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package MAC
import chisel3._
import chisel3.util._
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import freechips.rocketchip.tilelink._
import freechips.rocketchip.diplomacy._
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import org.chipsalliance.cde.config._
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abstract class MacTileLinkBase ( edgeIn : TLEdgeIn , edgeOut : TLEdgeOut ) extends Module {
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class MacTileLinkSlaveIO extends Bundle {
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val A = Flipped ( Decoupled ( new TLBundleA ( edgeIn . bundle ) ) )
val D = Decoupled ( new TLBundleD ( edgeIn . bundle ) )
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}
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class MacTileLinkMasterIO extends Bundle {
val A = Decoupled ( new TLBundleA ( edgeOut . bundle ) )
val D = Flipped ( Decoupled ( new TLBundleD ( edgeOut . bundle ) ) )
}
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class MacTileLinkIO extends Bundle {
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val tlSlv = new MacTileLinkSlaveIO
val tlMst = new MacTileLinkMasterIO
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// 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 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
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val r_RxFlow = Input ( Bool ( ) )
val r_PassAll = Input ( Bool ( ) )
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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 CarrierSenseLost = Input ( Bool ( ) ) // Carrier Sense was lost during the frame transmission
// Tx
val TxUsedData = Input ( Bool ( ) ) // Transmit packet used data
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val TxUnderRun = Input ( Bool ( ) ) // Transmit packet under-run
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val PerPacketCrcEn = Output ( Bool ( ) ) // Per packet crc enable
val PerPacketPad = Output ( Bool ( ) ) // Per packet pading
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//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 ( ) )
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val BlockingTxStatusWrite = Output ( Bool ( ) )
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val ReadTxDataFromFifo_sync = Input ( Bool ( ) )
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val TxData_wb = Output ( UInt ( 32. W ) )
val TxValidBytesLatched = Output ( UInt ( 2. W ) )
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val TxStartFrm_wb = Output ( Bool ( ) )
val TxStartFrm_syncb = Input ( Bool ( ) )
val TxUnderRun_wb = Output ( Bool ( ) )
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val TxEndFrm_wb = Output ( Bool ( ) )
val TxRetrySync = Input ( Bool ( ) )
val TxAbortSync = Input ( Bool ( ) ) // Transmit packet abort
val TxDoneSync = Input ( Bool ( ) ) // Transmission ended
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val RxDataLatched2_rxclk = Input ( UInt ( 32. W ) )
val WriteRxDataToFifoSync = Input ( Bool ( ) )
val RxAbortSync = Input ( Bool ( ) )
val LatchedRxLength_rxclk = Input ( UInt ( 16. W ) )
val RxStatusInLatched_rxclk = Input ( UInt ( 9. W ) )
val ShiftEndedSync = Input ( Bool ( ) )
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val LatchedRxStartFrmSync = Input ( Bool ( ) )
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val Busy_IRQ_sync = Input ( Bool ( ) )
val RxReady = Output ( Bool ( ) )
val RxStatusIn = Output ( UInt ( 9. W ) )
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val RxStatusWriteLatched = Output ( Bool ( ) )
val RxStatusWriteLatchedSyncb = Input ( Bool ( ) )
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}
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val io = IO ( new MacTileLinkIO )
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val tx_fifo = Module ( new MacFifo ( dw = 32 , dp = 16 ) )
val rx_fifo = Module ( new MacFifo ( dw = 32 , dp = 16 ) )
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val ( _ , _ , isLastD , transDCnt ) = edgeOut . count ( io . tlMst . D )
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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
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val TxUnderRun_wb = RegInit ( false . B ) ; io . TxUnderRun_wb : = TxUnderRun_wb
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val TxBDRead = RegInit ( true . B )
val TxStatusWrite = Wire ( Bool ( ) )
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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]
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val TxStartFrm_wb = RegInit ( false . B ) ; io . TxStartFrm_wb : = TxStartFrm_wb
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// Signals used for various purposes
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val TxRetryPulse = io . TxRetrySync & ~ RegNext ( io . TxRetrySync , false . B )
val TxDonePulse = io . TxDoneSync & ~ RegNext ( io . TxDoneSync , false . B )
val TxAbortPulse = io . TxAbortSync & ~ RegNext ( io . TxAbortSync , false . B )
val ShiftEndedSyncPluse = io . ShiftEndedSync & ~ RegNext ( io . ShiftEndedSync , false . B )
val ReadTxDataFromFifoSyncPluse = io . ReadTxDataFromFifo_sync & ~ RegNext ( io . ReadTxDataFromFifo_sync , false . B )
val RxAbortPluse = io . RxAbortSync & ~ RegNext ( io . RxAbortSync , false . B )
val WriteRxDataToFifoSyncPluse = io . WriteRxDataToFifoSync & ~ RegNext ( io . WriteRxDataToFifoSync , false . B )
val LatchedRxStartFrmSyncPluse = io . LatchedRxStartFrmSync & ~ RegNext ( io . LatchedRxStartFrmSync , false . B )
val Busy_IRQ_syncPluse = io . Busy_IRQ_sync & ~ RegNext ( io . Busy_IRQ_sync )
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val TxRetryPacket = RegInit ( false . B )
val TxRetryPacket_NotCleared = RegInit ( false . B )
val TxDonePacket = RegInit ( false . B )
val TxDonePacket_NotCleared = RegInit ( false . B )
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val TxAbortPacket = RegInit ( false . B )
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val TxAbortPacket_NotCleared = RegInit ( false . B )
val RxBDReady = RegInit ( false . B )
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val RxReady = RegInit ( false . B ) ; io . RxReady : = RxReady
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val TxBDReady = RegInit ( false . B )
val RxBDRead = RegInit ( false . B )
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val BlockingTxStatusWrite = RegInit ( false . B ) ; io . BlockingTxStatusWrite : = BlockingTxStatusWrite
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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 )
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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
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val TxEndFrm_wb = RegInit ( false . B ) ; io . TxEndFrm_wb : = TxEndFrm_wb
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val RxStatusWrite = Wire ( Bool ( ) )
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// Delayed stage signals
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val r_TxEn_q = RegNext ( io . r_TxEn , false . B )
val r_RxEn_q = RegNext ( io . r_RxEn , false . B )
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def StateIdle = 0. U ( 3. W )
def StateWB = 1. U ( 3. W )
def StateTX = 2. U ( 3. W )
def StateRX = 3. U ( 3. W )
val stateNxt = RegInit ( StateWB )
val stateCur = RegNext ( stateNxt , StateIdle )
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val ram_addr = RegInit ( 0. U ( 8. W ) )
val ram_di = RegInit ( 0. U ( 32. W ) )
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val TxPointerRead = RegInit ( false . B )
val TxEn_needed = RegInit ( false . B )
val RxEn_needed = RegInit ( false . B )
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val RxPointerRead = RegInit ( false . B )
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// RX shift ending signals
val ShiftEndedSync3 = RegInit ( false . B )
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val StartOccured = RegInit ( false . B )
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val BlockReadTxDataFromMemory = RegInit ( false . B )
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val ReadTxDataFromMemory = RegInit ( false . B )
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val MasterWbTX = RegInit ( false . B )
val MasterWbRX = RegInit ( false . B )
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val TxPointerMSB = RegInit ( 0. U ( 30. W ) ) //[31:2]
val RxPointerMSB = RegInit ( 0. U ( 30. W ) ) //[31:2]
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val RxStatusWriteLatched = RegInit ( false . B ) ; io . RxStatusWriteLatched : = RxStatusWriteLatched
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// Generic synchronous single-port RAM interface
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val bd_ram = Module ( new MacSRAM )
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val txBuffDesc = bd_ram . io . dato . asTypeOf ( new TxBuffDesc )
val rxBuffDesc = bd_ram . io . dato . asTypeOf ( new RxBuffDesc )
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bd_ram . io . we : =
Mux1H ( Seq (
( stateNxt === StateWB & stateCur === StateWB ) -> BDWrite ,
( TxStatusWrite | RxStatusWrite ) -> "b1111" . U
) ) . asBools
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bd_ram . io . oe : =
Mux1H ( Seq (
( ( stateNxt === StateWB ) & ( stateCur === StateWB ) ) -> BDRead ,
( ( stateNxt === StateTX ) & ( stateCur === StateTX ) ) -> ( TxBDRead | TxPointerRead ) ,
( ( stateNxt === StateRX ) & ( stateCur === StateRX ) ) -> ( RxBDRead | RxPointerRead ) ,
) )
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bd_ram . io . addr : = ram_addr
bd_ram . io . di : = ram_di
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when ( ~ TxBDReady & io . r_TxEn & stateNxt === StateWB & stateCur =/= StateWB ) {
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TxEn_needed : = true . B
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} . elsewhen ( TxPointerRead & stateNxt === StateTX & stateCur === StateTX ) {
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TxEn_needed : = false . B
}
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Fill ( 4 , io . tlSlv . A . valid & io . tlSlv . A . bits . mask . orR & io . tlSlv . A . bits . address ( 10 ) ) & io . tlSlv . A . bits . mask
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// Enabling access to the RAM for three devices.
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// Switching between three stages depends on enable signals
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switch ( stateCur ) {
is ( StateIdle ) {
when ( RxEn_needed === false . B & TxEn_needed === false . B ) {
stateNxt : = StateWB // Idle state. We go to WbEn access stage.
ram_addr : = io . tlSlv . A . bits . address ( 9 , 2 ) // [11:2 ] -> [9:2]
ram_di : = io . tlSlv . A . bits . data
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BDWrite : = io . tlSlv . A . bits . mask & Fill ( 4 , io . tlSlv . A . valid & io . tlSlv . A . bits . address ( 10 ) & ( ( io . tlSlv . A . bits . opcode === 0. U ) || ( io . tlSlv . A . bits . opcode === 1. U ) ) )
BDRead : = io . tlSlv . A . bits . mask . orR & io . tlSlv . A . valid & io . tlSlv . A . bits . address ( 10 ) & ( io . tlSlv . A . bits . opcode === 4. U ) // 0x400 - 0x7FF
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}
}
is ( StateWB ) {
when ( RxEn_needed ) { // synopsys parallel_case
stateNxt : = StateRX // wb access stage and r_RxEn is enabled
ram_addr : = Cat ( RxBDAddress , RxPointerRead )
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ram_di : = Cat ( io . LatchedRxLength_rxclk , 0. U ( 1. W ) , RxStatus , 0. U ( 4. W ) , io . RxStatusInLatched_rxclk )
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} . elsewhen ( TxEn_needed ) {
stateNxt : = StateTX // wb access stage, r_RxEn is disabled but r_TxEn is enabled
ram_addr : = Cat ( TxBDAddress , TxPointerRead ) //[7,1] + [0]
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ram_di : = Cat ( LatchedTxLength , 0. U ( 1. W ) , TxStatus , 0. U ( 2. W ) , io . TxUnderRun , io . RetryCntLatched , io . RetryLimit , io . LateCollLatched , io . DeferLatched , io . CarrierSenseLost )
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} . otherwise {
stateNxt : = StateIdle // WbEn access stage and there is no need for other stages. WbEn needs to be switched off for a bit
}
}
is ( StateRX ) {
when ( TxEn_needed ) {
stateNxt : = StateTX // RxEn access stage and r_TxEn is enabled
ram_addr : = Cat ( TxBDAddress , TxPointerRead )
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ram_di : = Cat ( LatchedTxLength , 0. U ( 1. W ) , TxStatus , 0. U ( 2. W ) , io . TxUnderRun , io . RetryCntLatched , io . RetryLimit , io . LateCollLatched , io . DeferLatched , io . CarrierSenseLost )
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} . otherwise {
stateNxt : = StateWB // RxEn access stage and r_TxEn is disabled
ram_addr : = io . tlSlv . A . bits . address ( 9 , 2 ) // [11:2 ] -> [9:2];
ram_di : = io . tlSlv . A . bits . data
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BDWrite : = io . tlSlv . A . bits . mask & Fill ( 4 , io . tlSlv . A . valid & io . tlSlv . A . bits . address ( 10 ) & ( ( io . tlSlv . A . bits . opcode === 0. U ) || ( io . tlSlv . A . bits . opcode === 1. U ) ) )
BDRead : = io . tlSlv . A . bits . mask . orR & io . tlSlv . A . valid & io . tlSlv . A . bits . address ( 10 ) & ( io . tlSlv . A . bits . opcode === 4. U )
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}
}
is ( StateTX ) {
when ( true . B ) {
stateNxt : = StateWB // TxEn access stage (we always go to wb access stage)
ram_addr : = io . tlSlv . A . bits . address ( 9 , 2 ) //[11:2 ] ->[9:2]
ram_di : = io . tlSlv . A . bits . data
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BDWrite : = io . tlSlv . A . bits . mask & Fill ( 4 , io . tlSlv . A . valid & io . tlSlv . A . bits . address ( 10 ) & ( ( io . tlSlv . A . bits . opcode === 0. U ) || ( io . tlSlv . A . bits . opcode === 1. U ) ) )
BDRead : = io . tlSlv . A . bits . mask . orR & io . tlSlv . A . valid & io . tlSlv . A . bits . address ( 10 ) & ( io . tlSlv . A . bits . opcode === 4. U )
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}
}
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}
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val ResetTxBDReady = TxDonePulse | TxAbortPulse | TxRetryPulse
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// Latching READY status of the Tx buffer descriptor
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when ( stateNxt === StateTX & stateCur === StateTX & TxBDRead ) { // TxBDReady is sampled only once at the beginning.
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TxBDReady : = txBuffDesc . rd & ( txBuffDesc . len > 4. U )
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} . elsewhen ( ResetTxBDReady ) { // Only packets larger then 4 bytes are transmitted.
TxBDReady : = false . B
}
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val StartTxBDRead = ( TxRetryPacket_NotCleared | TxStatusWrite ) & ~ BlockingTxBDRead & ~ TxBDReady // Reading the Tx buffer descriptor
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when ( StartTxBDRead ) {
TxBDRead : = true . B
} . elsewhen ( TxBDReady ) {
TxBDRead : = false . B
}
// Reading Tx BD Pointer
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when ( TxBDRead & TxBDReady ) {
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TxPointerRead : = true . B
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} . elsewhen ( stateCur === StateTX ) {
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TxPointerRead : = false . B
}
// Writing status back to the Tx buffer descriptor
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TxStatusWrite : = ( TxDonePacket_NotCleared | TxAbortPacket_NotCleared ) & stateNxt === StateTX & stateCur === StateTX & ~ BlockingTxStatusWrite
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// Status writing must occur only once. Meanwhile it is blocked.
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when ( ~ io . TxDoneSync & ~ io . TxAbortSync ) {
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BlockingTxStatusWrite : = false . B
} . elsewhen ( TxStatusWrite ) {
BlockingTxStatusWrite : = true . B
}
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// TxBDRead state is activated only once.
when ( StartTxBDRead ) {
BlockingTxBDRead : = true . B
} . elsewhen ( ~ StartTxBDRead & ~ TxBDReady ) {
BlockingTxBDRead : = false . B
}
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when ( stateNxt === StateTX & stateCur === StateTX & TxBDRead ) {
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TxStatus : = Cat ( txBuffDesc . irq , txBuffDesc . wr , txBuffDesc . pad , txBuffDesc . crc ) // 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)
TxLength : = txBuffDesc . len //Latching length from the buffer descriptor;
LatchedTxLength : = txBuffDesc . len
} . elsewhen ( MasterWbTX & io . tlMst . D . fire ) { //tx tileRead
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when ( TxLength < 4. U ) {
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TxLength : = 0. U
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} . otherwise {
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TxLength : = TxLength - 4. U // Length is subtracted at the data request
}
}
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when ( stateNxt === StateTX & stateCur === StateTX & TxPointerRead ) {
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TxPointerMSB : = bd_ram . io . dato ( 31 , 2 ) // Latching Tx buffer pointer from buffer descriptor. Only 30 MSB bits are latched because TxPointerMSB is only used for word-aligned accesses.
when ( bd_ram . io . dato ( 1 , 0 ) =/= 0. U ) {
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printf ( "Warning, force to align at tx ram" )
}
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} . elsewhen ( io . tlMst . D . fire & io . tlMst . D . bits . opcode === 1. U ) {
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TxPointerMSB : = TxPointerMSB + 1. U // TxPointer is word-aligned
}
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val isTlMstBusy = RegInit ( false . B )
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when ( ( TxLength === 0. U ) | TxAbortPulse | TxRetryPulse ) {
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ReadTxDataFromMemory : = false . B
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} . elsewhen ( stateNxt === StateTX & stateCur === StateTX & TxPointerRead ) {
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ReadTxDataFromMemory : = true . B
}
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val ReadTxDataFromMemory_2 = ReadTxDataFromMemory & ~ BlockReadTxDataFromMemory ;
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when (
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( tx_fifo . io . almost_full | TxLength <= 4. U ) & MasterWbTX & isTlMstBusy & ( ~ ( TxAbortPacket_NotCleared | TxRetryPacket_NotCleared ) ) ) {
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BlockReadTxDataFromMemory : = true . B
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} . elsewhen ( ReadTxDataFromFifoSyncPluse | TxDonePacket | TxAbortPacket | TxRetryPacket ) {
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BlockReadTxDataFromMemory : = false . B
}
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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
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tx_fifo . io . read : = ReadTxDataFromFifoSyncPluse & ~ tx_fifo . io . empty
tx_fifo . io . clear : = TxAbortPacket | TxRetryPacket
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io . TxData_wb : = tx_fifo . io . data_out
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// Start: Generation of the TxStartFrm_wb which is then synchronized to the MTxClk
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when ( TxBDReady & ~ StartOccured & ( tx_fifo . io . full | TxLength === 0. U ) ) {
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TxStartFrm_wb : = true . B
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} . elsewhen ( io . TxStartFrm_syncb ) {
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TxStartFrm_wb : = false . B
}
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// StartOccured: TxStartFrm_wb occurs only ones at the beginning. Then it's blocked.
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when ( TxStartFrm_wb ) {
StartOccured : = true . B
} . elsewhen ( ResetTxBDReady ) {
StartOccured : = false . B
}
// TxEndFrm_wb: indicator of the end of frame
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when ( ( TxLength === 0. U ) & tx_fifo . io . almost_empty & io . TxUsedData ) {
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TxEndFrm_wb : = true . B
} . elsewhen ( TxRetryPulse | TxDonePulse | TxAbortPulse ) {
TxEndFrm_wb : = false . B
}
// Marks which bytes are valid within the word.
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val TxValidBytesLatched = RegInit ( 0. U ( 2. W ) ) ; io . TxValidBytesLatched : = TxValidBytesLatched
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val LatchValidBytes = ShiftRegisters ( ( TxLength < 4. U ) & TxBDReady , 2 , false . B , true . B )
val LatchValidBytesPluse = LatchValidBytes ( 0 ) & ~ LatchValidBytes ( 1 )
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// Latching valid bytes
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when ( LatchValidBytesPluse ) {
TxValidBytesLatched : = Mux ( TxLength < 4. U , TxLength ( 1 , 0 ) , 0. U )
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} . elsewhen ( TxRetryPulse | TxDonePulse | TxAbortPulse ) {
TxValidBytesLatched : = 0. U
}
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val TxIRQEn = TxStatus . extract ( 3 ) //[14:11]
val WrapTxStatusBit = TxStatus . extract ( 2 )
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io . PerPacketPad : = TxStatus . extract ( 1 )
io . PerPacketCrcEn : = TxStatus . extract ( 0 )
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val RxIRQEn = RxStatus . extract ( 1 ) //[14:13]
val WrapRxStatusBit = RxStatus . extract ( 0 )
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// Latching Tx buffer descriptor address
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when ( io . r_TxEn & ( ~ r_TxEn_q ) ) {
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TxBDAddress : = 0. U
} . elsewhen ( TxStatusWrite ) {
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when ( TxStatusWrite & ~ WrapTxStatusBit ) { //increase
TxBDAddress : = TxBDAddress + 1. U
} . otherwise { //wrap
TxBDAddress : = 0. U
}
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}
// Latching Rx buffer descriptor address
when ( io . r_RxEn & ( ~ r_RxEn_q ) ) {
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RxBDAddress : = io . r_TxBDNum ( 6 , 0 )
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} . elsewhen ( RxStatusWrite ) {
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when ( WrapRxStatusBit ) {
RxBDAddress : = io . r_TxBDNum ( 6 , 0 ) // Using first Rx BD
} . otherwise {
RxBDAddress : = ( RxBDAddress + 1. U ) //Using next Rx BD
}
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}
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val TxAbortPacketBlocked = RegInit ( false . B )
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when (
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io . TxAbortSync & ( ~ TxAbortPacketBlocked ) & MasterWbTX & io . tlMst . D . fire & isLastD |
io . TxAbortSync & ( ~ TxAbortPacketBlocked ) & ( ~ MasterWbTX ) ) {
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TxAbortPacket : = true . B
} . otherwise {
TxAbortPacket : = false . B
}
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when ( stateNxt === StateTX & stateCur === StateTX & TxAbortPacket_NotCleared ) {
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TxAbortPacket_NotCleared : = false . B
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} . elsewhen (
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io . TxAbortSync & ( ~ TxAbortPacketBlocked ) & MasterWbTX & io . tlMst . D . fire & isLastD |
io . TxAbortSync & ( ~ TxAbortPacketBlocked ) & ( ~ MasterWbTX ) ) {
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TxAbortPacket_NotCleared : = true . B
}
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when ( ~ io . TxAbortSync & RegNext ( io . TxAbortSync , false . B ) ) {
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TxAbortPacketBlocked : = false . B
} . elsewhen ( TxAbortPacket ) {
TxAbortPacketBlocked : = true . B
}
val TxRetryPacketBlocked = RegInit ( false . B )
when (
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io . TxRetrySync & ~ TxRetryPacketBlocked & MasterWbTX & io . tlMst . D . fire & isLastD |
io . TxRetrySync & ~ TxRetryPacketBlocked & ~ MasterWbTX ) {
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TxRetryPacket : = true . B
} . otherwise {
TxRetryPacket : = false . B
}
when ( StartTxBDRead ) {
TxRetryPacket_NotCleared : = false . B
} . elsewhen (
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io . TxRetrySync & ~ TxRetryPacketBlocked & MasterWbTX & io . tlMst . D . fire & isLastD |
io . TxRetrySync & ~ TxRetryPacketBlocked & ~ MasterWbTX ) {
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TxRetryPacket_NotCleared : = true . B
}
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when ( ~ io . TxRetrySync & RegNext ( io . TxRetrySync , false . B ) ) {
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TxRetryPacketBlocked : = false . B
} . elsewhen ( TxRetryPacket ) {
TxRetryPacketBlocked : = true . B
}
val TxDonePacketBlocked = RegInit ( false . B )
when (
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io . TxDoneSync & ~ TxDonePacketBlocked & MasterWbTX & io . tlMst . D . fire & isLastD |
io . TxDoneSync & ~ TxDonePacketBlocked & ~ MasterWbTX ) {
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TxDonePacket : = true . B
} . otherwise {
TxDonePacket : = false . B
}
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when ( stateNxt === StateTX & stateCur === StateTX & TxDonePacket_NotCleared ) {
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TxDonePacket_NotCleared : = false . B
} . elsewhen (
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io . TxDoneSync & ~ TxDonePacketBlocked & MasterWbTX & io . tlMst . D . fire & isLastD |
io . TxDoneSync & ~ TxDonePacketBlocked & ~ MasterWbTX ) {
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TxDonePacket_NotCleared : = true . B
}
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when ( ~ io . TxDoneSync & RegNext ( io . TxDoneSync , false . B ) ) {
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TxDonePacketBlocked : = false . B
} . elsewhen ( TxDonePacket ) {
TxDonePacketBlocked : = true . B
}
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// Tx under run
when ( TxAbortPulse ) {
TxUnderRun_wb : = false . B
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} . elsewhen ( tx_fifo . io . empty & ReadTxDataFromFifoSyncPluse ) {
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TxUnderRun_wb : = true . B
}
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// Reading the Rx buffer descriptor
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when ( ( RxStatusWrite | RegNext ( RxAbortPluse , false . B ) | ( io . r_RxEn & ~ r_RxEn_q ) ) & ~ RxReady ) {
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RxBDRead : = true . B
} . elsewhen ( RxBDReady ) {
RxBDRead : = false . B
}
// Latching READY status of the Rx buffer descriptor
when ( RxPointerRead ) {
RxBDReady : = false . B
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} . elsewhen ( stateNxt === StateRX & stateCur === StateRX & RxBDRead ) {
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RxBDReady : = rxBuffDesc . e // RxBDReady is sampled only once at the beginning
RxStatus : = Cat ( rxBuffDesc . irq , rxBuffDesc . wrap ) // Latching Rx buffer descriptor status Data is avaliable one cycle after the access is started (at that time signal RxEn is not active)
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}
// RxReady generation
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when ( ShiftEnded | RxAbortPluse | ~ io . r_RxEn & r_RxEn_q ) {
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RxReady : = false . B
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} . elsewhen ( stateNxt === StateRX & stateCur === StateRX & RxPointerRead ) {
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RxReady : = true . B
}
// Reading Tx BD Pointer
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when ( RxBDRead & RxBDReady ) {
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RxPointerRead : = true . B
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} . elsewhen ( stateNxt === StateRX & stateCur === StateRX ) {
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RxPointerRead : = false . B
}
//Latching Rx buffer pointer from buffer descriptor;
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when ( stateNxt === StateRX & stateCur === StateRX & RxPointerRead ) {
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RxPointerMSB : = bd_ram . io . dato ( 31 , 2 )
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} . elsewhen ( MasterWbRX & io . tlMst . A . fire ) {
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RxPointerMSB : = RxPointerMSB + 1. U // Word access (always word access. m_wb_sel_o are used for selecting bytes)
}
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when ( ~ RxReady & io . r_RxEn & stateNxt === StateWB & stateCur =/= StateWB ) {
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RxEn_needed : = true . B
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} . elsewhen ( RxPointerRead & stateNxt === StateRX & stateCur === StateRX ) {
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RxEn_needed : = false . B
}
// Reception status is written back to the buffer descriptor after the end of frame is detected.
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RxStatusWrite : = ShiftEnded & stateNxt === StateRX & stateCur === StateRX
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rx_fifo . io . data_in : = io . RxDataLatched2_rxclk
rx_fifo . io . write : = WriteRxDataToFifoSyncPluse & ~ rx_fifo . io . full
rx_fifo . io . read : = MasterWbRX & io . tlMst . A . fire
rx_fifo . io . clear : = LatchedRxStartFrmSyncPluse
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when ( ShiftEndedSyncPluse ) {
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ShiftEndedSync3 : = true . B
} . elsewhen ( ShiftEnded ) {
ShiftEndedSync3 : = false . B
}
// Generation of the end-of-frame signal
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when ( ShiftEndedSync3 & MasterWbRX & io . tlMst . A . fire & rx_fifo . io . almost_empty & ~ ShiftEnded ) {
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ShiftEnded : = true . B
} . elsewhen ( RxStatusWrite ) {
ShiftEnded : = false . B
}
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io . RxStatusIn : = Cat ( io . ReceivedPauseFrm , io . AddressMiss , RxOverrun , io . InvalidSymbol , io . DribbleNibble , io . ReceivedPacketTooBig , io . ShortFrame , io . LatchedCrcError , io . RxLateCollision )
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// Rx overrun
when ( RxStatusWrite ) {
RxOverrun : = false . B
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} . elsewhen ( rx_fifo . io . full & WriteRxDataToFifoSyncPluse ) {
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RxOverrun : = true . B
}
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// Latching and synchronizing RxStatusWrite signal. This signal is used for clearing the ReceivedPauseFrm signal
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when ( io . RxStatusWriteLatchedSyncb ) {
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RxStatusWriteLatched : = false . B
} . elsewhen ( RxStatusWrite ) {
RxStatusWriteLatched : = true . B
}
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// 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 = ( io . RxStatusInLatched_rxclk ( 6 , 3 ) . orR ) | ( io . RxStatusInLatched_rxclk ( 1 , 0 ) . orR )
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val TxError = io . TxUnderRun | io . RetryLimit | io . LateCollLatched | io . CarrierSenseLost
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// 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
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when ( RxStatusWrite & RxIRQEn & io . ReceivedPacketGood & ( ~ io . ReceivedPauseFrm | io . ReceivedPauseFrm & io . r_PassAll & ( ~ io . r_RxFlow ) ) ) {
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RxB_IRQ : = ( ~ RxError )
} . otherwise {
RxB_IRQ : = false . B
}
// Rx Error Interrupt
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when ( RxStatusWrite & RxIRQEn & ( ~ io . ReceivedPauseFrm | io . ReceivedPauseFrm & io . r_PassAll & ( ~ io . r_RxFlow ) ) ) {
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RxE_IRQ : = RxError
} . otherwise {
RxE_IRQ : = false . B
}
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io . Busy_IRQ : = Busy_IRQ_syncPluse
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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 ) )
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when ( io . tlSlv . D . fire ) {
slvDValid : = false . B
} . elsewhen ( io . tlSlv . A . fire ) {
slvDValid : = true . B
slvDDat : = bd_ram . io . dato
}
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when ( slvAInfo . opcode === 4. U ) {
io . tlSlv . D . bits : = edgeIn . AccessAck ( slvAInfo , slvDDat )
} . otherwise {
io . tlSlv . D . bits : = edgeIn . AccessAck ( slvAInfo )
}
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io . tlSlv . A . ready : = RegNext ( stateNxt === StateWB & Mux ( stateCur === StateWB , BDWrite . orR , BDRead ) )
assert ( ~ ( io . tlSlv . A . ready & ~ io . tlSlv . A . valid ) )
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val mstAValid = RegInit ( false . B )
val mstABits = Reg ( new TLBundleA ( edgeOut . bundle ) )
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when ( io . tlMst . A . fire ) {
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mstAValid : = false . B
}
. elsewhen ( MasterWbRX & ~ isTlMstBusy ) {
mstAValid : = true . B
mstABits : =
edgeOut . Put (
fromSource = 0. U ,
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toAddress = RxPointerMSB << 2 ,
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lgSize = log2Ceil ( 32 / 8 ) . U ,
data = rx_fifo . io . data_out ,
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mask = "b1111" . U ,
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) . _2
}
. elsewhen ( MasterWbTX & ~ isTlMstBusy ) {
mstAValid : = true . B
mstABits : =
edgeOut . Get (
fromSource = 0. U ,
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toAddress = TxPointerMSB << 2 ,
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lgSize = log2Ceil ( 32 / 8 ) . U ,
) . _2
}
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when ( io . tlMst . A . fire ) {
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isTlMstBusy : = true . B
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} . elsewhen ( io . tlMst . D . fire ) {
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isTlMstBusy : = false . B
}
when ( ~ MasterWbTX & ~ MasterWbRX ) {
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when ( ~ rx_fifo . io . empty ) {
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MasterWbRX : = true . B
} . elsewhen ( ReadTxDataFromMemory_2 ) {
MasterWbTX : = true . B
}
} . elsewhen ( ~ MasterWbTX & MasterWbRX ) { //1.4A + 1D fifo to memory
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when ( io . tlMst . D . fire & isLastD & rx_fifo . io . empty ) {
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MasterWbRX : = false . B
}
} . elsewhen ( MasterWbTX & ~ MasterWbRX ) { //1 A + 1.4D memory to fifo
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when ( io . tlMst . D . fire & isLastD & ~ ReadTxDataFromMemory_2 ) {
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MasterWbTX : = false . B
}
}
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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 ) }
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val tlMstAValid_dbg = RegInit ( true . B )
io . tlMst . A . valid : = mstAValid & tlMstAValid_dbg
io . tlMst . A . bits : = mstABits
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val tlMstDReady = RegInit ( true . B )
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dontTouch ( tlMstDReady )
dontTouch ( tlMstAValid_dbg )
io . tlMst . D . ready : = tlMstDReady
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}
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class MacTileLink ( edgeIn : TLEdgeIn , edgeOut : TLEdgeOut ) extends MacTileLinkBase ( edgeIn , edgeOut )
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