BMP280.c 9.0 KB

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  1. #include "BMP280.h"
  2. const SensorType BMP280 = {
  3. .typename = "BMP280",
  4. .interface = &I2C,
  5. .pollingInterval = 500,
  6. .allocator = unitemp_BMP280_alloc,
  7. .mem_releaser = unitemp_BMP280_free,
  8. .initializer = unitemp_BMP280_init,
  9. .deinitializer = unitemp_BMP280_deinit,
  10. .updater = unitemp_BMP280_update};
  11. //Интервал обновления калибровочных значений
  12. #define BMP280_CAL_UPDATE_INTERVAL 60000
  13. #define TEMP_CAL_START_ADDR 0x88
  14. #define PRESS_CAL_START_ADDR 0x8E
  15. #define BMP280_ID 0x58
  16. #define BMP280_REG_STATUS 0xF3
  17. #define BMP280_REG_CTRL_MEAS 0xF4
  18. #define BMP280_REG_CONFIG 0xF5
  19. //Преддескретизация температуры
  20. #define BMP280_TEMP_OVERSAMPLING_SKIP 0b00000000
  21. #define BMP280_TEMP_OVERSAMPLING_1 0b00100000
  22. #define BMP280_TEMP_OVERSAMPLING_2 0b01000000
  23. #define BMP280_TEMP_OVERSAMPLING_4 0b01100000
  24. #define BMP280_TEMP_OVERSAMPLING_8 0b10000000
  25. #define BMP280_TEMP_OVERSAMPLING_16 0b10100000
  26. //Преддескретизация давления
  27. #define BMP280_PRESS_OVERSAMPLING_SKIP 0b00000000
  28. #define BMP280_PRESS_OVERSAMPLING_1 0b00000100
  29. #define BMP280_PRESS_OVERSAMPLING_2 0b00001000
  30. #define BMP280_PRESS_OVERSAMPLING_4 0b00001100
  31. #define BMP280_PRESS_OVERSAMPLING_8 0b00010000
  32. #define BMP280_PRESS_OVERSAMPLING_16 0b00010100
  33. //Режимы работы датчика
  34. #define BMP280_MODE_SLEEP 0b00000000 //Спит и мало кушает
  35. #define BMP280_MODE_FORCED 0b00000001 //Обновляет значения 1 раз, после чего уходит в сон
  36. #define BMP280_MODE_NORMAL 0b00000011 //Регулярно обновляет значения
  37. //Период обновления в нормальном режиме
  38. #define BMP280_STANDBY_TIME_0_5 0b00000000
  39. #define BMP280_STANDBY_TIME_62_5 0b00100000
  40. #define BMP280_STANDBY_TIME_125 0b01000000
  41. #define BMP280_STANDBY_TIME_250 0b01100000
  42. #define BMP280_STANDBY_TIME_500 0b10000000
  43. #define BMP280_STANDBY_TIME_1000 0b10100000
  44. #define BMP280_STANDBY_TIME_2000 0b11000000
  45. #define BMP280_STANDBY_TIME_4000 0b11100000
  46. //Коэффициент фильтрации значений
  47. #define BMP280_FILTER_COEFF_1 0b00000000
  48. #define BMP280_FILTER_COEFF_2 0b00000100
  49. #define BMP280_FILTER_COEFF_4 0b00001000
  50. #define BMP280_FILTER_COEFF_8 0b00001100
  51. #define BMP280_FILTER_COEFF_16 0b00010000
  52. //Разрешить работу по SPI
  53. #define BMP280_SPI_3W_ENABLE 0b00000001
  54. #define BMP280_SPI_3W_DISABLE 0b00000000
  55. static double bmp280_compensate_T_double(I2CSensor* i2c_sensor, int32_t adc_T) {
  56. BMP280_instance* bmp280_instance = (BMP280_instance*)i2c_sensor->sensorInstance;
  57. double var1, var2, T;
  58. var1 = (((double)adc_T) / (double)16384.0 -
  59. ((double)bmp280_instance->temp_cal.dig_T1) / (double)1024.0) *
  60. ((double)bmp280_instance->temp_cal.dig_T2);
  61. var2 = ((((double)adc_T) / (double)131072.0 -
  62. ((double)bmp280_instance->temp_cal.dig_T1) / (double)8192.0) *
  63. (((double)adc_T) / (double)131072.0 -
  64. ((double)bmp280_instance->temp_cal.dig_T1) / (double)8192.0)) *
  65. ((double)bmp280_instance->temp_cal.dig_T3);
  66. bmp280_instance->t_fine = var1 + var2;
  67. T = (var1 + var2) / (double)5120.0;
  68. return T;
  69. }
  70. static double bmp280_compensate_P_double(I2CSensor* i2c_sensor, int32_t adc_P) {
  71. BMP280_instance* bmp280_instance = (BMP280_instance*)i2c_sensor->sensorInstance;
  72. double var1, var2, p;
  73. var1 = ((double)bmp280_instance->t_fine / (double)2.0) - (double)64000.0;
  74. var2 = var1 * var1 * ((double)bmp280_instance->press_cal.dig_P6) / (double)32768.0;
  75. var2 = var2 + var1 * ((double)bmp280_instance->press_cal.dig_P5) * (double)2.0;
  76. var2 = (var2 / (double)4.0) + (((double)bmp280_instance->press_cal.dig_P4) * (double)65536.0);
  77. var1 = (((double)bmp280_instance->press_cal.dig_P3) * var1 * var1 / (double)524288.0 +
  78. ((double)bmp280_instance->press_cal.dig_P2) * var1) /
  79. (double)524288.0;
  80. var1 = ((double)1.0 + var1 / (double)32768.0) * ((double)bmp280_instance->press_cal.dig_P1);
  81. if(var1 == (double)0.0) {
  82. return 0; // avoid exception caused by division by zero
  83. }
  84. p = (double)1048576.0 - (double)adc_P;
  85. p = (p - (var2 / (double)4096.0)) * (double)6250.0 / var1;
  86. var1 = ((double)bmp280_instance->press_cal.dig_P9) * p * p / (double)2147483648.0;
  87. var2 = p * ((double)bmp280_instance->press_cal.dig_P8) / (double)32768.0;
  88. p = p + (var1 + var2 + ((double)bmp280_instance->press_cal.dig_P7)) / (double)16.0;
  89. return p;
  90. }
  91. static bool bmp280_readCalValues(I2CSensor* i2c_sensor) {
  92. BMP280_instance* bmp280_instance = (BMP280_instance*)i2c_sensor->sensorInstance;
  93. if(!unitemp_i2c_readRegArray(
  94. i2c_sensor, TEMP_CAL_START_ADDR, 6, (uint8_t*)&bmp280_instance->temp_cal))
  95. return false;
  96. FURI_LOG_D(
  97. APP_NAME,
  98. "Sensor BMP280 (0x%02X) calibration values: T1: %d, T2: %d, T3: %d",
  99. i2c_sensor->currentI2CAdr,
  100. bmp280_instance->temp_cal.dig_T1,
  101. bmp280_instance->temp_cal.dig_T2,
  102. bmp280_instance->temp_cal.dig_T3);
  103. if(!unitemp_i2c_readRegArray(
  104. i2c_sensor, PRESS_CAL_START_ADDR, 18, (uint8_t*)&bmp280_instance->press_cal))
  105. return false;
  106. FURI_LOG_D(
  107. APP_NAME,
  108. "Sensor BMP280 (0x%02X): P1-9: %d, %d, %d, %d, %d, %d, %d, %d, %d",
  109. i2c_sensor->currentI2CAdr,
  110. bmp280_instance->press_cal.dig_P1,
  111. bmp280_instance->press_cal.dig_P2,
  112. bmp280_instance->press_cal.dig_P3,
  113. bmp280_instance->press_cal.dig_P4,
  114. bmp280_instance->press_cal.dig_P5,
  115. bmp280_instance->press_cal.dig_P6,
  116. bmp280_instance->press_cal.dig_P7,
  117. bmp280_instance->press_cal.dig_P8,
  118. bmp280_instance->press_cal.dig_P9);
  119. bmp280_instance->last_cal_update_time = furi_get_tick();
  120. return true;
  121. }
  122. static bool bmp280_isMeasuring(Sensor* sensor) {
  123. I2CSensor* i2c_sensor = (I2CSensor*)sensor->instance;
  124. return (bool)((unitemp_i2c_readReg(i2c_sensor, BMP280_REG_STATUS) & 0x08) >> 3);
  125. }
  126. bool unitemp_BMP280_alloc(Sensor* sensor, char* args) {
  127. UNUSED(args);
  128. I2CSensor* i2c_sensor = (I2CSensor*)sensor->instance;
  129. BMP280_instance* bmp280_instance = malloc(sizeof(BMP280_instance));
  130. if(bmp280_instance == NULL) {
  131. FURI_LOG_E(APP_NAME, "Failed to allocation sensor %s instance", sensor->name);
  132. return false;
  133. }
  134. i2c_sensor->sensorInstance = bmp280_instance;
  135. i2c_sensor->minI2CAdr = 0x76;
  136. i2c_sensor->maxI2CAdr = 0x77;
  137. return true;
  138. }
  139. bool unitemp_BMP280_init(Sensor* sensor) {
  140. I2CSensor* i2c_sensor = (I2CSensor*)sensor->instance;
  141. //Перезагрузка
  142. unitemp_i2c_writeReg(i2c_sensor, 0xE0, 0xB6);
  143. //Чтение ID датчика
  144. uint8_t id = unitemp_i2c_readReg(i2c_sensor, 0xD0);
  145. if(id != BMP280_ID) {
  146. FURI_LOG_E(
  147. APP_NAME,
  148. "Sensor %s returned wrong ID 0x%02X, expected 0x%02X",
  149. sensor->name,
  150. id,
  151. BMP280_ID);
  152. return false;
  153. }
  154. //Чтение калибровочных значений
  155. if(!bmp280_readCalValues(i2c_sensor)) {
  156. FURI_LOG_E(APP_NAME, "Failed to read calibration values sensor %s", sensor->name);
  157. return false;
  158. }
  159. //Настройка режимов работы
  160. unitemp_i2c_writeReg(
  161. i2c_sensor,
  162. BMP280_REG_CTRL_MEAS,
  163. BMP280_TEMP_OVERSAMPLING_2 | BMP280_PRESS_OVERSAMPLING_4 | BMP280_MODE_NORMAL);
  164. //Настройка периода опроса и фильтрации значений
  165. unitemp_i2c_writeReg(
  166. i2c_sensor,
  167. BMP280_REG_CONFIG,
  168. BMP280_STANDBY_TIME_500 | BMP280_FILTER_COEFF_16 | BMP280_SPI_3W_DISABLE);
  169. return true;
  170. }
  171. bool unitemp_BMP280_deinit(Sensor* sensor) {
  172. I2CSensor* i2c_sensor = (I2CSensor*)sensor->instance;
  173. //Перевод в сон
  174. unitemp_i2c_writeReg(i2c_sensor, BMP280_REG_CTRL_MEAS, BMP280_MODE_SLEEP);
  175. return true;
  176. }
  177. UnitempStatus unitemp_BMP280_update(Sensor* sensor) {
  178. I2CSensor* i2c_sensor = (I2CSensor*)sensor->instance;
  179. BMP280_instance* instance = i2c_sensor->sensorInstance;
  180. uint32_t t = furi_get_tick();
  181. if(furi_get_tick() - instance->last_cal_update_time > BMP280_CAL_UPDATE_INTERVAL) {
  182. bmp280_readCalValues(i2c_sensor);
  183. }
  184. while(bmp280_isMeasuring(sensor)) {
  185. if(furi_get_tick() - t > 100) {
  186. return UT_TIMEOUT;
  187. }
  188. }
  189. uint8_t buff[3];
  190. if(!unitemp_i2c_readRegArray(i2c_sensor, 0xFA, 3, buff)) return UT_TIMEOUT;
  191. int32_t adc_T = ((int32_t)buff[0] << 12) | ((int32_t)buff[1] << 4) | ((int32_t)buff[2] >> 4);
  192. if(!unitemp_i2c_readRegArray(i2c_sensor, 0xF7, 3, buff)) return UT_TIMEOUT;
  193. int32_t adc_P = ((int32_t)buff[0] << 12) | ((int32_t)buff[1] << 4) | ((int32_t)buff[2] >> 4);
  194. sensor->temp = bmp280_compensate_T_double(i2c_sensor, adc_T);
  195. sensor->pressure = bmp280_compensate_P_double(i2c_sensor, adc_P);
  196. FURI_LOG_D(APP_NAME, "pressure: %d pa ", (int)sensor->pressure);
  197. return UT_OK;
  198. }
  199. bool unitemp_BMP280_free(Sensor* sensor) {
  200. I2CSensor* i2c_sensor = (I2CSensor*)sensor->instance;
  201. free(i2c_sensor->sensorInstance);
  202. return true;
  203. }