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import argparse
from migen import log2_int, If, Signal, Module, Cat, FSM, NextValue, NextState
from litedram.frontend.fifo import LiteDRAMFIFO
from litex.soc.integration.builder import builder_args, Builder, builder_argdict
from litex.tools.litex_sim import SimSoC, SimConfig
from litex.soc.integration.soc_core import soc_core_args, soc_core_argdict
from litex.soc.interconnect import stream
from litex.soc.interconnect.csr import CSRStatus, AutoCSR, CSRStorage
from litex.soc.interconnect.packet import Header, HeaderField, Packetizer
from litex.soc.interconnect.stream import EndpointDescription
from liteeth.common import eth_udp_user_description, convert_ip
# from liteeth.frontend.stream import LiteEthStream2UDPTX
fragmenter_header_length = 8
fragmenter_header_fields = {
"total_fragmets": HeaderField(0, 0, 32),
"fragment_id": HeaderField(4, 0, 32),
}
fragmenter_header = Header(fragmenter_header_fields,
fragmenter_header_length,
swap_field_bytes=True)
def udp_fragmenter_description(dw):
param_layout = [
("length", 32),
]
payload_layout = fragmenter_header.get_layout() + [
("data", dw),
]
return EndpointDescription(payload_layout, param_layout)
class UDPFragmenterPacketizer(Packetizer):
def __init__(self, dw=8):
Packetizer.__init__(
self,
udp_fragmenter_description(dw),
eth_udp_user_description(dw),
fragmenter_header)
class UDPFragmenter(Module):
'''
UDP Fragmenter that respects liteth.common.eth_mtu and breaking up data
from sink into multiple packets, by manipulating the source which is
tied into IPV4Packetizer
TODO:
1. Further investigate if the DELAY state is necessary.
2. IP_MTU calculation -30 seems pretty arbitrary, need to find refs
3. NextValue is it recommended?
'''
# TODO: compute this from eth_mtu
def __init__(self, dw=8):
self.UDP_FRAG_MTU = UDP_FRAG_MTU = 1472 - 8 # The -8 is because of FRAGMENTER header
self.sink = sink = stream.Endpoint([("data", dw), ("length", 32)])
self.source = source = stream.Endpoint(eth_udp_user_description(dw))
self.packetizer = packetizer = UDPFragmenterPacketizer()
self.submodules += packetizer
self.mf = mf = Signal(reset=0) # mf == More Fragments
self.fragment_offset = fragment_offset = Signal(32, reset=0)
self.identification = identification = Signal(16, reset=0)
self.fragment_id = fragment_id = Signal(32, reset=0)
self.comb += [
sink.connect(packetizer.sink, omit={"length"}),
packetizer.sink.total_fragmets.eq(identification),
packetizer.sink.fragment_id.eq(fragment_id),
packetizer.source.connect(source),
]
ww = dw // 8
# counter logic ;)
self.foo_counter = counter = Signal(32)
counter_reset = Signal()
counter_ce = Signal()
self.sync += \
If(counter_reset,
counter.eq(0)
).Elif(counter_ce,
counter.eq(counter + ww)
)
bytes_in_fragment = Signal(16, reset=0)
self.submodules.fsm = fsm = FSM(reset_state="IDLE")
fsm.act("IDLE",
sink.ready.eq(packetizer.sink.ready),
If(sink.valid,
If(sink.length < UDP_FRAG_MTU,
sink.connect(packetizer.sink, omit={"length"}),
# TODO
source.length.eq(sink.length)
).Else(
sink.ready.eq(0),
source.length.eq(UDP_FRAG_MTU + 8),
counter_reset.eq(1),
NextValue(mf, 1),
NextValue(fragment_offset, 0),
NextValue(fragment_id, 0),
NextValue(identification, identification + 1),
NextValue(bytes_in_fragment, UDP_FRAG_MTU),
NextState("FRAGMENTED_PACKET_SEND")
)
)
)
fsm.act("FRAGMENTED_PACKET_SEND",
sink.connect(packetizer.sink, omit={"length"}),
packetizer.sink.length.eq(bytes_in_fragment),
source.length.eq(bytes_in_fragment + 8),
If(sink.valid & packetizer.sink.ready,
counter_ce.eq(1)
),
If(counter == (bytes_in_fragment - ww),
NextValue(fragment_offset,
fragment_offset + (bytes_in_fragment >> 3)),
packetizer.sink.last.eq(1),
If(((fragment_offset << 3) + counter + ww) == sink.length,
NextValue(fragment_offset, 0),
NextState("IDLE")
).Else(
counter_ce.eq(0),
NextState("NEXT_FRAGMENT"))
)
)
fsm.act("NEXT_FRAGMENT",
counter_ce.eq(0),
sink.ready.eq(0),
packetizer.sink.valid.eq(0),
packetizer.sink.length.eq(bytes_in_fragment),
source.length.eq(bytes_in_fragment + 8),
counter_reset.eq(1),
If((sink.length - (fragment_offset << 3)) > UDP_FRAG_MTU,
NextValue(bytes_in_fragment, UDP_FRAG_MTU),
).Else(
NextValue(bytes_in_fragment,
sink.length - (fragment_offset << 3)),
NextValue(mf, 0),
),
NextValue(fragment_id, fragment_id + 1),
NextState("FRAGMENTED_PACKET_SEND")
)
class Counter(Module):
def __init__(self, nbits, enable_on_reset=1):
self.count = Signal(nbits)
self.en = Signal(reset=enable_on_reset)
self.sync += If(self.en,
self.count.eq(self.count + 1))
class ADCStream(Module):
def __init__(self, nch=4, bits=16, cycles_per_sample=1, ramp=True):
self.dw = nch * bits
self.source = source = stream.Endpoint([("data", self.dw)])
assert cycles_per_sample == 1
self.submodules.ramp = ramp = Counter(bits)
valid = Signal(reset=0)
self.sync += valid.eq(~valid)
self.comb += [source.data.eq(Cat(*[ramp.count + ch for ch in range(nch)])),
source.valid.eq(valid)]
class DataPipeWithoutBypass(Module, AutoCSR):
def __init__(self, ddr_wr_port, ddr_rd_port, udp_port, adc_source, adc_dw):
SIZE = 1024 * 1024
self.fifo_full = CSRStatus(reset=0)
self.fifo_error = CSRStatus(reset=0)
self.fifo_load = CSRStorage(reset=0)
self.fifo_read = CSRStorage(reset=0)
self.fifo_size = CSRStorage(32, reset=SIZE)
self.dst_ip = CSRStorage(32, reset=convert_ip("192.168.1.114"))
self.dst_port = CSRStorage(16, reset=7778)
self.fifo_counter = fifo_counter = Signal(24)
self.load_fifo = load_fifo = Signal()
dw = ddr_wr_port.data_width
print(f"Write port: A ({ddr_wr_port.address_width})/ D ({ddr_wr_port.data_width})")
print(f"Read port: A ({ddr_rd_port.address_width})/ D ({ddr_rd_port.data_width})")
print(f"dw: {dw}; adc_dw: {adc_dw}")
self.submodules.dram_fifo = dram_fifo = LiteDRAMFIFO(
data_width = dw,
base = 0,
depth = SIZE * (dw // 8), # liteDRAM expects this in bytes
write_port = ddr_wr_port,
read_port = ddr_rd_port,
)
self.adc_data = adc_data = Signal(dw)
DW_RATIO = dw // adc_dw
log_dw_ratio = log2_int(DW_RATIO)
word_count = Signal(log_dw_ratio)
word_count_d = Signal(log_dw_ratio)
self.sync += [
If(adc_source.valid,
adc_data.eq(Cat(adc_data[adc_dw:], adc_source.data)),
word_count.eq(word_count + 1)
),
word_count_d.eq(word_count),
]
self.comb += [
dram_fifo.sink.valid.eq((word_count == 0) & (word_count_d != 0) & load_fifo),
dram_fifo.sink.data.eq(adc_data)
]
fifo_size = Signal(32)
self.sync += [
fifo_size.eq(self.fifo_size.storage),
If(self.fifo_load.re & self.fifo_load.storage,
fifo_counter.eq(0),
load_fifo.eq(1)
),
If(load_fifo & adc_source.valid,
self.fifo_full.status.eq(0),
self.fifo_error.status.eq(~dram_fifo.dram_fifo.ctrl.writable),
fifo_counter.eq(fifo_counter + 1)
),
If((fifo_counter == fifo_size - 1) & adc_source.valid,
load_fifo.eq(0),
self.fifo_full.status.eq(1)
),
]
# fifo --> stride converter
self.submodules.stride_converter = sc = stream.Converter(dw, udp_port.dw)
self.read_from_dram_fifo = read_from_dram_fifo = Signal()
self.comb += [
dram_fifo.source.connect(sc.sink)
]
self.receive_count = receive_count = Signal(24)
self.sync += [
If(dram_fifo.source.valid & dram_fifo.source.ready,
receive_count.eq(receive_count + 1)
).Elif(read_from_dram_fifo == 0,
receive_count.eq(0)
)
]
# --> udp fragmenter -->
self.submodules.udp_fragmenter = udp_fragmenter = UDPFragmenter(udp_port.dw)
self.sync += read_from_dram_fifo.eq(self.fifo_read.storage)
self.comb += If(read_from_dram_fifo,
# TODO: There is a bug somewhere in the converter,
# its source.last somehow gets set, no idea why. That signal is of no real use
# for the fragmenter anyways, so we live without it
sc.source.connect(udp_fragmenter.sink, omit={'total_size', 'last'}))
# TODO: 8 should be adcstream data width // 8
self.comb += udp_fragmenter.sink.length.eq(fifo_size << log2_int(adc_dw//8))
self.comb += udp_fragmenter.source.connect(udp_port.sink)
self.comb += [
# param
udp_port.sink.src_port.eq(4321),
udp_port.sink.dst_port.eq(self.dst_port.storage),
udp_port.sink.ip_address.eq(self.dst_ip.storage),
# udp_port.sink.ip_address.eq(convert_ip("192.168.88.101")),
# payload
udp_port.sink.error.eq(0)
]
class DataPipe(Module, AutoCSR):
def __init__(self, ddr_wr_port, ddr_rd_port, udp_port):
SIZE = 1024 * 1024
SIZE = 1024
self.fifo_full = CSRStatus(reset=0)
self.fifo_error = CSRStatus(reset=0)
self.fifo_load = CSRStorage(reset=0) # Load the coefficients in memory to the ROI Summer
self.fifo_read = CSRStorage(reset=0)
self.fifo_size = CSRStorage(32, reset=SIZE)
self.dst_ip = CSRStorage(32, reset=convert_ip("192.168.1.114"))
self.dst_port = CSRStorage(16, reset=7778)
dw = 64
print(f"Write port: A ({ddr_wr_port.address_width})/ D ({ddr_wr_port.data_width})")
print(f"Read port: A ({ddr_rd_port.address_width})/ D ({ddr_rd_port.data_width})")
self.submodules.dram_fifo = dram_fifo = LiteDRAMFIFO(
data_width = dw,
base = 0,
depth = SIZE,
write_port = ddr_wr_port,
read_port = ddr_rd_port,
with_bypass = True,
)
# self.mf = mf = Signal(reset=0) # mf == More Fragments
# self.fragment_offset = fragment_offset = Signal(13, reset=0)
# self.identification = identification = Signal(16, reset=0)
self.submodules.adcs = adcs = ADCStream(1, dw)
self.fifo_counter = fifo_counter = Signal(24)
self.load_fifo = load_fifo = Signal()
# adc --> buffer_fifo
self.submodules.buffer_fifo = buffer_fifo = stream.SyncFIFO(stream.EndpointDescription([("data", dw)]),
256,
buffered=True)
# buffer_fifo --> dram_fifo
fifo_size = Signal(32)
self.sync += [
fifo_size.eq(self.fifo_size.storage),
If(self.fifo_load.re & self.fifo_load.storage,
fifo_counter.eq(0),
load_fifo.eq(1)
),
If(load_fifo & adcs.source.valid,
self.fifo_full.status.eq(0),
self.fifo_error.status.eq(~dram_fifo.dram_fifo.ctrl.writable),
fifo_counter.eq(fifo_counter + 1)
),
If((fifo_counter == fifo_size - 1) & adcs.source.valid,
load_fifo.eq(0),
self.fifo_full.status.eq(1)
),
]
self.comb += [
buffer_fifo.sink.data.eq(adcs.source.data),
buffer_fifo.sink.valid.eq(adcs.source.valid & load_fifo),
buffer_fifo.source.connect(dram_fifo.sink),
]
# fifo --> stride converter
self.submodules.stride_converter = sc = stream.Converter(dw, udp_port.dw)
self.read_from_dram_fifo = read_from_dram_fifo = Signal()
self.comb += [
dram_fifo.source.connect(sc.sink)
]
self.receive_count = receive_count = Signal(24)
self.sync += [
If(dram_fifo.source.valid & dram_fifo.source.ready,
receive_count.eq(receive_count + 1)
).Elif(read_from_dram_fifo == 0,
receive_count.eq(0)
)
]
# --> udp fragmenter -->
self.submodules.udp_fragmenter = udp_fragmenter = UDPFragmenter(udp_port.dw)
self.sync += read_from_dram_fifo.eq(self.fifo_read.storage)
self.comb += If(read_from_dram_fifo,
# TODO: There is a bug somewhere in the converter,
# its source.last somehow gets set, no idea why. That signal is of no real use
# for the fragmenter anyways, so we live without it
sc.source.connect(udp_fragmenter.sink, omit={'total_size', 'last'}))
# TODO: 8 should be adcstream data width // 8
self.comb += udp_fragmenter.sink.length.eq(fifo_size << log2_int(dw//8))
self.comb += udp_fragmenter.source.connect(udp_port.sink)
self.comb += [
# param
udp_port.sink.src_port.eq(4321),
udp_port.sink.dst_port.eq(self.dst_port.storage),
udp_port.sink.ip_address.eq(self.dst_ip.storage),
# udp_port.sink.ip_address.eq(convert_ip("192.168.88.101")),
# payload
udp_port.sink.error.eq(0)
]
# debug
self.first_sample, self.last_sample = Signal(16), Signal(16)
self.sync += [
If(fifo_counter == 1, self.first_sample.eq(adcs.source.data[:16])),
If(fifo_counter == SIZE - 2, self.last_sample.eq(adcs.source.data[:16])),
]
class SDRAMSimSoC(SimSoC):
def __init__(self, **kwargs):
super().__init__(**kwargs)
self.udp_port = udp_port = self.udp.crossbar.get_port(4321, 8)
ddr_wr_port, ddr_rd_port = self.sdram.crossbar.get_port("write"), self.sdram.crossbar.get_port("read")
adc_dw = 16
adcs = ADCStream(1, adc_dw)
self.submodules.data_pipe = DataPipeWithoutBypass(ddr_wr_port, ddr_rd_port, udp_port, adcs.source, adc_dw)
self.add_csr("data_pipe")
def main():
parser = argparse.ArgumentParser(description="Datapipe simulation SoC*")
builder_args(parser)
soc_core_args(parser)
# soc_core_args(parser)
parser.add_argument("--with-ethernet", action="store_true",
help="enable Ethernet support")
parser.add_argument("--ethernet-phy", default="rgmii",
help="select Ethernet PHY (rgmii or 1000basex)")
parser.add_argument("-p", "--program-only", action="store_true",
help="Don't build, just program the existing bitfile")
parser.add_argument("--build", action="store_true",
help="Build FPGA bitstream")
parser.add_argument("--load", action="store_true",
help="program FPGA")
parser.add_argument("--threads", default=4,
help="set number of threads (default=4)")
parser.add_argument("--trace", action="store_true",
help="enable VCD tracing")
args = parser.parse_args()
soc_kwargs = soc_core_argdict(args)
sim_config = SimConfig(default_clk="sys_clk")
soc_kwargs["integrated_main_ram_size"] = 0x10000
soc_kwargs = soc_core_argdict(args)
soc_kwargs["uart_name"] = "sim"
# sim_config.add_module("serial2console", "serial")
sim_config.add_module(
'ethernet',
"eth",
args={"interface": "xxx1",
"ip": "192.168.88.101",
"vcd_name": "foo.vcd"})
soc = SDRAMSimSoC(phy="rgmii",
with_ethernet=True,
with_etherbone=True,
with_sdram=True,
etherbone_ip_address="192.168.88.50",
etherbone_mac_address=0x12345678abcd,
**soc_kwargs)
builder = Builder(soc, **builder_argdict(args))
# discard result, or save in vns?
builder.build(
threads=args.threads,
trace=args.trace,
sim_config=sim_config)
if __name__ == "__main__":
main()