compile without tl2cdr

This commit is contained in:
Ruige Lee (WSL)
2025-01-09 19:10:07 +08:00
parent 1ea6ef2596
commit 134440812b
5 changed files with 664 additions and 656 deletions

View File

@@ -1,194 +1,195 @@
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
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

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@@ -1,109 +1,109 @@
package BACK
import chisel3._
import chisel3.util._
class AXIS_Bundle(dw: Int) extends Bundle{
val tdata = UInt(dw.W)
val tlast = Bool()
val tuser = Bool()
}
//work in 100MHZ
class CDROutIO extends Bundle{
val axis = Flipped(Decoupled(new AXIS_Bundle(8)))
val serDat = Output(Bool())
}
class CDROut extends Module{
val io: CDROutIO = IO(new CDROutIO)
val crcUnit = Module(new crc32_8)
def STATE_IDLE = 0.U
def STATE_PREAMBLE = 1.U
def STATE_PAYLOAD = 2.U
def STATE_FCS = 3.U
val ETH_PRE = "h55".U
val ETH_SFD = "hD5".U
val stateNext = Wire(UInt(2.W))
val stateCurr = RegNext( stateNext, 0.U )
val bitCnt = Reg(UInt(4.W))
val byteCnt = Reg(UInt(3.W)) //payload dont need to count
val crcOut = crcUnit.io.crc
val reset_crc = stateCurr === STATE_IDLE
crcUnit.reset := reset.asBool | reset_crc
crcUnit.io.dataIn := io.axis.bits.tdata
crcUnit.io.isEnable := io.axis.fire
val shiftData = RegInit(0.U(10.W))
stateNext := Mux1H(Seq(
(stateCurr === STATE_IDLE) -> ( Mux( io.axis.valid, STATE_PREAMBLE, STATE_IDLE )),
(stateCurr === STATE_PREAMBLE) -> ( Mux( (byteCnt === 7.U) & (bitCnt === 9.U), STATE_PAYLOAD, STATE_PREAMBLE )),
(stateCurr === STATE_PAYLOAD) -> ( Mux( io.axis.fire, Mux( io.axis.bits.tlast, STATE_FCS, STATE_PAYLOAD ), STATE_PAYLOAD ) ),
(stateCurr === STATE_FCS) -> ( Mux( (byteCnt === (3+1).U) & (bitCnt === 9.U), STATE_IDLE, STATE_FCS )),
))
io.serDat := shiftData.extract(9)
io.axis.ready :=
bitCnt === 9.U & (
(stateCurr === STATE_PREAMBLE & byteCnt === 7.U) |
(stateCurr === STATE_PAYLOAD)
)
when( stateCurr === STATE_IDLE & stateNext === STATE_PREAMBLE){ //PRE
shiftData := Dualb4b5Encoder(ETH_PRE)
} .otherwise{
when( bitCnt =/= 9.U ){
shiftData := shiftData << 1
} .otherwise{ //bitCnt === 9.U
when( stateCurr === STATE_PREAMBLE ){
shiftData := MuxCase( Dualb4b5Encoder(ETH_PRE), Array(
( byteCnt === 6.U ) -> Dualb4b5Encoder(ETH_SFD),
( byteCnt === 7.U ) -> Dualb4b5Encoder(io.axis.bits.tdata),
))
} .elsewhen( stateCurr === STATE_PAYLOAD ){
shiftData := Dualb4b5Encoder(io.axis.bits.tdata)
} .elsewhen( stateCurr === STATE_FCS ){
shiftData := Mux1H(Seq(
( byteCnt === 0.U) -> Dualb4b5Encoder(~crcOut( 7,0) ),
( byteCnt === 1.U) -> Dualb4b5Encoder(~crcOut(15,8) ),
( byteCnt === 2.U) -> Dualb4b5Encoder(~crcOut(23,16)),
( byteCnt === 3.U) -> Dualb4b5Encoder(~crcOut(31,24)),
))
}
}
}
when( stateCurr === STATE_IDLE ){ //PRE
bitCnt := 0.U
} .otherwise{
when( bitCnt === 9.U ){
bitCnt := 0.U
} .otherwise{
bitCnt := bitCnt + 1.U
}
}
when( (stateCurr === STATE_IDLE) | (stateCurr === STATE_PAYLOAD) ){
byteCnt := 0.U
} .elsewhen( bitCnt === 9.U ){
byteCnt := byteCnt + 1.U
}
}
package BACK
import chisel3._
import chisel3.util._
class AXIS_Bundle(dw: Int) extends Bundle{
val tdata = UInt(dw.W)
val tlast = Bool()
val tuser = Bool()
}
//work in 100MHZ
class CDROutIO extends Bundle{
val axis = Flipped(Decoupled(new AXIS_Bundle(8)))
val serDat = Output(Bool())
}
class CDROut extends Module{
val io: CDROutIO = IO(new CDROutIO)
val crcUnit = Module(new crc32_8)
def STATE_IDLE = 0.U
def STATE_PREAMBLE = 1.U
def STATE_PAYLOAD = 2.U
def STATE_FCS = 3.U
val ETH_PRE = "h55".U
val ETH_SFD = "hD5".U
val stateNext = Wire(UInt(2.W))
val stateCurr = RegNext( stateNext, 0.U )
val bitCnt = Reg(UInt(4.W))
val byteCnt = Reg(UInt(3.W)) //payload dont need to count
val crcOut = crcUnit.io.crc
val reset_crc = stateCurr === STATE_IDLE
crcUnit.reset := reset.asBool | reset_crc
crcUnit.io.dataIn := io.axis.bits.tdata
crcUnit.io.isEnable := io.axis.fire
val shiftData = RegInit(0.U(10.W))
stateNext := Mux1H(Seq(
(stateCurr === STATE_IDLE) -> ( Mux( io.axis.valid, STATE_PREAMBLE, STATE_IDLE )),
(stateCurr === STATE_PREAMBLE) -> ( Mux( (byteCnt === 7.U) & (bitCnt === 9.U), STATE_PAYLOAD, STATE_PREAMBLE )),
(stateCurr === STATE_PAYLOAD) -> ( Mux( io.axis.fire, Mux( io.axis.bits.tlast, STATE_FCS, STATE_PAYLOAD ), STATE_PAYLOAD ) ),
(stateCurr === STATE_FCS) -> ( Mux( (byteCnt === (3+1).U) & (bitCnt === 9.U), STATE_IDLE, STATE_FCS )),
))
io.serDat := shiftData.extract(9)
io.axis.ready :=
bitCnt === 9.U & (
(stateCurr === STATE_PREAMBLE & byteCnt === 7.U) |
(stateCurr === STATE_PAYLOAD)
)
when( stateCurr === STATE_IDLE & stateNext === STATE_PREAMBLE){ //PRE
shiftData := Dualb4b5Encoder(ETH_PRE)
} .otherwise{
when( bitCnt =/= 9.U ){
shiftData := shiftData << 1
} .otherwise{ //bitCnt === 9.U
when( stateCurr === STATE_PREAMBLE ){
shiftData := MuxCase( Dualb4b5Encoder(ETH_PRE), Array(
( byteCnt === 6.U ) -> Dualb4b5Encoder(ETH_SFD),
( byteCnt === 7.U ) -> Dualb4b5Encoder(io.axis.bits.tdata),
))
} .elsewhen( stateCurr === STATE_PAYLOAD ){
shiftData := Dualb4b5Encoder(io.axis.bits.tdata)
} .elsewhen( stateCurr === STATE_FCS ){
shiftData := Mux1H(Seq(
( byteCnt === 0.U) -> Dualb4b5Encoder(~crcOut( 7,0) ),
( byteCnt === 1.U) -> Dualb4b5Encoder(~crcOut(15,8) ),
( byteCnt === 2.U) -> Dualb4b5Encoder(~crcOut(23,16)),
( byteCnt === 3.U) -> Dualb4b5Encoder(~crcOut(31,24)),
))
}
}
}
when( stateCurr === STATE_IDLE ){ //PRE
bitCnt := 0.U
} .otherwise{
when( bitCnt === 9.U ){
bitCnt := 0.U
} .otherwise{
bitCnt := bitCnt + 1.U
}
}
when( (stateCurr === STATE_IDLE) | (stateCurr === STATE_PAYLOAD) ){
byteCnt := 0.U
} .elsewhen( bitCnt === 9.U ){
byteCnt := byteCnt + 1.U
}
}

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@@ -1,268 +1,295 @@
package BACK
import chisel3._
import chisel3.util._
import org.chipsalliance.cde.config._
import freechips.rocketchip.diplomacy._
import freechips.rocketchip.tilelink._
abstract class TL2CDRBase(val edge: TLEdgeIn)(implicit p: Parameters) extends BackModule {
class TLCDRIO extends Bundle{
val overCLK = Input(Bool())
val dDatIn = Input(Bool())
val dDatOut = Output(Bool())
val uDatIn = Input(Bool())
val uDatOut = Output(Bool())
val tla = Flipped(new DecoupledIO(new TLBundleA(edge.bundle)))
val tld = new DecoupledIO(new TLBundleD(edge.bundle))
val interrupt = Output(Vec(4, Bool()))
}
val io: TLCDRIO = IO(new TLCDRIO)
val dirSel = RegInit(false.B)
val CDRIn = Module(new CDRIn)
CDRIn.io.serDat := Mux( ~dirSel, io.dDatIn, io.uDatIn )
CDRIn.io.overCLK := io.overCLK
val CDROut = Module(new CDROut)
io.dDatOut := ~dirSel & CDROut.io.serDat
io.uDatOut := dirSel & CDROut.io.serDat
val txFifo = Module(new Queue(UInt(32.W), 16))
val rxFifo = Module(new Queue(UInt(32.W), 16))
// val isTLWriteSoftReset = io.mem.fire & io.mem.addr(4,0) === "h10".U & ( (io.mem.wstrb =/= 0.U) )
val isTLWriteSoftReset = io.tla.fire & io.tla.bits.address(4,0) === "h10".U & ( (io.tla.bits.opcode === 0.U) || (io.tla.bits.opcode === 1.U) )
}
trait TL2CDRTx{ this: TL2CDRBase =>
// val isTLReadStatus = io.mem.fire & io.mem.addr(4,0) === "h0".U & ( io.mem.wstrb === 0.U )
// val isTLWriteTxLen = io.mem.fire & io.mem.addr(4,0) === "h4".U & ( io.mem.wstrb =/= 0.U )
// val isTLWriteTxFifo = io.mem.fire & io.mem.addr(4,0) === "h8".U & ( io.mem.wstrb =/= 0.U )
val isTLReadStatus = io.tla.fire & io.tla.bits.address(4,0) === "h0".U & ( io.tla.bits.opcode === 4.U )
val isTLWriteTxLen = io.tla.fire & io.tla.bits.address(4,0) === "h4".U & ( (io.tla.bits.opcode === 0.U) || (io.tla.bits.opcode === 1.U) )
val isTLWriteTxFifo = io.tla.fire & io.tla.bits.address(4,0) === "h8".U & ( (io.tla.bits.opcode === 0.U) || (io.tla.bits.opcode === 1.U) )
val txLen = RegInit(0.U(12.W))
val isTxBusy = RegInit(false.B)
val isTxFull = ~txFifo.io.enq.ready
val intTxEnd = ShiftRegister( CDROut.io.axis.fire & CDROut.io.axis.bits.tlast, 5, false.B, true.B)
println("Warning, TxEnd no confident\n")
val intTxFifoFull = ~RegNext(isTxFull, false.B) & isTxFull
val intTxFinish = CDROut.io.axis.fire & CDROut.io.axis.bits.tlast
val txCnt = Reg(UInt(2.W))
val txData = Reg(UInt(32.W))
when( txFifo.io.deq.fire ){ //txCnt === 3.U
txData := txFifo.io.deq.bits
when( isTxBusy ){
assert(CDROut.io.axis.fire)
}
} .elsewhen( CDROut.io.axis.fire ){
txData := txData << 8
}
txFifo.io.deq.ready :=
Mux( isTxBusy, CDROut.io.axis.fire & txCnt === 3.U, true.B )
txFifo.reset := reset.asBool | isTLWriteTxLen | isTLWriteSoftReset
CDROut.reset := reset.asBool | isTLWriteTxLen | isTLWriteSoftReset
CDROut.io.axis.bits.tdata := txData.head(8)
// PriorityMux(Seq(
// (txCnt === 0.U) -> txData(31, 24),
// (txCnt === 1.U) -> txData(23, 16),
// (txCnt === 2.U) -> txData(15, 8),
// (txCnt === 3.U) -> txData( 7, 0),
// ))
CDROut.io.axis.bits.tlast := ~txFifo.io.deq.valid & txCnt === 3.U
CDROut.io.axis.bits.tuser := false.B
CDROut.io.axis.valid := isTxBusy
when( isTLWriteTxLen | isTLWriteSoftReset ){
isTxBusy := false.B
}.elsewhen( txFifo.io.deq.fire & ~isTxBusy ){
isTxBusy := true.B
} .elsewhen( CDROut.io.axis.fire & CDROut.io.axis.bits.tlast ){
isTxBusy := false.B
}
when( isTLWriteTxLen ){
txCnt := 0.U
} .elsewhen( CDROut.io.axis.fire ){
txCnt := txCnt + 1.U
}
when( isTLWriteTxLen ){
txLen := io.mem.wdata
} .elsewhen( CDROut.io.axis.fire ){
txLen := txLen - 1.U
}
txFifo.io.enq.bits := io.mem.wdata
txFifo.io.enq.valid := isTLWriteTxFifo & txLen =/= 0.U
}
trait TL2CDRRx{ this: TL2CDRBase =>
// val isTLReadRxStatus = io.mem.fire & io.mem.addr(4,0) === "h14".U & ( io.mem.wstrb === 0.U )
// val isTLReadRxLen = io.mem.fire & io.mem.addr(4,0) === "h18".U & ( io.mem.wstrb === 0.U )
// val isTLReadRxFifo = io.mem.fire & io.mem.addr(4,0) === "h1c".U & ( io.mem.wstrb === 0.U )
// val isTLReadRxStatus = io.tla.fire & io.tla.bits.address(4,0) === "h14".U & ( io.tla.bits.opcode === 4.U )
val isTLReadRxLen = io.tla.fire & io.tla.bits.address(4,0) === "h18".U & ( io.tla.bits.opcode === 4.U )
val isTLReadRxFifo = io.tla.fire & io.tla.bits.address(4,0) === "h1c".U & ( io.tla.bits.opcode === 4.U )
val rxLen = RegInit(0.U(12.W))
val isRxValid = rxFifo.io.enq.fire
val isRxError = RegInit(false.B)
val isAxisEnd = RegInit(false.B)
val isRxEnd = isAxisEnd & ~rxFifo.io.deq.valid
val intRxError = ~RegNext(isRxError, false.B) & isRxError
val intRxStart = rxLen === 0.U & CDRIn.io.axis.fire
val intRxEnd = ~RegNext(isRxEnd, false.B) & isRxEnd
val rxCnt = RegInit(0.U(2.W))
val rxData = Reg(UInt(24.W))
when( isTLWriteSoftReset ){
isAxisEnd := false.B
} .elsewhen( CDRIn.io.axis.fire & CDRIn.io.axis.bits.tlast ){
isAxisEnd := true.B
}
when( isTLWriteSoftReset ){
rxCnt := 0.U
} .elsewhen( CDRIn.io.axis.fire ){
rxCnt := rxCnt + 1.U
rxData := Cat( rxData, CDRIn.io.axis.bits.tdata )
}
when( isTLWriteSoftReset ){
rxLen := 0.U
} .elsewhen( CDRIn.io.axis.fire ){
rxLen := rxLen + 1.U
}
rxFifo.io.enq.valid := CDRIn.io.axis.fire & rxCnt === 3.U
rxFifo.io.enq.bits := Cat( rxData(23, 0) , CDRIn.io.axis.bits.tdata )
assert( ~(( CDRIn.io.axis.fire & CDRIn.io.axis.bits.tlast) & rxCnt =/= 3.U), "Assert Failed! Rx must 4-byte Align!" )
CDRIn.io.axis.ready := true.B
rxFifo.reset := reset.asBool | isTLWriteSoftReset
CDRIn.reset := reset.asBool | isTLWriteSoftReset
rxFifo.io.deq.ready := isTLReadRxFifo
when( isTLWriteSoftReset ){
isRxError := false.B
} .elsewhen( rxFifo.io.enq.valid & ~rxFifo.io.enq.ready ){
isRxError := true.B
printf("Warning, RxFifo Overflow!\n")
}
}
class TL2CDR()(implicit p: Parameters) extends TL2CDRBase() with TL2CDRTx with TL2CDRRx{
// val isWriteTransDir = io.mem.fire & io.mem.addr(4,0) === "hc".U & io.mem.wstrb =/= 0.U
val isWriteTransDir = io.tla.fire & io.tla.bits.address(4,0) === "hc".U & ( (io.tla.bits.opcode === 0.U) || (io.tla.bits.opcode === 1.U) )
val tlaInfo = Reg(new TLBundleA(edge.bundle))
val rdata = Reg(UInt(32.W))
val tlAReady = RegInit(true.B)
val tlDValid = RegInit(false.B)
val isRead = tlaInfo.opcode === 4.U
when( isWriteTransDir ){
// dirSel := io.mem.wdata
dirSel := io.tla.bits.data
}
// io.mem.ready :=
// ( io.mem.wstrb =/= 0.U & txFifo.io.enq.ready) |
// ( io.mem.wstrb === 0.U & Mux( io.mem.addr(4,0) === "h1c".U, rxFifo.io.deq.valid, true.B ) )
io.tla.ready := tlAReady & txFifo.io.enq.ready & ( Mux(io.tla.bits.address(4,0) === "h1c".U & ( io.tla.bits.opcode === 4.U ), rxFifo.io.deq.valid, true.B) )
io.tld.valid := tlDValid
io.interrupt(0) := intTxEnd
io.interrupt(1) := intRxError
io.interrupt(2) := intRxStart
io.interrupt(3) := intRxEnd
// io.mem.rdata :=
// Mux1H(Seq(
// isTLReadStatus -> Cat( isRxValid, isRxError, isTxBusy, isTxFull, false.B),
// isTLReadRxLen -> rxLen,
// isTLReadRxFifo -> rxFifo.io.deq.bits
// ))
when( io.tla.fire ) {
tlaInfo := io.tla.bits
}
when( io.tla.fire ){
tlAReady := false.B
tlDValid := true.B
} .elsewhen( io.tld.fire ) {
tlAReady := true.B
tlDValid := false.B
}
when(isRead) {
io.tld.bits := edge.AccessAck(tlaInfo, rdata)
} .otherwise {
io.tld.bits := edge.AccessAck(tlaInfo)
}
when( isTLReadStatus){
rdata := Cat( isRxValid, isRxError, isTxBusy, isTxFull, isTxError )
} .elsewhen(isTLReadRxLen ){
rdata := rxLen
} .elsewhen(isTLReadRxFifo ){
rdata := rxFifo.io.deq.bits
}
}
package BACK
import chisel3._
import chisel3.util._
import org.chipsalliance.cde.config._
import freechips.rocketchip.diplomacy._
import freechips.rocketchip.tilelink._
abstract class BackModule(implicit val p: Parameters) extends Module with HasBackParameters { def io: Record }
abstract class BackBundle(implicit val p: Parameters) extends Bundle with HasBackParameters
case object BackParamsKey extends Field[BackSetting]
case class BackSetting(
){
}
trait HasBackParameters {
implicit val p: Parameters
val backSetting = p(BackParamsKey)
}
class BackCfg extends Config((_, _, _) => {
case BackParamsKey => BackSetting()
})
abstract class TL2CDRBase(val edge: TLEdgeIn)(implicit p: Parameters) extends BackModule {
class TLCDRIO extends Bundle{
val overCLK = Input(Bool())
val dDatIn = Input(Bool())
val dDatOut = Output(Bool())
val uDatIn = Input(Bool())
val uDatOut = Output(Bool())
val tla = Flipped(new DecoupledIO(new TLBundleA(edge.bundle)))
val tld = new DecoupledIO(new TLBundleD(edge.bundle))
val interrupt = Output(Vec(4, Bool()))
}
val io: TLCDRIO = IO(new TLCDRIO)
val dirSel = RegInit(false.B)
val CDRIn = Module(new CDRIn)
CDRIn.io.serDat := Mux( ~dirSel, io.dDatIn, io.uDatIn )
CDRIn.io.overCLK := io.overCLK
val CDROut = Module(new CDROut)
io.dDatOut := ~dirSel & CDROut.io.serDat
io.uDatOut := dirSel & CDROut.io.serDat
val txFifo = Module(new Queue(UInt(32.W), 16))
val rxFifo = Module(new Queue(UInt(32.W), 16))
// val isTLWriteSoftReset = io.mem.fire & io.mem.addr(4,0) === "h10".U & ( (io.mem.wstrb =/= 0.U) )
val isTLWriteSoftReset = io.tla.fire & io.tla.bits.address(4,0) === "h10".U & ( (io.tla.bits.opcode === 0.U) || (io.tla.bits.opcode === 1.U) )
}
trait TL2CDRTx{ this: TL2CDRBase =>
// val isTLReadStatus = io.mem.fire & io.mem.addr(4,0) === "h0".U & ( io.mem.wstrb === 0.U )
// val isTLWriteTxLen = io.mem.fire & io.mem.addr(4,0) === "h4".U & ( io.mem.wstrb =/= 0.U )
// val isTLWriteTxFifo = io.mem.fire & io.mem.addr(4,0) === "h8".U & ( io.mem.wstrb =/= 0.U )
val isTLReadStatus = io.tla.fire & io.tla.bits.address(4,0) === "h0".U & ( io.tla.bits.opcode === 4.U )
val isTLWriteTxLen = io.tla.fire & io.tla.bits.address(4,0) === "h4".U & ( (io.tla.bits.opcode === 0.U) || (io.tla.bits.opcode === 1.U) )
val isTLWriteTxFifo = io.tla.fire & io.tla.bits.address(4,0) === "h8".U & ( (io.tla.bits.opcode === 0.U) || (io.tla.bits.opcode === 1.U) )
val txLen = RegInit(0.U(12.W))
val isTxBusy = RegInit(false.B)
val isTxFull = ~txFifo.io.enq.ready
val intTxEnd = ShiftRegister( CDROut.io.axis.fire & CDROut.io.axis.bits.tlast, 5, false.B, true.B)
println("Warning, TxEnd no confident\n")
val intTxFifoFull = ~RegNext(isTxFull, false.B) & isTxFull
val intTxFinish = CDROut.io.axis.fire & CDROut.io.axis.bits.tlast
val txCnt = Reg(UInt(2.W))
val txData = Reg(UInt(32.W))
when( txFifo.io.deq.fire ){ //txCnt === 3.U
txData := txFifo.io.deq.bits
when( isTxBusy ){
assert(CDROut.io.axis.fire)
}
} .elsewhen( CDROut.io.axis.fire ){
txData := txData << 8
}
txFifo.io.deq.ready :=
Mux( isTxBusy, CDROut.io.axis.fire & txCnt === 3.U, true.B )
txFifo.reset := reset.asBool | isTLWriteTxLen | isTLWriteSoftReset
CDROut.reset := reset.asBool | isTLWriteTxLen | isTLWriteSoftReset
CDROut.io.axis.bits.tdata := txData.head(8)
// PriorityMux(Seq(
// (txCnt === 0.U) -> txData(31, 24),
// (txCnt === 1.U) -> txData(23, 16),
// (txCnt === 2.U) -> txData(15, 8),
// (txCnt === 3.U) -> txData( 7, 0),
// ))
CDROut.io.axis.bits.tlast := ~txFifo.io.deq.valid & txCnt === 3.U
CDROut.io.axis.bits.tuser := false.B
CDROut.io.axis.valid := isTxBusy
when( isTLWriteTxLen | isTLWriteSoftReset ){
isTxBusy := false.B
}.elsewhen( txFifo.io.deq.fire & ~isTxBusy ){
isTxBusy := true.B
} .elsewhen( CDROut.io.axis.fire & CDROut.io.axis.bits.tlast ){
isTxBusy := false.B
}
when( isTLWriteTxLen ){
txCnt := 0.U
} .elsewhen( CDROut.io.axis.fire ){
txCnt := txCnt + 1.U
}
when( isTLWriteTxLen ){
// txLen := io.mem.wdata
txLen := io.tla.bits.data
} .elsewhen( CDROut.io.axis.fire ){
txLen := txLen - 1.U
}
txFifo.io.enq.bits := io.tla.bits.data
txFifo.io.enq.valid := isTLWriteTxFifo & txLen =/= 0.U
}
trait TL2CDRRx{ this: TL2CDRBase =>
// val isTLReadRxStatus = io.mem.fire & io.mem.addr(4,0) === "h14".U & ( io.mem.wstrb === 0.U )
// val isTLReadRxLen = io.mem.fire & io.mem.addr(4,0) === "h18".U & ( io.mem.wstrb === 0.U )
// val isTLReadRxFifo = io.mem.fire & io.mem.addr(4,0) === "h1c".U & ( io.mem.wstrb === 0.U )
// val isTLReadRxStatus = io.tla.fire & io.tla.bits.address(4,0) === "h14".U & ( io.tla.bits.opcode === 4.U )
val isTLReadRxLen = io.tla.fire & io.tla.bits.address(4,0) === "h18".U & ( io.tla.bits.opcode === 4.U )
val isTLReadRxFifo = io.tla.fire & io.tla.bits.address(4,0) === "h1c".U & ( io.tla.bits.opcode === 4.U )
val rxLen = RegInit(0.U(12.W))
val isRxValid = rxFifo.io.enq.fire
val isRxError = RegInit(false.B)
val isAxisEnd = RegInit(false.B)
val isRxEnd = isAxisEnd & ~rxFifo.io.deq.valid
val intRxError = ~RegNext(isRxError, false.B) & isRxError
val intRxStart = rxLen === 0.U & CDRIn.io.axis.fire
val intRxEnd = ~RegNext(isRxEnd, false.B) & isRxEnd
val rxCnt = RegInit(0.U(2.W))
val rxData = Reg(UInt(24.W))
when( isTLWriteSoftReset ){
isAxisEnd := false.B
} .elsewhen( CDRIn.io.axis.fire & CDRIn.io.axis.bits.tlast ){
isAxisEnd := true.B
}
when( isTLWriteSoftReset ){
rxCnt := 0.U
} .elsewhen( CDRIn.io.axis.fire ){
rxCnt := rxCnt + 1.U
rxData := Cat( rxData, CDRIn.io.axis.bits.tdata )
}
when( isTLWriteSoftReset ){
rxLen := 0.U
} .elsewhen( CDRIn.io.axis.fire ){
rxLen := rxLen + 1.U
}
rxFifo.io.enq.valid := CDRIn.io.axis.fire & rxCnt === 3.U
rxFifo.io.enq.bits := Cat( rxData(23, 0) , CDRIn.io.axis.bits.tdata )
assert( ~(( CDRIn.io.axis.fire & CDRIn.io.axis.bits.tlast) & rxCnt =/= 3.U), "Assert Failed! Rx must 4-byte Align!" )
CDRIn.io.axis.ready := true.B
rxFifo.reset := reset.asBool | isTLWriteSoftReset
CDRIn.reset := reset.asBool | isTLWriteSoftReset
rxFifo.io.deq.ready := isTLReadRxFifo
when( isTLWriteSoftReset ){
isRxError := false.B
} .elsewhen( rxFifo.io.enq.valid & ~rxFifo.io.enq.ready ){
isRxError := true.B
printf("Warning, RxFifo Overflow!\n")
}
}
class TL2CDR(edge: TLEdgeIn)(implicit p: Parameters) extends TL2CDRBase(edge) with TL2CDRTx with TL2CDRRx{
// val isWriteTransDir = io.mem.fire & io.mem.addr(4,0) === "hc".U & io.mem.wstrb =/= 0.U
val isWriteTransDir = io.tla.fire & io.tla.bits.address(4,0) === "hc".U & ( (io.tla.bits.opcode === 0.U) || (io.tla.bits.opcode === 1.U) )
val tlaInfo = Reg(new TLBundleA(edge.bundle))
val rdata = Reg(UInt(32.W))
val tlAReady = RegInit(true.B)
val tlDValid = RegInit(false.B)
val isRead = tlaInfo.opcode === 4.U
when( isWriteTransDir ){
// dirSel := io.mem.wdata
dirSel := io.tla.bits.data
}
// io.mem.ready :=
// ( io.mem.wstrb =/= 0.U & txFifo.io.enq.ready) |
// ( io.mem.wstrb === 0.U & Mux( io.mem.addr(4,0) === "h1c".U, rxFifo.io.deq.valid, true.B ) )
io.tla.ready := tlAReady & txFifo.io.enq.ready & ( Mux(io.tla.bits.address(4,0) === "h1c".U & ( io.tla.bits.opcode === 4.U ), rxFifo.io.deq.valid, true.B) )
io.tld.valid := tlDValid
io.interrupt(0) := intTxEnd
io.interrupt(1) := intRxError
io.interrupt(2) := intRxStart
io.interrupt(3) := intRxEnd
// io.mem.rdata :=
// Mux1H(Seq(
// isTLReadStatus -> Cat( isRxValid, isRxError, isTxBusy, isTxFull, false.B),
// isTLReadRxLen -> rxLen,
// isTLReadRxFifo -> rxFifo.io.deq.bits
// ))
when( io.tla.fire ) {
tlaInfo := io.tla.bits
}
when( io.tla.fire ){
tlAReady := false.B
tlDValid := true.B
} .elsewhen( io.tld.fire ) {
tlAReady := true.B
tlDValid := false.B
}
when(isRead) {
io.tld.bits := edge.AccessAck(tlaInfo, rdata)
} .otherwise {
io.tld.bits := edge.AccessAck(tlaInfo)
}
when( isTLReadStatus){
rdata := Cat( isRxValid, isRxError, isTxBusy, isTxFull, false.B )
} .elsewhen(isTLReadRxLen ){
rdata := rxLen
} .elsewhen(isTLReadRxFifo ){
rdata := rxFifo.io.deq.bits
}
}

View File

@@ -1,65 +1,65 @@
package BACK
import chisel3._
import chisel3.util._
object b4b5Encoder{
def apply( enq: UInt ): UInt = {
Mux1H(Seq(
(enq === "b0000".U) -> "b11110".U(5.W),
(enq === "b0001".U) -> "b01001".U(5.W),
(enq === "b0010".U) -> "b10100".U(5.W),
(enq === "b0011".U) -> "b10101".U(5.W),
(enq === "b0100".U) -> "b01010".U(5.W),
(enq === "b0101".U) -> "b01011".U(5.W),
(enq === "b0110".U) -> "b01110".U(5.W),
(enq === "b0111".U) -> "b01111".U(5.W),
(enq === "b1000".U) -> "b10010".U(5.W),
(enq === "b1001".U) -> "b10011".U(5.W),
(enq === "b1010".U) -> "b10110".U(5.W),
(enq === "b1011".U) -> "b10111".U(5.W),
(enq === "b1100".U) -> "b11010".U(5.W),
(enq === "b1101".U) -> "b11011".U(5.W),
(enq === "b1110".U) -> "b11100".U(5.W),
(enq === "b1111".U) -> "b11101".U(5.W),
))
}
}
object b4b5Decoder{
def apply( enq: UInt ): UInt = {
Mux1H(Seq(
(enq === "b11110".U) -> "b0000".U(4.W),
(enq === "b01001".U) -> "b0001".U(4.W),
(enq === "b10100".U) -> "b0010".U(4.W),
(enq === "b10101".U) -> "b0011".U(4.W),
(enq === "b01010".U) -> "b0100".U(4.W),
(enq === "b01011".U) -> "b0101".U(4.W),
(enq === "b01110".U) -> "b0110".U(4.W),
(enq === "b01111".U) -> "b0111".U(4.W),
(enq === "b10010".U) -> "b1000".U(4.W),
(enq === "b10011".U) -> "b1001".U(4.W),
(enq === "b10110".U) -> "b1010".U(4.W),
(enq === "b10111".U) -> "b1011".U(4.W),
(enq === "b11010".U) -> "b1100".U(4.W),
(enq === "b11011".U) -> "b1101".U(4.W),
(enq === "b11100".U) -> "b1110".U(4.W),
(enq === "b11101".U) -> "b1111".U(4.W),
))
}
}
object Dualb4b5Encoder{
def apply( enq: UInt ): UInt = {
require( enq.width == 8 )
Cat( b4b5Encoder(enq(7,4)), b4b5Encoder(enq(3,0)) )
}
}
object Dualb4b5Decoder{
def apply( enq: UInt ): UInt = {
require( enq.width == 10 )
Cat( b4b5Decoder(enq(9,5)), b4b5Decoder(enq(5,0)) )
}
}
package BACK
import chisel3._
import chisel3.util._
object b4b5Encoder{
def apply( enq: UInt ): UInt = {
Mux1H(Seq(
(enq === "b0000".U) -> "b11110".U(5.W),
(enq === "b0001".U) -> "b01001".U(5.W),
(enq === "b0010".U) -> "b10100".U(5.W),
(enq === "b0011".U) -> "b10101".U(5.W),
(enq === "b0100".U) -> "b01010".U(5.W),
(enq === "b0101".U) -> "b01011".U(5.W),
(enq === "b0110".U) -> "b01110".U(5.W),
(enq === "b0111".U) -> "b01111".U(5.W),
(enq === "b1000".U) -> "b10010".U(5.W),
(enq === "b1001".U) -> "b10011".U(5.W),
(enq === "b1010".U) -> "b10110".U(5.W),
(enq === "b1011".U) -> "b10111".U(5.W),
(enq === "b1100".U) -> "b11010".U(5.W),
(enq === "b1101".U) -> "b11011".U(5.W),
(enq === "b1110".U) -> "b11100".U(5.W),
(enq === "b1111".U) -> "b11101".U(5.W),
))
}
}
object b4b5Decoder{
def apply( enq: UInt ): UInt = {
Mux1H(Seq(
(enq === "b11110".U) -> "b0000".U(4.W),
(enq === "b01001".U) -> "b0001".U(4.W),
(enq === "b10100".U) -> "b0010".U(4.W),
(enq === "b10101".U) -> "b0011".U(4.W),
(enq === "b01010".U) -> "b0100".U(4.W),
(enq === "b01011".U) -> "b0101".U(4.W),
(enq === "b01110".U) -> "b0110".U(4.W),
(enq === "b01111".U) -> "b0111".U(4.W),
(enq === "b10010".U) -> "b1000".U(4.W),
(enq === "b10011".U) -> "b1001".U(4.W),
(enq === "b10110".U) -> "b1010".U(4.W),
(enq === "b10111".U) -> "b1011".U(4.W),
(enq === "b11010".U) -> "b1100".U(4.W),
(enq === "b11011".U) -> "b1101".U(4.W),
(enq === "b11100".U) -> "b1110".U(4.W),
(enq === "b11101".U) -> "b1111".U(4.W),
))
}
}
object Dualb4b5Encoder{
def apply( enq: UInt ): UInt = {
require( enq.getWidth == 8 )
Cat( b4b5Encoder(enq(7,4)), b4b5Encoder(enq(3,0)) )
}
}
object Dualb4b5Decoder{
def apply( enq: UInt ): UInt = {
require( enq.getWidth == 10 )
Cat( b4b5Decoder(enq(9,5)), b4b5Decoder(enq(5,0)) )
}
}

View File

@@ -11,27 +11,7 @@ import sifive.blocks.devices.uart._
import sifive.blocks.devices.gpio._
abstract class BackModule(implicit val p: Parameters) extends Module with HasBackParameters { def io: Record }
abstract class BackBundle(implicit val p: Parameters) extends Bundle with HasBackParameters
case object BackParamsKey extends Field[BackSetting]
case class BackSetting(
){
}
trait HasBackParameters {
implicit val p: Parameters
val backSetting = p(BackParamsKey)
}
class BackCfg extends Config((_, _, _) => {
case BackParamsKey => BackSetting()
})