cx18-av-vbi.c 8.5 KB

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  1. /*
  2. * cx18 ADEC VBI functions
  3. *
  4. * Derived from cx25840-vbi.c
  5. *
  6. * Copyright (C) 2007 Hans Verkuil <hverkuil@xs4all.nl>
  7. *
  8. * This program is free software; you can redistribute it and/or
  9. * modify it under the terms of the GNU General Public License
  10. * as published by the Free Software Foundation; either version 2
  11. * of the License, or (at your option) any later version.
  12. *
  13. * This program is distributed in the hope that it will be useful,
  14. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  16. * GNU General Public License for more details.
  17. */
  18. #include "cx18-driver.h"
  19. /*
  20. * For sliced VBI output, we set up to use VIP-1.1, 8-bit mode,
  21. * NN counts 1 byte Dwords, an IDID with the VBI line # in it.
  22. * Thus, according to the VIP-2 Spec, our VBI ancillary data lines
  23. * (should!) look like:
  24. * 4 byte EAV code: 0xff 0x00 0x00 0xRP
  25. * unknown number of possible idle bytes
  26. * 3 byte Anc data preamble: 0x00 0xff 0xff
  27. * 1 byte data identifier: ne010iii (parity bits, 010, DID bits)
  28. * 1 byte secondary data id: nessssss (parity bits, SDID bits)
  29. * 1 byte data word count: necccccc (parity bits, NN Dword count)
  30. * 2 byte Internal DID: VBI-line-# 0x80
  31. * NN data bytes
  32. * 1 byte checksum
  33. * Fill bytes needed to fil out to 4*NN bytes of payload
  34. *
  35. * The RP codes for EAVs when in VIP-1.1 mode, not in raw mode, &
  36. * in the vertical blanking interval are:
  37. * 0xb0 (Task 0 VerticalBlank HorizontalBlank 0 0 0 0)
  38. * 0xf0 (Task EvenField VerticalBlank HorizontalBlank 0 0 0 0)
  39. *
  40. * Since the V bit is only allowed to toggle in the EAV RP code, just
  41. * before the first active region line and for active lines, they are:
  42. * 0x90 (Task 0 0 HorizontalBlank 0 0 0 0)
  43. * 0xd0 (Task EvenField 0 HorizontalBlank 0 0 0 0)
  44. *
  45. * The user application DID bytes we care about are:
  46. * 0x91 (1 0 010 0 !ActiveLine AncDataPresent)
  47. * 0x55 (0 1 010 2ndField !ActiveLine AncDataPresent)
  48. *
  49. */
  50. static const u8 sliced_vbi_did[2] = { 0x91, 0x55 };
  51. struct vbi_anc_data {
  52. /* u8 eav[4]; */
  53. /* u8 idle[]; Variable number of idle bytes */
  54. u8 preamble[3];
  55. u8 did;
  56. u8 sdid;
  57. u8 data_count;
  58. u8 idid[2];
  59. u8 payload[1]; /* data_count of payload */
  60. /* u8 checksum; */
  61. /* u8 fill[]; Variable number of fill bytes */
  62. };
  63. static int odd_parity(u8 c)
  64. {
  65. c ^= (c >> 4);
  66. c ^= (c >> 2);
  67. c ^= (c >> 1);
  68. return c & 1;
  69. }
  70. static int decode_vps(u8 *dst, u8 *p)
  71. {
  72. static const u8 biphase_tbl[] = {
  73. 0xf0, 0x78, 0x70, 0xf0, 0xb4, 0x3c, 0x34, 0xb4,
  74. 0xb0, 0x38, 0x30, 0xb0, 0xf0, 0x78, 0x70, 0xf0,
  75. 0xd2, 0x5a, 0x52, 0xd2, 0x96, 0x1e, 0x16, 0x96,
  76. 0x92, 0x1a, 0x12, 0x92, 0xd2, 0x5a, 0x52, 0xd2,
  77. 0xd0, 0x58, 0x50, 0xd0, 0x94, 0x1c, 0x14, 0x94,
  78. 0x90, 0x18, 0x10, 0x90, 0xd0, 0x58, 0x50, 0xd0,
  79. 0xf0, 0x78, 0x70, 0xf0, 0xb4, 0x3c, 0x34, 0xb4,
  80. 0xb0, 0x38, 0x30, 0xb0, 0xf0, 0x78, 0x70, 0xf0,
  81. 0xe1, 0x69, 0x61, 0xe1, 0xa5, 0x2d, 0x25, 0xa5,
  82. 0xa1, 0x29, 0x21, 0xa1, 0xe1, 0x69, 0x61, 0xe1,
  83. 0xc3, 0x4b, 0x43, 0xc3, 0x87, 0x0f, 0x07, 0x87,
  84. 0x83, 0x0b, 0x03, 0x83, 0xc3, 0x4b, 0x43, 0xc3,
  85. 0xc1, 0x49, 0x41, 0xc1, 0x85, 0x0d, 0x05, 0x85,
  86. 0x81, 0x09, 0x01, 0x81, 0xc1, 0x49, 0x41, 0xc1,
  87. 0xe1, 0x69, 0x61, 0xe1, 0xa5, 0x2d, 0x25, 0xa5,
  88. 0xa1, 0x29, 0x21, 0xa1, 0xe1, 0x69, 0x61, 0xe1,
  89. 0xe0, 0x68, 0x60, 0xe0, 0xa4, 0x2c, 0x24, 0xa4,
  90. 0xa0, 0x28, 0x20, 0xa0, 0xe0, 0x68, 0x60, 0xe0,
  91. 0xc2, 0x4a, 0x42, 0xc2, 0x86, 0x0e, 0x06, 0x86,
  92. 0x82, 0x0a, 0x02, 0x82, 0xc2, 0x4a, 0x42, 0xc2,
  93. 0xc0, 0x48, 0x40, 0xc0, 0x84, 0x0c, 0x04, 0x84,
  94. 0x80, 0x08, 0x00, 0x80, 0xc0, 0x48, 0x40, 0xc0,
  95. 0xe0, 0x68, 0x60, 0xe0, 0xa4, 0x2c, 0x24, 0xa4,
  96. 0xa0, 0x28, 0x20, 0xa0, 0xe0, 0x68, 0x60, 0xe0,
  97. 0xf0, 0x78, 0x70, 0xf0, 0xb4, 0x3c, 0x34, 0xb4,
  98. 0xb0, 0x38, 0x30, 0xb0, 0xf0, 0x78, 0x70, 0xf0,
  99. 0xd2, 0x5a, 0x52, 0xd2, 0x96, 0x1e, 0x16, 0x96,
  100. 0x92, 0x1a, 0x12, 0x92, 0xd2, 0x5a, 0x52, 0xd2,
  101. 0xd0, 0x58, 0x50, 0xd0, 0x94, 0x1c, 0x14, 0x94,
  102. 0x90, 0x18, 0x10, 0x90, 0xd0, 0x58, 0x50, 0xd0,
  103. 0xf0, 0x78, 0x70, 0xf0, 0xb4, 0x3c, 0x34, 0xb4,
  104. 0xb0, 0x38, 0x30, 0xb0, 0xf0, 0x78, 0x70, 0xf0,
  105. };
  106. u8 c, err = 0;
  107. int i;
  108. for (i = 0; i < 2 * 13; i += 2) {
  109. err |= biphase_tbl[p[i]] | biphase_tbl[p[i + 1]];
  110. c = (biphase_tbl[p[i + 1]] & 0xf) |
  111. ((biphase_tbl[p[i]] & 0xf) << 4);
  112. dst[i / 2] = c;
  113. }
  114. return err & 0xf0;
  115. }
  116. int cx18_av_g_sliced_fmt(struct v4l2_subdev *sd, struct v4l2_sliced_vbi_format *svbi)
  117. {
  118. struct cx18 *cx = v4l2_get_subdevdata(sd);
  119. struct cx18_av_state *state = &cx->av_state;
  120. static const u16 lcr2vbi[] = {
  121. 0, V4L2_SLICED_TELETEXT_B, 0, /* 1 */
  122. 0, V4L2_SLICED_WSS_625, 0, /* 4 */
  123. V4L2_SLICED_CAPTION_525, /* 6 */
  124. 0, 0, V4L2_SLICED_VPS, 0, 0, /* 9 */
  125. 0, 0, 0, 0
  126. };
  127. int is_pal = !(state->std & V4L2_STD_525_60);
  128. int i;
  129. memset(svbi->service_lines, 0, sizeof(svbi->service_lines));
  130. svbi->service_set = 0;
  131. /* we're done if raw VBI is active */
  132. if ((cx18_av_read(cx, 0x404) & 0x10) == 0)
  133. return 0;
  134. if (is_pal) {
  135. for (i = 7; i <= 23; i++) {
  136. u8 v = cx18_av_read(cx, 0x424 + i - 7);
  137. svbi->service_lines[0][i] = lcr2vbi[v >> 4];
  138. svbi->service_lines[1][i] = lcr2vbi[v & 0xf];
  139. svbi->service_set |= svbi->service_lines[0][i] |
  140. svbi->service_lines[1][i];
  141. }
  142. } else {
  143. for (i = 10; i <= 21; i++) {
  144. u8 v = cx18_av_read(cx, 0x424 + i - 10);
  145. svbi->service_lines[0][i] = lcr2vbi[v >> 4];
  146. svbi->service_lines[1][i] = lcr2vbi[v & 0xf];
  147. svbi->service_set |= svbi->service_lines[0][i] |
  148. svbi->service_lines[1][i];
  149. }
  150. }
  151. return 0;
  152. }
  153. int cx18_av_s_raw_fmt(struct v4l2_subdev *sd, struct v4l2_vbi_format *fmt)
  154. {
  155. struct cx18 *cx = v4l2_get_subdevdata(sd);
  156. struct cx18_av_state *state = &cx->av_state;
  157. /* Setup standard */
  158. cx18_av_std_setup(cx);
  159. /* VBI Offset */
  160. cx18_av_write(cx, 0x47f, state->slicer_line_delay);
  161. cx18_av_write(cx, 0x404, 0x2e);
  162. return 0;
  163. }
  164. int cx18_av_s_sliced_fmt(struct v4l2_subdev *sd, struct v4l2_sliced_vbi_format *svbi)
  165. {
  166. struct cx18 *cx = v4l2_get_subdevdata(sd);
  167. struct cx18_av_state *state = &cx->av_state;
  168. int is_pal = !(state->std & V4L2_STD_525_60);
  169. int i, x;
  170. u8 lcr[24];
  171. for (x = 0; x <= 23; x++)
  172. lcr[x] = 0x00;
  173. /* Setup standard */
  174. cx18_av_std_setup(cx);
  175. /* Sliced VBI */
  176. cx18_av_write(cx, 0x404, 0x32); /* Ancillary data */
  177. cx18_av_write(cx, 0x406, 0x13);
  178. cx18_av_write(cx, 0x47f, state->slicer_line_delay);
  179. /* Force impossible lines to 0 */
  180. if (is_pal) {
  181. for (i = 0; i <= 6; i++)
  182. svbi->service_lines[0][i] =
  183. svbi->service_lines[1][i] = 0;
  184. } else {
  185. for (i = 0; i <= 9; i++)
  186. svbi->service_lines[0][i] =
  187. svbi->service_lines[1][i] = 0;
  188. for (i = 22; i <= 23; i++)
  189. svbi->service_lines[0][i] =
  190. svbi->service_lines[1][i] = 0;
  191. }
  192. /* Build register values for requested service lines */
  193. for (i = 7; i <= 23; i++) {
  194. for (x = 0; x <= 1; x++) {
  195. switch (svbi->service_lines[1-x][i]) {
  196. case V4L2_SLICED_TELETEXT_B:
  197. lcr[i] |= 1 << (4 * x);
  198. break;
  199. case V4L2_SLICED_WSS_625:
  200. lcr[i] |= 4 << (4 * x);
  201. break;
  202. case V4L2_SLICED_CAPTION_525:
  203. lcr[i] |= 6 << (4 * x);
  204. break;
  205. case V4L2_SLICED_VPS:
  206. lcr[i] |= 9 << (4 * x);
  207. break;
  208. }
  209. }
  210. }
  211. if (is_pal) {
  212. for (x = 1, i = 0x424; i <= 0x434; i++, x++)
  213. cx18_av_write(cx, i, lcr[6 + x]);
  214. } else {
  215. for (x = 1, i = 0x424; i <= 0x430; i++, x++)
  216. cx18_av_write(cx, i, lcr[9 + x]);
  217. for (i = 0x431; i <= 0x434; i++)
  218. cx18_av_write(cx, i, 0);
  219. }
  220. cx18_av_write(cx, 0x43c, 0x16);
  221. /* Should match vblank set in cx18_av_std_setup() */
  222. cx18_av_write(cx, 0x474, is_pal ? 38 : 26);
  223. return 0;
  224. }
  225. int cx18_av_decode_vbi_line(struct v4l2_subdev *sd,
  226. struct v4l2_decode_vbi_line *vbi)
  227. {
  228. struct cx18 *cx = v4l2_get_subdevdata(sd);
  229. struct cx18_av_state *state = &cx->av_state;
  230. struct vbi_anc_data *anc = (struct vbi_anc_data *)vbi->p;
  231. u8 *p;
  232. int did, sdid, l, err = 0;
  233. /*
  234. * Check for the ancillary data header for sliced VBI
  235. */
  236. if (anc->preamble[0] ||
  237. anc->preamble[1] != 0xff || anc->preamble[2] != 0xff ||
  238. (anc->did != sliced_vbi_did[0] &&
  239. anc->did != sliced_vbi_did[1])) {
  240. vbi->line = vbi->type = 0;
  241. return 0;
  242. }
  243. did = anc->did;
  244. sdid = anc->sdid & 0xf;
  245. l = anc->idid[0] & 0x3f;
  246. l += state->slicer_line_offset;
  247. p = anc->payload;
  248. /* Decode the SDID set by the slicer */
  249. switch (sdid) {
  250. case 1:
  251. sdid = V4L2_SLICED_TELETEXT_B;
  252. break;
  253. case 4:
  254. sdid = V4L2_SLICED_WSS_625;
  255. break;
  256. case 6:
  257. sdid = V4L2_SLICED_CAPTION_525;
  258. err = !odd_parity(p[0]) || !odd_parity(p[1]);
  259. break;
  260. case 9:
  261. sdid = V4L2_SLICED_VPS;
  262. if (decode_vps(p, p) != 0)
  263. err = 1;
  264. break;
  265. default:
  266. sdid = 0;
  267. err = 1;
  268. break;
  269. }
  270. vbi->type = err ? 0 : sdid;
  271. vbi->line = err ? 0 : l;
  272. vbi->is_second_field = err ? 0 : (did == sliced_vbi_did[1]);
  273. vbi->p = p;
  274. return 0;
  275. }