cap11xx.c 18 KB

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  1. // SPDX-License-Identifier: GPL-2.0-only
  2. /*
  3. * Input driver for Microchip CAP11xx based capacitive touch sensors
  4. *
  5. * (c) 2014 Daniel Mack <linux@zonque.org>
  6. */
  7. #include <linux/kernel.h>
  8. #include <linux/module.h>
  9. #include <linux/interrupt.h>
  10. #include <linux/input.h>
  11. #include <linux/leds.h>
  12. #include <linux/of.h>
  13. #include <linux/regmap.h>
  14. #include <linux/i2c.h>
  15. #include <linux/gpio/consumer.h>
  16. #include <linux/bitfield.h>
  17. #define CAP11XX_REG_MAIN_CONTROL 0x00
  18. #define CAP11XX_REG_MAIN_CONTROL_GAIN_SHIFT (6)
  19. #define CAP11XX_REG_MAIN_CONTROL_GAIN_MASK (0xc0)
  20. #define CAP11XX_REG_MAIN_CONTROL_DLSEEP BIT(4)
  21. #define CAP11XX_REG_GENERAL_STATUS 0x02
  22. #define CAP11XX_REG_SENSOR_INPUT 0x03
  23. #define CAP11XX_REG_NOISE_FLAG_STATUS 0x0a
  24. #define CAP11XX_REG_SENOR_DELTA(X) (0x10 + (X))
  25. #define CAP11XX_REG_SENSITIVITY_CONTROL 0x1f
  26. #define CAP11XX_REG_SENSITIVITY_CONTROL_DELTA_SENSE_MASK 0x70
  27. #define CAP11XX_REG_CONFIG 0x20
  28. #define CAP11XX_REG_SENSOR_ENABLE 0x21
  29. #define CAP11XX_REG_SENSOR_CONFIG 0x22
  30. #define CAP11XX_REG_SENSOR_CONFIG2 0x23
  31. #define CAP11XX_REG_SAMPLING_CONFIG 0x24
  32. #define CAP11XX_REG_CALIBRATION 0x26
  33. #define CAP11XX_REG_INT_ENABLE 0x27
  34. #define CAP11XX_REG_REPEAT_RATE 0x28
  35. #define CAP11XX_REG_SIGNAL_GUARD_ENABLE 0x29
  36. #define CAP11XX_REG_MT_CONFIG 0x2a
  37. #define CAP11XX_REG_MT_PATTERN_CONFIG 0x2b
  38. #define CAP11XX_REG_MT_PATTERN 0x2d
  39. #define CAP11XX_REG_RECALIB_CONFIG 0x2f
  40. #define CAP11XX_REG_SENSOR_THRESH(X) (0x30 + (X))
  41. #define CAP11XX_REG_SENSOR_NOISE_THRESH 0x38
  42. #define CAP11XX_REG_STANDBY_CHANNEL 0x40
  43. #define CAP11XX_REG_STANDBY_CONFIG 0x41
  44. #define CAP11XX_REG_STANDBY_SENSITIVITY 0x42
  45. #define CAP11XX_REG_STANDBY_THRESH 0x43
  46. #define CAP11XX_REG_CONFIG2 0x44
  47. #define CAP11XX_REG_CONFIG2_ALT_POL BIT(6)
  48. #define CAP11XX_REG_SENSOR_BASE_CNT(X) (0x50 + (X))
  49. #define CAP11XX_REG_LED_POLARITY 0x73
  50. #define CAP11XX_REG_LED_OUTPUT_CONTROL 0x74
  51. #define CAP11XX_REG_CALIB_SENSITIVITY_CONFIG 0x80
  52. #define CAP11XX_REG_CALIB_SENSITIVITY_CONFIG2 0x81
  53. #define CAP11XX_REG_LED_DUTY_CYCLE_1 0x90
  54. #define CAP11XX_REG_LED_DUTY_CYCLE_2 0x91
  55. #define CAP11XX_REG_LED_DUTY_CYCLE_3 0x92
  56. #define CAP11XX_REG_LED_DUTY_CYCLE_4 0x93
  57. #define CAP11XX_REG_LED_DUTY_MIN_MASK (0x0f)
  58. #define CAP11XX_REG_LED_DUTY_MIN_MASK_SHIFT (0)
  59. #define CAP11XX_REG_LED_DUTY_MAX_MASK (0xf0)
  60. #define CAP11XX_REG_LED_DUTY_MAX_MASK_SHIFT (4)
  61. #define CAP11XX_REG_LED_DUTY_MAX_VALUE (15)
  62. #define CAP11XX_REG_SENSOR_CALIB (0xb1 + (X))
  63. #define CAP11XX_REG_SENSOR_CALIB_LSB1 0xb9
  64. #define CAP11XX_REG_SENSOR_CALIB_LSB2 0xba
  65. #define CAP11XX_REG_PRODUCT_ID 0xfd
  66. #define CAP11XX_REG_MANUFACTURER_ID 0xfe
  67. #define CAP11XX_REG_REVISION 0xff
  68. #define CAP11XX_MANUFACTURER_ID 0x5d
  69. #ifdef CONFIG_LEDS_CLASS
  70. struct cap11xx_led {
  71. struct cap11xx_priv *priv;
  72. struct led_classdev cdev;
  73. u32 reg;
  74. };
  75. #endif
  76. struct cap11xx_priv {
  77. struct regmap *regmap;
  78. struct device *dev;
  79. struct input_dev *idev;
  80. const struct cap11xx_hw_model *model;
  81. struct cap11xx_led *leds;
  82. int num_leds;
  83. /* config */
  84. u8 analog_gain;
  85. u8 sensitivity_delta_sense;
  86. u8 signal_guard_inputs_mask;
  87. u32 thresholds[8];
  88. u32 calib_sensitivities[8];
  89. u32 keycodes[];
  90. };
  91. struct cap11xx_hw_model {
  92. u8 product_id;
  93. unsigned int num_channels;
  94. unsigned int num_leds;
  95. bool has_gain;
  96. bool has_irq_config;
  97. bool has_sensitivity_control;
  98. bool has_signal_guard;
  99. };
  100. static const struct reg_default cap11xx_reg_defaults[] = {
  101. { CAP11XX_REG_MAIN_CONTROL, 0x00 },
  102. { CAP11XX_REG_GENERAL_STATUS, 0x00 },
  103. { CAP11XX_REG_SENSOR_INPUT, 0x00 },
  104. { CAP11XX_REG_NOISE_FLAG_STATUS, 0x00 },
  105. { CAP11XX_REG_SENSITIVITY_CONTROL, 0x2f },
  106. { CAP11XX_REG_CONFIG, 0x20 },
  107. { CAP11XX_REG_SENSOR_ENABLE, 0x3f },
  108. { CAP11XX_REG_SENSOR_CONFIG, 0xa4 },
  109. { CAP11XX_REG_SENSOR_CONFIG2, 0x07 },
  110. { CAP11XX_REG_SAMPLING_CONFIG, 0x39 },
  111. { CAP11XX_REG_CALIBRATION, 0x00 },
  112. { CAP11XX_REG_INT_ENABLE, 0x3f },
  113. { CAP11XX_REG_REPEAT_RATE, 0x3f },
  114. { CAP11XX_REG_MT_CONFIG, 0x80 },
  115. { CAP11XX_REG_MT_PATTERN_CONFIG, 0x00 },
  116. { CAP11XX_REG_MT_PATTERN, 0x3f },
  117. { CAP11XX_REG_RECALIB_CONFIG, 0x8a },
  118. { CAP11XX_REG_SENSOR_THRESH(0), 0x40 },
  119. { CAP11XX_REG_SENSOR_THRESH(1), 0x40 },
  120. { CAP11XX_REG_SENSOR_THRESH(2), 0x40 },
  121. { CAP11XX_REG_SENSOR_THRESH(3), 0x40 },
  122. { CAP11XX_REG_SENSOR_THRESH(4), 0x40 },
  123. { CAP11XX_REG_SENSOR_THRESH(5), 0x40 },
  124. { CAP11XX_REG_SENSOR_NOISE_THRESH, 0x01 },
  125. { CAP11XX_REG_STANDBY_CHANNEL, 0x00 },
  126. { CAP11XX_REG_STANDBY_CONFIG, 0x39 },
  127. { CAP11XX_REG_STANDBY_SENSITIVITY, 0x02 },
  128. { CAP11XX_REG_STANDBY_THRESH, 0x40 },
  129. { CAP11XX_REG_CONFIG2, 0x40 },
  130. { CAP11XX_REG_LED_POLARITY, 0x00 },
  131. { CAP11XX_REG_SENSOR_CALIB_LSB1, 0x00 },
  132. { CAP11XX_REG_SENSOR_CALIB_LSB2, 0x00 },
  133. };
  134. static bool cap11xx_volatile_reg(struct device *dev, unsigned int reg)
  135. {
  136. switch (reg) {
  137. case CAP11XX_REG_MAIN_CONTROL:
  138. case CAP11XX_REG_SENSOR_INPUT:
  139. case CAP11XX_REG_SENOR_DELTA(0):
  140. case CAP11XX_REG_SENOR_DELTA(1):
  141. case CAP11XX_REG_SENOR_DELTA(2):
  142. case CAP11XX_REG_SENOR_DELTA(3):
  143. case CAP11XX_REG_SENOR_DELTA(4):
  144. case CAP11XX_REG_SENOR_DELTA(5):
  145. return true;
  146. }
  147. return false;
  148. }
  149. static const struct regmap_config cap11xx_regmap_config = {
  150. .reg_bits = 8,
  151. .val_bits = 8,
  152. .max_register = CAP11XX_REG_REVISION,
  153. .reg_defaults = cap11xx_reg_defaults,
  154. .num_reg_defaults = ARRAY_SIZE(cap11xx_reg_defaults),
  155. .cache_type = REGCACHE_MAPLE,
  156. .volatile_reg = cap11xx_volatile_reg,
  157. };
  158. static int cap11xx_write_calib_sens_config_1(struct cap11xx_priv *priv)
  159. {
  160. return regmap_write(priv->regmap,
  161. CAP11XX_REG_CALIB_SENSITIVITY_CONFIG,
  162. (priv->calib_sensitivities[3] << 6) |
  163. (priv->calib_sensitivities[2] << 4) |
  164. (priv->calib_sensitivities[1] << 2) |
  165. priv->calib_sensitivities[0]);
  166. }
  167. static int cap11xx_write_calib_sens_config_2(struct cap11xx_priv *priv)
  168. {
  169. return regmap_write(priv->regmap,
  170. CAP11XX_REG_CALIB_SENSITIVITY_CONFIG2,
  171. (priv->calib_sensitivities[7] << 6) |
  172. (priv->calib_sensitivities[6] << 4) |
  173. (priv->calib_sensitivities[5] << 2) |
  174. priv->calib_sensitivities[4]);
  175. }
  176. static int cap11xx_init_keys(struct cap11xx_priv *priv)
  177. {
  178. struct device_node *node = priv->dev->of_node;
  179. struct device *dev = priv->dev;
  180. int i, error;
  181. u32 u32_val;
  182. if (!node) {
  183. dev_err(dev, "Corresponding DT entry is not available\n");
  184. return -ENODEV;
  185. }
  186. if (!of_property_read_u32(node, "microchip,sensor-gain", &u32_val)) {
  187. if (!priv->model->has_gain) {
  188. dev_warn(dev,
  189. "This model doesn't support 'sensor-gain'\n");
  190. } else if (is_power_of_2(u32_val) && u32_val <= 8) {
  191. priv->analog_gain = (u8)ilog2(u32_val);
  192. error = regmap_update_bits(priv->regmap,
  193. CAP11XX_REG_MAIN_CONTROL,
  194. CAP11XX_REG_MAIN_CONTROL_GAIN_MASK,
  195. priv->analog_gain << CAP11XX_REG_MAIN_CONTROL_GAIN_SHIFT);
  196. if (error)
  197. return error;
  198. } else {
  199. dev_err(dev, "Invalid sensor-gain value %u\n", u32_val);
  200. return -EINVAL;
  201. }
  202. }
  203. if (of_property_read_bool(node, "microchip,irq-active-high")) {
  204. if (priv->model->has_irq_config) {
  205. error = regmap_update_bits(priv->regmap,
  206. CAP11XX_REG_CONFIG2,
  207. CAP11XX_REG_CONFIG2_ALT_POL,
  208. 0);
  209. if (error)
  210. return error;
  211. } else {
  212. dev_warn(dev,
  213. "This model doesn't support 'irq-active-high'\n");
  214. }
  215. }
  216. if (!of_property_read_u32(node, "microchip,sensitivity-delta-sense", &u32_val)) {
  217. if (!is_power_of_2(u32_val) || u32_val > 128) {
  218. dev_err(dev, "Invalid sensitivity-delta-sense value %u\n", u32_val);
  219. return -EINVAL;
  220. }
  221. priv->sensitivity_delta_sense = (u8)ilog2(u32_val);
  222. u32_val = ~(FIELD_PREP(CAP11XX_REG_SENSITIVITY_CONTROL_DELTA_SENSE_MASK,
  223. priv->sensitivity_delta_sense));
  224. error = regmap_update_bits(priv->regmap,
  225. CAP11XX_REG_SENSITIVITY_CONTROL,
  226. CAP11XX_REG_SENSITIVITY_CONTROL_DELTA_SENSE_MASK,
  227. u32_val);
  228. if (error)
  229. return error;
  230. }
  231. if (!of_property_read_u32_array(node, "microchip,input-threshold",
  232. priv->thresholds, priv->model->num_channels)) {
  233. for (i = 0; i < priv->model->num_channels; i++) {
  234. if (priv->thresholds[i] > 127) {
  235. dev_err(dev, "Invalid input-threshold value %u\n",
  236. priv->thresholds[i]);
  237. return -EINVAL;
  238. }
  239. error = regmap_write(priv->regmap,
  240. CAP11XX_REG_SENSOR_THRESH(i),
  241. priv->thresholds[i]);
  242. if (error)
  243. return error;
  244. }
  245. }
  246. if (!of_property_read_u32_array(node, "microchip,calib-sensitivity",
  247. priv->calib_sensitivities,
  248. priv->model->num_channels)) {
  249. if (priv->model->has_sensitivity_control) {
  250. for (i = 0; i < priv->model->num_channels; i++) {
  251. if (!is_power_of_2(priv->calib_sensitivities[i]) ||
  252. priv->calib_sensitivities[i] > 4) {
  253. dev_err(dev, "Invalid calib-sensitivity value %u\n",
  254. priv->calib_sensitivities[i]);
  255. return -EINVAL;
  256. }
  257. priv->calib_sensitivities[i] = ilog2(priv->calib_sensitivities[i]);
  258. }
  259. error = cap11xx_write_calib_sens_config_1(priv);
  260. if (error)
  261. return error;
  262. if (priv->model->num_channels > 4) {
  263. error = cap11xx_write_calib_sens_config_2(priv);
  264. if (error)
  265. return error;
  266. }
  267. } else {
  268. dev_warn(dev,
  269. "This model doesn't support 'calib-sensitivity'\n");
  270. }
  271. }
  272. for (i = 0; i < priv->model->num_channels; i++) {
  273. if (!of_property_read_u32_index(node, "microchip,signal-guard",
  274. i, &u32_val)) {
  275. if (u32_val > 1)
  276. return -EINVAL;
  277. if (u32_val)
  278. priv->signal_guard_inputs_mask |= 0x01 << i;
  279. }
  280. }
  281. if (priv->signal_guard_inputs_mask) {
  282. if (priv->model->has_signal_guard) {
  283. error = regmap_write(priv->regmap,
  284. CAP11XX_REG_SIGNAL_GUARD_ENABLE,
  285. priv->signal_guard_inputs_mask);
  286. if (error)
  287. return error;
  288. } else {
  289. dev_warn(dev,
  290. "This model doesn't support 'signal-guard'\n");
  291. }
  292. }
  293. /* Provide some useful defaults */
  294. for (i = 0; i < priv->model->num_channels; i++)
  295. priv->keycodes[i] = KEY_A + i;
  296. of_property_read_u32_array(node, "linux,keycodes",
  297. priv->keycodes, priv->model->num_channels);
  298. /* Disable autorepeat. The Linux input system has its own handling. */
  299. error = regmap_write(priv->regmap, CAP11XX_REG_REPEAT_RATE, 0);
  300. if (error)
  301. return error;
  302. return 0;
  303. }
  304. static irqreturn_t cap11xx_thread_func(int irq_num, void *data)
  305. {
  306. struct cap11xx_priv *priv = data;
  307. unsigned int status;
  308. int ret, i;
  309. /*
  310. * Deassert interrupt. This needs to be done before reading the status
  311. * registers, which will not carry valid values otherwise.
  312. */
  313. ret = regmap_update_bits(priv->regmap, CAP11XX_REG_MAIN_CONTROL, 1, 0);
  314. if (ret < 0)
  315. goto out;
  316. ret = regmap_read(priv->regmap, CAP11XX_REG_SENSOR_INPUT, &status);
  317. if (ret < 0)
  318. goto out;
  319. for (i = 0; i < priv->idev->keycodemax; i++)
  320. input_report_key(priv->idev, priv->keycodes[i],
  321. status & (1 << i));
  322. input_sync(priv->idev);
  323. out:
  324. return IRQ_HANDLED;
  325. }
  326. static int cap11xx_set_sleep(struct cap11xx_priv *priv, bool sleep)
  327. {
  328. /*
  329. * DLSEEP mode will turn off all LEDS, prevent this
  330. */
  331. if (IS_ENABLED(CONFIG_LEDS_CLASS) && priv->num_leds)
  332. return 0;
  333. return regmap_update_bits(priv->regmap, CAP11XX_REG_MAIN_CONTROL,
  334. CAP11XX_REG_MAIN_CONTROL_DLSEEP,
  335. sleep ? CAP11XX_REG_MAIN_CONTROL_DLSEEP : 0);
  336. }
  337. static int cap11xx_input_open(struct input_dev *idev)
  338. {
  339. struct cap11xx_priv *priv = input_get_drvdata(idev);
  340. return cap11xx_set_sleep(priv, false);
  341. }
  342. static void cap11xx_input_close(struct input_dev *idev)
  343. {
  344. struct cap11xx_priv *priv = input_get_drvdata(idev);
  345. cap11xx_set_sleep(priv, true);
  346. }
  347. #ifdef CONFIG_LEDS_CLASS
  348. static int cap11xx_led_set(struct led_classdev *cdev,
  349. enum led_brightness value)
  350. {
  351. struct cap11xx_led *led = container_of(cdev, struct cap11xx_led, cdev);
  352. struct cap11xx_priv *priv = led->priv;
  353. /*
  354. * All LEDs share the same duty cycle as this is a HW
  355. * limitation. Brightness levels per LED are either
  356. * 0 (OFF) and 1 (ON).
  357. */
  358. return regmap_update_bits(priv->regmap,
  359. CAP11XX_REG_LED_OUTPUT_CONTROL,
  360. BIT(led->reg),
  361. value ? BIT(led->reg) : 0);
  362. }
  363. static int cap11xx_init_leds(struct device *dev,
  364. struct cap11xx_priv *priv, int num_leds)
  365. {
  366. struct device_node *node = dev->of_node;
  367. struct cap11xx_led *led;
  368. int cnt = of_get_child_count(node);
  369. int error;
  370. if (!num_leds || !cnt)
  371. return 0;
  372. if (cnt > num_leds)
  373. return -EINVAL;
  374. led = devm_kcalloc(dev, cnt, sizeof(struct cap11xx_led), GFP_KERNEL);
  375. if (!led)
  376. return -ENOMEM;
  377. priv->leds = led;
  378. error = regmap_update_bits(priv->regmap,
  379. CAP11XX_REG_LED_OUTPUT_CONTROL, 0xff, 0);
  380. if (error)
  381. return error;
  382. error = regmap_update_bits(priv->regmap, CAP11XX_REG_LED_DUTY_CYCLE_4,
  383. CAP11XX_REG_LED_DUTY_MAX_MASK,
  384. CAP11XX_REG_LED_DUTY_MAX_VALUE <<
  385. CAP11XX_REG_LED_DUTY_MAX_MASK_SHIFT);
  386. if (error)
  387. return error;
  388. for_each_child_of_node_scoped(node, child) {
  389. u32 reg;
  390. led->cdev.name =
  391. of_get_property(child, "label", NULL) ? : child->name;
  392. led->cdev.default_trigger =
  393. of_get_property(child, "linux,default-trigger", NULL);
  394. led->cdev.flags = 0;
  395. led->cdev.brightness_set_blocking = cap11xx_led_set;
  396. led->cdev.max_brightness = 1;
  397. led->cdev.brightness = LED_OFF;
  398. error = of_property_read_u32(child, "reg", &reg);
  399. if (error != 0 || reg >= num_leds)
  400. return -EINVAL;
  401. led->reg = reg;
  402. led->priv = priv;
  403. error = devm_led_classdev_register(dev, &led->cdev);
  404. if (error)
  405. return error;
  406. priv->num_leds++;
  407. led++;
  408. }
  409. return 0;
  410. }
  411. #else
  412. static int cap11xx_init_leds(struct device *dev,
  413. struct cap11xx_priv *priv, int num_leds)
  414. {
  415. return 0;
  416. }
  417. #endif
  418. static int cap11xx_i2c_probe(struct i2c_client *i2c_client)
  419. {
  420. const struct i2c_device_id *id;
  421. const struct cap11xx_hw_model *cap;
  422. struct device *dev = &i2c_client->dev;
  423. struct cap11xx_priv *priv;
  424. int i, error;
  425. unsigned int val, rev;
  426. id = i2c_client_get_device_id(i2c_client);
  427. cap = i2c_get_match_data(i2c_client);
  428. if (!id || !cap || !cap->num_channels) {
  429. dev_err(dev, "Invalid device configuration\n");
  430. return -EINVAL;
  431. }
  432. priv = devm_kzalloc(dev,
  433. struct_size(priv, keycodes, cap->num_channels),
  434. GFP_KERNEL);
  435. if (!priv)
  436. return -ENOMEM;
  437. priv->dev = dev;
  438. priv->regmap = devm_regmap_init_i2c(i2c_client, &cap11xx_regmap_config);
  439. if (IS_ERR(priv->regmap))
  440. return PTR_ERR(priv->regmap);
  441. error = regmap_read(priv->regmap, CAP11XX_REG_PRODUCT_ID, &val);
  442. if (error)
  443. return error;
  444. if (val != cap->product_id) {
  445. dev_err(dev, "Product ID: Got 0x%02x, expected 0x%02x\n",
  446. val, cap->product_id);
  447. return -ENXIO;
  448. }
  449. error = regmap_read(priv->regmap, CAP11XX_REG_MANUFACTURER_ID, &val);
  450. if (error)
  451. return error;
  452. if (val != CAP11XX_MANUFACTURER_ID) {
  453. dev_err(dev, "Manufacturer ID: Got 0x%02x, expected 0x%02x\n",
  454. val, CAP11XX_MANUFACTURER_ID);
  455. return -ENXIO;
  456. }
  457. error = regmap_read(priv->regmap, CAP11XX_REG_REVISION, &rev);
  458. if (error < 0)
  459. return error;
  460. dev_info(dev, "CAP11XX detected, model %s, revision 0x%02x\n",
  461. id->name, rev);
  462. priv->model = cap;
  463. dev_info(dev, "CAP11XX device detected, model %s, revision 0x%02x\n",
  464. id->name, rev);
  465. error = cap11xx_init_keys(priv);
  466. if (error)
  467. return error;
  468. priv->idev = devm_input_allocate_device(dev);
  469. if (!priv->idev)
  470. return -ENOMEM;
  471. priv->idev->name = "CAP11XX capacitive touch sensor";
  472. priv->idev->id.bustype = BUS_I2C;
  473. priv->idev->evbit[0] = BIT_MASK(EV_KEY);
  474. if (of_property_read_bool(dev->of_node, "autorepeat"))
  475. __set_bit(EV_REP, priv->idev->evbit);
  476. for (i = 0; i < cap->num_channels; i++)
  477. __set_bit(priv->keycodes[i], priv->idev->keybit);
  478. __clear_bit(KEY_RESERVED, priv->idev->keybit);
  479. priv->idev->keycode = priv->keycodes;
  480. priv->idev->keycodesize = sizeof(priv->keycodes[0]);
  481. priv->idev->keycodemax = cap->num_channels;
  482. priv->idev->id.vendor = CAP11XX_MANUFACTURER_ID;
  483. priv->idev->id.product = cap->product_id;
  484. priv->idev->id.version = rev;
  485. priv->idev->open = cap11xx_input_open;
  486. priv->idev->close = cap11xx_input_close;
  487. error = cap11xx_init_leds(dev, priv, cap->num_leds);
  488. if (error)
  489. return error;
  490. input_set_drvdata(priv->idev, priv);
  491. /*
  492. * Put the device in deep sleep mode for now.
  493. * ->open() will bring it back once the it is actually needed.
  494. */
  495. cap11xx_set_sleep(priv, true);
  496. error = input_register_device(priv->idev);
  497. if (error)
  498. return error;
  499. error = devm_request_threaded_irq(dev, i2c_client->irq,
  500. NULL, cap11xx_thread_func,
  501. IRQF_ONESHOT, dev_name(dev), priv);
  502. if (error)
  503. return error;
  504. return 0;
  505. }
  506. static const struct cap11xx_hw_model cap1106_model = {
  507. .product_id = 0x55, .num_channels = 6, .num_leds = 0,
  508. .has_gain = true,
  509. .has_irq_config = true,
  510. };
  511. static const struct cap11xx_hw_model cap1126_model = {
  512. .product_id = 0x53, .num_channels = 6, .num_leds = 2,
  513. .has_gain = true,
  514. .has_irq_config = true,
  515. };
  516. static const struct cap11xx_hw_model cap1188_model = {
  517. .product_id = 0x50, .num_channels = 8, .num_leds = 8,
  518. .has_gain = true,
  519. .has_irq_config = true,
  520. };
  521. static const struct cap11xx_hw_model cap1203_model = {
  522. .product_id = 0x6d, .num_channels = 3, .num_leds = 0,
  523. };
  524. static const struct cap11xx_hw_model cap1206_model = {
  525. .product_id = 0x67, .num_channels = 6, .num_leds = 0,
  526. };
  527. static const struct cap11xx_hw_model cap1293_model = {
  528. .product_id = 0x6f, .num_channels = 3, .num_leds = 0,
  529. .has_gain = true,
  530. .has_sensitivity_control = true,
  531. .has_signal_guard = true,
  532. };
  533. static const struct cap11xx_hw_model cap1298_model = {
  534. .product_id = 0x71, .num_channels = 8, .num_leds = 0,
  535. .has_gain = true,
  536. .has_sensitivity_control = true,
  537. .has_signal_guard = true,
  538. };
  539. static const struct of_device_id cap11xx_dt_ids[] = {
  540. { .compatible = "microchip,cap1106", .data = &cap1106_model },
  541. { .compatible = "microchip,cap1126", .data = &cap1126_model },
  542. { .compatible = "microchip,cap1188", .data = &cap1188_model },
  543. { .compatible = "microchip,cap1203", .data = &cap1203_model },
  544. { .compatible = "microchip,cap1206", .data = &cap1206_model },
  545. { .compatible = "microchip,cap1293", .data = &cap1293_model },
  546. { .compatible = "microchip,cap1298", .data = &cap1298_model },
  547. { }
  548. };
  549. MODULE_DEVICE_TABLE(of, cap11xx_dt_ids);
  550. static const struct i2c_device_id cap11xx_i2c_ids[] = {
  551. { "cap1106", (kernel_ulong_t)&cap1106_model },
  552. { "cap1126", (kernel_ulong_t)&cap1126_model },
  553. { "cap1188", (kernel_ulong_t)&cap1188_model },
  554. { "cap1203", (kernel_ulong_t)&cap1203_model },
  555. { "cap1206", (kernel_ulong_t)&cap1206_model },
  556. { "cap1293", (kernel_ulong_t)&cap1293_model },
  557. { "cap1298", (kernel_ulong_t)&cap1298_model },
  558. { }
  559. };
  560. MODULE_DEVICE_TABLE(i2c, cap11xx_i2c_ids);
  561. static struct i2c_driver cap11xx_i2c_driver = {
  562. .driver = {
  563. .name = "cap11xx",
  564. .of_match_table = cap11xx_dt_ids,
  565. },
  566. .id_table = cap11xx_i2c_ids,
  567. .probe = cap11xx_i2c_probe,
  568. };
  569. module_i2c_driver(cap11xx_i2c_driver);
  570. MODULE_DESCRIPTION("Microchip CAP11XX driver");
  571. MODULE_AUTHOR("Daniel Mack <linux@zonque.org>");
  572. MODULE_LICENSE("GPL v2");