ks0127.c 21 KB

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  1. /*
  2. * Video Capture Driver (Video for Linux 1/2)
  3. * for the Matrox Marvel G200,G400 and Rainbow Runner-G series
  4. *
  5. * This module is an interface to the KS0127 video decoder chip.
  6. *
  7. * Copyright (C) 1999 Ryan Drake <stiletto@mediaone.net>
  8. *
  9. * This program is free software; you can redistribute it and/or
  10. * modify it under the terms of the GNU General Public License
  11. * as published by the Free Software Foundation; either version 2
  12. * of the License, or (at your option) 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. * You should have received a copy of the GNU General Public License
  20. * along with this program; if not, write to the Free Software
  21. * Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
  22. *
  23. *****************************************************************************
  24. *
  25. * Modified and extended by
  26. * Mike Bernson <mike@mlb.org>
  27. * Gerard v.d. Horst
  28. * Leon van Stuivenberg <l.vanstuivenberg@chello.nl>
  29. * Gernot Ziegler <gz@lysator.liu.se>
  30. *
  31. * Version History:
  32. * V1.0 Ryan Drake Initial version by Ryan Drake
  33. * V1.1 Gerard v.d. Horst Added some debugoutput, reset the video-standard
  34. */
  35. #include <linux/init.h>
  36. #include <linux/module.h>
  37. #include <linux/delay.h>
  38. #include <linux/errno.h>
  39. #include <linux/kernel.h>
  40. #include <linux/i2c.h>
  41. #include <linux/videodev2.h>
  42. #include <media/v4l2-device.h>
  43. #include <media/v4l2-chip-ident.h>
  44. #include <media/v4l2-i2c-drv-legacy.h>
  45. #include "ks0127.h"
  46. MODULE_DESCRIPTION("KS0127 video decoder driver");
  47. MODULE_AUTHOR("Ryan Drake");
  48. MODULE_LICENSE("GPL");
  49. /* Addresses to scan */
  50. #define I2C_KS0127_ADDON 0xD8
  51. #define I2C_KS0127_ONBOARD 0xDA
  52. static unsigned short normal_i2c[] = {
  53. I2C_KS0127_ADDON >> 1,
  54. I2C_KS0127_ONBOARD >> 1,
  55. I2C_CLIENT_END
  56. };
  57. I2C_CLIENT_INSMOD;
  58. /* ks0127 control registers */
  59. #define KS_STAT 0x00
  60. #define KS_CMDA 0x01
  61. #define KS_CMDB 0x02
  62. #define KS_CMDC 0x03
  63. #define KS_CMDD 0x04
  64. #define KS_HAVB 0x05
  65. #define KS_HAVE 0x06
  66. #define KS_HS1B 0x07
  67. #define KS_HS1E 0x08
  68. #define KS_HS2B 0x09
  69. #define KS_HS2E 0x0a
  70. #define KS_AGC 0x0b
  71. #define KS_HXTRA 0x0c
  72. #define KS_CDEM 0x0d
  73. #define KS_PORTAB 0x0e
  74. #define KS_LUMA 0x0f
  75. #define KS_CON 0x10
  76. #define KS_BRT 0x11
  77. #define KS_CHROMA 0x12
  78. #define KS_CHROMB 0x13
  79. #define KS_DEMOD 0x14
  80. #define KS_SAT 0x15
  81. #define KS_HUE 0x16
  82. #define KS_VERTIA 0x17
  83. #define KS_VERTIB 0x18
  84. #define KS_VERTIC 0x19
  85. #define KS_HSCLL 0x1a
  86. #define KS_HSCLH 0x1b
  87. #define KS_VSCLL 0x1c
  88. #define KS_VSCLH 0x1d
  89. #define KS_OFMTA 0x1e
  90. #define KS_OFMTB 0x1f
  91. #define KS_VBICTL 0x20
  92. #define KS_CCDAT2 0x21
  93. #define KS_CCDAT1 0x22
  94. #define KS_VBIL30 0x23
  95. #define KS_VBIL74 0x24
  96. #define KS_VBIL118 0x25
  97. #define KS_VBIL1512 0x26
  98. #define KS_TTFRAM 0x27
  99. #define KS_TESTA 0x28
  100. #define KS_UVOFFH 0x29
  101. #define KS_UVOFFL 0x2a
  102. #define KS_UGAIN 0x2b
  103. #define KS_VGAIN 0x2c
  104. #define KS_VAVB 0x2d
  105. #define KS_VAVE 0x2e
  106. #define KS_CTRACK 0x2f
  107. #define KS_POLCTL 0x30
  108. #define KS_REFCOD 0x31
  109. #define KS_INVALY 0x32
  110. #define KS_INVALU 0x33
  111. #define KS_INVALV 0x34
  112. #define KS_UNUSEY 0x35
  113. #define KS_UNUSEU 0x36
  114. #define KS_UNUSEV 0x37
  115. #define KS_USRSAV 0x38
  116. #define KS_USREAV 0x39
  117. #define KS_SHS1A 0x3a
  118. #define KS_SHS1B 0x3b
  119. #define KS_SHS1C 0x3c
  120. #define KS_CMDE 0x3d
  121. #define KS_VSDEL 0x3e
  122. #define KS_CMDF 0x3f
  123. #define KS_GAMMA0 0x40
  124. #define KS_GAMMA1 0x41
  125. #define KS_GAMMA2 0x42
  126. #define KS_GAMMA3 0x43
  127. #define KS_GAMMA4 0x44
  128. #define KS_GAMMA5 0x45
  129. #define KS_GAMMA6 0x46
  130. #define KS_GAMMA7 0x47
  131. #define KS_GAMMA8 0x48
  132. #define KS_GAMMA9 0x49
  133. #define KS_GAMMA10 0x4a
  134. #define KS_GAMMA11 0x4b
  135. #define KS_GAMMA12 0x4c
  136. #define KS_GAMMA13 0x4d
  137. #define KS_GAMMA14 0x4e
  138. #define KS_GAMMA15 0x4f
  139. #define KS_GAMMA16 0x50
  140. #define KS_GAMMA17 0x51
  141. #define KS_GAMMA18 0x52
  142. #define KS_GAMMA19 0x53
  143. #define KS_GAMMA20 0x54
  144. #define KS_GAMMA21 0x55
  145. #define KS_GAMMA22 0x56
  146. #define KS_GAMMA23 0x57
  147. #define KS_GAMMA24 0x58
  148. #define KS_GAMMA25 0x59
  149. #define KS_GAMMA26 0x5a
  150. #define KS_GAMMA27 0x5b
  151. #define KS_GAMMA28 0x5c
  152. #define KS_GAMMA29 0x5d
  153. #define KS_GAMMA30 0x5e
  154. #define KS_GAMMA31 0x5f
  155. #define KS_GAMMAD0 0x60
  156. #define KS_GAMMAD1 0x61
  157. #define KS_GAMMAD2 0x62
  158. #define KS_GAMMAD3 0x63
  159. #define KS_GAMMAD4 0x64
  160. #define KS_GAMMAD5 0x65
  161. #define KS_GAMMAD6 0x66
  162. #define KS_GAMMAD7 0x67
  163. #define KS_GAMMAD8 0x68
  164. #define KS_GAMMAD9 0x69
  165. #define KS_GAMMAD10 0x6a
  166. #define KS_GAMMAD11 0x6b
  167. #define KS_GAMMAD12 0x6c
  168. #define KS_GAMMAD13 0x6d
  169. #define KS_GAMMAD14 0x6e
  170. #define KS_GAMMAD15 0x6f
  171. #define KS_GAMMAD16 0x70
  172. #define KS_GAMMAD17 0x71
  173. #define KS_GAMMAD18 0x72
  174. #define KS_GAMMAD19 0x73
  175. #define KS_GAMMAD20 0x74
  176. #define KS_GAMMAD21 0x75
  177. #define KS_GAMMAD22 0x76
  178. #define KS_GAMMAD23 0x77
  179. #define KS_GAMMAD24 0x78
  180. #define KS_GAMMAD25 0x79
  181. #define KS_GAMMAD26 0x7a
  182. #define KS_GAMMAD27 0x7b
  183. #define KS_GAMMAD28 0x7c
  184. #define KS_GAMMAD29 0x7d
  185. #define KS_GAMMAD30 0x7e
  186. #define KS_GAMMAD31 0x7f
  187. /****************************************************************************
  188. * mga_dev : represents one ks0127 chip.
  189. ****************************************************************************/
  190. struct adjust {
  191. int contrast;
  192. int bright;
  193. int hue;
  194. int ugain;
  195. int vgain;
  196. };
  197. struct ks0127 {
  198. struct v4l2_subdev sd;
  199. v4l2_std_id norm;
  200. int ident;
  201. u8 regs[256];
  202. };
  203. static inline struct ks0127 *to_ks0127(struct v4l2_subdev *sd)
  204. {
  205. return container_of(sd, struct ks0127, sd);
  206. }
  207. static int debug; /* insmod parameter */
  208. module_param(debug, int, 0);
  209. MODULE_PARM_DESC(debug, "Debug output");
  210. static u8 reg_defaults[64];
  211. static void init_reg_defaults(void)
  212. {
  213. static int initialized;
  214. u8 *table = reg_defaults;
  215. if (initialized)
  216. return;
  217. initialized = 1;
  218. table[KS_CMDA] = 0x2c; /* VSE=0, CCIR 601, autodetect standard */
  219. table[KS_CMDB] = 0x12; /* VALIGN=0, AGC control and input */
  220. table[KS_CMDC] = 0x00; /* Test options */
  221. /* clock & input select, write 1 to PORTA */
  222. table[KS_CMDD] = 0x01;
  223. table[KS_HAVB] = 0x00; /* HAV Start Control */
  224. table[KS_HAVE] = 0x00; /* HAV End Control */
  225. table[KS_HS1B] = 0x10; /* HS1 Start Control */
  226. table[KS_HS1E] = 0x00; /* HS1 End Control */
  227. table[KS_HS2B] = 0x00; /* HS2 Start Control */
  228. table[KS_HS2E] = 0x00; /* HS2 End Control */
  229. table[KS_AGC] = 0x53; /* Manual setting for AGC */
  230. table[KS_HXTRA] = 0x00; /* Extra Bits for HAV and HS1/2 */
  231. table[KS_CDEM] = 0x00; /* Chroma Demodulation Control */
  232. table[KS_PORTAB] = 0x0f; /* port B is input, port A output GPPORT */
  233. table[KS_LUMA] = 0x01; /* Luma control */
  234. table[KS_CON] = 0x00; /* Contrast Control */
  235. table[KS_BRT] = 0x00; /* Brightness Control */
  236. table[KS_CHROMA] = 0x2a; /* Chroma control A */
  237. table[KS_CHROMB] = 0x90; /* Chroma control B */
  238. table[KS_DEMOD] = 0x00; /* Chroma Demodulation Control & Status */
  239. table[KS_SAT] = 0x00; /* Color Saturation Control*/
  240. table[KS_HUE] = 0x00; /* Hue Control */
  241. table[KS_VERTIA] = 0x00; /* Vertical Processing Control A */
  242. /* Vertical Processing Control B, luma 1 line delayed */
  243. table[KS_VERTIB] = 0x12;
  244. table[KS_VERTIC] = 0x0b; /* Vertical Processing Control C */
  245. table[KS_HSCLL] = 0x00; /* Horizontal Scaling Ratio Low */
  246. table[KS_HSCLH] = 0x00; /* Horizontal Scaling Ratio High */
  247. table[KS_VSCLL] = 0x00; /* Vertical Scaling Ratio Low */
  248. table[KS_VSCLH] = 0x00; /* Vertical Scaling Ratio High */
  249. /* 16 bit YCbCr 4:2:2 output; I can't make the bt866 like 8 bit /Sam */
  250. table[KS_OFMTA] = 0x30;
  251. table[KS_OFMTB] = 0x00; /* Output Control B */
  252. /* VBI Decoder Control; 4bit fmt: avoid Y overflow */
  253. table[KS_VBICTL] = 0x5d;
  254. table[KS_CCDAT2] = 0x00; /* Read Only register */
  255. table[KS_CCDAT1] = 0x00; /* Read Only register */
  256. table[KS_VBIL30] = 0xa8; /* VBI data decoding options */
  257. table[KS_VBIL74] = 0xaa; /* VBI data decoding options */
  258. table[KS_VBIL118] = 0x2a; /* VBI data decoding options */
  259. table[KS_VBIL1512] = 0x00; /* VBI data decoding options */
  260. table[KS_TTFRAM] = 0x00; /* Teletext frame alignment pattern */
  261. table[KS_TESTA] = 0x00; /* test register, shouldn't be written */
  262. table[KS_UVOFFH] = 0x00; /* UV Offset Adjustment High */
  263. table[KS_UVOFFL] = 0x00; /* UV Offset Adjustment Low */
  264. table[KS_UGAIN] = 0x00; /* U Component Gain Adjustment */
  265. table[KS_VGAIN] = 0x00; /* V Component Gain Adjustment */
  266. table[KS_VAVB] = 0x07; /* VAV Begin */
  267. table[KS_VAVE] = 0x00; /* VAV End */
  268. table[KS_CTRACK] = 0x00; /* Chroma Tracking Control */
  269. table[KS_POLCTL] = 0x41; /* Timing Signal Polarity Control */
  270. table[KS_REFCOD] = 0x80; /* Reference Code Insertion Control */
  271. table[KS_INVALY] = 0x10; /* Invalid Y Code */
  272. table[KS_INVALU] = 0x80; /* Invalid U Code */
  273. table[KS_INVALV] = 0x80; /* Invalid V Code */
  274. table[KS_UNUSEY] = 0x10; /* Unused Y Code */
  275. table[KS_UNUSEU] = 0x80; /* Unused U Code */
  276. table[KS_UNUSEV] = 0x80; /* Unused V Code */
  277. table[KS_USRSAV] = 0x00; /* reserved */
  278. table[KS_USREAV] = 0x00; /* reserved */
  279. table[KS_SHS1A] = 0x00; /* User Defined SHS1 A */
  280. /* User Defined SHS1 B, ALT656=1 on 0127B */
  281. table[KS_SHS1B] = 0x80;
  282. table[KS_SHS1C] = 0x00; /* User Defined SHS1 C */
  283. table[KS_CMDE] = 0x00; /* Command Register E */
  284. table[KS_VSDEL] = 0x00; /* VS Delay Control */
  285. /* Command Register F, update -immediately- */
  286. /* (there might come no vsync)*/
  287. table[KS_CMDF] = 0x02;
  288. }
  289. /* We need to manually read because of a bug in the KS0127 chip.
  290. *
  291. * An explanation from kayork@mail.utexas.edu:
  292. *
  293. * During I2C reads, the KS0127 only samples for a stop condition
  294. * during the place where the acknowledge bit should be. Any standard
  295. * I2C implementation (correctly) throws in another clock transition
  296. * at the 9th bit, and the KS0127 will not recognize the stop condition
  297. * and will continue to clock out data.
  298. *
  299. * So we have to do the read ourself. Big deal.
  300. * workaround in i2c-algo-bit
  301. */
  302. static u8 ks0127_read(struct v4l2_subdev *sd, u8 reg)
  303. {
  304. struct i2c_client *client = v4l2_get_subdevdata(sd);
  305. char val = 0;
  306. struct i2c_msg msgs[] = {
  307. { client->addr, 0, sizeof(reg), &reg },
  308. { client->addr, I2C_M_RD | I2C_M_NO_RD_ACK, sizeof(val), &val }
  309. };
  310. int ret;
  311. ret = i2c_transfer(client->adapter, msgs, ARRAY_SIZE(msgs));
  312. if (ret != ARRAY_SIZE(msgs))
  313. v4l2_dbg(1, debug, sd, "read error\n");
  314. return val;
  315. }
  316. static void ks0127_write(struct v4l2_subdev *sd, u8 reg, u8 val)
  317. {
  318. struct i2c_client *client = v4l2_get_subdevdata(sd);
  319. struct ks0127 *ks = to_ks0127(sd);
  320. char msg[] = { reg, val };
  321. if (i2c_master_send(client, msg, sizeof(msg)) != sizeof(msg))
  322. v4l2_dbg(1, debug, sd, "write error\n");
  323. ks->regs[reg] = val;
  324. }
  325. /* generic bit-twiddling */
  326. static void ks0127_and_or(struct v4l2_subdev *sd, u8 reg, u8 and_v, u8 or_v)
  327. {
  328. struct ks0127 *ks = to_ks0127(sd);
  329. u8 val = ks->regs[reg];
  330. val = (val & and_v) | or_v;
  331. ks0127_write(sd, reg, val);
  332. }
  333. /****************************************************************************
  334. * ks0127 private api
  335. ****************************************************************************/
  336. static void ks0127_init(struct v4l2_subdev *sd)
  337. {
  338. struct ks0127 *ks = to_ks0127(sd);
  339. u8 *table = reg_defaults;
  340. int i;
  341. ks->ident = V4L2_IDENT_KS0127;
  342. v4l2_dbg(1, debug, sd, "reset\n");
  343. msleep(1);
  344. /* initialize all registers to known values */
  345. /* (except STAT, 0x21, 0x22, TEST and 0x38,0x39) */
  346. for (i = 1; i < 33; i++)
  347. ks0127_write(sd, i, table[i]);
  348. for (i = 35; i < 40; i++)
  349. ks0127_write(sd, i, table[i]);
  350. for (i = 41; i < 56; i++)
  351. ks0127_write(sd, i, table[i]);
  352. for (i = 58; i < 64; i++)
  353. ks0127_write(sd, i, table[i]);
  354. if ((ks0127_read(sd, KS_STAT) & 0x80) == 0) {
  355. ks->ident = V4L2_IDENT_KS0122S;
  356. v4l2_dbg(1, debug, sd, "ks0122s found\n");
  357. return;
  358. }
  359. switch (ks0127_read(sd, KS_CMDE) & 0x0f) {
  360. case 0:
  361. v4l2_dbg(1, debug, sd, "ks0127 found\n");
  362. break;
  363. case 9:
  364. ks->ident = V4L2_IDENT_KS0127B;
  365. v4l2_dbg(1, debug, sd, "ks0127B Revision A found\n");
  366. break;
  367. default:
  368. v4l2_dbg(1, debug, sd, "unknown revision\n");
  369. break;
  370. }
  371. }
  372. static int ks0127_s_routing(struct v4l2_subdev *sd, const struct v4l2_routing *route)
  373. {
  374. struct ks0127 *ks = to_ks0127(sd);
  375. switch (route->input) {
  376. case KS_INPUT_COMPOSITE_1:
  377. case KS_INPUT_COMPOSITE_2:
  378. case KS_INPUT_COMPOSITE_3:
  379. case KS_INPUT_COMPOSITE_4:
  380. case KS_INPUT_COMPOSITE_5:
  381. case KS_INPUT_COMPOSITE_6:
  382. v4l2_dbg(1, debug, sd,
  383. "VIDIOC_S_INPUT %d: Composite\n", route->input);
  384. /* autodetect 50/60 Hz */
  385. ks0127_and_or(sd, KS_CMDA, 0xfc, 0x00);
  386. /* VSE=0 */
  387. ks0127_and_or(sd, KS_CMDA, ~0x40, 0x00);
  388. /* set input line */
  389. ks0127_and_or(sd, KS_CMDB, 0xb0, route->input);
  390. /* non-freerunning mode */
  391. ks0127_and_or(sd, KS_CMDC, 0x70, 0x0a);
  392. /* analog input */
  393. ks0127_and_or(sd, KS_CMDD, 0x03, 0x00);
  394. /* enable chroma demodulation */
  395. ks0127_and_or(sd, KS_CTRACK, 0xcf, 0x00);
  396. /* chroma trap, HYBWR=1 */
  397. ks0127_and_or(sd, KS_LUMA, 0x00,
  398. (reg_defaults[KS_LUMA])|0x0c);
  399. /* scaler fullbw, luma comb off */
  400. ks0127_and_or(sd, KS_VERTIA, 0x08, 0x81);
  401. /* manual chroma comb .25 .5 .25 */
  402. ks0127_and_or(sd, KS_VERTIC, 0x0f, 0x90);
  403. /* chroma path delay */
  404. ks0127_and_or(sd, KS_CHROMB, 0x0f, 0x90);
  405. ks0127_write(sd, KS_UGAIN, reg_defaults[KS_UGAIN]);
  406. ks0127_write(sd, KS_VGAIN, reg_defaults[KS_VGAIN]);
  407. ks0127_write(sd, KS_UVOFFH, reg_defaults[KS_UVOFFH]);
  408. ks0127_write(sd, KS_UVOFFL, reg_defaults[KS_UVOFFL]);
  409. break;
  410. case KS_INPUT_SVIDEO_1:
  411. case KS_INPUT_SVIDEO_2:
  412. case KS_INPUT_SVIDEO_3:
  413. v4l2_dbg(1, debug, sd,
  414. "VIDIOC_S_INPUT %d: S-Video\n", route->input);
  415. /* autodetect 50/60 Hz */
  416. ks0127_and_or(sd, KS_CMDA, 0xfc, 0x00);
  417. /* VSE=0 */
  418. ks0127_and_or(sd, KS_CMDA, ~0x40, 0x00);
  419. /* set input line */
  420. ks0127_and_or(sd, KS_CMDB, 0xb0, route->input);
  421. /* non-freerunning mode */
  422. ks0127_and_or(sd, KS_CMDC, 0x70, 0x0a);
  423. /* analog input */
  424. ks0127_and_or(sd, KS_CMDD, 0x03, 0x00);
  425. /* enable chroma demodulation */
  426. ks0127_and_or(sd, KS_CTRACK, 0xcf, 0x00);
  427. ks0127_and_or(sd, KS_LUMA, 0x00,
  428. reg_defaults[KS_LUMA]);
  429. /* disable luma comb */
  430. ks0127_and_or(sd, KS_VERTIA, 0x08,
  431. (reg_defaults[KS_VERTIA]&0xf0)|0x01);
  432. ks0127_and_or(sd, KS_VERTIC, 0x0f,
  433. reg_defaults[KS_VERTIC]&0xf0);
  434. ks0127_and_or(sd, KS_CHROMB, 0x0f,
  435. reg_defaults[KS_CHROMB]&0xf0);
  436. ks0127_write(sd, KS_UGAIN, reg_defaults[KS_UGAIN]);
  437. ks0127_write(sd, KS_VGAIN, reg_defaults[KS_VGAIN]);
  438. ks0127_write(sd, KS_UVOFFH, reg_defaults[KS_UVOFFH]);
  439. ks0127_write(sd, KS_UVOFFL, reg_defaults[KS_UVOFFL]);
  440. break;
  441. case KS_INPUT_YUV656:
  442. v4l2_dbg(1, debug, sd, "VIDIOC_S_INPUT 15: YUV656\n");
  443. if (ks->norm & V4L2_STD_525_60)
  444. /* force 60 Hz */
  445. ks0127_and_or(sd, KS_CMDA, 0xfc, 0x03);
  446. else
  447. /* force 50 Hz */
  448. ks0127_and_or(sd, KS_CMDA, 0xfc, 0x02);
  449. ks0127_and_or(sd, KS_CMDA, 0xff, 0x40); /* VSE=1 */
  450. /* set input line and VALIGN */
  451. ks0127_and_or(sd, KS_CMDB, 0xb0, (route->input | 0x40));
  452. /* freerunning mode, */
  453. /* TSTGEN = 1 TSTGFR=11 TSTGPH=0 TSTGPK=0 VMEM=1*/
  454. ks0127_and_or(sd, KS_CMDC, 0x70, 0x87);
  455. /* digital input, SYNDIR = 0 INPSL=01 CLKDIR=0 EAV=0 */
  456. ks0127_and_or(sd, KS_CMDD, 0x03, 0x08);
  457. /* disable chroma demodulation */
  458. ks0127_and_or(sd, KS_CTRACK, 0xcf, 0x30);
  459. /* HYPK =01 CTRAP = 0 HYBWR=0 PED=1 RGBH=1 UNIT=1 */
  460. ks0127_and_or(sd, KS_LUMA, 0x00, 0x71);
  461. ks0127_and_or(sd, KS_VERTIC, 0x0f,
  462. reg_defaults[KS_VERTIC]&0xf0);
  463. /* scaler fullbw, luma comb off */
  464. ks0127_and_or(sd, KS_VERTIA, 0x08, 0x81);
  465. ks0127_and_or(sd, KS_CHROMB, 0x0f,
  466. reg_defaults[KS_CHROMB]&0xf0);
  467. ks0127_and_or(sd, KS_CON, 0x00, 0x00);
  468. ks0127_and_or(sd, KS_BRT, 0x00, 32); /* spec: 34 */
  469. /* spec: 229 (e5) */
  470. ks0127_and_or(sd, KS_SAT, 0x00, 0xe8);
  471. ks0127_and_or(sd, KS_HUE, 0x00, 0);
  472. ks0127_and_or(sd, KS_UGAIN, 0x00, 238);
  473. ks0127_and_or(sd, KS_VGAIN, 0x00, 0x00);
  474. /*UOFF:0x30, VOFF:0x30, TSTCGN=1 */
  475. ks0127_and_or(sd, KS_UVOFFH, 0x00, 0x4f);
  476. ks0127_and_or(sd, KS_UVOFFL, 0x00, 0x00);
  477. break;
  478. default:
  479. v4l2_dbg(1, debug, sd,
  480. "VIDIOC_INT_S_VIDEO_ROUTING: Unknown input %d\n", route->input);
  481. break;
  482. }
  483. /* hack: CDMLPF sometimes spontaneously switches on; */
  484. /* force back off */
  485. ks0127_write(sd, KS_DEMOD, reg_defaults[KS_DEMOD]);
  486. return 0;
  487. }
  488. static int ks0127_s_std(struct v4l2_subdev *sd, v4l2_std_id std)
  489. {
  490. struct ks0127 *ks = to_ks0127(sd);
  491. /* Set to automatic SECAM/Fsc mode */
  492. ks0127_and_or(sd, KS_DEMOD, 0xf0, 0x00);
  493. ks->norm = std;
  494. if (std & V4L2_STD_NTSC) {
  495. v4l2_dbg(1, debug, sd,
  496. "VIDIOC_S_STD: NTSC_M\n");
  497. ks0127_and_or(sd, KS_CHROMA, 0x9f, 0x20);
  498. } else if (std & V4L2_STD_PAL_N) {
  499. v4l2_dbg(1, debug, sd,
  500. "KS0127_SET_NORM: NTSC_N (fixme)\n");
  501. ks0127_and_or(sd, KS_CHROMA, 0x9f, 0x40);
  502. } else if (std & V4L2_STD_PAL) {
  503. v4l2_dbg(1, debug, sd,
  504. "VIDIOC_S_STD: PAL_N\n");
  505. ks0127_and_or(sd, KS_CHROMA, 0x9f, 0x20);
  506. } else if (std & V4L2_STD_PAL_M) {
  507. v4l2_dbg(1, debug, sd,
  508. "KS0127_SET_NORM: PAL_M (fixme)\n");
  509. ks0127_and_or(sd, KS_CHROMA, 0x9f, 0x40);
  510. } else if (std & V4L2_STD_SECAM) {
  511. v4l2_dbg(1, debug, sd,
  512. "KS0127_SET_NORM: SECAM\n");
  513. /* set to secam autodetection */
  514. ks0127_and_or(sd, KS_CHROMA, 0xdf, 0x20);
  515. ks0127_and_or(sd, KS_DEMOD, 0xf0, 0x00);
  516. schedule_timeout_interruptible(HZ/10+1);
  517. /* did it autodetect? */
  518. if (!(ks0127_read(sd, KS_DEMOD) & 0x40))
  519. /* force to secam mode */
  520. ks0127_and_or(sd, KS_DEMOD, 0xf0, 0x0f);
  521. } else {
  522. v4l2_dbg(1, debug, sd,
  523. "VIDIOC_S_STD: Unknown norm %llx\n", std);
  524. }
  525. return 0;
  526. }
  527. static int ks0127_s_stream(struct v4l2_subdev *sd, int enable)
  528. {
  529. v4l2_dbg(1, debug, sd, "s_stream(%d)\n", enable);
  530. if (enable) {
  531. /* All output pins on */
  532. ks0127_and_or(sd, KS_OFMTA, 0xcf, 0x30);
  533. /* Obey the OEN pin */
  534. ks0127_and_or(sd, KS_CDEM, 0x7f, 0x00);
  535. } else {
  536. /* Video output pins off */
  537. ks0127_and_or(sd, KS_OFMTA, 0xcf, 0x00);
  538. /* Ignore the OEN pin */
  539. ks0127_and_or(sd, KS_CDEM, 0x7f, 0x80);
  540. }
  541. return 0;
  542. }
  543. static int ks0127_status(struct v4l2_subdev *sd, u32 *pstatus, v4l2_std_id *pstd)
  544. {
  545. int stat = V4L2_IN_ST_NO_SIGNAL;
  546. u8 status;
  547. v4l2_std_id std = V4L2_STD_ALL;
  548. v4l2_dbg(1, debug, sd, "VIDIOC_QUERYSTD/VIDIOC_INT_G_INPUT_STATUS\n");
  549. status = ks0127_read(sd, KS_STAT);
  550. if (!(status & 0x20)) /* NOVID not set */
  551. stat = 0;
  552. if (!(status & 0x01)) /* CLOCK set */
  553. stat |= V4L2_IN_ST_NO_COLOR;
  554. if ((status & 0x08)) /* PALDET set */
  555. std = V4L2_STD_PAL;
  556. else
  557. std = V4L2_STD_NTSC;
  558. if (pstd)
  559. *pstd = std;
  560. if (pstatus)
  561. *pstatus = stat;
  562. return 0;
  563. }
  564. static int ks0127_querystd(struct v4l2_subdev *sd, v4l2_std_id *std)
  565. {
  566. return ks0127_status(sd, NULL, std);
  567. }
  568. static int ks0127_g_input_status(struct v4l2_subdev *sd, u32 *status)
  569. {
  570. return ks0127_status(sd, status, NULL);
  571. }
  572. static int ks0127_g_chip_ident(struct v4l2_subdev *sd, struct v4l2_dbg_chip_ident *chip)
  573. {
  574. struct i2c_client *client = v4l2_get_subdevdata(sd);
  575. struct ks0127 *ks = to_ks0127(sd);
  576. return v4l2_chip_ident_i2c_client(client, chip, ks->ident, 0);
  577. }
  578. static int ks0127_command(struct i2c_client *client, unsigned cmd, void *arg)
  579. {
  580. return v4l2_subdev_command(i2c_get_clientdata(client), cmd, arg);
  581. }
  582. /* ----------------------------------------------------------------------- */
  583. static const struct v4l2_subdev_core_ops ks0127_core_ops = {
  584. .g_chip_ident = ks0127_g_chip_ident,
  585. };
  586. static const struct v4l2_subdev_tuner_ops ks0127_tuner_ops = {
  587. .s_std = ks0127_s_std,
  588. };
  589. static const struct v4l2_subdev_video_ops ks0127_video_ops = {
  590. .s_routing = ks0127_s_routing,
  591. .s_stream = ks0127_s_stream,
  592. .querystd = ks0127_querystd,
  593. .g_input_status = ks0127_g_input_status,
  594. };
  595. static const struct v4l2_subdev_ops ks0127_ops = {
  596. .core = &ks0127_core_ops,
  597. .tuner = &ks0127_tuner_ops,
  598. .video = &ks0127_video_ops,
  599. };
  600. /* ----------------------------------------------------------------------- */
  601. static int ks0127_probe(struct i2c_client *client, const struct i2c_device_id *id)
  602. {
  603. struct ks0127 *ks;
  604. struct v4l2_subdev *sd;
  605. v4l_info(client, "%s chip found @ 0x%x (%s)\n",
  606. client->addr == (I2C_KS0127_ADDON >> 1) ? "addon" : "on-board",
  607. client->addr << 1, client->adapter->name);
  608. ks = kzalloc(sizeof(*ks), GFP_KERNEL);
  609. if (ks == NULL)
  610. return -ENOMEM;
  611. sd = &ks->sd;
  612. v4l2_i2c_subdev_init(sd, client, &ks0127_ops);
  613. /* power up */
  614. init_reg_defaults();
  615. ks0127_write(sd, KS_CMDA, 0x2c);
  616. mdelay(10);
  617. /* reset the device */
  618. ks0127_init(sd);
  619. return 0;
  620. }
  621. static int ks0127_remove(struct i2c_client *client)
  622. {
  623. struct v4l2_subdev *sd = i2c_get_clientdata(client);
  624. v4l2_device_unregister_subdev(sd);
  625. ks0127_write(sd, KS_OFMTA, 0x20); /* tristate */
  626. ks0127_write(sd, KS_CMDA, 0x2c | 0x80); /* power down */
  627. kfree(to_ks0127(sd));
  628. return 0;
  629. }
  630. static int ks0127_legacy_probe(struct i2c_adapter *adapter)
  631. {
  632. return adapter->id == I2C_HW_B_ZR36067;
  633. }
  634. static const struct i2c_device_id ks0127_id[] = {
  635. { "ks0127", 0 },
  636. { }
  637. };
  638. MODULE_DEVICE_TABLE(i2c, ks0127_id);
  639. static struct v4l2_i2c_driver_data v4l2_i2c_data = {
  640. .name = "ks0127",
  641. .driverid = I2C_DRIVERID_KS0127,
  642. .command = ks0127_command,
  643. .probe = ks0127_probe,
  644. .remove = ks0127_remove,
  645. .legacy_probe = ks0127_legacy_probe,
  646. .id_table = ks0127_id,
  647. };