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from amaranth import *
from amaranth.sim import Simulator
from amaranth.lib.memory import Memory
from enum import IntEnum, auto
from amaranth.back import verilog
from registers import RTL_Block, Register, RegisterDataType, ReadWritePermissions
class scope(Elaboratable):
"""
Scope for debugging signals
"""
"""
Registers (32 bit):
"""
def __init__(self, clock:int, mem_depth:int) -> None:
"""
clock: input clock frequency (Hz)
mem_depth: depth of capture memory in 32 bit words
"""
self.clock = clock
self.memDepth = mem_depth
self.txStartBits = 1
self.rxStartBits = 1
self.txStopBits = 1
self.rxStopBits = 1
# Ports
self.address = Signal(16)
self.writeData = Signal(32)
self.readData = Signal(32)
self.writeEnable = Signal()
self.triggers = Signal(16)
# IO pins
self.input = Signal(32)
self.triggerIn = Signal()
self.triggerOut = Signal()
self.regs = RTL_Block("scope")
self.regs.addRegister(Register("control", RegisterDataType.PACKED, ReadWritePermissions.READ_WRITE, "control register"))
self.regs.packInto("control", Register("start", RegisterDataType.BOOL, ReadWritePermissions.READ_WRITE, "run scope until triggered or stopped"))
self.regs.packInto("control", Register("stop", RegisterDataType.BOOL, ReadWritePermissions.READ_WRITE, "stop scope"))
self.regs.packInto("control", Register("single_mode", RegisterDataType.BOOL, ReadWritePermissions.READ_WRITE, "capture until triggered then stop (start bit needs cycled to start again)"))
self.regs.packInto("control", Register("trigger_enable", RegisterDataType.BOOL, ReadWritePermissions.READ_WRITE, "enable trigger"))
#self.regs.packInto("control", Register("enable_2bit_packing", RegisterDataType.BOOL, ReadWritePermissions.READ_WRITE, "pack 2 bits into 32 bit words for higher memory efficiency"))
self.regs.addRegister(Register("status", RegisterDataType.PACKED, ReadWritePermissions.READ, "status register"))
self.regs.packInto("status", Register("running", RegisterDataType.BOOL, ReadWritePermissions.READ, "scope is running"))
self.regs.packInto("status", Register("triggered", RegisterDataType.BOOL, ReadWritePermissions.READ, "scope was triggered"))
self.regs.addRegister(Register("sample_divider", RegisterDataType.UNSIGNED, ReadWritePermissions.READ_WRITE, "divider for generating sample triggers from input clock", width=16))
self.regs.addRegister(Register("trigger_level", RegisterDataType.UNSIGNED, ReadWritePermissions.READ_WRITE, "trigger level", width=32))
self.regs.addRegister(Register("trigger_time_offset", RegisterDataType.SIGNED, ReadWritePermissions.READ_WRITE, "where to start and stop the capture when triggered. 0 is 50/50 before/after, .5*mem_depth is 100/0, -.5*mem_depth is 0/100", width=32))
self.regs.addRegister(Register("trigger_index", RegisterDataType.UNSIGNED, ReadWritePermissions.READ, "memory index of where the trigger occured", width=32))
self.regs.addRegisterBank(Register("capture_memory", RegisterDataType.UNSIGNED, ReadWritePermissions.READ, "capture memory", width=32), count=self.memDepth)
self.regs.generateAddressMap()
self.regs.exportDataJSON("scope.json")
def elaborate(self, platform):
m = Module()
m.submodules.memory = self.memory = Memory(shape=unsigned(32), depth=(self.memDepth), init=[]) # store only capture data in bram
self.externalReadPort = self.memory.read_port()
#self.externalWritePort = self.memory.write_port()
#self.internalReadPort = self.memory.read_port()
self.internalWritePort = self.memory.write_port()
# connect external memory interfaces
m.d.comb += self.externalReadPort.addr.eq(self.address)
#m.d.comb += self.externalWritePort.addr.eq(self.address)
#m.d.comb += self.externalWritePort.data.eq(self.writeData)
#m.d.comb += self.externalWritePort.en.eq(self.writeEnable)
m.d.comb += self.readData.eq(self.externalReadPort.data)
self.internalReadWriteAddress = Signal(16)
#m.d.comb += self.internalReadPort.addr.eq(self.internalReadWriteAddress)
m.d.comb += self.internalWritePort.addr.eq(self.internalReadWriteAddress)
self.start = Signal()
self.stop = Signal()
self.single_mode = Signal()
self.trigger_enable = Signal()
with m.FSM(init="stop"):
with m.State("stop"):
with m.If(self.start):
m.next = "run"
with m.State("run"):
with m.If(self.regs.control.stop):
m.next = "IDLE"
with m.If(self.regs.control.single_mode):
m.next = "IDLE"
with m.If(self.regs.control.trigger_enable):
m.next = "TRIGGERED"
with m.State("TRIGGERED"):
with m.If(self.regs.control.stop):
m.next = "IDLE"
return m
clock = int(100e6) # 100 Mhz
dut = scope(clock, 1024)
testTXpacket = [
0x3020100,
0x7060504,
0xB0A0908,
0xF0E0D0C
]
async def uartBench(ctx):
for e, index in enumerate(range(0x3 + 64 + 1, 0x3 + 64 + 1+4)):
ctx.set(dut.memory.data[index], testTXpacket[e])
ctx.set(dut.rx, ctx.get(dut.tx))
ctx.set(dut.address, 0x1)
ctx.set(dut.writeData, int(clock / 12.5e6))
ctx.set(dut.writeEnable, True)
await ctx.tick()
ctx.set(dut.writeEnable, False)
ctx.set(dut.address, 0x0)
ctx.set(dut.writeData, 0b11 + 0x4040000) # trigger tx/rx and set tx/rx packet size to 4x32bit
ctx.set(dut.writeEnable, True)
await ctx.tick()
ctx.set(dut.writeEnable, False)
for i in range(2000):
ctx.set(dut.rx, ctx.get(dut.tx))
await ctx.tick()
# verify tx and rx are working properly
for e, index in enumerate(range(0x3 + 64 + 1, 0x3 + 64 + 1+len(testTXpacket))):
print(ctx.get(dut.memory.data[index]), ctx.get(dut.memory.data[e+0x03]))
assert(ctx.get(dut.memory.data[index]) == ctx.get(dut.memory.data[e+0x03]))
assert(ctx.get(dut.rxCRCvalid))
ctx.set(dut.writeEnable, True)
await ctx.tick()
ctx.set(dut.writeEnable, False)
for i in range(2000):
ctx.set(dut.rx, ctx.get(dut.tx))
await ctx.tick()
# verify tx and rx are working properly
for e, index in enumerate(range(0x3 + 64 + 1, 0x3 + 64 + 1+len(testTXpacket))):
print(ctx.get(dut.memory.data[index]), ctx.get(dut.memory.data[e+0x03]))
assert(ctx.get(dut.memory.data[index]) == ctx.get(dut.memory.data[e+0x03]))
assert(ctx.get(dut.rxCRCvalid))
if __name__ == "__main__":
sim = Simulator(dut)
sim.add_clock(1/clock)
sim.add_testbench(uartBench)
with sim.write_vcd("drive_serial_port.vcd"):
sim.run()
if (True): # export
top = drive_serial_port(int(100e6), 64)
with open("controller-firmware/src/amaranth sources/serial_port.v", "w") as f:
f.write(verilog.convert(top, name="serial_port", ports=[ top.address,
top.writeData,
top.writeEnable,
top.readData,
top.rx,
top.tx
]))