), (arbLock === "b0001".U & arbCnt === "b0010".U) -> sampleReg(0), (arbLock === "b0001".U & arbCnt === "b0100".U) -> sampleReg(1), (arbLock === "b0001".U & arbCnt === "b1000".U) -> sampleReg(2), (arbLock === "b0010".U & arbCnt === "b0001".U) -> sampleReg(2), (arbLock === "b0010".U & arbCnt === "b0010".U) -> sampleReg(3), (arbLock === "b0010".U & arbCnt === "b0100".U) -> sampleReg(0), (arbLock === "b0010".U & arbCnt === "b1000".U) -> sampleReg(1), (arbLock === "b0100".U & arbCnt === "b0001".U) -> sampleReg(1), (arbLock === "b0100".U & arbCnt === "b0010".U) -> sampleReg(2), (arbLock === "b0100".U & arbCnt === "b0100".U) -> sampleReg(3), (arbLock === "b0100".U & arbCnt === "b1000".U) -> sampleReg(0), (arbLock === "b1000".U & arbCnt === "b0001".U) -> sampleReg(0), (arbLock === "b1000".U & arbCnt === "b0010".U) -> sampleReg(1), (arbLock === "b1000".U & arbCnt === "b0100".U) -> sampleReg(2), (arbLock === "b1000".U & arbCnt === "b1000".U) -> sampleReg(3), )) val syncSerDat = ShiftRegister( asyncSerDat, 2 ) } trait CDRInAxis{ this: CDRInBase => def HeaderByte: Int = 8 val ETH_PRE = "h55".U(8.W) val ETH_SFD = "hD5".U(8.W) val STATE_IDLE = 0.U val STATE_HEADER = 1.U val STATE_PAYLOAD = 2.U val STATE_CRC = 3.U val stateNext = Wire(UInt(2.W)) val stateCurr = RegNext( stateNext, STATE_IDLE ) val crcUnit = Module(new crc32_8) val crcOut = crcUnit.io.crc val crcCmp = Reg(UInt(32.W)) val bitCnt = Reg(UInt(4.W)) val byteCnt = RegInit(0.U(12.W)) val syncSerDat: Bool val checkSFD = RegInit( 0.U(20.W) ); checkSFD := Cat( checkSFD(18,0), syncSerDat ) val shiftData = Dualb4b5Decoder(checkSFD(9,0)) val payloadLen = Reg(UInt(12.W)) when( byteCnt === 0.U & bitCnt === 9.U & stateCurr === STATE_HEADER ){ payloadLen := Cat( shiftData, 0.U(4.W) ) } .elsewhen( byteCnt === 1.U & bitCnt === 9.U & stateCurr === STATE_HEADER ){ payloadLen := Cat( payloadLen(11,4), shiftData(7,4) ) } stateNext := Mux1H(Seq( (stateCurr === STATE_IDLE) -> ( Mux( checkSFD === Cat(Dualb4b5Encoder(ETH_PRE) , Dualb4b5Encoder(ETH_SFD)), STATE_HEADER, STATE_IDLE )), //IDLE (stateCurr === STATE_HEADER) -> ( Mux( (byteCnt === (HeaderByte-1).U) & (bitCnt === 9.U), STATE_PAYLOAD, STATE_HEADER ) ), (stateCurr === STATE_PAYLOAD) -> ( Mux( (byteCnt === (payloadLen-1.U) ) & (bitCnt === 9.U), STATE_CRC, STATE_PAYLOAD )), // PAYLOAD (stateCurr === STATE_CRC) -> ( Mux( (byteCnt === 3.U) & (bitCnt === 9.U), STATE_IDLE, STATE_CRC )), //CRC )) when( stateCurr === STATE_IDLE & ( checkSFD === Cat(Dualb4b5Encoder(ETH_PRE) , Dualb4b5Encoder(ETH_SFD)) ) ){ //first align bitCnt := 0.U } .otherwise{ when( bitCnt === 9.U ){ bitCnt := 0.U } .otherwise{ bitCnt := bitCnt + 1.U } } when( stateCurr === STATE_IDLE & ( checkSFD === Cat(Dualb4b5Encoder(ETH_PRE) , Dualb4b5Encoder(ETH_SFD)) ) ){ //first align byteCnt := 0.U } .elsewhen( bitCnt === 9.U ){ when( stateCurr === STATE_HEADER ){ byteCnt := Mux( byteCnt =/= (HeaderByte-1).U, byteCnt + 1.U, 0.U ) assert( byteCnt <= (HeaderByte-1).U ) } .elsewhen( stateCurr === STATE_PAYLOAD ){ byteCnt := Mux( byteCnt =/= (payloadLen-1.U), byteCnt + 1.U, 0.U ) assert( byteCnt <= ( payloadLen-1.U ) ) } .elsewhen( stateCurr === STATE_CRC ){ byteCnt := Mux( byteCnt =/= 3.U, byteCnt + 1.U, 0.U ) assert( byteCnt <= 3.U ) } } val axis_valid = RegInit(false.B) val axis_tdata = RegEnable( shiftData, bitCnt === 9.U & ( stateCurr === STATE_HEADER | stateCurr === STATE_PAYLOAD | stateCurr === STATE_CRC ) ) val axis_tuser = RegEnable( stateCurr === STATE_CRC & byteCnt === 3.U & (crcOut =/= ~Cat( shiftData, crcCmp(31,8) )), bitCnt === 9.U ) val axis_tlast = RegEnable( stateCurr === STATE_CRC & byteCnt === 3.U, bitCnt === 9.U ) io.axis.valid := axis_valid io.axis.bits.tdata := axis_tdata io.axis.bits.tuser := axis_tuser io.axis.bits.tlast := axis_tlast when( io.axis.fire ){ axis_valid := false.B } .elsewhen( bitCnt === 9.U & ( stateCurr === STATE_HEADER | stateCurr === STATE_PAYLOAD | stateCurr === STATE_CRC ) ){ axis_valid := true.B } when( stateCurr === STATE_CRC & bitCnt === 9.U ){ crcCmp := Cat( shiftData, crcCmp(31,8) ) } crcUnit.io.isEnable := ((stateCurr === STATE_HEADER ) | (stateCurr === STATE_PAYLOAD )) & ( bitCnt === 9.U ) crcUnit.io.dataIn := shiftData crcUnit.reset := reset.asBool | ( stateCurr === STATE_IDLE ) //idle } class CDRIn extends CDRInBase with CDRInOverSample with CDRInAxis