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  1. /*
  2. * HEVC CABAC decoding
  3. *
  4. * Copyright (C) 2012 - 2013 Guillaume Martres
  5. * Copyright (C) 2012 - 2013 Gildas Cocherel
  6. *
  7. * This file is part of Libav.
  8. *
  9. * Libav is free software; you can redistribute it and/or
  10. * modify it under the terms of the GNU Lesser General Public
  11. * License as published by the Free Software Foundation; either
  12. * version 2.1 of the License, or (at your option) any later version.
  13. *
  14. * Libav is distributed in the hope that it will be useful,
  15. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  16. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  17. * Lesser General Public License for more details.
  18. *
  19. * You should have received a copy of the GNU Lesser General Public
  20. * License along with Libav; if not, write to the Free Software
  21. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  22. */
  23. #include "libavutil/attributes.h"
  24. #include "libavutil/common.h"
  25. #include "cabac_functions.h"
  26. #include "hevc.h"
  27. #include "hevcdec.h"
  28. #define CABAC_MAX_BIN 31
  29. /**
  30. * number of bin by SyntaxElement.
  31. */
  32. static const int8_t num_bins_in_se[] = {
  33. 1, // sao_merge_flag
  34. 1, // sao_type_idx
  35. 0, // sao_eo_class
  36. 0, // sao_band_position
  37. 0, // sao_offset_abs
  38. 0, // sao_offset_sign
  39. 0, // end_of_slice_flag
  40. 3, // split_coding_unit_flag
  41. 1, // cu_transquant_bypass_flag
  42. 3, // skip_flag
  43. 3, // cu_qp_delta
  44. 1, // pred_mode
  45. 4, // part_mode
  46. 0, // pcm_flag
  47. 1, // prev_intra_luma_pred_mode
  48. 0, // mpm_idx
  49. 0, // rem_intra_luma_pred_mode
  50. 2, // intra_chroma_pred_mode
  51. 1, // merge_flag
  52. 1, // merge_idx
  53. 5, // inter_pred_idc
  54. 2, // ref_idx_l0
  55. 2, // ref_idx_l1
  56. 2, // abs_mvd_greater0_flag
  57. 2, // abs_mvd_greater1_flag
  58. 0, // abs_mvd_minus2
  59. 0, // mvd_sign_flag
  60. 1, // mvp_lx_flag
  61. 1, // no_residual_data_flag
  62. 3, // split_transform_flag
  63. 2, // cbf_luma
  64. 4, // cbf_cb, cbf_cr
  65. 2, // transform_skip_flag[][]
  66. 18, // last_significant_coeff_x_prefix
  67. 18, // last_significant_coeff_y_prefix
  68. 0, // last_significant_coeff_x_suffix
  69. 0, // last_significant_coeff_y_suffix
  70. 4, // significant_coeff_group_flag
  71. 42, // significant_coeff_flag
  72. 24, // coeff_abs_level_greater1_flag
  73. 6, // coeff_abs_level_greater2_flag
  74. 0, // coeff_abs_level_remaining
  75. 0, // coeff_sign_flag
  76. };
  77. /**
  78. * Offset to ctxIdx 0 in init_values and states, indexed by SyntaxElement.
  79. */
  80. static const int elem_offset[sizeof(num_bins_in_se)] = {
  81. 0,
  82. 1,
  83. 2,
  84. 2,
  85. 2,
  86. 2,
  87. 2,
  88. 2,
  89. 5,
  90. 6,
  91. 9,
  92. 12,
  93. 13,
  94. 17,
  95. 17,
  96. 18,
  97. 18,
  98. 18,
  99. 20,
  100. 21,
  101. 22,
  102. 27,
  103. 29,
  104. 31,
  105. 33,
  106. 35,
  107. 35,
  108. 35,
  109. 36,
  110. 37,
  111. 40,
  112. 42,
  113. 46,
  114. 48,
  115. 66,
  116. 84,
  117. 84,
  118. 84,
  119. 88,
  120. 130,
  121. 154,
  122. 160,
  123. 160,
  124. };
  125. #define CNU 154
  126. /**
  127. * Indexed by init_type
  128. */
  129. static const uint8_t init_values[3][HEVC_CONTEXTS] = {
  130. { // sao_merge_flag
  131. 153,
  132. // sao_type_idx
  133. 200,
  134. // split_coding_unit_flag
  135. 139, 141, 157,
  136. // cu_transquant_bypass_flag
  137. 154,
  138. // skip_flag
  139. CNU, CNU, CNU,
  140. // cu_qp_delta
  141. 154, 154, 154,
  142. // pred_mode
  143. CNU,
  144. // part_mode
  145. 184, CNU, CNU, CNU,
  146. // prev_intra_luma_pred_mode
  147. 184,
  148. // intra_chroma_pred_mode
  149. 63, 139,
  150. // merge_flag
  151. CNU,
  152. // merge_idx
  153. CNU,
  154. // inter_pred_idc
  155. CNU, CNU, CNU, CNU, CNU,
  156. // ref_idx_l0
  157. CNU, CNU,
  158. // ref_idx_l1
  159. CNU, CNU,
  160. // abs_mvd_greater1_flag
  161. CNU, CNU,
  162. // abs_mvd_greater1_flag
  163. CNU, CNU,
  164. // mvp_lx_flag
  165. CNU,
  166. // no_residual_data_flag
  167. CNU,
  168. // split_transform_flag
  169. 153, 138, 138,
  170. // cbf_luma
  171. 111, 141,
  172. // cbf_cb, cbf_cr
  173. 94, 138, 182, 154,
  174. // transform_skip_flag
  175. 139, 139,
  176. // last_significant_coeff_x_prefix
  177. 110, 110, 124, 125, 140, 153, 125, 127, 140, 109, 111, 143, 127, 111,
  178. 79, 108, 123, 63,
  179. // last_significant_coeff_y_prefix
  180. 110, 110, 124, 125, 140, 153, 125, 127, 140, 109, 111, 143, 127, 111,
  181. 79, 108, 123, 63,
  182. // significant_coeff_group_flag
  183. 91, 171, 134, 141,
  184. // significant_coeff_flag
  185. 111, 111, 125, 110, 110, 94, 124, 108, 124, 107, 125, 141, 179, 153,
  186. 125, 107, 125, 141, 179, 153, 125, 107, 125, 141, 179, 153, 125, 140,
  187. 139, 182, 182, 152, 136, 152, 136, 153, 136, 139, 111, 136, 139, 111,
  188. // coeff_abs_level_greater1_flag
  189. 140, 92, 137, 138, 140, 152, 138, 139, 153, 74, 149, 92, 139, 107,
  190. 122, 152, 140, 179, 166, 182, 140, 227, 122, 197,
  191. // coeff_abs_level_greater2_flag
  192. 138, 153, 136, 167, 152, 152, },
  193. { // sao_merge_flag
  194. 153,
  195. // sao_type_idx
  196. 185,
  197. // split_coding_unit_flag
  198. 107, 139, 126,
  199. // cu_transquant_bypass_flag
  200. 154,
  201. // skip_flag
  202. 197, 185, 201,
  203. // cu_qp_delta
  204. 154, 154, 154,
  205. // pred_mode
  206. 149,
  207. // part_mode
  208. 154, 139, 154, 154,
  209. // prev_intra_luma_pred_mode
  210. 154,
  211. // intra_chroma_pred_mode
  212. 152, 139,
  213. // merge_flag
  214. 110,
  215. // merge_idx
  216. 122,
  217. // inter_pred_idc
  218. 95, 79, 63, 31, 31,
  219. // ref_idx_l0
  220. 153, 153,
  221. // ref_idx_l1
  222. 153, 153,
  223. // abs_mvd_greater1_flag
  224. 140, 198,
  225. // abs_mvd_greater1_flag
  226. 140, 198,
  227. // mvp_lx_flag
  228. 168,
  229. // no_residual_data_flag
  230. 79,
  231. // split_transform_flag
  232. 124, 138, 94,
  233. // cbf_luma
  234. 153, 111,
  235. // cbf_cb, cbf_cr
  236. 149, 107, 167, 154,
  237. // transform_skip_flag
  238. 139, 139,
  239. // last_significant_coeff_x_prefix
  240. 125, 110, 94, 110, 95, 79, 125, 111, 110, 78, 110, 111, 111, 95,
  241. 94, 108, 123, 108,
  242. // last_significant_coeff_y_prefix
  243. 125, 110, 94, 110, 95, 79, 125, 111, 110, 78, 110, 111, 111, 95,
  244. 94, 108, 123, 108,
  245. // significant_coeff_group_flag
  246. 121, 140, 61, 154,
  247. // significant_coeff_flag
  248. 155, 154, 139, 153, 139, 123, 123, 63, 153, 166, 183, 140, 136, 153,
  249. 154, 166, 183, 140, 136, 153, 154, 166, 183, 140, 136, 153, 154, 170,
  250. 153, 123, 123, 107, 121, 107, 121, 167, 151, 183, 140, 151, 183, 140,
  251. // coeff_abs_level_greater1_flag
  252. 154, 196, 196, 167, 154, 152, 167, 182, 182, 134, 149, 136, 153, 121,
  253. 136, 137, 169, 194, 166, 167, 154, 167, 137, 182,
  254. // coeff_abs_level_greater2_flag
  255. 107, 167, 91, 122, 107, 167, },
  256. { // sao_merge_flag
  257. 153,
  258. // sao_type_idx
  259. 160,
  260. // split_coding_unit_flag
  261. 107, 139, 126,
  262. // cu_transquant_bypass_flag
  263. 154,
  264. // skip_flag
  265. 197, 185, 201,
  266. // cu_qp_delta
  267. 154, 154, 154,
  268. // pred_mode
  269. 134,
  270. // part_mode
  271. 154, 139, 154, 154,
  272. // prev_intra_luma_pred_mode
  273. 183,
  274. // intra_chroma_pred_mode
  275. 152, 139,
  276. // merge_flag
  277. 154,
  278. // merge_idx
  279. 137,
  280. // inter_pred_idc
  281. 95, 79, 63, 31, 31,
  282. // ref_idx_l0
  283. 153, 153,
  284. // ref_idx_l1
  285. 153, 153,
  286. // abs_mvd_greater1_flag
  287. 169, 198,
  288. // abs_mvd_greater1_flag
  289. 169, 198,
  290. // mvp_lx_flag
  291. 168,
  292. // no_residual_data_flag
  293. 79,
  294. // split_transform_flag
  295. 224, 167, 122,
  296. // cbf_luma
  297. 153, 111,
  298. // cbf_cb, cbf_cr
  299. 149, 92, 167, 154,
  300. // transform_skip_flag
  301. 139, 139,
  302. // last_significant_coeff_x_prefix
  303. 125, 110, 124, 110, 95, 94, 125, 111, 111, 79, 125, 126, 111, 111,
  304. 79, 108, 123, 93,
  305. // last_significant_coeff_y_prefix
  306. 125, 110, 124, 110, 95, 94, 125, 111, 111, 79, 125, 126, 111, 111,
  307. 79, 108, 123, 93,
  308. // significant_coeff_group_flag
  309. 121, 140, 61, 154,
  310. // significant_coeff_flag
  311. 170, 154, 139, 153, 139, 123, 123, 63, 124, 166, 183, 140, 136, 153,
  312. 154, 166, 183, 140, 136, 153, 154, 166, 183, 140, 136, 153, 154, 170,
  313. 153, 138, 138, 122, 121, 122, 121, 167, 151, 183, 140, 151, 183, 140,
  314. // coeff_abs_level_greater1_flag
  315. 154, 196, 167, 167, 154, 152, 167, 182, 182, 134, 149, 136, 153, 121,
  316. 136, 122, 169, 208, 166, 167, 154, 152, 167, 182,
  317. // coeff_abs_level_greater2_flag
  318. 107, 167, 91, 107, 107, 167, },
  319. };
  320. void ff_hevc_save_states(HEVCContext *s, int ctb_addr_ts)
  321. {
  322. if (s->ps.pps->entropy_coding_sync_enabled_flag &&
  323. (ctb_addr_ts % s->ps.sps->ctb_width == 2 ||
  324. (s->ps.sps->ctb_width == 2 &&
  325. ctb_addr_ts % s->ps.sps->ctb_width == 0))) {
  326. memcpy(s->cabac_state, s->HEVClc.cabac_state, HEVC_CONTEXTS);
  327. }
  328. }
  329. static void load_states(HEVCContext *s)
  330. {
  331. memcpy(s->HEVClc.cabac_state, s->cabac_state, HEVC_CONTEXTS);
  332. }
  333. static void cabac_reinit(HEVCLocalContext *lc)
  334. {
  335. skip_bytes(&lc->cc, 0);
  336. }
  337. static void cabac_init_decoder(HEVCContext *s)
  338. {
  339. GetBitContext *gb = &s->HEVClc.gb;
  340. skip_bits(gb, 1);
  341. align_get_bits(gb);
  342. ff_init_cabac_decoder(&s->HEVClc.cc,
  343. gb->buffer + get_bits_count(gb) / 8,
  344. (get_bits_left(gb) + 7) / 8);
  345. }
  346. static void cabac_init_state(HEVCContext *s)
  347. {
  348. int init_type = 2 - s->sh.slice_type;
  349. int i;
  350. if (s->sh.cabac_init_flag && s->sh.slice_type != HEVC_SLICE_I)
  351. init_type ^= 3;
  352. for (i = 0; i < HEVC_CONTEXTS; i++) {
  353. int init_value = init_values[init_type][i];
  354. int m = (init_value >> 4) * 5 - 45;
  355. int n = ((init_value & 15) << 3) - 16;
  356. int pre = 2 * (((m * av_clip(s->sh.slice_qp, 0, 51)) >> 4) + n) - 127;
  357. pre ^= pre >> 31;
  358. if (pre > 124)
  359. pre = 124 + (pre & 1);
  360. s->HEVClc.cabac_state[i] = pre;
  361. }
  362. }
  363. void ff_hevc_cabac_init(HEVCContext *s, int ctb_addr_ts)
  364. {
  365. if (ctb_addr_ts == s->ps.pps->ctb_addr_rs_to_ts[s->sh.slice_ctb_addr_rs]) {
  366. cabac_init_decoder(s);
  367. if (s->sh.dependent_slice_segment_flag == 0 ||
  368. (s->ps.pps->tiles_enabled_flag &&
  369. s->ps.pps->tile_id[ctb_addr_ts] != s->ps.pps->tile_id[ctb_addr_ts - 1]))
  370. cabac_init_state(s);
  371. if (!s->sh.first_slice_in_pic_flag &&
  372. s->ps.pps->entropy_coding_sync_enabled_flag) {
  373. if (ctb_addr_ts % s->ps.sps->ctb_width == 0) {
  374. if (s->ps.sps->ctb_width == 1)
  375. cabac_init_state(s);
  376. else if (s->sh.dependent_slice_segment_flag == 1)
  377. load_states(s);
  378. }
  379. }
  380. } else {
  381. if (s->ps.pps->tiles_enabled_flag &&
  382. s->ps.pps->tile_id[ctb_addr_ts] != s->ps.pps->tile_id[ctb_addr_ts - 1]) {
  383. cabac_reinit(&s->HEVClc);
  384. cabac_init_state(s);
  385. }
  386. if (s->ps.pps->entropy_coding_sync_enabled_flag) {
  387. if (ctb_addr_ts % s->ps.sps->ctb_width == 0) {
  388. get_cabac_terminate(&s->HEVClc.cc);
  389. cabac_reinit(&s->HEVClc);
  390. if (s->ps.sps->ctb_width == 1)
  391. cabac_init_state(s);
  392. else
  393. load_states(s);
  394. }
  395. }
  396. }
  397. }
  398. #define GET_CABAC(ctx) get_cabac(&s->HEVClc.cc, &s->HEVClc.cabac_state[ctx])
  399. int ff_hevc_sao_merge_flag_decode(HEVCContext *s)
  400. {
  401. return GET_CABAC(elem_offset[SAO_MERGE_FLAG]);
  402. }
  403. int ff_hevc_sao_type_idx_decode(HEVCContext *s)
  404. {
  405. if (!GET_CABAC(elem_offset[SAO_TYPE_IDX]))
  406. return 0;
  407. if (!get_cabac_bypass(&s->HEVClc.cc))
  408. return SAO_BAND;
  409. return SAO_EDGE;
  410. }
  411. int ff_hevc_sao_band_position_decode(HEVCContext *s)
  412. {
  413. int i;
  414. int value = get_cabac_bypass(&s->HEVClc.cc);
  415. for (i = 0; i < 4; i++)
  416. value = (value << 1) | get_cabac_bypass(&s->HEVClc.cc);
  417. return value;
  418. }
  419. int ff_hevc_sao_offset_abs_decode(HEVCContext *s)
  420. {
  421. int i = 0;
  422. int length = (1 << (FFMIN(s->ps.sps->bit_depth, 10) - 5)) - 1;
  423. while (i < length && get_cabac_bypass(&s->HEVClc.cc))
  424. i++;
  425. return i;
  426. }
  427. int ff_hevc_sao_offset_sign_decode(HEVCContext *s)
  428. {
  429. return get_cabac_bypass(&s->HEVClc.cc);
  430. }
  431. int ff_hevc_sao_eo_class_decode(HEVCContext *s)
  432. {
  433. int ret = get_cabac_bypass(&s->HEVClc.cc) << 1;
  434. ret |= get_cabac_bypass(&s->HEVClc.cc);
  435. return ret;
  436. }
  437. int ff_hevc_end_of_slice_flag_decode(HEVCContext *s)
  438. {
  439. return get_cabac_terminate(&s->HEVClc.cc);
  440. }
  441. int ff_hevc_cu_transquant_bypass_flag_decode(HEVCContext *s)
  442. {
  443. return GET_CABAC(elem_offset[CU_TRANSQUANT_BYPASS_FLAG]);
  444. }
  445. int ff_hevc_skip_flag_decode(HEVCContext *s, int x0, int y0, int x_cb, int y_cb)
  446. {
  447. int min_cb_width = s->ps.sps->min_cb_width;
  448. int inc = 0;
  449. int x0b = x0 & ((1 << s->ps.sps->log2_ctb_size) - 1);
  450. int y0b = y0 & ((1 << s->ps.sps->log2_ctb_size) - 1);
  451. if (s->HEVClc.ctb_left_flag || x0b)
  452. inc = !!SAMPLE_CTB(s->skip_flag, x_cb - 1, y_cb);
  453. if (s->HEVClc.ctb_up_flag || y0b)
  454. inc += !!SAMPLE_CTB(s->skip_flag, x_cb, y_cb - 1);
  455. return GET_CABAC(elem_offset[SKIP_FLAG] + inc);
  456. }
  457. int ff_hevc_cu_qp_delta_abs(HEVCContext *s)
  458. {
  459. int prefix_val = 0;
  460. int suffix_val = 0;
  461. int inc = 0;
  462. while (prefix_val < 5 && GET_CABAC(elem_offset[CU_QP_DELTA] + inc)) {
  463. prefix_val++;
  464. inc = 1;
  465. }
  466. if (prefix_val >= 5) {
  467. int k = 0;
  468. while (k < CABAC_MAX_BIN && get_cabac_bypass(&s->HEVClc.cc)) {
  469. suffix_val += 1 << k;
  470. k++;
  471. }
  472. if (k == CABAC_MAX_BIN)
  473. av_log(s->avctx, AV_LOG_ERROR, "CABAC_MAX_BIN : %d\n", k);
  474. while (k--)
  475. suffix_val += get_cabac_bypass(&s->HEVClc.cc) << k;
  476. }
  477. return prefix_val + suffix_val;
  478. }
  479. int ff_hevc_cu_qp_delta_sign_flag(HEVCContext *s)
  480. {
  481. return get_cabac_bypass(&s->HEVClc.cc);
  482. }
  483. int ff_hevc_pred_mode_decode(HEVCContext *s)
  484. {
  485. return GET_CABAC(elem_offset[PRED_MODE_FLAG]);
  486. }
  487. int ff_hevc_split_coding_unit_flag_decode(HEVCContext *s, int ct_depth, int x0, int y0)
  488. {
  489. int inc = 0, depth_left = 0, depth_top = 0;
  490. int x0b = x0 & ((1 << s->ps.sps->log2_ctb_size) - 1);
  491. int y0b = y0 & ((1 << s->ps.sps->log2_ctb_size) - 1);
  492. int x_cb = x0 >> s->ps.sps->log2_min_cb_size;
  493. int y_cb = y0 >> s->ps.sps->log2_min_cb_size;
  494. if (s->HEVClc.ctb_left_flag || x0b)
  495. depth_left = s->tab_ct_depth[(y_cb) * s->ps.sps->min_cb_width + x_cb - 1];
  496. if (s->HEVClc.ctb_up_flag || y0b)
  497. depth_top = s->tab_ct_depth[(y_cb - 1) * s->ps.sps->min_cb_width + x_cb];
  498. inc += (depth_left > ct_depth);
  499. inc += (depth_top > ct_depth);
  500. return GET_CABAC(elem_offset[SPLIT_CODING_UNIT_FLAG] + inc);
  501. }
  502. int ff_hevc_part_mode_decode(HEVCContext *s, int log2_cb_size)
  503. {
  504. if (GET_CABAC(elem_offset[PART_MODE])) // 1
  505. return PART_2Nx2N;
  506. if (log2_cb_size == s->ps.sps->log2_min_cb_size) {
  507. if (s->HEVClc.cu.pred_mode == MODE_INTRA) // 0
  508. return PART_NxN;
  509. if (GET_CABAC(elem_offset[PART_MODE] + 1)) // 01
  510. return PART_2NxN;
  511. if (log2_cb_size == 3) // 00
  512. return PART_Nx2N;
  513. if (GET_CABAC(elem_offset[PART_MODE] + 2)) // 001
  514. return PART_Nx2N;
  515. return PART_NxN; // 000
  516. }
  517. if (!s->ps.sps->amp_enabled_flag) {
  518. if (GET_CABAC(elem_offset[PART_MODE] + 1)) // 01
  519. return PART_2NxN;
  520. return PART_Nx2N;
  521. }
  522. if (GET_CABAC(elem_offset[PART_MODE] + 1)) { // 01X, 01XX
  523. if (GET_CABAC(elem_offset[PART_MODE] + 3)) // 011
  524. return PART_2NxN;
  525. if (get_cabac_bypass(&s->HEVClc.cc)) // 0101
  526. return PART_2NxnD;
  527. return PART_2NxnU; // 0100
  528. }
  529. if (GET_CABAC(elem_offset[PART_MODE] + 3)) // 001
  530. return PART_Nx2N;
  531. if (get_cabac_bypass(&s->HEVClc.cc)) // 0001
  532. return PART_nRx2N;
  533. return PART_nLx2N; // 0000
  534. }
  535. int ff_hevc_pcm_flag_decode(HEVCContext *s)
  536. {
  537. return get_cabac_terminate(&s->HEVClc.cc);
  538. }
  539. int ff_hevc_prev_intra_luma_pred_flag_decode(HEVCContext *s)
  540. {
  541. return GET_CABAC(elem_offset[PREV_INTRA_LUMA_PRED_FLAG]);
  542. }
  543. int ff_hevc_mpm_idx_decode(HEVCContext *s)
  544. {
  545. int i = 0;
  546. while (i < 2 && get_cabac_bypass(&s->HEVClc.cc))
  547. i++;
  548. return i;
  549. }
  550. int ff_hevc_rem_intra_luma_pred_mode_decode(HEVCContext *s)
  551. {
  552. int i;
  553. int value = get_cabac_bypass(&s->HEVClc.cc);
  554. for (i = 0; i < 4; i++)
  555. value = (value << 1) | get_cabac_bypass(&s->HEVClc.cc);
  556. return value;
  557. }
  558. int ff_hevc_intra_chroma_pred_mode_decode(HEVCContext *s)
  559. {
  560. int ret;
  561. if (!GET_CABAC(elem_offset[INTRA_CHROMA_PRED_MODE]))
  562. return 4;
  563. ret = get_cabac_bypass(&s->HEVClc.cc) << 1;
  564. ret |= get_cabac_bypass(&s->HEVClc.cc);
  565. return ret;
  566. }
  567. int ff_hevc_merge_idx_decode(HEVCContext *s)
  568. {
  569. int i = GET_CABAC(elem_offset[MERGE_IDX]);
  570. if (i != 0) {
  571. while (i < s->sh.max_num_merge_cand-1 && get_cabac_bypass(&s->HEVClc.cc))
  572. i++;
  573. }
  574. return i;
  575. }
  576. int ff_hevc_merge_flag_decode(HEVCContext *s)
  577. {
  578. return GET_CABAC(elem_offset[MERGE_FLAG]);
  579. }
  580. int ff_hevc_inter_pred_idc_decode(HEVCContext *s, int nPbW, int nPbH)
  581. {
  582. if (nPbW + nPbH == 12)
  583. return GET_CABAC(elem_offset[INTER_PRED_IDC] + 4);
  584. if (GET_CABAC(elem_offset[INTER_PRED_IDC] + s->HEVClc.ct.depth))
  585. return PRED_BI;
  586. return GET_CABAC(elem_offset[INTER_PRED_IDC] + 4);
  587. }
  588. int ff_hevc_ref_idx_lx_decode(HEVCContext *s, int num_ref_idx_lx)
  589. {
  590. int i = 0;
  591. int max = num_ref_idx_lx - 1;
  592. int max_ctx = FFMIN(max, 2);
  593. while (i < max_ctx && GET_CABAC(elem_offset[REF_IDX_L0] + i))
  594. i++;
  595. if (i == 2) {
  596. while (i < max && get_cabac_bypass(&s->HEVClc.cc))
  597. i++;
  598. }
  599. return i;
  600. }
  601. int ff_hevc_mvp_lx_flag_decode(HEVCContext *s)
  602. {
  603. return GET_CABAC(elem_offset[MVP_LX_FLAG]);
  604. }
  605. int ff_hevc_no_residual_syntax_flag_decode(HEVCContext *s)
  606. {
  607. return GET_CABAC(elem_offset[NO_RESIDUAL_DATA_FLAG]);
  608. }
  609. int ff_hevc_abs_mvd_greater0_flag_decode(HEVCContext *s)
  610. {
  611. return GET_CABAC(elem_offset[ABS_MVD_GREATER0_FLAG]);
  612. }
  613. int ff_hevc_abs_mvd_greater1_flag_decode(HEVCContext *s)
  614. {
  615. return GET_CABAC(elem_offset[ABS_MVD_GREATER1_FLAG] + 1);
  616. }
  617. int ff_hevc_mvd_decode(HEVCContext *s)
  618. {
  619. int ret = 2;
  620. int k = 1;
  621. while (k < CABAC_MAX_BIN && get_cabac_bypass(&s->HEVClc.cc)) {
  622. ret += 1 << k;
  623. k++;
  624. }
  625. if (k == CABAC_MAX_BIN)
  626. av_log(s->avctx, AV_LOG_ERROR, "CABAC_MAX_BIN : %d\n", k);
  627. while (k--)
  628. ret += get_cabac_bypass(&s->HEVClc.cc) << k;
  629. return get_cabac_bypass_sign(&s->HEVClc.cc, -ret);
  630. }
  631. int ff_hevc_mvd_sign_flag_decode(HEVCContext *s)
  632. {
  633. return get_cabac_bypass_sign(&s->HEVClc.cc, -1);
  634. }
  635. int ff_hevc_split_transform_flag_decode(HEVCContext *s, int log2_trafo_size)
  636. {
  637. return GET_CABAC(elem_offset[SPLIT_TRANSFORM_FLAG] + 5 - log2_trafo_size);
  638. }
  639. int ff_hevc_cbf_cb_cr_decode(HEVCContext *s, int trafo_depth)
  640. {
  641. return GET_CABAC(elem_offset[CBF_CB_CR] + trafo_depth);
  642. }
  643. int ff_hevc_cbf_luma_decode(HEVCContext *s, int trafo_depth)
  644. {
  645. return GET_CABAC(elem_offset[CBF_LUMA] + !trafo_depth);
  646. }
  647. int ff_hevc_transform_skip_flag_decode(HEVCContext *s, int c_idx)
  648. {
  649. return GET_CABAC(elem_offset[TRANSFORM_SKIP_FLAG] + !!c_idx);
  650. }
  651. #define LAST_SIG_COEFF(elem) \
  652. int i = 0; \
  653. int max = (log2_size << 1) - 1; \
  654. int ctx_offset, ctx_shift; \
  655. \
  656. if (c_idx == 0) { \
  657. ctx_offset = 3 * (log2_size - 2) + ((log2_size - 1) >> 2); \
  658. ctx_shift = (log2_size + 1) >> 2; \
  659. } else { \
  660. ctx_offset = 15; \
  661. ctx_shift = log2_size - 2; \
  662. } \
  663. while (i < max && \
  664. GET_CABAC(elem_offset[elem] + (i >> ctx_shift) + ctx_offset)) \
  665. i++; \
  666. return i;
  667. int ff_hevc_last_significant_coeff_x_prefix_decode(HEVCContext *s, int c_idx,
  668. int log2_size)
  669. {
  670. LAST_SIG_COEFF(LAST_SIGNIFICANT_COEFF_X_PREFIX)
  671. }
  672. int ff_hevc_last_significant_coeff_y_prefix_decode(HEVCContext *s, int c_idx,
  673. int log2_size)
  674. {
  675. LAST_SIG_COEFF(LAST_SIGNIFICANT_COEFF_Y_PREFIX)
  676. }
  677. int ff_hevc_last_significant_coeff_suffix_decode(HEVCContext *s,
  678. int last_significant_coeff_prefix)
  679. {
  680. int i;
  681. int length = (last_significant_coeff_prefix >> 1) - 1;
  682. int value = get_cabac_bypass(&s->HEVClc.cc);
  683. for (i = 1; i < length; i++)
  684. value = (value << 1) | get_cabac_bypass(&s->HEVClc.cc);
  685. return value;
  686. }
  687. int ff_hevc_significant_coeff_group_flag_decode(HEVCContext *s, int c_idx, int ctx_cg)
  688. {
  689. int inc;
  690. inc = FFMIN(ctx_cg, 1) + (c_idx>0 ? 2 : 0);
  691. return GET_CABAC(elem_offset[SIGNIFICANT_COEFF_GROUP_FLAG] + inc);
  692. }
  693. int ff_hevc_significant_coeff_flag_decode(HEVCContext *s, int c_idx, int x_c, int y_c,
  694. int log2_trafo_size, int scan_idx, int prev_sig)
  695. {
  696. static const uint8_t ctx_idx_map[] = {
  697. 0, 1, 4, 5, 2, 3, 4, 5, 6, 6, 8, 8, 7, 7, 8, 8
  698. };
  699. int x_cg = x_c >> 2;
  700. int y_cg = y_c >> 2;
  701. int sig_ctx, inc;
  702. if (x_c + y_c == 0) {
  703. sig_ctx = 0;
  704. } else if (log2_trafo_size == 2) {
  705. sig_ctx = ctx_idx_map[(y_c << 2) + x_c];
  706. } else {
  707. switch (prev_sig) {
  708. case 0: {
  709. int x_off = x_c & 3;
  710. int y_off = y_c & 3;
  711. sig_ctx = ((x_off + y_off) == 0) ? 2 : ((x_off + y_off) <= 2) ? 1 : 0;
  712. }
  713. break;
  714. case 1:
  715. sig_ctx = 2 - FFMIN(y_c & 3, 2);
  716. break;
  717. case 2:
  718. sig_ctx = 2 - FFMIN(x_c & 3, 2);
  719. break;
  720. default:
  721. sig_ctx = 2;
  722. }
  723. if (c_idx == 0 && (x_cg > 0 || y_cg > 0))
  724. sig_ctx += 3;
  725. if (log2_trafo_size == 3) {
  726. sig_ctx += (scan_idx == SCAN_DIAG) ? 9 : 15;
  727. } else {
  728. sig_ctx += c_idx ? 12 : 21;
  729. }
  730. }
  731. if (c_idx == 0)
  732. inc = sig_ctx;
  733. else
  734. inc = sig_ctx + 27;
  735. return GET_CABAC(elem_offset[SIGNIFICANT_COEFF_FLAG] + inc);
  736. }
  737. int ff_hevc_coeff_abs_level_greater1_flag_decode(HEVCContext *s, int c_idx, int inc)
  738. {
  739. if (c_idx > 0)
  740. inc += 16;
  741. return GET_CABAC(elem_offset[COEFF_ABS_LEVEL_GREATER1_FLAG] + inc);
  742. }
  743. int ff_hevc_coeff_abs_level_greater2_flag_decode(HEVCContext *s, int c_idx, int inc)
  744. {
  745. if (c_idx > 0)
  746. inc += 4;
  747. return GET_CABAC(elem_offset[COEFF_ABS_LEVEL_GREATER2_FLAG] + inc);
  748. }
  749. int ff_hevc_coeff_abs_level_remaining(HEVCContext *s, int base_level, int rc_rice_param)
  750. {
  751. int prefix = 0;
  752. int suffix = 0;
  753. int last_coeff_abs_level_remaining;
  754. int i;
  755. while (prefix < CABAC_MAX_BIN && get_cabac_bypass(&s->HEVClc.cc))
  756. prefix++;
  757. if (prefix == CABAC_MAX_BIN)
  758. av_log(s->avctx, AV_LOG_ERROR, "CABAC_MAX_BIN : %d\n", prefix);
  759. if (prefix < 3) {
  760. for (i = 0; i < rc_rice_param; i++)
  761. suffix = (suffix << 1) | get_cabac_bypass(&s->HEVClc.cc);
  762. last_coeff_abs_level_remaining = (prefix << rc_rice_param) + suffix;
  763. } else {
  764. int prefix_minus3 = prefix - 3;
  765. for (i = 0; i < prefix_minus3 + rc_rice_param; i++)
  766. suffix = (suffix << 1) | get_cabac_bypass(&s->HEVClc.cc);
  767. last_coeff_abs_level_remaining = (((1 << prefix_minus3) + 3 - 1)
  768. << rc_rice_param) + suffix;
  769. }
  770. return last_coeff_abs_level_remaining;
  771. }
  772. int ff_hevc_coeff_sign_flag(HEVCContext *s, uint8_t nb)
  773. {
  774. int i;
  775. int ret = 0;
  776. for (i = 0; i < nb; i++)
  777. ret = (ret << 1) | get_cabac_bypass(&s->HEVClc.cc);
  778. return ret;
  779. }