from machine import Pin, I2C
import time
I2C_ADDR = 0x76
digT = []
digP = []
digH = []
t_fine = 0.0
class BME280:
def __init__(self, address = I2C_ADDR):
self.i2c = I2C(0, scl=Pin(21), sda=Pin(20), freq=100000)
self.address = address
self.calib = []
self.osrs_t = 1 #Temperature oversampling x 1
self.osrs_p = 1 #Pressure oversampling x 1
self.osrs_h = 1 #Humidity oversampling x 1
self.mode = 3 #Normal self.mode
self.t_sb = 5 #Tstandby 1000ms
self.filter = 0 #self.filter off
self.spi3w_en = 0 #3-wire SPI Disable
ctrl_meas_reg = (self.osrs_t << 5) | (self.osrs_p << 2) | self.mode
config_reg = (self.t_sb << 5) | (self.filter << 2) | self.spi3w_en
ctrl_hum_reg = self.osrs_h
self.writeReg(0xF2, ctrl_hum_reg)
self.writeReg(0xF4, ctrl_meas_reg)
self.writeReg(0xF5, config_reg)
def writeReg(self, cmd, val):
self.i2c.writeto_mem(int(self.address), int(cmd), bytes([int(val)]))
def get_calib_param(self):
for i in range (0x88,0x88+24):
rdate = self.i2c.readfrom_mem(int(self.address), int(i), 1)
self.calib.append(rdate[0])
rdate2 = self.i2c.readfrom_mem(int(self.address), int(0xA1), 1)
self.calib.append(rdate2[0])
for i in range (0xE1,0xE1+7):
rdate3 = self.i2c.readfrom_mem(int(self.address), int(i), 1)
self.calib.append(rdate3[0])
digT.append((self.calib[1] << 8) | self.calib[0])
digT.append((self.calib[3] << 8) | self.calib[2])
digT.append((self.calib[5] << 8) | self.calib[4])
digP.append((self.calib[7] << 8) | self.calib[6])
digP.append((self.calib[9] << 8) | self.calib[8])
digP.append((self.calib[11]<< 8) | self.calib[10])
digP.append((self.calib[13]<< 8) | self.calib[12])
digP.append((self.calib[15]<< 8) | self.calib[14])
digP.append((self.calib[17]<< 8) | self.calib[16])
digP.append((self.calib[19]<< 8) | self.calib[18])
digP.append((self.calib[21]<< 8) | self.calib[20])
digP.append((self.calib[23]<< 8) | self.calib[22])
digH.append( self.calib[24] )
digH.append((self.calib[26]<< 8) | self.calib[25])
digH.append( self.calib[27] )
digH.append((self.calib[28]<< 4) | (0x0F & self.calib[29]))
digH.append((self.calib[30]<< 4) | ((self.calib[29] >> 4) & 0x0F))
digH.append( self.calib[31] )
for i in range(1,2):
if digT[i] & 0x8000:
digT[i] = (-digT[i] ^ 0xFFFF) + 1
for i in range(1,8):
if digP[i] & 0x8000:
digP[i] = (-digP[i] ^ 0xFFFF) + 1
for i in range(0,6):
if digH[i] & 0x8000:
digH[i] = (-digH[i] ^ 0xFFFF) + 1
def readData(self):
data = []
for i in range (0xF7, 0xF7+8):
rdate = self.i2c.readfrom_mem(int(self.address), int(i), 1)
data.append(rdate[0])
pres_raw = (data[0] << 12) | (data[1] << 4) | (data[2] >> 4)
temp_raw = (data[3] << 12) | (data[4] << 4) | (data[5] >> 4)
hum_raw = (data[6] << 8) | data[7]
pressure = self.compensate_P(pres_raw)
temperature = self.compensate_T(temp_raw)
var_h = self.compensate_H(hum_raw)
# print "pressure : %7.2f hPa" % (pressure/100)
# print "temp : %-6.2f ℃" % (temperature)
# print "hum : %6.2f %" % (var_h)
return [pressure, temperature, var_h]
def compensate_P(self, adc_P):
global t_fine
pressure = 0.0
v1 = (t_fine / 2.0) - 64000.0
v2 = (((v1 / 4.0) * (v1 / 4.0)) / 2048) * digP[5]
v2 = v2 + ((v1 * digP[4]) * 2.0)
v2 = (v2 / 4.0) + (digP[3] * 65536.0)
v1 = (((digP[2] * (((v1 / 4.0) * (v1 / 4.0)) / 8192)) / 8) + ((digP[1] * v1) / 2.0)) / 262144
v1 = ((32768 + v1) * digP[0]) / 32768
if v1 == 0:
return 0
pressure = ((1048576 - adc_P) - (v2 / 4096)) * 3125
if pressure < 0x80000000:
pressure = (pressure * 2.0) / v1
else:
pressure = (pressure / v1) * 2
v1 = (digP[8] * (((pressure / 8.0) * (pressure / 8.0)) / 8192.0)) / 4096
v2 = ((pressure / 4.0) * digP[7]) / 8192.0
pressure = pressure + ((v1 + v2 + digP[6]) / 16.0)
return (pressure/100)
# print "pressure : %7.2f hPa" % (pressure/100)
def compensate_T(self, adc_T):
global t_fine
v1 = (adc_T / 16384.0 - digT[0] / 1024.0) * digT[1]
v2 = (adc_T / 131072.0 - digT[0] / 8192.0) * (adc_T / 131072.0 - digT[0] / 8192.0) * digT[2]
t_fine = v1 + v2
temperature = t_fine / 5120.0
# print "temp : %-6.2f ℃" % (temperature)
return temperature
def compensate_H(self, adc_H):
global t_fine
var_h = t_fine - 76800.0
if var_h != 0:
var_h = (adc_H - (digH[3] * 64.0 + digH[4]/16384.0 * var_h)) * (digH[1] / 65536.0 * (1.0 + digH[5] / 67108864.0 * var_h * (1.0 + digH[2] / 67108864.0 * var_h)))
else:
return 0
var_h = var_h * (1.0 - digH[0] * var_h / 524288.0)
if var_h > 100.0:
var_h = 100.0
elif var_h < 0.0:
var_h = 0.0
# print "hum : %6.2f %" % (var_h)
return var_h
if __name__ == '__main__':
sensor = BME280()
sensor.get_calib_param()
time.sleep(1)
try:
# sensor.setup()
data = []
data = sensor.readData()
print("pressure : %7.2f hPa" %data[0])
print("temp : %-6.2f ℃" %data[1])
print("hum : %6.2f %" %data[2])
except KeyboardInterrupt:
pass
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