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  1. /*
  2. * VC-1 and WMV3 decoder
  3. * Copyright (c) 2006 Konstantin Shishkov
  4. * Partly based on vc9.c (c) 2005 Anonymous, Alex Beregszaszi, Michael Niedermayer
  5. *
  6. * This library is free software; you can redistribute it and/or
  7. * modify it under the terms of the GNU Lesser General Public
  8. * License as published by the Free Software Foundation; either
  9. * version 2 of the License, or (at your option) any later version.
  10. *
  11. * This library 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 GNU
  14. * Lesser General Public License for more details.
  15. *
  16. * You should have received a copy of the GNU Lesser General Public
  17. * License along with this library; if not, write to the Free Software
  18. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  19. *
  20. */
  21. /**
  22. * @file vc1.c
  23. * VC-1 and WMV3 decoder
  24. *
  25. */
  26. #include "common.h"
  27. #include "dsputil.h"
  28. #include "avcodec.h"
  29. #include "mpegvideo.h"
  30. #include "vc1data.h"
  31. #include "vc1acdata.h"
  32. #undef NDEBUG
  33. #include <assert.h>
  34. extern const uint32_t ff_table0_dc_lum[120][2], ff_table1_dc_lum[120][2];
  35. extern const uint32_t ff_table0_dc_chroma[120][2], ff_table1_dc_chroma[120][2];
  36. extern VLC ff_msmp4_dc_luma_vlc[2], ff_msmp4_dc_chroma_vlc[2];
  37. #define MB_INTRA_VLC_BITS 9
  38. extern VLC ff_msmp4_mb_i_vlc;
  39. extern const uint16_t ff_msmp4_mb_i_table[64][2];
  40. #define DC_VLC_BITS 9
  41. #define AC_VLC_BITS 9
  42. static const uint16_t table_mb_intra[64][2];
  43. /** Available Profiles */
  44. //@{
  45. enum Profile {
  46. PROFILE_SIMPLE,
  47. PROFILE_MAIN,
  48. PROFILE_COMPLEX, ///< TODO: WMV9 specific
  49. PROFILE_ADVANCED
  50. };
  51. //@}
  52. /** Sequence quantizer mode */
  53. //@{
  54. enum QuantMode {
  55. QUANT_FRAME_IMPLICIT, ///< Implicitly specified at frame level
  56. QUANT_FRAME_EXPLICIT, ///< Explicitly specified at frame level
  57. QUANT_NON_UNIFORM, ///< Non-uniform quant used for all frames
  58. QUANT_UNIFORM ///< Uniform quant used for all frames
  59. };
  60. //@}
  61. /** Where quant can be changed */
  62. //@{
  63. enum DQProfile {
  64. DQPROFILE_FOUR_EDGES,
  65. DQPROFILE_DOUBLE_EDGES,
  66. DQPROFILE_SINGLE_EDGE,
  67. DQPROFILE_ALL_MBS
  68. };
  69. //@}
  70. /** @name Where quant can be changed
  71. */
  72. //@{
  73. enum DQSingleEdge {
  74. DQSINGLE_BEDGE_LEFT,
  75. DQSINGLE_BEDGE_TOP,
  76. DQSINGLE_BEDGE_RIGHT,
  77. DQSINGLE_BEDGE_BOTTOM
  78. };
  79. //@}
  80. /** Which pair of edges is quantized with ALTPQUANT */
  81. //@{
  82. enum DQDoubleEdge {
  83. DQDOUBLE_BEDGE_TOPLEFT,
  84. DQDOUBLE_BEDGE_TOPRIGHT,
  85. DQDOUBLE_BEDGE_BOTTOMRIGHT,
  86. DQDOUBLE_BEDGE_BOTTOMLEFT
  87. };
  88. //@}
  89. /** MV modes for P frames */
  90. //@{
  91. enum MVModes {
  92. MV_PMODE_1MV_HPEL_BILIN,
  93. MV_PMODE_1MV,
  94. MV_PMODE_1MV_HPEL,
  95. MV_PMODE_MIXED_MV,
  96. MV_PMODE_INTENSITY_COMP
  97. };
  98. //@}
  99. /** @name MV types for B frames */
  100. //@{
  101. enum BMVTypes {
  102. BMV_TYPE_BACKWARD,
  103. BMV_TYPE_FORWARD,
  104. BMV_TYPE_INTERPOLATED = 3 //XXX: ??
  105. };
  106. //@}
  107. /** @name Block types for P/B frames */
  108. //@{
  109. enum TransformTypes {
  110. TT_8X8,
  111. TT_8X4_BOTTOM,
  112. TT_8X4_TOP,
  113. TT_8X4, //Both halves
  114. TT_4X8_RIGHT,
  115. TT_4X8_LEFT,
  116. TT_4X8, //Both halves
  117. TT_4X4
  118. };
  119. //@}
  120. /** Table for conversion between TTBLK and TTMB */
  121. static const int ttblk_to_tt[3][8] = {
  122. { TT_8X4, TT_4X8, TT_8X8, TT_4X4, TT_8X4_TOP, TT_8X4_BOTTOM, TT_4X8_RIGHT, TT_4X8_LEFT },
  123. { TT_8X8, TT_4X8_RIGHT, TT_4X8_LEFT, TT_4X4, TT_8X4, TT_4X8, TT_8X4_BOTTOM, TT_8X4_TOP },
  124. { TT_8X8, TT_4X8, TT_4X4, TT_8X4_BOTTOM, TT_4X8_RIGHT, TT_4X8_LEFT, TT_8X4, TT_8X4_TOP }
  125. };
  126. static const int ttfrm_to_tt[4] = { TT_8X8, TT_8X4, TT_4X8, TT_4X4 };
  127. /** MV P mode - the 5th element is only used for mode 1 */
  128. static const uint8_t mv_pmode_table[2][5] = {
  129. { MV_PMODE_1MV_HPEL_BILIN, MV_PMODE_1MV, MV_PMODE_1MV_HPEL, MV_PMODE_INTENSITY_COMP, MV_PMODE_MIXED_MV },
  130. { MV_PMODE_1MV, MV_PMODE_MIXED_MV, MV_PMODE_1MV_HPEL, MV_PMODE_INTENSITY_COMP, MV_PMODE_1MV_HPEL_BILIN }
  131. };
  132. static const uint8_t mv_pmode_table2[2][4] = {
  133. { MV_PMODE_1MV_HPEL_BILIN, MV_PMODE_1MV, MV_PMODE_1MV_HPEL, MV_PMODE_MIXED_MV },
  134. { MV_PMODE_1MV, MV_PMODE_MIXED_MV, MV_PMODE_1MV_HPEL, MV_PMODE_1MV_HPEL_BILIN }
  135. };
  136. /** One more frame type */
  137. #define BI_TYPE 7
  138. static const int fps_nr[5] = { 24, 25, 30, 50, 60 },
  139. fps_dr[2] = { 1000, 1001 };
  140. static const uint8_t pquant_table[3][32] = {
  141. { /* Implicit quantizer */
  142. 0, 1, 2, 3, 4, 5, 6, 7, 8, 6, 7, 8, 9, 10, 11, 12,
  143. 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 27, 29, 31
  144. },
  145. { /* Explicit quantizer, pquantizer uniform */
  146. 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15,
  147. 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31
  148. },
  149. { /* Explicit quantizer, pquantizer non-uniform */
  150. 0, 1, 1, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13,
  151. 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 29, 31
  152. }
  153. };
  154. /** @name VC-1 VLC tables and defines
  155. * @todo TODO move this into the context
  156. */
  157. //@{
  158. #define VC1_BFRACTION_VLC_BITS 7
  159. static VLC vc1_bfraction_vlc;
  160. #define VC1_IMODE_VLC_BITS 4
  161. static VLC vc1_imode_vlc;
  162. #define VC1_NORM2_VLC_BITS 3
  163. static VLC vc1_norm2_vlc;
  164. #define VC1_NORM6_VLC_BITS 9
  165. static VLC vc1_norm6_vlc;
  166. /* Could be optimized, one table only needs 8 bits */
  167. #define VC1_TTMB_VLC_BITS 9 //12
  168. static VLC vc1_ttmb_vlc[3];
  169. #define VC1_MV_DIFF_VLC_BITS 9 //15
  170. static VLC vc1_mv_diff_vlc[4];
  171. #define VC1_CBPCY_P_VLC_BITS 9 //14
  172. static VLC vc1_cbpcy_p_vlc[4];
  173. #define VC1_4MV_BLOCK_PATTERN_VLC_BITS 6
  174. static VLC vc1_4mv_block_pattern_vlc[4];
  175. #define VC1_TTBLK_VLC_BITS 5
  176. static VLC vc1_ttblk_vlc[3];
  177. #define VC1_SUBBLKPAT_VLC_BITS 6
  178. static VLC vc1_subblkpat_vlc[3];
  179. static VLC vc1_ac_coeff_table[8];
  180. //@}
  181. enum CodingSet {
  182. CS_HIGH_MOT_INTRA = 0,
  183. CS_HIGH_MOT_INTER,
  184. CS_LOW_MOT_INTRA,
  185. CS_LOW_MOT_INTER,
  186. CS_MID_RATE_INTRA,
  187. CS_MID_RATE_INTER,
  188. CS_HIGH_RATE_INTRA,
  189. CS_HIGH_RATE_INTER
  190. };
  191. /** The VC1 Context
  192. * @fixme Change size wherever another size is more efficient
  193. * Many members are only used for Advanced Profile
  194. */
  195. typedef struct VC1Context{
  196. MpegEncContext s;
  197. int bits;
  198. /** Simple/Main Profile sequence header */
  199. //@{
  200. int res_sm; ///< reserved, 2b
  201. int res_x8; ///< reserved
  202. int multires; ///< frame-level RESPIC syntax element present
  203. int res_fasttx; ///< reserved, always 1
  204. int res_transtab; ///< reserved, always 0
  205. int rangered; ///< RANGEREDFRM (range reduction) syntax element present
  206. ///< at frame level
  207. int res_rtm_flag; ///< reserved, set to 1
  208. int reserved; ///< reserved
  209. //@}
  210. /** Advanced Profile */
  211. //@{
  212. int level; ///< 3bits, for Advanced/Simple Profile, provided by TS layer
  213. int chromaformat; ///< 2bits, 2=4:2:0, only defined
  214. int postprocflag; ///< Per-frame processing suggestion flag present
  215. int broadcast; ///< TFF/RFF present
  216. int interlace; ///< Progressive/interlaced (RPTFTM syntax element)
  217. int tfcntrflag; ///< TFCNTR present
  218. int panscanflag; ///< NUMPANSCANWIN, TOPLEFT{X,Y}, BOTRIGHT{X,Y} present
  219. int extended_dmv; ///< Additional extended dmv range at P/B frame-level
  220. int color_prim; ///< 8bits, chroma coordinates of the color primaries
  221. int transfer_char; ///< 8bits, Opto-electronic transfer characteristics
  222. int matrix_coef; ///< 8bits, Color primaries->YCbCr transform matrix
  223. int hrd_param_flag; ///< Presence of Hypothetical Reference
  224. ///< Decoder parameters
  225. //@}
  226. /** Sequence header data for all Profiles
  227. * TODO: choose between ints, uint8_ts and monobit flags
  228. */
  229. //@{
  230. int profile; ///< 2bits, Profile
  231. int frmrtq_postproc; ///< 3bits,
  232. int bitrtq_postproc; ///< 5bits, quantized framerate-based postprocessing strength
  233. int fastuvmc; ///< Rounding of qpel vector to hpel ? (not in Simple)
  234. int extended_mv; ///< Ext MV in P/B (not in Simple)
  235. int dquant; ///< How qscale varies with MBs, 2bits (not in Simple)
  236. int vstransform; ///< variable-size [48]x[48] transform type + info
  237. int overlap; ///< overlapped transforms in use
  238. int quantizer_mode; ///< 2bits, quantizer mode used for sequence, see QUANT_*
  239. int finterpflag; ///< INTERPFRM present
  240. //@}
  241. /** Frame decoding info for all profiles */
  242. //@{
  243. uint8_t mv_mode; ///< MV coding monde
  244. uint8_t mv_mode2; ///< Secondary MV coding mode (B frames)
  245. int k_x; ///< Number of bits for MVs (depends on MV range)
  246. int k_y; ///< Number of bits for MVs (depends on MV range)
  247. int range_x, range_y; ///< MV range
  248. uint8_t pq, altpq; ///< Current/alternate frame quantizer scale
  249. /** pquant parameters */
  250. //@{
  251. uint8_t dquantfrm;
  252. uint8_t dqprofile;
  253. uint8_t dqsbedge;
  254. uint8_t dqbilevel;
  255. //@}
  256. /** AC coding set indexes
  257. * @see 8.1.1.10, p(1)10
  258. */
  259. //@{
  260. int c_ac_table_index; ///< Chroma index from ACFRM element
  261. int y_ac_table_index; ///< Luma index from AC2FRM element
  262. //@}
  263. int ttfrm; ///< Transform type info present at frame level
  264. uint8_t ttmbf; ///< Transform type flag
  265. uint8_t ttblk4x4; ///< Value of ttblk which indicates a 4x4 transform
  266. int codingset; ///< index of current table set from 11.8 to use for luma block decoding
  267. int codingset2; ///< index of current table set from 11.8 to use for chroma block decoding
  268. int pqindex; ///< raw pqindex used in coding set selection
  269. int a_avail, c_avail;
  270. uint8_t *mb_type_base, *mb_type[3];
  271. /** Luma compensation parameters */
  272. //@{
  273. uint8_t lumscale;
  274. uint8_t lumshift;
  275. //@}
  276. int16_t bfraction; ///< Relative position % anchors=> how to scale MVs
  277. uint8_t halfpq; ///< Uniform quant over image and qp+.5
  278. uint8_t respic; ///< Frame-level flag for resized images
  279. int buffer_fullness; ///< HRD info
  280. /** Ranges:
  281. * -# 0 -> [-64n 63.f] x [-32, 31.f]
  282. * -# 1 -> [-128, 127.f] x [-64, 63.f]
  283. * -# 2 -> [-512, 511.f] x [-128, 127.f]
  284. * -# 3 -> [-1024, 1023.f] x [-256, 255.f]
  285. */
  286. uint8_t mvrange;
  287. uint8_t pquantizer; ///< Uniform (over sequence) quantizer in use
  288. VLC *cbpcy_vlc; ///< CBPCY VLC table
  289. int tt_index; ///< Index for Transform Type tables
  290. uint8_t* mv_type_mb_plane; ///< bitplane for mv_type == (4MV)
  291. // BitPlane direct_mb_plane; ///< bitplane for "direct" MBs
  292. int mv_type_is_raw; ///< mv type mb plane is not coded
  293. int skip_is_raw; ///< skip mb plane is not coded
  294. uint8_t luty[256], lutuv[256]; // lookup tables used for intensity compensation
  295. /** Frame decoding info for S/M profiles only */
  296. //@{
  297. uint8_t rangeredfrm; ///< out_sample = CLIP((in_sample-128)*2+128)
  298. uint8_t interpfrm;
  299. //@}
  300. /** Frame decoding info for Advanced profile */
  301. //@{
  302. uint8_t fcm; ///< 0->Progressive, 2->Frame-Interlace, 3->Field-Interlace
  303. uint8_t numpanscanwin;
  304. uint8_t tfcntr;
  305. uint8_t rptfrm, tff, rff;
  306. uint16_t topleftx;
  307. uint16_t toplefty;
  308. uint16_t bottomrightx;
  309. uint16_t bottomrighty;
  310. uint8_t uvsamp;
  311. uint8_t postproc;
  312. int hrd_num_leaky_buckets;
  313. uint8_t bit_rate_exponent;
  314. uint8_t buffer_size_exponent;
  315. // BitPlane ac_pred_plane; ///< AC prediction flags bitplane
  316. // BitPlane over_flags_plane; ///< Overflags bitplane
  317. uint8_t condover;
  318. uint16_t *hrd_rate, *hrd_buffer;
  319. uint8_t *hrd_fullness;
  320. uint8_t range_mapy_flag;
  321. uint8_t range_mapuv_flag;
  322. uint8_t range_mapy;
  323. uint8_t range_mapuv;
  324. //@}
  325. } VC1Context;
  326. /**
  327. * Get unary code of limited length
  328. * @fixme FIXME Slow and ugly
  329. * @param gb GetBitContext
  330. * @param[in] stop The bitstop value (unary code of 1's or 0's)
  331. * @param[in] len Maximum length
  332. * @return Unary length/index
  333. */
  334. static int get_prefix(GetBitContext *gb, int stop, int len)
  335. {
  336. #if 1
  337. int i;
  338. for(i = 0; i < len && get_bits1(gb) != stop; i++);
  339. return i;
  340. /* int i = 0, tmp = !stop;
  341. while (i != len && tmp != stop)
  342. {
  343. tmp = get_bits(gb, 1);
  344. i++;
  345. }
  346. if (i == len && tmp != stop) return len+1;
  347. return i;*/
  348. #else
  349. unsigned int buf;
  350. int log;
  351. OPEN_READER(re, gb);
  352. UPDATE_CACHE(re, gb);
  353. buf=GET_CACHE(re, gb); //Still not sure
  354. if (stop) buf = ~buf;
  355. log= av_log2(-buf); //FIXME: -?
  356. if (log < limit){
  357. LAST_SKIP_BITS(re, gb, log+1);
  358. CLOSE_READER(re, gb);
  359. return log;
  360. }
  361. LAST_SKIP_BITS(re, gb, limit);
  362. CLOSE_READER(re, gb);
  363. return limit;
  364. #endif
  365. }
  366. static inline int decode210(GetBitContext *gb){
  367. int n;
  368. n = get_bits1(gb);
  369. if (n == 1)
  370. return 0;
  371. else
  372. return 2 - get_bits1(gb);
  373. }
  374. /**
  375. * Init VC-1 specific tables and VC1Context members
  376. * @param v The VC1Context to initialize
  377. * @return Status
  378. */
  379. static int vc1_init_common(VC1Context *v)
  380. {
  381. static int done = 0;
  382. int i = 0;
  383. v->hrd_rate = v->hrd_buffer = NULL;
  384. /* VLC tables */
  385. if(!done)
  386. {
  387. done = 1;
  388. init_vlc(&vc1_bfraction_vlc, VC1_BFRACTION_VLC_BITS, 23,
  389. vc1_bfraction_bits, 1, 1,
  390. vc1_bfraction_codes, 1, 1, 1);
  391. init_vlc(&vc1_norm2_vlc, VC1_NORM2_VLC_BITS, 4,
  392. vc1_norm2_bits, 1, 1,
  393. vc1_norm2_codes, 1, 1, 1);
  394. init_vlc(&vc1_norm6_vlc, VC1_NORM6_VLC_BITS, 64,
  395. vc1_norm6_bits, 1, 1,
  396. vc1_norm6_codes, 2, 2, 1);
  397. init_vlc(&vc1_imode_vlc, VC1_IMODE_VLC_BITS, 7,
  398. vc1_imode_bits, 1, 1,
  399. vc1_imode_codes, 1, 1, 1);
  400. for (i=0; i<3; i++)
  401. {
  402. init_vlc(&vc1_ttmb_vlc[i], VC1_TTMB_VLC_BITS, 16,
  403. vc1_ttmb_bits[i], 1, 1,
  404. vc1_ttmb_codes[i], 2, 2, 1);
  405. init_vlc(&vc1_ttblk_vlc[i], VC1_TTBLK_VLC_BITS, 8,
  406. vc1_ttblk_bits[i], 1, 1,
  407. vc1_ttblk_codes[i], 1, 1, 1);
  408. init_vlc(&vc1_subblkpat_vlc[i], VC1_SUBBLKPAT_VLC_BITS, 15,
  409. vc1_subblkpat_bits[i], 1, 1,
  410. vc1_subblkpat_codes[i], 1, 1, 1);
  411. }
  412. for(i=0; i<4; i++)
  413. {
  414. init_vlc(&vc1_4mv_block_pattern_vlc[i], VC1_4MV_BLOCK_PATTERN_VLC_BITS, 16,
  415. vc1_4mv_block_pattern_bits[i], 1, 1,
  416. vc1_4mv_block_pattern_codes[i], 1, 1, 1);
  417. init_vlc(&vc1_cbpcy_p_vlc[i], VC1_CBPCY_P_VLC_BITS, 64,
  418. vc1_cbpcy_p_bits[i], 1, 1,
  419. vc1_cbpcy_p_codes[i], 2, 2, 1);
  420. init_vlc(&vc1_mv_diff_vlc[i], VC1_MV_DIFF_VLC_BITS, 73,
  421. vc1_mv_diff_bits[i], 1, 1,
  422. vc1_mv_diff_codes[i], 2, 2, 1);
  423. }
  424. for(i=0; i<8; i++)
  425. init_vlc(&vc1_ac_coeff_table[i], AC_VLC_BITS, vc1_ac_sizes[i],
  426. &vc1_ac_tables[i][0][1], 8, 4,
  427. &vc1_ac_tables[i][0][0], 8, 4, 1);
  428. init_vlc(&ff_msmp4_mb_i_vlc, MB_INTRA_VLC_BITS, 64,
  429. &ff_msmp4_mb_i_table[0][1], 4, 2,
  430. &ff_msmp4_mb_i_table[0][0], 4, 2, 1);
  431. }
  432. /* Other defaults */
  433. v->pq = -1;
  434. v->mvrange = 0; /* 7.1.1.18, p80 */
  435. return 0;
  436. }
  437. /***********************************************************************/
  438. /**
  439. * @defgroup bitplane VC9 Bitplane decoding
  440. * @see 8.7, p56
  441. * @{
  442. */
  443. /** @addtogroup bitplane
  444. * Imode types
  445. * @{
  446. */
  447. enum Imode {
  448. IMODE_RAW,
  449. IMODE_NORM2,
  450. IMODE_DIFF2,
  451. IMODE_NORM6,
  452. IMODE_DIFF6,
  453. IMODE_ROWSKIP,
  454. IMODE_COLSKIP
  455. };
  456. /** @} */ //imode defines
  457. /** Decode rows by checking if they are skipped
  458. * @param plane Buffer to store decoded bits
  459. * @param[in] width Width of this buffer
  460. * @param[in] height Height of this buffer
  461. * @param[in] stride of this buffer
  462. */
  463. static void decode_rowskip(uint8_t* plane, int width, int height, int stride, GetBitContext *gb){
  464. int x, y;
  465. for (y=0; y<height; y++){
  466. if (!get_bits(gb, 1)) //rowskip
  467. memset(plane, 0, width);
  468. else
  469. for (x=0; x<width; x++)
  470. plane[x] = get_bits(gb, 1);
  471. plane += stride;
  472. }
  473. }
  474. /** Decode columns by checking if they are skipped
  475. * @param plane Buffer to store decoded bits
  476. * @param[in] width Width of this buffer
  477. * @param[in] height Height of this buffer
  478. * @param[in] stride of this buffer
  479. * @fixme FIXME: Optimize
  480. */
  481. static void decode_colskip(uint8_t* plane, int width, int height, int stride, GetBitContext *gb){
  482. int x, y;
  483. for (x=0; x<width; x++){
  484. if (!get_bits(gb, 1)) //colskip
  485. for (y=0; y<height; y++)
  486. plane[y*stride] = 0;
  487. else
  488. for (y=0; y<height; y++)
  489. plane[y*stride] = get_bits(gb, 1);
  490. plane ++;
  491. }
  492. }
  493. /** Decode a bitplane's bits
  494. * @param bp Bitplane where to store the decode bits
  495. * @param v VC-1 context for bit reading and logging
  496. * @return Status
  497. * @fixme FIXME: Optimize
  498. * @todo TODO: Decide if a struct is needed
  499. */
  500. static int bitplane_decoding(uint8_t* data, int *raw_flag, VC1Context *v)
  501. {
  502. GetBitContext *gb = &v->s.gb;
  503. int imode, x, y, code, offset;
  504. uint8_t invert, *planep = data;
  505. int width, height, stride;
  506. width = v->s.mb_width;
  507. height = v->s.mb_height;
  508. stride = v->s.mb_stride;
  509. invert = get_bits(gb, 1);
  510. imode = get_vlc2(gb, vc1_imode_vlc.table, VC1_IMODE_VLC_BITS, 1);
  511. *raw_flag = 0;
  512. switch (imode)
  513. {
  514. case IMODE_RAW:
  515. //Data is actually read in the MB layer (same for all tests == "raw")
  516. *raw_flag = 1; //invert ignored
  517. return invert;
  518. case IMODE_DIFF2:
  519. case IMODE_NORM2:
  520. if ((height * width) & 1)
  521. {
  522. *planep++ = get_bits(gb, 1);
  523. offset = 1;
  524. }
  525. else offset = 0;
  526. // decode bitplane as one long line
  527. for (y = offset; y < height * width; y += 2) {
  528. code = get_vlc2(gb, vc1_norm2_vlc.table, VC1_NORM2_VLC_BITS, 1);
  529. *planep++ = code & 1;
  530. offset++;
  531. if(offset == width) {
  532. offset = 0;
  533. planep += stride - width;
  534. }
  535. *planep++ = code >> 1;
  536. offset++;
  537. if(offset == width) {
  538. offset = 0;
  539. planep += stride - width;
  540. }
  541. }
  542. break;
  543. case IMODE_DIFF6:
  544. case IMODE_NORM6:
  545. if(!(height % 3) && (width % 3)) { // use 2x3 decoding
  546. for(y = 0; y < height; y+= 3) {
  547. for(x = width & 1; x < width; x += 2) {
  548. code = get_vlc2(gb, vc1_norm6_vlc.table, VC1_NORM6_VLC_BITS, 2);
  549. if(code < 0){
  550. av_log(v->s.avctx, AV_LOG_DEBUG, "invalid NORM-6 VLC\n");
  551. return -1;
  552. }
  553. planep[x + 0] = (code >> 0) & 1;
  554. planep[x + 1] = (code >> 1) & 1;
  555. planep[x + 0 + stride] = (code >> 2) & 1;
  556. planep[x + 1 + stride] = (code >> 3) & 1;
  557. planep[x + 0 + stride * 2] = (code >> 4) & 1;
  558. planep[x + 1 + stride * 2] = (code >> 5) & 1;
  559. }
  560. planep += stride * 3;
  561. }
  562. if(width & 1) decode_colskip(data, 1, height, stride, &v->s.gb);
  563. } else { // 3x2
  564. planep += (height & 1) * stride;
  565. for(y = height & 1; y < height; y += 2) {
  566. for(x = width % 3; x < width; x += 3) {
  567. code = get_vlc2(gb, vc1_norm6_vlc.table, VC1_NORM6_VLC_BITS, 2);
  568. if(code < 0){
  569. av_log(v->s.avctx, AV_LOG_DEBUG, "invalid NORM-6 VLC\n");
  570. return -1;
  571. }
  572. planep[x + 0] = (code >> 0) & 1;
  573. planep[x + 1] = (code >> 1) & 1;
  574. planep[x + 2] = (code >> 2) & 1;
  575. planep[x + 0 + stride] = (code >> 3) & 1;
  576. planep[x + 1 + stride] = (code >> 4) & 1;
  577. planep[x + 2 + stride] = (code >> 5) & 1;
  578. }
  579. planep += stride * 2;
  580. }
  581. x = width % 3;
  582. if(x) decode_colskip(data , x, height , stride, &v->s.gb);
  583. if(height & 1) decode_rowskip(data+x, width - x, 1, stride, &v->s.gb);
  584. }
  585. break;
  586. case IMODE_ROWSKIP:
  587. decode_rowskip(data, width, height, stride, &v->s.gb);
  588. break;
  589. case IMODE_COLSKIP:
  590. decode_colskip(data, width, height, stride, &v->s.gb);
  591. break;
  592. default: break;
  593. }
  594. /* Applying diff operator */
  595. if (imode == IMODE_DIFF2 || imode == IMODE_DIFF6)
  596. {
  597. planep = data;
  598. planep[0] ^= invert;
  599. for (x=1; x<width; x++)
  600. planep[x] ^= planep[x-1];
  601. for (y=1; y<height; y++)
  602. {
  603. planep += stride;
  604. planep[0] ^= planep[-stride];
  605. for (x=1; x<width; x++)
  606. {
  607. if (planep[x-1] != planep[x-stride]) planep[x] ^= invert;
  608. else planep[x] ^= planep[x-1];
  609. }
  610. }
  611. }
  612. else if (invert)
  613. {
  614. planep = data;
  615. for (x=0; x<stride*height; x++) planep[x] = !planep[x]; //FIXME stride
  616. }
  617. return (imode<<1) + invert;
  618. }
  619. /** @} */ //Bitplane group
  620. /***********************************************************************/
  621. /** VOP Dquant decoding
  622. * @param v VC-1 Context
  623. */
  624. static int vop_dquant_decoding(VC1Context *v)
  625. {
  626. GetBitContext *gb = &v->s.gb;
  627. int pqdiff;
  628. //variable size
  629. if (v->dquant == 2)
  630. {
  631. pqdiff = get_bits(gb, 3);
  632. if (pqdiff == 7) v->altpq = get_bits(gb, 5);
  633. else v->altpq = v->pq + pqdiff + 1;
  634. }
  635. else
  636. {
  637. v->dquantfrm = get_bits(gb, 1);
  638. if ( v->dquantfrm )
  639. {
  640. v->dqprofile = get_bits(gb, 2);
  641. switch (v->dqprofile)
  642. {
  643. case DQPROFILE_SINGLE_EDGE:
  644. case DQPROFILE_DOUBLE_EDGES:
  645. v->dqsbedge = get_bits(gb, 2);
  646. break;
  647. case DQPROFILE_ALL_MBS:
  648. v->dqbilevel = get_bits(gb, 1);
  649. default: break; //Forbidden ?
  650. }
  651. if (!v->dqbilevel || v->dqprofile != DQPROFILE_ALL_MBS)
  652. {
  653. pqdiff = get_bits(gb, 3);
  654. if (pqdiff == 7) v->altpq = get_bits(gb, 5);
  655. else v->altpq = v->pq + pqdiff + 1;
  656. }
  657. }
  658. }
  659. return 0;
  660. }
  661. /** Do inverse transform
  662. */
  663. static void vc1_inv_trans(DCTELEM block[64], int M, int N)
  664. {
  665. int i;
  666. register int t1,t2,t3,t4,t5,t6,t7,t8;
  667. DCTELEM *src, *dst;
  668. src = block;
  669. dst = block;
  670. if(M==4){
  671. for(i = 0; i < N; i++){
  672. t1 = 17 * (src[0] + src[2]);
  673. t2 = 17 * (src[0] - src[2]);
  674. t3 = 22 * src[1];
  675. t4 = 22 * src[3];
  676. t5 = 10 * src[1];
  677. t6 = 10 * src[3];
  678. dst[0] = (t1 + t3 + t6 + 4) >> 3;
  679. dst[1] = (t2 - t4 + t5 + 4) >> 3;
  680. dst[2] = (t2 + t4 - t5 + 4) >> 3;
  681. dst[3] = (t1 - t3 - t6 + 4) >> 3;
  682. src += 8;
  683. dst += 8;
  684. }
  685. }else{
  686. for(i = 0; i < N; i++){
  687. t1 = 12 * (src[0] + src[4]);
  688. t2 = 12 * (src[0] - src[4]);
  689. t3 = 16 * src[2] + 6 * src[6];
  690. t4 = 6 * src[2] - 16 * src[6];
  691. t5 = t1 + t3;
  692. t6 = t2 + t4;
  693. t7 = t2 - t4;
  694. t8 = t1 - t3;
  695. t1 = 16 * src[1] + 15 * src[3] + 9 * src[5] + 4 * src[7];
  696. t2 = 15 * src[1] - 4 * src[3] - 16 * src[5] - 9 * src[7];
  697. t3 = 9 * src[1] - 16 * src[3] + 4 * src[5] + 15 * src[7];
  698. t4 = 4 * src[1] - 9 * src[3] + 15 * src[5] - 16 * src[7];
  699. dst[0] = (t5 + t1 + 4) >> 3;
  700. dst[1] = (t6 + t2 + 4) >> 3;
  701. dst[2] = (t7 + t3 + 4) >> 3;
  702. dst[3] = (t8 + t4 + 4) >> 3;
  703. dst[4] = (t8 - t4 + 4) >> 3;
  704. dst[5] = (t7 - t3 + 4) >> 3;
  705. dst[6] = (t6 - t2 + 4) >> 3;
  706. dst[7] = (t5 - t1 + 4) >> 3;
  707. src += 8;
  708. dst += 8;
  709. }
  710. }
  711. src = block;
  712. dst = block;
  713. if(N==4){
  714. for(i = 0; i < M; i++){
  715. t1 = 17 * (src[ 0] + src[16]);
  716. t2 = 17 * (src[ 0] - src[16]);
  717. t3 = 22 * src[ 8];
  718. t4 = 22 * src[24];
  719. t5 = 10 * src[ 8];
  720. t6 = 10 * src[24];
  721. dst[ 0] = (t1 + t3 + t6 + 64) >> 7;
  722. dst[ 8] = (t2 - t4 + t5 + 64) >> 7;
  723. dst[16] = (t2 + t4 - t5 + 64) >> 7;
  724. dst[24] = (t1 - t3 - t6 + 64) >> 7;
  725. src ++;
  726. dst ++;
  727. }
  728. }else{
  729. for(i = 0; i < M; i++){
  730. t1 = 12 * (src[ 0] + src[32]);
  731. t2 = 12 * (src[ 0] - src[32]);
  732. t3 = 16 * src[16] + 6 * src[48];
  733. t4 = 6 * src[16] - 16 * src[48];
  734. t5 = t1 + t3;
  735. t6 = t2 + t4;
  736. t7 = t2 - t4;
  737. t8 = t1 - t3;
  738. t1 = 16 * src[ 8] + 15 * src[24] + 9 * src[40] + 4 * src[56];
  739. t2 = 15 * src[ 8] - 4 * src[24] - 16 * src[40] - 9 * src[56];
  740. t3 = 9 * src[ 8] - 16 * src[24] + 4 * src[40] + 15 * src[56];
  741. t4 = 4 * src[ 8] - 9 * src[24] + 15 * src[40] - 16 * src[56];
  742. dst[ 0] = (t5 + t1 + 64) >> 7;
  743. dst[ 8] = (t6 + t2 + 64) >> 7;
  744. dst[16] = (t7 + t3 + 64) >> 7;
  745. dst[24] = (t8 + t4 + 64) >> 7;
  746. dst[32] = (t8 - t4 + 64 + 1) >> 7;
  747. dst[40] = (t7 - t3 + 64 + 1) >> 7;
  748. dst[48] = (t6 - t2 + 64 + 1) >> 7;
  749. dst[56] = (t5 - t1 + 64 + 1) >> 7;
  750. src++;
  751. dst++;
  752. }
  753. }
  754. }
  755. /** Apply overlap transform
  756. * @todo optimize
  757. * @todo move to DSPContext
  758. */
  759. static void vc1_overlap_block(MpegEncContext *s, DCTELEM block[64], int n, int do_hor, int do_vert)
  760. {
  761. int i;
  762. if(do_hor) { //TODO
  763. }
  764. if(do_vert) { //TODO
  765. }
  766. for(i = 0; i < 64; i++)
  767. block[i] += 128;
  768. }
  769. static void vc1_v_overlap(uint8_t* src, int stride)
  770. {
  771. int i;
  772. int a, b, c, d;
  773. for(i = 0; i < 8; i++) {
  774. a = src[-2*stride];
  775. b = src[-stride];
  776. c = src[0];
  777. d = src[stride];
  778. src[-2*stride] = clip_uint8((7*a + d + 3) >> 3);
  779. src[-stride] = clip_uint8((-a + 7*b + c + d + 3) >> 3);
  780. src[0] = clip_uint8((a + b + 7*c - d + 3) >> 3);
  781. src[stride] = clip_uint8((a + 7*d + 3) >> 3);
  782. src++;
  783. }
  784. }
  785. static void vc1_h_overlap(uint8_t* src, int stride)
  786. {
  787. int i;
  788. int a, b, c, d;
  789. for(i = 0; i < 8; i++) {
  790. a = src[-2];
  791. b = src[-1];
  792. c = src[0];
  793. d = src[1];
  794. src[-2] = clip_uint8((7*a + d + 3) >> 3);
  795. src[-1] = clip_uint8((-a + 7*b + c + d + 3) >> 3);
  796. src[0] = clip_uint8((a + b + 7*c - d + 3) >> 3);
  797. src[1] = clip_uint8((a + 7*d + 3) >> 3);
  798. src += stride;
  799. }
  800. }
  801. /** Put block onto picture
  802. * @todo move to DSPContext
  803. */
  804. static void vc1_put_block(VC1Context *v, DCTELEM block[6][64])
  805. {
  806. uint8_t *Y;
  807. int ys, us, vs;
  808. DSPContext *dsp = &v->s.dsp;
  809. ys = v->s.current_picture.linesize[0];
  810. us = v->s.current_picture.linesize[1];
  811. vs = v->s.current_picture.linesize[2];
  812. Y = v->s.dest[0];
  813. dsp->put_pixels_clamped(block[0], Y, ys);
  814. dsp->put_pixels_clamped(block[1], Y + 8, ys);
  815. Y += ys * 8;
  816. dsp->put_pixels_clamped(block[2], Y, ys);
  817. dsp->put_pixels_clamped(block[3], Y + 8, ys);
  818. dsp->put_pixels_clamped(block[4], v->s.dest[1], us);
  819. dsp->put_pixels_clamped(block[5], v->s.dest[2], vs);
  820. }
  821. /* clip motion vector as specified in 8.3.6.5 */
  822. #define CLIP_RANGE(mv, src, lim, bs) \
  823. if(mv < -bs) mv = -bs - src * bs; \
  824. if(mv > lim) mv = lim - src * bs;
  825. /** Do motion compensation over 1 macroblock
  826. * Mostly adapted hpel_motion and qpel_motion from mpegvideo.c
  827. */
  828. static void vc1_mc_1mv(VC1Context *v)
  829. {
  830. MpegEncContext *s = &v->s;
  831. DSPContext *dsp = &v->s.dsp;
  832. uint8_t *srcY, *srcU, *srcV;
  833. int dxy, uvdxy, mx, my, uvmx, uvmy, src_x, src_y, uvsrc_x, uvsrc_y;
  834. if(!v->s.last_picture.data[0])return;
  835. mx = s->mv[0][0][0];
  836. my = s->mv[0][0][1];
  837. uvmx = (mx + ((mx & 3) == 3)) >> 1;
  838. uvmy = (my + ((my & 3) == 3)) >> 1;
  839. srcY = s->last_picture.data[0];
  840. srcU = s->last_picture.data[1];
  841. srcV = s->last_picture.data[2];
  842. src_x = s->mb_x * 16 + (mx >> 2);
  843. src_y = s->mb_y * 16 + (my >> 2);
  844. uvsrc_x = s->mb_x * 8 + (uvmx >> 2);
  845. uvsrc_y = s->mb_y * 8 + (uvmy >> 2);
  846. CLIP_RANGE( src_x, s->mb_x, s->mb_width * 16, 16);
  847. CLIP_RANGE( src_y, s->mb_y, s->mb_height * 16, 16);
  848. CLIP_RANGE(uvsrc_x, s->mb_x, s->mb_width * 8, 8);
  849. CLIP_RANGE(uvsrc_y, s->mb_y, s->mb_height * 8, 8);
  850. srcY += src_y * s->linesize + src_x;
  851. srcU += uvsrc_y * s->uvlinesize + uvsrc_x;
  852. srcV += uvsrc_y * s->uvlinesize + uvsrc_x;
  853. if((v->mv_mode == MV_PMODE_INTENSITY_COMP)
  854. || (unsigned)src_x > s->h_edge_pos - (mx&3) - 16
  855. || (unsigned)src_y > s->v_edge_pos - (my&3) - 16){
  856. uint8_t *uvbuf= s->edge_emu_buffer + 18 * s->linesize;
  857. ff_emulated_edge_mc(s->edge_emu_buffer, srcY, s->linesize, 16+1, 16+1,
  858. src_x, src_y, s->h_edge_pos, s->v_edge_pos);
  859. srcY = s->edge_emu_buffer;
  860. ff_emulated_edge_mc(uvbuf , srcU, s->uvlinesize, 8+1, 8+1,
  861. uvsrc_x, uvsrc_y, s->h_edge_pos >> 1, s->v_edge_pos >> 1);
  862. ff_emulated_edge_mc(uvbuf + 16, srcV, s->uvlinesize, 8+1, 8+1,
  863. uvsrc_x, uvsrc_y, s->h_edge_pos >> 1, s->v_edge_pos >> 1);
  864. srcU = uvbuf;
  865. srcV = uvbuf + 16;
  866. /* if we deal with intensity compensation we need to scale source blocks */
  867. if(v->mv_mode == MV_PMODE_INTENSITY_COMP) {
  868. int i, j;
  869. uint8_t *src, *src2;
  870. src = srcY;
  871. for(j = 0; j < 17; j++) {
  872. for(i = 0; i < 17; i++) src[i] = v->luty[src[i]];
  873. src += s->linesize;
  874. }
  875. src = srcU; src2 = srcV;
  876. for(j = 0; j < 9; j++) {
  877. for(i = 0; i < 9; i++) {
  878. src[i] = v->lutuv[src[i]];
  879. src2[i] = v->lutuv[src2[i]];
  880. }
  881. src += s->uvlinesize;
  882. src2 += s->uvlinesize;
  883. }
  884. }
  885. }
  886. if(v->fastuvmc) {
  887. uvmx = uvmx + ((uvmx<0)?(uvmx&1):-(uvmx&1));
  888. uvmy = uvmy + ((uvmy<0)?(uvmy&1):-(uvmy&1));
  889. }
  890. if(!s->quarter_sample) { // hpel mc
  891. mx >>= 1;
  892. my >>= 1;
  893. dxy = ((my & 1) << 1) | (mx & 1);
  894. dsp->put_no_rnd_pixels_tab[0][dxy](s->dest[0], srcY, s->linesize, 16);
  895. } else {
  896. dxy = ((my & 3) << 2) | (mx & 3);
  897. dsp->put_no_rnd_qpel_pixels_tab[0][dxy](s->dest[0], srcY, s->linesize);
  898. }
  899. uvmx >>= 1;
  900. uvmy >>= 1;
  901. uvdxy = ((uvmy & 1) << 1) | (uvmx & 1);
  902. dsp->put_no_rnd_pixels_tab[1][uvdxy](s->dest[1], srcU, s->uvlinesize, 8);
  903. dsp->put_no_rnd_pixels_tab[1][uvdxy](s->dest[2], srcV, s->uvlinesize, 8);
  904. // dsp->put_mspel_pixels_tab[uvdxy](s->dest[1], srcU, s->uvlinesize);
  905. // dsp->put_mspel_pixels_tab[uvdxy](s->dest[2], srcV, s->uvlinesize);
  906. }
  907. /** Do motion compensation for 4-MV macroblock - luminance block
  908. */
  909. static void vc1_mc_4mv_luma(VC1Context *v, int n)
  910. {
  911. MpegEncContext *s = &v->s;
  912. DSPContext *dsp = &v->s.dsp;
  913. uint8_t *srcY;
  914. int dxy, mx, my, src_x, src_y;
  915. int off;
  916. if(!v->s.last_picture.data[0])return;
  917. mx = s->mv[0][n][0];
  918. my = s->mv[0][n][1];
  919. srcY = s->last_picture.data[0];
  920. off = s->linesize * 4 * (n&2) + (n&1) * 8;
  921. src_x = s->mb_x * 16 + (n&1) * 8 + (mx >> 2);
  922. src_y = s->mb_y * 16 + (n&2) * 4 + (my >> 2);
  923. CLIP_RANGE(src_x, s->mb_x, s->mb_width * 16, 16);
  924. CLIP_RANGE(src_y, s->mb_y, s->mb_height * 16, 16);
  925. srcY += src_y * s->linesize + src_x;
  926. if((unsigned)src_x > s->h_edge_pos - (mx&3) - 16
  927. || (unsigned)src_y > s->v_edge_pos - (my&3) - 16){
  928. ff_emulated_edge_mc(s->edge_emu_buffer, srcY, s->linesize, 16+1, 16+1,
  929. src_x, src_y, s->h_edge_pos, s->v_edge_pos);
  930. srcY = s->edge_emu_buffer;
  931. }
  932. if(!s->quarter_sample) { // hpel mc
  933. mx >>= 1;
  934. my >>= 1;
  935. dxy = ((my & 1) << 1) | (mx & 1);
  936. dsp->put_no_rnd_pixels_tab[1][dxy](s->dest[0] + off, srcY, s->linesize, 8);
  937. } else {
  938. dxy = ((my & 3) << 2) | (mx & 3);
  939. dsp->put_no_rnd_qpel_pixels_tab[1][dxy](s->dest[0] + off, srcY, s->linesize);
  940. }
  941. }
  942. static inline int median4(int a, int b, int c, int d)
  943. {
  944. if(a < b) {
  945. if(c < d) return (FFMIN(b, d) + FFMAX(a, c)) / 2;
  946. else return (FFMIN(b, c) + FFMAX(a, d)) / 2;
  947. } else {
  948. if(c < d) return (FFMIN(a, d) + FFMAX(b, c)) / 2;
  949. else return (FFMIN(a, c) + FFMAX(b, d)) / 2;
  950. }
  951. }
  952. /** Do motion compensation for 4-MV macroblock - both chroma blocks
  953. */
  954. static void vc1_mc_4mv_chroma(VC1Context *v)
  955. {
  956. MpegEncContext *s = &v->s;
  957. DSPContext *dsp = &v->s.dsp;
  958. uint8_t *srcU, *srcV;
  959. int uvdxy, uvmx, uvmy, uvsrc_x, uvsrc_y;
  960. int i, idx, tx = 0, ty = 0;
  961. int mvx[4], mvy[4], intra[4];
  962. static const int count[16] = { 0, 1, 1, 2, 1, 2, 2, 3, 1, 2, 2, 3, 2, 3, 3, 4};
  963. if(!v->s.last_picture.data[0])return;
  964. for(i = 0; i < 4; i++) {
  965. mvx[i] = s->mv[0][i][0];
  966. mvy[i] = s->mv[0][i][1];
  967. intra[i] = v->mb_type[0][s->block_index[i]];
  968. }
  969. /* calculate chroma MV vector from four luma MVs */
  970. idx = (intra[3] << 3) | (intra[2] << 2) | (intra[1] << 1) | intra[0];
  971. if(!idx) { // all blocks are inter
  972. tx = median4(mvx[0], mvx[1], mvx[2], mvx[3]);
  973. ty = median4(mvy[0], mvy[1], mvy[2], mvy[3]);
  974. } else if(count[idx] == 1) { // 3 inter blocks
  975. switch(idx) {
  976. case 0x1:
  977. tx = mid_pred(mvx[1], mvx[2], mvx[3]);
  978. ty = mid_pred(mvy[1], mvy[2], mvy[3]);
  979. break;
  980. case 0x2:
  981. tx = mid_pred(mvx[0], mvx[2], mvx[3]);
  982. ty = mid_pred(mvy[0], mvy[2], mvy[3]);
  983. break;
  984. case 0x4:
  985. tx = mid_pred(mvx[0], mvx[1], mvx[3]);
  986. ty = mid_pred(mvy[0], mvy[1], mvy[3]);
  987. break;
  988. case 0x8:
  989. tx = mid_pred(mvx[0], mvx[1], mvx[2]);
  990. ty = mid_pred(mvy[0], mvy[1], mvy[2]);
  991. break;
  992. }
  993. } else if(count[idx] == 2) {
  994. int t1 = 0, t2 = 0;
  995. for(i=0; i<3;i++) if(!intra[i]) {t1 = i; break;}
  996. for(i= t1+1; i<4; i++)if(!intra[i]) {t2 = i; break;}
  997. tx = (mvx[t1] + mvx[t2]) / 2;
  998. ty = (mvy[t1] + mvy[t2]) / 2;
  999. } else
  1000. return; //no need to do MC for inter blocks
  1001. uvmx = (tx + ((tx&3) == 3)) >> 1;
  1002. uvmy = (ty + ((ty&3) == 3)) >> 1;
  1003. uvsrc_x = s->mb_x * 8 + (uvmx >> 2);
  1004. uvsrc_y = s->mb_y * 8 + (uvmy >> 2);
  1005. CLIP_RANGE(uvsrc_x, s->mb_x, s->mb_width * 8, 8);
  1006. CLIP_RANGE(uvsrc_y, s->mb_y, s->mb_height * 8, 8);
  1007. srcU = s->last_picture.data[1] + uvsrc_y * s->uvlinesize + uvsrc_x;
  1008. srcV = s->last_picture.data[2] + uvsrc_y * s->uvlinesize + uvsrc_x;
  1009. if((unsigned)uvsrc_x > (s->h_edge_pos >> 1) - ((uvmx >> 1)&1) - 8
  1010. || (unsigned)uvsrc_y > (s->v_edge_pos >> 1) - ((uvmy >> 1)&1) - 8){
  1011. ff_emulated_edge_mc(s->edge_emu_buffer , srcU, s->uvlinesize, 8+1, 8+1,
  1012. uvsrc_x, uvsrc_y, s->h_edge_pos >> 1, s->v_edge_pos >> 1);
  1013. ff_emulated_edge_mc(s->edge_emu_buffer + 16, srcV, s->uvlinesize, 8+1, 8+1,
  1014. uvsrc_x, uvsrc_y, s->h_edge_pos >> 1, s->v_edge_pos >> 1);
  1015. srcU = s->edge_emu_buffer;
  1016. srcV = s->edge_emu_buffer + 16;
  1017. }
  1018. if(v->fastuvmc) {
  1019. uvmx = uvmx + ((uvmx<0)?(uvmx&1):-(uvmx&1));
  1020. uvmy = uvmy + ((uvmy<0)?(uvmy&1):-(uvmy&1));
  1021. }
  1022. uvmx >>= 1;
  1023. uvmy >>= 1;
  1024. uvdxy = ((uvmy & 1) << 1) | (uvmx & 1);
  1025. dsp->put_no_rnd_pixels_tab[1][uvdxy](s->dest[1], srcU, s->uvlinesize, 8);
  1026. dsp->put_no_rnd_pixels_tab[1][uvdxy](s->dest[2], srcV, s->uvlinesize, 8);
  1027. }
  1028. /**
  1029. * Decode Simple/Main Profiles sequence header
  1030. * @see Figure 7-8, p16-17
  1031. * @param avctx Codec context
  1032. * @param gb GetBit context initialized from Codec context extra_data
  1033. * @return Status
  1034. */
  1035. static int decode_sequence_header(AVCodecContext *avctx, GetBitContext *gb)
  1036. {
  1037. VC1Context *v = avctx->priv_data;
  1038. av_log(avctx, AV_LOG_INFO, "Header: %0X\n", show_bits(gb, 32));
  1039. v->profile = get_bits(gb, 2);
  1040. if (v->profile == 2)
  1041. {
  1042. av_log(avctx, AV_LOG_ERROR, "Profile value 2 is forbidden (and WMV3 Complex Profile is unsupported)\n");
  1043. return -1;
  1044. }
  1045. if (v->profile == PROFILE_ADVANCED)
  1046. {
  1047. v->level = get_bits(gb, 3);
  1048. if(v->level >= 5)
  1049. {
  1050. av_log(avctx, AV_LOG_ERROR, "Reserved LEVEL %i\n",v->level);
  1051. }
  1052. v->chromaformat = get_bits(gb, 2);
  1053. if (v->chromaformat != 1)
  1054. {
  1055. av_log(avctx, AV_LOG_ERROR,
  1056. "Only 4:2:0 chroma format supported\n");
  1057. return -1;
  1058. }
  1059. }
  1060. else
  1061. {
  1062. v->res_sm = get_bits(gb, 2); //reserved
  1063. if (v->res_sm)
  1064. {
  1065. av_log(avctx, AV_LOG_ERROR,
  1066. "Reserved RES_SM=%i is forbidden\n", v->res_sm);
  1067. return -1;
  1068. }
  1069. }
  1070. // (fps-2)/4 (->30)
  1071. v->frmrtq_postproc = get_bits(gb, 3); //common
  1072. // (bitrate-32kbps)/64kbps
  1073. v->bitrtq_postproc = get_bits(gb, 5); //common
  1074. v->s.loop_filter = get_bits(gb, 1); //common
  1075. if(v->s.loop_filter == 1 && v->profile == PROFILE_SIMPLE)
  1076. {
  1077. av_log(avctx, AV_LOG_ERROR,
  1078. "LOOPFILTER shell not be enabled in simple profile\n");
  1079. }
  1080. if (v->profile < PROFILE_ADVANCED)
  1081. {
  1082. v->res_x8 = get_bits(gb, 1); //reserved
  1083. if (v->res_x8)
  1084. {
  1085. av_log(avctx, AV_LOG_ERROR,
  1086. "1 for reserved RES_X8 is forbidden\n");
  1087. //return -1;
  1088. }
  1089. v->multires = get_bits(gb, 1);
  1090. v->res_fasttx = get_bits(gb, 1);
  1091. if (!v->res_fasttx)
  1092. {
  1093. av_log(avctx, AV_LOG_ERROR,
  1094. "0 for reserved RES_FASTTX is forbidden\n");
  1095. //return -1;
  1096. }
  1097. }
  1098. v->fastuvmc = get_bits(gb, 1); //common
  1099. if (!v->profile && !v->fastuvmc)
  1100. {
  1101. av_log(avctx, AV_LOG_ERROR,
  1102. "FASTUVMC unavailable in Simple Profile\n");
  1103. return -1;
  1104. }
  1105. v->extended_mv = get_bits(gb, 1); //common
  1106. if (!v->profile && v->extended_mv)
  1107. {
  1108. av_log(avctx, AV_LOG_ERROR,
  1109. "Extended MVs unavailable in Simple Profile\n");
  1110. return -1;
  1111. }
  1112. v->dquant = get_bits(gb, 2); //common
  1113. v->vstransform = get_bits(gb, 1); //common
  1114. if (v->profile < PROFILE_ADVANCED)
  1115. {
  1116. v->res_transtab = get_bits(gb, 1);
  1117. if (v->res_transtab)
  1118. {
  1119. av_log(avctx, AV_LOG_ERROR,
  1120. "1 for reserved RES_TRANSTAB is forbidden\n");
  1121. return -1;
  1122. }
  1123. }
  1124. v->overlap = get_bits(gb, 1); //common
  1125. if (v->profile < PROFILE_ADVANCED)
  1126. {
  1127. v->s.resync_marker = get_bits(gb, 1);
  1128. v->rangered = get_bits(gb, 1);
  1129. if (v->rangered && v->profile == PROFILE_SIMPLE)
  1130. {
  1131. av_log(avctx, AV_LOG_INFO,
  1132. "RANGERED should be set to 0 in simple profile\n");
  1133. }
  1134. }
  1135. v->s.max_b_frames = avctx->max_b_frames = get_bits(gb, 3); //common
  1136. v->quantizer_mode = get_bits(gb, 2); //common
  1137. if (v->profile < PROFILE_ADVANCED)
  1138. {
  1139. v->finterpflag = get_bits(gb, 1); //common
  1140. v->res_rtm_flag = get_bits(gb, 1); //reserved
  1141. if (!v->res_rtm_flag)
  1142. {
  1143. av_log(avctx, AV_LOG_ERROR,
  1144. "0 for reserved RES_RTM_FLAG is forbidden\n");
  1145. //return -1;
  1146. }
  1147. av_log(avctx, AV_LOG_DEBUG,
  1148. "Profile %i:\nfrmrtq_postproc=%i, bitrtq_postproc=%i\n"
  1149. "LoopFilter=%i, MultiRes=%i, FastUVMV=%i, Extended MV=%i\n"
  1150. "Rangered=%i, VSTransform=%i, Overlap=%i, SyncMarker=%i\n"
  1151. "DQuant=%i, Quantizer mode=%i, Max B frames=%i\n",
  1152. v->profile, v->frmrtq_postproc, v->bitrtq_postproc,
  1153. v->s.loop_filter, v->multires, v->fastuvmc, v->extended_mv,
  1154. v->rangered, v->vstransform, v->overlap, v->s.resync_marker,
  1155. v->dquant, v->quantizer_mode, avctx->max_b_frames
  1156. );
  1157. return 0;
  1158. }
  1159. return -1;
  1160. }
  1161. static int vc1_parse_frame_header(VC1Context *v, GetBitContext* gb)
  1162. {
  1163. int pqindex, lowquant, status;
  1164. if(v->finterpflag) v->interpfrm = get_bits(gb, 1);
  1165. skip_bits(gb, 2); //framecnt unused
  1166. v->rangeredfrm = 0;
  1167. if (v->rangered) v->rangeredfrm = get_bits(gb, 1);
  1168. v->s.pict_type = get_bits(gb, 1);
  1169. if (v->s.avctx->max_b_frames) {
  1170. if (!v->s.pict_type) {
  1171. if (get_bits(gb, 1)) v->s.pict_type = I_TYPE;
  1172. else v->s.pict_type = B_TYPE;
  1173. } else v->s.pict_type = P_TYPE;
  1174. } else v->s.pict_type = v->s.pict_type ? P_TYPE : I_TYPE;
  1175. if(v->s.pict_type == I_TYPE)
  1176. get_bits(gb, 7); // skip buffer fullness
  1177. /* Quantizer stuff */
  1178. pqindex = get_bits(gb, 5);
  1179. if (v->quantizer_mode == QUANT_FRAME_IMPLICIT)
  1180. v->pq = pquant_table[0][pqindex];
  1181. else
  1182. v->pq = pquant_table[v->quantizer_mode-1][pqindex];
  1183. if (v->quantizer_mode == QUANT_FRAME_IMPLICIT)
  1184. v->pquantizer = pqindex < 9;
  1185. if (v->quantizer_mode == QUANT_UNIFORM || v->quantizer_mode == QUANT_NON_UNIFORM)
  1186. v->pquantizer = v->quantizer_mode == QUANT_UNIFORM;
  1187. v->pqindex = pqindex;
  1188. if (pqindex < 9) v->halfpq = get_bits(gb, 1);
  1189. else v->halfpq = 0;
  1190. if (v->quantizer_mode == QUANT_FRAME_EXPLICIT)
  1191. v->pquantizer = get_bits(gb, 1);
  1192. v->dquantfrm = 0;
  1193. //av_log(v->s.avctx, AV_LOG_INFO, "%c Frame: QP=[%i]%i (+%i/2) %i\n",
  1194. // (v->s.pict_type == P_TYPE) ? 'P' : ((v->s.pict_type == I_TYPE) ? 'I' : 'B'), pqindex, v->pq, v->halfpq, v->rangeredfrm);
  1195. //TODO: complete parsing for P/B/BI frames
  1196. switch(v->s.pict_type) {
  1197. case P_TYPE:
  1198. if (v->pq < 5) v->tt_index = 0;
  1199. else if(v->pq < 13) v->tt_index = 1;
  1200. else v->tt_index = 2;
  1201. if (v->extended_mv == 1) v->mvrange = get_prefix(gb, 0, 3);
  1202. v->k_x = v->mvrange + 9 + (v->mvrange >> 1); //k_x can be 9 10 12 13
  1203. v->k_y = v->mvrange + 8; //k_y can be 8 9 10 11
  1204. v->range_x = 1 << (v->k_x - 1);
  1205. v->range_y = 1 << (v->k_y - 1);
  1206. if (v->profile == PROFILE_ADVANCED)
  1207. {
  1208. if (v->postprocflag) v->postproc = get_bits(gb, 1);
  1209. }
  1210. else
  1211. if (v->multires) v->respic = get_bits(gb, 2);
  1212. lowquant = (v->pq > 12) ? 0 : 1;
  1213. v->mv_mode = mv_pmode_table[lowquant][get_prefix(gb, 1, 4)];
  1214. if (v->mv_mode == MV_PMODE_INTENSITY_COMP)
  1215. {
  1216. int scale, shift, i;
  1217. v->mv_mode2 = mv_pmode_table2[lowquant][get_prefix(gb, 1, 3)];
  1218. v->lumscale = get_bits(gb, 6);
  1219. v->lumshift = get_bits(gb, 6);
  1220. /* fill lookup tables for intensity compensation */
  1221. if(!v->lumscale) {
  1222. scale = -64;
  1223. shift = (255 - v->lumshift * 2) << 6;
  1224. if(v->lumshift > 31)
  1225. shift += 128 << 6;
  1226. } else {
  1227. scale = v->lumscale + 32;
  1228. if(v->lumshift > 31)
  1229. shift = (v->lumshift - 64) << 6;
  1230. else
  1231. shift = v->lumshift << 6;
  1232. }
  1233. for(i = 0; i < 256; i++) {
  1234. v->luty[i] = clip_uint8((scale * i + shift + 32) >> 6);
  1235. v->lutuv[i] = clip_uint8((scale * (i - 128) + 128*64 + 32) >> 6);
  1236. }
  1237. }
  1238. if(v->mv_mode == MV_PMODE_1MV_HPEL || v->mv_mode == MV_PMODE_1MV_HPEL_BILIN)
  1239. v->s.quarter_sample = 0;
  1240. else if(v->mv_mode == MV_PMODE_INTENSITY_COMP) {
  1241. if(v->mv_mode2 == MV_PMODE_1MV_HPEL || v->mv_mode2 == MV_PMODE_1MV_HPEL_BILIN)
  1242. v->s.quarter_sample = 0;
  1243. else
  1244. v->s.quarter_sample = 1;
  1245. } else
  1246. v->s.quarter_sample = 1;
  1247. if ((v->mv_mode == MV_PMODE_INTENSITY_COMP &&
  1248. v->mv_mode2 == MV_PMODE_MIXED_MV)
  1249. || v->mv_mode == MV_PMODE_MIXED_MV)
  1250. {
  1251. status = bitplane_decoding(v->mv_type_mb_plane, &v->mv_type_is_raw, v);
  1252. if (status < 0) return -1;
  1253. av_log(v->s.avctx, AV_LOG_DEBUG, "MB MV Type plane encoding: "
  1254. "Imode: %i, Invert: %i\n", status>>1, status&1);
  1255. } else {
  1256. v->mv_type_is_raw = 0;
  1257. memset(v->mv_type_mb_plane, 0, v->s.mb_stride * v->s.mb_height);
  1258. }
  1259. status = bitplane_decoding(v->s.mbskip_table, &v->skip_is_raw, v);
  1260. if (status < 0) return -1;
  1261. av_log(v->s.avctx, AV_LOG_DEBUG, "MB Skip plane encoding: "
  1262. "Imode: %i, Invert: %i\n", status>>1, status&1);
  1263. /* Hopefully this is correct for P frames */
  1264. v->s.mv_table_index = get_bits(gb, 2); //but using vc1_ tables
  1265. v->cbpcy_vlc = &vc1_cbpcy_p_vlc[get_bits(gb, 2)];
  1266. if (v->dquant)
  1267. {
  1268. av_log(v->s.avctx, AV_LOG_DEBUG, "VOP DQuant info\n");
  1269. vop_dquant_decoding(v);
  1270. }
  1271. v->ttfrm = 0; //FIXME Is that so ?
  1272. if (v->vstransform)
  1273. {
  1274. v->ttmbf = get_bits(gb, 1);
  1275. if (v->ttmbf)
  1276. {
  1277. v->ttfrm = ttfrm_to_tt[get_bits(gb, 2)];
  1278. }
  1279. }
  1280. break;
  1281. case B_TYPE:
  1282. break;
  1283. }
  1284. /* AC Syntax */
  1285. v->c_ac_table_index = decode012(gb);
  1286. if (v->s.pict_type == I_TYPE || v->s.pict_type == BI_TYPE)
  1287. {
  1288. v->y_ac_table_index = decode012(gb);
  1289. }
  1290. /* DC Syntax */
  1291. v->s.dc_table_index = get_bits(gb, 1);
  1292. return 0;
  1293. }
  1294. /***********************************************************************/
  1295. /**
  1296. * @defgroup block VC-1 Block-level functions
  1297. * @see 7.1.4, p91 and 8.1.1.7, p(1)04
  1298. * @todo TODO: Integrate to MpegEncContext facilities
  1299. * @{
  1300. */
  1301. /**
  1302. * @def GET_MQUANT
  1303. * @brief Get macroblock-level quantizer scale
  1304. * @warning XXX: qdiff to the frame quant, not previous quant ?
  1305. * @fixme XXX: Don't know how to initialize mquant otherwise in last case
  1306. */
  1307. #define GET_MQUANT() \
  1308. if (v->dquantfrm) \
  1309. { \
  1310. int edges = 0; \
  1311. if (v->dqprofile == DQPROFILE_ALL_MBS) \
  1312. { \
  1313. if (v->dqbilevel) \
  1314. { \
  1315. mquant = (get_bits(gb, 1)) ? v->pq : v->altpq; \
  1316. } \
  1317. else \
  1318. { \
  1319. mqdiff = get_bits(gb, 3); \
  1320. if (mqdiff != 7) mquant = v->pq + mqdiff; \
  1321. else mquant = get_bits(gb, 5); \
  1322. } \
  1323. } \
  1324. if(v->dqprofile == DQPROFILE_SINGLE_EDGE) \
  1325. edges = 1 << v->dqsbedge; \
  1326. else if(v->dqprofile == DQPROFILE_DOUBLE_EDGES) \
  1327. edges = (3 << v->dqsbedge) % 15; \
  1328. else if(v->dqprofile == DQPROFILE_FOUR_EDGES) \
  1329. edges = 15; \
  1330. mquant = v->pq; \
  1331. if((edges&1) && !s->mb_x) \
  1332. mquant = v->altpq; \
  1333. if((edges&2) && !s->mb_y) \
  1334. mquant = v->altpq; \
  1335. if((edges&4) && s->mb_x == (s->mb_width - 1)) \
  1336. mquant = v->altpq; \
  1337. if((edges&8) && s->mb_y == (s->mb_height - 1)) \
  1338. mquant = v->altpq; \
  1339. }
  1340. /**
  1341. * @def GET_MVDATA(_dmv_x, _dmv_y)
  1342. * @brief Get MV differentials
  1343. * @see MVDATA decoding from 8.3.5.2, p(1)20
  1344. * @param _dmv_x Horizontal differential for decoded MV
  1345. * @param _dmv_y Vertical differential for decoded MV
  1346. * @todo TODO: Use MpegEncContext arrays to store them
  1347. */
  1348. #define GET_MVDATA(_dmv_x, _dmv_y) \
  1349. index = 1 + get_vlc2(gb, vc1_mv_diff_vlc[s->mv_table_index].table,\
  1350. VC1_MV_DIFF_VLC_BITS, 2); \
  1351. if (index > 36) \
  1352. { \
  1353. mb_has_coeffs = 1; \
  1354. index -= 37; \
  1355. } \
  1356. else mb_has_coeffs = 0; \
  1357. s->mb_intra = 0; \
  1358. if (!index) { _dmv_x = _dmv_y = 0; } \
  1359. else if (index == 35) \
  1360. { \
  1361. _dmv_x = get_bits(gb, v->k_x - 1 + s->quarter_sample); \
  1362. _dmv_y = get_bits(gb, v->k_y - 1 + s->quarter_sample); \
  1363. } \
  1364. else if (index == 36) \
  1365. { \
  1366. _dmv_x = 0; \
  1367. _dmv_y = 0; \
  1368. s->mb_intra = 1; \
  1369. } \
  1370. else \
  1371. { \
  1372. index1 = index%6; \
  1373. if (!s->quarter_sample && index1 == 5) val = 1; \
  1374. else val = 0; \
  1375. if(size_table[index1] - val > 0) \
  1376. val = get_bits(gb, size_table[index1] - val); \
  1377. else val = 0; \
  1378. sign = 0 - (val&1); \
  1379. _dmv_x = (sign ^ ((val>>1) + offset_table[index1])) - sign; \
  1380. \
  1381. index1 = index/6; \
  1382. if (!s->quarter_sample && index1 == 5) val = 1; \
  1383. else val = 0; \
  1384. if(size_table[index1] - val > 0) \
  1385. val = get_bits(gb, size_table[index1] - val); \
  1386. else val = 0; \
  1387. sign = 0 - (val&1); \
  1388. _dmv_y = (sign ^ ((val>>1) + offset_table[index1])) - sign; \
  1389. }
  1390. /** Predict and set motion vector
  1391. */
  1392. static inline void vc1_pred_mv(MpegEncContext *s, int n, int dmv_x, int dmv_y, int mv1, int r_x, int r_y, uint8_t* is_intra)
  1393. {
  1394. int xy, wrap, off = 0;
  1395. int16_t *A, *B, *C;
  1396. int px, py;
  1397. int sum;
  1398. /* scale MV difference to be quad-pel */
  1399. dmv_x <<= 1 - s->quarter_sample;
  1400. dmv_y <<= 1 - s->quarter_sample;
  1401. wrap = s->b8_stride;
  1402. xy = s->block_index[n];
  1403. if(s->mb_intra){
  1404. s->mv[0][n][0] = s->current_picture.motion_val[0][xy][0] = 0;
  1405. s->mv[0][n][1] = s->current_picture.motion_val[0][xy][1] = 0;
  1406. if(mv1) { /* duplicate motion data for 1-MV block */
  1407. s->current_picture.motion_val[0][xy + 1][0] = 0;
  1408. s->current_picture.motion_val[0][xy + 1][1] = 0;
  1409. s->current_picture.motion_val[0][xy + wrap][0] = 0;
  1410. s->current_picture.motion_val[0][xy + wrap][1] = 0;
  1411. s->current_picture.motion_val[0][xy + wrap + 1][0] = 0;
  1412. s->current_picture.motion_val[0][xy + wrap + 1][1] = 0;
  1413. }
  1414. return;
  1415. }
  1416. C = s->current_picture.motion_val[0][xy - 1];
  1417. A = s->current_picture.motion_val[0][xy - wrap];
  1418. if(mv1)
  1419. off = (s->mb_x == (s->mb_width - 1)) ? -1 : 2;
  1420. else {
  1421. //in 4-MV mode different blocks have different B predictor position
  1422. switch(n){
  1423. case 0:
  1424. off = (s->mb_x > 0) ? -1 : 1;
  1425. break;
  1426. case 1:
  1427. off = (s->mb_x == (s->mb_width - 1)) ? -1 : 1;
  1428. break;
  1429. case 2:
  1430. off = 1;
  1431. break;
  1432. case 3:
  1433. off = -1;
  1434. }
  1435. }
  1436. B = s->current_picture.motion_val[0][xy - wrap + off];
  1437. if(!s->first_slice_line || (n==2 || n==3)) { // predictor A is not out of bounds
  1438. if(s->mb_width == 1) {
  1439. px = A[0];
  1440. py = A[1];
  1441. } else {
  1442. px = mid_pred(A[0], B[0], C[0]);
  1443. py = mid_pred(A[1], B[1], C[1]);
  1444. }
  1445. } else if(s->mb_x || (n==1 || n==3)) { // predictor C is not out of bounds
  1446. px = C[0];
  1447. py = C[1];
  1448. } else {
  1449. px = py = 0;
  1450. }
  1451. /* Pullback MV as specified in 8.3.5.3.4 */
  1452. {
  1453. int qx, qy, X, Y;
  1454. qx = (s->mb_x << 6) + ((n==1 || n==3) ? 32 : 0);
  1455. qy = (s->mb_y << 6) + ((n==2 || n==3) ? 32 : 0);
  1456. X = (s->mb_width << 6) - 4;
  1457. Y = (s->mb_height << 6) - 4;
  1458. if(mv1) {
  1459. if(qx + px < -60) px = -60 - qx;
  1460. if(qy + py < -60) py = -60 - qy;
  1461. } else {
  1462. if(qx + px < -28) px = -28 - qx;
  1463. if(qy + py < -28) py = -28 - qy;
  1464. }
  1465. if(qx + px > X) px = X - qx;
  1466. if(qy + py > Y) py = Y - qy;
  1467. }
  1468. /* Calculate hybrid prediction as specified in 8.3.5.3.5 */
  1469. if((!s->first_slice_line || (n==2 || n==3)) && (s->mb_x || (n==1 || n==3))) {
  1470. if(is_intra[xy - wrap])
  1471. sum = ABS(px) + ABS(py);
  1472. else
  1473. sum = ABS(px - A[0]) + ABS(py - A[1]);
  1474. if(sum > 32) {
  1475. if(get_bits1(&s->gb)) {
  1476. px = A[0];
  1477. py = A[1];
  1478. } else {
  1479. px = C[0];
  1480. py = C[1];
  1481. }
  1482. } else {
  1483. if(is_intra[xy - 1])
  1484. sum = ABS(px) + ABS(py);
  1485. else
  1486. sum = ABS(px - C[0]) + ABS(py - C[1]);
  1487. if(sum > 32) {
  1488. if(get_bits1(&s->gb)) {
  1489. px = A[0];
  1490. py = A[1];
  1491. } else {
  1492. px = C[0];
  1493. py = C[1];
  1494. }
  1495. }
  1496. }
  1497. }
  1498. /* store MV using signed modulus of MV range defined in 4.11 */
  1499. s->mv[0][n][0] = s->current_picture.motion_val[0][xy][0] = ((px + dmv_x + r_x) & ((r_x << 1) - 1)) - r_x;
  1500. s->mv[0][n][1] = s->current_picture.motion_val[0][xy][1] = ((py + dmv_y + r_y) & ((r_y << 1) - 1)) - r_y;
  1501. if(mv1) { /* duplicate motion data for 1-MV block */
  1502. s->current_picture.motion_val[0][xy + 1][0] = s->current_picture.motion_val[0][xy][0];
  1503. s->current_picture.motion_val[0][xy + 1][1] = s->current_picture.motion_val[0][xy][1];
  1504. s->current_picture.motion_val[0][xy + wrap][0] = s->current_picture.motion_val[0][xy][0];
  1505. s->current_picture.motion_val[0][xy + wrap][1] = s->current_picture.motion_val[0][xy][1];
  1506. s->current_picture.motion_val[0][xy + wrap + 1][0] = s->current_picture.motion_val[0][xy][0];
  1507. s->current_picture.motion_val[0][xy + wrap + 1][1] = s->current_picture.motion_val[0][xy][1];
  1508. }
  1509. }
  1510. /** Get predicted DC value for I-frames only
  1511. * prediction dir: left=0, top=1
  1512. * @param s MpegEncContext
  1513. * @param[in] n block index in the current MB
  1514. * @param dc_val_ptr Pointer to DC predictor
  1515. * @param dir_ptr Prediction direction for use in AC prediction
  1516. */
  1517. static inline int vc1_i_pred_dc(MpegEncContext *s, int overlap, int pq, int n,
  1518. int16_t **dc_val_ptr, int *dir_ptr)
  1519. {
  1520. int a, b, c, wrap, pred, scale;
  1521. int16_t *dc_val;
  1522. static const uint16_t dcpred[32] = {
  1523. -1, 1024, 512, 341, 256, 205, 171, 146, 128,
  1524. 114, 102, 93, 85, 79, 73, 68, 64,
  1525. 60, 57, 54, 51, 49, 47, 45, 43,
  1526. 41, 39, 38, 37, 35, 34, 33
  1527. };
  1528. /* find prediction - wmv3_dc_scale always used here in fact */
  1529. if (n < 4) scale = s->y_dc_scale;
  1530. else scale = s->c_dc_scale;
  1531. wrap = s->block_wrap[n];
  1532. dc_val= s->dc_val[0] + s->block_index[n];
  1533. /* B A
  1534. * C X
  1535. */
  1536. c = dc_val[ - 1];
  1537. b = dc_val[ - 1 - wrap];
  1538. a = dc_val[ - wrap];
  1539. if (pq < 9 || !overlap)
  1540. {
  1541. /* Set outer values */
  1542. if (!s->mb_y && (n!=2 && n!=3)) b=a=dcpred[scale];
  1543. if (s->mb_x == 0 && (n!=1 && n!=3)) b=c=dcpred[scale];
  1544. }
  1545. else
  1546. {
  1547. /* Set outer values */
  1548. if (!s->mb_y && (n!=2 && n!=3)) b=a=0;
  1549. if (s->mb_x == 0 && (n!=1 && n!=3)) b=c=0;
  1550. }
  1551. if (abs(a - b) <= abs(b - c)) {
  1552. pred = c;
  1553. *dir_ptr = 1;//left
  1554. } else {
  1555. pred = a;
  1556. *dir_ptr = 0;//top
  1557. }
  1558. /* update predictor */
  1559. *dc_val_ptr = &dc_val[0];
  1560. return pred;
  1561. }
  1562. /** Get predicted DC value
  1563. * prediction dir: left=0, top=1
  1564. * @param s MpegEncContext
  1565. * @param[in] n block index in the current MB
  1566. * @param dc_val_ptr Pointer to DC predictor
  1567. * @param dir_ptr Prediction direction for use in AC prediction
  1568. */
  1569. static inline int vc1_pred_dc(MpegEncContext *s, int overlap, int pq, int n,
  1570. int a_avail, int c_avail,
  1571. int16_t **dc_val_ptr, int *dir_ptr)
  1572. {
  1573. int a, b, c, wrap, pred, scale;
  1574. int16_t *dc_val;
  1575. int mb_pos = s->mb_x + s->mb_y * s->mb_stride;
  1576. int q1, q2 = 0;
  1577. /* find prediction - wmv3_dc_scale always used here in fact */
  1578. if (n < 4) scale = s->y_dc_scale;
  1579. else scale = s->c_dc_scale;
  1580. wrap = s->block_wrap[n];
  1581. dc_val= s->dc_val[0] + s->block_index[n];
  1582. /* B A
  1583. * C X
  1584. */
  1585. c = dc_val[ - 1];
  1586. b = dc_val[ - 1 - wrap];
  1587. a = dc_val[ - wrap];
  1588. if(a_avail && c_avail) {
  1589. if(abs(a - b) <= abs(b - c)) {
  1590. pred = c;
  1591. *dir_ptr = 1;//left
  1592. q2 = s->current_picture.qscale_table[mb_pos - 1];
  1593. } else {
  1594. pred = a;
  1595. *dir_ptr = 0;//top
  1596. q2 = s->current_picture.qscale_table[mb_pos - s->mb_stride];
  1597. }
  1598. } else if(a_avail) {
  1599. pred = a;
  1600. *dir_ptr = 0;//top
  1601. q2 = s->current_picture.qscale_table[mb_pos - s->mb_stride];
  1602. } else if(c_avail) {
  1603. pred = c;
  1604. *dir_ptr = 1;//left
  1605. q2 = s->current_picture.qscale_table[mb_pos - 1];
  1606. } else {
  1607. pred = 0;
  1608. *dir_ptr = 1;//left
  1609. }
  1610. /* scale coeffs if needed */
  1611. q1 = s->current_picture.qscale_table[mb_pos];
  1612. if(n && n<4) q2=q1;
  1613. if(q2 && q1!=q2) {
  1614. pred = (pred * s->y_dc_scale_table[q2] * vc1_dqscale[s->y_dc_scale_table[q1] - 1] + 0x20000) >> 18;
  1615. }
  1616. /* update predictor */
  1617. *dc_val_ptr = &dc_val[0];
  1618. return pred;
  1619. }
  1620. /**
  1621. * @defgroup std_mb VC1 Macroblock-level functions in Simple/Main Profiles
  1622. * @see 7.1.4, p91 and 8.1.1.7, p(1)04
  1623. * @todo TODO: Integrate to MpegEncContext facilities
  1624. * @{
  1625. */
  1626. static inline int vc1_coded_block_pred(MpegEncContext * s, int n, uint8_t **coded_block_ptr)
  1627. {
  1628. int xy, wrap, pred, a, b, c;
  1629. xy = s->block_index[n];
  1630. wrap = s->b8_stride;
  1631. /* B C
  1632. * A X
  1633. */
  1634. a = s->coded_block[xy - 1 ];
  1635. b = s->coded_block[xy - 1 - wrap];
  1636. c = s->coded_block[xy - wrap];
  1637. if (b == c) {
  1638. pred = a;
  1639. } else {
  1640. pred = c;
  1641. }
  1642. /* store value */
  1643. *coded_block_ptr = &s->coded_block[xy];
  1644. return pred;
  1645. }
  1646. /**
  1647. * Decode one AC coefficient
  1648. * @param v The VC1 context
  1649. * @param last Last coefficient
  1650. * @param skip How much zero coefficients to skip
  1651. * @param value Decoded AC coefficient value
  1652. * @see 8.1.3.4
  1653. */
  1654. static void vc1_decode_ac_coeff(VC1Context *v, int *last, int *skip, int *value, int codingset)
  1655. {
  1656. GetBitContext *gb = &v->s.gb;
  1657. int index, escape, run = 0, level = 0, lst = 0;
  1658. index = get_vlc2(gb, vc1_ac_coeff_table[codingset].table, AC_VLC_BITS, 3);
  1659. if (index != vc1_ac_sizes[codingset] - 1) {
  1660. run = vc1_index_decode_table[codingset][index][0];
  1661. level = vc1_index_decode_table[codingset][index][1];
  1662. lst = index >= vc1_last_decode_table[codingset];
  1663. if(get_bits(gb, 1))
  1664. level = -level;
  1665. } else {
  1666. escape = decode210(gb);
  1667. if (escape != 2) {
  1668. index = get_vlc2(gb, vc1_ac_coeff_table[codingset].table, AC_VLC_BITS, 3);
  1669. run = vc1_index_decode_table[codingset][index][0];
  1670. level = vc1_index_decode_table[codingset][index][1];
  1671. lst = index >= vc1_last_decode_table[codingset];
  1672. if(escape == 0) {
  1673. if(lst)
  1674. level += vc1_last_delta_level_table[codingset][run];
  1675. else
  1676. level += vc1_delta_level_table[codingset][run];
  1677. } else {
  1678. if(lst)
  1679. run += vc1_last_delta_run_table[codingset][level] + 1;
  1680. else
  1681. run += vc1_delta_run_table[codingset][level] + 1;
  1682. }
  1683. if(get_bits(gb, 1))
  1684. level = -level;
  1685. } else {
  1686. int sign;
  1687. lst = get_bits(gb, 1);
  1688. if(v->s.esc3_level_length == 0) {
  1689. if(v->pq < 8 || v->dquantfrm) { // table 59
  1690. v->s.esc3_level_length = get_bits(gb, 3);
  1691. if(!v->s.esc3_level_length)
  1692. v->s.esc3_level_length = get_bits(gb, 2) + 8;
  1693. } else { //table 60
  1694. v->s.esc3_level_length = get_prefix(gb, 1, 6) + 2;
  1695. }
  1696. v->s.esc3_run_length = 3 + get_bits(gb, 2);
  1697. }
  1698. run = get_bits(gb, v->s.esc3_run_length);
  1699. sign = get_bits(gb, 1);
  1700. level = get_bits(gb, v->s.esc3_level_length);
  1701. if(sign)
  1702. level = -level;
  1703. }
  1704. }
  1705. *last = lst;
  1706. *skip = run;
  1707. *value = level;
  1708. }
  1709. /** Decode intra block in intra frames - should be faster than decode_intra_block
  1710. * @param v VC1Context
  1711. * @param block block to decode
  1712. * @param coded are AC coeffs present or not
  1713. * @param codingset set of VLC to decode data
  1714. */
  1715. static int vc1_decode_i_block(VC1Context *v, DCTELEM block[64], int n, int coded, int codingset)
  1716. {
  1717. GetBitContext *gb = &v->s.gb;
  1718. MpegEncContext *s = &v->s;
  1719. int dc_pred_dir = 0; /* Direction of the DC prediction used */
  1720. int run_diff, i;
  1721. int16_t *dc_val;
  1722. int16_t *ac_val, *ac_val2;
  1723. int dcdiff;
  1724. /* Get DC differential */
  1725. if (n < 4) {
  1726. dcdiff = get_vlc2(&s->gb, ff_msmp4_dc_luma_vlc[s->dc_table_index].table, DC_VLC_BITS, 3);
  1727. } else {
  1728. dcdiff = get_vlc2(&s->gb, ff_msmp4_dc_chroma_vlc[s->dc_table_index].table, DC_VLC_BITS, 3);
  1729. }
  1730. if (dcdiff < 0){
  1731. av_log(s->avctx, AV_LOG_ERROR, "Illegal DC VLC\n");
  1732. return -1;
  1733. }
  1734. if (dcdiff)
  1735. {
  1736. if (dcdiff == 119 /* ESC index value */)
  1737. {
  1738. /* TODO: Optimize */
  1739. if (v->pq == 1) dcdiff = get_bits(gb, 10);
  1740. else if (v->pq == 2) dcdiff = get_bits(gb, 9);
  1741. else dcdiff = get_bits(gb, 8);
  1742. }
  1743. else
  1744. {
  1745. if (v->pq == 1)
  1746. dcdiff = (dcdiff<<2) + get_bits(gb, 2) - 3;
  1747. else if (v->pq == 2)
  1748. dcdiff = (dcdiff<<1) + get_bits(gb, 1) - 1;
  1749. }
  1750. if (get_bits(gb, 1))
  1751. dcdiff = -dcdiff;
  1752. }
  1753. /* Prediction */
  1754. dcdiff += vc1_i_pred_dc(&v->s, v->overlap, v->pq, n, &dc_val, &dc_pred_dir);
  1755. *dc_val = dcdiff;
  1756. /* Store the quantized DC coeff, used for prediction */
  1757. if (n < 4) {
  1758. block[0] = dcdiff * s->y_dc_scale;
  1759. } else {
  1760. block[0] = dcdiff * s->c_dc_scale;
  1761. }
  1762. /* Skip ? */
  1763. run_diff = 0;
  1764. i = 0;
  1765. if (!coded) {
  1766. goto not_coded;
  1767. }
  1768. //AC Decoding
  1769. i = 1;
  1770. {
  1771. int last = 0, skip, value;
  1772. const int8_t *zz_table;
  1773. int scale;
  1774. int k;
  1775. scale = v->pq * 2 + v->halfpq;
  1776. if(v->s.ac_pred) {
  1777. if(!dc_pred_dir)
  1778. zz_table = vc1_horizontal_zz;
  1779. else
  1780. zz_table = vc1_vertical_zz;
  1781. } else
  1782. zz_table = vc1_normal_zz;
  1783. ac_val = s->ac_val[0][0] + s->block_index[n] * 16;
  1784. ac_val2 = ac_val;
  1785. if(dc_pred_dir) //left
  1786. ac_val -= 16;
  1787. else //top
  1788. ac_val -= 16 * s->block_wrap[n];
  1789. while (!last) {
  1790. vc1_decode_ac_coeff(v, &last, &skip, &value, codingset);
  1791. i += skip;
  1792. if(i > 63)
  1793. break;
  1794. block[zz_table[i++]] = value;
  1795. }
  1796. /* apply AC prediction if needed */
  1797. if(s->ac_pred) {
  1798. if(dc_pred_dir) { //left
  1799. for(k = 1; k < 8; k++)
  1800. block[k << 3] += ac_val[k];
  1801. } else { //top
  1802. for(k = 1; k < 8; k++)
  1803. block[k] += ac_val[k + 8];
  1804. }
  1805. }
  1806. /* save AC coeffs for further prediction */
  1807. for(k = 1; k < 8; k++) {
  1808. ac_val2[k] = block[k << 3];
  1809. ac_val2[k + 8] = block[k];
  1810. }
  1811. /* scale AC coeffs */
  1812. for(k = 1; k < 64; k++)
  1813. if(block[k]) {
  1814. block[k] *= scale;
  1815. if(!v->pquantizer)
  1816. block[k] += (block[k] < 0) ? -v->pq : v->pq;
  1817. }
  1818. if(s->ac_pred) i = 63;
  1819. }
  1820. not_coded:
  1821. if(!coded) {
  1822. int k, scale;
  1823. ac_val = s->ac_val[0][0] + s->block_index[n] * 16;
  1824. ac_val2 = ac_val;
  1825. scale = v->pq * 2 + v->halfpq;
  1826. memset(ac_val2, 0, 16 * 2);
  1827. if(dc_pred_dir) {//left
  1828. ac_val -= 16;
  1829. if(s->ac_pred)
  1830. memcpy(ac_val2, ac_val, 8 * 2);
  1831. } else {//top
  1832. ac_val -= 16 * s->block_wrap[n];
  1833. if(s->ac_pred)
  1834. memcpy(ac_val2 + 8, ac_val + 8, 8 * 2);
  1835. }
  1836. /* apply AC prediction if needed */
  1837. if(s->ac_pred) {
  1838. if(dc_pred_dir) { //left
  1839. for(k = 1; k < 8; k++) {
  1840. block[k << 3] = ac_val[k] * scale;
  1841. if(!v->pquantizer)
  1842. block[k << 3] += (block[k << 3] < 0) ? -v->pq : v->pq;
  1843. }
  1844. } else { //top
  1845. for(k = 1; k < 8; k++) {
  1846. block[k] = ac_val[k + 8] * scale;
  1847. if(!v->pquantizer)
  1848. block[k] += (block[k] < 0) ? -v->pq : v->pq;
  1849. }
  1850. }
  1851. i = 63;
  1852. }
  1853. }
  1854. s->block_last_index[n] = i;
  1855. return 0;
  1856. }
  1857. /** Decode intra block in inter frames - more generic version than vc1_decode_i_block
  1858. * @param v VC1Context
  1859. * @param block block to decode
  1860. * @param coded are AC coeffs present or not
  1861. * @param mquant block quantizer
  1862. * @param codingset set of VLC to decode data
  1863. */
  1864. static int vc1_decode_intra_block(VC1Context *v, DCTELEM block[64], int n, int coded, int mquant, int codingset)
  1865. {
  1866. GetBitContext *gb = &v->s.gb;
  1867. MpegEncContext *s = &v->s;
  1868. int dc_pred_dir = 0; /* Direction of the DC prediction used */
  1869. int run_diff, i;
  1870. int16_t *dc_val;
  1871. int16_t *ac_val, *ac_val2;
  1872. int dcdiff;
  1873. int mb_pos = s->mb_x + s->mb_y * s->mb_stride;
  1874. int a_avail = v->a_avail, c_avail = v->c_avail;
  1875. int use_pred = s->ac_pred;
  1876. int scale;
  1877. int q1, q2 = 0;
  1878. /* XXX: Guard against dumb values of mquant */
  1879. mquant = (mquant < 1) ? 0 : ( (mquant>31) ? 31 : mquant );
  1880. /* Set DC scale - y and c use the same */
  1881. s->y_dc_scale = s->y_dc_scale_table[mquant];
  1882. s->c_dc_scale = s->c_dc_scale_table[mquant];
  1883. /* Get DC differential */
  1884. if (n < 4) {
  1885. dcdiff = get_vlc2(&s->gb, ff_msmp4_dc_luma_vlc[s->dc_table_index].table, DC_VLC_BITS, 3);
  1886. } else {
  1887. dcdiff = get_vlc2(&s->gb, ff_msmp4_dc_chroma_vlc[s->dc_table_index].table, DC_VLC_BITS, 3);
  1888. }
  1889. if (dcdiff < 0){
  1890. av_log(s->avctx, AV_LOG_ERROR, "Illegal DC VLC\n");
  1891. return -1;
  1892. }
  1893. if (dcdiff)
  1894. {
  1895. if (dcdiff == 119 /* ESC index value */)
  1896. {
  1897. /* TODO: Optimize */
  1898. if (mquant == 1) dcdiff = get_bits(gb, 10);
  1899. else if (mquant == 2) dcdiff = get_bits(gb, 9);
  1900. else dcdiff = get_bits(gb, 8);
  1901. }
  1902. else
  1903. {
  1904. if (mquant == 1)
  1905. dcdiff = (dcdiff<<2) + get_bits(gb, 2) - 3;
  1906. else if (mquant == 2)
  1907. dcdiff = (dcdiff<<1) + get_bits(gb, 1) - 1;
  1908. }
  1909. if (get_bits(gb, 1))
  1910. dcdiff = -dcdiff;
  1911. }
  1912. /* Prediction */
  1913. dcdiff += vc1_pred_dc(&v->s, v->overlap, mquant, n, a_avail, c_avail, &dc_val, &dc_pred_dir);
  1914. *dc_val = dcdiff;
  1915. /* Store the quantized DC coeff, used for prediction */
  1916. if (n < 4) {
  1917. block[0] = dcdiff * s->y_dc_scale;
  1918. } else {
  1919. block[0] = dcdiff * s->c_dc_scale;
  1920. }
  1921. /* Skip ? */
  1922. run_diff = 0;
  1923. i = 0;
  1924. //AC Decoding
  1925. i = 1;
  1926. /* check if AC is needed at all and adjust direction if needed */
  1927. if(!a_avail) dc_pred_dir = 1;
  1928. if(!c_avail) dc_pred_dir = 0;
  1929. if(!a_avail && !c_avail) use_pred = 0;
  1930. ac_val = s->ac_val[0][0] + s->block_index[n] * 16;
  1931. ac_val2 = ac_val;
  1932. scale = mquant * 2;
  1933. if(dc_pred_dir) //left
  1934. ac_val -= 16;
  1935. else //top
  1936. ac_val -= 16 * s->block_wrap[n];
  1937. q1 = s->current_picture.qscale_table[mb_pos];
  1938. if(dc_pred_dir && c_avail) q2 = s->current_picture.qscale_table[mb_pos - 1];
  1939. if(!dc_pred_dir && a_avail) q2 = s->current_picture.qscale_table[mb_pos - s->mb_stride];
  1940. if(n && n<4) q2 = q1;
  1941. if(coded) {
  1942. int last = 0, skip, value;
  1943. const int8_t *zz_table;
  1944. int k;
  1945. zz_table = vc1_simple_progressive_8x8_zz;
  1946. while (!last) {
  1947. vc1_decode_ac_coeff(v, &last, &skip, &value, codingset);
  1948. i += skip;
  1949. if(i > 63)
  1950. break;
  1951. block[zz_table[i++]] = value;
  1952. }
  1953. /* apply AC prediction if needed */
  1954. if(use_pred) {
  1955. /* scale predictors if needed*/
  1956. if(q2 && q1!=q2) {
  1957. q1 = q1 * 2 - 1;
  1958. q2 = q2 * 2 - 1;
  1959. if(dc_pred_dir) { //left
  1960. for(k = 1; k < 8; k++)
  1961. block[k << 3] += (ac_val[k] * q2 * vc1_dqscale[q1 - 1] + 0x20000) >> 18;
  1962. } else { //top
  1963. for(k = 1; k < 8; k++)
  1964. block[k] += (ac_val[k + 8] * q2 * vc1_dqscale[q1 - 1] + 0x20000) >> 18;
  1965. }
  1966. } else {
  1967. if(dc_pred_dir) { //left
  1968. for(k = 1; k < 8; k++)
  1969. block[k << 3] += ac_val[k];
  1970. } else { //top
  1971. for(k = 1; k < 8; k++)
  1972. block[k] += ac_val[k + 8];
  1973. }
  1974. }
  1975. }
  1976. /* save AC coeffs for further prediction */
  1977. for(k = 1; k < 8; k++) {
  1978. ac_val2[k] = block[k << 3];
  1979. ac_val2[k + 8] = block[k];
  1980. }
  1981. /* scale AC coeffs */
  1982. for(k = 1; k < 64; k++)
  1983. if(block[k]) {
  1984. block[k] *= scale;
  1985. if(!v->pquantizer)
  1986. block[k] += (block[k] < 0) ? -mquant : mquant;
  1987. }
  1988. if(use_pred) i = 63;
  1989. } else { // no AC coeffs
  1990. int k;
  1991. memset(ac_val2, 0, 16 * 2);
  1992. if(dc_pred_dir) {//left
  1993. if(use_pred) {
  1994. memcpy(ac_val2, ac_val, 8 * 2);
  1995. if(q2 && q1!=q2) {
  1996. q1 = q1 * 2 - 1;
  1997. q2 = q2 * 2 - 1;
  1998. for(k = 1; k < 8; k++)
  1999. ac_val2[k] = (ac_val2[k] * q2 * vc1_dqscale[q1 - 1] + 0x20000) >> 18;
  2000. }
  2001. }
  2002. } else {//top
  2003. if(use_pred) {
  2004. memcpy(ac_val2 + 8, ac_val + 8, 8 * 2);
  2005. if(q2 && q1!=q2) {
  2006. q1 = q1 * 2 - 1;
  2007. q2 = q2 * 2 - 1;
  2008. for(k = 1; k < 8; k++)
  2009. ac_val2[k + 8] = (ac_val2[k + 8] * q2 * vc1_dqscale[q1 - 1] + 0x20000) >> 18;
  2010. }
  2011. }
  2012. }
  2013. /* apply AC prediction if needed */
  2014. if(use_pred) {
  2015. if(dc_pred_dir) { //left
  2016. for(k = 1; k < 8; k++) {
  2017. block[k << 3] = ac_val2[k] * scale;
  2018. if(!v->pquantizer)
  2019. block[k << 3] += (block[k << 3] < 0) ? -mquant : mquant;
  2020. }
  2021. } else { //top
  2022. for(k = 1; k < 8; k++) {
  2023. block[k] = ac_val2[k + 8] * scale;
  2024. if(!v->pquantizer)
  2025. block[k] += (block[k] < 0) ? -mquant : mquant;
  2026. }
  2027. }
  2028. i = 63;
  2029. }
  2030. }
  2031. s->block_last_index[n] = i;
  2032. return 0;
  2033. }
  2034. /** Decode P block
  2035. */
  2036. static int vc1_decode_p_block(VC1Context *v, DCTELEM block[64], int n, int mquant, int ttmb, int first_block)
  2037. {
  2038. MpegEncContext *s = &v->s;
  2039. GetBitContext *gb = &s->gb;
  2040. int i, j;
  2041. int subblkpat = 0;
  2042. int scale, off, idx, last, skip, value;
  2043. int ttblk = ttmb & 7;
  2044. if(ttmb == -1) {
  2045. ttblk = ttblk_to_tt[v->tt_index][get_vlc2(gb, vc1_ttblk_vlc[v->tt_index].table, VC1_TTBLK_VLC_BITS, 1)];
  2046. }
  2047. if(ttblk == TT_4X4) {
  2048. subblkpat = ~(get_vlc2(gb, vc1_subblkpat_vlc[v->tt_index].table, VC1_SUBBLKPAT_VLC_BITS, 1) + 1);
  2049. }
  2050. if((ttblk != TT_8X8 && ttblk != TT_4X4) && (v->ttmbf || (ttmb != -1 && (ttmb & 8) && !first_block))) {
  2051. subblkpat = decode012(gb);
  2052. if(subblkpat) subblkpat ^= 3; //swap decoded pattern bits
  2053. if(ttblk == TT_8X4_TOP || ttblk == TT_8X4_BOTTOM) ttblk = TT_8X4;
  2054. if(ttblk == TT_4X8_RIGHT || ttblk == TT_4X8_LEFT) ttblk = TT_4X8;
  2055. }
  2056. scale = 2 * mquant;
  2057. // convert transforms like 8X4_TOP to generic TT and SUBBLKPAT
  2058. if(ttblk == TT_8X4_TOP || ttblk == TT_8X4_BOTTOM) {
  2059. subblkpat = 2 - (ttblk == TT_8X4_TOP);
  2060. ttblk = TT_8X4;
  2061. }
  2062. if(ttblk == TT_4X8_RIGHT || ttblk == TT_4X8_LEFT) {
  2063. subblkpat = 2 - (ttblk == TT_4X8_LEFT);
  2064. ttblk = TT_4X8;
  2065. }
  2066. switch(ttblk) {
  2067. case TT_8X8:
  2068. i = 0;
  2069. last = 0;
  2070. while (!last) {
  2071. vc1_decode_ac_coeff(v, &last, &skip, &value, v->codingset2);
  2072. i += skip;
  2073. if(i > 63)
  2074. break;
  2075. idx = vc1_simple_progressive_8x8_zz[i++];
  2076. block[idx] = value * scale;
  2077. }
  2078. vc1_inv_trans(block, 8, 8);
  2079. break;
  2080. case TT_4X4:
  2081. for(j = 0; j < 4; j++) {
  2082. last = subblkpat & (1 << (3 - j));
  2083. i = 0;
  2084. off = (j & 1) * 4 + (j & 2) * 16;
  2085. while (!last) {
  2086. vc1_decode_ac_coeff(v, &last, &skip, &value, v->codingset2);
  2087. i += skip;
  2088. if(i > 15)
  2089. break;
  2090. idx = vc1_simple_progressive_4x4_zz[i++];
  2091. block[idx + off] = value * scale;
  2092. }
  2093. if(!(subblkpat & (1 << (3 - j))))
  2094. vc1_inv_trans(block + off, 4, 4);
  2095. }
  2096. break;
  2097. case TT_8X4:
  2098. for(j = 0; j < 2; j++) {
  2099. last = subblkpat & (1 << (1 - j));
  2100. i = 0;
  2101. off = j * 32;
  2102. while (!last) {
  2103. vc1_decode_ac_coeff(v, &last, &skip, &value, v->codingset2);
  2104. i += skip;
  2105. if(i > 31)
  2106. break;
  2107. idx = vc1_simple_progressive_8x4_zz[i++];
  2108. block[idx + off] = value * scale;
  2109. }
  2110. if(!(subblkpat & (1 << (1 - j))))
  2111. vc1_inv_trans(block + off, 8, 4);
  2112. }
  2113. break;
  2114. case TT_4X8:
  2115. for(j = 0; j < 2; j++) {
  2116. last = subblkpat & (1 << (1 - j));
  2117. i = 0;
  2118. off = j * 4;
  2119. while (!last) {
  2120. vc1_decode_ac_coeff(v, &last, &skip, &value, v->codingset2);
  2121. i += skip;
  2122. if(i > 31)
  2123. break;
  2124. idx = vc1_simple_progressive_4x8_zz[i++];
  2125. block[idx + off] = value * scale;
  2126. }
  2127. if(!(subblkpat & (1 << (1 - j))))
  2128. vc1_inv_trans(block + off, 4, 8);
  2129. }
  2130. break;
  2131. }
  2132. return 0;
  2133. }
  2134. /** Decode one P-frame MB (in Simple/Main profile)
  2135. * @todo TODO: Extend to AP
  2136. * @fixme FIXME: DC value for inter blocks not set
  2137. */
  2138. static int vc1_decode_p_mb(VC1Context *v, DCTELEM block[6][64])
  2139. {
  2140. MpegEncContext *s = &v->s;
  2141. GetBitContext *gb = &s->gb;
  2142. int i, j;
  2143. int mb_pos = s->mb_x + s->mb_y * s->mb_stride;
  2144. int cbp; /* cbp decoding stuff */
  2145. int mqdiff, mquant; /* MB quantization */
  2146. int ttmb = v->ttfrm; /* MB Transform type */
  2147. int status;
  2148. static const int size_table[6] = { 0, 2, 3, 4, 5, 8 },
  2149. offset_table[6] = { 0, 1, 3, 7, 15, 31 };
  2150. int mb_has_coeffs = 1; /* last_flag */
  2151. int dmv_x, dmv_y; /* Differential MV components */
  2152. int index, index1; /* LUT indices */
  2153. int val, sign; /* temp values */
  2154. int first_block = 1;
  2155. int dst_idx, off;
  2156. int skipped, fourmv;
  2157. mquant = v->pq; /* Loosy initialization */
  2158. if (v->mv_type_is_raw)
  2159. fourmv = get_bits1(gb);
  2160. else
  2161. fourmv = v->mv_type_mb_plane[mb_pos];
  2162. if (v->skip_is_raw)
  2163. skipped = get_bits1(gb);
  2164. else
  2165. skipped = v->s.mbskip_table[mb_pos];
  2166. s->dsp.clear_blocks(s->block[0]);
  2167. if (!fourmv) /* 1MV mode */
  2168. {
  2169. if (!skipped)
  2170. {
  2171. GET_MVDATA(dmv_x, dmv_y);
  2172. s->current_picture.mb_type[mb_pos] = s->mb_intra ? MB_TYPE_INTRA : MB_TYPE_16x16;
  2173. vc1_pred_mv(s, 0, dmv_x, dmv_y, 1, v->range_x, v->range_y, v->mb_type[0]);
  2174. /* FIXME Set DC val for inter block ? */
  2175. if (s->mb_intra && !mb_has_coeffs)
  2176. {
  2177. GET_MQUANT();
  2178. s->ac_pred = get_bits(gb, 1);
  2179. cbp = 0;
  2180. }
  2181. else if (mb_has_coeffs)
  2182. {
  2183. if (s->mb_intra) s->ac_pred = get_bits(gb, 1);
  2184. cbp = get_vlc2(&v->s.gb, v->cbpcy_vlc->table, VC1_CBPCY_P_VLC_BITS, 2);
  2185. GET_MQUANT();
  2186. }
  2187. else
  2188. {
  2189. mquant = v->pq;
  2190. cbp = 0;
  2191. }
  2192. s->current_picture.qscale_table[mb_pos] = mquant;
  2193. if (!v->ttmbf && !s->mb_intra && mb_has_coeffs)
  2194. ttmb = get_vlc2(gb, vc1_ttmb_vlc[v->tt_index].table,
  2195. VC1_TTMB_VLC_BITS, 2);
  2196. if(!s->mb_intra) vc1_mc_1mv(v);
  2197. dst_idx = 0;
  2198. for (i=0; i<6; i++)
  2199. {
  2200. s->dc_val[0][s->block_index[i]] = 0;
  2201. dst_idx += i >> 2;
  2202. val = ((cbp >> (5 - i)) & 1);
  2203. off = (i & 4) ? 0 : ((i & 1) * 8 + (i & 2) * 4 * s->linesize);
  2204. v->mb_type[0][s->block_index[i]] = s->mb_intra;
  2205. if(s->mb_intra) {
  2206. /* check if prediction blocks A and C are available */
  2207. v->a_avail = v->c_avail = 0;
  2208. if(i == 2 || i == 3 || s->mb_y)
  2209. v->a_avail = v->mb_type[0][s->block_index[i] - s->block_wrap[i]];
  2210. if(i == 1 || i == 3 || s->mb_x)
  2211. v->c_avail = v->mb_type[0][s->block_index[i] - 1];
  2212. vc1_decode_intra_block(v, block[i], i, val, mquant, (i&4)?v->codingset2:v->codingset);
  2213. vc1_inv_trans(block[i], 8, 8);
  2214. for(j = 0; j < 64; j++) block[i][j] += 128;
  2215. s->dsp.put_pixels_clamped(block[i], s->dest[dst_idx] + off, s->linesize >> ((i & 4) >> 2));
  2216. /* TODO: proper loop filtering */
  2217. if(v->pq >= 9 && v->overlap) {
  2218. if(v->a_avail)
  2219. s->dsp.h263_v_loop_filter(s->dest[dst_idx] + off, s->linesize >> ((i & 4) >> 2), s->y_dc_scale);
  2220. if(v->c_avail)
  2221. s->dsp.h263_h_loop_filter(s->dest[dst_idx] + off, s->linesize >> ((i & 4) >> 2), s->y_dc_scale);
  2222. }
  2223. } else if(val) {
  2224. vc1_decode_p_block(v, block[i], i, mquant, ttmb, first_block);
  2225. if(!v->ttmbf && ttmb < 8) ttmb = -1;
  2226. first_block = 0;
  2227. s->dsp.add_pixels_clamped(block[i], s->dest[dst_idx] + off, (i&4)?s->uvlinesize:s->linesize);
  2228. }
  2229. }
  2230. }
  2231. else //Skipped
  2232. {
  2233. s->mb_intra = 0;
  2234. for(i = 0; i < 6; i++) v->mb_type[0][s->block_index[i]] = 0;
  2235. s->current_picture.mb_type[mb_pos] = MB_TYPE_SKIP;
  2236. s->current_picture.qscale_table[mb_pos] = 0;
  2237. vc1_pred_mv(s, 0, 0, 0, 1, v->range_x, v->range_y, v->mb_type[0]);
  2238. vc1_mc_1mv(v);
  2239. return 0;
  2240. }
  2241. } //1MV mode
  2242. else //4MV mode
  2243. {
  2244. if (!skipped /* unskipped MB */)
  2245. {
  2246. int intra_count = 0, coded_inter = 0;
  2247. int is_intra[6], is_coded[6];
  2248. /* Get CBPCY */
  2249. cbp = get_vlc2(&v->s.gb, v->cbpcy_vlc->table, VC1_CBPCY_P_VLC_BITS, 2);
  2250. for (i=0; i<6; i++)
  2251. {
  2252. val = ((cbp >> (5 - i)) & 1);
  2253. s->dc_val[0][s->block_index[i]] = 0;
  2254. s->mb_intra = 0;
  2255. if(i < 4) {
  2256. dmv_x = dmv_y = 0;
  2257. s->mb_intra = 0;
  2258. mb_has_coeffs = 0;
  2259. if(val) {
  2260. GET_MVDATA(dmv_x, dmv_y);
  2261. }
  2262. vc1_pred_mv(s, i, dmv_x, dmv_y, 0, v->range_x, v->range_y, v->mb_type[0]);
  2263. if(!s->mb_intra) vc1_mc_4mv_luma(v, i);
  2264. intra_count += s->mb_intra;
  2265. is_intra[i] = s->mb_intra;
  2266. is_coded[i] = mb_has_coeffs;
  2267. }
  2268. if(i&4){
  2269. is_intra[i] = (intra_count >= 3);
  2270. is_coded[i] = val;
  2271. }
  2272. if(i == 4) vc1_mc_4mv_chroma(v);
  2273. v->mb_type[0][s->block_index[i]] = is_intra[i];
  2274. if(!coded_inter) coded_inter = !is_intra[i] & is_coded[i];
  2275. }
  2276. dst_idx = 0;
  2277. GET_MQUANT();
  2278. s->current_picture.qscale_table[mb_pos] = mquant;
  2279. /* test if block is intra and has pred */
  2280. {
  2281. int intrapred = 0;
  2282. for(i=0; i<6; i++)
  2283. if(is_intra[i]) {
  2284. if(((s->mb_y || (i==2 || i==3)) && v->mb_type[0][s->block_index[i] - s->block_wrap[i]])
  2285. || ((s->mb_x || (i==1 || i==3)) && v->mb_type[0][s->block_index[i] - 1])) {
  2286. intrapred = 1;
  2287. break;
  2288. }
  2289. }
  2290. if(intrapred)s->ac_pred = get_bits(gb, 1);
  2291. else s->ac_pred = 0;
  2292. }
  2293. if (!v->ttmbf && coded_inter)
  2294. ttmb = get_vlc2(gb, vc1_ttmb_vlc[v->tt_index].table, VC1_TTMB_VLC_BITS, 12);
  2295. for (i=0; i<6; i++)
  2296. {
  2297. dst_idx += i >> 2;
  2298. off = (i & 4) ? 0 : ((i & 1) * 8 + (i & 2) * 4 * s->linesize);
  2299. s->mb_intra = is_intra[i];
  2300. if (is_intra[i]) {
  2301. /* check if prediction blocks A and C are available */
  2302. v->a_avail = v->c_avail = 0;
  2303. if(i == 2 || i == 3 || s->mb_y)
  2304. v->a_avail = v->mb_type[0][s->block_index[i] - s->block_wrap[i]];
  2305. if(i == 1 || i == 3 || s->mb_x)
  2306. v->c_avail = v->mb_type[0][s->block_index[i] - 1];
  2307. vc1_decode_intra_block(v, s->block[i], i, is_coded[i], mquant, (i&4)?v->codingset2:v->codingset);
  2308. vc1_inv_trans(block[i], 8, 8);
  2309. for(j = 0; j < 64; j++) block[i][j] += 128;
  2310. s->dsp.put_pixels_clamped(s->block[i], s->dest[dst_idx] + off, (i&4)?s->uvlinesize:s->linesize);
  2311. /* TODO: proper loop filtering */
  2312. if(v->pq >= 9 && v->overlap) {
  2313. if(v->a_avail)
  2314. s->dsp.h263_v_loop_filter(s->dest[dst_idx] + off, s->linesize >> ((i & 4) >> 2), s->y_dc_scale);
  2315. if(v->c_avail)
  2316. s->dsp.h263_h_loop_filter(s->dest[dst_idx] + off, s->linesize >> ((i & 4) >> 2), s->y_dc_scale);
  2317. }
  2318. } else if(is_coded[i]) {
  2319. status = vc1_decode_p_block(v, s->block[i], i, mquant, ttmb, first_block);
  2320. if(!v->ttmbf && ttmb < 8) ttmb = -1;
  2321. first_block = 0;
  2322. s->dsp.add_pixels_clamped(s->block[i], s->dest[dst_idx] + off, (i&4)?s->uvlinesize:s->linesize);
  2323. }
  2324. }
  2325. return status;
  2326. }
  2327. else //Skipped MB
  2328. {
  2329. s->mb_intra = 0;
  2330. for (i=0; i<6; i++) v->mb_type[0][s->block_index[i]] = 0;
  2331. for (i=0; i<4; i++)
  2332. {
  2333. vc1_pred_mv(s, i, 0, 0, 0, v->range_x, v->range_y, v->mb_type[0]);
  2334. vc1_mc_4mv_luma(v, i);
  2335. }
  2336. vc1_mc_4mv_chroma(v);
  2337. s->current_picture.qscale_table[mb_pos] = 0;
  2338. return 0;
  2339. }
  2340. }
  2341. /* Should never happen */
  2342. return -1;
  2343. }
  2344. /** Decode blocks of I-frame
  2345. */
  2346. static void vc1_decode_i_blocks(VC1Context *v)
  2347. {
  2348. int k;
  2349. MpegEncContext *s = &v->s;
  2350. int cbp, val;
  2351. uint8_t *coded_val;
  2352. int mb_pos;
  2353. /* select codingmode used for VLC tables selection */
  2354. switch(v->y_ac_table_index){
  2355. case 0:
  2356. v->codingset = (v->pqindex <= 8) ? CS_HIGH_RATE_INTRA : CS_LOW_MOT_INTRA;
  2357. break;
  2358. case 1:
  2359. v->codingset = CS_HIGH_MOT_INTRA;
  2360. break;
  2361. case 2:
  2362. v->codingset = CS_MID_RATE_INTRA;
  2363. break;
  2364. }
  2365. switch(v->c_ac_table_index){
  2366. case 0:
  2367. v->codingset2 = (v->pqindex <= 8) ? CS_HIGH_RATE_INTER : CS_LOW_MOT_INTER;
  2368. break;
  2369. case 1:
  2370. v->codingset2 = CS_HIGH_MOT_INTER;
  2371. break;
  2372. case 2:
  2373. v->codingset2 = CS_MID_RATE_INTER;
  2374. break;
  2375. }
  2376. /* Set DC scale - y and c use the same */
  2377. s->y_dc_scale = s->y_dc_scale_table[v->pq];
  2378. s->c_dc_scale = s->c_dc_scale_table[v->pq];
  2379. //do frame decode
  2380. s->mb_x = s->mb_y = 0;
  2381. s->mb_intra = 1;
  2382. ff_er_add_slice(s, 0, 0, s->mb_width - 1, s->mb_height - 1, (AC_END|DC_END|MV_END));
  2383. for(s->mb_y = 0; s->mb_y < s->mb_height; s->mb_y++) {
  2384. for(s->mb_x = 0; s->mb_x < s->mb_width; s->mb_x++) {
  2385. ff_init_block_index(s);
  2386. ff_update_block_index(s);
  2387. s->dsp.clear_blocks(s->block[0]);
  2388. mb_pos = s->mb_x + s->mb_y * s->mb_width;
  2389. s->current_picture.mb_type[mb_pos] = MB_TYPE_INTRA;
  2390. s->current_picture.qscale_table[mb_pos] = v->pq;
  2391. // do actual MB decoding and displaying
  2392. cbp = get_vlc2(&v->s.gb, ff_msmp4_mb_i_vlc.table, MB_INTRA_VLC_BITS, 2);
  2393. v->s.ac_pred = get_bits(&v->s.gb, 1);
  2394. for(k = 0; k < 6; k++) {
  2395. val = ((cbp >> (5 - k)) & 1);
  2396. if (k < 4) {
  2397. int pred = vc1_coded_block_pred(&v->s, k, &coded_val);
  2398. val = val ^ pred;
  2399. *coded_val = val;
  2400. }
  2401. cbp |= val << (5 - k);
  2402. vc1_decode_i_block(v, s->block[k], k, val, (k<4)? v->codingset : v->codingset2);
  2403. vc1_inv_trans(s->block[k], 8, 8);
  2404. if(v->pq >= 9 && v->overlap) {
  2405. vc1_overlap_block(s, s->block[k], k, (s->mb_y || k>1), (s->mb_x || (k != 0 && k != 2)));
  2406. }
  2407. }
  2408. vc1_put_block(v, s->block);
  2409. if(v->pq >= 9 && v->overlap) { /* XXX: do proper overlapping insted of loop filter */
  2410. if(s->mb_y) {
  2411. s->dsp.h263_v_loop_filter(s->dest[0], s->linesize, s->y_dc_scale);
  2412. s->dsp.h263_v_loop_filter(s->dest[0] + 8, s->linesize, s->y_dc_scale);
  2413. s->dsp.h263_v_loop_filter(s->dest[1], s->uvlinesize, s->y_dc_scale);
  2414. s->dsp.h263_v_loop_filter(s->dest[2], s->uvlinesize, s->y_dc_scale);
  2415. }
  2416. s->dsp.h263_v_loop_filter(s->dest[0] + 8 * s->linesize, s->linesize, s->y_dc_scale);
  2417. s->dsp.h263_v_loop_filter(s->dest[0] + 8 * s->linesize + 8, s->linesize, s->y_dc_scale);
  2418. if(s->mb_x) {
  2419. s->dsp.h263_h_loop_filter(s->dest[0], s->linesize, s->y_dc_scale);
  2420. s->dsp.h263_h_loop_filter(s->dest[0] + 8 * s->linesize, s->linesize, s->y_dc_scale);
  2421. s->dsp.h263_h_loop_filter(s->dest[1], s->uvlinesize, s->y_dc_scale);
  2422. s->dsp.h263_h_loop_filter(s->dest[2], s->uvlinesize, s->y_dc_scale);
  2423. }
  2424. s->dsp.h263_h_loop_filter(s->dest[0] + 8, s->linesize, s->y_dc_scale);
  2425. s->dsp.h263_h_loop_filter(s->dest[0] + 8 * s->linesize + 8, s->linesize, s->y_dc_scale);
  2426. }
  2427. if(get_bits_count(&s->gb) > v->bits) {
  2428. av_log(s->avctx, AV_LOG_ERROR, "Bits overconsumption: %i > %i\n", get_bits_count(&s->gb), v->bits);
  2429. return;
  2430. }
  2431. }
  2432. ff_draw_horiz_band(s, s->mb_y * 16, 16);
  2433. }
  2434. }
  2435. static void vc1_decode_p_blocks(VC1Context *v)
  2436. {
  2437. MpegEncContext *s = &v->s;
  2438. /* select codingmode used for VLC tables selection */
  2439. switch(v->c_ac_table_index){
  2440. case 0:
  2441. v->codingset = (v->pqindex <= 8) ? CS_HIGH_RATE_INTRA : CS_LOW_MOT_INTRA;
  2442. break;
  2443. case 1:
  2444. v->codingset = CS_HIGH_MOT_INTRA;
  2445. break;
  2446. case 2:
  2447. v->codingset = CS_MID_RATE_INTRA;
  2448. break;
  2449. }
  2450. switch(v->c_ac_table_index){
  2451. case 0:
  2452. v->codingset2 = (v->pqindex <= 8) ? CS_HIGH_RATE_INTER : CS_LOW_MOT_INTER;
  2453. break;
  2454. case 1:
  2455. v->codingset2 = CS_HIGH_MOT_INTER;
  2456. break;
  2457. case 2:
  2458. v->codingset2 = CS_MID_RATE_INTER;
  2459. break;
  2460. }
  2461. ff_er_add_slice(s, 0, 0, s->mb_width - 1, s->mb_height - 1, (AC_END|DC_END|MV_END));
  2462. s->first_slice_line = 1;
  2463. for(s->mb_y = 0; s->mb_y < s->mb_height; s->mb_y++) {
  2464. for(s->mb_x = 0; s->mb_x < s->mb_width; s->mb_x++) {
  2465. ff_init_block_index(s);
  2466. ff_update_block_index(s);
  2467. s->dsp.clear_blocks(s->block[0]);
  2468. vc1_decode_p_mb(v, s->block);
  2469. if(get_bits_count(&s->gb) > v->bits || get_bits_count(&s->gb) < 0) {
  2470. av_log(s->avctx, AV_LOG_ERROR, "Bits overconsumption: %i > %i at %ix%i\n", get_bits_count(&s->gb), v->bits,s->mb_x,s->mb_y);
  2471. return;
  2472. }
  2473. }
  2474. ff_draw_horiz_band(s, s->mb_y * 16, 16);
  2475. s->first_slice_line = 0;
  2476. }
  2477. }
  2478. static void vc1_decode_blocks(VC1Context *v)
  2479. {
  2480. v->s.esc3_level_length = 0;
  2481. switch(v->s.pict_type) {
  2482. case I_TYPE:
  2483. vc1_decode_i_blocks(v);
  2484. break;
  2485. case P_TYPE:
  2486. vc1_decode_p_blocks(v);
  2487. break;
  2488. }
  2489. }
  2490. /** Initialize a VC1/WMV3 decoder
  2491. * @todo TODO: Handle VC-1 IDUs (Transport level?)
  2492. * @todo TODO: Decypher remaining bits in extra_data
  2493. */
  2494. static int vc1_decode_init(AVCodecContext *avctx)
  2495. {
  2496. VC1Context *v = avctx->priv_data;
  2497. MpegEncContext *s = &v->s;
  2498. GetBitContext gb;
  2499. if (!avctx->extradata_size || !avctx->extradata) return -1;
  2500. avctx->pix_fmt = PIX_FMT_YUV420P;
  2501. v->s.avctx = avctx;
  2502. avctx->flags |= CODEC_FLAG_EMU_EDGE;
  2503. v->s.flags |= CODEC_FLAG_EMU_EDGE;
  2504. if(ff_h263_decode_init(avctx) < 0)
  2505. return -1;
  2506. if (vc1_init_common(v) < 0) return -1;
  2507. av_log(avctx, AV_LOG_INFO, "This decoder is not supposed to produce picture. Dont report this as a bug!\n");
  2508. av_log(avctx, AV_LOG_INFO, "If you see a picture, don't believe your eyes.\n");
  2509. avctx->coded_width = avctx->width;
  2510. avctx->coded_height = avctx->height;
  2511. if (avctx->codec_id == CODEC_ID_WMV3)
  2512. {
  2513. int count = 0;
  2514. // looks like WMV3 has a sequence header stored in the extradata
  2515. // advanced sequence header may be before the first frame
  2516. // the last byte of the extradata is a version number, 1 for the
  2517. // samples we can decode
  2518. init_get_bits(&gb, avctx->extradata, avctx->extradata_size*8);
  2519. if (decode_sequence_header(avctx, &gb) < 0)
  2520. return -1;
  2521. count = avctx->extradata_size*8 - get_bits_count(&gb);
  2522. if (count>0)
  2523. {
  2524. av_log(avctx, AV_LOG_INFO, "Extra data: %i bits left, value: %X\n",
  2525. count, get_bits(&gb, count));
  2526. }
  2527. else if (count < 0)
  2528. {
  2529. av_log(avctx, AV_LOG_INFO, "Read %i bits in overflow\n", -count);
  2530. }
  2531. }
  2532. avctx->has_b_frames= !!(avctx->max_b_frames);
  2533. s->mb_width = (avctx->coded_width+15)>>4;
  2534. s->mb_height = (avctx->coded_height+15)>>4;
  2535. /* Allocate mb bitplanes */
  2536. v->mv_type_mb_plane = av_malloc(s->mb_stride * s->mb_height);
  2537. /* allocate block type info in that way so it could be used with s->block_index[] */
  2538. v->mb_type_base = av_malloc(s->b8_stride * (s->mb_height * 2 + 1) + s->mb_stride * (s->mb_height + 1) * 2);
  2539. v->mb_type[0] = v->mb_type_base + s->b8_stride + 1;
  2540. v->mb_type[1] = v->mb_type_base + s->b8_stride * (s->mb_height * 2 + 1) + s->mb_stride + 1;
  2541. v->mb_type[2] = v->mb_type[1] + s->mb_stride * (s->mb_height + 1);
  2542. /* Init coded blocks info */
  2543. if (v->profile == PROFILE_ADVANCED)
  2544. {
  2545. // if (alloc_bitplane(&v->over_flags_plane, s->mb_width, s->mb_height) < 0)
  2546. // return -1;
  2547. // if (alloc_bitplane(&v->ac_pred_plane, s->mb_width, s->mb_height) < 0)
  2548. // return -1;
  2549. }
  2550. return 0;
  2551. }
  2552. /** Decode a VC1/WMV3 frame
  2553. * @todo TODO: Handle VC-1 IDUs (Transport level?)
  2554. * @warning Initial try at using MpegEncContext stuff
  2555. */
  2556. static int vc1_decode_frame(AVCodecContext *avctx,
  2557. void *data, int *data_size,
  2558. uint8_t *buf, int buf_size)
  2559. {
  2560. VC1Context *v = avctx->priv_data;
  2561. MpegEncContext *s = &v->s;
  2562. AVFrame *pict = data;
  2563. /* no supplementary picture */
  2564. if (buf_size == 0) {
  2565. /* special case for last picture */
  2566. if (s->low_delay==0 && s->next_picture_ptr) {
  2567. *pict= *(AVFrame*)s->next_picture_ptr;
  2568. s->next_picture_ptr= NULL;
  2569. *data_size = sizeof(AVFrame);
  2570. }
  2571. return 0;
  2572. }
  2573. //we need to set current_picture_ptr before reading the header, otherwise we cant store anyting im there
  2574. if(s->current_picture_ptr==NULL || s->current_picture_ptr->data[0]){
  2575. int i= ff_find_unused_picture(s, 0);
  2576. s->current_picture_ptr= &s->picture[i];
  2577. }
  2578. avctx->has_b_frames= !s->low_delay;
  2579. init_get_bits(&s->gb, buf, buf_size*8);
  2580. // do parse frame header
  2581. if(vc1_parse_frame_header(v, &s->gb) == -1)
  2582. return -1;
  2583. if(s->pict_type != I_TYPE && s->pict_type != P_TYPE)return -1;
  2584. // for hurry_up==5
  2585. s->current_picture.pict_type= s->pict_type;
  2586. s->current_picture.key_frame= s->pict_type == I_TYPE;
  2587. /* skip B-frames if we don't have reference frames */
  2588. if(s->last_picture_ptr==NULL && (s->pict_type==B_TYPE || s->dropable)) return -1;//buf_size;
  2589. /* skip b frames if we are in a hurry */
  2590. if(avctx->hurry_up && s->pict_type==B_TYPE) return -1;//buf_size;
  2591. if( (avctx->skip_frame >= AVDISCARD_NONREF && s->pict_type==B_TYPE)
  2592. || (avctx->skip_frame >= AVDISCARD_NONKEY && s->pict_type!=I_TYPE)
  2593. || avctx->skip_frame >= AVDISCARD_ALL)
  2594. return buf_size;
  2595. /* skip everything if we are in a hurry>=5 */
  2596. if(avctx->hurry_up>=5) return -1;//buf_size;
  2597. if(s->next_p_frame_damaged){
  2598. if(s->pict_type==B_TYPE)
  2599. return buf_size;
  2600. else
  2601. s->next_p_frame_damaged=0;
  2602. }
  2603. if(MPV_frame_start(s, avctx) < 0)
  2604. return -1;
  2605. ff_er_frame_start(s);
  2606. v->bits = buf_size * 8;
  2607. vc1_decode_blocks(v);
  2608. //av_log(s->avctx, AV_LOG_INFO, "Consumed %i/%i bits\n", get_bits_count(&s->gb), buf_size*8);
  2609. // if(get_bits_count(&s->gb) > buf_size * 8)
  2610. // return -1;
  2611. ff_er_frame_end(s);
  2612. MPV_frame_end(s);
  2613. assert(s->current_picture.pict_type == s->current_picture_ptr->pict_type);
  2614. assert(s->current_picture.pict_type == s->pict_type);
  2615. if (s->pict_type == B_TYPE || s->low_delay) {
  2616. *pict= *(AVFrame*)s->current_picture_ptr;
  2617. } else if (s->last_picture_ptr != NULL) {
  2618. *pict= *(AVFrame*)s->last_picture_ptr;
  2619. }
  2620. if(s->last_picture_ptr || s->low_delay){
  2621. *data_size = sizeof(AVFrame);
  2622. ff_print_debug_info(s, pict);
  2623. }
  2624. /* Return the Picture timestamp as the frame number */
  2625. /* we substract 1 because it is added on utils.c */
  2626. avctx->frame_number = s->picture_number - 1;
  2627. return buf_size;
  2628. }
  2629. /** Close a VC1/WMV3 decoder
  2630. * @warning Initial try at using MpegEncContext stuff
  2631. */
  2632. static int vc1_decode_end(AVCodecContext *avctx)
  2633. {
  2634. VC1Context *v = avctx->priv_data;
  2635. av_freep(&v->hrd_rate);
  2636. av_freep(&v->hrd_buffer);
  2637. MPV_common_end(&v->s);
  2638. av_freep(&v->mv_type_mb_plane);
  2639. av_freep(&v->mb_type_base);
  2640. return 0;
  2641. }
  2642. AVCodec vc1_decoder = {
  2643. "vc1",
  2644. CODEC_TYPE_VIDEO,
  2645. CODEC_ID_VC1,
  2646. sizeof(VC1Context),
  2647. vc1_decode_init,
  2648. NULL,
  2649. vc1_decode_end,
  2650. vc1_decode_frame,
  2651. CODEC_CAP_DELAY,
  2652. NULL
  2653. };
  2654. AVCodec wmv3_decoder = {
  2655. "wmv3",
  2656. CODEC_TYPE_VIDEO,
  2657. CODEC_ID_WMV3,
  2658. sizeof(VC1Context),
  2659. vc1_decode_init,
  2660. NULL,
  2661. vc1_decode_end,
  2662. vc1_decode_frame,
  2663. CODEC_CAP_DELAY,
  2664. NULL
  2665. };