stk1135.c 19 KB

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  1. /*
  2. * Syntek STK1135 subdriver
  3. *
  4. * Copyright (c) 2013 Ondrej Zary
  5. *
  6. * Based on Syntekdriver (stk11xx) by Nicolas VIVIEN:
  7. * http://syntekdriver.sourceforge.net
  8. *
  9. * This program is free software; you can redistribute it and/or modify
  10. * it under the terms of the GNU General Public License as published by
  11. * the Free Software Foundation; either version 2 of the License, or
  12. * any later version.
  13. *
  14. * This program is distributed in the hope that it will be useful,
  15. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  16. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  17. * GNU General Public License for more details.
  18. */
  19. #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
  20. #define MODULE_NAME "stk1135"
  21. #include "gspca.h"
  22. #include "stk1135.h"
  23. MODULE_AUTHOR("Ondrej Zary");
  24. MODULE_DESCRIPTION("Syntek STK1135 USB Camera Driver");
  25. MODULE_LICENSE("GPL");
  26. /* specific webcam descriptor */
  27. struct sd {
  28. struct gspca_dev gspca_dev; /* !! must be the first item */
  29. u8 pkt_seq;
  30. u8 sensor_page;
  31. bool flip_status;
  32. u8 flip_debounce;
  33. struct v4l2_ctrl *hflip;
  34. struct v4l2_ctrl *vflip;
  35. };
  36. static const struct v4l2_pix_format stk1135_modes[] = {
  37. /* default mode (this driver supports variable resolution) */
  38. {640, 480, V4L2_PIX_FMT_SBGGR8, V4L2_FIELD_NONE,
  39. .bytesperline = 640,
  40. .sizeimage = 640 * 480,
  41. .colorspace = V4L2_COLORSPACE_SRGB},
  42. };
  43. /* -- read a register -- */
  44. static u8 reg_r(struct gspca_dev *gspca_dev, u16 index)
  45. {
  46. struct usb_device *dev = gspca_dev->dev;
  47. int ret;
  48. if (gspca_dev->usb_err < 0)
  49. return 0;
  50. ret = usb_control_msg(dev, usb_rcvctrlpipe(dev, 0),
  51. 0x00,
  52. USB_DIR_IN | USB_TYPE_VENDOR | USB_RECIP_DEVICE,
  53. 0x00,
  54. index,
  55. gspca_dev->usb_buf, 1,
  56. 500);
  57. PDEBUG(D_USBI, "reg_r 0x%x=0x%02x", index, gspca_dev->usb_buf[0]);
  58. if (ret < 0) {
  59. pr_err("reg_r 0x%x err %d\n", index, ret);
  60. gspca_dev->usb_err = ret;
  61. return 0;
  62. }
  63. return gspca_dev->usb_buf[0];
  64. }
  65. /* -- write a register -- */
  66. static void reg_w(struct gspca_dev *gspca_dev, u16 index, u8 val)
  67. {
  68. int ret;
  69. struct usb_device *dev = gspca_dev->dev;
  70. if (gspca_dev->usb_err < 0)
  71. return;
  72. ret = usb_control_msg(dev, usb_sndctrlpipe(dev, 0),
  73. 0x01,
  74. USB_DIR_OUT | USB_TYPE_VENDOR | USB_RECIP_DEVICE,
  75. val,
  76. index,
  77. NULL,
  78. 0,
  79. 500);
  80. PDEBUG(D_USBO, "reg_w 0x%x:=0x%02x", index, val);
  81. if (ret < 0) {
  82. pr_err("reg_w 0x%x err %d\n", index, ret);
  83. gspca_dev->usb_err = ret;
  84. }
  85. }
  86. static void reg_w_mask(struct gspca_dev *gspca_dev, u16 index, u8 val, u8 mask)
  87. {
  88. val = (reg_r(gspca_dev, index) & ~mask) | (val & mask);
  89. reg_w(gspca_dev, index, val);
  90. }
  91. /* this function is called at probe time */
  92. static int sd_config(struct gspca_dev *gspca_dev,
  93. const struct usb_device_id *id)
  94. {
  95. gspca_dev->cam.cam_mode = stk1135_modes;
  96. gspca_dev->cam.nmodes = ARRAY_SIZE(stk1135_modes);
  97. return 0;
  98. }
  99. static int stk1135_serial_wait_ready(struct gspca_dev *gspca_dev)
  100. {
  101. int i = 0;
  102. u8 val;
  103. do {
  104. val = reg_r(gspca_dev, STK1135_REG_SICTL + 1);
  105. if (i++ > 500) { /* maximum retry count */
  106. pr_err("serial bus timeout: status=0x%02x\n", val);
  107. return -1;
  108. }
  109. /* repeat if BUSY or WRITE/READ not finished */
  110. } while ((val & 0x10) || !(val & 0x05));
  111. return 0;
  112. }
  113. static u8 sensor_read_8(struct gspca_dev *gspca_dev, u8 addr)
  114. {
  115. reg_w(gspca_dev, STK1135_REG_SBUSR, addr);
  116. /* begin read */
  117. reg_w(gspca_dev, STK1135_REG_SICTL, 0x20);
  118. /* wait until finished */
  119. if (stk1135_serial_wait_ready(gspca_dev)) {
  120. pr_err("Sensor read failed\n");
  121. return 0;
  122. }
  123. return reg_r(gspca_dev, STK1135_REG_SBUSR + 1);
  124. }
  125. static u16 sensor_read_16(struct gspca_dev *gspca_dev, u8 addr)
  126. {
  127. return (sensor_read_8(gspca_dev, addr) << 8) |
  128. sensor_read_8(gspca_dev, 0xf1);
  129. }
  130. static void sensor_write_8(struct gspca_dev *gspca_dev, u8 addr, u8 data)
  131. {
  132. /* load address and data registers */
  133. reg_w(gspca_dev, STK1135_REG_SBUSW, addr);
  134. reg_w(gspca_dev, STK1135_REG_SBUSW + 1, data);
  135. /* begin write */
  136. reg_w(gspca_dev, STK1135_REG_SICTL, 0x01);
  137. /* wait until finished */
  138. if (stk1135_serial_wait_ready(gspca_dev)) {
  139. pr_err("Sensor write failed\n");
  140. return;
  141. }
  142. }
  143. static void sensor_write_16(struct gspca_dev *gspca_dev, u8 addr, u16 data)
  144. {
  145. sensor_write_8(gspca_dev, addr, data >> 8);
  146. sensor_write_8(gspca_dev, 0xf1, data & 0xff);
  147. }
  148. static void sensor_set_page(struct gspca_dev *gspca_dev, u8 page)
  149. {
  150. struct sd *sd = (struct sd *) gspca_dev;
  151. if (page != sd->sensor_page) {
  152. sensor_write_16(gspca_dev, 0xf0, page);
  153. sd->sensor_page = page;
  154. }
  155. }
  156. static u16 sensor_read(struct gspca_dev *gspca_dev, u16 reg)
  157. {
  158. sensor_set_page(gspca_dev, reg >> 8);
  159. return sensor_read_16(gspca_dev, reg & 0xff);
  160. }
  161. static void sensor_write(struct gspca_dev *gspca_dev, u16 reg, u16 val)
  162. {
  163. sensor_set_page(gspca_dev, reg >> 8);
  164. sensor_write_16(gspca_dev, reg & 0xff, val);
  165. }
  166. static void sensor_write_mask(struct gspca_dev *gspca_dev,
  167. u16 reg, u16 val, u16 mask)
  168. {
  169. val = (sensor_read(gspca_dev, reg) & ~mask) | (val & mask);
  170. sensor_write(gspca_dev, reg, val);
  171. }
  172. struct sensor_val {
  173. u16 reg;
  174. u16 val;
  175. };
  176. /* configure MT9M112 sensor */
  177. static void stk1135_configure_mt9m112(struct gspca_dev *gspca_dev)
  178. {
  179. static const struct sensor_val cfg[] = {
  180. /* restart&reset, chip enable, reserved */
  181. { 0x00d, 0x000b }, { 0x00d, 0x0008 }, { 0x035, 0x0022 },
  182. /* mode ctl: AWB on, AE both, clip aper corr, defect corr, AE */
  183. { 0x106, 0x700e },
  184. { 0x2dd, 0x18e0 }, /* B-R thresholds, */
  185. /* AWB */
  186. { 0x21f, 0x0180 }, /* Cb and Cr limits */
  187. { 0x220, 0xc814 }, { 0x221, 0x8080 }, /* lum limits, RGB gain */
  188. { 0x222, 0xa078 }, { 0x223, 0xa078 }, /* R, B limit */
  189. { 0x224, 0x5f20 }, { 0x228, 0xea02 }, /* mtx adj lim, adv ctl */
  190. { 0x229, 0x867a }, /* wide gates */
  191. /* Color correction */
  192. /* imager gains base, delta, delta signs */
  193. { 0x25e, 0x594c }, { 0x25f, 0x4d51 }, { 0x260, 0x0002 },
  194. /* AWB adv ctl 2, gain offs */
  195. { 0x2ef, 0x0008 }, { 0x2f2, 0x0000 },
  196. /* base matrix signs, scale K1-5, K6-9 */
  197. { 0x202, 0x00ee }, { 0x203, 0x3923 }, { 0x204, 0x0724 },
  198. /* base matrix coef */
  199. { 0x209, 0x00cd }, { 0x20a, 0x0093 }, { 0x20b, 0x0004 },/*K1-3*/
  200. { 0x20c, 0x005c }, { 0x20d, 0x00d9 }, { 0x20e, 0x0053 },/*K4-6*/
  201. { 0x20f, 0x0008 }, { 0x210, 0x0091 }, { 0x211, 0x00cf },/*K7-9*/
  202. { 0x215, 0x0000 }, /* delta mtx signs */
  203. /* delta matrix coef */
  204. { 0x216, 0x0000 }, { 0x217, 0x0000 }, { 0x218, 0x0000 },/*D1-3*/
  205. { 0x219, 0x0000 }, { 0x21a, 0x0000 }, { 0x21b, 0x0000 },/*D4-6*/
  206. { 0x21c, 0x0000 }, { 0x21d, 0x0000 }, { 0x21e, 0x0000 },/*D7-9*/
  207. /* enable & disable manual WB to apply color corr. settings */
  208. { 0x106, 0xf00e }, { 0x106, 0x700e },
  209. /* Lens shading correction */
  210. { 0x180, 0x0007 }, /* control */
  211. /* vertical knee 0, 2+1, 4+3 */
  212. { 0x181, 0xde13 }, { 0x182, 0xebe2 }, { 0x183, 0x00f6 }, /* R */
  213. { 0x184, 0xe114 }, { 0x185, 0xeadd }, { 0x186, 0xfdf6 }, /* G */
  214. { 0x187, 0xe511 }, { 0x188, 0xede6 }, { 0x189, 0xfbf7 }, /* B */
  215. /* horizontal knee 0, 2+1, 4+3, 5 */
  216. { 0x18a, 0xd613 }, { 0x18b, 0xedec }, /* R .. */
  217. { 0x18c, 0xf9f2 }, { 0x18d, 0x0000 }, /* .. R */
  218. { 0x18e, 0xd815 }, { 0x18f, 0xe9ea }, /* G .. */
  219. { 0x190, 0xf9f1 }, { 0x191, 0x0002 }, /* .. G */
  220. { 0x192, 0xde10 }, { 0x193, 0xefef }, /* B .. */
  221. { 0x194, 0xfbf4 }, { 0x195, 0x0002 }, /* .. B */
  222. /* vertical knee 6+5, 8+7 */
  223. { 0x1b6, 0x0e06 }, { 0x1b7, 0x2713 }, /* R */
  224. { 0x1b8, 0x1106 }, { 0x1b9, 0x2713 }, /* G */
  225. { 0x1ba, 0x0c03 }, { 0x1bb, 0x2a0f }, /* B */
  226. /* horizontal knee 7+6, 9+8, 10 */
  227. { 0x1bc, 0x1208 }, { 0x1bd, 0x1a16 }, { 0x1be, 0x0022 }, /* R */
  228. { 0x1bf, 0x150a }, { 0x1c0, 0x1c1a }, { 0x1c1, 0x002d }, /* G */
  229. { 0x1c2, 0x1109 }, { 0x1c3, 0x1414 }, { 0x1c4, 0x002a }, /* B */
  230. { 0x106, 0x740e }, /* enable lens shading correction */
  231. /* Gamma correction - context A */
  232. { 0x153, 0x0b03 }, { 0x154, 0x4722 }, { 0x155, 0xac82 },
  233. { 0x156, 0xdac7 }, { 0x157, 0xf5e9 }, { 0x158, 0xff00 },
  234. /* Gamma correction - context B */
  235. { 0x1dc, 0x0b03 }, { 0x1dd, 0x4722 }, { 0x1de, 0xac82 },
  236. { 0x1df, 0xdac7 }, { 0x1e0, 0xf5e9 }, { 0x1e1, 0xff00 },
  237. /* output format: RGB, invert output pixclock, output bayer */
  238. { 0x13a, 0x4300 }, { 0x19b, 0x4300 }, /* for context A, B */
  239. { 0x108, 0x0180 }, /* format control - enable bayer row flip */
  240. { 0x22f, 0xd100 }, { 0x29c, 0xd100 }, /* AE A, B */
  241. /* default prg conf, prg ctl - by 0x2d2, prg advance - PA1 */
  242. { 0x2d2, 0x0000 }, { 0x2cc, 0x0004 }, { 0x2cb, 0x0001 },
  243. { 0x22e, 0x0c3c }, { 0x267, 0x1010 }, /* AE tgt ctl, gain lim */
  244. /* PLL */
  245. { 0x065, 0xa000 }, /* clk ctl - enable PLL (clear bit 14) */
  246. { 0x066, 0x2003 }, { 0x067, 0x0501 }, /* PLL M=128, N=3, P=1 */
  247. { 0x065, 0x2000 }, /* disable PLL bypass (clear bit 15) */
  248. { 0x005, 0x01b8 }, { 0x007, 0x00d8 }, /* horiz blanking B, A */
  249. /* AE line size, shutter delay limit */
  250. { 0x239, 0x06c0 }, { 0x23b, 0x040e }, /* for context A */
  251. { 0x23a, 0x06c0 }, { 0x23c, 0x0564 }, /* for context B */
  252. /* shutter width basis 60Hz, 50Hz */
  253. { 0x257, 0x0208 }, { 0x258, 0x0271 }, /* for context A */
  254. { 0x259, 0x0209 }, { 0x25a, 0x0271 }, /* for context B */
  255. { 0x25c, 0x120d }, { 0x25d, 0x1712 }, /* flicker 60Hz, 50Hz */
  256. { 0x264, 0x5e1c }, /* reserved */
  257. /* flicker, AE gain limits, gain zone limits */
  258. { 0x25b, 0x0003 }, { 0x236, 0x7810 }, { 0x237, 0x8304 },
  259. { 0x008, 0x0021 }, /* vert blanking A */
  260. };
  261. int i;
  262. u16 width, height;
  263. for (i = 0; i < ARRAY_SIZE(cfg); i++)
  264. sensor_write(gspca_dev, cfg[i].reg, cfg[i].val);
  265. /* set output size */
  266. width = gspca_dev->pixfmt.width;
  267. height = gspca_dev->pixfmt.height;
  268. if (width <= 640 && height <= 512) { /* context A (half readout speed)*/
  269. sensor_write(gspca_dev, 0x1a7, width);
  270. sensor_write(gspca_dev, 0x1aa, height);
  271. /* set read mode context A */
  272. sensor_write(gspca_dev, 0x0c8, 0x0000);
  273. /* set resize, read mode, vblank, hblank context A */
  274. sensor_write(gspca_dev, 0x2c8, 0x0000);
  275. } else { /* context B (full readout speed) */
  276. sensor_write(gspca_dev, 0x1a1, width);
  277. sensor_write(gspca_dev, 0x1a4, height);
  278. /* set read mode context B */
  279. sensor_write(gspca_dev, 0x0c8, 0x0008);
  280. /* set resize, read mode, vblank, hblank context B */
  281. sensor_write(gspca_dev, 0x2c8, 0x040b);
  282. }
  283. }
  284. static void stk1135_configure_clock(struct gspca_dev *gspca_dev)
  285. {
  286. /* configure SCLKOUT */
  287. reg_w(gspca_dev, STK1135_REG_TMGEN, 0x12);
  288. /* set 1 clock per pixel */
  289. /* and positive edge clocked pulse high when pixel counter = 0 */
  290. reg_w(gspca_dev, STK1135_REG_TCP1 + 0, 0x41);
  291. reg_w(gspca_dev, STK1135_REG_TCP1 + 1, 0x00);
  292. reg_w(gspca_dev, STK1135_REG_TCP1 + 2, 0x00);
  293. reg_w(gspca_dev, STK1135_REG_TCP1 + 3, 0x00);
  294. /* enable CLKOUT for sensor */
  295. reg_w(gspca_dev, STK1135_REG_SENSO + 0, 0x10);
  296. /* disable STOP clock */
  297. reg_w(gspca_dev, STK1135_REG_SENSO + 1, 0x00);
  298. /* set lower 8 bits of PLL feedback divider */
  299. reg_w(gspca_dev, STK1135_REG_SENSO + 3, 0x07);
  300. /* set other PLL parameters */
  301. reg_w(gspca_dev, STK1135_REG_PLLFD, 0x06);
  302. /* enable timing generator */
  303. reg_w(gspca_dev, STK1135_REG_TMGEN, 0x80);
  304. /* enable PLL */
  305. reg_w(gspca_dev, STK1135_REG_SENSO + 2, 0x04);
  306. /* set serial interface clock divider (30MHz/0x1f*16+2) = 60240 kHz) */
  307. reg_w(gspca_dev, STK1135_REG_SICTL + 2, 0x1f);
  308. /* wait a while for sensor to catch up */
  309. udelay(1000);
  310. }
  311. static void stk1135_camera_disable(struct gspca_dev *gspca_dev)
  312. {
  313. /* set capture end Y position to 0 */
  314. reg_w(gspca_dev, STK1135_REG_CIEPO + 2, 0x00);
  315. reg_w(gspca_dev, STK1135_REG_CIEPO + 3, 0x00);
  316. /* disable capture */
  317. reg_w_mask(gspca_dev, STK1135_REG_SCTRL, 0x00, 0x80);
  318. /* enable sensor standby and diasble chip enable */
  319. sensor_write_mask(gspca_dev, 0x00d, 0x0004, 0x000c);
  320. /* disable PLL */
  321. reg_w_mask(gspca_dev, STK1135_REG_SENSO + 2, 0x00, 0x01);
  322. /* disable timing generator */
  323. reg_w(gspca_dev, STK1135_REG_TMGEN, 0x00);
  324. /* enable STOP clock */
  325. reg_w(gspca_dev, STK1135_REG_SENSO + 1, 0x20);
  326. /* disable CLKOUT for sensor */
  327. reg_w(gspca_dev, STK1135_REG_SENSO, 0x00);
  328. /* disable sensor (GPIO5) and enable GPIO0,3,6 (?) - sensor standby? */
  329. reg_w(gspca_dev, STK1135_REG_GCTRL, 0x49);
  330. }
  331. /* this function is called at probe and resume time */
  332. static int sd_init(struct gspca_dev *gspca_dev)
  333. {
  334. u16 sensor_id;
  335. char *sensor_name;
  336. struct sd *sd = (struct sd *) gspca_dev;
  337. /* set GPIO3,4,5,6 direction to output */
  338. reg_w(gspca_dev, STK1135_REG_GCTRL + 2, 0x78);
  339. /* enable sensor (GPIO5) */
  340. reg_w(gspca_dev, STK1135_REG_GCTRL, (1 << 5));
  341. /* disable ROM interface */
  342. reg_w(gspca_dev, STK1135_REG_GCTRL + 3, 0x80);
  343. /* enable interrupts from GPIO8 (flip sensor) and GPIO9 (???) */
  344. reg_w(gspca_dev, STK1135_REG_ICTRL + 1, 0x00);
  345. reg_w(gspca_dev, STK1135_REG_ICTRL + 3, 0x03);
  346. /* enable remote wakeup from GPIO9 (???) */
  347. reg_w(gspca_dev, STK1135_REG_RMCTL + 1, 0x00);
  348. reg_w(gspca_dev, STK1135_REG_RMCTL + 3, 0x02);
  349. /* reset serial interface */
  350. reg_w(gspca_dev, STK1135_REG_SICTL, 0x80);
  351. reg_w(gspca_dev, STK1135_REG_SICTL, 0x00);
  352. /* set sensor address */
  353. reg_w(gspca_dev, STK1135_REG_SICTL + 3, 0xba);
  354. /* disable alt 2-wire serial interface */
  355. reg_w(gspca_dev, STK1135_REG_ASIC + 3, 0x00);
  356. stk1135_configure_clock(gspca_dev);
  357. /* read sensor ID */
  358. sd->sensor_page = 0xff;
  359. sensor_id = sensor_read(gspca_dev, 0x000);
  360. switch (sensor_id) {
  361. case 0x148c:
  362. sensor_name = "MT9M112";
  363. break;
  364. default:
  365. sensor_name = "unknown";
  366. }
  367. pr_info("Detected sensor type %s (0x%x)\n", sensor_name, sensor_id);
  368. stk1135_camera_disable(gspca_dev);
  369. return gspca_dev->usb_err;
  370. }
  371. /* -- start the camera -- */
  372. static int sd_start(struct gspca_dev *gspca_dev)
  373. {
  374. struct sd *sd = (struct sd *) gspca_dev;
  375. u16 width, height;
  376. /* enable sensor (GPIO5) */
  377. reg_w(gspca_dev, STK1135_REG_GCTRL, (1 << 5));
  378. stk1135_configure_clock(gspca_dev);
  379. /* set capture start position X = 0, Y = 0 */
  380. reg_w(gspca_dev, STK1135_REG_CISPO + 0, 0x00);
  381. reg_w(gspca_dev, STK1135_REG_CISPO + 1, 0x00);
  382. reg_w(gspca_dev, STK1135_REG_CISPO + 2, 0x00);
  383. reg_w(gspca_dev, STK1135_REG_CISPO + 3, 0x00);
  384. /* set capture end position */
  385. width = gspca_dev->pixfmt.width;
  386. height = gspca_dev->pixfmt.height;
  387. reg_w(gspca_dev, STK1135_REG_CIEPO + 0, width & 0xff);
  388. reg_w(gspca_dev, STK1135_REG_CIEPO + 1, width >> 8);
  389. reg_w(gspca_dev, STK1135_REG_CIEPO + 2, height & 0xff);
  390. reg_w(gspca_dev, STK1135_REG_CIEPO + 3, height >> 8);
  391. /* set 8-bit mode */
  392. reg_w(gspca_dev, STK1135_REG_SCTRL, 0x20);
  393. stk1135_configure_mt9m112(gspca_dev);
  394. /* enable capture */
  395. reg_w_mask(gspca_dev, STK1135_REG_SCTRL, 0x80, 0x80);
  396. if (gspca_dev->usb_err >= 0)
  397. PDEBUG(D_STREAM, "camera started alt: 0x%02x",
  398. gspca_dev->alt);
  399. sd->pkt_seq = 0;
  400. return gspca_dev->usb_err;
  401. }
  402. static void sd_stopN(struct gspca_dev *gspca_dev)
  403. {
  404. struct usb_device *dev = gspca_dev->dev;
  405. usb_set_interface(dev, gspca_dev->iface, 0);
  406. stk1135_camera_disable(gspca_dev);
  407. PDEBUG(D_STREAM, "camera stopped");
  408. }
  409. static void sd_pkt_scan(struct gspca_dev *gspca_dev,
  410. u8 *data, /* isoc packet */
  411. int len) /* iso packet length */
  412. {
  413. struct sd *sd = (struct sd *) gspca_dev;
  414. int skip = sizeof(struct stk1135_pkt_header);
  415. bool flip;
  416. enum gspca_packet_type pkt_type = INTER_PACKET;
  417. struct stk1135_pkt_header *hdr = (void *)data;
  418. u8 seq;
  419. if (len < 4) {
  420. PDEBUG(D_PACK, "received short packet (less than 4 bytes)");
  421. return;
  422. }
  423. /* GPIO 8 is flip sensor (1 = normal position, 0 = flipped to back) */
  424. flip = !(le16_to_cpu(hdr->gpio) & (1 << 8));
  425. /* it's a switch, needs software debounce */
  426. if (sd->flip_status != flip)
  427. sd->flip_debounce++;
  428. else
  429. sd->flip_debounce = 0;
  430. /* check sequence number (not present in new frame packets) */
  431. if (!(hdr->flags & STK1135_HDR_FRAME_START)) {
  432. seq = hdr->seq & STK1135_HDR_SEQ_MASK;
  433. if (seq != sd->pkt_seq) {
  434. PDEBUG(D_PACK, "received out-of-sequence packet");
  435. /* resync sequence and discard packet */
  436. sd->pkt_seq = seq;
  437. gspca_dev->last_packet_type = DISCARD_PACKET;
  438. return;
  439. }
  440. }
  441. sd->pkt_seq++;
  442. if (sd->pkt_seq > STK1135_HDR_SEQ_MASK)
  443. sd->pkt_seq = 0;
  444. if (len == sizeof(struct stk1135_pkt_header))
  445. return;
  446. if (hdr->flags & STK1135_HDR_FRAME_START) { /* new frame */
  447. skip = 8; /* the header is longer */
  448. gspca_frame_add(gspca_dev, LAST_PACKET, data, 0);
  449. pkt_type = FIRST_PACKET;
  450. }
  451. gspca_frame_add(gspca_dev, pkt_type, data + skip, len - skip);
  452. }
  453. static void sethflip(struct gspca_dev *gspca_dev, s32 val)
  454. {
  455. struct sd *sd = (struct sd *) gspca_dev;
  456. if (sd->flip_status)
  457. val = !val;
  458. sensor_write_mask(gspca_dev, 0x020, val ? 0x0002 : 0x0000 , 0x0002);
  459. }
  460. static void setvflip(struct gspca_dev *gspca_dev, s32 val)
  461. {
  462. struct sd *sd = (struct sd *) gspca_dev;
  463. if (sd->flip_status)
  464. val = !val;
  465. sensor_write_mask(gspca_dev, 0x020, val ? 0x0001 : 0x0000 , 0x0001);
  466. }
  467. static void stk1135_dq_callback(struct gspca_dev *gspca_dev)
  468. {
  469. struct sd *sd = (struct sd *) gspca_dev;
  470. if (sd->flip_debounce > 100) {
  471. sd->flip_status = !sd->flip_status;
  472. sethflip(gspca_dev, v4l2_ctrl_g_ctrl(sd->hflip));
  473. setvflip(gspca_dev, v4l2_ctrl_g_ctrl(sd->vflip));
  474. }
  475. }
  476. static int sd_s_ctrl(struct v4l2_ctrl *ctrl)
  477. {
  478. struct gspca_dev *gspca_dev =
  479. container_of(ctrl->handler, struct gspca_dev, ctrl_handler);
  480. gspca_dev->usb_err = 0;
  481. if (!gspca_dev->streaming)
  482. return 0;
  483. switch (ctrl->id) {
  484. case V4L2_CID_HFLIP:
  485. sethflip(gspca_dev, ctrl->val);
  486. break;
  487. case V4L2_CID_VFLIP:
  488. setvflip(gspca_dev, ctrl->val);
  489. break;
  490. }
  491. return gspca_dev->usb_err;
  492. }
  493. static const struct v4l2_ctrl_ops sd_ctrl_ops = {
  494. .s_ctrl = sd_s_ctrl,
  495. };
  496. static int sd_init_controls(struct gspca_dev *gspca_dev)
  497. {
  498. struct sd *sd = (struct sd *) gspca_dev;
  499. struct v4l2_ctrl_handler *hdl = &gspca_dev->ctrl_handler;
  500. gspca_dev->vdev.ctrl_handler = hdl;
  501. v4l2_ctrl_handler_init(hdl, 2);
  502. sd->hflip = v4l2_ctrl_new_std(hdl, &sd_ctrl_ops,
  503. V4L2_CID_HFLIP, 0, 1, 1, 0);
  504. sd->vflip = v4l2_ctrl_new_std(hdl, &sd_ctrl_ops,
  505. V4L2_CID_VFLIP, 0, 1, 1, 0);
  506. if (hdl->error) {
  507. pr_err("Could not initialize controls\n");
  508. return hdl->error;
  509. }
  510. return 0;
  511. }
  512. static void stk1135_try_fmt(struct gspca_dev *gspca_dev, struct v4l2_format *fmt)
  513. {
  514. fmt->fmt.pix.width = clamp(fmt->fmt.pix.width, 32U, 1280U);
  515. fmt->fmt.pix.height = clamp(fmt->fmt.pix.height, 32U, 1024U);
  516. /* round up to even numbers */
  517. fmt->fmt.pix.width += (fmt->fmt.pix.width & 1);
  518. fmt->fmt.pix.height += (fmt->fmt.pix.height & 1);
  519. fmt->fmt.pix.bytesperline = fmt->fmt.pix.width;
  520. fmt->fmt.pix.sizeimage = fmt->fmt.pix.width * fmt->fmt.pix.height;
  521. }
  522. static int stk1135_enum_framesizes(struct gspca_dev *gspca_dev,
  523. struct v4l2_frmsizeenum *fsize)
  524. {
  525. if (fsize->index != 0 || fsize->pixel_format != V4L2_PIX_FMT_SBGGR8)
  526. return -EINVAL;
  527. fsize->type = V4L2_FRMSIZE_TYPE_STEPWISE;
  528. fsize->stepwise.min_width = 32;
  529. fsize->stepwise.min_height = 32;
  530. fsize->stepwise.max_width = 1280;
  531. fsize->stepwise.max_height = 1024;
  532. fsize->stepwise.step_width = 2;
  533. fsize->stepwise.step_height = 2;
  534. return 0;
  535. }
  536. /* sub-driver description */
  537. static const struct sd_desc sd_desc = {
  538. .name = MODULE_NAME,
  539. .config = sd_config,
  540. .init = sd_init,
  541. .init_controls = sd_init_controls,
  542. .start = sd_start,
  543. .stopN = sd_stopN,
  544. .pkt_scan = sd_pkt_scan,
  545. .dq_callback = stk1135_dq_callback,
  546. .try_fmt = stk1135_try_fmt,
  547. .enum_framesizes = stk1135_enum_framesizes,
  548. };
  549. /* -- module initialisation -- */
  550. static const struct usb_device_id device_table[] = {
  551. {USB_DEVICE(0x174f, 0x6a31)}, /* ASUS laptop, MT9M112 sensor */
  552. {}
  553. };
  554. MODULE_DEVICE_TABLE(usb, device_table);
  555. /* -- device connect -- */
  556. static int sd_probe(struct usb_interface *intf,
  557. const struct usb_device_id *id)
  558. {
  559. return gspca_dev_probe(intf, id, &sd_desc, sizeof(struct sd),
  560. THIS_MODULE);
  561. }
  562. static struct usb_driver sd_driver = {
  563. .name = MODULE_NAME,
  564. .id_table = device_table,
  565. .probe = sd_probe,
  566. .disconnect = gspca_disconnect,
  567. #ifdef CONFIG_PM
  568. .suspend = gspca_suspend,
  569. .resume = gspca_resume,
  570. .reset_resume = gspca_resume,
  571. #endif
  572. };
  573. module_usb_driver(sd_driver);