#define BME680_MAX_OVERFLOW_VAL 0x40000000
#define BME680_HUM_REG_SHIFT_VAL 4
-#define BME680_BIT_H1_DATA_MSK 0x0F
+#define BME680_BIT_H1_DATA_MASK 0x0F
#define BME680_REG_RES_HEAT_RANGE 0x02
-#define BME680_RHRANGE_MSK 0x30
+#define BME680_RHRANGE_MASK 0x30
#define BME680_REG_RES_HEAT_VAL 0x00
#define BME680_REG_RANGE_SW_ERR 0x04
-#define BME680_RSERROR_MSK 0xF0
+#define BME680_RSERROR_MASK 0xF0
#define BME680_REG_RES_HEAT_0 0x5A
#define BME680_REG_GAS_WAIT_0 0x64
#define BME680_ADC_GAS_RES_SHIFT 6
return ret;
}
calib->par_h1 = (tmp_msb << BME680_HUM_REG_SHIFT_VAL) |
- (tmp_lsb & BME680_BIT_H1_DATA_MSK);
+ (tmp_lsb & BME680_BIT_H1_DATA_MASK);
ret = regmap_read(data->regmap, BME680_H2_MSB_REG, &tmp_msb);
if (ret < 0) {
dev_err(dev, "failed to read resistance heat range\n");
return ret;
}
- calib->res_heat_range = (tmp & BME680_RHRANGE_MSK) / 16;
+ calib->res_heat_range = (tmp & BME680_RHRANGE_MASK) / 16;
ret = regmap_read(data->regmap, BME680_REG_RES_HEAT_VAL, &tmp);
if (ret < 0) {
dev_err(dev, "failed to read range software error\n");
return ret;
}
- calib->range_sw_err = (tmp & BME680_RSERROR_MSK) / 16;
+ calib->range_sw_err = (tmp & BME680_RSERROR_MASK) / 16;
return 0;
}