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  1. /*
  2. * Duck TrueMotion 1.0 Decoder
  3. * Copyright (C) 2003 Alex Beregszaszi & Mike Melanson
  4. *
  5. * This file is part of FFmpeg.
  6. *
  7. * FFmpeg is free software; you can redistribute it and/or
  8. * modify it under the terms of the GNU Lesser General Public
  9. * License as published by the Free Software Foundation; either
  10. * version 2.1 of the License, or (at your option) any later version.
  11. *
  12. * FFmpeg is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  15. * Lesser General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU Lesser General Public
  18. * License along with FFmpeg; if not, write to the Free Software
  19. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  20. */
  21. /**
  22. * @file
  23. * Duck TrueMotion v1 Video Decoder by
  24. * Alex Beregszaszi and
  25. * Mike Melanson (melanson@pcisys.net)
  26. *
  27. * The TrueMotion v1 decoder presently only decodes 16-bit TM1 data and
  28. * outputs RGB555 (or RGB565) data. 24-bit TM1 data is not supported yet.
  29. */
  30. #include <stdio.h>
  31. #include <stdlib.h>
  32. #include <string.h>
  33. #include "avcodec.h"
  34. #include "dsputil.h"
  35. #include "truemotion1data.h"
  36. typedef struct TrueMotion1Context {
  37. AVCodecContext *avctx;
  38. AVFrame frame;
  39. const uint8_t *buf;
  40. int size;
  41. const uint8_t *mb_change_bits;
  42. int mb_change_bits_row_size;
  43. const uint8_t *index_stream;
  44. int index_stream_size;
  45. int flags;
  46. int x, y, w, h;
  47. uint32_t y_predictor_table[1024];
  48. uint32_t c_predictor_table[1024];
  49. uint32_t fat_y_predictor_table[1024];
  50. uint32_t fat_c_predictor_table[1024];
  51. int compression;
  52. int block_type;
  53. int block_width;
  54. int block_height;
  55. int16_t ydt[8];
  56. int16_t cdt[8];
  57. int16_t fat_ydt[8];
  58. int16_t fat_cdt[8];
  59. int last_deltaset, last_vectable;
  60. unsigned int *vert_pred;
  61. } TrueMotion1Context;
  62. #define FLAG_SPRITE 32
  63. #define FLAG_KEYFRAME 16
  64. #define FLAG_INTERFRAME 8
  65. #define FLAG_INTERPOLATED 4
  66. struct frame_header {
  67. uint8_t header_size;
  68. uint8_t compression;
  69. uint8_t deltaset;
  70. uint8_t vectable;
  71. uint16_t ysize;
  72. uint16_t xsize;
  73. uint16_t checksum;
  74. uint8_t version;
  75. uint8_t header_type;
  76. uint8_t flags;
  77. uint8_t control;
  78. uint16_t xoffset;
  79. uint16_t yoffset;
  80. uint16_t width;
  81. uint16_t height;
  82. };
  83. #define ALGO_NOP 0
  84. #define ALGO_RGB16V 1
  85. #define ALGO_RGB16H 2
  86. #define ALGO_RGB24H 3
  87. /* these are the various block sizes that can occupy a 4x4 block */
  88. #define BLOCK_2x2 0
  89. #define BLOCK_2x4 1
  90. #define BLOCK_4x2 2
  91. #define BLOCK_4x4 3
  92. typedef struct comp_types {
  93. int algorithm;
  94. int block_width; // vres
  95. int block_height; // hres
  96. int block_type;
  97. } comp_types;
  98. /* { valid for metatype }, algorithm, num of deltas, vert res, horiz res */
  99. static const comp_types compression_types[17] = {
  100. { ALGO_NOP, 0, 0, 0 },
  101. { ALGO_RGB16V, 4, 4, BLOCK_4x4 },
  102. { ALGO_RGB16H, 4, 4, BLOCK_4x4 },
  103. { ALGO_RGB16V, 4, 2, BLOCK_4x2 },
  104. { ALGO_RGB16H, 4, 2, BLOCK_4x2 },
  105. { ALGO_RGB16V, 2, 4, BLOCK_2x4 },
  106. { ALGO_RGB16H, 2, 4, BLOCK_2x4 },
  107. { ALGO_RGB16V, 2, 2, BLOCK_2x2 },
  108. { ALGO_RGB16H, 2, 2, BLOCK_2x2 },
  109. { ALGO_NOP, 4, 4, BLOCK_4x4 },
  110. { ALGO_RGB24H, 4, 4, BLOCK_4x4 },
  111. { ALGO_NOP, 4, 2, BLOCK_4x2 },
  112. { ALGO_RGB24H, 4, 2, BLOCK_4x2 },
  113. { ALGO_NOP, 2, 4, BLOCK_2x4 },
  114. { ALGO_RGB24H, 2, 4, BLOCK_2x4 },
  115. { ALGO_NOP, 2, 2, BLOCK_2x2 },
  116. { ALGO_RGB24H, 2, 2, BLOCK_2x2 }
  117. };
  118. static void select_delta_tables(TrueMotion1Context *s, int delta_table_index)
  119. {
  120. int i;
  121. if (delta_table_index > 3)
  122. return;
  123. memcpy(s->ydt, ydts[delta_table_index], 8 * sizeof(int16_t));
  124. memcpy(s->cdt, cdts[delta_table_index], 8 * sizeof(int16_t));
  125. memcpy(s->fat_ydt, fat_ydts[delta_table_index], 8 * sizeof(int16_t));
  126. memcpy(s->fat_cdt, fat_cdts[delta_table_index], 8 * sizeof(int16_t));
  127. /* Y skinny deltas need to be halved for some reason; maybe the
  128. * skinny Y deltas should be modified */
  129. for (i = 0; i < 8; i++)
  130. {
  131. /* drop the lsb before dividing by 2-- net effect: round down
  132. * when dividing a negative number (e.g., -3/2 = -2, not -1) */
  133. s->ydt[i] &= 0xFFFE;
  134. s->ydt[i] /= 2;
  135. }
  136. }
  137. #if HAVE_BIGENDIAN
  138. static int make_ydt15_entry(int p2, int p1, int16_t *ydt)
  139. #else
  140. static int make_ydt15_entry(int p1, int p2, int16_t *ydt)
  141. #endif
  142. {
  143. int lo, hi;
  144. lo = ydt[p1];
  145. lo += (lo << 5) + (lo << 10);
  146. hi = ydt[p2];
  147. hi += (hi << 5) + (hi << 10);
  148. return (lo + (hi << 16)) << 1;
  149. }
  150. static int make_cdt15_entry(int p1, int p2, int16_t *cdt)
  151. {
  152. int r, b, lo;
  153. b = cdt[p2];
  154. r = cdt[p1] << 10;
  155. lo = b + r;
  156. return (lo + (lo << 16)) << 1;
  157. }
  158. #if HAVE_BIGENDIAN
  159. static int make_ydt16_entry(int p2, int p1, int16_t *ydt)
  160. #else
  161. static int make_ydt16_entry(int p1, int p2, int16_t *ydt)
  162. #endif
  163. {
  164. int lo, hi;
  165. lo = ydt[p1];
  166. lo += (lo << 6) + (lo << 11);
  167. hi = ydt[p2];
  168. hi += (hi << 6) + (hi << 11);
  169. return (lo + (hi << 16)) << 1;
  170. }
  171. static int make_cdt16_entry(int p1, int p2, int16_t *cdt)
  172. {
  173. int r, b, lo;
  174. b = cdt[p2];
  175. r = cdt[p1] << 11;
  176. lo = b + r;
  177. return (lo + (lo << 16)) << 1;
  178. }
  179. static int make_ydt24_entry(int p1, int p2, int16_t *ydt)
  180. {
  181. int lo, hi;
  182. lo = ydt[p1];
  183. hi = ydt[p2];
  184. return (lo + (hi << 8) + (hi << 16)) << 1;
  185. }
  186. static int make_cdt24_entry(int p1, int p2, int16_t *cdt)
  187. {
  188. int r, b;
  189. b = cdt[p2];
  190. r = cdt[p1]<<16;
  191. return (b+r) << 1;
  192. }
  193. static void gen_vector_table15(TrueMotion1Context *s, const uint8_t *sel_vector_table)
  194. {
  195. int len, i, j;
  196. unsigned char delta_pair;
  197. for (i = 0; i < 1024; i += 4)
  198. {
  199. len = *sel_vector_table++ / 2;
  200. for (j = 0; j < len; j++)
  201. {
  202. delta_pair = *sel_vector_table++;
  203. s->y_predictor_table[i+j] = 0xfffffffe &
  204. make_ydt15_entry(delta_pair >> 4, delta_pair & 0xf, s->ydt);
  205. s->c_predictor_table[i+j] = 0xfffffffe &
  206. make_cdt15_entry(delta_pair >> 4, delta_pair & 0xf, s->cdt);
  207. }
  208. s->y_predictor_table[i+(j-1)] |= 1;
  209. s->c_predictor_table[i+(j-1)] |= 1;
  210. }
  211. }
  212. static void gen_vector_table16(TrueMotion1Context *s, const uint8_t *sel_vector_table)
  213. {
  214. int len, i, j;
  215. unsigned char delta_pair;
  216. for (i = 0; i < 1024; i += 4)
  217. {
  218. len = *sel_vector_table++ / 2;
  219. for (j = 0; j < len; j++)
  220. {
  221. delta_pair = *sel_vector_table++;
  222. s->y_predictor_table[i+j] = 0xfffffffe &
  223. make_ydt16_entry(delta_pair >> 4, delta_pair & 0xf, s->ydt);
  224. s->c_predictor_table[i+j] = 0xfffffffe &
  225. make_cdt16_entry(delta_pair >> 4, delta_pair & 0xf, s->cdt);
  226. }
  227. s->y_predictor_table[i+(j-1)] |= 1;
  228. s->c_predictor_table[i+(j-1)] |= 1;
  229. }
  230. }
  231. static void gen_vector_table24(TrueMotion1Context *s, const uint8_t *sel_vector_table)
  232. {
  233. int len, i, j;
  234. unsigned char delta_pair;
  235. for (i = 0; i < 1024; i += 4)
  236. {
  237. len = *sel_vector_table++ / 2;
  238. for (j = 0; j < len; j++)
  239. {
  240. delta_pair = *sel_vector_table++;
  241. s->y_predictor_table[i+j] = 0xfffffffe &
  242. make_ydt24_entry(delta_pair >> 4, delta_pair & 0xf, s->ydt);
  243. s->c_predictor_table[i+j] = 0xfffffffe &
  244. make_cdt24_entry(delta_pair >> 4, delta_pair & 0xf, s->cdt);
  245. s->fat_y_predictor_table[i+j] = 0xfffffffe &
  246. make_ydt24_entry(delta_pair >> 4, delta_pair & 0xf, s->fat_ydt);
  247. s->fat_c_predictor_table[i+j] = 0xfffffffe &
  248. make_cdt24_entry(delta_pair >> 4, delta_pair & 0xf, s->fat_cdt);
  249. }
  250. s->y_predictor_table[i+(j-1)] |= 1;
  251. s->c_predictor_table[i+(j-1)] |= 1;
  252. s->fat_y_predictor_table[i+(j-1)] |= 1;
  253. s->fat_c_predictor_table[i+(j-1)] |= 1;
  254. }
  255. }
  256. /* Returns the number of bytes consumed from the bytestream. Returns -1 if
  257. * there was an error while decoding the header */
  258. static int truemotion1_decode_header(TrueMotion1Context *s)
  259. {
  260. int i;
  261. struct frame_header header;
  262. uint8_t header_buffer[128]; /* logical maximum size of the header */
  263. const uint8_t *sel_vector_table;
  264. /* There is 1 change bit per 4 pixels, so each change byte represents
  265. * 32 pixels; divide width by 4 to obtain the number of change bits and
  266. * then round up to the nearest byte. */
  267. s->mb_change_bits_row_size = ((s->avctx->width >> 2) + 7) >> 3;
  268. header.header_size = ((s->buf[0] >> 5) | (s->buf[0] << 3)) & 0x7f;
  269. if (s->buf[0] < 0x10)
  270. {
  271. av_log(s->avctx, AV_LOG_ERROR, "invalid header size (%d)\n", s->buf[0]);
  272. return -1;
  273. }
  274. /* unscramble the header bytes with a XOR operation */
  275. memset(header_buffer, 0, 128);
  276. for (i = 1; i < header.header_size; i++)
  277. header_buffer[i - 1] = s->buf[i] ^ s->buf[i + 1];
  278. header.compression = header_buffer[0];
  279. header.deltaset = header_buffer[1];
  280. header.vectable = header_buffer[2];
  281. header.ysize = AV_RL16(&header_buffer[3]);
  282. header.xsize = AV_RL16(&header_buffer[5]);
  283. header.checksum = AV_RL16(&header_buffer[7]);
  284. header.version = header_buffer[9];
  285. header.header_type = header_buffer[10];
  286. header.flags = header_buffer[11];
  287. header.control = header_buffer[12];
  288. /* Version 2 */
  289. if (header.version >= 2)
  290. {
  291. if (header.header_type > 3)
  292. {
  293. av_log(s->avctx, AV_LOG_ERROR, "invalid header type (%d)\n", header.header_type);
  294. return -1;
  295. } else if ((header.header_type == 2) || (header.header_type == 3)) {
  296. s->flags = header.flags;
  297. if (!(s->flags & FLAG_INTERFRAME))
  298. s->flags |= FLAG_KEYFRAME;
  299. } else
  300. s->flags = FLAG_KEYFRAME;
  301. } else /* Version 1 */
  302. s->flags = FLAG_KEYFRAME;
  303. if (s->flags & FLAG_SPRITE) {
  304. av_log(s->avctx, AV_LOG_INFO, "SPRITE frame found, please report the sample to the developers\n");
  305. /* FIXME header.width, height, xoffset and yoffset aren't initialized */
  306. #if 0
  307. s->w = header.width;
  308. s->h = header.height;
  309. s->x = header.xoffset;
  310. s->y = header.yoffset;
  311. #else
  312. return -1;
  313. #endif
  314. } else {
  315. s->w = header.xsize;
  316. s->h = header.ysize;
  317. if (header.header_type < 2) {
  318. if ((s->w < 213) && (s->h >= 176))
  319. {
  320. s->flags |= FLAG_INTERPOLATED;
  321. av_log(s->avctx, AV_LOG_INFO, "INTERPOLATION selected, please report the sample to the developers\n");
  322. }
  323. }
  324. }
  325. if (header.compression >= 17) {
  326. av_log(s->avctx, AV_LOG_ERROR, "invalid compression type (%d)\n", header.compression);
  327. return -1;
  328. }
  329. if ((header.deltaset != s->last_deltaset) ||
  330. (header.vectable != s->last_vectable))
  331. select_delta_tables(s, header.deltaset);
  332. if ((header.compression & 1) && header.header_type)
  333. sel_vector_table = pc_tbl2;
  334. else {
  335. if (header.vectable < 4)
  336. sel_vector_table = tables[header.vectable - 1];
  337. else {
  338. av_log(s->avctx, AV_LOG_ERROR, "invalid vector table id (%d)\n", header.vectable);
  339. return -1;
  340. }
  341. }
  342. // FIXME: where to place this ?!?!
  343. if (compression_types[header.compression].algorithm == ALGO_RGB24H)
  344. s->avctx->pix_fmt = PIX_FMT_RGB32;
  345. else
  346. s->avctx->pix_fmt = PIX_FMT_RGB555; // RGB565 is supported as well
  347. if ((header.deltaset != s->last_deltaset) || (header.vectable != s->last_vectable))
  348. {
  349. if (compression_types[header.compression].algorithm == ALGO_RGB24H)
  350. gen_vector_table24(s, sel_vector_table);
  351. else
  352. if (s->avctx->pix_fmt == PIX_FMT_RGB555)
  353. gen_vector_table15(s, sel_vector_table);
  354. else
  355. gen_vector_table16(s, sel_vector_table);
  356. }
  357. /* set up pointers to the other key data chunks */
  358. s->mb_change_bits = s->buf + header.header_size;
  359. if (s->flags & FLAG_KEYFRAME) {
  360. /* no change bits specified for a keyframe; only index bytes */
  361. s->index_stream = s->mb_change_bits;
  362. } else {
  363. /* one change bit per 4x4 block */
  364. s->index_stream = s->mb_change_bits +
  365. (s->mb_change_bits_row_size * (s->avctx->height >> 2));
  366. }
  367. s->index_stream_size = s->size - (s->index_stream - s->buf);
  368. s->last_deltaset = header.deltaset;
  369. s->last_vectable = header.vectable;
  370. s->compression = header.compression;
  371. s->block_width = compression_types[header.compression].block_width;
  372. s->block_height = compression_types[header.compression].block_height;
  373. s->block_type = compression_types[header.compression].block_type;
  374. if (s->avctx->debug & FF_DEBUG_PICT_INFO)
  375. av_log(s->avctx, AV_LOG_INFO, "tables: %d / %d c:%d %dx%d t:%d %s%s%s%s\n",
  376. s->last_deltaset, s->last_vectable, s->compression, s->block_width,
  377. s->block_height, s->block_type,
  378. s->flags & FLAG_KEYFRAME ? " KEY" : "",
  379. s->flags & FLAG_INTERFRAME ? " INTER" : "",
  380. s->flags & FLAG_SPRITE ? " SPRITE" : "",
  381. s->flags & FLAG_INTERPOLATED ? " INTERPOL" : "");
  382. return header.header_size;
  383. }
  384. static av_cold int truemotion1_decode_init(AVCodecContext *avctx)
  385. {
  386. TrueMotion1Context *s = avctx->priv_data;
  387. s->avctx = avctx;
  388. // FIXME: it may change ?
  389. // if (avctx->bits_per_sample == 24)
  390. // avctx->pix_fmt = PIX_FMT_RGB24;
  391. // else
  392. // avctx->pix_fmt = PIX_FMT_RGB555;
  393. s->frame.data[0] = NULL;
  394. /* there is a vertical predictor for each pixel in a line; each vertical
  395. * predictor is 0 to start with */
  396. s->vert_pred =
  397. (unsigned int *)av_malloc(s->avctx->width * sizeof(unsigned int));
  398. return 0;
  399. }
  400. /*
  401. Block decoding order:
  402. dxi: Y-Y
  403. dxic: Y-C-Y
  404. dxic2: Y-C-Y-C
  405. hres,vres,i,i%vres (0 < i < 4)
  406. 2x2 0: 0 dxic2
  407. 2x2 1: 1 dxi
  408. 2x2 2: 0 dxic2
  409. 2x2 3: 1 dxi
  410. 2x4 0: 0 dxic2
  411. 2x4 1: 1 dxi
  412. 2x4 2: 2 dxi
  413. 2x4 3: 3 dxi
  414. 4x2 0: 0 dxic
  415. 4x2 1: 1 dxi
  416. 4x2 2: 0 dxic
  417. 4x2 3: 1 dxi
  418. 4x4 0: 0 dxic
  419. 4x4 1: 1 dxi
  420. 4x4 2: 2 dxi
  421. 4x4 3: 3 dxi
  422. */
  423. #define GET_NEXT_INDEX() \
  424. {\
  425. if (index_stream_index >= s->index_stream_size) { \
  426. av_log(s->avctx, AV_LOG_INFO, " help! truemotion1 decoder went out of bounds\n"); \
  427. return; \
  428. } \
  429. index = s->index_stream[index_stream_index++] * 4; \
  430. }
  431. #define APPLY_C_PREDICTOR() \
  432. predictor_pair = s->c_predictor_table[index]; \
  433. horiz_pred += (predictor_pair >> 1); \
  434. if (predictor_pair & 1) { \
  435. GET_NEXT_INDEX() \
  436. if (!index) { \
  437. GET_NEXT_INDEX() \
  438. predictor_pair = s->c_predictor_table[index]; \
  439. horiz_pred += ((predictor_pair >> 1) * 5); \
  440. if (predictor_pair & 1) \
  441. GET_NEXT_INDEX() \
  442. else \
  443. index++; \
  444. } \
  445. } else \
  446. index++;
  447. #define APPLY_C_PREDICTOR_24() \
  448. predictor_pair = s->c_predictor_table[index]; \
  449. horiz_pred += (predictor_pair >> 1); \
  450. if (predictor_pair & 1) { \
  451. GET_NEXT_INDEX() \
  452. if (!index) { \
  453. GET_NEXT_INDEX() \
  454. predictor_pair = s->fat_c_predictor_table[index]; \
  455. horiz_pred += (predictor_pair >> 1); \
  456. if (predictor_pair & 1) \
  457. GET_NEXT_INDEX() \
  458. else \
  459. index++; \
  460. } \
  461. } else \
  462. index++;
  463. #define APPLY_Y_PREDICTOR() \
  464. predictor_pair = s->y_predictor_table[index]; \
  465. horiz_pred += (predictor_pair >> 1); \
  466. if (predictor_pair & 1) { \
  467. GET_NEXT_INDEX() \
  468. if (!index) { \
  469. GET_NEXT_INDEX() \
  470. predictor_pair = s->y_predictor_table[index]; \
  471. horiz_pred += ((predictor_pair >> 1) * 5); \
  472. if (predictor_pair & 1) \
  473. GET_NEXT_INDEX() \
  474. else \
  475. index++; \
  476. } \
  477. } else \
  478. index++;
  479. #define APPLY_Y_PREDICTOR_24() \
  480. predictor_pair = s->y_predictor_table[index]; \
  481. horiz_pred += (predictor_pair >> 1); \
  482. if (predictor_pair & 1) { \
  483. GET_NEXT_INDEX() \
  484. if (!index) { \
  485. GET_NEXT_INDEX() \
  486. predictor_pair = s->fat_y_predictor_table[index]; \
  487. horiz_pred += (predictor_pair >> 1); \
  488. if (predictor_pair & 1) \
  489. GET_NEXT_INDEX() \
  490. else \
  491. index++; \
  492. } \
  493. } else \
  494. index++;
  495. #define OUTPUT_PIXEL_PAIR() \
  496. *current_pixel_pair = *vert_pred + horiz_pred; \
  497. *vert_pred++ = *current_pixel_pair++;
  498. static void truemotion1_decode_16bit(TrueMotion1Context *s)
  499. {
  500. int y;
  501. int pixels_left; /* remaining pixels on this line */
  502. unsigned int predictor_pair;
  503. unsigned int horiz_pred;
  504. unsigned int *vert_pred;
  505. unsigned int *current_pixel_pair;
  506. unsigned char *current_line = s->frame.data[0];
  507. int keyframe = s->flags & FLAG_KEYFRAME;
  508. /* these variables are for managing the stream of macroblock change bits */
  509. const unsigned char *mb_change_bits = s->mb_change_bits;
  510. unsigned char mb_change_byte;
  511. unsigned char mb_change_byte_mask;
  512. int mb_change_index;
  513. /* these variables are for managing the main index stream */
  514. int index_stream_index = 0; /* yes, the index into the index stream */
  515. int index;
  516. /* clean out the line buffer */
  517. memset(s->vert_pred, 0, s->avctx->width * sizeof(unsigned int));
  518. GET_NEXT_INDEX();
  519. for (y = 0; y < s->avctx->height; y++) {
  520. /* re-init variables for the next line iteration */
  521. horiz_pred = 0;
  522. current_pixel_pair = (unsigned int *)current_line;
  523. vert_pred = s->vert_pred;
  524. mb_change_index = 0;
  525. mb_change_byte = mb_change_bits[mb_change_index++];
  526. mb_change_byte_mask = 0x01;
  527. pixels_left = s->avctx->width;
  528. while (pixels_left > 0) {
  529. if (keyframe || ((mb_change_byte & mb_change_byte_mask) == 0)) {
  530. switch (y & 3) {
  531. case 0:
  532. /* if macroblock width is 2, apply C-Y-C-Y; else
  533. * apply C-Y-Y */
  534. if (s->block_width == 2) {
  535. APPLY_C_PREDICTOR();
  536. APPLY_Y_PREDICTOR();
  537. OUTPUT_PIXEL_PAIR();
  538. APPLY_C_PREDICTOR();
  539. APPLY_Y_PREDICTOR();
  540. OUTPUT_PIXEL_PAIR();
  541. } else {
  542. APPLY_C_PREDICTOR();
  543. APPLY_Y_PREDICTOR();
  544. OUTPUT_PIXEL_PAIR();
  545. APPLY_Y_PREDICTOR();
  546. OUTPUT_PIXEL_PAIR();
  547. }
  548. break;
  549. case 1:
  550. case 3:
  551. /* always apply 2 Y predictors on these iterations */
  552. APPLY_Y_PREDICTOR();
  553. OUTPUT_PIXEL_PAIR();
  554. APPLY_Y_PREDICTOR();
  555. OUTPUT_PIXEL_PAIR();
  556. break;
  557. case 2:
  558. /* this iteration might be C-Y-C-Y, Y-Y, or C-Y-Y
  559. * depending on the macroblock type */
  560. if (s->block_type == BLOCK_2x2) {
  561. APPLY_C_PREDICTOR();
  562. APPLY_Y_PREDICTOR();
  563. OUTPUT_PIXEL_PAIR();
  564. APPLY_C_PREDICTOR();
  565. APPLY_Y_PREDICTOR();
  566. OUTPUT_PIXEL_PAIR();
  567. } else if (s->block_type == BLOCK_4x2) {
  568. APPLY_C_PREDICTOR();
  569. APPLY_Y_PREDICTOR();
  570. OUTPUT_PIXEL_PAIR();
  571. APPLY_Y_PREDICTOR();
  572. OUTPUT_PIXEL_PAIR();
  573. } else {
  574. APPLY_Y_PREDICTOR();
  575. OUTPUT_PIXEL_PAIR();
  576. APPLY_Y_PREDICTOR();
  577. OUTPUT_PIXEL_PAIR();
  578. }
  579. break;
  580. }
  581. } else {
  582. /* skip (copy) four pixels, but reassign the horizontal
  583. * predictor */
  584. *vert_pred++ = *current_pixel_pair++;
  585. horiz_pred = *current_pixel_pair - *vert_pred;
  586. *vert_pred++ = *current_pixel_pair++;
  587. }
  588. if (!keyframe) {
  589. mb_change_byte_mask <<= 1;
  590. /* next byte */
  591. if (!mb_change_byte_mask) {
  592. mb_change_byte = mb_change_bits[mb_change_index++];
  593. mb_change_byte_mask = 0x01;
  594. }
  595. }
  596. pixels_left -= 4;
  597. }
  598. /* next change row */
  599. if (((y + 1) & 3) == 0)
  600. mb_change_bits += s->mb_change_bits_row_size;
  601. current_line += s->frame.linesize[0];
  602. }
  603. }
  604. static void truemotion1_decode_24bit(TrueMotion1Context *s)
  605. {
  606. int y;
  607. int pixels_left; /* remaining pixels on this line */
  608. unsigned int predictor_pair;
  609. unsigned int horiz_pred;
  610. unsigned int *vert_pred;
  611. unsigned int *current_pixel_pair;
  612. unsigned char *current_line = s->frame.data[0];
  613. int keyframe = s->flags & FLAG_KEYFRAME;
  614. /* these variables are for managing the stream of macroblock change bits */
  615. const unsigned char *mb_change_bits = s->mb_change_bits;
  616. unsigned char mb_change_byte;
  617. unsigned char mb_change_byte_mask;
  618. int mb_change_index;
  619. /* these variables are for managing the main index stream */
  620. int index_stream_index = 0; /* yes, the index into the index stream */
  621. int index;
  622. /* clean out the line buffer */
  623. memset(s->vert_pred, 0, s->avctx->width * sizeof(unsigned int));
  624. GET_NEXT_INDEX();
  625. for (y = 0; y < s->avctx->height; y++) {
  626. /* re-init variables for the next line iteration */
  627. horiz_pred = 0;
  628. current_pixel_pair = (unsigned int *)current_line;
  629. vert_pred = s->vert_pred;
  630. mb_change_index = 0;
  631. mb_change_byte = mb_change_bits[mb_change_index++];
  632. mb_change_byte_mask = 0x01;
  633. pixels_left = s->avctx->width;
  634. while (pixels_left > 0) {
  635. if (keyframe || ((mb_change_byte & mb_change_byte_mask) == 0)) {
  636. switch (y & 3) {
  637. case 0:
  638. /* if macroblock width is 2, apply C-Y-C-Y; else
  639. * apply C-Y-Y */
  640. if (s->block_width == 2) {
  641. APPLY_C_PREDICTOR_24();
  642. APPLY_Y_PREDICTOR_24();
  643. OUTPUT_PIXEL_PAIR();
  644. APPLY_C_PREDICTOR_24();
  645. APPLY_Y_PREDICTOR_24();
  646. OUTPUT_PIXEL_PAIR();
  647. } else {
  648. APPLY_C_PREDICTOR_24();
  649. APPLY_Y_PREDICTOR_24();
  650. OUTPUT_PIXEL_PAIR();
  651. APPLY_Y_PREDICTOR_24();
  652. OUTPUT_PIXEL_PAIR();
  653. }
  654. break;
  655. case 1:
  656. case 3:
  657. /* always apply 2 Y predictors on these iterations */
  658. APPLY_Y_PREDICTOR_24();
  659. OUTPUT_PIXEL_PAIR();
  660. APPLY_Y_PREDICTOR_24();
  661. OUTPUT_PIXEL_PAIR();
  662. break;
  663. case 2:
  664. /* this iteration might be C-Y-C-Y, Y-Y, or C-Y-Y
  665. * depending on the macroblock type */
  666. if (s->block_type == BLOCK_2x2) {
  667. APPLY_C_PREDICTOR_24();
  668. APPLY_Y_PREDICTOR_24();
  669. OUTPUT_PIXEL_PAIR();
  670. APPLY_C_PREDICTOR_24();
  671. APPLY_Y_PREDICTOR_24();
  672. OUTPUT_PIXEL_PAIR();
  673. } else if (s->block_type == BLOCK_4x2) {
  674. APPLY_C_PREDICTOR_24();
  675. APPLY_Y_PREDICTOR_24();
  676. OUTPUT_PIXEL_PAIR();
  677. APPLY_Y_PREDICTOR_24();
  678. OUTPUT_PIXEL_PAIR();
  679. } else {
  680. APPLY_Y_PREDICTOR_24();
  681. OUTPUT_PIXEL_PAIR();
  682. APPLY_Y_PREDICTOR_24();
  683. OUTPUT_PIXEL_PAIR();
  684. }
  685. break;
  686. }
  687. } else {
  688. /* skip (copy) four pixels, but reassign the horizontal
  689. * predictor */
  690. *vert_pred++ = *current_pixel_pair++;
  691. horiz_pred = *current_pixel_pair - *vert_pred;
  692. *vert_pred++ = *current_pixel_pair++;
  693. }
  694. if (!keyframe) {
  695. mb_change_byte_mask <<= 1;
  696. /* next byte */
  697. if (!mb_change_byte_mask) {
  698. mb_change_byte = mb_change_bits[mb_change_index++];
  699. mb_change_byte_mask = 0x01;
  700. }
  701. }
  702. pixels_left -= 4;
  703. }
  704. /* next change row */
  705. if (((y + 1) & 3) == 0)
  706. mb_change_bits += s->mb_change_bits_row_size;
  707. current_line += s->frame.linesize[0];
  708. }
  709. }
  710. static int truemotion1_decode_frame(AVCodecContext *avctx,
  711. void *data, int *data_size,
  712. AVPacket *avpkt)
  713. {
  714. const uint8_t *buf = avpkt->data;
  715. int buf_size = avpkt->size;
  716. TrueMotion1Context *s = avctx->priv_data;
  717. s->buf = buf;
  718. s->size = buf_size;
  719. if (truemotion1_decode_header(s) == -1)
  720. return -1;
  721. s->frame.reference = 1;
  722. s->frame.buffer_hints = FF_BUFFER_HINTS_VALID |
  723. FF_BUFFER_HINTS_PRESERVE | FF_BUFFER_HINTS_REUSABLE;
  724. if (avctx->reget_buffer(avctx, &s->frame) < 0) {
  725. av_log(s->avctx, AV_LOG_ERROR, "get_buffer() failed\n");
  726. return -1;
  727. }
  728. if (compression_types[s->compression].algorithm == ALGO_RGB24H) {
  729. truemotion1_decode_24bit(s);
  730. } else if (compression_types[s->compression].algorithm != ALGO_NOP) {
  731. truemotion1_decode_16bit(s);
  732. }
  733. *data_size = sizeof(AVFrame);
  734. *(AVFrame*)data = s->frame;
  735. /* report that the buffer was completely consumed */
  736. return buf_size;
  737. }
  738. static av_cold int truemotion1_decode_end(AVCodecContext *avctx)
  739. {
  740. TrueMotion1Context *s = avctx->priv_data;
  741. if (s->frame.data[0])
  742. avctx->release_buffer(avctx, &s->frame);
  743. av_free(s->vert_pred);
  744. return 0;
  745. }
  746. AVCodec truemotion1_decoder = {
  747. "truemotion1",
  748. AVMEDIA_TYPE_VIDEO,
  749. CODEC_ID_TRUEMOTION1,
  750. sizeof(TrueMotion1Context),
  751. truemotion1_decode_init,
  752. NULL,
  753. truemotion1_decode_end,
  754. truemotion1_decode_frame,
  755. CODEC_CAP_DR1,
  756. .long_name = NULL_IF_CONFIG_SMALL("Duck TrueMotion 1.0"),
  757. };