rmi_f11.c 40 KB

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  1. /*
  2. * Copyright (c) 2011-2015 Synaptics Incorporated
  3. * Copyright (c) 2011 Unixphere
  4. *
  5. * This program is free software; you can redistribute it and/or modify it
  6. * under the terms of the GNU General Public License version 2 as published by
  7. * the Free Software Foundation.
  8. */
  9. #include <linux/kernel.h>
  10. #include <linux/delay.h>
  11. #include <linux/device.h>
  12. #include <linux/input.h>
  13. #include <linux/input/mt.h>
  14. #include <linux/rmi.h>
  15. #include <linux/slab.h>
  16. #include <linux/of.h>
  17. #include "rmi_driver.h"
  18. #include "rmi_2d_sensor.h"
  19. #define F11_MAX_NUM_OF_FINGERS 10
  20. #define F11_MAX_NUM_OF_TOUCH_SHAPES 16
  21. #define FINGER_STATE_MASK 0x03
  22. #define F11_CTRL_SENSOR_MAX_X_POS_OFFSET 6
  23. #define F11_CTRL_SENSOR_MAX_Y_POS_OFFSET 8
  24. #define DEFAULT_XY_MAX 9999
  25. #define DEFAULT_MAX_ABS_MT_PRESSURE 255
  26. #define DEFAULT_MAX_ABS_MT_TOUCH 15
  27. #define DEFAULT_MAX_ABS_MT_ORIENTATION 1
  28. #define DEFAULT_MIN_ABS_MT_TRACKING_ID 1
  29. #define DEFAULT_MAX_ABS_MT_TRACKING_ID 10
  30. /** A note about RMI4 F11 register structure.
  31. *
  32. * The properties for
  33. * a given sensor are described by its query registers. The number of query
  34. * registers and the layout of their contents are described by the F11 device
  35. * queries as well as the sensor query information.
  36. *
  37. * Similarly, each sensor has control registers that govern its behavior. The
  38. * size and layout of the control registers for a given sensor can be determined
  39. * by parsing that sensors query registers.
  40. *
  41. * And in a likewise fashion, each sensor has data registers where it reports
  42. * its touch data and other interesting stuff. The size and layout of a
  43. * sensors data registers must be determined by parsing its query registers.
  44. *
  45. * The short story is that we need to read and parse a lot of query
  46. * registers in order to determine the attributes of a sensor. Then
  47. * we need to use that data to compute the size of the control and data
  48. * registers for sensor.
  49. *
  50. * The end result is that we have a number of structs that aren't used to
  51. * directly generate the input events, but their size, location and contents
  52. * are critical to determining where the data we are interested in lives.
  53. *
  54. * At this time, the driver does not yet comprehend all possible F11
  55. * configuration options, but it should be sufficient to cover 99% of RMI4 F11
  56. * devices currently in the field.
  57. */
  58. /* maximum ABS_MT_POSITION displacement (in mm) */
  59. #define DMAX 10
  60. /**
  61. * @rezero - writing this to the F11 command register will cause the sensor to
  62. * calibrate to the current capacitive state.
  63. */
  64. #define RMI_F11_REZERO 0x01
  65. #define RMI_F11_HAS_QUERY9 (1 << 3)
  66. #define RMI_F11_HAS_QUERY11 (1 << 4)
  67. #define RMI_F11_HAS_QUERY12 (1 << 5)
  68. #define RMI_F11_HAS_QUERY27 (1 << 6)
  69. #define RMI_F11_HAS_QUERY28 (1 << 7)
  70. /** Defs for Query 1 */
  71. #define RMI_F11_NR_FINGERS_MASK 0x07
  72. #define RMI_F11_HAS_REL (1 << 3)
  73. #define RMI_F11_HAS_ABS (1 << 4)
  74. #define RMI_F11_HAS_GESTURES (1 << 5)
  75. #define RMI_F11_HAS_SENSITIVITY_ADJ (1 << 6)
  76. #define RMI_F11_CONFIGURABLE (1 << 7)
  77. /** Defs for Query 2, 3, and 4. */
  78. #define RMI_F11_NR_ELECTRODES_MASK 0x7F
  79. /** Defs for Query 5 */
  80. #define RMI_F11_ABS_DATA_SIZE_MASK 0x03
  81. #define RMI_F11_HAS_ANCHORED_FINGER (1 << 2)
  82. #define RMI_F11_HAS_ADJ_HYST (1 << 3)
  83. #define RMI_F11_HAS_DRIBBLE (1 << 4)
  84. #define RMI_F11_HAS_BENDING_CORRECTION (1 << 5)
  85. #define RMI_F11_HAS_LARGE_OBJECT_SUPPRESSION (1 << 6)
  86. #define RMI_F11_HAS_JITTER_FILTER (1 << 7)
  87. /** Defs for Query 7 */
  88. #define RMI_F11_HAS_SINGLE_TAP (1 << 0)
  89. #define RMI_F11_HAS_TAP_AND_HOLD (1 << 1)
  90. #define RMI_F11_HAS_DOUBLE_TAP (1 << 2)
  91. #define RMI_F11_HAS_EARLY_TAP (1 << 3)
  92. #define RMI_F11_HAS_FLICK (1 << 4)
  93. #define RMI_F11_HAS_PRESS (1 << 5)
  94. #define RMI_F11_HAS_PINCH (1 << 6)
  95. #define RMI_F11_HAS_CHIRAL (1 << 7)
  96. /** Defs for Query 8 */
  97. #define RMI_F11_HAS_PALM_DET (1 << 0)
  98. #define RMI_F11_HAS_ROTATE (1 << 1)
  99. #define RMI_F11_HAS_TOUCH_SHAPES (1 << 2)
  100. #define RMI_F11_HAS_SCROLL_ZONES (1 << 3)
  101. #define RMI_F11_HAS_INDIVIDUAL_SCROLL_ZONES (1 << 4)
  102. #define RMI_F11_HAS_MF_SCROLL (1 << 5)
  103. #define RMI_F11_HAS_MF_EDGE_MOTION (1 << 6)
  104. #define RMI_F11_HAS_MF_SCROLL_INERTIA (1 << 7)
  105. /** Defs for Query 9. */
  106. #define RMI_F11_HAS_PEN (1 << 0)
  107. #define RMI_F11_HAS_PROXIMITY (1 << 1)
  108. #define RMI_F11_HAS_PALM_DET_SENSITIVITY (1 << 2)
  109. #define RMI_F11_HAS_SUPPRESS_ON_PALM_DETECT (1 << 3)
  110. #define RMI_F11_HAS_TWO_PEN_THRESHOLDS (1 << 4)
  111. #define RMI_F11_HAS_CONTACT_GEOMETRY (1 << 5)
  112. #define RMI_F11_HAS_PEN_HOVER_DISCRIMINATION (1 << 6)
  113. #define RMI_F11_HAS_PEN_FILTERS (1 << 7)
  114. /** Defs for Query 10. */
  115. #define RMI_F11_NR_TOUCH_SHAPES_MASK 0x1F
  116. /** Defs for Query 11 */
  117. #define RMI_F11_HAS_Z_TUNING (1 << 0)
  118. #define RMI_F11_HAS_ALGORITHM_SELECTION (1 << 1)
  119. #define RMI_F11_HAS_W_TUNING (1 << 2)
  120. #define RMI_F11_HAS_PITCH_INFO (1 << 3)
  121. #define RMI_F11_HAS_FINGER_SIZE (1 << 4)
  122. #define RMI_F11_HAS_SEGMENTATION_AGGRESSIVENESS (1 << 5)
  123. #define RMI_F11_HAS_XY_CLIP (1 << 6)
  124. #define RMI_F11_HAS_DRUMMING_FILTER (1 << 7)
  125. /** Defs for Query 12. */
  126. #define RMI_F11_HAS_GAPLESS_FINGER (1 << 0)
  127. #define RMI_F11_HAS_GAPLESS_FINGER_TUNING (1 << 1)
  128. #define RMI_F11_HAS_8BIT_W (1 << 2)
  129. #define RMI_F11_HAS_ADJUSTABLE_MAPPING (1 << 3)
  130. #define RMI_F11_HAS_INFO2 (1 << 4)
  131. #define RMI_F11_HAS_PHYSICAL_PROPS (1 << 5)
  132. #define RMI_F11_HAS_FINGER_LIMIT (1 << 6)
  133. #define RMI_F11_HAS_LINEAR_COEFF (1 << 7)
  134. /** Defs for Query 13. */
  135. #define RMI_F11_JITTER_WINDOW_MASK 0x1F
  136. #define RMI_F11_JITTER_FILTER_MASK 0x60
  137. #define RMI_F11_JITTER_FILTER_SHIFT 5
  138. /** Defs for Query 14. */
  139. #define RMI_F11_LIGHT_CONTROL_MASK 0x03
  140. #define RMI_F11_IS_CLEAR (1 << 2)
  141. #define RMI_F11_CLICKPAD_PROPS_MASK 0x18
  142. #define RMI_F11_CLICKPAD_PROPS_SHIFT 3
  143. #define RMI_F11_MOUSE_BUTTONS_MASK 0x60
  144. #define RMI_F11_MOUSE_BUTTONS_SHIFT 5
  145. #define RMI_F11_HAS_ADVANCED_GESTURES (1 << 7)
  146. #define RMI_F11_QUERY_SIZE 4
  147. #define RMI_F11_QUERY_GESTURE_SIZE 2
  148. #define F11_LIGHT_CTL_NONE 0x00
  149. #define F11_LUXPAD 0x01
  150. #define F11_DUAL_MODE 0x02
  151. #define F11_NOT_CLICKPAD 0x00
  152. #define F11_HINGED_CLICKPAD 0x01
  153. #define F11_UNIFORM_CLICKPAD 0x02
  154. /**
  155. * Query registers 1 through 4 are always present.
  156. *
  157. * @nr_fingers - describes the maximum number of fingers the 2-D sensor
  158. * supports.
  159. * @has_rel - the sensor supports relative motion reporting.
  160. * @has_abs - the sensor supports absolute poition reporting.
  161. * @has_gestures - the sensor supports gesture reporting.
  162. * @has_sensitivity_adjust - the sensor supports a global sensitivity
  163. * adjustment.
  164. * @configurable - the sensor supports various configuration options.
  165. * @num_of_x_electrodes - the maximum number of electrodes the 2-D sensor
  166. * supports on the X axis.
  167. * @num_of_y_electrodes - the maximum number of electrodes the 2-D sensor
  168. * supports on the Y axis.
  169. * @max_electrodes - the total number of X and Y electrodes that may be
  170. * configured.
  171. *
  172. * Query 5 is present if the has_abs bit is set.
  173. *
  174. * @abs_data_size - describes the format of data reported by the absolute
  175. * data source. Only one format (the kind used here) is supported at this
  176. * time.
  177. * @has_anchored_finger - then the sensor supports the high-precision second
  178. * finger tracking provided by the manual tracking and motion sensitivity
  179. * options.
  180. * @has_adjust_hyst - the difference between the finger release threshold and
  181. * the touch threshold.
  182. * @has_dribble - the sensor supports the generation of dribble interrupts,
  183. * which may be enabled or disabled with the dribble control bit.
  184. * @has_bending_correction - Bending related data registers 28 and 36, and
  185. * control register 52..57 are present.
  186. * @has_large_object_suppression - control register 58 and data register 28
  187. * exist.
  188. * @has_jitter_filter - query 13 and control 73..76 exist.
  189. *
  190. * Gesture information queries 7 and 8 are present if has_gestures bit is set.
  191. *
  192. * @has_single_tap - a basic single-tap gesture is supported.
  193. * @has_tap_n_hold - tap-and-hold gesture is supported.
  194. * @has_double_tap - double-tap gesture is supported.
  195. * @has_early_tap - early tap is supported and reported as soon as the finger
  196. * lifts for any tap event that could be interpreted as either a single tap
  197. * or as the first tap of a double-tap or tap-and-hold gesture.
  198. * @has_flick - flick detection is supported.
  199. * @has_press - press gesture reporting is supported.
  200. * @has_pinch - pinch gesture detection is supported.
  201. * @has_palm_det - the 2-D sensor notifies the host whenever a large conductive
  202. * object such as a palm or a cheek touches the 2-D sensor.
  203. * @has_rotate - rotation gesture detection is supported.
  204. * @has_touch_shapes - TouchShapes are supported. A TouchShape is a fixed
  205. * rectangular area on the sensor that behaves like a capacitive button.
  206. * @has_scroll_zones - scrolling areas near the sensor edges are supported.
  207. * @has_individual_scroll_zones - if 1, then 4 scroll zones are supported;
  208. * if 0, then only two are supported.
  209. * @has_mf_scroll - the multifinger_scrolling bit will be set when
  210. * more than one finger is involved in a scrolling action.
  211. *
  212. * Convenience for checking bytes in the gesture info registers. This is done
  213. * often enough that we put it here to declutter the conditionals
  214. *
  215. * @query7_nonzero - true if none of the query 7 bits are set
  216. * @query8_nonzero - true if none of the query 8 bits are set
  217. *
  218. * Query 9 is present if the has_query9 is set.
  219. *
  220. * @has_pen - detection of a stylus is supported and registers F11_2D_Ctrl20
  221. * and F11_2D_Ctrl21 exist.
  222. * @has_proximity - detection of fingers near the sensor is supported and
  223. * registers F11_2D_Ctrl22 through F11_2D_Ctrl26 exist.
  224. * @has_palm_det_sensitivity - the sensor supports the palm detect sensitivity
  225. * feature and register F11_2D_Ctrl27 exists.
  226. * @has_two_pen_thresholds - is has_pen is also set, then F11_2D_Ctrl35 exists.
  227. * @has_contact_geometry - the sensor supports the use of contact geometry to
  228. * map absolute X and Y target positions and registers F11_2D_Data18
  229. * through F11_2D_Data27 exist.
  230. *
  231. * Touch shape info (query 10) is present if has_touch_shapes is set.
  232. *
  233. * @nr_touch_shapes - the total number of touch shapes supported.
  234. *
  235. * Query 11 is present if the has_query11 bit is set in query 0.
  236. *
  237. * @has_z_tuning - if set, the sensor supports Z tuning and registers
  238. * F11_2D_Ctrl29 through F11_2D_Ctrl33 exist.
  239. * @has_algorithm_selection - controls choice of noise suppression algorithm
  240. * @has_w_tuning - the sensor supports Wx and Wy scaling and registers
  241. * F11_2D_Ctrl36 through F11_2D_Ctrl39 exist.
  242. * @has_pitch_info - the X and Y pitches of the sensor electrodes can be
  243. * configured and registers F11_2D_Ctrl40 and F11_2D_Ctrl41 exist.
  244. * @has_finger_size - the default finger width settings for the
  245. * sensor can be configured and registers F11_2D_Ctrl42 through F11_2D_Ctrl44
  246. * exist.
  247. * @has_segmentation_aggressiveness - the sensor’s ability to distinguish
  248. * multiple objects close together can be configured and register F11_2D_Ctrl45
  249. * exists.
  250. * @has_XY_clip - the inactive outside borders of the sensor can be
  251. * configured and registers F11_2D_Ctrl46 through F11_2D_Ctrl49 exist.
  252. * @has_drumming_filter - the sensor can be configured to distinguish
  253. * between a fast flick and a quick drumming movement and registers
  254. * F11_2D_Ctrl50 and F11_2D_Ctrl51 exist.
  255. *
  256. * Query 12 is present if hasQuery12 bit is set.
  257. *
  258. * @has_gapless_finger - control registers relating to gapless finger are
  259. * present.
  260. * @has_gapless_finger_tuning - additional control and data registers relating
  261. * to gapless finger are present.
  262. * @has_8bit_w - larger W value reporting is supported.
  263. * @has_adjustable_mapping - TBD
  264. * @has_info2 - the general info query14 is present
  265. * @has_physical_props - additional queries describing the physical properties
  266. * of the sensor are present.
  267. * @has_finger_limit - indicates that F11 Ctrl 80 exists.
  268. * @has_linear_coeff - indicates that F11 Ctrl 81 exists.
  269. *
  270. * Query 13 is present if Query 5's has_jitter_filter bit is set.
  271. * @jitter_window_size - used by Design Studio 4.
  272. * @jitter_filter_type - used by Design Studio 4.
  273. *
  274. * Query 14 is present if query 12's has_general_info2 flag is set.
  275. *
  276. * @light_control - Indicates what light/led control features are present, if
  277. * any.
  278. * @is_clear - if set, this is a clear sensor (indicating direct pointing
  279. * application), otherwise it's opaque (indicating indirect pointing).
  280. * @clickpad_props - specifies if this is a clickpad, and if so what sort of
  281. * mechanism it uses
  282. * @mouse_buttons - specifies the number of mouse buttons present (if any).
  283. * @has_advanced_gestures - advanced driver gestures are supported.
  284. */
  285. struct f11_2d_sensor_queries {
  286. /* query1 */
  287. u8 nr_fingers;
  288. bool has_rel;
  289. bool has_abs;
  290. bool has_gestures;
  291. bool has_sensitivity_adjust;
  292. bool configurable;
  293. /* query2 */
  294. u8 nr_x_electrodes;
  295. /* query3 */
  296. u8 nr_y_electrodes;
  297. /* query4 */
  298. u8 max_electrodes;
  299. /* query5 */
  300. u8 abs_data_size;
  301. bool has_anchored_finger;
  302. bool has_adj_hyst;
  303. bool has_dribble;
  304. bool has_bending_correction;
  305. bool has_large_object_suppression;
  306. bool has_jitter_filter;
  307. u8 f11_2d_query6;
  308. /* query 7 */
  309. bool has_single_tap;
  310. bool has_tap_n_hold;
  311. bool has_double_tap;
  312. bool has_early_tap;
  313. bool has_flick;
  314. bool has_press;
  315. bool has_pinch;
  316. bool has_chiral;
  317. bool query7_nonzero;
  318. /* query 8 */
  319. bool has_palm_det;
  320. bool has_rotate;
  321. bool has_touch_shapes;
  322. bool has_scroll_zones;
  323. bool has_individual_scroll_zones;
  324. bool has_mf_scroll;
  325. bool has_mf_edge_motion;
  326. bool has_mf_scroll_inertia;
  327. bool query8_nonzero;
  328. /* Query 9 */
  329. bool has_pen;
  330. bool has_proximity;
  331. bool has_palm_det_sensitivity;
  332. bool has_suppress_on_palm_detect;
  333. bool has_two_pen_thresholds;
  334. bool has_contact_geometry;
  335. bool has_pen_hover_discrimination;
  336. bool has_pen_filters;
  337. /* Query 10 */
  338. u8 nr_touch_shapes;
  339. /* Query 11. */
  340. bool has_z_tuning;
  341. bool has_algorithm_selection;
  342. bool has_w_tuning;
  343. bool has_pitch_info;
  344. bool has_finger_size;
  345. bool has_segmentation_aggressiveness;
  346. bool has_XY_clip;
  347. bool has_drumming_filter;
  348. /* Query 12 */
  349. bool has_gapless_finger;
  350. bool has_gapless_finger_tuning;
  351. bool has_8bit_w;
  352. bool has_adjustable_mapping;
  353. bool has_info2;
  354. bool has_physical_props;
  355. bool has_finger_limit;
  356. bool has_linear_coeff_2;
  357. /* Query 13 */
  358. u8 jitter_window_size;
  359. u8 jitter_filter_type;
  360. /* Query 14 */
  361. u8 light_control;
  362. bool is_clear;
  363. u8 clickpad_props;
  364. u8 mouse_buttons;
  365. bool has_advanced_gestures;
  366. /* Query 15 - 18 */
  367. u16 x_sensor_size_mm;
  368. u16 y_sensor_size_mm;
  369. };
  370. /* Defs for Ctrl0. */
  371. #define RMI_F11_REPORT_MODE_MASK 0x07
  372. #define RMI_F11_ABS_POS_FILT (1 << 3)
  373. #define RMI_F11_REL_POS_FILT (1 << 4)
  374. #define RMI_F11_REL_BALLISTICS (1 << 5)
  375. #define RMI_F11_DRIBBLE (1 << 6)
  376. #define RMI_F11_REPORT_BEYOND_CLIP (1 << 7)
  377. /* Defs for Ctrl1. */
  378. #define RMI_F11_PALM_DETECT_THRESH_MASK 0x0F
  379. #define RMI_F11_MOTION_SENSITIVITY_MASK 0x30
  380. #define RMI_F11_MANUAL_TRACKING (1 << 6)
  381. #define RMI_F11_MANUAL_TRACKED_FINGER (1 << 7)
  382. #define RMI_F11_DELTA_X_THRESHOLD 2
  383. #define RMI_F11_DELTA_Y_THRESHOLD 3
  384. #define RMI_F11_CTRL_REG_COUNT 12
  385. struct f11_2d_ctrl {
  386. u8 ctrl0_11[RMI_F11_CTRL_REG_COUNT];
  387. u16 ctrl0_11_address;
  388. };
  389. #define RMI_F11_ABS_BYTES 5
  390. #define RMI_F11_REL_BYTES 2
  391. /* Defs for Data 8 */
  392. #define RMI_F11_SINGLE_TAP (1 << 0)
  393. #define RMI_F11_TAP_AND_HOLD (1 << 1)
  394. #define RMI_F11_DOUBLE_TAP (1 << 2)
  395. #define RMI_F11_EARLY_TAP (1 << 3)
  396. #define RMI_F11_FLICK (1 << 4)
  397. #define RMI_F11_PRESS (1 << 5)
  398. #define RMI_F11_PINCH (1 << 6)
  399. /* Defs for Data 9 */
  400. #define RMI_F11_PALM_DETECT (1 << 0)
  401. #define RMI_F11_ROTATE (1 << 1)
  402. #define RMI_F11_SHAPE (1 << 2)
  403. #define RMI_F11_SCROLLZONE (1 << 3)
  404. #define RMI_F11_GESTURE_FINGER_COUNT_MASK 0x70
  405. /** Handy pointers into our data buffer.
  406. *
  407. * @f_state - start of finger state registers.
  408. * @abs_pos - start of absolute position registers (if present).
  409. * @rel_pos - start of relative data registers (if present).
  410. * @gest_1 - gesture flags (if present).
  411. * @gest_2 - gesture flags & finger count (if present).
  412. * @pinch - pinch motion register (if present).
  413. * @flick - flick distance X & Y, flick time (if present).
  414. * @rotate - rotate motion and finger separation.
  415. * @multi_scroll - chiral deltas for X and Y (if present).
  416. * @scroll_zones - scroll deltas for 4 regions (if present).
  417. */
  418. struct f11_2d_data {
  419. u8 *f_state;
  420. u8 *abs_pos;
  421. s8 *rel_pos;
  422. u8 *gest_1;
  423. u8 *gest_2;
  424. s8 *pinch;
  425. u8 *flick;
  426. u8 *rotate;
  427. u8 *shapes;
  428. s8 *multi_scroll;
  429. s8 *scroll_zones;
  430. };
  431. /** Data pertaining to F11 in general. For per-sensor data, see struct
  432. * f11_2d_sensor.
  433. *
  434. * @dev_query - F11 device specific query registers.
  435. * @dev_controls - F11 device specific control registers.
  436. * @dev_controls_mutex - lock for the control registers.
  437. * @rezero_wait_ms - if nonzero, upon resume we will wait this many
  438. * milliseconds before rezeroing the sensor(s). This is useful in systems with
  439. * poor electrical behavior on resume, where the initial calibration of the
  440. * sensor(s) coming out of sleep state may be bogus.
  441. * @sensors - per sensor data structures.
  442. */
  443. struct f11_data {
  444. bool has_query9;
  445. bool has_query11;
  446. bool has_query12;
  447. bool has_query27;
  448. bool has_query28;
  449. bool has_acm;
  450. struct f11_2d_ctrl dev_controls;
  451. struct mutex dev_controls_mutex;
  452. u16 rezero_wait_ms;
  453. struct rmi_2d_sensor sensor;
  454. struct f11_2d_sensor_queries sens_query;
  455. struct f11_2d_data data;
  456. struct rmi_2d_sensor_platform_data sensor_pdata;
  457. unsigned long *abs_mask;
  458. unsigned long *rel_mask;
  459. unsigned long *result_bits;
  460. };
  461. enum f11_finger_state {
  462. F11_NO_FINGER = 0x00,
  463. F11_PRESENT = 0x01,
  464. F11_INACCURATE = 0x02,
  465. F11_RESERVED = 0x03
  466. };
  467. static void rmi_f11_rel_pos_report(struct f11_data *f11, u8 n_finger)
  468. {
  469. struct rmi_2d_sensor *sensor = &f11->sensor;
  470. struct f11_2d_data *data = &f11->data;
  471. s8 x, y;
  472. x = data->rel_pos[n_finger * RMI_F11_REL_BYTES];
  473. y = data->rel_pos[n_finger * RMI_F11_REL_BYTES + 1];
  474. rmi_2d_sensor_rel_report(sensor, x, y);
  475. }
  476. static void rmi_f11_abs_pos_process(struct f11_data *f11,
  477. struct rmi_2d_sensor *sensor,
  478. struct rmi_2d_sensor_abs_object *obj,
  479. enum f11_finger_state finger_state,
  480. u8 n_finger)
  481. {
  482. struct f11_2d_data *data = &f11->data;
  483. u8 *pos_data = &data->abs_pos[n_finger * RMI_F11_ABS_BYTES];
  484. int tool_type = MT_TOOL_FINGER;
  485. switch (finger_state) {
  486. case F11_PRESENT:
  487. obj->type = RMI_2D_OBJECT_FINGER;
  488. break;
  489. default:
  490. obj->type = RMI_2D_OBJECT_NONE;
  491. }
  492. obj->mt_tool = tool_type;
  493. obj->x = (pos_data[0] << 4) | (pos_data[2] & 0x0F);
  494. obj->y = (pos_data[1] << 4) | (pos_data[2] >> 4);
  495. obj->z = pos_data[4];
  496. obj->wx = pos_data[3] & 0x0f;
  497. obj->wy = pos_data[3] >> 4;
  498. rmi_2d_sensor_abs_process(sensor, obj, n_finger);
  499. }
  500. static inline u8 rmi_f11_parse_finger_state(const u8 *f_state, u8 n_finger)
  501. {
  502. return (f_state[n_finger / 4] >> (2 * (n_finger % 4))) &
  503. FINGER_STATE_MASK;
  504. }
  505. static void rmi_f11_finger_handler(struct f11_data *f11,
  506. struct rmi_2d_sensor *sensor,
  507. unsigned long *irq_bits, int num_irq_regs,
  508. int size)
  509. {
  510. const u8 *f_state = f11->data.f_state;
  511. u8 finger_state;
  512. u8 i;
  513. int abs_fingers;
  514. int rel_fingers;
  515. int abs_size = sensor->nbr_fingers * RMI_F11_ABS_BYTES;
  516. int abs_bits = bitmap_and(f11->result_bits, irq_bits, f11->abs_mask,
  517. num_irq_regs * 8);
  518. int rel_bits = bitmap_and(f11->result_bits, irq_bits, f11->rel_mask,
  519. num_irq_regs * 8);
  520. if (abs_bits) {
  521. if (abs_size > size)
  522. abs_fingers = size / RMI_F11_ABS_BYTES;
  523. else
  524. abs_fingers = sensor->nbr_fingers;
  525. for (i = 0; i < abs_fingers; i++) {
  526. /* Possible of having 4 fingers per f_state register */
  527. finger_state = rmi_f11_parse_finger_state(f_state, i);
  528. if (finger_state == F11_RESERVED) {
  529. pr_err("Invalid finger state[%d]: 0x%02x", i,
  530. finger_state);
  531. continue;
  532. }
  533. rmi_f11_abs_pos_process(f11, sensor, &sensor->objs[i],
  534. finger_state, i);
  535. }
  536. }
  537. if (rel_bits) {
  538. if ((abs_size + sensor->nbr_fingers * RMI_F11_REL_BYTES) > size)
  539. rel_fingers = (size - abs_size) / RMI_F11_REL_BYTES;
  540. else
  541. rel_fingers = sensor->nbr_fingers;
  542. for (i = 0; i < rel_fingers; i++)
  543. rmi_f11_rel_pos_report(f11, i);
  544. }
  545. if (abs_bits) {
  546. /*
  547. * the absolute part is made in 2 parts to allow the kernel
  548. * tracking to take place.
  549. */
  550. if (sensor->kernel_tracking)
  551. input_mt_assign_slots(sensor->input,
  552. sensor->tracking_slots,
  553. sensor->tracking_pos,
  554. sensor->nbr_fingers,
  555. sensor->dmax);
  556. for (i = 0; i < abs_fingers; i++) {
  557. finger_state = rmi_f11_parse_finger_state(f_state, i);
  558. if (finger_state == F11_RESERVED)
  559. /* no need to send twice the error */
  560. continue;
  561. rmi_2d_sensor_abs_report(sensor, &sensor->objs[i], i);
  562. }
  563. input_mt_sync_frame(sensor->input);
  564. }
  565. }
  566. static int f11_2d_construct_data(struct f11_data *f11)
  567. {
  568. struct rmi_2d_sensor *sensor = &f11->sensor;
  569. struct f11_2d_sensor_queries *query = &f11->sens_query;
  570. struct f11_2d_data *data = &f11->data;
  571. int i;
  572. sensor->nbr_fingers = (query->nr_fingers == 5 ? 10 :
  573. query->nr_fingers + 1);
  574. sensor->pkt_size = DIV_ROUND_UP(sensor->nbr_fingers, 4);
  575. if (query->has_abs) {
  576. sensor->pkt_size += (sensor->nbr_fingers * 5);
  577. sensor->attn_size = sensor->pkt_size;
  578. }
  579. if (query->has_rel)
  580. sensor->pkt_size += (sensor->nbr_fingers * 2);
  581. /* Check if F11_2D_Query7 is non-zero */
  582. if (query->query7_nonzero)
  583. sensor->pkt_size += sizeof(u8);
  584. /* Check if F11_2D_Query7 or F11_2D_Query8 is non-zero */
  585. if (query->query7_nonzero || query->query8_nonzero)
  586. sensor->pkt_size += sizeof(u8);
  587. if (query->has_pinch || query->has_flick || query->has_rotate) {
  588. sensor->pkt_size += 3;
  589. if (!query->has_flick)
  590. sensor->pkt_size--;
  591. if (!query->has_rotate)
  592. sensor->pkt_size--;
  593. }
  594. if (query->has_touch_shapes)
  595. sensor->pkt_size +=
  596. DIV_ROUND_UP(query->nr_touch_shapes + 1, 8);
  597. sensor->data_pkt = devm_kzalloc(&sensor->fn->dev, sensor->pkt_size,
  598. GFP_KERNEL);
  599. if (!sensor->data_pkt)
  600. return -ENOMEM;
  601. data->f_state = sensor->data_pkt;
  602. i = DIV_ROUND_UP(sensor->nbr_fingers, 4);
  603. if (query->has_abs) {
  604. data->abs_pos = &sensor->data_pkt[i];
  605. i += (sensor->nbr_fingers * RMI_F11_ABS_BYTES);
  606. }
  607. if (query->has_rel) {
  608. data->rel_pos = &sensor->data_pkt[i];
  609. i += (sensor->nbr_fingers * RMI_F11_REL_BYTES);
  610. }
  611. if (query->query7_nonzero) {
  612. data->gest_1 = &sensor->data_pkt[i];
  613. i++;
  614. }
  615. if (query->query7_nonzero || query->query8_nonzero) {
  616. data->gest_2 = &sensor->data_pkt[i];
  617. i++;
  618. }
  619. if (query->has_pinch) {
  620. data->pinch = &sensor->data_pkt[i];
  621. i++;
  622. }
  623. if (query->has_flick) {
  624. if (query->has_pinch) {
  625. data->flick = data->pinch;
  626. i += 2;
  627. } else {
  628. data->flick = &sensor->data_pkt[i];
  629. i += 3;
  630. }
  631. }
  632. if (query->has_rotate) {
  633. if (query->has_flick) {
  634. data->rotate = data->flick + 1;
  635. } else {
  636. data->rotate = &sensor->data_pkt[i];
  637. i += 2;
  638. }
  639. }
  640. if (query->has_touch_shapes)
  641. data->shapes = &sensor->data_pkt[i];
  642. return 0;
  643. }
  644. static int f11_read_control_regs(struct rmi_function *fn,
  645. struct f11_2d_ctrl *ctrl, u16 ctrl_base_addr) {
  646. struct rmi_device *rmi_dev = fn->rmi_dev;
  647. int error = 0;
  648. ctrl->ctrl0_11_address = ctrl_base_addr;
  649. error = rmi_read_block(rmi_dev, ctrl_base_addr, ctrl->ctrl0_11,
  650. RMI_F11_CTRL_REG_COUNT);
  651. if (error < 0) {
  652. dev_err(&fn->dev, "Failed to read ctrl0, code: %d.\n", error);
  653. return error;
  654. }
  655. return 0;
  656. }
  657. static int f11_write_control_regs(struct rmi_function *fn,
  658. struct f11_2d_sensor_queries *query,
  659. struct f11_2d_ctrl *ctrl,
  660. u16 ctrl_base_addr)
  661. {
  662. struct rmi_device *rmi_dev = fn->rmi_dev;
  663. int error;
  664. error = rmi_write_block(rmi_dev, ctrl_base_addr, ctrl->ctrl0_11,
  665. RMI_F11_CTRL_REG_COUNT);
  666. if (error < 0)
  667. return error;
  668. return 0;
  669. }
  670. static int rmi_f11_get_query_parameters(struct rmi_device *rmi_dev,
  671. struct f11_data *f11,
  672. struct f11_2d_sensor_queries *sensor_query,
  673. u16 query_base_addr)
  674. {
  675. int query_size;
  676. int rc;
  677. u8 query_buf[RMI_F11_QUERY_SIZE];
  678. bool has_query36 = false;
  679. rc = rmi_read_block(rmi_dev, query_base_addr, query_buf,
  680. RMI_F11_QUERY_SIZE);
  681. if (rc < 0)
  682. return rc;
  683. sensor_query->nr_fingers = query_buf[0] & RMI_F11_NR_FINGERS_MASK;
  684. sensor_query->has_rel = !!(query_buf[0] & RMI_F11_HAS_REL);
  685. sensor_query->has_abs = !!(query_buf[0] & RMI_F11_HAS_ABS);
  686. sensor_query->has_gestures = !!(query_buf[0] & RMI_F11_HAS_GESTURES);
  687. sensor_query->has_sensitivity_adjust =
  688. !!(query_buf[0] & RMI_F11_HAS_SENSITIVITY_ADJ);
  689. sensor_query->configurable = !!(query_buf[0] & RMI_F11_CONFIGURABLE);
  690. sensor_query->nr_x_electrodes =
  691. query_buf[1] & RMI_F11_NR_ELECTRODES_MASK;
  692. sensor_query->nr_y_electrodes =
  693. query_buf[2] & RMI_F11_NR_ELECTRODES_MASK;
  694. sensor_query->max_electrodes =
  695. query_buf[3] & RMI_F11_NR_ELECTRODES_MASK;
  696. query_size = RMI_F11_QUERY_SIZE;
  697. if (sensor_query->has_abs) {
  698. rc = rmi_read(rmi_dev, query_base_addr + query_size, query_buf);
  699. if (rc < 0)
  700. return rc;
  701. sensor_query->abs_data_size =
  702. query_buf[0] & RMI_F11_ABS_DATA_SIZE_MASK;
  703. sensor_query->has_anchored_finger =
  704. !!(query_buf[0] & RMI_F11_HAS_ANCHORED_FINGER);
  705. sensor_query->has_adj_hyst =
  706. !!(query_buf[0] & RMI_F11_HAS_ADJ_HYST);
  707. sensor_query->has_dribble =
  708. !!(query_buf[0] & RMI_F11_HAS_DRIBBLE);
  709. sensor_query->has_bending_correction =
  710. !!(query_buf[0] & RMI_F11_HAS_BENDING_CORRECTION);
  711. sensor_query->has_large_object_suppression =
  712. !!(query_buf[0] & RMI_F11_HAS_LARGE_OBJECT_SUPPRESSION);
  713. sensor_query->has_jitter_filter =
  714. !!(query_buf[0] & RMI_F11_HAS_JITTER_FILTER);
  715. query_size++;
  716. }
  717. if (sensor_query->has_rel) {
  718. rc = rmi_read(rmi_dev, query_base_addr + query_size,
  719. &sensor_query->f11_2d_query6);
  720. if (rc < 0)
  721. return rc;
  722. query_size++;
  723. }
  724. if (sensor_query->has_gestures) {
  725. rc = rmi_read_block(rmi_dev, query_base_addr + query_size,
  726. query_buf, RMI_F11_QUERY_GESTURE_SIZE);
  727. if (rc < 0)
  728. return rc;
  729. sensor_query->has_single_tap =
  730. !!(query_buf[0] & RMI_F11_HAS_SINGLE_TAP);
  731. sensor_query->has_tap_n_hold =
  732. !!(query_buf[0] & RMI_F11_HAS_TAP_AND_HOLD);
  733. sensor_query->has_double_tap =
  734. !!(query_buf[0] & RMI_F11_HAS_DOUBLE_TAP);
  735. sensor_query->has_early_tap =
  736. !!(query_buf[0] & RMI_F11_HAS_EARLY_TAP);
  737. sensor_query->has_flick =
  738. !!(query_buf[0] & RMI_F11_HAS_FLICK);
  739. sensor_query->has_press =
  740. !!(query_buf[0] & RMI_F11_HAS_PRESS);
  741. sensor_query->has_pinch =
  742. !!(query_buf[0] & RMI_F11_HAS_PINCH);
  743. sensor_query->has_chiral =
  744. !!(query_buf[0] & RMI_F11_HAS_CHIRAL);
  745. /* query 8 */
  746. sensor_query->has_palm_det =
  747. !!(query_buf[1] & RMI_F11_HAS_PALM_DET);
  748. sensor_query->has_rotate =
  749. !!(query_buf[1] & RMI_F11_HAS_ROTATE);
  750. sensor_query->has_touch_shapes =
  751. !!(query_buf[1] & RMI_F11_HAS_TOUCH_SHAPES);
  752. sensor_query->has_scroll_zones =
  753. !!(query_buf[1] & RMI_F11_HAS_SCROLL_ZONES);
  754. sensor_query->has_individual_scroll_zones =
  755. !!(query_buf[1] & RMI_F11_HAS_INDIVIDUAL_SCROLL_ZONES);
  756. sensor_query->has_mf_scroll =
  757. !!(query_buf[1] & RMI_F11_HAS_MF_SCROLL);
  758. sensor_query->has_mf_edge_motion =
  759. !!(query_buf[1] & RMI_F11_HAS_MF_EDGE_MOTION);
  760. sensor_query->has_mf_scroll_inertia =
  761. !!(query_buf[1] & RMI_F11_HAS_MF_SCROLL_INERTIA);
  762. sensor_query->query7_nonzero = !!(query_buf[0]);
  763. sensor_query->query8_nonzero = !!(query_buf[1]);
  764. query_size += 2;
  765. }
  766. if (f11->has_query9) {
  767. rc = rmi_read(rmi_dev, query_base_addr + query_size, query_buf);
  768. if (rc < 0)
  769. return rc;
  770. sensor_query->has_pen =
  771. !!(query_buf[0] & RMI_F11_HAS_PEN);
  772. sensor_query->has_proximity =
  773. !!(query_buf[0] & RMI_F11_HAS_PROXIMITY);
  774. sensor_query->has_palm_det_sensitivity =
  775. !!(query_buf[0] & RMI_F11_HAS_PALM_DET_SENSITIVITY);
  776. sensor_query->has_suppress_on_palm_detect =
  777. !!(query_buf[0] & RMI_F11_HAS_SUPPRESS_ON_PALM_DETECT);
  778. sensor_query->has_two_pen_thresholds =
  779. !!(query_buf[0] & RMI_F11_HAS_TWO_PEN_THRESHOLDS);
  780. sensor_query->has_contact_geometry =
  781. !!(query_buf[0] & RMI_F11_HAS_CONTACT_GEOMETRY);
  782. sensor_query->has_pen_hover_discrimination =
  783. !!(query_buf[0] & RMI_F11_HAS_PEN_HOVER_DISCRIMINATION);
  784. sensor_query->has_pen_filters =
  785. !!(query_buf[0] & RMI_F11_HAS_PEN_FILTERS);
  786. query_size++;
  787. }
  788. if (sensor_query->has_touch_shapes) {
  789. rc = rmi_read(rmi_dev, query_base_addr + query_size, query_buf);
  790. if (rc < 0)
  791. return rc;
  792. sensor_query->nr_touch_shapes = query_buf[0] &
  793. RMI_F11_NR_TOUCH_SHAPES_MASK;
  794. query_size++;
  795. }
  796. if (f11->has_query11) {
  797. rc = rmi_read(rmi_dev, query_base_addr + query_size, query_buf);
  798. if (rc < 0)
  799. return rc;
  800. sensor_query->has_z_tuning =
  801. !!(query_buf[0] & RMI_F11_HAS_Z_TUNING);
  802. sensor_query->has_algorithm_selection =
  803. !!(query_buf[0] & RMI_F11_HAS_ALGORITHM_SELECTION);
  804. sensor_query->has_w_tuning =
  805. !!(query_buf[0] & RMI_F11_HAS_W_TUNING);
  806. sensor_query->has_pitch_info =
  807. !!(query_buf[0] & RMI_F11_HAS_PITCH_INFO);
  808. sensor_query->has_finger_size =
  809. !!(query_buf[0] & RMI_F11_HAS_FINGER_SIZE);
  810. sensor_query->has_segmentation_aggressiveness =
  811. !!(query_buf[0] &
  812. RMI_F11_HAS_SEGMENTATION_AGGRESSIVENESS);
  813. sensor_query->has_XY_clip =
  814. !!(query_buf[0] & RMI_F11_HAS_XY_CLIP);
  815. sensor_query->has_drumming_filter =
  816. !!(query_buf[0] & RMI_F11_HAS_DRUMMING_FILTER);
  817. query_size++;
  818. }
  819. if (f11->has_query12) {
  820. rc = rmi_read(rmi_dev, query_base_addr + query_size, query_buf);
  821. if (rc < 0)
  822. return rc;
  823. sensor_query->has_gapless_finger =
  824. !!(query_buf[0] & RMI_F11_HAS_GAPLESS_FINGER);
  825. sensor_query->has_gapless_finger_tuning =
  826. !!(query_buf[0] & RMI_F11_HAS_GAPLESS_FINGER_TUNING);
  827. sensor_query->has_8bit_w =
  828. !!(query_buf[0] & RMI_F11_HAS_8BIT_W);
  829. sensor_query->has_adjustable_mapping =
  830. !!(query_buf[0] & RMI_F11_HAS_ADJUSTABLE_MAPPING);
  831. sensor_query->has_info2 =
  832. !!(query_buf[0] & RMI_F11_HAS_INFO2);
  833. sensor_query->has_physical_props =
  834. !!(query_buf[0] & RMI_F11_HAS_PHYSICAL_PROPS);
  835. sensor_query->has_finger_limit =
  836. !!(query_buf[0] & RMI_F11_HAS_FINGER_LIMIT);
  837. sensor_query->has_linear_coeff_2 =
  838. !!(query_buf[0] & RMI_F11_HAS_LINEAR_COEFF);
  839. query_size++;
  840. }
  841. if (sensor_query->has_jitter_filter) {
  842. rc = rmi_read(rmi_dev, query_base_addr + query_size, query_buf);
  843. if (rc < 0)
  844. return rc;
  845. sensor_query->jitter_window_size = query_buf[0] &
  846. RMI_F11_JITTER_WINDOW_MASK;
  847. sensor_query->jitter_filter_type = (query_buf[0] &
  848. RMI_F11_JITTER_FILTER_MASK) >>
  849. RMI_F11_JITTER_FILTER_SHIFT;
  850. query_size++;
  851. }
  852. if (sensor_query->has_info2) {
  853. rc = rmi_read(rmi_dev, query_base_addr + query_size, query_buf);
  854. if (rc < 0)
  855. return rc;
  856. sensor_query->light_control =
  857. query_buf[0] & RMI_F11_LIGHT_CONTROL_MASK;
  858. sensor_query->is_clear =
  859. !!(query_buf[0] & RMI_F11_IS_CLEAR);
  860. sensor_query->clickpad_props =
  861. (query_buf[0] & RMI_F11_CLICKPAD_PROPS_MASK) >>
  862. RMI_F11_CLICKPAD_PROPS_SHIFT;
  863. sensor_query->mouse_buttons =
  864. (query_buf[0] & RMI_F11_MOUSE_BUTTONS_MASK) >>
  865. RMI_F11_MOUSE_BUTTONS_SHIFT;
  866. sensor_query->has_advanced_gestures =
  867. !!(query_buf[0] & RMI_F11_HAS_ADVANCED_GESTURES);
  868. query_size++;
  869. }
  870. if (sensor_query->has_physical_props) {
  871. rc = rmi_read_block(rmi_dev, query_base_addr
  872. + query_size, query_buf, 4);
  873. if (rc < 0)
  874. return rc;
  875. sensor_query->x_sensor_size_mm =
  876. (query_buf[0] | (query_buf[1] << 8)) / 10;
  877. sensor_query->y_sensor_size_mm =
  878. (query_buf[2] | (query_buf[3] << 8)) / 10;
  879. /*
  880. * query 15 - 18 contain the size of the sensor
  881. * and query 19 - 26 contain bezel dimensions
  882. */
  883. query_size += 12;
  884. }
  885. if (f11->has_query27)
  886. ++query_size;
  887. if (f11->has_query28) {
  888. rc = rmi_read(rmi_dev, query_base_addr + query_size,
  889. query_buf);
  890. if (rc < 0)
  891. return rc;
  892. has_query36 = !!(query_buf[0] & BIT(6));
  893. }
  894. if (has_query36) {
  895. query_size += 2;
  896. rc = rmi_read(rmi_dev, query_base_addr + query_size,
  897. query_buf);
  898. if (rc < 0)
  899. return rc;
  900. if (!!(query_buf[0] & BIT(5)))
  901. f11->has_acm = true;
  902. }
  903. return query_size;
  904. }
  905. static int rmi_f11_initialize(struct rmi_function *fn)
  906. {
  907. struct rmi_device *rmi_dev = fn->rmi_dev;
  908. struct f11_data *f11;
  909. struct f11_2d_ctrl *ctrl;
  910. u8 query_offset;
  911. u16 query_base_addr;
  912. u16 control_base_addr;
  913. u16 max_x_pos, max_y_pos;
  914. int rc;
  915. const struct rmi_device_platform_data *pdata =
  916. rmi_get_platform_data(rmi_dev);
  917. struct rmi_driver_data *drvdata = dev_get_drvdata(&rmi_dev->dev);
  918. struct rmi_2d_sensor *sensor;
  919. u8 buf;
  920. int mask_size;
  921. rmi_dbg(RMI_DEBUG_FN, &fn->dev, "Initializing F11 values.\n");
  922. mask_size = BITS_TO_LONGS(drvdata->irq_count) * sizeof(unsigned long);
  923. /*
  924. ** init instance data, fill in values and create any sysfs files
  925. */
  926. f11 = devm_kzalloc(&fn->dev, sizeof(struct f11_data) + mask_size * 3,
  927. GFP_KERNEL);
  928. if (!f11)
  929. return -ENOMEM;
  930. if (fn->dev.of_node) {
  931. rc = rmi_2d_sensor_of_probe(&fn->dev, &f11->sensor_pdata);
  932. if (rc)
  933. return rc;
  934. } else {
  935. f11->sensor_pdata = pdata->sensor_pdata;
  936. }
  937. f11->rezero_wait_ms = f11->sensor_pdata.rezero_wait;
  938. f11->abs_mask = (unsigned long *)((char *)f11
  939. + sizeof(struct f11_data));
  940. f11->rel_mask = (unsigned long *)((char *)f11
  941. + sizeof(struct f11_data) + mask_size);
  942. f11->result_bits = (unsigned long *)((char *)f11
  943. + sizeof(struct f11_data) + mask_size * 2);
  944. set_bit(fn->irq_pos, f11->abs_mask);
  945. set_bit(fn->irq_pos + 1, f11->rel_mask);
  946. query_base_addr = fn->fd.query_base_addr;
  947. control_base_addr = fn->fd.control_base_addr;
  948. rc = rmi_read(rmi_dev, query_base_addr, &buf);
  949. if (rc < 0)
  950. return rc;
  951. f11->has_query9 = !!(buf & RMI_F11_HAS_QUERY9);
  952. f11->has_query11 = !!(buf & RMI_F11_HAS_QUERY11);
  953. f11->has_query12 = !!(buf & RMI_F11_HAS_QUERY12);
  954. f11->has_query27 = !!(buf & RMI_F11_HAS_QUERY27);
  955. f11->has_query28 = !!(buf & RMI_F11_HAS_QUERY28);
  956. query_offset = (query_base_addr + 1);
  957. sensor = &f11->sensor;
  958. sensor->fn = fn;
  959. rc = rmi_f11_get_query_parameters(rmi_dev, f11,
  960. &f11->sens_query, query_offset);
  961. if (rc < 0)
  962. return rc;
  963. query_offset += rc;
  964. rc = f11_read_control_regs(fn, &f11->dev_controls,
  965. control_base_addr);
  966. if (rc < 0) {
  967. dev_err(&fn->dev,
  968. "Failed to read F11 control params.\n");
  969. return rc;
  970. }
  971. if (f11->sens_query.has_info2) {
  972. if (f11->sens_query.is_clear)
  973. f11->sensor.sensor_type = rmi_sensor_touchscreen;
  974. else
  975. f11->sensor.sensor_type = rmi_sensor_touchpad;
  976. }
  977. sensor->report_abs = f11->sens_query.has_abs;
  978. sensor->axis_align =
  979. f11->sensor_pdata.axis_align;
  980. sensor->topbuttonpad = f11->sensor_pdata.topbuttonpad;
  981. sensor->kernel_tracking = f11->sensor_pdata.kernel_tracking;
  982. sensor->dmax = f11->sensor_pdata.dmax;
  983. sensor->dribble = f11->sensor_pdata.dribble;
  984. sensor->palm_detect = f11->sensor_pdata.palm_detect;
  985. if (f11->sens_query.has_physical_props) {
  986. sensor->x_mm = f11->sens_query.x_sensor_size_mm;
  987. sensor->y_mm = f11->sens_query.y_sensor_size_mm;
  988. } else {
  989. sensor->x_mm = f11->sensor_pdata.x_mm;
  990. sensor->y_mm = f11->sensor_pdata.y_mm;
  991. }
  992. if (sensor->sensor_type == rmi_sensor_default)
  993. sensor->sensor_type =
  994. f11->sensor_pdata.sensor_type;
  995. sensor->report_abs = sensor->report_abs
  996. && !(f11->sensor_pdata.disable_report_mask
  997. & RMI_F11_DISABLE_ABS_REPORT);
  998. if (!sensor->report_abs)
  999. /*
  1000. * If device doesn't have abs or if it has been disables
  1001. * fallback to reporting rel data.
  1002. */
  1003. sensor->report_rel = f11->sens_query.has_rel;
  1004. rc = rmi_read_block(rmi_dev,
  1005. control_base_addr + F11_CTRL_SENSOR_MAX_X_POS_OFFSET,
  1006. (u8 *)&max_x_pos, sizeof(max_x_pos));
  1007. if (rc < 0)
  1008. return rc;
  1009. rc = rmi_read_block(rmi_dev,
  1010. control_base_addr + F11_CTRL_SENSOR_MAX_Y_POS_OFFSET,
  1011. (u8 *)&max_y_pos, sizeof(max_y_pos));
  1012. if (rc < 0)
  1013. return rc;
  1014. sensor->max_x = max_x_pos;
  1015. sensor->max_y = max_y_pos;
  1016. rc = f11_2d_construct_data(f11);
  1017. if (rc < 0)
  1018. return rc;
  1019. if (f11->has_acm)
  1020. f11->sensor.attn_size += f11->sensor.nbr_fingers * 2;
  1021. /* allocate the in-kernel tracking buffers */
  1022. sensor->tracking_pos = devm_kzalloc(&fn->dev,
  1023. sizeof(struct input_mt_pos) * sensor->nbr_fingers,
  1024. GFP_KERNEL);
  1025. sensor->tracking_slots = devm_kzalloc(&fn->dev,
  1026. sizeof(int) * sensor->nbr_fingers, GFP_KERNEL);
  1027. sensor->objs = devm_kzalloc(&fn->dev,
  1028. sizeof(struct rmi_2d_sensor_abs_object)
  1029. * sensor->nbr_fingers, GFP_KERNEL);
  1030. if (!sensor->tracking_pos || !sensor->tracking_slots || !sensor->objs)
  1031. return -ENOMEM;
  1032. ctrl = &f11->dev_controls;
  1033. if (sensor->axis_align.delta_x_threshold)
  1034. ctrl->ctrl0_11[RMI_F11_DELTA_X_THRESHOLD] =
  1035. sensor->axis_align.delta_x_threshold;
  1036. if (sensor->axis_align.delta_y_threshold)
  1037. ctrl->ctrl0_11[RMI_F11_DELTA_Y_THRESHOLD] =
  1038. sensor->axis_align.delta_y_threshold;
  1039. if (f11->sens_query.has_dribble) {
  1040. switch (sensor->dribble) {
  1041. case RMI_REG_STATE_OFF:
  1042. ctrl->ctrl0_11[0] &= ~BIT(6);
  1043. break;
  1044. case RMI_REG_STATE_ON:
  1045. ctrl->ctrl0_11[0] |= BIT(6);
  1046. break;
  1047. case RMI_REG_STATE_DEFAULT:
  1048. default:
  1049. break;
  1050. }
  1051. }
  1052. if (f11->sens_query.has_palm_det) {
  1053. switch (sensor->palm_detect) {
  1054. case RMI_REG_STATE_OFF:
  1055. ctrl->ctrl0_11[11] &= ~BIT(0);
  1056. break;
  1057. case RMI_REG_STATE_ON:
  1058. ctrl->ctrl0_11[11] |= BIT(0);
  1059. break;
  1060. case RMI_REG_STATE_DEFAULT:
  1061. default:
  1062. break;
  1063. }
  1064. }
  1065. rc = f11_write_control_regs(fn, &f11->sens_query,
  1066. &f11->dev_controls, fn->fd.query_base_addr);
  1067. if (rc)
  1068. dev_warn(&fn->dev, "Failed to write control registers\n");
  1069. mutex_init(&f11->dev_controls_mutex);
  1070. dev_set_drvdata(&fn->dev, f11);
  1071. return 0;
  1072. }
  1073. static int rmi_f11_config(struct rmi_function *fn)
  1074. {
  1075. struct f11_data *f11 = dev_get_drvdata(&fn->dev);
  1076. struct rmi_driver *drv = fn->rmi_dev->driver;
  1077. struct rmi_2d_sensor *sensor = &f11->sensor;
  1078. int rc;
  1079. if (!sensor->report_abs)
  1080. drv->clear_irq_bits(fn->rmi_dev, f11->abs_mask);
  1081. else
  1082. drv->set_irq_bits(fn->rmi_dev, f11->abs_mask);
  1083. if (!sensor->report_rel)
  1084. drv->clear_irq_bits(fn->rmi_dev, f11->rel_mask);
  1085. else
  1086. drv->set_irq_bits(fn->rmi_dev, f11->rel_mask);
  1087. rc = f11_write_control_regs(fn, &f11->sens_query,
  1088. &f11->dev_controls, fn->fd.query_base_addr);
  1089. if (rc < 0)
  1090. return rc;
  1091. return 0;
  1092. }
  1093. static int rmi_f11_attention(struct rmi_function *fn, unsigned long *irq_bits)
  1094. {
  1095. struct rmi_device *rmi_dev = fn->rmi_dev;
  1096. struct rmi_driver_data *drvdata = dev_get_drvdata(&rmi_dev->dev);
  1097. struct f11_data *f11 = dev_get_drvdata(&fn->dev);
  1098. u16 data_base_addr = fn->fd.data_base_addr;
  1099. int error;
  1100. int valid_bytes = f11->sensor.pkt_size;
  1101. if (drvdata->attn_data.data) {
  1102. /*
  1103. * The valid data in the attention report is less then
  1104. * expected. Only process the complete fingers.
  1105. */
  1106. if (f11->sensor.attn_size > drvdata->attn_data.size)
  1107. valid_bytes = drvdata->attn_data.size;
  1108. else
  1109. valid_bytes = f11->sensor.attn_size;
  1110. memcpy(f11->sensor.data_pkt, drvdata->attn_data.data,
  1111. valid_bytes);
  1112. drvdata->attn_data.data += f11->sensor.attn_size;
  1113. drvdata->attn_data.size -= f11->sensor.attn_size;
  1114. } else {
  1115. error = rmi_read_block(rmi_dev,
  1116. data_base_addr, f11->sensor.data_pkt,
  1117. f11->sensor.pkt_size);
  1118. if (error < 0)
  1119. return error;
  1120. }
  1121. rmi_f11_finger_handler(f11, &f11->sensor, irq_bits,
  1122. drvdata->num_of_irq_regs, valid_bytes);
  1123. return 0;
  1124. }
  1125. static int rmi_f11_resume(struct rmi_function *fn)
  1126. {
  1127. struct f11_data *f11 = dev_get_drvdata(&fn->dev);
  1128. int error;
  1129. rmi_dbg(RMI_DEBUG_FN, &fn->dev, "Resuming...\n");
  1130. if (!f11->rezero_wait_ms)
  1131. return 0;
  1132. mdelay(f11->rezero_wait_ms);
  1133. error = rmi_write(fn->rmi_dev, fn->fd.command_base_addr,
  1134. RMI_F11_REZERO);
  1135. if (error) {
  1136. dev_err(&fn->dev,
  1137. "%s: failed to issue rezero command, error = %d.",
  1138. __func__, error);
  1139. return error;
  1140. }
  1141. return 0;
  1142. }
  1143. static int rmi_f11_probe(struct rmi_function *fn)
  1144. {
  1145. int error;
  1146. struct f11_data *f11;
  1147. error = rmi_f11_initialize(fn);
  1148. if (error)
  1149. return error;
  1150. f11 = dev_get_drvdata(&fn->dev);
  1151. error = rmi_2d_sensor_configure_input(fn, &f11->sensor);
  1152. if (error)
  1153. return error;
  1154. return 0;
  1155. }
  1156. struct rmi_function_handler rmi_f11_handler = {
  1157. .driver = {
  1158. .name = "rmi4_f11",
  1159. },
  1160. .func = 0x11,
  1161. .probe = rmi_f11_probe,
  1162. .config = rmi_f11_config,
  1163. .attention = rmi_f11_attention,
  1164. .resume = rmi_f11_resume,
  1165. };