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  1. /*
  2. * HEVC video decoder
  3. *
  4. * Copyright (C) 2012 - 2013 Guillaume Martres
  5. *
  6. * This file is part of FFmpeg.
  7. *
  8. * FFmpeg is free software; you can redistribute it and/or
  9. * modify it under the terms of the GNU Lesser General Public
  10. * License as published by the Free Software Foundation; either
  11. * version 2.1 of the License, or (at your option) any later version.
  12. *
  13. * FFmpeg is distributed in the hope that it will be useful,
  14. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  16. * Lesser General Public License for more details.
  17. *
  18. * You should have received a copy of the GNU Lesser General Public
  19. * License along with FFmpeg; if not, write to the Free Software
  20. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  21. */
  22. #ifndef AVCODEC_HEVC_H
  23. #define AVCODEC_HEVC_H
  24. #include "libavutil/buffer.h"
  25. #include "libavutil/md5.h"
  26. #include "avcodec.h"
  27. #include "bswapdsp.h"
  28. #include "cabac.h"
  29. #include "get_bits.h"
  30. #include "hevcpred.h"
  31. #include "hevcdsp.h"
  32. #include "internal.h"
  33. #include "thread.h"
  34. #include "videodsp.h"
  35. #define MAX_DPB_SIZE 16 // A.4.1
  36. #define MAX_REFS 16
  37. #define MAX_NB_THREADS 16
  38. #define SHIFT_CTB_WPP 2
  39. /**
  40. * 7.4.2.1
  41. */
  42. #define MAX_SUB_LAYERS 7
  43. #define MAX_VPS_COUNT 16
  44. #define MAX_SPS_COUNT 32
  45. #define MAX_PPS_COUNT 256
  46. #define MAX_SHORT_TERM_RPS_COUNT 64
  47. #define MAX_CU_SIZE 128
  48. //TODO: check if this is really the maximum
  49. #define MAX_TRANSFORM_DEPTH 5
  50. #define MAX_TB_SIZE 32
  51. #define MAX_PB_SIZE 64
  52. #define MAX_LOG2_CTB_SIZE 6
  53. #define MAX_QP 51
  54. #define DEFAULT_INTRA_TC_OFFSET 2
  55. #define HEVC_CONTEXTS 183
  56. #define MRG_MAX_NUM_CANDS 5
  57. #define L0 0
  58. #define L1 1
  59. #define EPEL_EXTRA_BEFORE 1
  60. #define EPEL_EXTRA_AFTER 2
  61. #define EPEL_EXTRA 3
  62. #define QPEL_EXTRA_BEFORE 3
  63. #define QPEL_EXTRA_AFTER 4
  64. #define QPEL_EXTRA 7
  65. #define EDGE_EMU_BUFFER_STRIDE 80
  66. /**
  67. * Value of the luma sample at position (x, y) in the 2D array tab.
  68. */
  69. #define SAMPLE(tab, x, y) ((tab)[(y) * s->sps->width + (x)])
  70. #define SAMPLE_CTB(tab, x, y) ((tab)[(y) * min_cb_width + (x)])
  71. #define SAMPLE_CBF(tab, x, y) ((tab)[((y) & ((1<<log2_trafo_size)-1)) * MAX_CU_SIZE + ((x) & ((1<<log2_trafo_size)-1))])
  72. #define IS_IDR(s) ((s)->nal_unit_type == NAL_IDR_W_RADL || (s)->nal_unit_type == NAL_IDR_N_LP)
  73. #define IS_BLA(s) ((s)->nal_unit_type == NAL_BLA_W_RADL || (s)->nal_unit_type == NAL_BLA_W_LP || \
  74. (s)->nal_unit_type == NAL_BLA_N_LP)
  75. #define IS_IRAP(s) ((s)->nal_unit_type >= 16 && (s)->nal_unit_type <= 23)
  76. /**
  77. * Table 7-3: NAL unit type codes
  78. */
  79. enum NALUnitType {
  80. NAL_TRAIL_N = 0,
  81. NAL_TRAIL_R = 1,
  82. NAL_TSA_N = 2,
  83. NAL_TSA_R = 3,
  84. NAL_STSA_N = 4,
  85. NAL_STSA_R = 5,
  86. NAL_RADL_N = 6,
  87. NAL_RADL_R = 7,
  88. NAL_RASL_N = 8,
  89. NAL_RASL_R = 9,
  90. NAL_BLA_W_LP = 16,
  91. NAL_BLA_W_RADL = 17,
  92. NAL_BLA_N_LP = 18,
  93. NAL_IDR_W_RADL = 19,
  94. NAL_IDR_N_LP = 20,
  95. NAL_CRA_NUT = 21,
  96. NAL_VPS = 32,
  97. NAL_SPS = 33,
  98. NAL_PPS = 34,
  99. NAL_AUD = 35,
  100. NAL_EOS_NUT = 36,
  101. NAL_EOB_NUT = 37,
  102. NAL_FD_NUT = 38,
  103. NAL_SEI_PREFIX = 39,
  104. NAL_SEI_SUFFIX = 40,
  105. };
  106. enum RPSType {
  107. ST_CURR_BEF = 0,
  108. ST_CURR_AFT,
  109. ST_FOLL,
  110. LT_CURR,
  111. LT_FOLL,
  112. NB_RPS_TYPE,
  113. };
  114. enum SliceType {
  115. B_SLICE = 0,
  116. P_SLICE = 1,
  117. I_SLICE = 2,
  118. };
  119. enum SyntaxElement {
  120. SAO_MERGE_FLAG = 0,
  121. SAO_TYPE_IDX,
  122. SAO_EO_CLASS,
  123. SAO_BAND_POSITION,
  124. SAO_OFFSET_ABS,
  125. SAO_OFFSET_SIGN,
  126. END_OF_SLICE_FLAG,
  127. SPLIT_CODING_UNIT_FLAG,
  128. CU_TRANSQUANT_BYPASS_FLAG,
  129. SKIP_FLAG,
  130. CU_QP_DELTA,
  131. PRED_MODE_FLAG,
  132. PART_MODE,
  133. PCM_FLAG,
  134. PREV_INTRA_LUMA_PRED_FLAG,
  135. MPM_IDX,
  136. REM_INTRA_LUMA_PRED_MODE,
  137. INTRA_CHROMA_PRED_MODE,
  138. MERGE_FLAG,
  139. MERGE_IDX,
  140. INTER_PRED_IDC,
  141. REF_IDX_L0,
  142. REF_IDX_L1,
  143. ABS_MVD_GREATER0_FLAG,
  144. ABS_MVD_GREATER1_FLAG,
  145. ABS_MVD_MINUS2,
  146. MVD_SIGN_FLAG,
  147. MVP_LX_FLAG,
  148. NO_RESIDUAL_DATA_FLAG,
  149. SPLIT_TRANSFORM_FLAG,
  150. CBF_LUMA,
  151. CBF_CB_CR,
  152. TRANSFORM_SKIP_FLAG,
  153. LAST_SIGNIFICANT_COEFF_X_PREFIX,
  154. LAST_SIGNIFICANT_COEFF_Y_PREFIX,
  155. LAST_SIGNIFICANT_COEFF_X_SUFFIX,
  156. LAST_SIGNIFICANT_COEFF_Y_SUFFIX,
  157. SIGNIFICANT_COEFF_GROUP_FLAG,
  158. SIGNIFICANT_COEFF_FLAG,
  159. COEFF_ABS_LEVEL_GREATER1_FLAG,
  160. COEFF_ABS_LEVEL_GREATER2_FLAG,
  161. COEFF_ABS_LEVEL_REMAINING,
  162. COEFF_SIGN_FLAG,
  163. };
  164. enum PartMode {
  165. PART_2Nx2N = 0,
  166. PART_2NxN = 1,
  167. PART_Nx2N = 2,
  168. PART_NxN = 3,
  169. PART_2NxnU = 4,
  170. PART_2NxnD = 5,
  171. PART_nLx2N = 6,
  172. PART_nRx2N = 7,
  173. };
  174. enum PredMode {
  175. MODE_INTER = 0,
  176. MODE_INTRA,
  177. MODE_SKIP,
  178. };
  179. enum InterPredIdc {
  180. PRED_L0 = 0,
  181. PRED_L1,
  182. PRED_BI,
  183. };
  184. enum PredFlag {
  185. PF_INTRA = 0,
  186. PF_L0,
  187. PF_L1,
  188. PF_BI,
  189. };
  190. enum IntraPredMode {
  191. INTRA_PLANAR = 0,
  192. INTRA_DC,
  193. INTRA_ANGULAR_2,
  194. INTRA_ANGULAR_3,
  195. INTRA_ANGULAR_4,
  196. INTRA_ANGULAR_5,
  197. INTRA_ANGULAR_6,
  198. INTRA_ANGULAR_7,
  199. INTRA_ANGULAR_8,
  200. INTRA_ANGULAR_9,
  201. INTRA_ANGULAR_10,
  202. INTRA_ANGULAR_11,
  203. INTRA_ANGULAR_12,
  204. INTRA_ANGULAR_13,
  205. INTRA_ANGULAR_14,
  206. INTRA_ANGULAR_15,
  207. INTRA_ANGULAR_16,
  208. INTRA_ANGULAR_17,
  209. INTRA_ANGULAR_18,
  210. INTRA_ANGULAR_19,
  211. INTRA_ANGULAR_20,
  212. INTRA_ANGULAR_21,
  213. INTRA_ANGULAR_22,
  214. INTRA_ANGULAR_23,
  215. INTRA_ANGULAR_24,
  216. INTRA_ANGULAR_25,
  217. INTRA_ANGULAR_26,
  218. INTRA_ANGULAR_27,
  219. INTRA_ANGULAR_28,
  220. INTRA_ANGULAR_29,
  221. INTRA_ANGULAR_30,
  222. INTRA_ANGULAR_31,
  223. INTRA_ANGULAR_32,
  224. INTRA_ANGULAR_33,
  225. INTRA_ANGULAR_34,
  226. };
  227. enum SAOType {
  228. SAO_NOT_APPLIED = 0,
  229. SAO_BAND,
  230. SAO_EDGE,
  231. };
  232. enum SAOEOClass {
  233. SAO_EO_HORIZ = 0,
  234. SAO_EO_VERT,
  235. SAO_EO_135D,
  236. SAO_EO_45D,
  237. };
  238. enum ScanType {
  239. SCAN_DIAG = 0,
  240. SCAN_HORIZ,
  241. SCAN_VERT,
  242. };
  243. typedef struct ShortTermRPS {
  244. unsigned int num_negative_pics;
  245. int num_delta_pocs;
  246. int32_t delta_poc[32];
  247. uint8_t used[32];
  248. } ShortTermRPS;
  249. typedef struct LongTermRPS {
  250. int poc[32];
  251. uint8_t used[32];
  252. uint8_t nb_refs;
  253. } LongTermRPS;
  254. typedef struct RefPicList {
  255. struct HEVCFrame *ref[MAX_REFS];
  256. int list[MAX_REFS];
  257. int isLongTerm[MAX_REFS];
  258. int nb_refs;
  259. } RefPicList;
  260. typedef struct RefPicListTab {
  261. RefPicList refPicList[2];
  262. } RefPicListTab;
  263. typedef struct HEVCWindow {
  264. int left_offset;
  265. int right_offset;
  266. int top_offset;
  267. int bottom_offset;
  268. } HEVCWindow;
  269. typedef struct VUI {
  270. AVRational sar;
  271. int overscan_info_present_flag;
  272. int overscan_appropriate_flag;
  273. int video_signal_type_present_flag;
  274. int video_format;
  275. int video_full_range_flag;
  276. int colour_description_present_flag;
  277. uint8_t colour_primaries;
  278. uint8_t transfer_characteristic;
  279. uint8_t matrix_coeffs;
  280. int chroma_loc_info_present_flag;
  281. int chroma_sample_loc_type_top_field;
  282. int chroma_sample_loc_type_bottom_field;
  283. int neutra_chroma_indication_flag;
  284. int field_seq_flag;
  285. int frame_field_info_present_flag;
  286. int default_display_window_flag;
  287. HEVCWindow def_disp_win;
  288. int vui_timing_info_present_flag;
  289. uint32_t vui_num_units_in_tick;
  290. uint32_t vui_time_scale;
  291. int vui_poc_proportional_to_timing_flag;
  292. int vui_num_ticks_poc_diff_one_minus1;
  293. int vui_hrd_parameters_present_flag;
  294. int bitstream_restriction_flag;
  295. int tiles_fixed_structure_flag;
  296. int motion_vectors_over_pic_boundaries_flag;
  297. int restricted_ref_pic_lists_flag;
  298. int min_spatial_segmentation_idc;
  299. int max_bytes_per_pic_denom;
  300. int max_bits_per_min_cu_denom;
  301. int log2_max_mv_length_horizontal;
  302. int log2_max_mv_length_vertical;
  303. } VUI;
  304. typedef struct PTLCommon {
  305. uint8_t profile_space;
  306. uint8_t tier_flag;
  307. uint8_t profile_idc;
  308. uint8_t profile_compatibility_flag[32];
  309. uint8_t level_idc;
  310. uint8_t progressive_source_flag;
  311. uint8_t interlaced_source_flag;
  312. uint8_t non_packed_constraint_flag;
  313. uint8_t frame_only_constraint_flag;
  314. } PTLCommon;
  315. typedef struct PTL {
  316. PTLCommon general_ptl;
  317. PTLCommon sub_layer_ptl[MAX_SUB_LAYERS];
  318. uint8_t sub_layer_profile_present_flag[MAX_SUB_LAYERS];
  319. uint8_t sub_layer_level_present_flag[MAX_SUB_LAYERS];
  320. } PTL;
  321. typedef struct HEVCVPS {
  322. uint8_t vps_temporal_id_nesting_flag;
  323. int vps_max_layers;
  324. int vps_max_sub_layers; ///< vps_max_temporal_layers_minus1 + 1
  325. PTL ptl;
  326. int vps_sub_layer_ordering_info_present_flag;
  327. unsigned int vps_max_dec_pic_buffering[MAX_SUB_LAYERS];
  328. unsigned int vps_num_reorder_pics[MAX_SUB_LAYERS];
  329. unsigned int vps_max_latency_increase[MAX_SUB_LAYERS];
  330. int vps_max_layer_id;
  331. int vps_num_layer_sets; ///< vps_num_layer_sets_minus1 + 1
  332. uint8_t vps_timing_info_present_flag;
  333. uint32_t vps_num_units_in_tick;
  334. uint32_t vps_time_scale;
  335. uint8_t vps_poc_proportional_to_timing_flag;
  336. int vps_num_ticks_poc_diff_one; ///< vps_num_ticks_poc_diff_one_minus1 + 1
  337. int vps_num_hrd_parameters;
  338. } HEVCVPS;
  339. typedef struct ScalingList {
  340. /* This is a little wasteful, since sizeID 0 only needs 8 coeffs,
  341. * and size ID 3 only has 2 arrays, not 6. */
  342. uint8_t sl[4][6][64];
  343. uint8_t sl_dc[2][6];
  344. } ScalingList;
  345. typedef struct HEVCSPS {
  346. unsigned vps_id;
  347. int chroma_format_idc;
  348. uint8_t separate_colour_plane_flag;
  349. ///< output (i.e. cropped) values
  350. int output_width, output_height;
  351. HEVCWindow output_window;
  352. HEVCWindow pic_conf_win;
  353. int bit_depth;
  354. int pixel_shift;
  355. enum AVPixelFormat pix_fmt;
  356. unsigned int log2_max_poc_lsb;
  357. int pcm_enabled_flag;
  358. int max_sub_layers;
  359. struct {
  360. int max_dec_pic_buffering;
  361. int num_reorder_pics;
  362. int max_latency_increase;
  363. } temporal_layer[MAX_SUB_LAYERS];
  364. VUI vui;
  365. PTL ptl;
  366. uint8_t scaling_list_enable_flag;
  367. ScalingList scaling_list;
  368. unsigned int nb_st_rps;
  369. ShortTermRPS st_rps[MAX_SHORT_TERM_RPS_COUNT];
  370. uint8_t amp_enabled_flag;
  371. uint8_t sao_enabled;
  372. uint8_t long_term_ref_pics_present_flag;
  373. uint16_t lt_ref_pic_poc_lsb_sps[32];
  374. uint8_t used_by_curr_pic_lt_sps_flag[32];
  375. uint8_t num_long_term_ref_pics_sps;
  376. struct {
  377. uint8_t bit_depth;
  378. uint8_t bit_depth_chroma;
  379. unsigned int log2_min_pcm_cb_size;
  380. unsigned int log2_max_pcm_cb_size;
  381. uint8_t loop_filter_disable_flag;
  382. } pcm;
  383. uint8_t sps_temporal_mvp_enabled_flag;
  384. uint8_t sps_strong_intra_smoothing_enable_flag;
  385. unsigned int log2_min_cb_size;
  386. unsigned int log2_diff_max_min_coding_block_size;
  387. unsigned int log2_min_tb_size;
  388. unsigned int log2_max_trafo_size;
  389. unsigned int log2_ctb_size;
  390. unsigned int log2_min_pu_size;
  391. int max_transform_hierarchy_depth_inter;
  392. int max_transform_hierarchy_depth_intra;
  393. ///< coded frame dimension in various units
  394. int width;
  395. int height;
  396. int ctb_width;
  397. int ctb_height;
  398. int ctb_size;
  399. int min_cb_width;
  400. int min_cb_height;
  401. int min_tb_width;
  402. int min_tb_height;
  403. int min_pu_width;
  404. int min_pu_height;
  405. int hshift[3];
  406. int vshift[3];
  407. int qp_bd_offset;
  408. } HEVCSPS;
  409. typedef struct HEVCPPS {
  410. unsigned int sps_id; ///< seq_parameter_set_id
  411. uint8_t sign_data_hiding_flag;
  412. uint8_t cabac_init_present_flag;
  413. int num_ref_idx_l0_default_active; ///< num_ref_idx_l0_default_active_minus1 + 1
  414. int num_ref_idx_l1_default_active; ///< num_ref_idx_l1_default_active_minus1 + 1
  415. int pic_init_qp_minus26;
  416. uint8_t constrained_intra_pred_flag;
  417. uint8_t transform_skip_enabled_flag;
  418. uint8_t cu_qp_delta_enabled_flag;
  419. int diff_cu_qp_delta_depth;
  420. int cb_qp_offset;
  421. int cr_qp_offset;
  422. uint8_t pic_slice_level_chroma_qp_offsets_present_flag;
  423. uint8_t weighted_pred_flag;
  424. uint8_t weighted_bipred_flag;
  425. uint8_t output_flag_present_flag;
  426. uint8_t transquant_bypass_enable_flag;
  427. uint8_t dependent_slice_segments_enabled_flag;
  428. uint8_t tiles_enabled_flag;
  429. uint8_t entropy_coding_sync_enabled_flag;
  430. int num_tile_columns; ///< num_tile_columns_minus1 + 1
  431. int num_tile_rows; ///< num_tile_rows_minus1 + 1
  432. uint8_t uniform_spacing_flag;
  433. uint8_t loop_filter_across_tiles_enabled_flag;
  434. uint8_t seq_loop_filter_across_slices_enabled_flag;
  435. uint8_t deblocking_filter_control_present_flag;
  436. uint8_t deblocking_filter_override_enabled_flag;
  437. uint8_t disable_dbf;
  438. int beta_offset; ///< beta_offset_div2 * 2
  439. int tc_offset; ///< tc_offset_div2 * 2
  440. uint8_t scaling_list_data_present_flag;
  441. ScalingList scaling_list;
  442. uint8_t lists_modification_present_flag;
  443. int log2_parallel_merge_level; ///< log2_parallel_merge_level_minus2 + 2
  444. int num_extra_slice_header_bits;
  445. uint8_t slice_header_extension_present_flag;
  446. // Inferred parameters
  447. unsigned int *column_width; ///< ColumnWidth
  448. unsigned int *row_height; ///< RowHeight
  449. unsigned int *col_bd; ///< ColBd
  450. unsigned int *row_bd; ///< RowBd
  451. int *col_idxX;
  452. int *ctb_addr_rs_to_ts; ///< CtbAddrRSToTS
  453. int *ctb_addr_ts_to_rs; ///< CtbAddrTSToRS
  454. int *tile_id; ///< TileId
  455. int *tile_pos_rs; ///< TilePosRS
  456. int *min_cb_addr_zs; ///< MinCbAddrZS
  457. int *min_tb_addr_zs; ///< MinTbAddrZS
  458. } HEVCPPS;
  459. typedef struct SliceHeader {
  460. unsigned int pps_id;
  461. ///< address (in raster order) of the first block in the current slice segment
  462. unsigned int slice_segment_addr;
  463. ///< address (in raster order) of the first block in the current slice
  464. unsigned int slice_addr;
  465. enum SliceType slice_type;
  466. int pic_order_cnt_lsb;
  467. uint8_t first_slice_in_pic_flag;
  468. uint8_t dependent_slice_segment_flag;
  469. uint8_t pic_output_flag;
  470. uint8_t colour_plane_id;
  471. ///< RPS coded in the slice header itself is stored here
  472. ShortTermRPS slice_rps;
  473. const ShortTermRPS *short_term_rps;
  474. LongTermRPS long_term_rps;
  475. unsigned int list_entry_lx[2][32];
  476. uint8_t rpl_modification_flag[2];
  477. uint8_t no_output_of_prior_pics_flag;
  478. uint8_t slice_temporal_mvp_enabled_flag;
  479. unsigned int nb_refs[2];
  480. uint8_t slice_sample_adaptive_offset_flag[3];
  481. uint8_t mvd_l1_zero_flag;
  482. uint8_t cabac_init_flag;
  483. uint8_t disable_deblocking_filter_flag; ///< slice_header_disable_deblocking_filter_flag
  484. uint8_t slice_loop_filter_across_slices_enabled_flag;
  485. uint8_t collocated_list;
  486. unsigned int collocated_ref_idx;
  487. int slice_qp_delta;
  488. int slice_cb_qp_offset;
  489. int slice_cr_qp_offset;
  490. int beta_offset; ///< beta_offset_div2 * 2
  491. int tc_offset; ///< tc_offset_div2 * 2
  492. unsigned int max_num_merge_cand; ///< 5 - 5_minus_max_num_merge_cand
  493. int *entry_point_offset;
  494. int * offset;
  495. int * size;
  496. int num_entry_point_offsets;
  497. int8_t slice_qp;
  498. uint8_t luma_log2_weight_denom;
  499. int16_t chroma_log2_weight_denom;
  500. int16_t luma_weight_l0[16];
  501. int16_t chroma_weight_l0[16][2];
  502. int16_t chroma_weight_l1[16][2];
  503. int16_t luma_weight_l1[16];
  504. int16_t luma_offset_l0[16];
  505. int16_t chroma_offset_l0[16][2];
  506. int16_t luma_offset_l1[16];
  507. int16_t chroma_offset_l1[16][2];
  508. int slice_ctb_addr_rs;
  509. } SliceHeader;
  510. typedef struct CodingTree {
  511. int depth; ///< ctDepth
  512. } CodingTree;
  513. typedef struct CodingUnit {
  514. int x;
  515. int y;
  516. enum PredMode pred_mode; ///< PredMode
  517. enum PartMode part_mode; ///< PartMode
  518. uint8_t rqt_root_cbf;
  519. uint8_t pcm_flag;
  520. // Inferred parameters
  521. uint8_t intra_split_flag; ///< IntraSplitFlag
  522. uint8_t max_trafo_depth; ///< MaxTrafoDepth
  523. uint8_t cu_transquant_bypass_flag;
  524. } CodingUnit;
  525. typedef struct Mv {
  526. int16_t x; ///< horizontal component of motion vector
  527. int16_t y; ///< vertical component of motion vector
  528. } Mv;
  529. typedef struct MvField {
  530. Mv mv[2];
  531. int8_t ref_idx[2];
  532. int8_t pred_flag;
  533. } MvField;
  534. typedef struct NeighbourAvailable {
  535. int cand_bottom_left;
  536. int cand_left;
  537. int cand_up;
  538. int cand_up_left;
  539. int cand_up_right;
  540. int cand_up_right_sap;
  541. } NeighbourAvailable;
  542. typedef struct PredictionUnit {
  543. int mpm_idx;
  544. int rem_intra_luma_pred_mode;
  545. uint8_t intra_pred_mode[4];
  546. Mv mvd;
  547. uint8_t merge_flag;
  548. uint8_t intra_pred_mode_c;
  549. } PredictionUnit;
  550. typedef struct TransformTree {
  551. uint8_t cbf_cb[MAX_TRANSFORM_DEPTH][MAX_CU_SIZE * MAX_CU_SIZE];
  552. uint8_t cbf_cr[MAX_TRANSFORM_DEPTH][MAX_CU_SIZE * MAX_CU_SIZE];
  553. uint8_t cbf_luma;
  554. // Inferred parameters
  555. uint8_t inter_split_flag;
  556. } TransformTree;
  557. typedef struct TransformUnit {
  558. int cu_qp_delta;
  559. // Inferred parameters;
  560. int cur_intra_pred_mode;
  561. uint8_t is_cu_qp_delta_coded;
  562. } TransformUnit;
  563. typedef struct DBParams {
  564. int beta_offset;
  565. int tc_offset;
  566. } DBParams;
  567. #define HEVC_FRAME_FLAG_OUTPUT (1 << 0)
  568. #define HEVC_FRAME_FLAG_SHORT_REF (1 << 1)
  569. #define HEVC_FRAME_FLAG_LONG_REF (1 << 2)
  570. typedef struct HEVCFrame {
  571. AVFrame *frame;
  572. ThreadFrame tf;
  573. MvField *tab_mvf;
  574. RefPicList *refPicList;
  575. RefPicListTab **rpl_tab;
  576. int ctb_count;
  577. int poc;
  578. struct HEVCFrame *collocated_ref;
  579. HEVCWindow window;
  580. AVBufferRef *tab_mvf_buf;
  581. AVBufferRef *rpl_tab_buf;
  582. AVBufferRef *rpl_buf;
  583. /**
  584. * A sequence counter, so that old frames are output first
  585. * after a POC reset
  586. */
  587. uint16_t sequence;
  588. /**
  589. * A combination of HEVC_FRAME_FLAG_*
  590. */
  591. uint8_t flags;
  592. } HEVCFrame;
  593. typedef struct HEVCNAL {
  594. uint8_t *rbsp_buffer;
  595. int rbsp_buffer_size;
  596. int size;
  597. const uint8_t *data;
  598. } HEVCNAL;
  599. typedef struct HEVCLocalContext {
  600. DECLARE_ALIGNED(16, int16_t, mc_buffer[(MAX_PB_SIZE + 7) * MAX_PB_SIZE]);
  601. uint8_t cabac_state[HEVC_CONTEXTS];
  602. uint8_t first_qp_group;
  603. GetBitContext gb;
  604. CABACContext cc;
  605. TransformTree tt;
  606. int8_t qp_y;
  607. int8_t curr_qp_y;
  608. int qPy_pred;
  609. TransformUnit tu;
  610. uint8_t ctb_left_flag;
  611. uint8_t ctb_up_flag;
  612. uint8_t ctb_up_right_flag;
  613. uint8_t ctb_up_left_flag;
  614. int end_of_tiles_x;
  615. int end_of_tiles_y;
  616. /* +7 is for subpixel interpolation, *2 for high bit depths */
  617. DECLARE_ALIGNED(32, uint8_t, edge_emu_buffer)[(MAX_PB_SIZE + 7) * EDGE_EMU_BUFFER_STRIDE * 2];
  618. DECLARE_ALIGNED(32, uint8_t, edge_emu_buffer2)[(MAX_PB_SIZE + 7) * EDGE_EMU_BUFFER_STRIDE * 2];
  619. CodingTree ct;
  620. CodingUnit cu;
  621. PredictionUnit pu;
  622. NeighbourAvailable na;
  623. uint8_t slice_or_tiles_left_boundary;
  624. uint8_t slice_or_tiles_up_boundary;
  625. } HEVCLocalContext;
  626. typedef struct HEVCContext {
  627. const AVClass *c; // needed by private avoptions
  628. AVCodecContext *avctx;
  629. struct HEVCContext *sList[MAX_NB_THREADS];
  630. HEVCLocalContext *HEVClcList[MAX_NB_THREADS];
  631. HEVCLocalContext *HEVClc;
  632. uint8_t threads_type;
  633. uint8_t threads_number;
  634. int width;
  635. int height;
  636. uint8_t *cabac_state;
  637. /** 1 if the independent slice segment header was successfully parsed */
  638. uint8_t slice_initialized;
  639. AVFrame *frame;
  640. AVFrame *sao_frame;
  641. AVFrame *tmp_frame;
  642. AVFrame *output_frame;
  643. const HEVCVPS *vps;
  644. const HEVCSPS *sps;
  645. const HEVCPPS *pps;
  646. AVBufferRef *vps_list[MAX_VPS_COUNT];
  647. AVBufferRef *sps_list[MAX_SPS_COUNT];
  648. AVBufferRef *pps_list[MAX_PPS_COUNT];
  649. AVBufferPool *tab_mvf_pool;
  650. AVBufferPool *rpl_tab_pool;
  651. ///< candidate references for the current frame
  652. RefPicList rps[5];
  653. SliceHeader sh;
  654. SAOParams *sao;
  655. DBParams *deblock;
  656. enum NALUnitType nal_unit_type;
  657. int temporal_id; ///< temporal_id_plus1 - 1
  658. HEVCFrame *ref;
  659. HEVCFrame DPB[32];
  660. int poc;
  661. int pocTid0;
  662. int slice_idx; ///< number of the slice being currently decoded
  663. int eos; ///< current packet contains an EOS/EOB NAL
  664. int last_eos; ///< last packet contains an EOS/EOB NAL
  665. int max_ra;
  666. int bs_width;
  667. int bs_height;
  668. int is_decoded;
  669. HEVCPredContext hpc;
  670. HEVCDSPContext hevcdsp;
  671. VideoDSPContext vdsp;
  672. BswapDSPContext bdsp;
  673. int8_t *qp_y_tab;
  674. uint8_t *split_cu_flag;
  675. uint8_t *horizontal_bs;
  676. uint8_t *vertical_bs;
  677. int32_t *tab_slice_address;
  678. // CU
  679. uint8_t *skip_flag;
  680. uint8_t *tab_ct_depth;
  681. // PU
  682. uint8_t *tab_ipm;
  683. uint8_t *cbf_luma; // cbf_luma of colocated TU
  684. uint8_t *is_pcm;
  685. // CTB-level flags affecting loop filter operation
  686. uint8_t *filter_slice_edges;
  687. /** used on BE to byteswap the lines for checksumming */
  688. uint8_t *checksum_buf;
  689. int checksum_buf_size;
  690. /**
  691. * Sequence counters for decoded and output frames, so that old
  692. * frames are output first after a POC reset
  693. */
  694. uint16_t seq_decode;
  695. uint16_t seq_output;
  696. int enable_parallel_tiles;
  697. int wpp_err;
  698. int skipped_bytes;
  699. int *skipped_bytes_pos;
  700. int skipped_bytes_pos_size;
  701. int *skipped_bytes_nal;
  702. int **skipped_bytes_pos_nal;
  703. int *skipped_bytes_pos_size_nal;
  704. const uint8_t *data;
  705. HEVCNAL *nals;
  706. int nb_nals;
  707. int nals_allocated;
  708. // type of the first VCL NAL of the current frame
  709. enum NALUnitType first_nal_type;
  710. // for checking the frame checksums
  711. struct AVMD5 *md5_ctx;
  712. uint8_t md5[3][16];
  713. uint8_t is_md5;
  714. uint8_t context_initialized;
  715. uint8_t is_nalff; ///< this flag is != 0 if bitstream is encapsulated
  716. ///< as a format defined in 14496-15
  717. int apply_defdispwin;
  718. int active_seq_parameter_set_id;
  719. int nal_length_size; ///< Number of bytes used for nal length (1, 2 or 4)
  720. int nuh_layer_id;
  721. /** frame packing arrangement variables */
  722. int sei_frame_packing_present;
  723. int frame_packing_arrangement_type;
  724. int content_interpretation_type;
  725. int quincunx_subsampling;
  726. int picture_struct;
  727. } HEVCContext;
  728. int ff_hevc_decode_short_term_rps(HEVCContext *s, ShortTermRPS *rps,
  729. const HEVCSPS *sps, int is_slice_header);
  730. int ff_hevc_decode_nal_vps(HEVCContext *s);
  731. int ff_hevc_decode_nal_sps(HEVCContext *s);
  732. int ff_hevc_decode_nal_pps(HEVCContext *s);
  733. int ff_hevc_decode_nal_sei(HEVCContext *s);
  734. int ff_hevc_extract_rbsp(HEVCContext *s, const uint8_t *src, int length,
  735. HEVCNAL *nal);
  736. /**
  737. * Mark all frames in DPB as unused for reference.
  738. */
  739. void ff_hevc_clear_refs(HEVCContext *s);
  740. /**
  741. * Drop all frames currently in DPB.
  742. */
  743. void ff_hevc_flush_dpb(HEVCContext *s);
  744. /**
  745. * Compute POC of the current frame and return it.
  746. */
  747. int ff_hevc_compute_poc(HEVCContext *s, int poc_lsb);
  748. RefPicList *ff_hevc_get_ref_list(HEVCContext *s, HEVCFrame *frame,
  749. int x0, int y0);
  750. /**
  751. * Construct the reference picture sets for the current frame.
  752. */
  753. int ff_hevc_frame_rps(HEVCContext *s);
  754. /**
  755. * Construct the reference picture list(s) for the current slice.
  756. */
  757. int ff_hevc_slice_rpl(HEVCContext *s);
  758. void ff_hevc_save_states(HEVCContext *s, int ctb_addr_ts);
  759. void ff_hevc_cabac_init(HEVCContext *s, int ctb_addr_ts);
  760. int ff_hevc_sao_merge_flag_decode(HEVCContext *s);
  761. int ff_hevc_sao_type_idx_decode(HEVCContext *s);
  762. int ff_hevc_sao_band_position_decode(HEVCContext *s);
  763. int ff_hevc_sao_offset_abs_decode(HEVCContext *s);
  764. int ff_hevc_sao_offset_sign_decode(HEVCContext *s);
  765. int ff_hevc_sao_eo_class_decode(HEVCContext *s);
  766. int ff_hevc_end_of_slice_flag_decode(HEVCContext *s);
  767. int ff_hevc_cu_transquant_bypass_flag_decode(HEVCContext *s);
  768. int ff_hevc_skip_flag_decode(HEVCContext *s, int x0, int y0,
  769. int x_cb, int y_cb);
  770. int ff_hevc_pred_mode_decode(HEVCContext *s);
  771. int ff_hevc_split_coding_unit_flag_decode(HEVCContext *s, int ct_depth,
  772. int x0, int y0);
  773. int ff_hevc_part_mode_decode(HEVCContext *s, int log2_cb_size);
  774. int ff_hevc_pcm_flag_decode(HEVCContext *s);
  775. int ff_hevc_prev_intra_luma_pred_flag_decode(HEVCContext *s);
  776. int ff_hevc_mpm_idx_decode(HEVCContext *s);
  777. int ff_hevc_rem_intra_luma_pred_mode_decode(HEVCContext *s);
  778. int ff_hevc_intra_chroma_pred_mode_decode(HEVCContext *s);
  779. int ff_hevc_merge_idx_decode(HEVCContext *s);
  780. int ff_hevc_merge_flag_decode(HEVCContext *s);
  781. int ff_hevc_inter_pred_idc_decode(HEVCContext *s, int nPbW, int nPbH);
  782. int ff_hevc_ref_idx_lx_decode(HEVCContext *s, int num_ref_idx_lx);
  783. int ff_hevc_mvp_lx_flag_decode(HEVCContext *s);
  784. int ff_hevc_no_residual_syntax_flag_decode(HEVCContext *s);
  785. int ff_hevc_split_transform_flag_decode(HEVCContext *s, int log2_trafo_size);
  786. int ff_hevc_cbf_cb_cr_decode(HEVCContext *s, int trafo_depth);
  787. int ff_hevc_cbf_luma_decode(HEVCContext *s, int trafo_depth);
  788. int ff_hevc_transform_skip_flag_decode(HEVCContext *s, int c_idx);
  789. /**
  790. * Get the number of candidate references for the current frame.
  791. */
  792. int ff_hevc_frame_nb_refs(HEVCContext *s);
  793. int ff_hevc_set_new_ref(HEVCContext *s, AVFrame **frame, int poc);
  794. /**
  795. * Find next frame in output order and put a reference to it in frame.
  796. * @return 1 if a frame was output, 0 otherwise
  797. */
  798. int ff_hevc_output_frame(HEVCContext *s, AVFrame *frame, int flush);
  799. void ff_hevc_unref_frame(HEVCContext *s, HEVCFrame *frame, int flags);
  800. void ff_hevc_set_neighbour_available(HEVCContext *s, int x0, int y0,
  801. int nPbW, int nPbH);
  802. void ff_hevc_luma_mv_merge_mode(HEVCContext *s, int x0, int y0,
  803. int nPbW, int nPbH, int log2_cb_size,
  804. int part_idx, int merge_idx, MvField *mv);
  805. void ff_hevc_luma_mv_mvp_mode(HEVCContext *s, int x0, int y0,
  806. int nPbW, int nPbH, int log2_cb_size,
  807. int part_idx, int merge_idx,
  808. MvField *mv, int mvp_lx_flag, int LX);
  809. void ff_hevc_set_qPy(HEVCContext *s, int xC, int yC, int xBase, int yBase,
  810. int log2_cb_size);
  811. void ff_hevc_deblocking_boundary_strengths(HEVCContext *s, int x0, int y0,
  812. int log2_trafo_size);
  813. int ff_hevc_cu_qp_delta_sign_flag(HEVCContext *s);
  814. int ff_hevc_cu_qp_delta_abs(HEVCContext *s);
  815. void ff_hevc_hls_filter(HEVCContext *s, int x, int y);
  816. void ff_hevc_hls_filters(HEVCContext *s, int x_ctb, int y_ctb, int ctb_size);
  817. void ff_hevc_hls_residual_coding(HEVCContext *s, int x0, int y0,
  818. int log2_trafo_size, enum ScanType scan_idx,
  819. int c_idx);
  820. void ff_hevc_hls_mvd_coding(HEVCContext *s, int x0, int y0, int log2_cb_size);
  821. extern const uint8_t ff_hevc_qpel_extra_before[4];
  822. extern const uint8_t ff_hevc_qpel_extra_after[4];
  823. extern const uint8_t ff_hevc_qpel_extra[4];
  824. extern const uint8_t ff_hevc_diag_scan4x4_x[16];
  825. extern const uint8_t ff_hevc_diag_scan4x4_y[16];
  826. extern const uint8_t ff_hevc_diag_scan8x8_x[64];
  827. extern const uint8_t ff_hevc_diag_scan8x8_y[64];
  828. #endif /* AVCODEC_HEVC_H */