spi跨时钟域

This commit is contained in:
RuigeLee
2025-09-16 18:01:14 +08:00
parent 1dee4519bb
commit 21ffc1b58d

View File

@@ -0,0 +1,233 @@
package BACK
import chisel3._
import chisel3.util._
abstract class SyncSpiInterfaceBase extends Module with RequireAsyncReset{
val io = IO(new RegAccessInterfaceIO)
val qspi = IO(new QSPIInterfaceIO)
}
trait SyncSpiAsync{ this: SyncSpiInterfaceBase =>
val bitSel = withClockAndReset(~qspi.sck.asClock, qspi.csn){RegInit(0.U(3.W)) }
val byteSel = withClockAndReset(~qspi.sck.asClock, qspi.csn){RegInit(0.U(12.W))}
val exRego = withClockAndReset(~qspi.sck.asClock, qspi.csn){RegInit(0.U(8.W))}
val exRegi = withClockAndReset(~qspi.sck.asClock, qspi.csn){RegInit(0.U(8.W))}
qspi.miso := exRego(7, 4)
qspi.isDirIn := ~isSpiRead
when( true.B ){
bitSel := ~bitSel
}
when( bitSel.andR ){
byteSel := byteSel + 1.U
}
when( bitSel === 0.U ){
exRegi := Cat( 0.U, qspi.mosi )
}.otherwise{
exRegi := Cat( exRegi(3,0), qspi.mosi )
}
when( bitSel === 0.U ){
when((byteSel === 1.U || byteSel === 2.U || byteSel === 3.U ) ){
exRego := 0.U //地址1cmd
} .elsewhen( isSpiRead ){
when( ~isPing_async ){ //取巧
exRego := datar_sync(0)
} .otherwise{
exRego := datar_sync(1)
}
}
} .otherwise{
exRego := exRego << 4
}
val addrw_async = for( _ <- 0 until 2 ) yield { withClockAndReset(~qspi.sck.asClock, qspi.csn){ RegInit(0.U(16.W)) } }
val addrr_async = for( _ <- 0 until 2 ) yield { withClockAndReset(~qspi.sck.asClock, qspi.csn){ RegInit(0.U(16.W)) } }
val dataw_async = for( _ <- 0 until 2 ) yield { withClockAndReset(~qspi.sck.asClock, qspi.csn){ RegInit(0.U(8.W)) } }
val isEnR_async = for( _ <- 0 until 2 ) yield { withClockAndReset(~qspi.sck.asClock, qspi.csn){ RegInit(false.B) } }
val isEnW_async = for( _ <- 0 until 2 ) yield { withClockAndReset(~qspi.sck.asClock, qspi.csn){ RegInit(false.B) } }
val spiLen = withClockAndReset(~qspi.sck.asClock, qspi.csn){ RegInit(2.U(12.W)) }
val spiCnt = withClockAndReset(~qspi.sck.asClock, qspi.csn){ RegInit(0.U(12.W)) }
val isSpiWrite = withClockAndReset(~qspi.sck.asClock, qspi.csn){ RegInit(false.B) }
val isSpiRead = withClockAndReset(~qspi.sck.asClock, qspi.csn){ RegInit(false.B) }
val isPing_async = withClockAndReset(~qspi.sck.asClock, qspi.csn){ RegInit(false.B) }
when( isEnR_async(0) | isEnW_async(0) | isEnR_async(1) | isEnW_async(1) ){
spiCnt := spiCnt + 1.U
}
when( byteSel === 4.U & bitSel === 0.U ){
spiLen := Cat( exRegi, 0.U(8.W) )
} .elsewhen( byteSel === 4.U & bitSel.andR ){
spiLen := Cat( spiLen(11, 8), exRegi, 0.U(4.W) )
} .elsewhen( byteSel === 5.U & bitSel === 0.U ){
spiLen := Cat( spiLen(11, 4), exRegi )
}
}
trait SyncSpiSync{ this: SyncSpiInterfaceBase =>
}
class SyncQSpiInterface extends SyncSpiInterfaceBase
with SyncSpiAsync
with SyncSpiSync{
when( bitSel === 0.U ){
when( byteSel === 1.U ){
addrw_async(0) := exRegi
addrw_async(1) := exRegi
} .elsewhen( byteSel === 2.U ) {
addrw_async(0) := Cat(addrw_async(7,0), exRegi)
addrw_async(1) := Cat(addrw_async(7,0), exRegi)
} .elsewhen( byteSel >= 5.U ){
when( ~isPing_async ){
addrw_async(0) := addrw_async(0) + 2.U
} .otherwise{
addrw_async(1) := addrw_async(1) + 2.U
}
}
}
when( bitSel === 0.U ){
when( byteSel === 1.U ){
addrr_async(0) := exRegi
addrr_async(1) := exRegi
} .elsewhen( byteSel === 2.U ) {
addrr_async(0) := Cat(addrr_async(7,0), exRegi)
addrr_async(1) := Cat(addrr_async(7,0), exRegi)
}
} .otherwise{
when( byteSel >= 2.U ){
when( ~isPing_async ){
addrr_async(0) := addrr_async(0) + 2.U
} .otherwise{
addrr_async(1) := addrr_async(1) + 2.U
}
}
}
when( byteSel === 2.U & bitSel === 0.U ){ //CS为低且SCK上跳的第0byte
when( qspi.mosi.extract(3) ){
isSpiRead := true.B
} .otherwise{
isSpiWrite := true.B
}
}
when( bitSel === 0.U ){
when( byteSel > 3.U & isSpiWrite ){
when( ~isPing_async ){
dataw_async(0) := exRegi
} .otherwise{
dataw_async(1) := exRegi
}
}
}
when( byteSel >= 2.U & bitSel.andR & (spiCnt < spiLen) & isSpiRead ){
when( ~isPing_async ){
isEnR_async(0) := true.B
} .otherwise{
isEnR_async(1) := true.B
}
} .elsewhen( bitSel === 0.U ){
isEnR_async(0) := false.B
isEnR_async(1) := false.B
}
when( byteSel >= 5.U & bitSel === 0.U & (spiCnt < spiLen) & isSpiWrite ){
when( ~isPing_async ){
isEnW_async(0) := true.B
} .otherwise{
isEnW_async(1) := true.B
}
} .elsewhen( bitSel.andR ){
isEnW_async(0) := false.B
isEnW_async(1) := false.B
}
when( isEnR_async(0) | isEnW_async(0) ){
assert( ~isPing_async )
isPing_async := true.B
} .elsewhen( isEnR_async(1) | isEnW_async(1) ){
assert( isPing_async )
isPing_async := false.B
}
val isPong_sync = RegInit(false.B)
val isEnW_sync = for( _ <- 0 until 2 ) yield { ShiftRegisters( isEnW_async(i), 3, false.B, true.B ) }
val isEnR_sync = for( _ <- 0 until 2 ) yield { ShiftRegisters( isEnR_async(i), 3, false.B, true.B ) }
val datar_sync = for( _ <- 0 until 2 ) yield { RegInit(0.U(8.W)) }
val isEnW = for( _ <- 0 until 2 ) yield { ~isEnW_sync(i)(2) & isEnW_sync(i)(1) }
val isEnR = for( _ <- 0 until 2 ) yield { ~isEnR_sync(i)(2) & isEnR_sync(i)(1) }
io.isEnW :=
( ~isPong_sync & isEnW(0) ) |
( isPong_sync & isEnW(1) )
io.isEnR :=
( ~isPong_sync & isEnR(0) ) |
( isPong_sync & isEnR(1) )
io.addrw := Mux1H(Seq(
~isPong_sync -> addrw_async(0),
isPong_sync -> addrw_async(1),
))
io.addrr := Mux1H(Seq(
~isPong_sync -> addrr_async(0),
isPong_sync -> addrr_async(1),
))
io.dataw := Mux1H(Seq(
~isPong_sync -> dataw_async(0),
isPong_sync -> dataw_async(1),
))
when( io.isEnR ){
when( RegNext(~isPong_sync, false.B) ){
datar_sync(0) := io.datar
} .otherwise{
datar_sync(1) := io.datar
}
}
when( io.isEnR | io.isEnW ){
isPong_sync := ~isPong_sync
}
}