atlas-ph-sensor.c 16 KB

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  1. /*
  2. * atlas-ph-sensor.c - Support for Atlas Scientific OEM pH-SM sensor
  3. *
  4. * Copyright (C) 2015 Matt Ranostay <mranostay@gmail.com>
  5. *
  6. * This program is free software; you can redistribute it and/or modify
  7. * it under the terms of the GNU General Public License as published by
  8. * the Free Software Foundation; either version 2 of the License, or
  9. * (at your option) any later version.
  10. *
  11. * This program is distributed in the hope that it will be useful,
  12. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  13. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  14. * GNU General Public License for more details.
  15. */
  16. #include <linux/module.h>
  17. #include <linux/init.h>
  18. #include <linux/interrupt.h>
  19. #include <linux/delay.h>
  20. #include <linux/mutex.h>
  21. #include <linux/err.h>
  22. #include <linux/irq.h>
  23. #include <linux/irq_work.h>
  24. #include <linux/gpio.h>
  25. #include <linux/i2c.h>
  26. #include <linux/of_device.h>
  27. #include <linux/regmap.h>
  28. #include <linux/iio/iio.h>
  29. #include <linux/iio/buffer.h>
  30. #include <linux/iio/trigger.h>
  31. #include <linux/iio/trigger_consumer.h>
  32. #include <linux/iio/triggered_buffer.h>
  33. #include <linux/pm_runtime.h>
  34. #define ATLAS_REGMAP_NAME "atlas_ph_regmap"
  35. #define ATLAS_DRV_NAME "atlas_ph"
  36. #define ATLAS_REG_DEV_TYPE 0x00
  37. #define ATLAS_REG_DEV_VERSION 0x01
  38. #define ATLAS_REG_INT_CONTROL 0x04
  39. #define ATLAS_REG_INT_CONTROL_EN BIT(3)
  40. #define ATLAS_REG_PWR_CONTROL 0x06
  41. #define ATLAS_REG_PH_CALIB_STATUS 0x0d
  42. #define ATLAS_REG_PH_CALIB_STATUS_MASK 0x07
  43. #define ATLAS_REG_PH_CALIB_STATUS_LOW BIT(0)
  44. #define ATLAS_REG_PH_CALIB_STATUS_MID BIT(1)
  45. #define ATLAS_REG_PH_CALIB_STATUS_HIGH BIT(2)
  46. #define ATLAS_REG_EC_CALIB_STATUS 0x0f
  47. #define ATLAS_REG_EC_CALIB_STATUS_MASK 0x0f
  48. #define ATLAS_REG_EC_CALIB_STATUS_DRY BIT(0)
  49. #define ATLAS_REG_EC_CALIB_STATUS_SINGLE BIT(1)
  50. #define ATLAS_REG_EC_CALIB_STATUS_LOW BIT(2)
  51. #define ATLAS_REG_EC_CALIB_STATUS_HIGH BIT(3)
  52. #define ATLAS_REG_PH_TEMP_DATA 0x0e
  53. #define ATLAS_REG_PH_DATA 0x16
  54. #define ATLAS_REG_EC_PROBE 0x08
  55. #define ATLAS_REG_EC_TEMP_DATA 0x10
  56. #define ATLAS_REG_EC_DATA 0x18
  57. #define ATLAS_REG_TDS_DATA 0x1c
  58. #define ATLAS_REG_PSS_DATA 0x20
  59. #define ATLAS_REG_ORP_CALIB_STATUS 0x0d
  60. #define ATLAS_REG_ORP_DATA 0x0e
  61. #define ATLAS_PH_INT_TIME_IN_US 450000
  62. #define ATLAS_EC_INT_TIME_IN_US 650000
  63. #define ATLAS_ORP_INT_TIME_IN_US 450000
  64. enum {
  65. ATLAS_PH_SM,
  66. ATLAS_EC_SM,
  67. ATLAS_ORP_SM,
  68. };
  69. struct atlas_data {
  70. struct i2c_client *client;
  71. struct iio_trigger *trig;
  72. struct atlas_device *chip;
  73. struct regmap *regmap;
  74. struct irq_work work;
  75. __be32 buffer[6]; /* 96-bit data + 32-bit pad + 64-bit timestamp */
  76. };
  77. static const struct regmap_config atlas_regmap_config = {
  78. .name = ATLAS_REGMAP_NAME,
  79. .reg_bits = 8,
  80. .val_bits = 8,
  81. };
  82. static const struct iio_chan_spec atlas_ph_channels[] = {
  83. {
  84. .type = IIO_PH,
  85. .address = ATLAS_REG_PH_DATA,
  86. .info_mask_separate =
  87. BIT(IIO_CHAN_INFO_RAW) | BIT(IIO_CHAN_INFO_SCALE),
  88. .scan_index = 0,
  89. .scan_type = {
  90. .sign = 'u',
  91. .realbits = 32,
  92. .storagebits = 32,
  93. .endianness = IIO_BE,
  94. },
  95. },
  96. IIO_CHAN_SOFT_TIMESTAMP(1),
  97. {
  98. .type = IIO_TEMP,
  99. .address = ATLAS_REG_PH_TEMP_DATA,
  100. .info_mask_separate =
  101. BIT(IIO_CHAN_INFO_RAW) | BIT(IIO_CHAN_INFO_SCALE),
  102. .output = 1,
  103. .scan_index = -1
  104. },
  105. };
  106. #define ATLAS_EC_CHANNEL(_idx, _addr) \
  107. {\
  108. .type = IIO_CONCENTRATION, \
  109. .indexed = 1, \
  110. .channel = _idx, \
  111. .address = _addr, \
  112. .info_mask_separate = \
  113. BIT(IIO_CHAN_INFO_RAW) | BIT(IIO_CHAN_INFO_SCALE), \
  114. .scan_index = _idx + 1, \
  115. .scan_type = { \
  116. .sign = 'u', \
  117. .realbits = 32, \
  118. .storagebits = 32, \
  119. .endianness = IIO_BE, \
  120. }, \
  121. }
  122. static const struct iio_chan_spec atlas_ec_channels[] = {
  123. {
  124. .type = IIO_ELECTRICALCONDUCTIVITY,
  125. .address = ATLAS_REG_EC_DATA,
  126. .info_mask_separate =
  127. BIT(IIO_CHAN_INFO_RAW) | BIT(IIO_CHAN_INFO_SCALE),
  128. .scan_index = 0,
  129. .scan_type = {
  130. .sign = 'u',
  131. .realbits = 32,
  132. .storagebits = 32,
  133. .endianness = IIO_BE,
  134. },
  135. },
  136. ATLAS_EC_CHANNEL(0, ATLAS_REG_TDS_DATA),
  137. ATLAS_EC_CHANNEL(1, ATLAS_REG_PSS_DATA),
  138. IIO_CHAN_SOFT_TIMESTAMP(3),
  139. {
  140. .type = IIO_TEMP,
  141. .address = ATLAS_REG_EC_TEMP_DATA,
  142. .info_mask_separate =
  143. BIT(IIO_CHAN_INFO_RAW) | BIT(IIO_CHAN_INFO_SCALE),
  144. .output = 1,
  145. .scan_index = -1
  146. },
  147. };
  148. static const struct iio_chan_spec atlas_orp_channels[] = {
  149. {
  150. .type = IIO_VOLTAGE,
  151. .address = ATLAS_REG_ORP_DATA,
  152. .info_mask_separate =
  153. BIT(IIO_CHAN_INFO_RAW) | BIT(IIO_CHAN_INFO_SCALE),
  154. .scan_index = 0,
  155. .scan_type = {
  156. .sign = 's',
  157. .realbits = 32,
  158. .storagebits = 32,
  159. .endianness = IIO_BE,
  160. },
  161. },
  162. IIO_CHAN_SOFT_TIMESTAMP(1),
  163. };
  164. static int atlas_check_ph_calibration(struct atlas_data *data)
  165. {
  166. struct device *dev = &data->client->dev;
  167. int ret;
  168. unsigned int val;
  169. ret = regmap_read(data->regmap, ATLAS_REG_PH_CALIB_STATUS, &val);
  170. if (ret)
  171. return ret;
  172. if (!(val & ATLAS_REG_PH_CALIB_STATUS_MASK)) {
  173. dev_warn(dev, "device has not been calibrated\n");
  174. return 0;
  175. }
  176. if (!(val & ATLAS_REG_PH_CALIB_STATUS_LOW))
  177. dev_warn(dev, "device missing low point calibration\n");
  178. if (!(val & ATLAS_REG_PH_CALIB_STATUS_MID))
  179. dev_warn(dev, "device missing mid point calibration\n");
  180. if (!(val & ATLAS_REG_PH_CALIB_STATUS_HIGH))
  181. dev_warn(dev, "device missing high point calibration\n");
  182. return 0;
  183. }
  184. static int atlas_check_ec_calibration(struct atlas_data *data)
  185. {
  186. struct device *dev = &data->client->dev;
  187. int ret;
  188. unsigned int val;
  189. __be16 rval;
  190. ret = regmap_bulk_read(data->regmap, ATLAS_REG_EC_PROBE, &rval, 2);
  191. if (ret)
  192. return ret;
  193. val = be16_to_cpu(rval);
  194. dev_info(dev, "probe set to K = %d.%.2d", val / 100, val % 100);
  195. ret = regmap_read(data->regmap, ATLAS_REG_EC_CALIB_STATUS, &val);
  196. if (ret)
  197. return ret;
  198. if (!(val & ATLAS_REG_EC_CALIB_STATUS_MASK)) {
  199. dev_warn(dev, "device has not been calibrated\n");
  200. return 0;
  201. }
  202. if (!(val & ATLAS_REG_EC_CALIB_STATUS_DRY))
  203. dev_warn(dev, "device missing dry point calibration\n");
  204. if (val & ATLAS_REG_EC_CALIB_STATUS_SINGLE) {
  205. dev_warn(dev, "device using single point calibration\n");
  206. } else {
  207. if (!(val & ATLAS_REG_EC_CALIB_STATUS_LOW))
  208. dev_warn(dev, "device missing low point calibration\n");
  209. if (!(val & ATLAS_REG_EC_CALIB_STATUS_HIGH))
  210. dev_warn(dev, "device missing high point calibration\n");
  211. }
  212. return 0;
  213. }
  214. static int atlas_check_orp_calibration(struct atlas_data *data)
  215. {
  216. struct device *dev = &data->client->dev;
  217. int ret;
  218. unsigned int val;
  219. ret = regmap_read(data->regmap, ATLAS_REG_ORP_CALIB_STATUS, &val);
  220. if (ret)
  221. return ret;
  222. if (!val)
  223. dev_warn(dev, "device has not been calibrated\n");
  224. return 0;
  225. };
  226. struct atlas_device {
  227. const struct iio_chan_spec *channels;
  228. int num_channels;
  229. int data_reg;
  230. int (*calibration)(struct atlas_data *data);
  231. int delay;
  232. };
  233. static struct atlas_device atlas_devices[] = {
  234. [ATLAS_PH_SM] = {
  235. .channels = atlas_ph_channels,
  236. .num_channels = 3,
  237. .data_reg = ATLAS_REG_PH_DATA,
  238. .calibration = &atlas_check_ph_calibration,
  239. .delay = ATLAS_PH_INT_TIME_IN_US,
  240. },
  241. [ATLAS_EC_SM] = {
  242. .channels = atlas_ec_channels,
  243. .num_channels = 5,
  244. .data_reg = ATLAS_REG_EC_DATA,
  245. .calibration = &atlas_check_ec_calibration,
  246. .delay = ATLAS_EC_INT_TIME_IN_US,
  247. },
  248. [ATLAS_ORP_SM] = {
  249. .channels = atlas_orp_channels,
  250. .num_channels = 2,
  251. .data_reg = ATLAS_REG_ORP_DATA,
  252. .calibration = &atlas_check_orp_calibration,
  253. .delay = ATLAS_ORP_INT_TIME_IN_US,
  254. },
  255. };
  256. static int atlas_set_powermode(struct atlas_data *data, int on)
  257. {
  258. return regmap_write(data->regmap, ATLAS_REG_PWR_CONTROL, on);
  259. }
  260. static int atlas_set_interrupt(struct atlas_data *data, bool state)
  261. {
  262. return regmap_update_bits(data->regmap, ATLAS_REG_INT_CONTROL,
  263. ATLAS_REG_INT_CONTROL_EN,
  264. state ? ATLAS_REG_INT_CONTROL_EN : 0);
  265. }
  266. static int atlas_buffer_postenable(struct iio_dev *indio_dev)
  267. {
  268. struct atlas_data *data = iio_priv(indio_dev);
  269. int ret;
  270. ret = iio_triggered_buffer_postenable(indio_dev);
  271. if (ret)
  272. return ret;
  273. ret = pm_runtime_get_sync(&data->client->dev);
  274. if (ret < 0) {
  275. pm_runtime_put_noidle(&data->client->dev);
  276. return ret;
  277. }
  278. return atlas_set_interrupt(data, true);
  279. }
  280. static int atlas_buffer_predisable(struct iio_dev *indio_dev)
  281. {
  282. struct atlas_data *data = iio_priv(indio_dev);
  283. int ret;
  284. ret = iio_triggered_buffer_predisable(indio_dev);
  285. if (ret)
  286. return ret;
  287. ret = atlas_set_interrupt(data, false);
  288. if (ret)
  289. return ret;
  290. pm_runtime_mark_last_busy(&data->client->dev);
  291. return pm_runtime_put_autosuspend(&data->client->dev);
  292. }
  293. static const struct iio_trigger_ops atlas_interrupt_trigger_ops = {
  294. .owner = THIS_MODULE,
  295. };
  296. static const struct iio_buffer_setup_ops atlas_buffer_setup_ops = {
  297. .postenable = atlas_buffer_postenable,
  298. .predisable = atlas_buffer_predisable,
  299. };
  300. static void atlas_work_handler(struct irq_work *work)
  301. {
  302. struct atlas_data *data = container_of(work, struct atlas_data, work);
  303. iio_trigger_poll(data->trig);
  304. }
  305. static irqreturn_t atlas_trigger_handler(int irq, void *private)
  306. {
  307. struct iio_poll_func *pf = private;
  308. struct iio_dev *indio_dev = pf->indio_dev;
  309. struct atlas_data *data = iio_priv(indio_dev);
  310. int ret;
  311. ret = regmap_bulk_read(data->regmap, data->chip->data_reg,
  312. (u8 *) &data->buffer,
  313. sizeof(__be32) * (data->chip->num_channels - 2));
  314. if (!ret)
  315. iio_push_to_buffers_with_timestamp(indio_dev, data->buffer,
  316. iio_get_time_ns(indio_dev));
  317. iio_trigger_notify_done(indio_dev->trig);
  318. return IRQ_HANDLED;
  319. }
  320. static irqreturn_t atlas_interrupt_handler(int irq, void *private)
  321. {
  322. struct iio_dev *indio_dev = private;
  323. struct atlas_data *data = iio_priv(indio_dev);
  324. irq_work_queue(&data->work);
  325. return IRQ_HANDLED;
  326. }
  327. static int atlas_read_measurement(struct atlas_data *data, int reg, __be32 *val)
  328. {
  329. struct device *dev = &data->client->dev;
  330. int suspended = pm_runtime_suspended(dev);
  331. int ret;
  332. ret = pm_runtime_get_sync(dev);
  333. if (ret < 0) {
  334. pm_runtime_put_noidle(dev);
  335. return ret;
  336. }
  337. if (suspended)
  338. usleep_range(data->chip->delay, data->chip->delay + 100000);
  339. ret = regmap_bulk_read(data->regmap, reg, (u8 *) val, sizeof(*val));
  340. pm_runtime_mark_last_busy(dev);
  341. pm_runtime_put_autosuspend(dev);
  342. return ret;
  343. }
  344. static int atlas_read_raw(struct iio_dev *indio_dev,
  345. struct iio_chan_spec const *chan,
  346. int *val, int *val2, long mask)
  347. {
  348. struct atlas_data *data = iio_priv(indio_dev);
  349. switch (mask) {
  350. case IIO_CHAN_INFO_RAW: {
  351. int ret;
  352. __be32 reg;
  353. switch (chan->type) {
  354. case IIO_TEMP:
  355. ret = regmap_bulk_read(data->regmap, chan->address,
  356. (u8 *) &reg, sizeof(reg));
  357. break;
  358. case IIO_PH:
  359. case IIO_CONCENTRATION:
  360. case IIO_ELECTRICALCONDUCTIVITY:
  361. case IIO_VOLTAGE:
  362. ret = iio_device_claim_direct_mode(indio_dev);
  363. if (ret)
  364. return ret;
  365. ret = atlas_read_measurement(data, chan->address, &reg);
  366. iio_device_release_direct_mode(indio_dev);
  367. break;
  368. default:
  369. ret = -EINVAL;
  370. }
  371. if (!ret) {
  372. *val = be32_to_cpu(reg);
  373. ret = IIO_VAL_INT;
  374. }
  375. return ret;
  376. }
  377. case IIO_CHAN_INFO_SCALE:
  378. switch (chan->type) {
  379. case IIO_TEMP:
  380. *val = 1; /* 0.01 */
  381. *val2 = 100;
  382. break;
  383. case IIO_PH:
  384. *val = 1; /* 0.001 */
  385. *val2 = 1000;
  386. break;
  387. case IIO_ELECTRICALCONDUCTIVITY:
  388. *val = 1; /* 0.00001 */
  389. *val2 = 100000;
  390. break;
  391. case IIO_CONCENTRATION:
  392. *val = 0; /* 0.000000001 */
  393. *val2 = 1000;
  394. return IIO_VAL_INT_PLUS_NANO;
  395. case IIO_VOLTAGE:
  396. *val = 1; /* 0.1 */
  397. *val2 = 10;
  398. break;
  399. default:
  400. return -EINVAL;
  401. }
  402. return IIO_VAL_FRACTIONAL;
  403. }
  404. return -EINVAL;
  405. }
  406. static int atlas_write_raw(struct iio_dev *indio_dev,
  407. struct iio_chan_spec const *chan,
  408. int val, int val2, long mask)
  409. {
  410. struct atlas_data *data = iio_priv(indio_dev);
  411. __be32 reg = cpu_to_be32(val);
  412. if (val2 != 0 || val < 0 || val > 20000)
  413. return -EINVAL;
  414. if (mask != IIO_CHAN_INFO_RAW || chan->type != IIO_TEMP)
  415. return -EINVAL;
  416. return regmap_bulk_write(data->regmap, chan->address,
  417. &reg, sizeof(reg));
  418. }
  419. static const struct iio_info atlas_info = {
  420. .driver_module = THIS_MODULE,
  421. .read_raw = atlas_read_raw,
  422. .write_raw = atlas_write_raw,
  423. };
  424. static const struct i2c_device_id atlas_id[] = {
  425. { "atlas-ph-sm", ATLAS_PH_SM},
  426. { "atlas-ec-sm", ATLAS_EC_SM},
  427. { "atlas-orp-sm", ATLAS_ORP_SM},
  428. {}
  429. };
  430. MODULE_DEVICE_TABLE(i2c, atlas_id);
  431. static const struct of_device_id atlas_dt_ids[] = {
  432. { .compatible = "atlas,ph-sm", .data = (void *)ATLAS_PH_SM, },
  433. { .compatible = "atlas,ec-sm", .data = (void *)ATLAS_EC_SM, },
  434. { .compatible = "atlas,orp-sm", .data = (void *)ATLAS_ORP_SM, },
  435. { }
  436. };
  437. MODULE_DEVICE_TABLE(of, atlas_dt_ids);
  438. static int atlas_probe(struct i2c_client *client,
  439. const struct i2c_device_id *id)
  440. {
  441. struct atlas_data *data;
  442. struct atlas_device *chip;
  443. const struct of_device_id *of_id;
  444. struct iio_trigger *trig;
  445. struct iio_dev *indio_dev;
  446. int ret;
  447. indio_dev = devm_iio_device_alloc(&client->dev, sizeof(*data));
  448. if (!indio_dev)
  449. return -ENOMEM;
  450. of_id = of_match_device(atlas_dt_ids, &client->dev);
  451. if (!of_id)
  452. chip = &atlas_devices[id->driver_data];
  453. else
  454. chip = &atlas_devices[(unsigned long)of_id->data];
  455. indio_dev->info = &atlas_info;
  456. indio_dev->name = ATLAS_DRV_NAME;
  457. indio_dev->channels = chip->channels;
  458. indio_dev->num_channels = chip->num_channels;
  459. indio_dev->modes = INDIO_BUFFER_SOFTWARE | INDIO_DIRECT_MODE;
  460. indio_dev->dev.parent = &client->dev;
  461. trig = devm_iio_trigger_alloc(&client->dev, "%s-dev%d",
  462. indio_dev->name, indio_dev->id);
  463. if (!trig)
  464. return -ENOMEM;
  465. data = iio_priv(indio_dev);
  466. data->client = client;
  467. data->trig = trig;
  468. data->chip = chip;
  469. trig->dev.parent = indio_dev->dev.parent;
  470. trig->ops = &atlas_interrupt_trigger_ops;
  471. iio_trigger_set_drvdata(trig, indio_dev);
  472. i2c_set_clientdata(client, indio_dev);
  473. data->regmap = devm_regmap_init_i2c(client, &atlas_regmap_config);
  474. if (IS_ERR(data->regmap)) {
  475. dev_err(&client->dev, "regmap initialization failed\n");
  476. return PTR_ERR(data->regmap);
  477. }
  478. ret = pm_runtime_set_active(&client->dev);
  479. if (ret)
  480. return ret;
  481. if (client->irq <= 0) {
  482. dev_err(&client->dev, "no valid irq defined\n");
  483. return -EINVAL;
  484. }
  485. ret = chip->calibration(data);
  486. if (ret)
  487. return ret;
  488. ret = iio_trigger_register(trig);
  489. if (ret) {
  490. dev_err(&client->dev, "failed to register trigger\n");
  491. return ret;
  492. }
  493. ret = iio_triggered_buffer_setup(indio_dev, &iio_pollfunc_store_time,
  494. &atlas_trigger_handler, &atlas_buffer_setup_ops);
  495. if (ret) {
  496. dev_err(&client->dev, "cannot setup iio trigger\n");
  497. goto unregister_trigger;
  498. }
  499. init_irq_work(&data->work, atlas_work_handler);
  500. /* interrupt pin toggles on new conversion */
  501. ret = devm_request_threaded_irq(&client->dev, client->irq,
  502. NULL, atlas_interrupt_handler,
  503. IRQF_TRIGGER_RISING |
  504. IRQF_TRIGGER_FALLING | IRQF_ONESHOT,
  505. "atlas_irq",
  506. indio_dev);
  507. if (ret) {
  508. dev_err(&client->dev, "request irq (%d) failed\n", client->irq);
  509. goto unregister_buffer;
  510. }
  511. ret = atlas_set_powermode(data, 1);
  512. if (ret) {
  513. dev_err(&client->dev, "cannot power device on");
  514. goto unregister_buffer;
  515. }
  516. pm_runtime_enable(&client->dev);
  517. pm_runtime_set_autosuspend_delay(&client->dev, 2500);
  518. pm_runtime_use_autosuspend(&client->dev);
  519. ret = iio_device_register(indio_dev);
  520. if (ret) {
  521. dev_err(&client->dev, "unable to register device\n");
  522. goto unregister_pm;
  523. }
  524. return 0;
  525. unregister_pm:
  526. pm_runtime_disable(&client->dev);
  527. atlas_set_powermode(data, 0);
  528. unregister_buffer:
  529. iio_triggered_buffer_cleanup(indio_dev);
  530. unregister_trigger:
  531. iio_trigger_unregister(data->trig);
  532. return ret;
  533. }
  534. static int atlas_remove(struct i2c_client *client)
  535. {
  536. struct iio_dev *indio_dev = i2c_get_clientdata(client);
  537. struct atlas_data *data = iio_priv(indio_dev);
  538. iio_device_unregister(indio_dev);
  539. iio_triggered_buffer_cleanup(indio_dev);
  540. iio_trigger_unregister(data->trig);
  541. pm_runtime_disable(&client->dev);
  542. pm_runtime_set_suspended(&client->dev);
  543. pm_runtime_put_noidle(&client->dev);
  544. return atlas_set_powermode(data, 0);
  545. }
  546. #ifdef CONFIG_PM
  547. static int atlas_runtime_suspend(struct device *dev)
  548. {
  549. struct atlas_data *data =
  550. iio_priv(i2c_get_clientdata(to_i2c_client(dev)));
  551. return atlas_set_powermode(data, 0);
  552. }
  553. static int atlas_runtime_resume(struct device *dev)
  554. {
  555. struct atlas_data *data =
  556. iio_priv(i2c_get_clientdata(to_i2c_client(dev)));
  557. return atlas_set_powermode(data, 1);
  558. }
  559. #endif
  560. static const struct dev_pm_ops atlas_pm_ops = {
  561. SET_RUNTIME_PM_OPS(atlas_runtime_suspend,
  562. atlas_runtime_resume, NULL)
  563. };
  564. static struct i2c_driver atlas_driver = {
  565. .driver = {
  566. .name = ATLAS_DRV_NAME,
  567. .of_match_table = of_match_ptr(atlas_dt_ids),
  568. .pm = &atlas_pm_ops,
  569. },
  570. .probe = atlas_probe,
  571. .remove = atlas_remove,
  572. .id_table = atlas_id,
  573. };
  574. module_i2c_driver(atlas_driver);
  575. MODULE_AUTHOR("Matt Ranostay <mranostay@gmail.com>");
  576. MODULE_DESCRIPTION("Atlas Scientific pH-SM sensor");
  577. MODULE_LICENSE("GPL");