sensor_cmd.c 15 KB

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  1. /*
  2. * Copyright (c) 2006-2021, RT-Thread Development Team
  3. *
  4. * SPDX-License-Identifier: Apache-2.0
  5. *
  6. * Change Logs:
  7. * Date Author Notes
  8. * 2019-01-31 flybreak first version
  9. * 2019-07-16 WillianChan Increase the output of sensor information
  10. * 2020-02-22 luhuadong Add vendor info and sensor types for cmd
  11. */
  12. #include "sensor.h"
  13. #define DBG_TAG "sensor.cmd"
  14. #define DBG_LVL DBG_INFO
  15. #include <rtdbg.h>
  16. #include <stdlib.h>
  17. #include <string.h>
  18. static rt_sem_t sensor_rx_sem = RT_NULL;
  19. static void sensor_show_data(rt_size_t num, rt_sensor_t sensor, struct rt_sensor_data *sensor_data)
  20. {
  21. switch (sensor->info.type)
  22. {
  23. case RT_SENSOR_CLASS_ACCE:
  24. LOG_I("num:%3d, x:%5d, y:%5d, z:%5d mg, timestamp:%5d", num, sensor_data->data.acce.x, sensor_data->data.acce.y, sensor_data->data.acce.z, sensor_data->timestamp);
  25. break;
  26. case RT_SENSOR_CLASS_GYRO:
  27. LOG_I("num:%3d, x:%8d, y:%8d, z:%8d dps, timestamp:%5d", num, sensor_data->data.gyro.x / 1000, sensor_data->data.gyro.y / 1000, sensor_data->data.gyro.z / 1000, sensor_data->timestamp);
  28. break;
  29. case RT_SENSOR_CLASS_MAG:
  30. LOG_I("num:%3d, x:%5d, y:%5d, z:%5d mGauss, timestamp:%5d", num, sensor_data->data.mag.x, sensor_data->data.mag.y, sensor_data->data.mag.z, sensor_data->timestamp);
  31. break;
  32. case RT_SENSOR_CLASS_GNSS:
  33. LOG_I("num:%3d, lon:%5d, lat:%5d, timestamp:%5d", num, sensor_data->data.coord.longitude, sensor_data->data.coord.latitude, sensor_data->timestamp);
  34. break;
  35. case RT_SENSOR_CLASS_TEMP:
  36. LOG_I("num:%3d, temp:%3d.%d C, timestamp:%5d", num, sensor_data->data.temp / 10, (rt_uint32_t)sensor_data->data.temp % 10, sensor_data->timestamp);
  37. break;
  38. case RT_SENSOR_CLASS_HUMI:
  39. LOG_I("num:%3d, humi:%3d.%d%%, timestamp:%5d", num, sensor_data->data.humi / 10, sensor_data->data.humi % 10, sensor_data->timestamp);
  40. break;
  41. case RT_SENSOR_CLASS_BARO:
  42. LOG_I("num:%3d, press:%5d pa, timestamp:%5d", num, sensor_data->data.baro, sensor_data->timestamp);
  43. break;
  44. case RT_SENSOR_CLASS_LIGHT:
  45. LOG_I("num:%3d, light:%5d lux, timestamp:%5d", num, sensor_data->data.light, sensor_data->timestamp);
  46. break;
  47. case RT_SENSOR_CLASS_PROXIMITY:
  48. case RT_SENSOR_CLASS_TOF:
  49. LOG_I("num:%3d, distance:%5d, timestamp:%5d", num, sensor_data->data.proximity, sensor_data->timestamp);
  50. break;
  51. case RT_SENSOR_CLASS_HR:
  52. LOG_I("num:%3d, heart rate:%5d bpm, timestamp:%5d", num, sensor_data->data.hr, sensor_data->timestamp);
  53. break;
  54. case RT_SENSOR_CLASS_TVOC:
  55. LOG_I("num:%3d, tvoc:%5d ppb, timestamp:%5d", num, sensor_data->data.tvoc, sensor_data->timestamp);
  56. break;
  57. case RT_SENSOR_CLASS_NOISE:
  58. LOG_I("num:%3d, noise:%5d, timestamp:%5d", num, sensor_data->data.noise, sensor_data->timestamp);
  59. break;
  60. case RT_SENSOR_CLASS_STEP:
  61. LOG_I("num:%3d, step:%5d, timestamp:%5d", num, sensor_data->data.step, sensor_data->timestamp);
  62. break;
  63. case RT_SENSOR_CLASS_FORCE:
  64. LOG_I("num:%3d, force:%5d, timestamp:%5d", num, sensor_data->data.force, sensor_data->timestamp);
  65. break;
  66. case RT_SENSOR_CLASS_DUST:
  67. LOG_I("num:%3d, dust:%5d ug/m3, timestamp:%5d", num, sensor_data->data.dust, sensor_data->timestamp);
  68. break;
  69. case RT_SENSOR_CLASS_ECO2:
  70. LOG_I("num:%3d, eco2:%5d ppm, timestamp:%5d", num, sensor_data->data.eco2, sensor_data->timestamp);
  71. break;
  72. case RT_SENSOR_CLASS_IAQ:
  73. LOG_I("num:%3d, IAQ:%5d.%d , timestamp:%5d", num, sensor_data->data.iaq / 10, sensor_data->data.iaq % 10, sensor_data->timestamp);
  74. break;
  75. case RT_SENSOR_CLASS_ETOH:
  76. LOG_I("num:%3d, EtOH:%5d.%03d ppm, timestamp:%5d", num, sensor_data->data.etoh / 1000, sensor_data->data.etoh % 1000, sensor_data->timestamp);
  77. break;
  78. default:
  79. break;
  80. }
  81. }
  82. static rt_err_t rx_callback(rt_device_t dev, rt_size_t size)
  83. {
  84. rt_sem_release(sensor_rx_sem);
  85. return 0;
  86. }
  87. static void sensor_fifo_rx_entry(void *parameter)
  88. {
  89. rt_device_t dev = (rt_device_t)parameter;
  90. rt_sensor_t sensor = (rt_sensor_t)parameter;
  91. struct rt_sensor_data *data = RT_NULL;
  92. struct rt_sensor_info info;
  93. rt_size_t res, i;
  94. rt_device_control(dev, RT_SENSOR_CTRL_GET_INFO, &info);
  95. data = (struct rt_sensor_data *)rt_malloc(sizeof(struct rt_sensor_data) * info.fifo_max);
  96. if (data == RT_NULL)
  97. {
  98. LOG_E("Memory allocation failed!");
  99. }
  100. while (1)
  101. {
  102. rt_sem_take(sensor_rx_sem, RT_WAITING_FOREVER);
  103. res = rt_device_read(dev, 0, data, info.fifo_max);
  104. for (i = 0; i < res; i++)
  105. {
  106. sensor_show_data(i, sensor, &data[i]);
  107. }
  108. }
  109. }
  110. static void sensor_fifo(int argc, char **argv)
  111. {
  112. static rt_thread_t tid1 = RT_NULL;
  113. rt_device_t dev = RT_NULL;
  114. rt_sensor_t sensor;
  115. dev = rt_device_find(argv[1]);
  116. if (dev == RT_NULL)
  117. {
  118. LOG_E("Can't find device:%s", argv[1]);
  119. return;
  120. }
  121. sensor = (rt_sensor_t)dev;
  122. if (rt_device_open(dev, RT_DEVICE_FLAG_FIFO_RX) != RT_EOK)
  123. {
  124. LOG_E("open device failed!");
  125. return;
  126. }
  127. if (sensor_rx_sem == RT_NULL)
  128. {
  129. sensor_rx_sem = rt_sem_create("sen_rx_sem", 0, RT_IPC_FLAG_FIFO);
  130. }
  131. else
  132. {
  133. LOG_E("The thread is running, please reboot and try again");
  134. return;
  135. }
  136. tid1 = rt_thread_create("sen_rx_thread",
  137. sensor_fifo_rx_entry, sensor,
  138. 1024,
  139. 15, 5);
  140. if (tid1 != RT_NULL)
  141. rt_thread_startup(tid1);
  142. rt_device_set_rx_indicate(dev, rx_callback);
  143. rt_device_control(dev, RT_SENSOR_CTRL_SET_ODR, (void *)20);
  144. }
  145. #ifdef RT_USING_FINSH
  146. MSH_CMD_EXPORT(sensor_fifo, Sensor fifo mode test function);
  147. #endif
  148. static void sensor_irq_rx_entry(void *parameter)
  149. {
  150. rt_device_t dev = (rt_device_t)parameter;
  151. rt_sensor_t sensor = (rt_sensor_t)parameter;
  152. struct rt_sensor_data data;
  153. rt_size_t res, i = 0;
  154. while (1)
  155. {
  156. rt_sem_take(sensor_rx_sem, RT_WAITING_FOREVER);
  157. res = rt_device_read(dev, 0, &data, 1);
  158. if (res == 1)
  159. {
  160. sensor_show_data(i++, sensor, &data);
  161. }
  162. }
  163. }
  164. static void sensor_int(int argc, char **argv)
  165. {
  166. static rt_thread_t tid1 = RT_NULL;
  167. rt_device_t dev = RT_NULL;
  168. rt_sensor_t sensor;
  169. dev = rt_device_find(argv[1]);
  170. if (dev == RT_NULL)
  171. {
  172. LOG_E("Can't find device:%s", argv[1]);
  173. return;
  174. }
  175. sensor = (rt_sensor_t)dev;
  176. if (sensor_rx_sem == RT_NULL)
  177. {
  178. sensor_rx_sem = rt_sem_create("sen_rx_sem", 0, RT_IPC_FLAG_FIFO);
  179. }
  180. else
  181. {
  182. LOG_E("The thread is running, please reboot and try again");
  183. return;
  184. }
  185. tid1 = rt_thread_create("sen_rx_thread",
  186. sensor_irq_rx_entry, sensor,
  187. 1024,
  188. 15, 5);
  189. if (tid1 != RT_NULL)
  190. rt_thread_startup(tid1);
  191. rt_device_set_rx_indicate(dev, rx_callback);
  192. if (rt_device_open(dev, RT_DEVICE_FLAG_INT_RX) != RT_EOK)
  193. {
  194. LOG_E("open device failed!");
  195. return;
  196. }
  197. rt_device_control(dev, RT_SENSOR_CTRL_SET_ODR, (void *)20);
  198. }
  199. #ifdef RT_USING_FINSH
  200. MSH_CMD_EXPORT(sensor_int, Sensor interrupt mode test function);
  201. #endif
  202. static void sensor_polling(int argc, char **argv)
  203. {
  204. rt_uint16_t num = 10;
  205. rt_device_t dev = RT_NULL;
  206. rt_sensor_t sensor;
  207. struct rt_sensor_data data;
  208. rt_size_t res, i;
  209. rt_int32_t delay;
  210. rt_err_t result;
  211. dev = rt_device_find(argv[1]);
  212. if (dev == RT_NULL)
  213. {
  214. LOG_E("Can't find device:%s", argv[1]);
  215. return;
  216. }
  217. if (argc > 2)
  218. num = atoi(argv[2]);
  219. sensor = (rt_sensor_t)dev;
  220. delay = sensor->info.period_min > 100 ? sensor->info.period_min : 100;
  221. result = rt_device_open(dev, RT_DEVICE_FLAG_RDONLY);
  222. if (result != RT_EOK)
  223. {
  224. LOG_E("open device failed! error code : %d", result);
  225. return;
  226. }
  227. rt_device_control(dev, RT_SENSOR_CTRL_SET_ODR, (void *)100);
  228. for (i = 0; i < num; i++)
  229. {
  230. res = rt_device_read(dev, 0, &data, 1);
  231. if (res != 1)
  232. {
  233. LOG_E("read data failed!size is %d", res);
  234. }
  235. else
  236. {
  237. sensor_show_data(i, sensor, &data);
  238. }
  239. rt_thread_mdelay(delay);
  240. }
  241. rt_device_close(dev);
  242. }
  243. #ifdef RT_USING_FINSH
  244. MSH_CMD_EXPORT(sensor_polling, Sensor polling mode test function);
  245. #endif
  246. static void sensor(int argc, char **argv)
  247. {
  248. static rt_device_t dev = RT_NULL;
  249. struct rt_sensor_data data;
  250. rt_sensor_t sensor;
  251. rt_size_t res, i;
  252. rt_int32_t delay;
  253. /* If the number of arguments less than 2 */
  254. if (argc < 2)
  255. {
  256. rt_kprintf("\n");
  257. rt_kprintf("sensor [OPTION] [PARAM]\n");
  258. rt_kprintf(" probe <dev_name> Probe sensor by given name\n");
  259. rt_kprintf(" info Get sensor info\n");
  260. rt_kprintf(" sr <var> Set range to var\n");
  261. rt_kprintf(" sm <var> Set work mode to var\n");
  262. rt_kprintf(" sp <var> Set power mode to var\n");
  263. rt_kprintf(" sodr <var> Set output date rate to var\n");
  264. rt_kprintf(" read [num] Read [num] times sensor\n");
  265. rt_kprintf(" num default 5\n");
  266. return ;
  267. }
  268. else if (!strcmp(argv[1], "info"))
  269. {
  270. struct rt_sensor_info info;
  271. if (dev == RT_NULL)
  272. {
  273. LOG_W("Please probe sensor device first!");
  274. return ;
  275. }
  276. rt_device_control(dev, RT_SENSOR_CTRL_GET_INFO, &info);
  277. switch (info.vendor)
  278. {
  279. case RT_SENSOR_VENDOR_UNKNOWN:
  280. rt_kprintf("vendor :unknown vendor\n");
  281. break;
  282. case RT_SENSOR_VENDOR_STM:
  283. rt_kprintf("vendor :STMicroelectronics\n");
  284. break;
  285. case RT_SENSOR_VENDOR_BOSCH:
  286. rt_kprintf("vendor :Bosch\n");
  287. break;
  288. case RT_SENSOR_VENDOR_INVENSENSE:
  289. rt_kprintf("vendor :Invensense\n");
  290. break;
  291. case RT_SENSOR_VENDOR_SEMTECH:
  292. rt_kprintf("vendor :Semtech\n");
  293. break;
  294. case RT_SENSOR_VENDOR_GOERTEK:
  295. rt_kprintf("vendor :Goertek\n");
  296. break;
  297. case RT_SENSOR_VENDOR_MIRAMEMS:
  298. rt_kprintf("vendor :MiraMEMS\n");
  299. break;
  300. case RT_SENSOR_VENDOR_DALLAS:
  301. rt_kprintf("vendor :Dallas\n");
  302. break;
  303. case RT_SENSOR_VENDOR_ASAIR:
  304. rt_kprintf("vendor :Asair\n");
  305. break;
  306. case RT_SENSOR_VENDOR_SHARP:
  307. rt_kprintf("vendor :Sharp\n");
  308. break;
  309. case RT_SENSOR_VENDOR_SENSIRION:
  310. rt_kprintf("vendor :Sensirion\n");
  311. break;
  312. case RT_SENSOR_VENDOR_TI:
  313. rt_kprintf("vendor :Texas Instruments\n");
  314. break;
  315. case RT_SENSOR_VENDOR_PLANTOWER:
  316. rt_kprintf("vendor :Plantower\n");
  317. break;
  318. case RT_SENSOR_VENDOR_AMS:
  319. rt_kprintf("vendor :AMS\n");
  320. break;
  321. case RT_SENSOR_VENDOR_MAXIM:
  322. rt_kprintf("vendor :Maxim Integrated\n");
  323. break;
  324. }
  325. rt_kprintf("model :%s\n", info.model);
  326. switch (info.unit)
  327. {
  328. case RT_SENSOR_UNIT_NONE:
  329. rt_kprintf("unit :none\n");
  330. break;
  331. case RT_SENSOR_UNIT_MG:
  332. rt_kprintf("unit :mG\n");
  333. break;
  334. case RT_SENSOR_UNIT_MDPS:
  335. rt_kprintf("unit :mdps\n");
  336. break;
  337. case RT_SENSOR_UNIT_MGAUSS:
  338. rt_kprintf("unit :mGauss\n");
  339. break;
  340. case RT_SENSOR_UNIT_LUX:
  341. rt_kprintf("unit :lux\n");
  342. break;
  343. case RT_SENSOR_UNIT_CM:
  344. rt_kprintf("unit :cm\n");
  345. break;
  346. case RT_SENSOR_UNIT_PA:
  347. rt_kprintf("unit :pa\n");
  348. break;
  349. case RT_SENSOR_UNIT_PERMILLAGE:
  350. rt_kprintf("unit :permillage\n");
  351. break;
  352. case RT_SENSOR_UNIT_DCELSIUS:
  353. rt_kprintf("unit :Celsius\n");
  354. break;
  355. case RT_SENSOR_UNIT_HZ:
  356. rt_kprintf("unit :HZ\n");
  357. break;
  358. case RT_SENSOR_UNIT_ONE:
  359. rt_kprintf("unit :1\n");
  360. break;
  361. case RT_SENSOR_UNIT_BPM:
  362. rt_kprintf("unit :bpm\n");
  363. break;
  364. case RT_SENSOR_UNIT_MM:
  365. rt_kprintf("unit :mm\n");
  366. break;
  367. case RT_SENSOR_UNIT_MN:
  368. rt_kprintf("unit :mN\n");
  369. break;
  370. case RT_SENSOR_UNIT_PPM:
  371. rt_kprintf("unit :ppm\n");
  372. break;
  373. case RT_SENSOR_UNIT_PPB:
  374. rt_kprintf("unit :ppb\n");
  375. break;
  376. }
  377. rt_kprintf("range_max :%d\n", info.range_max);
  378. rt_kprintf("range_min :%d\n", info.range_min);
  379. rt_kprintf("period_min:%dms\n", info.period_min);
  380. rt_kprintf("fifo_max :%d\n", info.fifo_max);
  381. }
  382. else if (!strcmp(argv[1], "read"))
  383. {
  384. rt_uint16_t num = 5;
  385. if (dev == RT_NULL)
  386. {
  387. LOG_W("Please probe sensor device first!");
  388. return ;
  389. }
  390. if (argc == 3)
  391. {
  392. num = atoi(argv[2]);
  393. }
  394. sensor = (rt_sensor_t)dev;
  395. delay = sensor->info.period_min > 100 ? sensor->info.period_min : 100;
  396. for (i = 0; i < num; i++)
  397. {
  398. res = rt_device_read(dev, 0, &data, 1);
  399. if (res != 1)
  400. {
  401. LOG_E("read data failed!size is %d", res);
  402. }
  403. else
  404. {
  405. sensor_show_data(i, sensor, &data);
  406. }
  407. rt_thread_mdelay(delay);
  408. }
  409. }
  410. else if (argc == 3)
  411. {
  412. if (!strcmp(argv[1], "probe"))
  413. {
  414. rt_uint8_t reg = 0xFF;
  415. if (dev)
  416. {
  417. rt_device_close(dev);
  418. }
  419. dev = rt_device_find(argv[2]);
  420. if (dev == RT_NULL)
  421. {
  422. LOG_E("Can't find device:%s", argv[2]);
  423. return;
  424. }
  425. if (rt_device_open(dev, RT_DEVICE_FLAG_RDWR) != RT_EOK)
  426. {
  427. LOG_E("open device failed!");
  428. return;
  429. }
  430. rt_device_control(dev, RT_SENSOR_CTRL_GET_ID, &reg);
  431. LOG_I("device id: 0x%x!", reg);
  432. }
  433. else if (dev == RT_NULL)
  434. {
  435. LOG_W("Please probe sensor first!");
  436. return ;
  437. }
  438. else if (!strcmp(argv[1], "sr"))
  439. {
  440. rt_device_control(dev, RT_SENSOR_CTRL_SET_RANGE, (void *)atoi(argv[2]));
  441. }
  442. else if (!strcmp(argv[1], "sm"))
  443. {
  444. rt_device_control(dev, RT_SENSOR_CTRL_SET_MODE, (void *)atoi(argv[2]));
  445. }
  446. else if (!strcmp(argv[1], "sp"))
  447. {
  448. rt_device_control(dev, RT_SENSOR_CTRL_SET_POWER, (void *)atoi(argv[2]));
  449. }
  450. else if (!strcmp(argv[1], "sodr"))
  451. {
  452. rt_device_control(dev, RT_SENSOR_CTRL_SET_ODR, (void *)atoi(argv[2]));
  453. }
  454. else
  455. {
  456. LOG_W("Unknown command, please enter 'sensor' get help information!");
  457. }
  458. }
  459. else
  460. {
  461. LOG_W("Unknown command, please enter 'sensor' get help information!");
  462. }
  463. }
  464. #ifdef RT_USING_FINSH
  465. MSH_CMD_EXPORT(sensor, sensor test function);
  466. #endif