hid-picolcd_debugfs.c 26 KB

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  1. // SPDX-License-Identifier: GPL-2.0-only
  2. /***************************************************************************
  3. * Copyright (C) 2010-2012 by Bruno Prémont <bonbons@linux-vserver.org> *
  4. * *
  5. * Based on Logitech G13 driver (v0.4) *
  6. * Copyright (C) 2009 by Rick L. Vinyard, Jr. <rvinyard@cs.nmsu.edu> *
  7. * *
  8. ***************************************************************************/
  9. #include <linux/hid.h>
  10. #include <linux/hid-debug.h>
  11. #include <linux/fb.h>
  12. #include <linux/hex.h>
  13. #include <linux/seq_file.h>
  14. #include <linux/debugfs.h>
  15. #include <linux/module.h>
  16. #include <linux/uaccess.h>
  17. #include "hid-picolcd.h"
  18. static int picolcd_debug_reset_show(struct seq_file *f, void *p)
  19. {
  20. if (picolcd_fbinfo((struct picolcd_data *)f->private))
  21. seq_printf(f, "all fb\n");
  22. else
  23. seq_printf(f, "all\n");
  24. return 0;
  25. }
  26. static int picolcd_debug_reset_open(struct inode *inode, struct file *f)
  27. {
  28. return single_open(f, picolcd_debug_reset_show, inode->i_private);
  29. }
  30. static ssize_t picolcd_debug_reset_write(struct file *f, const char __user *user_buf,
  31. size_t count, loff_t *ppos)
  32. {
  33. struct picolcd_data *data = ((struct seq_file *)f->private_data)->private;
  34. char buf[32];
  35. size_t cnt = min(count, sizeof(buf)-1);
  36. if (copy_from_user(buf, user_buf, cnt))
  37. return -EFAULT;
  38. while (cnt > 0 && (buf[cnt-1] == ' ' || buf[cnt-1] == '\n'))
  39. cnt--;
  40. buf[cnt] = '\0';
  41. if (strcmp(buf, "all") == 0) {
  42. picolcd_reset(data->hdev);
  43. picolcd_fb_reset(data, 1);
  44. } else if (strcmp(buf, "fb") == 0) {
  45. picolcd_fb_reset(data, 1);
  46. } else {
  47. return -EINVAL;
  48. }
  49. return count;
  50. }
  51. static const struct file_operations picolcd_debug_reset_fops = {
  52. .owner = THIS_MODULE,
  53. .open = picolcd_debug_reset_open,
  54. .read = seq_read,
  55. .llseek = seq_lseek,
  56. .write = picolcd_debug_reset_write,
  57. .release = single_release,
  58. };
  59. /*
  60. * The "eeprom" file
  61. */
  62. static ssize_t picolcd_debug_eeprom_read(struct file *f, char __user *u,
  63. size_t s, loff_t *off)
  64. {
  65. struct picolcd_data *data = f->private_data;
  66. struct picolcd_pending *resp;
  67. u8 raw_data[3];
  68. ssize_t ret = -EIO;
  69. if (s == 0)
  70. return -EINVAL;
  71. if (*off > 0x0ff)
  72. return 0;
  73. /* prepare buffer with info about what we want to read (addr & len) */
  74. raw_data[0] = *off & 0xff;
  75. raw_data[1] = (*off >> 8) & 0xff;
  76. raw_data[2] = s < 20 ? s : 20;
  77. if (*off + raw_data[2] > 0xff)
  78. raw_data[2] = 0x100 - *off;
  79. resp = picolcd_send_and_wait(data->hdev, REPORT_EE_READ, raw_data,
  80. sizeof(raw_data));
  81. if (!resp)
  82. return -EIO;
  83. if (resp->in_report && resp->in_report->id == REPORT_EE_DATA) {
  84. /* successful read :) */
  85. ret = resp->raw_data[2];
  86. if (ret > s)
  87. ret = s;
  88. if (copy_to_user(u, resp->raw_data+3, ret))
  89. ret = -EFAULT;
  90. else
  91. *off += ret;
  92. } /* anything else is some kind of IO error */
  93. kfree(resp);
  94. return ret;
  95. }
  96. static ssize_t picolcd_debug_eeprom_write(struct file *f, const char __user *u,
  97. size_t s, loff_t *off)
  98. {
  99. struct picolcd_data *data = f->private_data;
  100. struct picolcd_pending *resp;
  101. ssize_t ret = -EIO;
  102. u8 raw_data[23];
  103. if (s == 0)
  104. return -EINVAL;
  105. if (*off > 0x0ff)
  106. return -ENOSPC;
  107. memset(raw_data, 0, sizeof(raw_data));
  108. raw_data[0] = *off & 0xff;
  109. raw_data[1] = (*off >> 8) & 0xff;
  110. raw_data[2] = min_t(size_t, 20, s);
  111. if (*off + raw_data[2] > 0xff)
  112. raw_data[2] = 0x100 - *off;
  113. if (copy_from_user(raw_data+3, u, min((u8)20, raw_data[2])))
  114. return -EFAULT;
  115. resp = picolcd_send_and_wait(data->hdev, REPORT_EE_WRITE, raw_data,
  116. sizeof(raw_data));
  117. if (!resp)
  118. return -EIO;
  119. if (resp->in_report && resp->in_report->id == REPORT_EE_DATA) {
  120. /* check if written data matches */
  121. if (memcmp(raw_data, resp->raw_data, 3+raw_data[2]) == 0) {
  122. *off += raw_data[2];
  123. ret = raw_data[2];
  124. }
  125. }
  126. kfree(resp);
  127. return ret;
  128. }
  129. /*
  130. * Notes:
  131. * - read/write happens in chunks of at most 20 bytes, it's up to userspace
  132. * to loop in order to get more data.
  133. * - on write errors on otherwise correct write request the bytes
  134. * that should have been written are in undefined state.
  135. */
  136. static const struct file_operations picolcd_debug_eeprom_fops = {
  137. .owner = THIS_MODULE,
  138. .open = simple_open,
  139. .read = picolcd_debug_eeprom_read,
  140. .write = picolcd_debug_eeprom_write,
  141. .llseek = generic_file_llseek,
  142. };
  143. /*
  144. * The "flash" file
  145. */
  146. /* record a flash address to buf (bounds check to be done by caller) */
  147. static int _picolcd_flash_setaddr(struct picolcd_data *data, u8 *buf, long off)
  148. {
  149. buf[0] = off & 0xff;
  150. buf[1] = (off >> 8) & 0xff;
  151. if (data->addr_sz == 3)
  152. buf[2] = (off >> 16) & 0xff;
  153. return data->addr_sz == 2 ? 2 : 3;
  154. }
  155. /* read a given size of data (bounds check to be done by caller) */
  156. static ssize_t _picolcd_flash_read(struct picolcd_data *data, int report_id,
  157. char __user *u, size_t s, loff_t *off)
  158. {
  159. struct picolcd_pending *resp;
  160. u8 raw_data[4];
  161. ssize_t ret = 0;
  162. int len_off, err = -EIO;
  163. while (s > 0) {
  164. err = -EIO;
  165. len_off = _picolcd_flash_setaddr(data, raw_data, *off);
  166. raw_data[len_off] = s > 32 ? 32 : s;
  167. resp = picolcd_send_and_wait(data->hdev, report_id, raw_data, len_off+1);
  168. if (!resp || !resp->in_report)
  169. goto skip;
  170. if (resp->in_report->id == REPORT_MEMORY ||
  171. resp->in_report->id == REPORT_BL_READ_MEMORY) {
  172. if (memcmp(raw_data, resp->raw_data, len_off+1) != 0)
  173. goto skip;
  174. if (copy_to_user(u+ret, resp->raw_data+len_off+1, raw_data[len_off])) {
  175. err = -EFAULT;
  176. goto skip;
  177. }
  178. *off += raw_data[len_off];
  179. s -= raw_data[len_off];
  180. ret += raw_data[len_off];
  181. err = 0;
  182. }
  183. skip:
  184. kfree(resp);
  185. if (err)
  186. return ret > 0 ? ret : err;
  187. }
  188. return ret;
  189. }
  190. static ssize_t picolcd_debug_flash_read(struct file *f, char __user *u,
  191. size_t s, loff_t *off)
  192. {
  193. struct picolcd_data *data = f->private_data;
  194. if (s == 0)
  195. return -EINVAL;
  196. if (*off > 0x05fff)
  197. return 0;
  198. if (*off + s > 0x05fff)
  199. s = 0x06000 - *off;
  200. if (data->status & PICOLCD_BOOTLOADER)
  201. return _picolcd_flash_read(data, REPORT_BL_READ_MEMORY, u, s, off);
  202. else
  203. return _picolcd_flash_read(data, REPORT_READ_MEMORY, u, s, off);
  204. }
  205. /* erase block aligned to 64bytes boundary */
  206. static ssize_t _picolcd_flash_erase64(struct picolcd_data *data, int report_id,
  207. loff_t *off)
  208. {
  209. struct picolcd_pending *resp;
  210. u8 raw_data[3];
  211. int len_off;
  212. ssize_t ret = -EIO;
  213. if (*off & 0x3f)
  214. return -EINVAL;
  215. len_off = _picolcd_flash_setaddr(data, raw_data, *off);
  216. resp = picolcd_send_and_wait(data->hdev, report_id, raw_data, len_off);
  217. if (!resp || !resp->in_report)
  218. goto skip;
  219. if (resp->in_report->id == REPORT_MEMORY ||
  220. resp->in_report->id == REPORT_BL_ERASE_MEMORY) {
  221. if (memcmp(raw_data, resp->raw_data, len_off) != 0)
  222. goto skip;
  223. ret = 0;
  224. }
  225. skip:
  226. kfree(resp);
  227. return ret;
  228. }
  229. /* write a given size of data (bounds check to be done by caller) */
  230. static ssize_t _picolcd_flash_write(struct picolcd_data *data, int report_id,
  231. const char __user *u, size_t s, loff_t *off)
  232. {
  233. struct picolcd_pending *resp;
  234. u8 raw_data[36];
  235. ssize_t ret = 0;
  236. int len_off, err = -EIO;
  237. while (s > 0) {
  238. err = -EIO;
  239. len_off = _picolcd_flash_setaddr(data, raw_data, *off);
  240. raw_data[len_off] = s > 32 ? 32 : s;
  241. if (copy_from_user(raw_data+len_off+1, u, raw_data[len_off])) {
  242. err = -EFAULT;
  243. break;
  244. }
  245. resp = picolcd_send_and_wait(data->hdev, report_id, raw_data,
  246. len_off+1+raw_data[len_off]);
  247. if (!resp || !resp->in_report)
  248. goto skip;
  249. if (resp->in_report->id == REPORT_MEMORY ||
  250. resp->in_report->id == REPORT_BL_WRITE_MEMORY) {
  251. if (memcmp(raw_data, resp->raw_data, len_off+1+raw_data[len_off]) != 0)
  252. goto skip;
  253. *off += raw_data[len_off];
  254. s -= raw_data[len_off];
  255. ret += raw_data[len_off];
  256. err = 0;
  257. }
  258. skip:
  259. kfree(resp);
  260. if (err)
  261. break;
  262. }
  263. return ret > 0 ? ret : err;
  264. }
  265. static ssize_t picolcd_debug_flash_write(struct file *f, const char __user *u,
  266. size_t s, loff_t *off)
  267. {
  268. struct picolcd_data *data = f->private_data;
  269. ssize_t err, ret = 0;
  270. int report_erase, report_write;
  271. if (s == 0)
  272. return -EINVAL;
  273. if (*off > 0x5fff)
  274. return -ENOSPC;
  275. if (s & 0x3f)
  276. return -EINVAL;
  277. if (*off & 0x3f)
  278. return -EINVAL;
  279. if (data->status & PICOLCD_BOOTLOADER) {
  280. report_erase = REPORT_BL_ERASE_MEMORY;
  281. report_write = REPORT_BL_WRITE_MEMORY;
  282. } else {
  283. report_erase = REPORT_ERASE_MEMORY;
  284. report_write = REPORT_WRITE_MEMORY;
  285. }
  286. mutex_lock(&data->mutex_flash);
  287. while (s > 0) {
  288. err = _picolcd_flash_erase64(data, report_erase, off);
  289. if (err)
  290. break;
  291. err = _picolcd_flash_write(data, report_write, u, 64, off);
  292. if (err < 0)
  293. break;
  294. ret += err;
  295. *off += err;
  296. s -= err;
  297. if (err != 64)
  298. break;
  299. }
  300. mutex_unlock(&data->mutex_flash);
  301. return ret > 0 ? ret : err;
  302. }
  303. /*
  304. * Notes:
  305. * - concurrent writing is prevented by mutex and all writes must be
  306. * n*64 bytes and 64-byte aligned, each write being preceded by an
  307. * ERASE which erases a 64byte block.
  308. * If less than requested was written or an error is returned for an
  309. * otherwise correct write request the next 64-byte block which should
  310. * have been written is in undefined state (mostly: original, erased,
  311. * (half-)written with write error)
  312. * - reading can happen without special restriction
  313. */
  314. static const struct file_operations picolcd_debug_flash_fops = {
  315. .owner = THIS_MODULE,
  316. .open = simple_open,
  317. .read = picolcd_debug_flash_read,
  318. .write = picolcd_debug_flash_write,
  319. .llseek = generic_file_llseek,
  320. };
  321. /*
  322. * Helper code for HID report level dumping/debugging
  323. */
  324. static const char * const error_codes[] = {
  325. "success", "parameter missing", "data_missing", "block readonly",
  326. "block not erasable", "block too big", "section overflow",
  327. "invalid command length", "invalid data length",
  328. };
  329. static void dump_buff_as_hex(char *dst, size_t dst_sz, const u8 *data,
  330. const size_t data_len)
  331. {
  332. int i, j;
  333. for (i = j = 0; i < data_len && j + 4 < dst_sz; i++) {
  334. dst[j++] = hex_asc[(data[i] >> 4) & 0x0f];
  335. dst[j++] = hex_asc[data[i] & 0x0f];
  336. dst[j++] = ' ';
  337. }
  338. dst[j] = '\0';
  339. if (j > 0)
  340. dst[j-1] = '\n';
  341. if (i < data_len && j > 2)
  342. dst[j-2] = dst[j-3] = '.';
  343. }
  344. void picolcd_debug_out_report(struct picolcd_data *data,
  345. struct hid_device *hdev, struct hid_report *report)
  346. {
  347. u8 *raw_data;
  348. int raw_size = (report->size >> 3) + 1;
  349. char *buff;
  350. #define BUFF_SZ 256
  351. /* Avoid unnecessary overhead if debugfs is disabled */
  352. if (list_empty(&hdev->debug_list))
  353. return;
  354. buff = kmalloc(BUFF_SZ, GFP_ATOMIC);
  355. if (!buff)
  356. return;
  357. raw_data = hid_alloc_report_buf(report, GFP_ATOMIC);
  358. if (!raw_data) {
  359. kfree(buff);
  360. return;
  361. }
  362. snprintf(buff, BUFF_SZ, "\nout report %d (size %d) = ",
  363. report->id, raw_size);
  364. hid_debug_event(hdev, buff);
  365. raw_data[0] = report->id;
  366. hid_output_report(report, raw_data);
  367. dump_buff_as_hex(buff, BUFF_SZ, raw_data, raw_size);
  368. hid_debug_event(hdev, buff);
  369. switch (report->id) {
  370. case REPORT_LED_STATE:
  371. /* 1 data byte with GPO state */
  372. snprintf(buff, BUFF_SZ, "out report %s (%d, size=%d)\n",
  373. "REPORT_LED_STATE", report->id, raw_size-1);
  374. hid_debug_event(hdev, buff);
  375. snprintf(buff, BUFF_SZ, "\tGPO state: 0x%02x\n", raw_data[1]);
  376. hid_debug_event(hdev, buff);
  377. break;
  378. case REPORT_BRIGHTNESS:
  379. /* 1 data byte with brightness */
  380. snprintf(buff, BUFF_SZ, "out report %s (%d, size=%d)\n",
  381. "REPORT_BRIGHTNESS", report->id, raw_size-1);
  382. hid_debug_event(hdev, buff);
  383. snprintf(buff, BUFF_SZ, "\tBrightness: 0x%02x\n", raw_data[1]);
  384. hid_debug_event(hdev, buff);
  385. break;
  386. case REPORT_CONTRAST:
  387. /* 1 data byte with contrast */
  388. snprintf(buff, BUFF_SZ, "out report %s (%d, size=%d)\n",
  389. "REPORT_CONTRAST", report->id, raw_size-1);
  390. hid_debug_event(hdev, buff);
  391. snprintf(buff, BUFF_SZ, "\tContrast: 0x%02x\n", raw_data[1]);
  392. hid_debug_event(hdev, buff);
  393. break;
  394. case REPORT_RESET:
  395. /* 2 data bytes with reset duration in ms */
  396. snprintf(buff, BUFF_SZ, "out report %s (%d, size=%d)\n",
  397. "REPORT_RESET", report->id, raw_size-1);
  398. hid_debug_event(hdev, buff);
  399. snprintf(buff, BUFF_SZ, "\tDuration: 0x%02x%02x (%dms)\n",
  400. raw_data[2], raw_data[1], raw_data[2] << 8 | raw_data[1]);
  401. hid_debug_event(hdev, buff);
  402. break;
  403. case REPORT_LCD_CMD:
  404. /* 63 data bytes with LCD commands */
  405. snprintf(buff, BUFF_SZ, "out report %s (%d, size=%d)\n",
  406. "REPORT_LCD_CMD", report->id, raw_size-1);
  407. hid_debug_event(hdev, buff);
  408. /* TODO: format decoding */
  409. break;
  410. case REPORT_LCD_DATA:
  411. /* 63 data bytes with LCD data */
  412. snprintf(buff, BUFF_SZ, "out report %s (%d, size=%d)\n",
  413. "REPORT_LCD_CMD", report->id, raw_size-1);
  414. /* TODO: format decoding */
  415. hid_debug_event(hdev, buff);
  416. break;
  417. case REPORT_LCD_CMD_DATA:
  418. /* 63 data bytes with LCD commands and data */
  419. snprintf(buff, BUFF_SZ, "out report %s (%d, size=%d)\n",
  420. "REPORT_LCD_CMD", report->id, raw_size-1);
  421. /* TODO: format decoding */
  422. hid_debug_event(hdev, buff);
  423. break;
  424. case REPORT_EE_READ:
  425. /* 3 data bytes with read area description */
  426. snprintf(buff, BUFF_SZ, "out report %s (%d, size=%d)\n",
  427. "REPORT_EE_READ", report->id, raw_size-1);
  428. hid_debug_event(hdev, buff);
  429. snprintf(buff, BUFF_SZ, "\tData address: 0x%02x%02x\n",
  430. raw_data[2], raw_data[1]);
  431. hid_debug_event(hdev, buff);
  432. snprintf(buff, BUFF_SZ, "\tData length: %d\n", raw_data[3]);
  433. hid_debug_event(hdev, buff);
  434. break;
  435. case REPORT_EE_WRITE:
  436. /* 3+1..20 data bytes with write area description */
  437. snprintf(buff, BUFF_SZ, "out report %s (%d, size=%d)\n",
  438. "REPORT_EE_WRITE", report->id, raw_size-1);
  439. hid_debug_event(hdev, buff);
  440. snprintf(buff, BUFF_SZ, "\tData address: 0x%02x%02x\n",
  441. raw_data[2], raw_data[1]);
  442. hid_debug_event(hdev, buff);
  443. snprintf(buff, BUFF_SZ, "\tData length: %d\n", raw_data[3]);
  444. hid_debug_event(hdev, buff);
  445. if (raw_data[3] == 0) {
  446. snprintf(buff, BUFF_SZ, "\tNo data\n");
  447. } else if (raw_data[3] + 4 <= raw_size) {
  448. snprintf(buff, BUFF_SZ, "\tData: ");
  449. hid_debug_event(hdev, buff);
  450. dump_buff_as_hex(buff, BUFF_SZ, raw_data+4, raw_data[3]);
  451. } else {
  452. snprintf(buff, BUFF_SZ, "\tData overflowed\n");
  453. }
  454. hid_debug_event(hdev, buff);
  455. break;
  456. case REPORT_ERASE_MEMORY:
  457. case REPORT_BL_ERASE_MEMORY:
  458. /* 3 data bytes with pointer inside erase block */
  459. snprintf(buff, BUFF_SZ, "out report %s (%d, size=%d)\n",
  460. "REPORT_ERASE_MEMORY", report->id, raw_size-1);
  461. hid_debug_event(hdev, buff);
  462. switch (data->addr_sz) {
  463. case 2:
  464. snprintf(buff, BUFF_SZ, "\tAddress inside 64 byte block: 0x%02x%02x\n",
  465. raw_data[2], raw_data[1]);
  466. break;
  467. case 3:
  468. snprintf(buff, BUFF_SZ, "\tAddress inside 64 byte block: 0x%02x%02x%02x\n",
  469. raw_data[3], raw_data[2], raw_data[1]);
  470. break;
  471. default:
  472. snprintf(buff, BUFF_SZ, "\tNot supported\n");
  473. }
  474. hid_debug_event(hdev, buff);
  475. break;
  476. case REPORT_READ_MEMORY:
  477. case REPORT_BL_READ_MEMORY:
  478. /* 4 data bytes with read area description */
  479. snprintf(buff, BUFF_SZ, "out report %s (%d, size=%d)\n",
  480. "REPORT_READ_MEMORY", report->id, raw_size-1);
  481. hid_debug_event(hdev, buff);
  482. switch (data->addr_sz) {
  483. case 2:
  484. snprintf(buff, BUFF_SZ, "\tData address: 0x%02x%02x\n",
  485. raw_data[2], raw_data[1]);
  486. hid_debug_event(hdev, buff);
  487. snprintf(buff, BUFF_SZ, "\tData length: %d\n", raw_data[3]);
  488. break;
  489. case 3:
  490. snprintf(buff, BUFF_SZ, "\tData address: 0x%02x%02x%02x\n",
  491. raw_data[3], raw_data[2], raw_data[1]);
  492. hid_debug_event(hdev, buff);
  493. snprintf(buff, BUFF_SZ, "\tData length: %d\n", raw_data[4]);
  494. break;
  495. default:
  496. snprintf(buff, BUFF_SZ, "\tNot supported\n");
  497. }
  498. hid_debug_event(hdev, buff);
  499. break;
  500. case REPORT_WRITE_MEMORY:
  501. case REPORT_BL_WRITE_MEMORY:
  502. /* 4+1..32 data bytes with write adrea description */
  503. snprintf(buff, BUFF_SZ, "out report %s (%d, size=%d)\n",
  504. "REPORT_WRITE_MEMORY", report->id, raw_size-1);
  505. hid_debug_event(hdev, buff);
  506. switch (data->addr_sz) {
  507. case 2:
  508. snprintf(buff, BUFF_SZ, "\tData address: 0x%02x%02x\n",
  509. raw_data[2], raw_data[1]);
  510. hid_debug_event(hdev, buff);
  511. snprintf(buff, BUFF_SZ, "\tData length: %d\n", raw_data[3]);
  512. hid_debug_event(hdev, buff);
  513. if (raw_data[3] == 0) {
  514. snprintf(buff, BUFF_SZ, "\tNo data\n");
  515. } else if (raw_data[3] + 4 <= raw_size) {
  516. snprintf(buff, BUFF_SZ, "\tData: ");
  517. hid_debug_event(hdev, buff);
  518. dump_buff_as_hex(buff, BUFF_SZ, raw_data+4, raw_data[3]);
  519. } else {
  520. snprintf(buff, BUFF_SZ, "\tData overflowed\n");
  521. }
  522. break;
  523. case 3:
  524. snprintf(buff, BUFF_SZ, "\tData address: 0x%02x%02x%02x\n",
  525. raw_data[3], raw_data[2], raw_data[1]);
  526. hid_debug_event(hdev, buff);
  527. snprintf(buff, BUFF_SZ, "\tData length: %d\n", raw_data[4]);
  528. hid_debug_event(hdev, buff);
  529. if (raw_data[4] == 0) {
  530. snprintf(buff, BUFF_SZ, "\tNo data\n");
  531. } else if (raw_data[4] + 5 <= raw_size) {
  532. snprintf(buff, BUFF_SZ, "\tData: ");
  533. hid_debug_event(hdev, buff);
  534. dump_buff_as_hex(buff, BUFF_SZ, raw_data+5, raw_data[4]);
  535. } else {
  536. snprintf(buff, BUFF_SZ, "\tData overflowed\n");
  537. }
  538. break;
  539. default:
  540. snprintf(buff, BUFF_SZ, "\tNot supported\n");
  541. }
  542. hid_debug_event(hdev, buff);
  543. break;
  544. case REPORT_SPLASH_RESTART:
  545. /* TODO */
  546. break;
  547. case REPORT_EXIT_KEYBOARD:
  548. snprintf(buff, BUFF_SZ, "out report %s (%d, size=%d)\n",
  549. "REPORT_EXIT_KEYBOARD", report->id, raw_size-1);
  550. hid_debug_event(hdev, buff);
  551. snprintf(buff, BUFF_SZ, "\tRestart delay: %dms (0x%02x%02x)\n",
  552. raw_data[1] | (raw_data[2] << 8),
  553. raw_data[2], raw_data[1]);
  554. hid_debug_event(hdev, buff);
  555. break;
  556. case REPORT_VERSION:
  557. snprintf(buff, BUFF_SZ, "out report %s (%d, size=%d)\n",
  558. "REPORT_VERSION", report->id, raw_size-1);
  559. hid_debug_event(hdev, buff);
  560. break;
  561. case REPORT_DEVID:
  562. snprintf(buff, BUFF_SZ, "out report %s (%d, size=%d)\n",
  563. "REPORT_DEVID", report->id, raw_size-1);
  564. hid_debug_event(hdev, buff);
  565. break;
  566. case REPORT_SPLASH_SIZE:
  567. snprintf(buff, BUFF_SZ, "out report %s (%d, size=%d)\n",
  568. "REPORT_SPLASH_SIZE", report->id, raw_size-1);
  569. hid_debug_event(hdev, buff);
  570. break;
  571. case REPORT_HOOK_VERSION:
  572. snprintf(buff, BUFF_SZ, "out report %s (%d, size=%d)\n",
  573. "REPORT_HOOK_VERSION", report->id, raw_size-1);
  574. hid_debug_event(hdev, buff);
  575. break;
  576. case REPORT_EXIT_FLASHER:
  577. snprintf(buff, BUFF_SZ, "out report %s (%d, size=%d)\n",
  578. "REPORT_VERSION", report->id, raw_size-1);
  579. hid_debug_event(hdev, buff);
  580. snprintf(buff, BUFF_SZ, "\tRestart delay: %dms (0x%02x%02x)\n",
  581. raw_data[1] | (raw_data[2] << 8),
  582. raw_data[2], raw_data[1]);
  583. hid_debug_event(hdev, buff);
  584. break;
  585. default:
  586. snprintf(buff, BUFF_SZ, "out report %s (%d, size=%d)\n",
  587. "<unknown>", report->id, raw_size-1);
  588. hid_debug_event(hdev, buff);
  589. break;
  590. }
  591. wake_up_interruptible(&hdev->debug_wait);
  592. kfree(raw_data);
  593. kfree(buff);
  594. }
  595. void picolcd_debug_raw_event(struct picolcd_data *data,
  596. struct hid_device *hdev, struct hid_report *report,
  597. u8 *raw_data, int size)
  598. {
  599. char *buff;
  600. #define BUFF_SZ 256
  601. /* Avoid unnecessary overhead if debugfs is disabled */
  602. if (list_empty(&hdev->debug_list))
  603. return;
  604. buff = kmalloc(BUFF_SZ, GFP_ATOMIC);
  605. if (!buff)
  606. return;
  607. switch (report->id) {
  608. case REPORT_ERROR_CODE:
  609. /* 2 data bytes with affected report and error code */
  610. snprintf(buff, BUFF_SZ, "report %s (%d, size=%d)\n",
  611. "REPORT_ERROR_CODE", report->id, size-1);
  612. hid_debug_event(hdev, buff);
  613. if (raw_data[2] < ARRAY_SIZE(error_codes))
  614. snprintf(buff, BUFF_SZ, "\tError code 0x%02x (%s) in reply to report 0x%02x\n",
  615. raw_data[2], error_codes[raw_data[2]], raw_data[1]);
  616. else
  617. snprintf(buff, BUFF_SZ, "\tError code 0x%02x in reply to report 0x%02x\n",
  618. raw_data[2], raw_data[1]);
  619. hid_debug_event(hdev, buff);
  620. break;
  621. case REPORT_KEY_STATE:
  622. /* 2 data bytes with key state */
  623. snprintf(buff, BUFF_SZ, "report %s (%d, size=%d)\n",
  624. "REPORT_KEY_STATE", report->id, size-1);
  625. hid_debug_event(hdev, buff);
  626. if (raw_data[1] == 0)
  627. snprintf(buff, BUFF_SZ, "\tNo key pressed\n");
  628. else if (raw_data[2] == 0)
  629. snprintf(buff, BUFF_SZ, "\tOne key pressed: 0x%02x (%d)\n",
  630. raw_data[1], raw_data[1]);
  631. else
  632. snprintf(buff, BUFF_SZ, "\tTwo keys pressed: 0x%02x (%d), 0x%02x (%d)\n",
  633. raw_data[1], raw_data[1], raw_data[2], raw_data[2]);
  634. hid_debug_event(hdev, buff);
  635. break;
  636. case REPORT_IR_DATA:
  637. /* Up to 20 byes of IR scancode data */
  638. snprintf(buff, BUFF_SZ, "report %s (%d, size=%d)\n",
  639. "REPORT_IR_DATA", report->id, size-1);
  640. hid_debug_event(hdev, buff);
  641. if (raw_data[1] == 0) {
  642. snprintf(buff, BUFF_SZ, "\tUnexpectedly 0 data length\n");
  643. hid_debug_event(hdev, buff);
  644. } else if (raw_data[1] + 1 <= size) {
  645. snprintf(buff, BUFF_SZ, "\tData length: %d\n\tIR Data: ",
  646. raw_data[1]);
  647. hid_debug_event(hdev, buff);
  648. dump_buff_as_hex(buff, BUFF_SZ, raw_data+2, raw_data[1]);
  649. hid_debug_event(hdev, buff);
  650. } else {
  651. snprintf(buff, BUFF_SZ, "\tOverflowing data length: %d\n",
  652. raw_data[1]-1);
  653. hid_debug_event(hdev, buff);
  654. }
  655. break;
  656. case REPORT_EE_DATA:
  657. /* Data buffer in response to REPORT_EE_READ or REPORT_EE_WRITE */
  658. snprintf(buff, BUFF_SZ, "report %s (%d, size=%d)\n",
  659. "REPORT_EE_DATA", report->id, size-1);
  660. hid_debug_event(hdev, buff);
  661. snprintf(buff, BUFF_SZ, "\tData address: 0x%02x%02x\n",
  662. raw_data[2], raw_data[1]);
  663. hid_debug_event(hdev, buff);
  664. snprintf(buff, BUFF_SZ, "\tData length: %d\n", raw_data[3]);
  665. hid_debug_event(hdev, buff);
  666. if (raw_data[3] == 0) {
  667. snprintf(buff, BUFF_SZ, "\tNo data\n");
  668. hid_debug_event(hdev, buff);
  669. } else if (raw_data[3] + 4 <= size) {
  670. snprintf(buff, BUFF_SZ, "\tData: ");
  671. hid_debug_event(hdev, buff);
  672. dump_buff_as_hex(buff, BUFF_SZ, raw_data+4, raw_data[3]);
  673. hid_debug_event(hdev, buff);
  674. } else {
  675. snprintf(buff, BUFF_SZ, "\tData overflowed\n");
  676. hid_debug_event(hdev, buff);
  677. }
  678. break;
  679. case REPORT_MEMORY:
  680. /* Data buffer in response to REPORT_READ_MEMORY or REPORT_WRITE_MEMORY */
  681. snprintf(buff, BUFF_SZ, "report %s (%d, size=%d)\n",
  682. "REPORT_MEMORY", report->id, size-1);
  683. hid_debug_event(hdev, buff);
  684. switch (data->addr_sz) {
  685. case 2:
  686. snprintf(buff, BUFF_SZ, "\tData address: 0x%02x%02x\n",
  687. raw_data[2], raw_data[1]);
  688. hid_debug_event(hdev, buff);
  689. snprintf(buff, BUFF_SZ, "\tData length: %d\n", raw_data[3]);
  690. hid_debug_event(hdev, buff);
  691. if (raw_data[3] == 0) {
  692. snprintf(buff, BUFF_SZ, "\tNo data\n");
  693. } else if (raw_data[3] + 4 <= size) {
  694. snprintf(buff, BUFF_SZ, "\tData: ");
  695. hid_debug_event(hdev, buff);
  696. dump_buff_as_hex(buff, BUFF_SZ, raw_data+4, raw_data[3]);
  697. } else {
  698. snprintf(buff, BUFF_SZ, "\tData overflowed\n");
  699. }
  700. break;
  701. case 3:
  702. snprintf(buff, BUFF_SZ, "\tData address: 0x%02x%02x%02x\n",
  703. raw_data[3], raw_data[2], raw_data[1]);
  704. hid_debug_event(hdev, buff);
  705. snprintf(buff, BUFF_SZ, "\tData length: %d\n", raw_data[4]);
  706. hid_debug_event(hdev, buff);
  707. if (raw_data[4] == 0) {
  708. snprintf(buff, BUFF_SZ, "\tNo data\n");
  709. } else if (raw_data[4] + 5 <= size) {
  710. snprintf(buff, BUFF_SZ, "\tData: ");
  711. hid_debug_event(hdev, buff);
  712. dump_buff_as_hex(buff, BUFF_SZ, raw_data+5, raw_data[4]);
  713. } else {
  714. snprintf(buff, BUFF_SZ, "\tData overflowed\n");
  715. }
  716. break;
  717. default:
  718. snprintf(buff, BUFF_SZ, "\tNot supported\n");
  719. }
  720. hid_debug_event(hdev, buff);
  721. break;
  722. case REPORT_VERSION:
  723. snprintf(buff, BUFF_SZ, "report %s (%d, size=%d)\n",
  724. "REPORT_VERSION", report->id, size-1);
  725. hid_debug_event(hdev, buff);
  726. snprintf(buff, BUFF_SZ, "\tFirmware version: %d.%d\n",
  727. raw_data[2], raw_data[1]);
  728. hid_debug_event(hdev, buff);
  729. break;
  730. case REPORT_BL_ERASE_MEMORY:
  731. snprintf(buff, BUFF_SZ, "report %s (%d, size=%d)\n",
  732. "REPORT_BL_ERASE_MEMORY", report->id, size-1);
  733. hid_debug_event(hdev, buff);
  734. /* TODO */
  735. break;
  736. case REPORT_BL_READ_MEMORY:
  737. snprintf(buff, BUFF_SZ, "report %s (%d, size=%d)\n",
  738. "REPORT_BL_READ_MEMORY", report->id, size-1);
  739. hid_debug_event(hdev, buff);
  740. /* TODO */
  741. break;
  742. case REPORT_BL_WRITE_MEMORY:
  743. snprintf(buff, BUFF_SZ, "report %s (%d, size=%d)\n",
  744. "REPORT_BL_WRITE_MEMORY", report->id, size-1);
  745. hid_debug_event(hdev, buff);
  746. /* TODO */
  747. break;
  748. case REPORT_DEVID:
  749. snprintf(buff, BUFF_SZ, "report %s (%d, size=%d)\n",
  750. "REPORT_DEVID", report->id, size-1);
  751. hid_debug_event(hdev, buff);
  752. snprintf(buff, BUFF_SZ, "\tSerial: 0x%02x%02x%02x%02x\n",
  753. raw_data[1], raw_data[2], raw_data[3], raw_data[4]);
  754. hid_debug_event(hdev, buff);
  755. snprintf(buff, BUFF_SZ, "\tType: 0x%02x\n",
  756. raw_data[5]);
  757. hid_debug_event(hdev, buff);
  758. break;
  759. case REPORT_SPLASH_SIZE:
  760. snprintf(buff, BUFF_SZ, "report %s (%d, size=%d)\n",
  761. "REPORT_SPLASH_SIZE", report->id, size-1);
  762. hid_debug_event(hdev, buff);
  763. snprintf(buff, BUFF_SZ, "\tTotal splash space: %d\n",
  764. (raw_data[2] << 8) | raw_data[1]);
  765. hid_debug_event(hdev, buff);
  766. snprintf(buff, BUFF_SZ, "\tUsed splash space: %d\n",
  767. (raw_data[4] << 8) | raw_data[3]);
  768. hid_debug_event(hdev, buff);
  769. break;
  770. case REPORT_HOOK_VERSION:
  771. snprintf(buff, BUFF_SZ, "report %s (%d, size=%d)\n",
  772. "REPORT_HOOK_VERSION", report->id, size-1);
  773. hid_debug_event(hdev, buff);
  774. snprintf(buff, BUFF_SZ, "\tFirmware version: %d.%d\n",
  775. raw_data[1], raw_data[2]);
  776. hid_debug_event(hdev, buff);
  777. break;
  778. default:
  779. snprintf(buff, BUFF_SZ, "report %s (%d, size=%d)\n",
  780. "<unknown>", report->id, size-1);
  781. hid_debug_event(hdev, buff);
  782. break;
  783. }
  784. wake_up_interruptible(&hdev->debug_wait);
  785. kfree(buff);
  786. }
  787. void picolcd_init_devfs(struct picolcd_data *data,
  788. struct hid_report *eeprom_r, struct hid_report *eeprom_w,
  789. struct hid_report *flash_r, struct hid_report *flash_w,
  790. struct hid_report *reset)
  791. {
  792. struct hid_device *hdev = data->hdev;
  793. mutex_init(&data->mutex_flash);
  794. /* reset */
  795. if (reset)
  796. data->debug_reset = debugfs_create_file("reset", 0600,
  797. hdev->debug_dir, data, &picolcd_debug_reset_fops);
  798. /* eeprom */
  799. if (eeprom_r || eeprom_w)
  800. data->debug_eeprom = debugfs_create_file("eeprom",
  801. (eeprom_w ? S_IWUSR : 0) | (eeprom_r ? S_IRUSR : 0),
  802. hdev->debug_dir, data, &picolcd_debug_eeprom_fops);
  803. /* flash */
  804. if (flash_r && flash_r->maxfield == 1 && flash_r->field[0]->report_size == 8)
  805. data->addr_sz = flash_r->field[0]->report_count - 1;
  806. else
  807. data->addr_sz = -1;
  808. if (data->addr_sz == 2 || data->addr_sz == 3) {
  809. data->debug_flash = debugfs_create_file("flash",
  810. (flash_w ? S_IWUSR : 0) | (flash_r ? S_IRUSR : 0),
  811. hdev->debug_dir, data, &picolcd_debug_flash_fops);
  812. } else if (flash_r || flash_w)
  813. hid_warn(hdev, "Unexpected FLASH access reports, please submit rdesc for review\n");
  814. }
  815. void picolcd_exit_devfs(struct picolcd_data *data)
  816. {
  817. struct dentry *dent;
  818. dent = data->debug_reset;
  819. data->debug_reset = NULL;
  820. debugfs_remove(dent);
  821. dent = data->debug_eeprom;
  822. data->debug_eeprom = NULL;
  823. debugfs_remove(dent);
  824. dent = data->debug_flash;
  825. data->debug_flash = NULL;
  826. debugfs_remove(dent);
  827. mutex_destroy(&data->mutex_flash);
  828. }