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eb001/src/test/scala/SimCDR.scala.bk

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package BACK
import chisel3._
import chisel3.util._
class SimCDR extends Module with RequireAsyncReset{
val io = IO(new Bundle{
val data = Input( UInt(8.W) )
val multiCLK = Input(Vec(16, Bool()))
val flush = Input(Bool())
val isSuccess = Output(Bool())
val isFailed = Output(Bool())
})
val cdrInAxis = Module(new CDRInAxis)
val cdrInSample = Module(new CDRInMultiSample(clkNum = 4))
val cdrOut = Module(new CDROut)
val dataCnt = RegInit(0.U(12.W))
val payloadLen = RegInit(("hFFF".U)(12.W))
val b4b5Encoder = Module(new b4b5DualEncode)
val b4b5Decoder = Module(new b4b5DualDecode)
val b8b10Encoder = Module(new b8b10Encode)
val b8b10Decoder = Module(new b8b10Decode)
val wPtr = RegInit(0.U(12.W))
val rPtr = withClockAndReset( io.multiCLK(0).asClock, reset ) { RegInit(0.U(12.W)) }
val asyncFifo = Module(new ShareSRAM2k)
when( cdrOut.io.axis.fire & dataCnt === 0.U ){
payloadLen := Cat( io.data, 0.U(4.W) )
} .elsewhen( cdrOut.io.axis.fire & dataCnt === 1.U ){
payloadLen := Cat( payloadLen(11,4), io.data(7,4) ) + 4.U + 4.U
}
when( cdrOut.io.axis.fire ){
when( dataCnt >= payloadLen - 1.U ){
dataCnt := 0.U
} .otherwise{
dataCnt := dataCnt + 1.U
}
}
cdrOut.io.flush := io.flush
cdrInAxis.clock := io.multiCLK(0).asClock
cdrInSample.clock := io.multiCLK(0).asClock
cdrInAxis.io.flush := io.flush
// cdrInSample.multiCLK := io.multiCLK
cdrInSample.multiCLK(0) := io.multiCLK(0)
cdrInSample.multiCLK(1) := io.multiCLK(4)
cdrInSample.multiCLK(2) := io.multiCLK(8)
cdrInSample.multiCLK(3) := io.multiCLK(12)
cdrInAxis.io.syncSerDat := cdrInSample.io.syncSerDat
cdrInSample.io.serDat := cdrOut.io.serDat
val isTxEnd = cdrOut.io.axis.fire & cdrOut.io.axis.bits.tlast
cdrOut.io.axis.valid := ~io.flush & ShiftRegisters( ~isTxEnd, 32 ).reduce(_&_)
cdrOut.io.axis.bits.tdata := io.data
cdrOut.io.axis.bits.tuser := false.B
cdrOut.io.axis.bits.tlast := dataCnt === (payloadLen - 1.U)
cdrInAxis.io.axis.ready := true.B
io.isFailed := cdrInAxis.io.axis.fire & (asyncFifo.io.datar =/= cdrInAxis.io.axis.bits.tdata)
io.isSuccess := cdrInAxis.io.axis.fire & cdrInAxis.io.axis.bits.tlast
val isUsing8b10b = true.B
when( isUsing8b10b ){
b8b10Encoder.io <> cdrOut.io.encode
b8b10Decoder.io <> cdrInAxis.io.decode
b4b5Encoder.io.isEnable := false.B
b4b5Encoder.io.dataIn := 0.U
b4b5Decoder.io.dataIn := 0.U
} .otherwise{
b4b5Encoder.io <> cdrOut.io.encode
b4b5Decoder.io <> cdrInAxis.io.decode
b8b10Encoder.io.isEnable := false.B
b8b10Encoder.io.dataIn := 0.U
b8b10Decoder.io.dataIn := 0.U
}
asyncFifo.io.clockw := clock.asBool
asyncFifo.io.dataw := io.data
asyncFifo.io.addrw := wPtr(10,0)
asyncFifo.io.enw := cdrOut.io.axis.fire
asyncFifo.io.clockr := io.multiCLK(0)
asyncFifo.io.addrr := rPtr(10,0)
asyncFifo.io.enr := true.B
when( cdrOut.io.axis.fire ){
wPtr := wPtr + 1.U
}
when( cdrInAxis.io.axis.fire ){
rPtr := rPtr + 1.U
}
val isFull = (wPtr ^ rPtr) === (1.U << log2Ceil(2048))
assert(~isFull)
val coverData = RegInit(VecInit(Seq.fill(512){false.B}))
when( cdrOut.io.axis.fire ){
for( i <- 0 until 256 ){
when( io.data === i.U ){
when( b8b10Encoder.rdTest ){
coverData(i) := true.B
} .otherwise{
coverData(256+i) := true.B
}
}
}
}
// val coverData = RegInit(VecInit(Seq.fill(256){false.B}))
// when( cdrOut.io.axis.fire ){
// for( i <- 0 until 256 ){
// when( io.data === i.U ){
// coverData(i) := true.B
// }
// }
// }
val coverage = PopCount(coverData.asUInt)
when( io.isSuccess ){
printf( cf"Coverage: ${coverage}\n")
}
}