t613.c 35 KB

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  1. /*
  2. * T613 subdriver
  3. *
  4. * Copyright (C) 2010 Jean-Francois Moine (http://moinejf.free.fr)
  5. *
  6. * This program is free software; you can redistribute it and/or modify
  7. * it under the terms of the GNU General Public License as published by
  8. * the Free Software Foundation; either version 2 of the License, or
  9. * any later version.
  10. *
  11. * This program is distributed in the hope that it will be useful,
  12. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  13. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  14. * GNU General Public License for more details.
  15. *
  16. * You should have received a copy of the GNU General Public License
  17. * along with this program; if not, write to the Free Software
  18. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  19. *
  20. *Notes: * t613 + tas5130A
  21. * * Focus to light do not balance well as in win.
  22. * Quality in win is not good, but its kinda better.
  23. * * Fix some "extraneous bytes", most of apps will show the image anyway
  24. * * Gamma table, is there, but its really doing something?
  25. * * 7~8 Fps, its ok, max on win its 10.
  26. * Costantino Leandro
  27. */
  28. #define MODULE_NAME "t613"
  29. #include <linux/slab.h>
  30. #include "gspca.h"
  31. #define V4L2_CID_EFFECTS (V4L2_CID_PRIVATE_BASE + 0)
  32. MODULE_AUTHOR("Leandro Costantino <le_costantino@pixartargentina.com.ar>");
  33. MODULE_DESCRIPTION("GSPCA/T613 (JPEG Compliance) USB Camera Driver");
  34. MODULE_LICENSE("GPL");
  35. struct sd {
  36. struct gspca_dev gspca_dev; /* !! must be the first item */
  37. u8 brightness;
  38. u8 contrast;
  39. u8 colors;
  40. u8 autogain;
  41. u8 gamma;
  42. u8 sharpness;
  43. u8 freq;
  44. u8 red_gain;
  45. u8 blue_gain;
  46. u8 green_gain;
  47. u8 awb; /* set default r/g/b and activate */
  48. u8 mirror;
  49. u8 effect;
  50. u8 sensor;
  51. };
  52. enum sensors {
  53. SENSOR_OM6802,
  54. SENSOR_OTHER,
  55. SENSOR_TAS5130A,
  56. SENSOR_LT168G, /* must verify if this is the actual model */
  57. };
  58. /* V4L2 controls supported by the driver */
  59. static int sd_setbrightness(struct gspca_dev *gspca_dev, __s32 val);
  60. static int sd_getbrightness(struct gspca_dev *gspca_dev, __s32 *val);
  61. static int sd_setcontrast(struct gspca_dev *gspca_dev, __s32 val);
  62. static int sd_getcontrast(struct gspca_dev *gspca_dev, __s32 *val);
  63. static int sd_setcolors(struct gspca_dev *gspca_dev, __s32 val);
  64. static int sd_getcolors(struct gspca_dev *gspca_dev, __s32 *val);
  65. static int sd_setlowlight(struct gspca_dev *gspca_dev, __s32 val);
  66. static int sd_getlowlight(struct gspca_dev *gspca_dev, __s32 *val);
  67. static int sd_setgamma(struct gspca_dev *gspca_dev, __s32 val);
  68. static int sd_getgamma(struct gspca_dev *gspca_dev, __s32 *val);
  69. static int sd_setsharpness(struct gspca_dev *gspca_dev, __s32 val);
  70. static int sd_getsharpness(struct gspca_dev *gspca_dev, __s32 *val);
  71. static int sd_setfreq(struct gspca_dev *gspca_dev, __s32 val);
  72. static int sd_getfreq(struct gspca_dev *gspca_dev, __s32 *val);
  73. static int sd_setawb(struct gspca_dev *gspca_dev, __s32 val);
  74. static int sd_getawb(struct gspca_dev *gspca_dev, __s32 *val);
  75. static int sd_setblue_gain(struct gspca_dev *gspca_dev, __s32 val);
  76. static int sd_getblue_gain(struct gspca_dev *gspca_dev, __s32 *val);
  77. static int sd_setred_gain(struct gspca_dev *gspca_dev, __s32 val);
  78. static int sd_getred_gain(struct gspca_dev *gspca_dev, __s32 *val);
  79. static int sd_setgain(struct gspca_dev *gspca_dev, __s32 val);
  80. static int sd_getgain(struct gspca_dev *gspca_dev, __s32 *val);
  81. static int sd_setmirror(struct gspca_dev *gspca_dev, __s32 val);
  82. static int sd_getmirror(struct gspca_dev *gspca_dev, __s32 *val);
  83. static int sd_seteffect(struct gspca_dev *gspca_dev, __s32 val);
  84. static int sd_geteffect(struct gspca_dev *gspca_dev, __s32 *val);
  85. static int sd_querymenu(struct gspca_dev *gspca_dev,
  86. struct v4l2_querymenu *menu);
  87. static const struct ctrl sd_ctrls[] = {
  88. {
  89. {
  90. .id = V4L2_CID_BRIGHTNESS,
  91. .type = V4L2_CTRL_TYPE_INTEGER,
  92. .name = "Brightness",
  93. .minimum = 0,
  94. .maximum = 14,
  95. .step = 1,
  96. #define BRIGHTNESS_DEF 8
  97. .default_value = BRIGHTNESS_DEF,
  98. },
  99. .set = sd_setbrightness,
  100. .get = sd_getbrightness,
  101. },
  102. {
  103. {
  104. .id = V4L2_CID_CONTRAST,
  105. .type = V4L2_CTRL_TYPE_INTEGER,
  106. .name = "Contrast",
  107. .minimum = 0,
  108. .maximum = 0x0d,
  109. .step = 1,
  110. #define CONTRAST_DEF 0x07
  111. .default_value = CONTRAST_DEF,
  112. },
  113. .set = sd_setcontrast,
  114. .get = sd_getcontrast,
  115. },
  116. {
  117. {
  118. .id = V4L2_CID_SATURATION,
  119. .type = V4L2_CTRL_TYPE_INTEGER,
  120. .name = "Color",
  121. .minimum = 0,
  122. .maximum = 0x0f,
  123. .step = 1,
  124. #define COLORS_DEF 0x05
  125. .default_value = COLORS_DEF,
  126. },
  127. .set = sd_setcolors,
  128. .get = sd_getcolors,
  129. },
  130. #define GAMMA_MAX 16
  131. #define GAMMA_DEF 10
  132. {
  133. {
  134. .id = V4L2_CID_GAMMA, /* (gamma on win) */
  135. .type = V4L2_CTRL_TYPE_INTEGER,
  136. .name = "Gamma",
  137. .minimum = 0,
  138. .maximum = GAMMA_MAX - 1,
  139. .step = 1,
  140. .default_value = GAMMA_DEF,
  141. },
  142. .set = sd_setgamma,
  143. .get = sd_getgamma,
  144. },
  145. {
  146. {
  147. .id = V4L2_CID_BACKLIGHT_COMPENSATION, /* Activa lowlight,
  148. * some apps dont bring up the
  149. * backligth_compensation control) */
  150. .type = V4L2_CTRL_TYPE_INTEGER,
  151. .name = "Low Light",
  152. .minimum = 0,
  153. .maximum = 1,
  154. .step = 1,
  155. #define AUTOGAIN_DEF 0x01
  156. .default_value = AUTOGAIN_DEF,
  157. },
  158. .set = sd_setlowlight,
  159. .get = sd_getlowlight,
  160. },
  161. {
  162. {
  163. .id = V4L2_CID_HFLIP,
  164. .type = V4L2_CTRL_TYPE_BOOLEAN,
  165. .name = "Mirror Image",
  166. .minimum = 0,
  167. .maximum = 1,
  168. .step = 1,
  169. #define MIRROR_DEF 0
  170. .default_value = MIRROR_DEF,
  171. },
  172. .set = sd_setmirror,
  173. .get = sd_getmirror
  174. },
  175. {
  176. {
  177. .id = V4L2_CID_POWER_LINE_FREQUENCY,
  178. .type = V4L2_CTRL_TYPE_MENU,
  179. .name = "Light Frequency Filter",
  180. .minimum = 1, /* 1 -> 0x50, 2->0x60 */
  181. .maximum = 2,
  182. .step = 1,
  183. #define FREQ_DEF 1
  184. .default_value = FREQ_DEF,
  185. },
  186. .set = sd_setfreq,
  187. .get = sd_getfreq},
  188. {
  189. {
  190. .id = V4L2_CID_AUTO_WHITE_BALANCE,
  191. .type = V4L2_CTRL_TYPE_INTEGER,
  192. .name = "Auto White Balance",
  193. .minimum = 0,
  194. .maximum = 1,
  195. .step = 1,
  196. #define AWB_DEF 0
  197. .default_value = AWB_DEF,
  198. },
  199. .set = sd_setawb,
  200. .get = sd_getawb
  201. },
  202. {
  203. {
  204. .id = V4L2_CID_SHARPNESS,
  205. .type = V4L2_CTRL_TYPE_INTEGER,
  206. .name = "Sharpness",
  207. .minimum = 0,
  208. .maximum = 15,
  209. .step = 1,
  210. #define SHARPNESS_DEF 0x06
  211. .default_value = SHARPNESS_DEF,
  212. },
  213. .set = sd_setsharpness,
  214. .get = sd_getsharpness,
  215. },
  216. {
  217. {
  218. .id = V4L2_CID_EFFECTS,
  219. .type = V4L2_CTRL_TYPE_MENU,
  220. .name = "Webcam Effects",
  221. .minimum = 0,
  222. .maximum = 4,
  223. .step = 1,
  224. #define EFFECTS_DEF 0
  225. .default_value = EFFECTS_DEF,
  226. },
  227. .set = sd_seteffect,
  228. .get = sd_geteffect
  229. },
  230. {
  231. {
  232. .id = V4L2_CID_BLUE_BALANCE,
  233. .type = V4L2_CTRL_TYPE_INTEGER,
  234. .name = "Blue Balance",
  235. .minimum = 0x10,
  236. .maximum = 0x40,
  237. .step = 1,
  238. #define BLUE_GAIN_DEF 0x20
  239. .default_value = BLUE_GAIN_DEF,
  240. },
  241. .set = sd_setblue_gain,
  242. .get = sd_getblue_gain,
  243. },
  244. {
  245. {
  246. .id = V4L2_CID_RED_BALANCE,
  247. .type = V4L2_CTRL_TYPE_INTEGER,
  248. .name = "Red Balance",
  249. .minimum = 0x10,
  250. .maximum = 0x40,
  251. .step = 1,
  252. #define RED_GAIN_DEF 0x20
  253. .default_value = RED_GAIN_DEF,
  254. },
  255. .set = sd_setred_gain,
  256. .get = sd_getred_gain,
  257. },
  258. {
  259. {
  260. .id = V4L2_CID_GAIN,
  261. .type = V4L2_CTRL_TYPE_INTEGER,
  262. .name = "Gain",
  263. .minimum = 0x10,
  264. .maximum = 0x40,
  265. .step = 1,
  266. #define GAIN_DEF 0x20
  267. .default_value = GAIN_DEF,
  268. },
  269. .set = sd_setgain,
  270. .get = sd_getgain,
  271. },
  272. };
  273. static const struct v4l2_pix_format vga_mode_t16[] = {
  274. {160, 120, V4L2_PIX_FMT_JPEG, V4L2_FIELD_NONE,
  275. .bytesperline = 160,
  276. .sizeimage = 160 * 120 * 4 / 8 + 590,
  277. .colorspace = V4L2_COLORSPACE_JPEG,
  278. .priv = 4},
  279. {176, 144, V4L2_PIX_FMT_JPEG, V4L2_FIELD_NONE,
  280. .bytesperline = 176,
  281. .sizeimage = 176 * 144 * 3 / 8 + 590,
  282. .colorspace = V4L2_COLORSPACE_JPEG,
  283. .priv = 3},
  284. {320, 240, V4L2_PIX_FMT_JPEG, V4L2_FIELD_NONE,
  285. .bytesperline = 320,
  286. .sizeimage = 320 * 240 * 3 / 8 + 590,
  287. .colorspace = V4L2_COLORSPACE_JPEG,
  288. .priv = 2},
  289. {352, 288, V4L2_PIX_FMT_JPEG, V4L2_FIELD_NONE,
  290. .bytesperline = 352,
  291. .sizeimage = 352 * 288 * 3 / 8 + 590,
  292. .colorspace = V4L2_COLORSPACE_JPEG,
  293. .priv = 1},
  294. {640, 480, V4L2_PIX_FMT_JPEG, V4L2_FIELD_NONE,
  295. .bytesperline = 640,
  296. .sizeimage = 640 * 480 * 3 / 8 + 590,
  297. .colorspace = V4L2_COLORSPACE_JPEG,
  298. .priv = 0},
  299. };
  300. /* sensor specific data */
  301. struct additional_sensor_data {
  302. const u8 n3[6];
  303. const u8 *n4, n4sz;
  304. const u8 reg80, reg8e;
  305. const u8 nset8[6];
  306. const u8 data1[10];
  307. const u8 data2[9];
  308. const u8 data3[9];
  309. const u8 data5[6];
  310. const u8 stream[4];
  311. };
  312. static const u8 n4_om6802[] = {
  313. 0x09, 0x01, 0x12, 0x04, 0x66, 0x8a, 0x80, 0x3c,
  314. 0x81, 0x22, 0x84, 0x50, 0x8a, 0x78, 0x8b, 0x68,
  315. 0x8c, 0x88, 0x8e, 0x33, 0x8f, 0x24, 0xaa, 0xb1,
  316. 0xa2, 0x60, 0xa5, 0x30, 0xa6, 0x3a, 0xa8, 0xe8,
  317. 0xae, 0x05, 0xb1, 0x00, 0xbb, 0x04, 0xbc, 0x48,
  318. 0xbe, 0x36, 0xc6, 0x88, 0xe9, 0x00, 0xc5, 0xc0,
  319. 0x65, 0x0a, 0xbb, 0x86, 0xaf, 0x58, 0xb0, 0x68,
  320. 0x87, 0x40, 0x89, 0x2b, 0x8d, 0xff, 0x83, 0x40,
  321. 0xac, 0x84, 0xad, 0x86, 0xaf, 0x46
  322. };
  323. static const u8 n4_other[] = {
  324. 0x66, 0x00, 0x7f, 0x00, 0x80, 0xac, 0x81, 0x69,
  325. 0x84, 0x40, 0x85, 0x70, 0x86, 0x20, 0x8a, 0x68,
  326. 0x8b, 0x58, 0x8c, 0x88, 0x8d, 0xff, 0x8e, 0xb8,
  327. 0x8f, 0x28, 0xa2, 0x60, 0xa5, 0x40, 0xa8, 0xa8,
  328. 0xac, 0x84, 0xad, 0x84, 0xae, 0x24, 0xaf, 0x56,
  329. 0xb0, 0x68, 0xb1, 0x00, 0xb2, 0x88, 0xbb, 0xc5,
  330. 0xbc, 0x4a, 0xbe, 0x36, 0xc2, 0x88, 0xc5, 0xc0,
  331. 0xc6, 0xda, 0xe9, 0x26, 0xeb, 0x00
  332. };
  333. static const u8 n4_tas5130a[] = {
  334. 0x80, 0x3c, 0x81, 0x68, 0x83, 0xa0, 0x84, 0x20,
  335. 0x8a, 0x68, 0x8b, 0x58, 0x8c, 0x88, 0x8e, 0xb4,
  336. 0x8f, 0x24, 0xa1, 0xb1, 0xa2, 0x30, 0xa5, 0x10,
  337. 0xa6, 0x4a, 0xae, 0x03, 0xb1, 0x44, 0xb2, 0x08,
  338. 0xb7, 0x06, 0xb9, 0xe7, 0xbb, 0xc4, 0xbc, 0x4a,
  339. 0xbe, 0x36, 0xbf, 0xff, 0xc2, 0x88, 0xc5, 0xc8,
  340. 0xc6, 0xda
  341. };
  342. static const u8 n4_lt168g[] = {
  343. 0x66, 0x01, 0x7f, 0x00, 0x80, 0x7c, 0x81, 0x28,
  344. 0x83, 0x44, 0x84, 0x20, 0x86, 0x20, 0x8a, 0x70,
  345. 0x8b, 0x58, 0x8c, 0x88, 0x8d, 0xa0, 0x8e, 0xb3,
  346. 0x8f, 0x24, 0xa1, 0xb0, 0xa2, 0x38, 0xa5, 0x20,
  347. 0xa6, 0x4a, 0xa8, 0xe8, 0xaf, 0x38, 0xb0, 0x68,
  348. 0xb1, 0x44, 0xb2, 0x88, 0xbb, 0x86, 0xbd, 0x40,
  349. 0xbe, 0x26, 0xc1, 0x05, 0xc2, 0x88, 0xc5, 0xc0,
  350. 0xda, 0x8e, 0xdb, 0xca, 0xdc, 0xa8, 0xdd, 0x8c,
  351. 0xde, 0x44, 0xdf, 0x0c, 0xe9, 0x80
  352. };
  353. static const struct additional_sensor_data sensor_data[] = {
  354. [SENSOR_OM6802] = {
  355. .n3 =
  356. {0x61, 0x68, 0x65, 0x0a, 0x60, 0x04},
  357. .n4 = n4_om6802,
  358. .n4sz = sizeof n4_om6802,
  359. .reg80 = 0x3c,
  360. .reg8e = 0x33,
  361. .nset8 = {0xa8, 0xf0, 0xc6, 0x88, 0xc0, 0x00},
  362. .data1 =
  363. {0xc2, 0x28, 0x0f, 0x22, 0xcd, 0x27, 0x2c, 0x06,
  364. 0xb3, 0xfc},
  365. .data2 =
  366. {0x80, 0xff, 0xff, 0x80, 0xff, 0xff, 0x80, 0xff,
  367. 0xff},
  368. .data3 =
  369. {0x80, 0xff, 0xff, 0x80, 0xff, 0xff, 0x80, 0xff,
  370. 0xff},
  371. .data5 = /* this could be removed later */
  372. {0x0c, 0x03, 0xab, 0x13, 0x81, 0x23},
  373. .stream =
  374. {0x0b, 0x04, 0x0a, 0x78},
  375. },
  376. [SENSOR_OTHER] = {
  377. .n3 =
  378. {0x61, 0xc2, 0x65, 0x88, 0x60, 0x00},
  379. .n4 = n4_other,
  380. .n4sz = sizeof n4_other,
  381. .reg80 = 0xac,
  382. .reg8e = 0xb8,
  383. .nset8 = {0xa8, 0xa8, 0xc6, 0xda, 0xc0, 0x00},
  384. .data1 =
  385. {0xc1, 0x48, 0x04, 0x1b, 0xca, 0x2e, 0x33, 0x3a,
  386. 0xe8, 0xfc},
  387. .data2 =
  388. {0x4e, 0x9c, 0xec, 0x40, 0x80, 0xc0, 0x48, 0x96,
  389. 0xd9},
  390. .data3 =
  391. {0x4e, 0x9c, 0xec, 0x40, 0x80, 0xc0, 0x48, 0x96,
  392. 0xd9},
  393. .data5 =
  394. {0x0c, 0x03, 0xab, 0x29, 0x81, 0x69},
  395. .stream =
  396. {0x0b, 0x04, 0x0a, 0x00},
  397. },
  398. [SENSOR_TAS5130A] = {
  399. .n3 =
  400. {0x61, 0xc2, 0x65, 0x0d, 0x60, 0x08},
  401. .n4 = n4_tas5130a,
  402. .n4sz = sizeof n4_tas5130a,
  403. .reg80 = 0x3c,
  404. .reg8e = 0xb4,
  405. .nset8 = {0xa8, 0xf0, 0xc6, 0xda, 0xc0, 0x00},
  406. .data1 =
  407. {0xbb, 0x28, 0x10, 0x10, 0xbb, 0x28, 0x1e, 0x27,
  408. 0xc8, 0xfc},
  409. .data2 =
  410. {0x60, 0xa8, 0xe0, 0x60, 0xa8, 0xe0, 0x60, 0xa8,
  411. 0xe0},
  412. .data3 =
  413. {0x60, 0xa8, 0xe0, 0x60, 0xa8, 0xe0, 0x60, 0xa8,
  414. 0xe0},
  415. .data5 =
  416. {0x0c, 0x03, 0xab, 0x10, 0x81, 0x20},
  417. .stream =
  418. {0x0b, 0x04, 0x0a, 0x40},
  419. },
  420. [SENSOR_LT168G] = {
  421. .n3 = {0x61, 0xc2, 0x65, 0x68, 0x60, 0x00},
  422. .n4 = n4_lt168g,
  423. .n4sz = sizeof n4_lt168g,
  424. .reg80 = 0x7c,
  425. .reg8e = 0xb3,
  426. .nset8 = {0xa8, 0xf0, 0xc6, 0xba, 0xc0, 0x00},
  427. .data1 = {0xc0, 0x38, 0x08, 0x10, 0xc0, 0x30, 0x10, 0x40,
  428. 0xb0, 0xf4},
  429. .data2 = {0x40, 0x80, 0xc0, 0x50, 0xa0, 0xf0, 0x53, 0xa6,
  430. 0xff},
  431. .data3 = {0x40, 0x80, 0xc0, 0x50, 0xa0, 0xf0, 0x53, 0xa6,
  432. 0xff},
  433. .data5 = {0x0c, 0x03, 0xab, 0x4b, 0x81, 0x2b},
  434. .stream = {0x0b, 0x04, 0x0a, 0x28},
  435. },
  436. };
  437. #define MAX_EFFECTS 7
  438. /* easily done by soft, this table could be removed,
  439. * i keep it here just in case */
  440. static char *effects_control[MAX_EFFECTS] = {
  441. "Normal",
  442. "Emboss", /* disabled */
  443. "Monochrome",
  444. "Sepia",
  445. "Sketch",
  446. "Sun Effect", /* disabled */
  447. "Negative",
  448. };
  449. static const u8 effects_table[MAX_EFFECTS][6] = {
  450. {0xa8, 0xe8, 0xc6, 0xd2, 0xc0, 0x00}, /* Normal */
  451. {0xa8, 0xc8, 0xc6, 0x52, 0xc0, 0x04}, /* Repujar */
  452. {0xa8, 0xe8, 0xc6, 0xd2, 0xc0, 0x20}, /* Monochrome */
  453. {0xa8, 0xe8, 0xc6, 0xd2, 0xc0, 0x80}, /* Sepia */
  454. {0xa8, 0xc8, 0xc6, 0x52, 0xc0, 0x02}, /* Croquis */
  455. {0xa8, 0xc8, 0xc6, 0xd2, 0xc0, 0x10}, /* Sun Effect */
  456. {0xa8, 0xc8, 0xc6, 0xd2, 0xc0, 0x40}, /* Negative */
  457. };
  458. static const u8 gamma_table[GAMMA_MAX][17] = {
  459. /* gamma table from cam1690.ini */
  460. {0x00, 0x00, 0x01, 0x04, 0x08, 0x0e, 0x16, 0x21, /* 0 */
  461. 0x2e, 0x3d, 0x50, 0x65, 0x7d, 0x99, 0xb8, 0xdb,
  462. 0xff},
  463. {0x00, 0x01, 0x03, 0x08, 0x0e, 0x16, 0x21, 0x2d, /* 1 */
  464. 0x3c, 0x4d, 0x60, 0x75, 0x8d, 0xa6, 0xc2, 0xe1,
  465. 0xff},
  466. {0x00, 0x01, 0x05, 0x0b, 0x12, 0x1c, 0x28, 0x35, /* 2 */
  467. 0x45, 0x56, 0x69, 0x7e, 0x95, 0xad, 0xc7, 0xe3,
  468. 0xff},
  469. {0x00, 0x02, 0x07, 0x0f, 0x18, 0x24, 0x30, 0x3f, /* 3 */
  470. 0x4f, 0x61, 0x73, 0x88, 0x9d, 0xb4, 0xcd, 0xe6,
  471. 0xff},
  472. {0x00, 0x04, 0x0b, 0x15, 0x20, 0x2d, 0x3b, 0x4a, /* 4 */
  473. 0x5b, 0x6c, 0x7f, 0x92, 0xa7, 0xbc, 0xd2, 0xe9,
  474. 0xff},
  475. {0x00, 0x07, 0x11, 0x15, 0x20, 0x2d, 0x48, 0x58, /* 5 */
  476. 0x68, 0x79, 0x8b, 0x9d, 0xb0, 0xc4, 0xd7, 0xec,
  477. 0xff},
  478. {0x00, 0x0c, 0x1a, 0x29, 0x38, 0x47, 0x57, 0x67, /* 6 */
  479. 0x77, 0x88, 0x99, 0xaa, 0xbb, 0xcc, 0xdd, 0xee,
  480. 0xff},
  481. {0x00, 0x10, 0x20, 0x30, 0x40, 0x50, 0x60, 0x70, /* 7 */
  482. 0x80, 0x90, 0xa0, 0xb0, 0xc0, 0xd0, 0xe0, 0xf0,
  483. 0xff},
  484. {0x00, 0x15, 0x27, 0x38, 0x49, 0x59, 0x69, 0x79, /* 8 */
  485. 0x88, 0x97, 0xa7, 0xb6, 0xc4, 0xd3, 0xe2, 0xf0,
  486. 0xff},
  487. {0x00, 0x1c, 0x30, 0x43, 0x54, 0x65, 0x75, 0x84, /* 9 */
  488. 0x93, 0xa1, 0xb0, 0xbd, 0xca, 0xd8, 0xe5, 0xf2,
  489. 0xff},
  490. {0x00, 0x24, 0x3b, 0x4f, 0x60, 0x70, 0x80, 0x8e, /* 10 */
  491. 0x9c, 0xaa, 0xb7, 0xc4, 0xd0, 0xdc, 0xe8, 0xf3,
  492. 0xff},
  493. {0x00, 0x2a, 0x3c, 0x5d, 0x6e, 0x7e, 0x8d, 0x9b, /* 11 */
  494. 0xa8, 0xb4, 0xc0, 0xcb, 0xd6, 0xe1, 0xeb, 0xf5,
  495. 0xff},
  496. {0x00, 0x3f, 0x5a, 0x6e, 0x7f, 0x8e, 0x9c, 0xa8, /* 12 */
  497. 0xb4, 0xbf, 0xc9, 0xd3, 0xdc, 0xe5, 0xee, 0xf6,
  498. 0xff},
  499. {0x00, 0x54, 0x6f, 0x83, 0x93, 0xa0, 0xad, 0xb7, /* 13 */
  500. 0xc2, 0xcb, 0xd4, 0xdc, 0xe4, 0xeb, 0xf2, 0xf9,
  501. 0xff},
  502. {0x00, 0x6e, 0x88, 0x9a, 0xa8, 0xb3, 0xbd, 0xc6, /* 14 */
  503. 0xcf, 0xd6, 0xdd, 0xe3, 0xe9, 0xef, 0xf4, 0xfa,
  504. 0xff},
  505. {0x00, 0x93, 0xa8, 0xb7, 0xc1, 0xca, 0xd2, 0xd8, /* 15 */
  506. 0xde, 0xe3, 0xe8, 0xed, 0xf1, 0xf5, 0xf8, 0xfc,
  507. 0xff}
  508. };
  509. static const u8 tas5130a_sensor_init[][8] = {
  510. {0x62, 0x08, 0x63, 0x70, 0x64, 0x1d, 0x60, 0x09},
  511. {0x62, 0x20, 0x63, 0x01, 0x64, 0x02, 0x60, 0x09},
  512. {0x62, 0x07, 0x63, 0x03, 0x64, 0x00, 0x60, 0x09},
  513. };
  514. static u8 sensor_reset[] = {0x61, 0x68, 0x62, 0xff, 0x60, 0x07};
  515. /* read 1 byte */
  516. static u8 reg_r(struct gspca_dev *gspca_dev,
  517. u16 index)
  518. {
  519. usb_control_msg(gspca_dev->dev,
  520. usb_rcvctrlpipe(gspca_dev->dev, 0),
  521. 0, /* request */
  522. USB_DIR_IN | USB_TYPE_VENDOR | USB_RECIP_DEVICE,
  523. 0, /* value */
  524. index,
  525. gspca_dev->usb_buf, 1, 500);
  526. return gspca_dev->usb_buf[0];
  527. }
  528. static void reg_w(struct gspca_dev *gspca_dev,
  529. u16 index)
  530. {
  531. usb_control_msg(gspca_dev->dev,
  532. usb_sndctrlpipe(gspca_dev->dev, 0),
  533. 0,
  534. USB_DIR_OUT | USB_TYPE_VENDOR | USB_RECIP_DEVICE,
  535. 0, index,
  536. NULL, 0, 500);
  537. }
  538. static void reg_w_buf(struct gspca_dev *gspca_dev,
  539. const u8 *buffer, u16 len)
  540. {
  541. if (len <= USB_BUF_SZ) {
  542. memcpy(gspca_dev->usb_buf, buffer, len);
  543. usb_control_msg(gspca_dev->dev,
  544. usb_sndctrlpipe(gspca_dev->dev, 0),
  545. 0,
  546. USB_DIR_OUT | USB_TYPE_VENDOR | USB_RECIP_DEVICE,
  547. 0x01, 0,
  548. gspca_dev->usb_buf, len, 500);
  549. } else {
  550. u8 *tmpbuf;
  551. tmpbuf = kmemdup(buffer, len, GFP_KERNEL);
  552. if (!tmpbuf) {
  553. err("Out of memory");
  554. return;
  555. }
  556. usb_control_msg(gspca_dev->dev,
  557. usb_sndctrlpipe(gspca_dev->dev, 0),
  558. 0,
  559. USB_DIR_OUT | USB_TYPE_VENDOR | USB_RECIP_DEVICE,
  560. 0x01, 0,
  561. tmpbuf, len, 500);
  562. kfree(tmpbuf);
  563. }
  564. }
  565. /* write values to consecutive registers */
  566. static void reg_w_ixbuf(struct gspca_dev *gspca_dev,
  567. u8 reg,
  568. const u8 *buffer, u16 len)
  569. {
  570. int i;
  571. u8 *p, *tmpbuf;
  572. if (len * 2 <= USB_BUF_SZ) {
  573. p = tmpbuf = gspca_dev->usb_buf;
  574. } else {
  575. p = tmpbuf = kmalloc(len * 2, GFP_KERNEL);
  576. if (!tmpbuf) {
  577. err("Out of memory");
  578. return;
  579. }
  580. }
  581. i = len;
  582. while (--i >= 0) {
  583. *p++ = reg++;
  584. *p++ = *buffer++;
  585. }
  586. usb_control_msg(gspca_dev->dev,
  587. usb_sndctrlpipe(gspca_dev->dev, 0),
  588. 0,
  589. USB_DIR_OUT | USB_TYPE_VENDOR | USB_RECIP_DEVICE,
  590. 0x01, 0,
  591. tmpbuf, len * 2, 500);
  592. if (len * 2 > USB_BUF_SZ)
  593. kfree(tmpbuf);
  594. }
  595. static void om6802_sensor_init(struct gspca_dev *gspca_dev)
  596. {
  597. int i;
  598. const u8 *p;
  599. u8 byte;
  600. u8 val[6] = {0x62, 0, 0x64, 0, 0x60, 0x05};
  601. static const u8 sensor_init[] = {
  602. 0xdf, 0x6d,
  603. 0xdd, 0x18,
  604. 0x5a, 0xe0,
  605. 0x5c, 0x07,
  606. 0x5d, 0xb0,
  607. 0x5e, 0x1e,
  608. 0x60, 0x71,
  609. 0xef, 0x00,
  610. 0xe9, 0x00,
  611. 0xea, 0x00,
  612. 0x90, 0x24,
  613. 0x91, 0xb2,
  614. 0x82, 0x32,
  615. 0xfd, 0x41,
  616. 0x00 /* table end */
  617. };
  618. reg_w_buf(gspca_dev, sensor_reset, sizeof sensor_reset);
  619. msleep(100);
  620. i = 4;
  621. while (--i > 0) {
  622. byte = reg_r(gspca_dev, 0x0060);
  623. if (!(byte & 0x01))
  624. break;
  625. msleep(100);
  626. }
  627. byte = reg_r(gspca_dev, 0x0063);
  628. if (byte != 0x17) {
  629. err("Bad sensor reset %02x", byte);
  630. /* continue? */
  631. }
  632. p = sensor_init;
  633. while (*p != 0) {
  634. val[1] = *p++;
  635. val[3] = *p++;
  636. if (*p == 0)
  637. reg_w(gspca_dev, 0x3c80);
  638. reg_w_buf(gspca_dev, val, sizeof val);
  639. i = 4;
  640. while (--i >= 0) {
  641. msleep(15);
  642. byte = reg_r(gspca_dev, 0x60);
  643. if (!(byte & 0x01))
  644. break;
  645. }
  646. }
  647. msleep(15);
  648. reg_w(gspca_dev, 0x3c80);
  649. }
  650. /* this function is called at probe time */
  651. static int sd_config(struct gspca_dev *gspca_dev,
  652. const struct usb_device_id *id)
  653. {
  654. struct sd *sd = (struct sd *) gspca_dev;
  655. struct cam *cam;
  656. cam = &gspca_dev->cam;
  657. cam->cam_mode = vga_mode_t16;
  658. cam->nmodes = ARRAY_SIZE(vga_mode_t16);
  659. sd->brightness = BRIGHTNESS_DEF;
  660. sd->contrast = CONTRAST_DEF;
  661. sd->colors = COLORS_DEF;
  662. sd->gamma = GAMMA_DEF;
  663. sd->autogain = AUTOGAIN_DEF;
  664. sd->mirror = MIRROR_DEF;
  665. sd->freq = FREQ_DEF;
  666. sd->awb = AWB_DEF;
  667. sd->sharpness = SHARPNESS_DEF;
  668. sd->effect = EFFECTS_DEF;
  669. sd->red_gain = RED_GAIN_DEF;
  670. sd->blue_gain = BLUE_GAIN_DEF;
  671. sd->green_gain = GAIN_DEF * 3 - RED_GAIN_DEF - BLUE_GAIN_DEF;
  672. return 0;
  673. }
  674. static void setbrightness(struct gspca_dev *gspca_dev)
  675. {
  676. struct sd *sd = (struct sd *) gspca_dev;
  677. unsigned int brightness;
  678. u8 set6[4] = { 0x8f, 0x24, 0xc3, 0x00 };
  679. brightness = sd->brightness;
  680. if (brightness < 7) {
  681. set6[1] = 0x26;
  682. set6[3] = 0x70 - brightness * 0x10;
  683. } else {
  684. set6[3] = 0x00 + ((brightness - 7) * 0x10);
  685. }
  686. reg_w_buf(gspca_dev, set6, sizeof set6);
  687. }
  688. static void setcontrast(struct gspca_dev *gspca_dev)
  689. {
  690. struct sd *sd = (struct sd *) gspca_dev;
  691. unsigned int contrast = sd->contrast;
  692. u16 reg_to_write;
  693. if (contrast < 7)
  694. reg_to_write = 0x8ea9 - contrast * 0x200;
  695. else
  696. reg_to_write = 0x00a9 + (contrast - 7) * 0x200;
  697. reg_w(gspca_dev, reg_to_write);
  698. }
  699. static void setcolors(struct gspca_dev *gspca_dev)
  700. {
  701. struct sd *sd = (struct sd *) gspca_dev;
  702. u16 reg_to_write;
  703. reg_to_write = 0x80bb + sd->colors * 0x100; /* was 0xc0 */
  704. reg_w(gspca_dev, reg_to_write);
  705. }
  706. static void setgamma(struct gspca_dev *gspca_dev)
  707. {
  708. struct sd *sd = (struct sd *) gspca_dev;
  709. PDEBUG(D_CONF, "Gamma: %d", sd->gamma);
  710. reg_w_ixbuf(gspca_dev, 0x90,
  711. gamma_table[sd->gamma], sizeof gamma_table[0]);
  712. }
  713. static void setRGB(struct gspca_dev *gspca_dev)
  714. {
  715. struct sd *sd = (struct sd *) gspca_dev;
  716. u8 all_gain_reg[6] =
  717. {0x87, 0x00, 0x88, 0x00, 0x89, 0x00};
  718. all_gain_reg[1] = sd->red_gain;
  719. all_gain_reg[3] = sd->blue_gain;
  720. all_gain_reg[5] = sd->green_gain;
  721. reg_w_buf(gspca_dev, all_gain_reg, sizeof all_gain_reg);
  722. }
  723. /* Generic fnc for r/b balance, exposure and awb */
  724. static void setawb(struct gspca_dev *gspca_dev)
  725. {
  726. struct sd *sd = (struct sd *) gspca_dev;
  727. u16 reg80;
  728. reg80 = (sensor_data[sd->sensor].reg80 << 8) | 0x80;
  729. /* on awb leave defaults values */
  730. if (!sd->awb) {
  731. /* shoud we wait here.. */
  732. /* update and reset RGB gains with webcam values */
  733. sd->red_gain = reg_r(gspca_dev, 0x0087);
  734. sd->blue_gain = reg_r(gspca_dev, 0x0088);
  735. sd->green_gain = reg_r(gspca_dev, 0x0089);
  736. reg80 &= ~0x0400; /* AWB off */
  737. }
  738. reg_w(gspca_dev, reg80);
  739. reg_w(gspca_dev, reg80);
  740. }
  741. static void init_gains(struct gspca_dev *gspca_dev)
  742. {
  743. struct sd *sd = (struct sd *) gspca_dev;
  744. u16 reg80;
  745. u8 all_gain_reg[8] =
  746. {0x87, 0x00, 0x88, 0x00, 0x89, 0x00, 0x80, 0x00};
  747. all_gain_reg[1] = sd->red_gain;
  748. all_gain_reg[3] = sd->blue_gain;
  749. all_gain_reg[5] = sd->green_gain;
  750. reg80 = sensor_data[sd->sensor].reg80;
  751. if (!sd->awb)
  752. reg80 &= ~0x04;
  753. all_gain_reg[7] = reg80;
  754. reg_w_buf(gspca_dev, all_gain_reg, sizeof all_gain_reg);
  755. reg_w(gspca_dev, (sd->red_gain << 8) + 0x87);
  756. reg_w(gspca_dev, (sd->blue_gain << 8) + 0x88);
  757. reg_w(gspca_dev, (sd->green_gain << 8) + 0x89);
  758. }
  759. static void setsharpness(struct gspca_dev *gspca_dev)
  760. {
  761. struct sd *sd = (struct sd *) gspca_dev;
  762. u16 reg_to_write;
  763. reg_to_write = 0x0aa6 + 0x1000 * sd->sharpness;
  764. reg_w(gspca_dev, reg_to_write);
  765. }
  766. static void setfreq(struct gspca_dev *gspca_dev)
  767. {
  768. struct sd *sd = (struct sd *) gspca_dev;
  769. u8 reg66;
  770. u8 freq[4] = { 0x66, 0x00, 0xa8, 0xe8 };
  771. switch (sd->sensor) {
  772. case SENSOR_LT168G:
  773. if (sd->freq != 0)
  774. freq[3] = 0xa8;
  775. reg66 = 0x41;
  776. break;
  777. case SENSOR_OM6802:
  778. reg66 = 0xca;
  779. break;
  780. default:
  781. reg66 = 0x40;
  782. break;
  783. }
  784. switch (sd->freq) {
  785. case 0: /* no flicker */
  786. freq[3] = 0xf0;
  787. break;
  788. case 2: /* 60Hz */
  789. reg66 &= ~0x40;
  790. break;
  791. }
  792. freq[1] = reg66;
  793. reg_w_buf(gspca_dev, freq, sizeof freq);
  794. }
  795. /* this function is called at probe and resume time */
  796. static int sd_init(struct gspca_dev *gspca_dev)
  797. {
  798. /* some of this registers are not really neded, because
  799. * they are overriden by setbrigthness, setcontrast, etc,
  800. * but wont hurt anyway, and can help someone with similar webcam
  801. * to see the initial parameters.*/
  802. struct sd *sd = (struct sd *) gspca_dev;
  803. const struct additional_sensor_data *sensor;
  804. int i;
  805. u16 sensor_id;
  806. u8 test_byte = 0;
  807. static const u8 read_indexs[] =
  808. { 0x0a, 0x0b, 0x66, 0x80, 0x81, 0x8e, 0x8f, 0xa5,
  809. 0xa6, 0xa8, 0xbb, 0xbc, 0xc6, 0x00 };
  810. static const u8 n1[] =
  811. {0x08, 0x03, 0x09, 0x03, 0x12, 0x04};
  812. static const u8 n2[] =
  813. {0x08, 0x00};
  814. sensor_id = (reg_r(gspca_dev, 0x06) << 8)
  815. | reg_r(gspca_dev, 0x07);
  816. switch (sensor_id & 0xff0f) {
  817. case 0x0801:
  818. PDEBUG(D_PROBE, "sensor tas5130a");
  819. sd->sensor = SENSOR_TAS5130A;
  820. break;
  821. case 0x0802:
  822. PDEBUG(D_PROBE, "sensor lt168g");
  823. sd->sensor = SENSOR_LT168G;
  824. break;
  825. case 0x0803:
  826. PDEBUG(D_PROBE, "sensor 'other'");
  827. sd->sensor = SENSOR_OTHER;
  828. break;
  829. case 0x0807:
  830. PDEBUG(D_PROBE, "sensor om6802");
  831. sd->sensor = SENSOR_OM6802;
  832. break;
  833. default:
  834. err("unknown sensor %04x", sensor_id);
  835. return -EINVAL;
  836. }
  837. if (sd->sensor == SENSOR_OM6802) {
  838. reg_w_buf(gspca_dev, n1, sizeof n1);
  839. i = 5;
  840. while (--i >= 0) {
  841. reg_w_buf(gspca_dev, sensor_reset, sizeof sensor_reset);
  842. test_byte = reg_r(gspca_dev, 0x0063);
  843. msleep(100);
  844. if (test_byte == 0x17)
  845. break; /* OK */
  846. }
  847. if (i < 0) {
  848. err("Bad sensor reset %02x", test_byte);
  849. return -EIO;
  850. }
  851. reg_w_buf(gspca_dev, n2, sizeof n2);
  852. }
  853. i = 0;
  854. while (read_indexs[i] != 0x00) {
  855. test_byte = reg_r(gspca_dev, read_indexs[i]);
  856. PDEBUG(D_STREAM, "Reg 0x%02x = 0x%02x", read_indexs[i],
  857. test_byte);
  858. i++;
  859. }
  860. sensor = &sensor_data[sd->sensor];
  861. reg_w_buf(gspca_dev, sensor->n3, sizeof sensor->n3);
  862. reg_w_buf(gspca_dev, sensor->n4, sensor->n4sz);
  863. if (sd->sensor == SENSOR_LT168G) {
  864. test_byte = reg_r(gspca_dev, 0x80);
  865. PDEBUG(D_STREAM, "Reg 0x%02x = 0x%02x", 0x80,
  866. test_byte);
  867. reg_w(gspca_dev, 0x6c80);
  868. }
  869. reg_w_ixbuf(gspca_dev, 0xd0, sensor->data1, sizeof sensor->data1);
  870. reg_w_ixbuf(gspca_dev, 0xc7, sensor->data2, sizeof sensor->data2);
  871. reg_w_ixbuf(gspca_dev, 0xe0, sensor->data3, sizeof sensor->data3);
  872. reg_w(gspca_dev, (sensor->reg80 << 8) + 0x80);
  873. reg_w(gspca_dev, (sensor->reg80 << 8) + 0x80);
  874. reg_w(gspca_dev, (sensor->reg8e << 8) + 0x8e);
  875. setbrightness(gspca_dev);
  876. setcontrast(gspca_dev);
  877. setgamma(gspca_dev);
  878. setcolors(gspca_dev);
  879. setsharpness(gspca_dev);
  880. init_gains(gspca_dev);
  881. setfreq(gspca_dev);
  882. reg_w_buf(gspca_dev, sensor->data5, sizeof sensor->data5);
  883. reg_w_buf(gspca_dev, sensor->nset8, sizeof sensor->nset8);
  884. reg_w_buf(gspca_dev, sensor->stream, sizeof sensor->stream);
  885. if (sd->sensor == SENSOR_LT168G) {
  886. test_byte = reg_r(gspca_dev, 0x80);
  887. PDEBUG(D_STREAM, "Reg 0x%02x = 0x%02x", 0x80,
  888. test_byte);
  889. reg_w(gspca_dev, 0x6c80);
  890. }
  891. reg_w_ixbuf(gspca_dev, 0xd0, sensor->data1, sizeof sensor->data1);
  892. reg_w_ixbuf(gspca_dev, 0xc7, sensor->data2, sizeof sensor->data2);
  893. reg_w_ixbuf(gspca_dev, 0xe0, sensor->data3, sizeof sensor->data3);
  894. return 0;
  895. }
  896. static void setmirror(struct gspca_dev *gspca_dev)
  897. {
  898. struct sd *sd = (struct sd *) gspca_dev;
  899. u8 hflipcmd[8] =
  900. {0x62, 0x07, 0x63, 0x03, 0x64, 0x00, 0x60, 0x09};
  901. if (sd->mirror)
  902. hflipcmd[3] = 0x01;
  903. reg_w_buf(gspca_dev, hflipcmd, sizeof hflipcmd);
  904. }
  905. static void seteffect(struct gspca_dev *gspca_dev)
  906. {
  907. struct sd *sd = (struct sd *) gspca_dev;
  908. reg_w_buf(gspca_dev, effects_table[sd->effect],
  909. sizeof effects_table[0]);
  910. if (sd->effect == 1 || sd->effect == 5) {
  911. PDEBUG(D_CONF,
  912. "This effect have been disabled for webcam \"safety\"");
  913. return;
  914. }
  915. if (sd->effect == 1 || sd->effect == 4)
  916. reg_w(gspca_dev, 0x4aa6);
  917. else
  918. reg_w(gspca_dev, 0xfaa6);
  919. }
  920. /* Is this really needed?
  921. * i added some module parameters for test with some users */
  922. static void poll_sensor(struct gspca_dev *gspca_dev)
  923. {
  924. static const u8 poll1[] =
  925. {0x67, 0x05, 0x68, 0x81, 0x69, 0x80, 0x6a, 0x82,
  926. 0x6b, 0x68, 0x6c, 0x69, 0x72, 0xd9, 0x73, 0x34,
  927. 0x74, 0x32, 0x75, 0x92, 0x76, 0x00, 0x09, 0x01,
  928. 0x60, 0x14};
  929. static const u8 poll2[] =
  930. {0x67, 0x02, 0x68, 0x71, 0x69, 0x72, 0x72, 0xa9,
  931. 0x73, 0x02, 0x73, 0x02, 0x60, 0x14};
  932. static const u8 noise03[] = /* (some differences / ms-drv) */
  933. {0xa6, 0x0a, 0xea, 0xcf, 0xbe, 0x26, 0xb1, 0x5f,
  934. 0xa1, 0xb1, 0xda, 0x6b, 0xdb, 0x98, 0xdf, 0x0c,
  935. 0xc2, 0x80, 0xc3, 0x10};
  936. PDEBUG(D_STREAM, "[Sensor requires polling]");
  937. reg_w_buf(gspca_dev, poll1, sizeof poll1);
  938. reg_w_buf(gspca_dev, poll2, sizeof poll2);
  939. reg_w_buf(gspca_dev, noise03, sizeof noise03);
  940. }
  941. static int sd_start(struct gspca_dev *gspca_dev)
  942. {
  943. struct sd *sd = (struct sd *) gspca_dev;
  944. const struct additional_sensor_data *sensor;
  945. int i, mode;
  946. u8 t2[] = { 0x07, 0x00, 0x0d, 0x60, 0x0e, 0x80 };
  947. static const u8 t3[] =
  948. { 0x07, 0x00, 0x88, 0x02, 0x06, 0x00, 0xe7, 0x01 };
  949. mode = gspca_dev->cam.cam_mode[gspca_dev->curr_mode].priv;
  950. switch (mode) {
  951. case 0: /* 640x480 (0x00) */
  952. break;
  953. case 1: /* 352x288 */
  954. t2[1] = 0x40;
  955. break;
  956. case 2: /* 320x240 */
  957. t2[1] = 0x10;
  958. break;
  959. case 3: /* 176x144 */
  960. t2[1] = 0x50;
  961. break;
  962. default:
  963. /* case 4: * 160x120 */
  964. t2[1] = 0x20;
  965. break;
  966. }
  967. switch (sd->sensor) {
  968. case SENSOR_OM6802:
  969. om6802_sensor_init(gspca_dev);
  970. break;
  971. case SENSOR_TAS5130A:
  972. i = 0;
  973. for (;;) {
  974. reg_w_buf(gspca_dev, tas5130a_sensor_init[i],
  975. sizeof tas5130a_sensor_init[0]);
  976. if (i >= ARRAY_SIZE(tas5130a_sensor_init) - 1)
  977. break;
  978. i++;
  979. }
  980. reg_w(gspca_dev, 0x3c80);
  981. /* just in case and to keep sync with logs (for mine) */
  982. reg_w_buf(gspca_dev, tas5130a_sensor_init[i],
  983. sizeof tas5130a_sensor_init[0]);
  984. reg_w(gspca_dev, 0x3c80);
  985. break;
  986. }
  987. sensor = &sensor_data[sd->sensor];
  988. setfreq(gspca_dev);
  989. reg_r(gspca_dev, 0x0012);
  990. reg_w_buf(gspca_dev, t2, sizeof t2);
  991. reg_w_ixbuf(gspca_dev, 0xb3, t3, sizeof t3);
  992. reg_w(gspca_dev, 0x0013);
  993. msleep(15);
  994. reg_w_buf(gspca_dev, sensor->stream, sizeof sensor->stream);
  995. reg_w_buf(gspca_dev, sensor->stream, sizeof sensor->stream);
  996. if (sd->sensor == SENSOR_OM6802)
  997. poll_sensor(gspca_dev);
  998. return 0;
  999. }
  1000. static void sd_stopN(struct gspca_dev *gspca_dev)
  1001. {
  1002. struct sd *sd = (struct sd *) gspca_dev;
  1003. reg_w_buf(gspca_dev, sensor_data[sd->sensor].stream,
  1004. sizeof sensor_data[sd->sensor].stream);
  1005. reg_w_buf(gspca_dev, sensor_data[sd->sensor].stream,
  1006. sizeof sensor_data[sd->sensor].stream);
  1007. if (sd->sensor == SENSOR_OM6802) {
  1008. msleep(20);
  1009. reg_w(gspca_dev, 0x0309);
  1010. }
  1011. }
  1012. static void sd_pkt_scan(struct gspca_dev *gspca_dev,
  1013. u8 *data, /* isoc packet */
  1014. int len) /* iso packet length */
  1015. {
  1016. int pkt_type;
  1017. if (data[0] == 0x5a) {
  1018. /* Control Packet, after this came the header again,
  1019. * but extra bytes came in the packet before this,
  1020. * sometimes an EOF arrives, sometimes not... */
  1021. return;
  1022. }
  1023. data += 2;
  1024. len -= 2;
  1025. if (data[0] == 0xff && data[1] == 0xd8)
  1026. pkt_type = FIRST_PACKET;
  1027. else if (data[len - 2] == 0xff && data[len - 1] == 0xd9)
  1028. pkt_type = LAST_PACKET;
  1029. else
  1030. pkt_type = INTER_PACKET;
  1031. gspca_frame_add(gspca_dev, pkt_type, data, len);
  1032. }
  1033. static int sd_setblue_gain(struct gspca_dev *gspca_dev, __s32 val)
  1034. {
  1035. struct sd *sd = (struct sd *) gspca_dev;
  1036. sd->blue_gain = val;
  1037. if (gspca_dev->streaming)
  1038. reg_w(gspca_dev, (val << 8) + 0x88);
  1039. return 0;
  1040. }
  1041. static int sd_getblue_gain(struct gspca_dev *gspca_dev, __s32 *val)
  1042. {
  1043. struct sd *sd = (struct sd *) gspca_dev;
  1044. *val = sd->blue_gain;
  1045. return 0;
  1046. }
  1047. static int sd_setred_gain(struct gspca_dev *gspca_dev, __s32 val)
  1048. {
  1049. struct sd *sd = (struct sd *) gspca_dev;
  1050. sd->red_gain = val;
  1051. if (gspca_dev->streaming)
  1052. reg_w(gspca_dev, (val << 8) + 0x87);
  1053. return 0;
  1054. }
  1055. static int sd_getred_gain(struct gspca_dev *gspca_dev, __s32 *val)
  1056. {
  1057. struct sd *sd = (struct sd *) gspca_dev;
  1058. *val = sd->red_gain;
  1059. return 0;
  1060. }
  1061. static int sd_setgain(struct gspca_dev *gspca_dev, __s32 val)
  1062. {
  1063. struct sd *sd = (struct sd *) gspca_dev;
  1064. u16 psg, nsg;
  1065. psg = sd->red_gain + sd->blue_gain + sd->green_gain;
  1066. nsg = val * 3;
  1067. sd->red_gain = sd->red_gain * nsg / psg;
  1068. if (sd->red_gain > 0x40)
  1069. sd->red_gain = 0x40;
  1070. else if (sd->red_gain < 0x10)
  1071. sd->red_gain = 0x10;
  1072. sd->blue_gain = sd->blue_gain * nsg / psg;
  1073. if (sd->blue_gain > 0x40)
  1074. sd->blue_gain = 0x40;
  1075. else if (sd->blue_gain < 0x10)
  1076. sd->blue_gain = 0x10;
  1077. sd->green_gain = sd->green_gain * nsg / psg;
  1078. if (sd->green_gain > 0x40)
  1079. sd->green_gain = 0x40;
  1080. else if (sd->green_gain < 0x10)
  1081. sd->green_gain = 0x10;
  1082. if (gspca_dev->streaming)
  1083. setRGB(gspca_dev);
  1084. return 0;
  1085. }
  1086. static int sd_getgain(struct gspca_dev *gspca_dev, __s32 *val)
  1087. {
  1088. struct sd *sd = (struct sd *) gspca_dev;
  1089. *val = (sd->red_gain + sd->blue_gain + sd->green_gain) / 3;
  1090. return 0;
  1091. }
  1092. static int sd_setbrightness(struct gspca_dev *gspca_dev, __s32 val)
  1093. {
  1094. struct sd *sd = (struct sd *) gspca_dev;
  1095. sd->brightness = val;
  1096. if (gspca_dev->streaming)
  1097. setbrightness(gspca_dev);
  1098. return 0;
  1099. }
  1100. static int sd_getbrightness(struct gspca_dev *gspca_dev, __s32 *val)
  1101. {
  1102. struct sd *sd = (struct sd *) gspca_dev;
  1103. *val = sd->brightness;
  1104. return *val;
  1105. }
  1106. static int sd_setawb(struct gspca_dev *gspca_dev, __s32 val)
  1107. {
  1108. struct sd *sd = (struct sd *) gspca_dev;
  1109. sd->awb = val;
  1110. if (gspca_dev->streaming)
  1111. setawb(gspca_dev);
  1112. return 0;
  1113. }
  1114. static int sd_getawb(struct gspca_dev *gspca_dev, __s32 *val)
  1115. {
  1116. struct sd *sd = (struct sd *) gspca_dev;
  1117. *val = sd->awb;
  1118. return *val;
  1119. }
  1120. static int sd_setmirror(struct gspca_dev *gspca_dev, __s32 val)
  1121. {
  1122. struct sd *sd = (struct sd *) gspca_dev;
  1123. sd->mirror = val;
  1124. if (gspca_dev->streaming)
  1125. setmirror(gspca_dev);
  1126. return 0;
  1127. }
  1128. static int sd_getmirror(struct gspca_dev *gspca_dev, __s32 *val)
  1129. {
  1130. struct sd *sd = (struct sd *) gspca_dev;
  1131. *val = sd->mirror;
  1132. return *val;
  1133. }
  1134. static int sd_seteffect(struct gspca_dev *gspca_dev, __s32 val)
  1135. {
  1136. struct sd *sd = (struct sd *) gspca_dev;
  1137. sd->effect = val;
  1138. if (gspca_dev->streaming)
  1139. seteffect(gspca_dev);
  1140. return 0;
  1141. }
  1142. static int sd_geteffect(struct gspca_dev *gspca_dev, __s32 *val)
  1143. {
  1144. struct sd *sd = (struct sd *) gspca_dev;
  1145. *val = sd->effect;
  1146. return *val;
  1147. }
  1148. static int sd_setcontrast(struct gspca_dev *gspca_dev, __s32 val)
  1149. {
  1150. struct sd *sd = (struct sd *) gspca_dev;
  1151. sd->contrast = val;
  1152. if (gspca_dev->streaming)
  1153. setcontrast(gspca_dev);
  1154. return 0;
  1155. }
  1156. static int sd_getcontrast(struct gspca_dev *gspca_dev, __s32 *val)
  1157. {
  1158. struct sd *sd = (struct sd *) gspca_dev;
  1159. *val = sd->contrast;
  1160. return *val;
  1161. }
  1162. static int sd_setcolors(struct gspca_dev *gspca_dev, __s32 val)
  1163. {
  1164. struct sd *sd = (struct sd *) gspca_dev;
  1165. sd->colors = val;
  1166. if (gspca_dev->streaming)
  1167. setcolors(gspca_dev);
  1168. return 0;
  1169. }
  1170. static int sd_getcolors(struct gspca_dev *gspca_dev, __s32 *val)
  1171. {
  1172. struct sd *sd = (struct sd *) gspca_dev;
  1173. *val = sd->colors;
  1174. return 0;
  1175. }
  1176. static int sd_setgamma(struct gspca_dev *gspca_dev, __s32 val)
  1177. {
  1178. struct sd *sd = (struct sd *) gspca_dev;
  1179. sd->gamma = val;
  1180. if (gspca_dev->streaming)
  1181. setgamma(gspca_dev);
  1182. return 0;
  1183. }
  1184. static int sd_getgamma(struct gspca_dev *gspca_dev, __s32 *val)
  1185. {
  1186. struct sd *sd = (struct sd *) gspca_dev;
  1187. *val = sd->gamma;
  1188. return 0;
  1189. }
  1190. static int sd_setfreq(struct gspca_dev *gspca_dev, __s32 val)
  1191. {
  1192. struct sd *sd = (struct sd *) gspca_dev;
  1193. sd->freq = val;
  1194. if (gspca_dev->streaming)
  1195. setfreq(gspca_dev);
  1196. return 0;
  1197. }
  1198. static int sd_getfreq(struct gspca_dev *gspca_dev, __s32 *val)
  1199. {
  1200. struct sd *sd = (struct sd *) gspca_dev;
  1201. *val = sd->freq;
  1202. return 0;
  1203. }
  1204. static int sd_setsharpness(struct gspca_dev *gspca_dev, __s32 val)
  1205. {
  1206. struct sd *sd = (struct sd *) gspca_dev;
  1207. sd->sharpness = val;
  1208. if (gspca_dev->streaming)
  1209. setsharpness(gspca_dev);
  1210. return 0;
  1211. }
  1212. static int sd_getsharpness(struct gspca_dev *gspca_dev, __s32 *val)
  1213. {
  1214. struct sd *sd = (struct sd *) gspca_dev;
  1215. *val = sd->sharpness;
  1216. return 0;
  1217. }
  1218. /* Low Light set here......*/
  1219. static int sd_setlowlight(struct gspca_dev *gspca_dev, __s32 val)
  1220. {
  1221. struct sd *sd = (struct sd *) gspca_dev;
  1222. sd->autogain = val;
  1223. if (val != 0)
  1224. reg_w(gspca_dev, 0xf48e);
  1225. else
  1226. reg_w(gspca_dev, 0xb48e);
  1227. return 0;
  1228. }
  1229. static int sd_getlowlight(struct gspca_dev *gspca_dev, __s32 *val)
  1230. {
  1231. struct sd *sd = (struct sd *) gspca_dev;
  1232. *val = sd->autogain;
  1233. return 0;
  1234. }
  1235. static int sd_querymenu(struct gspca_dev *gspca_dev,
  1236. struct v4l2_querymenu *menu)
  1237. {
  1238. switch (menu->id) {
  1239. case V4L2_CID_POWER_LINE_FREQUENCY:
  1240. switch (menu->index) {
  1241. case 1: /* V4L2_CID_POWER_LINE_FREQUENCY_50HZ */
  1242. strcpy((char *) menu->name, "50 Hz");
  1243. return 0;
  1244. case 2: /* V4L2_CID_POWER_LINE_FREQUENCY_60HZ */
  1245. strcpy((char *) menu->name, "60 Hz");
  1246. return 0;
  1247. }
  1248. break;
  1249. case V4L2_CID_EFFECTS:
  1250. if ((unsigned) menu->index < ARRAY_SIZE(effects_control)) {
  1251. strncpy((char *) menu->name,
  1252. effects_control[menu->index],
  1253. sizeof menu->name);
  1254. return 0;
  1255. }
  1256. break;
  1257. }
  1258. return -EINVAL;
  1259. }
  1260. /* sub-driver description */
  1261. static const struct sd_desc sd_desc = {
  1262. .name = MODULE_NAME,
  1263. .ctrls = sd_ctrls,
  1264. .nctrls = ARRAY_SIZE(sd_ctrls),
  1265. .config = sd_config,
  1266. .init = sd_init,
  1267. .start = sd_start,
  1268. .stopN = sd_stopN,
  1269. .pkt_scan = sd_pkt_scan,
  1270. .querymenu = sd_querymenu,
  1271. };
  1272. /* -- module initialisation -- */
  1273. static const struct usb_device_id device_table[] = {
  1274. {USB_DEVICE(0x17a1, 0x0128)},
  1275. {}
  1276. };
  1277. MODULE_DEVICE_TABLE(usb, device_table);
  1278. /* -- device connect -- */
  1279. static int sd_probe(struct usb_interface *intf,
  1280. const struct usb_device_id *id)
  1281. {
  1282. return gspca_dev_probe(intf, id, &sd_desc, sizeof(struct sd),
  1283. THIS_MODULE);
  1284. }
  1285. static struct usb_driver sd_driver = {
  1286. .name = MODULE_NAME,
  1287. .id_table = device_table,
  1288. .probe = sd_probe,
  1289. .disconnect = gspca_disconnect,
  1290. #ifdef CONFIG_PM
  1291. .suspend = gspca_suspend,
  1292. .resume = gspca_resume,
  1293. #endif
  1294. };
  1295. /* -- module insert / remove -- */
  1296. static int __init sd_mod_init(void)
  1297. {
  1298. return usb_register(&sd_driver);
  1299. }
  1300. static void __exit sd_mod_exit(void)
  1301. {
  1302. usb_deregister(&sd_driver);
  1303. }
  1304. module_init(sd_mod_init);
  1305. module_exit(sd_mod_exit);