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293 lines
9.0 KiB
293 lines
9.0 KiB
"""
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First attempt at providing basic 'master' ('DTU') functionality
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for Hoymiles micro inverters.
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Based in particular on demostrated first contact by 'of22'.
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"""
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import sys
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import argparse
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import time
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import struct
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import crcmod
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import json
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from datetime import datetime
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from RF24 import RF24, RF24_PA_LOW, RF24_PA_MAX, RF24_250KBPS
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import paho.mqtt.client
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from configparser import ConfigParser
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cfg = ConfigParser()
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cfg.read('ahoy.conf')
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mqtt_host = cfg.get('mqtt', 'host', fallback='192.168.1.1')
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mqtt_port = cfg.getint('mqtt', 'port', fallback=1883)
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radio = RF24(22, 0, 1000000)
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mqtt_client = paho.mqtt.client.Client()
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mqtt_client.connect(mqtt_host, mqtt_port)
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# Master Address ('DTU')
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dtu_ser = cfg.get('dtu', 'serial', fallback='99978563412') # identical to fc22's
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# inverter serial numbers
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inv_ser = cfg.get('inverter', 'serial', fallback='444473104619') # my inverter
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# all inverters
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#...
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f_crc_m = crcmod.predefined.mkPredefinedCrcFun('modbus')
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f_crc8 = crcmod.mkCrcFun(0x101, initCrc=0, xorOut=0)
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def ser_to_hm_addr(s):
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"""
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Calculate the 4 bytes that the HM devices use in their internal messages to
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address each other.
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"""
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bcd = int(str(s)[-8:], base=16)
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return struct.pack('>L', bcd)
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def ser_to_esb_addr(s):
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"""
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Convert a Hoymiles inverter/DTU serial number into its
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corresponding NRF24 'enhanced shockburst' address byte sequence (5 bytes).
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The NRF library expects these in LSB to MSB order, even though the transceiver
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itself will then output them in MSB-to-LSB order over the air.
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The inverters use a BCD representation of the last 8
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digits of their serial number, in reverse byte order,
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followed by \x01.
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"""
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air_order = ser_to_hm_addr(s)[::-1] + b'\x01'
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return air_order[::-1]
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def compose_0x80_msg(dst_ser_no=72220200, src_ser_no=72220200, ts=None):
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"""
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Create a valid 0x80 request with the given parameters, and containing the
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current system time.
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"""
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if not ts:
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ts = 0x623C8ECF # identical to fc22's for testing # doc: 1644758171
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# "framing"
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p = b''
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p = p + b'\x15'
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p = p + ser_to_hm_addr(dst_ser_no)
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p = p + ser_to_hm_addr(src_ser_no)
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p = p + b'\x80'
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# encapsulated payload
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pp = b'\x0b\x00'
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pp = pp + struct.pack('>L', ts) # big-endian: msb at low address
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#pp = pp + b'\x00' * 8 # of22 adds a \x05 at position 19
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pp = pp + b'\x00\x00\x00\x05\x00\x00\x00\x00'
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# CRC_M
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crc_m = f_crc_m(pp)
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p = p + pp
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p = p + struct.pack('>H', crc_m)
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crc8 = f_crc8(p)
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p = p + struct.pack('B', crc8)
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return p
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def print_addr(a):
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print(f"ser# {a} ", end='')
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print(f" -> HM {' '.join([f'{x:02x}' for x in ser_to_hm_addr(a)])}", end='')
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print(f" -> ESB {' '.join([f'{x:02x}' for x in ser_to_esb_addr(a)])}")
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def on_receive(p):
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"""
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Callback: get's invoked whenever a packet has been received.
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:param p: Payload of the received packet.
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"""
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d = {}
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ts = datetime.utcnow()
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ts_unixtime = ts.timestamp()
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print(ts.isoformat(), end='Z ')
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# interpret content
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mid = p[0]
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d['mid'] = mid
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name = 'unknowndata'
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if mid == 0x95:
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src, dst, cmd = struct.unpack('>LLB', p[1:10])
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src_s = f'{src:08x}'
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dst_s = f'{dst:08x}'
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d['src'] = src_s
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d['dst'] = dst_s
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d['cmd'] = cmd
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print(f'MSG src={src_s}, dst={dst_s}, cmd={cmd}, ', end=' ')
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if cmd==1:
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name = 'dcdata'
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unknown1, u1, i1, p1, u2, i2, p2, unknown2 = struct.unpack(
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'>HHHHHHHH', p[10:26])
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print(f'u1={u1/10}V, i1={i1/100}A, p1={p1/10}W, ', end='')
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print(f'u2={u2/10}V, i2={i2/100}A, p2={p2/10}W, ', end='')
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print(f'unknown1={unknown1}, unknown2={unknown2}')
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d['u1_V'] = u1/10
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d['i1_A'] = i1/100
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d['p1_W'] = p1/10
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d['u2_V'] = u2/10
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d['i2_A'] = i2/100
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d['p2_W'] = p2/10
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d['unknown1'] = unknown1
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d['unknown2'] = unknown2
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elif cmd==2:
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name = 'acdata'
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uk1, uk2, uk3, uk4, uk5, u, f, p = struct.unpack(
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'>HHHHHHHH', p[10:26])
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print(f'u={u/10:.1f}V, f={f/100:.2f}Hz, p={p/10:.1f}W, ', end='')
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print(f'uk1={uk1}, ', end='')
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print(f'uk2={uk2}, ', end='')
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print(f'uk3={uk3}, ', end='')
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print(f'uk4={uk4}, ', end='')
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print(f'uk5={uk5}')
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d['u_V'] = u/10
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d['f_Hz'] = f/100
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d['p_W'] = p/10
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d['wtot1_Wh'] = uk1
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d['wtot2_Wh'] = uk3
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d['wday1_Wh'] = uk4
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d['wday2_Wh'] = uk5
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d['uk2'] = uk2
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elif cmd==129:
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name = 'error'
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print('Command error')
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elif cmd==131:
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name = 'statedata'
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uk1, uk2, uk3, uk4, uk5, uk6 = struct.unpack('>HHHHHH', p[10:22])
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print(f'uk1={uk1}, ', end='')
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print(f'uk2={uk2}, ', end='')
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print(f'uk3={uk3}, ', end='')
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print(f'uk4={uk4}, ', end='')
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print(f'uk5={uk5}, ', end='')
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print(f'uk6={uk6}')
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d['t_C'] = uk4/10
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else:
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print(f'unknown cmd {cmd}')
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else:
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print(f'unknown frame id {p[0]}')
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# output to MQTT
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if d:
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j = json.dumps(d)
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mqtt_client.publish(f'ahoy/{src}/{name}', j)
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if d['cmd']==2:
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mqtt_client.publish(f'ahoy/{src}/emeter/0/voltage', d['u_V'])
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mqtt_client.publish(f'ahoy/{src}/emeter/0/power', d['p_W'])
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mqtt_client.publish(f'ahoy/{src}/emeter/0/total', d['wtot1_Wh'])
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mqtt_client.publish(f'ahoy/{src}/frequency', d['f_Hz'])
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if d['cmd']==1:
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mqtt_client.publish(f'ahoy/{src}/emeter-dc/0/power', d['p1_W'])
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mqtt_client.publish(f'ahoy/{src}/emeter-dc/0/voltage', d['u1_V'])
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mqtt_client.publish(f'ahoy/{src}/emeter-dc/0/current', d['i1_A'])
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mqtt_client.publish(f'ahoy/{src}/emeter-dc/1/power', d['p2_W'])
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mqtt_client.publish(f'ahoy/{src}/emeter-dc/1/voltage', d['u2_V'])
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mqtt_client.publish(f'ahoy/{src}/emeter-dc/1/current', d['i2_A'])
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if d['cmd']==131:
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mqtt_client.publish(f'ahoy/{src}/temperature', d['t_C'])
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def main_loop():
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"""
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Keep receiving on channel 3. Every once in a while, transmit a request
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to one of our inverters on channel 40.
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"""
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print_addr(inv_ser)
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print_addr(dtu_ser)
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ctr = 1
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ts = int(time.time()) # see what happens if we always send one and the same (constant) time!
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rx_channels = [3,23,61,75]
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chn_id = 0
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rx_channel = rx_channels[chn_id]
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while True:
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radio.setChannel(rx_channel)
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radio.enableDynamicPayloads()
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radio.setAutoAck(False)
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radio.setPALevel(RF24_PA_MAX)
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radio.setDataRate(RF24_250KBPS)
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radio.openWritingPipe(ser_to_esb_addr(inv_ser))
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radio.flush_rx()
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radio.flush_tx()
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radio.openReadingPipe(1,ser_to_esb_addr(dtu_ser))
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#radio.openReadingPipe(1,ser_to_esb_addr(inv_ser))
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radio.startListening()
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if ctr<3:
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pass
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# radio.printPrettyDetails()
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t_end = time.monotonic_ns()+1e9
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while time.monotonic_ns() < t_end:
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has_payload, pipe_number = radio.available_pipe()
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if has_payload:
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size = radio.getDynamicPayloadSize()
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payload = radio.read(size)
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dt = datetime.now().strftime("%Y-%m-%d %H:%M:%S.%f")
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print(f"{dt} Received {size} bytes on channel {rx_channel} pipe {pipe_number}: " +
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" ".join([f"{b:02x}" for b in payload]))
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on_receive(payload)
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else:
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radio.stopListening()
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radio.setChannel(rx_channel)
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radio.startListening()
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chn_id = chn_id + 1
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if chn_id >= len(rx_channels):
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chn_id = 0
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rx_channel = rx_channels[chn_id]
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time.sleep(0.01)
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radio.stopListening() # put radio in TX mode
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radio.setChannel(40)
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radio.openWritingPipe(ser_to_esb_addr(inv_ser))
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if ctr<3:
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pass
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# radio.printPrettyDetails()
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# ts = int(time.time())
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payload = compose_0x80_msg(src_ser_no=dtu_ser, dst_ser_no=inv_ser, ts=ts)
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print(f"{ctr:5d}: len={len(payload)} | " + " ".join([f"{b:02x}" for b in payload]),
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flush=True)
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radio.write(payload) # will always yield 'True' because auto-ack is disabled
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ctr = ctr + 1
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if __name__ == "__main__":
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if not radio.begin():
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raise RuntimeError("radio hardware is not responding")
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radio.setPALevel(RF24_PA_LOW) # RF24_PA_MAX is default
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# radio.printDetails(); # (smaller) function that prints raw register values
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# radio.printPrettyDetails(); # (larger) function that prints human readable data
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try:
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main_loop()
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except KeyboardInterrupt:
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print(" Keyboard Interrupt detected. Exiting...")
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radio.powerDown()
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sys.exit()
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