189 lines
6.3 KiB
Python
Executable File
189 lines
6.3 KiB
Python
Executable File
'''
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_ _ ____ __ __
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Script to get NPM data via Modbus
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need parameter: port
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/usr/bin/python3 /var/www/nebuleair_pro_4g/NPM/get_data_modbus_v2.py
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Modbus RTU
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[Slave Address][Function Code][Starting Address][Quantity of Registers][CRC]
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Pour récupérer
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les concentrations en PM1, PM10 et PM2.5 (a partir du registre 0x38)
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les 5 cannaux
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la température et l'humidité à l'intérieur du capteur
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Donnée actualisée toutes les 10 secondes
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Request
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\x01\x03\x00\x38\x00\x55\...\...
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\x01 Slave Address (slave device address)
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\x03 Function code (read multiple holding registers)
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\x00\x38 Starting Address (The request starts reading from holding register address x38 or 56)
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\x00\x55 Quantity of Registers (Requests to read x55 or 85 consecutive registers starting from address 56)
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\...\... Cyclic Redundancy Check (checksum )
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'''
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import serial
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import requests
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import json
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import sys
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import crcmod
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import sqlite3
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# Connect to the SQLite database
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conn = sqlite3.connect("/var/www/nebuleair_pro_4g/sqlite/sensors.db")
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cursor = conn.cursor()
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def load_config(config_file):
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try:
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with open(config_file, 'r') as file:
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config_data = json.load(file)
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return config_data
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except Exception as e:
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print(f"Error loading config file: {e}")
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return {}
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# Load the configuration data
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config_file = '/var/www/nebuleair_pro_4g/config.json'
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config = load_config(config_file)
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npm_solo_port = config.get('NPM_solo_port', '') #port du NPM solo
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ser = serial.Serial(
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port=npm_solo_port,
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baudrate=115200,
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parity=serial.PARITY_EVEN,
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stopbits=serial.STOPBITS_ONE,
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bytesize=serial.EIGHTBITS,
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timeout = 2
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)
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# Define Modbus CRC-16 function
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crc16 = crcmod.predefined.mkPredefinedCrcFun('modbus')
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# Request frame without CRC
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data = b'\x01\x03\x00\x38\x00\x55'
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# Calculate CRC
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crc = crc16(data)
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crc_low = crc & 0xFF
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crc_high = (crc >> 8) & 0xFF
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# Append CRC to the frame
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request = data + bytes([crc_low, crc_high])
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#print(f"Request frame: {request.hex()}")
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ser.write(request)
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#GET RTC TIME from SQlite
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cursor.execute("SELECT * FROM timestamp_table LIMIT 1")
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row = cursor.fetchone() # Get the first (and only) row
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rtc_time_str = row[1] # '2025-02-07 12:30:45'
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while True:
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try:
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byte_data = ser.readline()
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formatted = ''.join(f'\\x{byte:02x}' for byte in byte_data)
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print(formatted)
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# Register base (56 = 0x38)
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REGISTER_START = 56
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# Function to extract 32-bit values from Modbus response
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def extract_value(byte_data, register, scale=1, single_register=False, round_to=None):
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"""Extracts a value from Modbus response.
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- `register`: Modbus register to read.
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- `scale`: Value is divided by this (e.g., `1000` for PM values).
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- `single_register`: If `True`, only reads 16 bits (one register).
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"""
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offset = (register - REGISTER_START) * 2 + 3 # Calculate byte offset
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if single_register:
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value = int.from_bytes(byte_data[offset:offset+2], byteorder='big')
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else:
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lsw = int.from_bytes(byte_data[offset:offset+2], byteorder='big')
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msw = int.from_bytes(byte_data[offset+2:offset+4], byteorder='big')
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value = (msw << 16) | lsw # 32-bit value
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value = value / scale # Apply scaling
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if round_to == 0:
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return int(value) # Convert to integer to remove .0
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elif round_to is not None:
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return round(value, round_to) # Apply normal rounding
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else:
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return value # No rounding if round_to is None
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# 10-sec PM Concentration (PM1, PM2.5, PM10)
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pm1_10s = extract_value(byte_data, 56, 1000, round_to=1)
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pm25_10s = extract_value(byte_data, 58, 1000, round_to=1)
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pm10_10s = extract_value(byte_data, 60, 1000, round_to=1)
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print("10 sec concentration:")
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print(f"PM1: {pm1_10s}")
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print(f"PM2.5: {pm25_10s}")
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print(f"PM10: {pm10_10s}")
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# 1-min PM Concentration
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pm1_1min = extract_value(byte_data, 68, 1000, round_to=1)
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pm25_1min = extract_value(byte_data, 70, 1000, round_to=1)
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pm10_1min = extract_value(byte_data, 72, 1000, round_to=1)
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#print("1 min concentration:")
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#print(f"PM1: {pm1_1min}")
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#print(f"PM2.5: {pm25_1min}")
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#print(f"PM10: {pm10_1min}")
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# Extract values for 5 channels
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channel_1 = extract_value(byte_data, 128, round_to=0) # 0.2 - 0.5μm
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channel_2 = extract_value(byte_data, 130, round_to=0) # 0.5 - 1.0μm
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channel_3 = extract_value(byte_data, 132, round_to=0) # 1.0 - 2.5μm
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channel_4 = extract_value(byte_data, 134, round_to=0) # 2.5 - 5.0μm
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channel_5 = extract_value(byte_data, 136, round_to=0) # 5.0 - 10.0μm
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print(f"Channel 1 (0.2->0.5): {channel_1}")
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print(f"Channel 2 (0.5->1.0): {channel_2}")
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print(f"Channel 3 (1.0->2.5): {channel_3}")
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print(f"Channel 4 (2.5->5.0): {channel_4}")
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print(f"Channel 5 (5.0->10.): {channel_5}")
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# Retrieve relative humidity from register 106 (0x6A)
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relative_humidity = extract_value(byte_data, 106, 100, single_register=True)
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#print(f"Internal Relative Humidity: {relative_humidity} %")
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# Retrieve temperature from register 106 (0x6A)
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temperature = extract_value(byte_data, 107, 100, single_register=True)
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#print(f"Internal temperature: {temperature} °C")
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cursor.execute('''
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INSERT INTO data_NPM_5channels (timestamp,PM_ch1, PM_ch2, PM_ch3, PM_ch4, PM_ch5) VALUES (?,?,?,?,?,?)'''
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, (rtc_time_str,channel_1,channel_2,channel_3,channel_4,channel_5))
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cursor.execute('''
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INSERT INTO data_NPM (timestamp,PM1, PM25, PM10, temp_npm, hum_npm) VALUES (?,?,?,?,?,?)'''
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, (rtc_time_str,pm1_10s,pm25_10s,pm10_10s,temperature,relative_humidity ))
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# Commit and close the connection
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conn.commit()
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break
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except KeyboardInterrupt:
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print("User interrupt encountered. Exiting...")
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time.sleep(3)
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exit()
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except:
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# for all other kinds of error, but not specifying which one
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print("Unknown error...")
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time.sleep(3)
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exit()
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conn.close()
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