st_magn_core.c 12 KB

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  1. /*
  2. * STMicroelectronics magnetometers driver
  3. *
  4. * Copyright 2012-2013 STMicroelectronics Inc.
  5. *
  6. * Denis Ciocca <denis.ciocca@st.com>
  7. *
  8. * Licensed under the GPL-2.
  9. */
  10. #include <linux/kernel.h>
  11. #include <linux/module.h>
  12. #include <linux/slab.h>
  13. #include <linux/errno.h>
  14. #include <linux/types.h>
  15. #include <linux/mutex.h>
  16. #include <linux/interrupt.h>
  17. #include <linux/i2c.h>
  18. #include <linux/gpio.h>
  19. #include <linux/irq.h>
  20. #include <linux/delay.h>
  21. #include <linux/iio/iio.h>
  22. #include <linux/iio/sysfs.h>
  23. #include <linux/iio/buffer.h>
  24. #include <linux/iio/common/st_sensors.h>
  25. #include "st_magn.h"
  26. /* DEFAULT VALUE FOR SENSORS */
  27. #define ST_MAGN_DEFAULT_OUT_X_L_ADDR 0X04
  28. #define ST_MAGN_DEFAULT_OUT_Y_L_ADDR 0X08
  29. #define ST_MAGN_DEFAULT_OUT_Z_L_ADDR 0X06
  30. /* FULLSCALE */
  31. #define ST_MAGN_FS_AVL_1300MG 1300
  32. #define ST_MAGN_FS_AVL_1900MG 1900
  33. #define ST_MAGN_FS_AVL_2500MG 2500
  34. #define ST_MAGN_FS_AVL_4000MG 4000
  35. #define ST_MAGN_FS_AVL_4700MG 4700
  36. #define ST_MAGN_FS_AVL_5600MG 5600
  37. #define ST_MAGN_FS_AVL_8000MG 8000
  38. #define ST_MAGN_FS_AVL_8100MG 8100
  39. #define ST_MAGN_FS_AVL_10000MG 10000
  40. /* CUSTOM VALUES FOR SENSOR 1 */
  41. #define ST_MAGN_1_WAI_EXP 0x3c
  42. #define ST_MAGN_1_ODR_ADDR 0x00
  43. #define ST_MAGN_1_ODR_MASK 0x1c
  44. #define ST_MAGN_1_ODR_AVL_1HZ_VAL 0x00
  45. #define ST_MAGN_1_ODR_AVL_2HZ_VAL 0x01
  46. #define ST_MAGN_1_ODR_AVL_3HZ_VAL 0x02
  47. #define ST_MAGN_1_ODR_AVL_8HZ_VAL 0x03
  48. #define ST_MAGN_1_ODR_AVL_15HZ_VAL 0x04
  49. #define ST_MAGN_1_ODR_AVL_30HZ_VAL 0x05
  50. #define ST_MAGN_1_ODR_AVL_75HZ_VAL 0x06
  51. #define ST_MAGN_1_ODR_AVL_220HZ_VAL 0x07
  52. #define ST_MAGN_1_PW_ADDR 0x02
  53. #define ST_MAGN_1_PW_MASK 0x03
  54. #define ST_MAGN_1_PW_ON 0x00
  55. #define ST_MAGN_1_PW_OFF 0x03
  56. #define ST_MAGN_1_FS_ADDR 0x01
  57. #define ST_MAGN_1_FS_MASK 0xe0
  58. #define ST_MAGN_1_FS_AVL_1300_VAL 0x01
  59. #define ST_MAGN_1_FS_AVL_1900_VAL 0x02
  60. #define ST_MAGN_1_FS_AVL_2500_VAL 0x03
  61. #define ST_MAGN_1_FS_AVL_4000_VAL 0x04
  62. #define ST_MAGN_1_FS_AVL_4700_VAL 0x05
  63. #define ST_MAGN_1_FS_AVL_5600_VAL 0x06
  64. #define ST_MAGN_1_FS_AVL_8100_VAL 0x07
  65. #define ST_MAGN_1_FS_AVL_1300_GAIN_XY 1100
  66. #define ST_MAGN_1_FS_AVL_1900_GAIN_XY 855
  67. #define ST_MAGN_1_FS_AVL_2500_GAIN_XY 670
  68. #define ST_MAGN_1_FS_AVL_4000_GAIN_XY 450
  69. #define ST_MAGN_1_FS_AVL_4700_GAIN_XY 400
  70. #define ST_MAGN_1_FS_AVL_5600_GAIN_XY 330
  71. #define ST_MAGN_1_FS_AVL_8100_GAIN_XY 230
  72. #define ST_MAGN_1_FS_AVL_1300_GAIN_Z 980
  73. #define ST_MAGN_1_FS_AVL_1900_GAIN_Z 760
  74. #define ST_MAGN_1_FS_AVL_2500_GAIN_Z 600
  75. #define ST_MAGN_1_FS_AVL_4000_GAIN_Z 400
  76. #define ST_MAGN_1_FS_AVL_4700_GAIN_Z 355
  77. #define ST_MAGN_1_FS_AVL_5600_GAIN_Z 295
  78. #define ST_MAGN_1_FS_AVL_8100_GAIN_Z 205
  79. #define ST_MAGN_1_MULTIREAD_BIT false
  80. /* CUSTOM VALUES FOR SENSOR 2 */
  81. #define ST_MAGN_2_WAI_EXP 0x3d
  82. #define ST_MAGN_2_ODR_ADDR 0x20
  83. #define ST_MAGN_2_ODR_MASK 0x1c
  84. #define ST_MAGN_2_ODR_AVL_1HZ_VAL 0x00
  85. #define ST_MAGN_2_ODR_AVL_2HZ_VAL 0x01
  86. #define ST_MAGN_2_ODR_AVL_3HZ_VAL 0x02
  87. #define ST_MAGN_2_ODR_AVL_5HZ_VAL 0x03
  88. #define ST_MAGN_2_ODR_AVL_10HZ_VAL 0x04
  89. #define ST_MAGN_2_ODR_AVL_20HZ_VAL 0x05
  90. #define ST_MAGN_2_ODR_AVL_40HZ_VAL 0x06
  91. #define ST_MAGN_2_ODR_AVL_80HZ_VAL 0x07
  92. #define ST_MAGN_2_PW_ADDR 0x22
  93. #define ST_MAGN_2_PW_MASK 0x03
  94. #define ST_MAGN_2_PW_ON 0x00
  95. #define ST_MAGN_2_PW_OFF 0x03
  96. #define ST_MAGN_2_FS_ADDR 0x21
  97. #define ST_MAGN_2_FS_MASK 0x60
  98. #define ST_MAGN_2_FS_AVL_4000_VAL 0x00
  99. #define ST_MAGN_2_FS_AVL_8000_VAL 0x01
  100. #define ST_MAGN_2_FS_AVL_10000_VAL 0x02
  101. #define ST_MAGN_2_FS_AVL_4000_GAIN 430
  102. #define ST_MAGN_2_FS_AVL_8000_GAIN 230
  103. #define ST_MAGN_2_FS_AVL_10000_GAIN 230
  104. #define ST_MAGN_2_MULTIREAD_BIT false
  105. #define ST_MAGN_2_OUT_X_L_ADDR 0x28
  106. #define ST_MAGN_2_OUT_Y_L_ADDR 0x2a
  107. #define ST_MAGN_2_OUT_Z_L_ADDR 0x2c
  108. static const struct iio_chan_spec st_magn_16bit_channels[] = {
  109. ST_SENSORS_LSM_CHANNELS(IIO_MAGN, ST_SENSORS_SCAN_X, IIO_MOD_X, IIO_LE,
  110. ST_SENSORS_DEFAULT_16_REALBITS, ST_MAGN_DEFAULT_OUT_X_L_ADDR),
  111. ST_SENSORS_LSM_CHANNELS(IIO_MAGN, ST_SENSORS_SCAN_Y, IIO_MOD_Y, IIO_LE,
  112. ST_SENSORS_DEFAULT_16_REALBITS, ST_MAGN_DEFAULT_OUT_Y_L_ADDR),
  113. ST_SENSORS_LSM_CHANNELS(IIO_MAGN, ST_SENSORS_SCAN_Z, IIO_MOD_Z, IIO_LE,
  114. ST_SENSORS_DEFAULT_16_REALBITS, ST_MAGN_DEFAULT_OUT_Z_L_ADDR),
  115. IIO_CHAN_SOFT_TIMESTAMP(3)
  116. };
  117. static const struct iio_chan_spec st_magn_2_16bit_channels[] = {
  118. ST_SENSORS_LSM_CHANNELS(IIO_MAGN, ST_SENSORS_SCAN_X, IIO_MOD_X, IIO_LE,
  119. ST_SENSORS_DEFAULT_16_REALBITS, ST_MAGN_2_OUT_X_L_ADDR),
  120. ST_SENSORS_LSM_CHANNELS(IIO_MAGN, ST_SENSORS_SCAN_Y, IIO_MOD_Y, IIO_LE,
  121. ST_SENSORS_DEFAULT_16_REALBITS, ST_MAGN_2_OUT_Y_L_ADDR),
  122. ST_SENSORS_LSM_CHANNELS(IIO_MAGN, ST_SENSORS_SCAN_Z, IIO_MOD_Z, IIO_LE,
  123. ST_SENSORS_DEFAULT_16_REALBITS, ST_MAGN_2_OUT_Z_L_ADDR),
  124. IIO_CHAN_SOFT_TIMESTAMP(3)
  125. };
  126. static const struct st_sensors st_magn_sensors[] = {
  127. {
  128. .wai = ST_MAGN_1_WAI_EXP,
  129. .sensors_supported = {
  130. [0] = LSM303DLHC_MAGN_DEV_NAME,
  131. [1] = LSM303DLM_MAGN_DEV_NAME,
  132. },
  133. .ch = (struct iio_chan_spec *)st_magn_16bit_channels,
  134. .odr = {
  135. .addr = ST_MAGN_1_ODR_ADDR,
  136. .mask = ST_MAGN_1_ODR_MASK,
  137. .odr_avl = {
  138. { 1, ST_MAGN_1_ODR_AVL_1HZ_VAL, },
  139. { 2, ST_MAGN_1_ODR_AVL_2HZ_VAL, },
  140. { 3, ST_MAGN_1_ODR_AVL_3HZ_VAL, },
  141. { 8, ST_MAGN_1_ODR_AVL_8HZ_VAL, },
  142. { 15, ST_MAGN_1_ODR_AVL_15HZ_VAL, },
  143. { 30, ST_MAGN_1_ODR_AVL_30HZ_VAL, },
  144. { 75, ST_MAGN_1_ODR_AVL_75HZ_VAL, },
  145. { 220, ST_MAGN_1_ODR_AVL_220HZ_VAL, },
  146. },
  147. },
  148. .pw = {
  149. .addr = ST_MAGN_1_PW_ADDR,
  150. .mask = ST_MAGN_1_PW_MASK,
  151. .value_on = ST_MAGN_1_PW_ON,
  152. .value_off = ST_MAGN_1_PW_OFF,
  153. },
  154. .fs = {
  155. .addr = ST_MAGN_1_FS_ADDR,
  156. .mask = ST_MAGN_1_FS_MASK,
  157. .fs_avl = {
  158. [0] = {
  159. .num = ST_MAGN_FS_AVL_1300MG,
  160. .value = ST_MAGN_1_FS_AVL_1300_VAL,
  161. .gain = ST_MAGN_1_FS_AVL_1300_GAIN_XY,
  162. .gain2 = ST_MAGN_1_FS_AVL_1300_GAIN_Z,
  163. },
  164. [1] = {
  165. .num = ST_MAGN_FS_AVL_1900MG,
  166. .value = ST_MAGN_1_FS_AVL_1900_VAL,
  167. .gain = ST_MAGN_1_FS_AVL_1900_GAIN_XY,
  168. .gain2 = ST_MAGN_1_FS_AVL_1900_GAIN_Z,
  169. },
  170. [2] = {
  171. .num = ST_MAGN_FS_AVL_2500MG,
  172. .value = ST_MAGN_1_FS_AVL_2500_VAL,
  173. .gain = ST_MAGN_1_FS_AVL_2500_GAIN_XY,
  174. .gain2 = ST_MAGN_1_FS_AVL_2500_GAIN_Z,
  175. },
  176. [3] = {
  177. .num = ST_MAGN_FS_AVL_4000MG,
  178. .value = ST_MAGN_1_FS_AVL_4000_VAL,
  179. .gain = ST_MAGN_1_FS_AVL_4000_GAIN_XY,
  180. .gain2 = ST_MAGN_1_FS_AVL_4000_GAIN_Z,
  181. },
  182. [4] = {
  183. .num = ST_MAGN_FS_AVL_4700MG,
  184. .value = ST_MAGN_1_FS_AVL_4700_VAL,
  185. .gain = ST_MAGN_1_FS_AVL_4700_GAIN_XY,
  186. .gain2 = ST_MAGN_1_FS_AVL_4700_GAIN_Z,
  187. },
  188. [5] = {
  189. .num = ST_MAGN_FS_AVL_5600MG,
  190. .value = ST_MAGN_1_FS_AVL_5600_VAL,
  191. .gain = ST_MAGN_1_FS_AVL_5600_GAIN_XY,
  192. .gain2 = ST_MAGN_1_FS_AVL_5600_GAIN_Z,
  193. },
  194. [6] = {
  195. .num = ST_MAGN_FS_AVL_8100MG,
  196. .value = ST_MAGN_1_FS_AVL_8100_VAL,
  197. .gain = ST_MAGN_1_FS_AVL_8100_GAIN_XY,
  198. .gain2 = ST_MAGN_1_FS_AVL_8100_GAIN_Z,
  199. },
  200. },
  201. },
  202. .multi_read_bit = ST_MAGN_1_MULTIREAD_BIT,
  203. .bootime = 2,
  204. },
  205. {
  206. .wai = ST_MAGN_2_WAI_EXP,
  207. .sensors_supported = {
  208. [0] = LIS3MDL_MAGN_DEV_NAME,
  209. },
  210. .ch = (struct iio_chan_spec *)st_magn_2_16bit_channels,
  211. .odr = {
  212. .addr = ST_MAGN_2_ODR_ADDR,
  213. .mask = ST_MAGN_2_ODR_MASK,
  214. .odr_avl = {
  215. { 1, ST_MAGN_2_ODR_AVL_1HZ_VAL, },
  216. { 2, ST_MAGN_2_ODR_AVL_2HZ_VAL, },
  217. { 3, ST_MAGN_2_ODR_AVL_3HZ_VAL, },
  218. { 5, ST_MAGN_2_ODR_AVL_5HZ_VAL, },
  219. { 10, ST_MAGN_2_ODR_AVL_10HZ_VAL, },
  220. { 20, ST_MAGN_2_ODR_AVL_20HZ_VAL, },
  221. { 40, ST_MAGN_2_ODR_AVL_40HZ_VAL, },
  222. { 80, ST_MAGN_2_ODR_AVL_80HZ_VAL, },
  223. },
  224. },
  225. .pw = {
  226. .addr = ST_MAGN_2_PW_ADDR,
  227. .mask = ST_MAGN_2_PW_MASK,
  228. .value_on = ST_MAGN_2_PW_ON,
  229. .value_off = ST_MAGN_2_PW_OFF,
  230. },
  231. .fs = {
  232. .addr = ST_MAGN_2_FS_ADDR,
  233. .mask = ST_MAGN_2_FS_MASK,
  234. .fs_avl = {
  235. [0] = {
  236. .num = ST_MAGN_FS_AVL_4000MG,
  237. .value = ST_MAGN_2_FS_AVL_4000_VAL,
  238. .gain = ST_MAGN_2_FS_AVL_4000_GAIN,
  239. },
  240. [1] = {
  241. .num = ST_MAGN_FS_AVL_8000MG,
  242. .value = ST_MAGN_2_FS_AVL_8000_VAL,
  243. .gain = ST_MAGN_2_FS_AVL_8000_GAIN,
  244. },
  245. [2] = {
  246. .num = ST_MAGN_FS_AVL_10000MG,
  247. .value = ST_MAGN_2_FS_AVL_10000_VAL,
  248. .gain = ST_MAGN_2_FS_AVL_10000_GAIN,
  249. },
  250. },
  251. },
  252. .multi_read_bit = ST_MAGN_2_MULTIREAD_BIT,
  253. .bootime = 2,
  254. },
  255. };
  256. static int st_magn_read_raw(struct iio_dev *indio_dev,
  257. struct iio_chan_spec const *ch, int *val,
  258. int *val2, long mask)
  259. {
  260. int err;
  261. struct st_sensor_data *mdata = iio_priv(indio_dev);
  262. switch (mask) {
  263. case IIO_CHAN_INFO_RAW:
  264. err = st_sensors_read_info_raw(indio_dev, ch, val);
  265. if (err < 0)
  266. goto read_error;
  267. return IIO_VAL_INT;
  268. case IIO_CHAN_INFO_SCALE:
  269. *val = 0;
  270. if ((ch->scan_index == ST_SENSORS_SCAN_Z) &&
  271. (mdata->current_fullscale->gain2 != 0))
  272. *val2 = mdata->current_fullscale->gain2;
  273. else
  274. *val2 = mdata->current_fullscale->gain;
  275. return IIO_VAL_INT_PLUS_MICRO;
  276. default:
  277. return -EINVAL;
  278. }
  279. read_error:
  280. return err;
  281. }
  282. static int st_magn_write_raw(struct iio_dev *indio_dev,
  283. struct iio_chan_spec const *chan, int val, int val2, long mask)
  284. {
  285. int err;
  286. switch (mask) {
  287. case IIO_CHAN_INFO_SCALE:
  288. err = st_sensors_set_fullscale_by_gain(indio_dev, val2);
  289. break;
  290. default:
  291. err = -EINVAL;
  292. }
  293. return err;
  294. }
  295. static ST_SENSOR_DEV_ATTR_SAMP_FREQ();
  296. static ST_SENSORS_DEV_ATTR_SAMP_FREQ_AVAIL();
  297. static ST_SENSORS_DEV_ATTR_SCALE_AVAIL(in_magn_scale_available);
  298. static struct attribute *st_magn_attributes[] = {
  299. &iio_dev_attr_sampling_frequency_available.dev_attr.attr,
  300. &iio_dev_attr_in_magn_scale_available.dev_attr.attr,
  301. &iio_dev_attr_sampling_frequency.dev_attr.attr,
  302. NULL,
  303. };
  304. static const struct attribute_group st_magn_attribute_group = {
  305. .attrs = st_magn_attributes,
  306. };
  307. static const struct iio_info magn_info = {
  308. .driver_module = THIS_MODULE,
  309. .attrs = &st_magn_attribute_group,
  310. .read_raw = &st_magn_read_raw,
  311. .write_raw = &st_magn_write_raw,
  312. };
  313. int st_magn_common_probe(struct iio_dev *indio_dev)
  314. {
  315. int err;
  316. struct st_sensor_data *mdata = iio_priv(indio_dev);
  317. indio_dev->modes = INDIO_DIRECT_MODE;
  318. indio_dev->info = &magn_info;
  319. err = st_sensors_check_device_support(indio_dev,
  320. ARRAY_SIZE(st_magn_sensors), st_magn_sensors);
  321. if (err < 0)
  322. goto st_magn_common_probe_error;
  323. mdata->multiread_bit = mdata->sensor->multi_read_bit;
  324. indio_dev->channels = mdata->sensor->ch;
  325. indio_dev->num_channels = ST_SENSORS_NUMBER_ALL_CHANNELS;
  326. mdata->current_fullscale = (struct st_sensor_fullscale_avl *)
  327. &mdata->sensor->fs.fs_avl[0];
  328. mdata->odr = mdata->sensor->odr.odr_avl[0].hz;
  329. err = st_sensors_init_sensor(indio_dev);
  330. if (err < 0)
  331. goto st_magn_common_probe_error;
  332. if (mdata->get_irq_data_ready(indio_dev) > 0) {
  333. err = st_magn_allocate_ring(indio_dev);
  334. if (err < 0)
  335. goto st_magn_common_probe_error;
  336. err = st_sensors_allocate_trigger(indio_dev, NULL);
  337. if (err < 0)
  338. goto st_magn_probe_trigger_error;
  339. }
  340. err = iio_device_register(indio_dev);
  341. if (err)
  342. goto st_magn_device_register_error;
  343. return err;
  344. st_magn_device_register_error:
  345. if (mdata->get_irq_data_ready(indio_dev) > 0)
  346. st_sensors_deallocate_trigger(indio_dev);
  347. st_magn_probe_trigger_error:
  348. if (mdata->get_irq_data_ready(indio_dev) > 0)
  349. st_magn_deallocate_ring(indio_dev);
  350. st_magn_common_probe_error:
  351. return err;
  352. }
  353. EXPORT_SYMBOL(st_magn_common_probe);
  354. void st_magn_common_remove(struct iio_dev *indio_dev)
  355. {
  356. struct st_sensor_data *mdata = iio_priv(indio_dev);
  357. iio_device_unregister(indio_dev);
  358. if (mdata->get_irq_data_ready(indio_dev) > 0) {
  359. st_sensors_deallocate_trigger(indio_dev);
  360. st_magn_deallocate_ring(indio_dev);
  361. }
  362. iio_device_free(indio_dev);
  363. }
  364. EXPORT_SYMBOL(st_magn_common_remove);
  365. MODULE_AUTHOR("Denis Ciocca <denis.ciocca@st.com>");
  366. MODULE_DESCRIPTION("STMicroelectronics magnetometers driver");
  367. MODULE_LICENSE("GPL v2");