rmi_f30.c 9.9 KB

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  1. /*
  2. * Copyright (c) 2012-2016 Synaptics Incorporated
  3. *
  4. * This program is free software; you can redistribute it and/or modify it
  5. * under the terms of the GNU General Public License version 2 as published by
  6. * the Free Software Foundation.
  7. */
  8. #include <linux/kernel.h>
  9. #include <linux/rmi.h>
  10. #include <linux/input.h>
  11. #include <linux/slab.h>
  12. #include "rmi_driver.h"
  13. #define RMI_F30_QUERY_SIZE 2
  14. /* Defs for Query 0 */
  15. #define RMI_F30_EXTENDED_PATTERNS 0x01
  16. #define RMI_F30_HAS_MAPPABLE_BUTTONS (1 << 1)
  17. #define RMI_F30_HAS_LED (1 << 2)
  18. #define RMI_F30_HAS_GPIO (1 << 3)
  19. #define RMI_F30_HAS_HAPTIC (1 << 4)
  20. #define RMI_F30_HAS_GPIO_DRV_CTL (1 << 5)
  21. #define RMI_F30_HAS_MECH_MOUSE_BTNS (1 << 6)
  22. /* Defs for Query 1 */
  23. #define RMI_F30_GPIO_LED_COUNT 0x1F
  24. /* Defs for Control Registers */
  25. #define RMI_F30_CTRL_1_GPIO_DEBOUNCE 0x01
  26. #define RMI_F30_CTRL_1_HALT (1 << 4)
  27. #define RMI_F30_CTRL_1_HALTED (1 << 5)
  28. #define RMI_F30_CTRL_10_NUM_MECH_MOUSE_BTNS 0x03
  29. struct rmi_f30_ctrl_data {
  30. int address;
  31. int length;
  32. u8 *regs;
  33. };
  34. #define RMI_F30_CTRL_MAX_REGS 32
  35. #define RMI_F30_CTRL_MAX_BYTES ((RMI_F30_CTRL_MAX_REGS + 7) >> 3)
  36. #define RMI_F30_CTRL_MAX_REG_BLOCKS 11
  37. #define RMI_F30_CTRL_REGS_MAX_SIZE (RMI_F30_CTRL_MAX_BYTES \
  38. + 1 \
  39. + RMI_F30_CTRL_MAX_BYTES \
  40. + RMI_F30_CTRL_MAX_BYTES \
  41. + RMI_F30_CTRL_MAX_BYTES \
  42. + 6 \
  43. + RMI_F30_CTRL_MAX_REGS \
  44. + RMI_F30_CTRL_MAX_REGS \
  45. + RMI_F30_CTRL_MAX_BYTES \
  46. + 1 \
  47. + 1)
  48. struct f30_data {
  49. /* Query Data */
  50. bool has_extended_pattern;
  51. bool has_mappable_buttons;
  52. bool has_led;
  53. bool has_gpio;
  54. bool has_haptic;
  55. bool has_gpio_driver_control;
  56. bool has_mech_mouse_btns;
  57. u8 gpioled_count;
  58. u8 register_count;
  59. /* Control Register Data */
  60. struct rmi_f30_ctrl_data ctrl[RMI_F30_CTRL_MAX_REG_BLOCKS];
  61. u8 ctrl_regs[RMI_F30_CTRL_REGS_MAX_SIZE];
  62. u32 ctrl_regs_size;
  63. u8 data_regs[RMI_F30_CTRL_MAX_BYTES];
  64. u16 *gpioled_key_map;
  65. struct input_dev *input;
  66. };
  67. static int rmi_f30_read_control_parameters(struct rmi_function *fn,
  68. struct f30_data *f30)
  69. {
  70. struct rmi_device *rmi_dev = fn->rmi_dev;
  71. int error = 0;
  72. error = rmi_read_block(rmi_dev, fn->fd.control_base_addr,
  73. f30->ctrl_regs, f30->ctrl_regs_size);
  74. if (error) {
  75. dev_err(&rmi_dev->dev, "%s : Could not read control registers at 0x%x error (%d)\n",
  76. __func__, fn->fd.control_base_addr, error);
  77. return error;
  78. }
  79. return 0;
  80. }
  81. static int rmi_f30_attention(struct rmi_function *fn, unsigned long *irq_bits)
  82. {
  83. struct f30_data *f30 = dev_get_drvdata(&fn->dev);
  84. struct rmi_device *rmi_dev = fn->rmi_dev;
  85. int retval;
  86. int gpiled = 0;
  87. int value = 0;
  88. int i;
  89. int reg_num;
  90. if (!f30->input)
  91. return 0;
  92. /* Read the gpi led data. */
  93. if (rmi_dev->xport->attn_data) {
  94. memcpy(f30->data_regs, rmi_dev->xport->attn_data,
  95. f30->register_count);
  96. rmi_dev->xport->attn_data += f30->register_count;
  97. rmi_dev->xport->attn_size -= f30->register_count;
  98. } else {
  99. retval = rmi_read_block(rmi_dev, fn->fd.data_base_addr,
  100. f30->data_regs, f30->register_count);
  101. if (retval) {
  102. dev_err(&fn->dev, "%s: Failed to read F30 data registers.\n",
  103. __func__);
  104. return retval;
  105. }
  106. }
  107. for (reg_num = 0; reg_num < f30->register_count; ++reg_num) {
  108. for (i = 0; gpiled < f30->gpioled_count && i < 8; ++i,
  109. ++gpiled) {
  110. if (f30->gpioled_key_map[gpiled] != 0) {
  111. /* buttons have pull up resistors */
  112. value = (((f30->data_regs[reg_num] >> i) & 0x01)
  113. == 0);
  114. rmi_dbg(RMI_DEBUG_FN, &fn->dev,
  115. "%s: call input report key (0x%04x) value (0x%02x)",
  116. __func__,
  117. f30->gpioled_key_map[gpiled], value);
  118. input_report_key(f30->input,
  119. f30->gpioled_key_map[gpiled],
  120. value);
  121. }
  122. }
  123. }
  124. return 0;
  125. }
  126. static int rmi_f30_register_device(struct rmi_function *fn)
  127. {
  128. int i;
  129. struct rmi_device *rmi_dev = fn->rmi_dev;
  130. struct rmi_driver_data *drv_data = dev_get_drvdata(&rmi_dev->dev);
  131. struct f30_data *f30 = dev_get_drvdata(&fn->dev);
  132. struct input_dev *input_dev;
  133. int button_count = 0;
  134. input_dev = drv_data->input;
  135. if (!input_dev) {
  136. dev_info(&fn->dev, "F30: no input device found, ignoring.\n");
  137. return -EINVAL;
  138. }
  139. f30->input = input_dev;
  140. set_bit(EV_KEY, input_dev->evbit);
  141. input_dev->keycode = f30->gpioled_key_map;
  142. input_dev->keycodesize = sizeof(u16);
  143. input_dev->keycodemax = f30->gpioled_count;
  144. for (i = 0; i < f30->gpioled_count; i++) {
  145. if (f30->gpioled_key_map[i] != 0) {
  146. input_set_capability(input_dev, EV_KEY,
  147. f30->gpioled_key_map[i]);
  148. button_count++;
  149. }
  150. }
  151. if (button_count == 1)
  152. __set_bit(INPUT_PROP_BUTTONPAD, input_dev->propbit);
  153. return 0;
  154. }
  155. static int rmi_f30_config(struct rmi_function *fn)
  156. {
  157. struct f30_data *f30 = dev_get_drvdata(&fn->dev);
  158. struct rmi_driver *drv = fn->rmi_dev->driver;
  159. const struct rmi_device_platform_data *pdata =
  160. rmi_get_platform_data(fn->rmi_dev);
  161. int error;
  162. if (pdata->f30_data && pdata->f30_data->disable) {
  163. drv->clear_irq_bits(fn->rmi_dev, fn->irq_mask);
  164. } else {
  165. /* Write Control Register values back to device */
  166. error = rmi_write_block(fn->rmi_dev, fn->fd.control_base_addr,
  167. f30->ctrl_regs, f30->ctrl_regs_size);
  168. if (error) {
  169. dev_err(&fn->rmi_dev->dev,
  170. "%s : Could not write control registers at 0x%x error (%d)\n",
  171. __func__, fn->fd.control_base_addr, error);
  172. return error;
  173. }
  174. drv->set_irq_bits(fn->rmi_dev, fn->irq_mask);
  175. }
  176. return 0;
  177. }
  178. static inline void rmi_f30_set_ctrl_data(struct rmi_f30_ctrl_data *ctrl,
  179. int *ctrl_addr, int len, u8 **reg)
  180. {
  181. ctrl->address = *ctrl_addr;
  182. ctrl->length = len;
  183. ctrl->regs = *reg;
  184. *ctrl_addr += len;
  185. *reg += len;
  186. }
  187. static inline bool rmi_f30_is_valid_button(int button,
  188. struct rmi_f30_ctrl_data *ctrl)
  189. {
  190. int byte_position = button >> 3;
  191. int bit_position = button & 0x07;
  192. /*
  193. * ctrl2 -> dir == 0 -> input mode
  194. * ctrl3 -> data == 1 -> actual button
  195. */
  196. return !(ctrl[2].regs[byte_position] & BIT(bit_position)) &&
  197. (ctrl[3].regs[byte_position] & BIT(bit_position));
  198. }
  199. static inline int rmi_f30_initialize(struct rmi_function *fn)
  200. {
  201. struct f30_data *f30;
  202. struct rmi_device *rmi_dev = fn->rmi_dev;
  203. const struct rmi_device_platform_data *pdata;
  204. int retval = 0;
  205. int control_address;
  206. int i;
  207. int button;
  208. u8 buf[RMI_F30_QUERY_SIZE];
  209. u8 *ctrl_reg;
  210. u8 *map_memory;
  211. f30 = devm_kzalloc(&fn->dev, sizeof(struct f30_data),
  212. GFP_KERNEL);
  213. if (!f30)
  214. return -ENOMEM;
  215. dev_set_drvdata(&fn->dev, f30);
  216. retval = rmi_read_block(fn->rmi_dev, fn->fd.query_base_addr, buf,
  217. RMI_F30_QUERY_SIZE);
  218. if (retval) {
  219. dev_err(&fn->dev, "Failed to read query register.\n");
  220. return retval;
  221. }
  222. f30->has_extended_pattern = buf[0] & RMI_F30_EXTENDED_PATTERNS;
  223. f30->has_mappable_buttons = buf[0] & RMI_F30_HAS_MAPPABLE_BUTTONS;
  224. f30->has_led = buf[0] & RMI_F30_HAS_LED;
  225. f30->has_gpio = buf[0] & RMI_F30_HAS_GPIO;
  226. f30->has_haptic = buf[0] & RMI_F30_HAS_HAPTIC;
  227. f30->has_gpio_driver_control = buf[0] & RMI_F30_HAS_GPIO_DRV_CTL;
  228. f30->has_mech_mouse_btns = buf[0] & RMI_F30_HAS_MECH_MOUSE_BTNS;
  229. f30->gpioled_count = buf[1] & RMI_F30_GPIO_LED_COUNT;
  230. f30->register_count = (f30->gpioled_count + 7) >> 3;
  231. control_address = fn->fd.control_base_addr;
  232. ctrl_reg = f30->ctrl_regs;
  233. if (f30->has_gpio && f30->has_led)
  234. rmi_f30_set_ctrl_data(&f30->ctrl[0], &control_address,
  235. f30->register_count, &ctrl_reg);
  236. rmi_f30_set_ctrl_data(&f30->ctrl[1], &control_address, sizeof(u8),
  237. &ctrl_reg);
  238. if (f30->has_gpio) {
  239. rmi_f30_set_ctrl_data(&f30->ctrl[2], &control_address,
  240. f30->register_count, &ctrl_reg);
  241. rmi_f30_set_ctrl_data(&f30->ctrl[3], &control_address,
  242. f30->register_count, &ctrl_reg);
  243. }
  244. if (f30->has_led) {
  245. int ctrl5_len;
  246. rmi_f30_set_ctrl_data(&f30->ctrl[4], &control_address,
  247. f30->register_count, &ctrl_reg);
  248. if (f30->has_extended_pattern)
  249. ctrl5_len = 6;
  250. else
  251. ctrl5_len = 2;
  252. rmi_f30_set_ctrl_data(&f30->ctrl[5], &control_address,
  253. ctrl5_len, &ctrl_reg);
  254. }
  255. if (f30->has_led || f30->has_gpio_driver_control) {
  256. /* control 6 uses a byte per gpio/led */
  257. rmi_f30_set_ctrl_data(&f30->ctrl[6], &control_address,
  258. f30->gpioled_count, &ctrl_reg);
  259. }
  260. if (f30->has_mappable_buttons) {
  261. /* control 7 uses a byte per gpio/led */
  262. rmi_f30_set_ctrl_data(&f30->ctrl[7], &control_address,
  263. f30->gpioled_count, &ctrl_reg);
  264. }
  265. if (f30->has_haptic) {
  266. rmi_f30_set_ctrl_data(&f30->ctrl[8], &control_address,
  267. f30->register_count, &ctrl_reg);
  268. rmi_f30_set_ctrl_data(&f30->ctrl[9], &control_address,
  269. sizeof(u8), &ctrl_reg);
  270. }
  271. if (f30->has_mech_mouse_btns)
  272. rmi_f30_set_ctrl_data(&f30->ctrl[10], &control_address,
  273. sizeof(u8), &ctrl_reg);
  274. f30->ctrl_regs_size = ctrl_reg - f30->ctrl_regs
  275. ?: RMI_F30_CTRL_REGS_MAX_SIZE;
  276. retval = rmi_f30_read_control_parameters(fn, f30);
  277. if (retval < 0) {
  278. dev_err(&fn->dev,
  279. "Failed to initialize F19 control params.\n");
  280. return retval;
  281. }
  282. map_memory = devm_kzalloc(&fn->dev,
  283. (f30->gpioled_count * (sizeof(u16))),
  284. GFP_KERNEL);
  285. if (!map_memory) {
  286. dev_err(&fn->dev, "Failed to allocate gpioled map memory.\n");
  287. return -ENOMEM;
  288. }
  289. f30->gpioled_key_map = (u16 *)map_memory;
  290. pdata = rmi_get_platform_data(rmi_dev);
  291. if (pdata && f30->has_gpio) {
  292. button = BTN_LEFT;
  293. for (i = 0; i < f30->gpioled_count; i++) {
  294. if (rmi_f30_is_valid_button(i, f30->ctrl)) {
  295. f30->gpioled_key_map[i] = button++;
  296. /*
  297. * buttonpad might be given by
  298. * f30->has_mech_mouse_btns, but I am
  299. * not sure, so use only the pdata info
  300. */
  301. if (pdata->f30_data &&
  302. pdata->f30_data->buttonpad)
  303. break;
  304. }
  305. }
  306. }
  307. return 0;
  308. }
  309. static int rmi_f30_probe(struct rmi_function *fn)
  310. {
  311. int rc;
  312. const struct rmi_device_platform_data *pdata =
  313. rmi_get_platform_data(fn->rmi_dev);
  314. if (pdata->f30_data && pdata->f30_data->disable)
  315. return 0;
  316. rc = rmi_f30_initialize(fn);
  317. if (rc < 0)
  318. goto error_exit;
  319. rc = rmi_f30_register_device(fn);
  320. if (rc < 0)
  321. goto error_exit;
  322. return 0;
  323. error_exit:
  324. return rc;
  325. }
  326. struct rmi_function_handler rmi_f30_handler = {
  327. .driver = {
  328. .name = "rmi4_f30",
  329. },
  330. .func = 0x30,
  331. .probe = rmi_f30_probe,
  332. .config = rmi_f30_config,
  333. .attention = rmi_f30_attention,
  334. };