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  1. /*
  2. * HEVC video Decoder
  3. *
  4. * Copyright (C) 2012 - 2013 Guillaume Martres
  5. * Copyright (C) 2012 - 2013 Mickael Raulet
  6. * Copyright (C) 2012 - 2013 Gildas Cocherel
  7. * Copyright (C) 2012 - 2013 Wassim Hamidouche
  8. *
  9. * This file is part of FFmpeg.
  10. *
  11. * FFmpeg is free software; you can redistribute it and/or
  12. * modify it under the terms of the GNU Lesser General Public
  13. * License as published by the Free Software Foundation; either
  14. * version 2.1 of the License, or (at your option) any later version.
  15. *
  16. * FFmpeg is distributed in the hope that it will be useful,
  17. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  18. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  19. * Lesser General Public License for more details.
  20. *
  21. * You should have received a copy of the GNU Lesser General Public
  22. * License along with FFmpeg; if not, write to the Free Software
  23. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  24. */
  25. #include "libavutil/atomic.h"
  26. #include "libavutil/attributes.h"
  27. #include "libavutil/common.h"
  28. #include "libavutil/display.h"
  29. #include "libavutil/internal.h"
  30. #include "libavutil/mastering_display_metadata.h"
  31. #include "libavutil/md5.h"
  32. #include "libavutil/opt.h"
  33. #include "libavutil/pixdesc.h"
  34. #include "libavutil/stereo3d.h"
  35. #include "bswapdsp.h"
  36. #include "bytestream.h"
  37. #include "cabac_functions.h"
  38. #include "golomb.h"
  39. #include "hevc.h"
  40. #include "profiles.h"
  41. const uint8_t ff_hevc_pel_weight[65] = { [2] = 0, [4] = 1, [6] = 2, [8] = 3, [12] = 4, [16] = 5, [24] = 6, [32] = 7, [48] = 8, [64] = 9 };
  42. /**
  43. * NOTE: Each function hls_foo correspond to the function foo in the
  44. * specification (HLS stands for High Level Syntax).
  45. */
  46. /**
  47. * Section 5.7
  48. */
  49. /* free everything allocated by pic_arrays_init() */
  50. static void pic_arrays_free(HEVCContext *s)
  51. {
  52. av_freep(&s->sao);
  53. av_freep(&s->deblock);
  54. av_freep(&s->skip_flag);
  55. av_freep(&s->tab_ct_depth);
  56. av_freep(&s->tab_ipm);
  57. av_freep(&s->cbf_luma);
  58. av_freep(&s->is_pcm);
  59. av_freep(&s->qp_y_tab);
  60. av_freep(&s->tab_slice_address);
  61. av_freep(&s->filter_slice_edges);
  62. av_freep(&s->horizontal_bs);
  63. av_freep(&s->vertical_bs);
  64. av_freep(&s->sh.entry_point_offset);
  65. av_freep(&s->sh.size);
  66. av_freep(&s->sh.offset);
  67. av_buffer_pool_uninit(&s->tab_mvf_pool);
  68. av_buffer_pool_uninit(&s->rpl_tab_pool);
  69. }
  70. /* allocate arrays that depend on frame dimensions */
  71. static int pic_arrays_init(HEVCContext *s, const HEVCSPS *sps)
  72. {
  73. int log2_min_cb_size = sps->log2_min_cb_size;
  74. int width = sps->width;
  75. int height = sps->height;
  76. int pic_size_in_ctb = ((width >> log2_min_cb_size) + 1) *
  77. ((height >> log2_min_cb_size) + 1);
  78. int ctb_count = sps->ctb_width * sps->ctb_height;
  79. int min_pu_size = sps->min_pu_width * sps->min_pu_height;
  80. s->bs_width = (width >> 2) + 1;
  81. s->bs_height = (height >> 2) + 1;
  82. s->sao = av_mallocz_array(ctb_count, sizeof(*s->sao));
  83. s->deblock = av_mallocz_array(ctb_count, sizeof(*s->deblock));
  84. if (!s->sao || !s->deblock)
  85. goto fail;
  86. s->skip_flag = av_malloc_array(sps->min_cb_height, sps->min_cb_width);
  87. s->tab_ct_depth = av_malloc_array(sps->min_cb_height, sps->min_cb_width);
  88. if (!s->skip_flag || !s->tab_ct_depth)
  89. goto fail;
  90. s->cbf_luma = av_malloc_array(sps->min_tb_width, sps->min_tb_height);
  91. s->tab_ipm = av_mallocz(min_pu_size);
  92. s->is_pcm = av_malloc_array(sps->min_pu_width + 1, sps->min_pu_height + 1);
  93. if (!s->tab_ipm || !s->cbf_luma || !s->is_pcm)
  94. goto fail;
  95. s->filter_slice_edges = av_mallocz(ctb_count);
  96. s->tab_slice_address = av_malloc_array(pic_size_in_ctb,
  97. sizeof(*s->tab_slice_address));
  98. s->qp_y_tab = av_malloc_array(pic_size_in_ctb,
  99. sizeof(*s->qp_y_tab));
  100. if (!s->qp_y_tab || !s->filter_slice_edges || !s->tab_slice_address)
  101. goto fail;
  102. s->horizontal_bs = av_mallocz_array(s->bs_width, s->bs_height);
  103. s->vertical_bs = av_mallocz_array(s->bs_width, s->bs_height);
  104. if (!s->horizontal_bs || !s->vertical_bs)
  105. goto fail;
  106. s->tab_mvf_pool = av_buffer_pool_init(min_pu_size * sizeof(MvField),
  107. av_buffer_allocz);
  108. s->rpl_tab_pool = av_buffer_pool_init(ctb_count * sizeof(RefPicListTab),
  109. av_buffer_allocz);
  110. if (!s->tab_mvf_pool || !s->rpl_tab_pool)
  111. goto fail;
  112. return 0;
  113. fail:
  114. pic_arrays_free(s);
  115. return AVERROR(ENOMEM);
  116. }
  117. static void pred_weight_table(HEVCContext *s, GetBitContext *gb)
  118. {
  119. int i = 0;
  120. int j = 0;
  121. uint8_t luma_weight_l0_flag[16];
  122. uint8_t chroma_weight_l0_flag[16];
  123. uint8_t luma_weight_l1_flag[16];
  124. uint8_t chroma_weight_l1_flag[16];
  125. int luma_log2_weight_denom;
  126. luma_log2_weight_denom = get_ue_golomb_long(gb);
  127. if (luma_log2_weight_denom < 0 || luma_log2_weight_denom > 7)
  128. av_log(s->avctx, AV_LOG_ERROR, "luma_log2_weight_denom %d is invalid\n", luma_log2_weight_denom);
  129. s->sh.luma_log2_weight_denom = av_clip_uintp2(luma_log2_weight_denom, 3);
  130. if (s->ps.sps->chroma_format_idc != 0) {
  131. int delta = get_se_golomb(gb);
  132. s->sh.chroma_log2_weight_denom = av_clip_uintp2(s->sh.luma_log2_weight_denom + delta, 3);
  133. }
  134. for (i = 0; i < s->sh.nb_refs[L0]; i++) {
  135. luma_weight_l0_flag[i] = get_bits1(gb);
  136. if (!luma_weight_l0_flag[i]) {
  137. s->sh.luma_weight_l0[i] = 1 << s->sh.luma_log2_weight_denom;
  138. s->sh.luma_offset_l0[i] = 0;
  139. }
  140. }
  141. if (s->ps.sps->chroma_format_idc != 0) {
  142. for (i = 0; i < s->sh.nb_refs[L0]; i++)
  143. chroma_weight_l0_flag[i] = get_bits1(gb);
  144. } else {
  145. for (i = 0; i < s->sh.nb_refs[L0]; i++)
  146. chroma_weight_l0_flag[i] = 0;
  147. }
  148. for (i = 0; i < s->sh.nb_refs[L0]; i++) {
  149. if (luma_weight_l0_flag[i]) {
  150. int delta_luma_weight_l0 = get_se_golomb(gb);
  151. s->sh.luma_weight_l0[i] = (1 << s->sh.luma_log2_weight_denom) + delta_luma_weight_l0;
  152. s->sh.luma_offset_l0[i] = get_se_golomb(gb);
  153. }
  154. if (chroma_weight_l0_flag[i]) {
  155. for (j = 0; j < 2; j++) {
  156. int delta_chroma_weight_l0 = get_se_golomb(gb);
  157. int delta_chroma_offset_l0 = get_se_golomb(gb);
  158. s->sh.chroma_weight_l0[i][j] = (1 << s->sh.chroma_log2_weight_denom) + delta_chroma_weight_l0;
  159. s->sh.chroma_offset_l0[i][j] = av_clip((delta_chroma_offset_l0 - ((128 * s->sh.chroma_weight_l0[i][j])
  160. >> s->sh.chroma_log2_weight_denom) + 128), -128, 127);
  161. }
  162. } else {
  163. s->sh.chroma_weight_l0[i][0] = 1 << s->sh.chroma_log2_weight_denom;
  164. s->sh.chroma_offset_l0[i][0] = 0;
  165. s->sh.chroma_weight_l0[i][1] = 1 << s->sh.chroma_log2_weight_denom;
  166. s->sh.chroma_offset_l0[i][1] = 0;
  167. }
  168. }
  169. if (s->sh.slice_type == B_SLICE) {
  170. for (i = 0; i < s->sh.nb_refs[L1]; i++) {
  171. luma_weight_l1_flag[i] = get_bits1(gb);
  172. if (!luma_weight_l1_flag[i]) {
  173. s->sh.luma_weight_l1[i] = 1 << s->sh.luma_log2_weight_denom;
  174. s->sh.luma_offset_l1[i] = 0;
  175. }
  176. }
  177. if (s->ps.sps->chroma_format_idc != 0) {
  178. for (i = 0; i < s->sh.nb_refs[L1]; i++)
  179. chroma_weight_l1_flag[i] = get_bits1(gb);
  180. } else {
  181. for (i = 0; i < s->sh.nb_refs[L1]; i++)
  182. chroma_weight_l1_flag[i] = 0;
  183. }
  184. for (i = 0; i < s->sh.nb_refs[L1]; i++) {
  185. if (luma_weight_l1_flag[i]) {
  186. int delta_luma_weight_l1 = get_se_golomb(gb);
  187. s->sh.luma_weight_l1[i] = (1 << s->sh.luma_log2_weight_denom) + delta_luma_weight_l1;
  188. s->sh.luma_offset_l1[i] = get_se_golomb(gb);
  189. }
  190. if (chroma_weight_l1_flag[i]) {
  191. for (j = 0; j < 2; j++) {
  192. int delta_chroma_weight_l1 = get_se_golomb(gb);
  193. int delta_chroma_offset_l1 = get_se_golomb(gb);
  194. s->sh.chroma_weight_l1[i][j] = (1 << s->sh.chroma_log2_weight_denom) + delta_chroma_weight_l1;
  195. s->sh.chroma_offset_l1[i][j] = av_clip((delta_chroma_offset_l1 - ((128 * s->sh.chroma_weight_l1[i][j])
  196. >> s->sh.chroma_log2_weight_denom) + 128), -128, 127);
  197. }
  198. } else {
  199. s->sh.chroma_weight_l1[i][0] = 1 << s->sh.chroma_log2_weight_denom;
  200. s->sh.chroma_offset_l1[i][0] = 0;
  201. s->sh.chroma_weight_l1[i][1] = 1 << s->sh.chroma_log2_weight_denom;
  202. s->sh.chroma_offset_l1[i][1] = 0;
  203. }
  204. }
  205. }
  206. }
  207. static int decode_lt_rps(HEVCContext *s, LongTermRPS *rps, GetBitContext *gb)
  208. {
  209. const HEVCSPS *sps = s->ps.sps;
  210. int max_poc_lsb = 1 << sps->log2_max_poc_lsb;
  211. int prev_delta_msb = 0;
  212. unsigned int nb_sps = 0, nb_sh;
  213. int i;
  214. rps->nb_refs = 0;
  215. if (!sps->long_term_ref_pics_present_flag)
  216. return 0;
  217. if (sps->num_long_term_ref_pics_sps > 0)
  218. nb_sps = get_ue_golomb_long(gb);
  219. nb_sh = get_ue_golomb_long(gb);
  220. if (nb_sps > sps->num_long_term_ref_pics_sps)
  221. return AVERROR_INVALIDDATA;
  222. if (nb_sh + (uint64_t)nb_sps > FF_ARRAY_ELEMS(rps->poc))
  223. return AVERROR_INVALIDDATA;
  224. rps->nb_refs = nb_sh + nb_sps;
  225. for (i = 0; i < rps->nb_refs; i++) {
  226. uint8_t delta_poc_msb_present;
  227. if (i < nb_sps) {
  228. uint8_t lt_idx_sps = 0;
  229. if (sps->num_long_term_ref_pics_sps > 1)
  230. lt_idx_sps = get_bits(gb, av_ceil_log2(sps->num_long_term_ref_pics_sps));
  231. rps->poc[i] = sps->lt_ref_pic_poc_lsb_sps[lt_idx_sps];
  232. rps->used[i] = sps->used_by_curr_pic_lt_sps_flag[lt_idx_sps];
  233. } else {
  234. rps->poc[i] = get_bits(gb, sps->log2_max_poc_lsb);
  235. rps->used[i] = get_bits1(gb);
  236. }
  237. delta_poc_msb_present = get_bits1(gb);
  238. if (delta_poc_msb_present) {
  239. int delta = get_ue_golomb_long(gb);
  240. if (i && i != nb_sps)
  241. delta += prev_delta_msb;
  242. rps->poc[i] += s->poc - delta * max_poc_lsb - s->sh.pic_order_cnt_lsb;
  243. prev_delta_msb = delta;
  244. }
  245. }
  246. return 0;
  247. }
  248. static void export_stream_params(AVCodecContext *avctx, const HEVCParamSets *ps,
  249. const HEVCSPS *sps)
  250. {
  251. const HEVCVPS *vps = (const HEVCVPS*)ps->vps_list[sps->vps_id]->data;
  252. unsigned int num = 0, den = 0;
  253. avctx->pix_fmt = sps->pix_fmt;
  254. avctx->coded_width = sps->width;
  255. avctx->coded_height = sps->height;
  256. avctx->width = sps->output_width;
  257. avctx->height = sps->output_height;
  258. avctx->has_b_frames = sps->temporal_layer[sps->max_sub_layers - 1].num_reorder_pics;
  259. avctx->profile = sps->ptl.general_ptl.profile_idc;
  260. avctx->level = sps->ptl.general_ptl.level_idc;
  261. ff_set_sar(avctx, sps->vui.sar);
  262. if (sps->vui.video_signal_type_present_flag)
  263. avctx->color_range = sps->vui.video_full_range_flag ? AVCOL_RANGE_JPEG
  264. : AVCOL_RANGE_MPEG;
  265. else
  266. avctx->color_range = AVCOL_RANGE_MPEG;
  267. if (sps->vui.colour_description_present_flag) {
  268. avctx->color_primaries = sps->vui.colour_primaries;
  269. avctx->color_trc = sps->vui.transfer_characteristic;
  270. avctx->colorspace = sps->vui.matrix_coeffs;
  271. } else {
  272. avctx->color_primaries = AVCOL_PRI_UNSPECIFIED;
  273. avctx->color_trc = AVCOL_TRC_UNSPECIFIED;
  274. avctx->colorspace = AVCOL_SPC_UNSPECIFIED;
  275. }
  276. if (vps->vps_timing_info_present_flag) {
  277. num = vps->vps_num_units_in_tick;
  278. den = vps->vps_time_scale;
  279. } else if (sps->vui.vui_timing_info_present_flag) {
  280. num = sps->vui.vui_num_units_in_tick;
  281. den = sps->vui.vui_time_scale;
  282. }
  283. if (num != 0 && den != 0)
  284. av_reduce(&avctx->framerate.den, &avctx->framerate.num,
  285. num, den, 1 << 30);
  286. }
  287. static int set_sps(HEVCContext *s, const HEVCSPS *sps, enum AVPixelFormat pix_fmt)
  288. {
  289. #define HWACCEL_MAX (CONFIG_HEVC_DXVA2_HWACCEL + CONFIG_HEVC_D3D11VA_HWACCEL + CONFIG_HEVC_VAAPI_HWACCEL + CONFIG_HEVC_VDPAU_HWACCEL)
  290. enum AVPixelFormat pix_fmts[HWACCEL_MAX + 2], *fmt = pix_fmts;
  291. int ret, i;
  292. pic_arrays_free(s);
  293. s->ps.sps = NULL;
  294. s->ps.vps = NULL;
  295. if (!sps)
  296. return 0;
  297. ret = pic_arrays_init(s, sps);
  298. if (ret < 0)
  299. goto fail;
  300. export_stream_params(s->avctx, &s->ps, sps);
  301. if (sps->pix_fmt == AV_PIX_FMT_YUV420P || sps->pix_fmt == AV_PIX_FMT_YUVJ420P) {
  302. #if CONFIG_HEVC_DXVA2_HWACCEL
  303. *fmt++ = AV_PIX_FMT_DXVA2_VLD;
  304. #endif
  305. #if CONFIG_HEVC_D3D11VA_HWACCEL
  306. *fmt++ = AV_PIX_FMT_D3D11VA_VLD;
  307. #endif
  308. #if CONFIG_HEVC_VAAPI_HWACCEL
  309. *fmt++ = AV_PIX_FMT_VAAPI;
  310. #endif
  311. #if CONFIG_HEVC_VDPAU_HWACCEL
  312. *fmt++ = AV_PIX_FMT_VDPAU;
  313. #endif
  314. }
  315. if (pix_fmt == AV_PIX_FMT_NONE) {
  316. *fmt++ = sps->pix_fmt;
  317. *fmt = AV_PIX_FMT_NONE;
  318. ret = ff_thread_get_format(s->avctx, pix_fmts);
  319. if (ret < 0)
  320. goto fail;
  321. s->avctx->pix_fmt = ret;
  322. }
  323. else {
  324. s->avctx->pix_fmt = pix_fmt;
  325. }
  326. ff_hevc_pred_init(&s->hpc, sps->bit_depth);
  327. ff_hevc_dsp_init (&s->hevcdsp, sps->bit_depth);
  328. ff_videodsp_init (&s->vdsp, sps->bit_depth);
  329. for (i = 0; i < 3; i++) {
  330. av_freep(&s->sao_pixel_buffer_h[i]);
  331. av_freep(&s->sao_pixel_buffer_v[i]);
  332. }
  333. if (sps->sao_enabled && !s->avctx->hwaccel) {
  334. int c_count = (sps->chroma_format_idc != 0) ? 3 : 1;
  335. int c_idx;
  336. for(c_idx = 0; c_idx < c_count; c_idx++) {
  337. int w = sps->width >> sps->hshift[c_idx];
  338. int h = sps->height >> sps->vshift[c_idx];
  339. s->sao_pixel_buffer_h[c_idx] =
  340. av_malloc((w * 2 * sps->ctb_height) <<
  341. sps->pixel_shift);
  342. s->sao_pixel_buffer_v[c_idx] =
  343. av_malloc((h * 2 * sps->ctb_width) <<
  344. sps->pixel_shift);
  345. }
  346. }
  347. s->ps.sps = sps;
  348. s->ps.vps = (HEVCVPS*) s->ps.vps_list[s->ps.sps->vps_id]->data;
  349. return 0;
  350. fail:
  351. pic_arrays_free(s);
  352. s->ps.sps = NULL;
  353. return ret;
  354. }
  355. static int hls_slice_header(HEVCContext *s)
  356. {
  357. GetBitContext *gb = &s->HEVClc->gb;
  358. SliceHeader *sh = &s->sh;
  359. int i, ret;
  360. // Coded parameters
  361. sh->first_slice_in_pic_flag = get_bits1(gb);
  362. if ((IS_IDR(s) || IS_BLA(s)) && sh->first_slice_in_pic_flag) {
  363. s->seq_decode = (s->seq_decode + 1) & 0xff;
  364. s->max_ra = INT_MAX;
  365. if (IS_IDR(s))
  366. ff_hevc_clear_refs(s);
  367. }
  368. sh->no_output_of_prior_pics_flag = 0;
  369. if (IS_IRAP(s))
  370. sh->no_output_of_prior_pics_flag = get_bits1(gb);
  371. sh->pps_id = get_ue_golomb_long(gb);
  372. if (sh->pps_id >= MAX_PPS_COUNT || !s->ps.pps_list[sh->pps_id]) {
  373. av_log(s->avctx, AV_LOG_ERROR, "PPS id out of range: %d\n", sh->pps_id);
  374. return AVERROR_INVALIDDATA;
  375. }
  376. if (!sh->first_slice_in_pic_flag &&
  377. s->ps.pps != (HEVCPPS*)s->ps.pps_list[sh->pps_id]->data) {
  378. av_log(s->avctx, AV_LOG_ERROR, "PPS changed between slices.\n");
  379. return AVERROR_INVALIDDATA;
  380. }
  381. s->ps.pps = (HEVCPPS*)s->ps.pps_list[sh->pps_id]->data;
  382. if (s->nal_unit_type == NAL_CRA_NUT && s->last_eos == 1)
  383. sh->no_output_of_prior_pics_flag = 1;
  384. if (s->ps.sps != (HEVCSPS*)s->ps.sps_list[s->ps.pps->sps_id]->data) {
  385. const HEVCSPS* last_sps = s->ps.sps;
  386. s->ps.sps = (HEVCSPS*)s->ps.sps_list[s->ps.pps->sps_id]->data;
  387. if (last_sps && IS_IRAP(s) && s->nal_unit_type != NAL_CRA_NUT) {
  388. if (s->ps.sps->width != last_sps->width || s->ps.sps->height != last_sps->height ||
  389. s->ps.sps->temporal_layer[s->ps.sps->max_sub_layers - 1].max_dec_pic_buffering !=
  390. last_sps->temporal_layer[last_sps->max_sub_layers - 1].max_dec_pic_buffering)
  391. sh->no_output_of_prior_pics_flag = 0;
  392. }
  393. ff_hevc_clear_refs(s);
  394. ret = set_sps(s, s->ps.sps, AV_PIX_FMT_NONE);
  395. if (ret < 0)
  396. return ret;
  397. s->seq_decode = (s->seq_decode + 1) & 0xff;
  398. s->max_ra = INT_MAX;
  399. }
  400. sh->dependent_slice_segment_flag = 0;
  401. if (!sh->first_slice_in_pic_flag) {
  402. int slice_address_length;
  403. if (s->ps.pps->dependent_slice_segments_enabled_flag)
  404. sh->dependent_slice_segment_flag = get_bits1(gb);
  405. slice_address_length = av_ceil_log2(s->ps.sps->ctb_width *
  406. s->ps.sps->ctb_height);
  407. sh->slice_segment_addr = get_bitsz(gb, slice_address_length);
  408. if (sh->slice_segment_addr >= s->ps.sps->ctb_width * s->ps.sps->ctb_height) {
  409. av_log(s->avctx, AV_LOG_ERROR,
  410. "Invalid slice segment address: %u.\n",
  411. sh->slice_segment_addr);
  412. return AVERROR_INVALIDDATA;
  413. }
  414. if (!sh->dependent_slice_segment_flag) {
  415. sh->slice_addr = sh->slice_segment_addr;
  416. s->slice_idx++;
  417. }
  418. } else {
  419. sh->slice_segment_addr = sh->slice_addr = 0;
  420. s->slice_idx = 0;
  421. s->slice_initialized = 0;
  422. }
  423. if (!sh->dependent_slice_segment_flag) {
  424. s->slice_initialized = 0;
  425. for (i = 0; i < s->ps.pps->num_extra_slice_header_bits; i++)
  426. skip_bits(gb, 1); // slice_reserved_undetermined_flag[]
  427. sh->slice_type = get_ue_golomb_long(gb);
  428. if (!(sh->slice_type == I_SLICE ||
  429. sh->slice_type == P_SLICE ||
  430. sh->slice_type == B_SLICE)) {
  431. av_log(s->avctx, AV_LOG_ERROR, "Unknown slice type: %d.\n",
  432. sh->slice_type);
  433. return AVERROR_INVALIDDATA;
  434. }
  435. if (IS_IRAP(s) && sh->slice_type != I_SLICE) {
  436. av_log(s->avctx, AV_LOG_ERROR, "Inter slices in an IRAP frame.\n");
  437. return AVERROR_INVALIDDATA;
  438. }
  439. // when flag is not present, picture is inferred to be output
  440. sh->pic_output_flag = 1;
  441. if (s->ps.pps->output_flag_present_flag)
  442. sh->pic_output_flag = get_bits1(gb);
  443. if (s->ps.sps->separate_colour_plane_flag)
  444. sh->colour_plane_id = get_bits(gb, 2);
  445. if (!IS_IDR(s)) {
  446. int poc, pos;
  447. sh->pic_order_cnt_lsb = get_bits(gb, s->ps.sps->log2_max_poc_lsb);
  448. poc = ff_hevc_compute_poc(s, sh->pic_order_cnt_lsb);
  449. if (!sh->first_slice_in_pic_flag && poc != s->poc) {
  450. av_log(s->avctx, AV_LOG_WARNING,
  451. "Ignoring POC change between slices: %d -> %d\n", s->poc, poc);
  452. if (s->avctx->err_recognition & AV_EF_EXPLODE)
  453. return AVERROR_INVALIDDATA;
  454. poc = s->poc;
  455. }
  456. s->poc = poc;
  457. sh->short_term_ref_pic_set_sps_flag = get_bits1(gb);
  458. pos = get_bits_left(gb);
  459. if (!sh->short_term_ref_pic_set_sps_flag) {
  460. ret = ff_hevc_decode_short_term_rps(gb, s->avctx, &sh->slice_rps, s->ps.sps, 1);
  461. if (ret < 0)
  462. return ret;
  463. sh->short_term_rps = &sh->slice_rps;
  464. } else {
  465. int numbits, rps_idx;
  466. if (!s->ps.sps->nb_st_rps) {
  467. av_log(s->avctx, AV_LOG_ERROR, "No ref lists in the SPS.\n");
  468. return AVERROR_INVALIDDATA;
  469. }
  470. numbits = av_ceil_log2(s->ps.sps->nb_st_rps);
  471. rps_idx = numbits > 0 ? get_bits(gb, numbits) : 0;
  472. sh->short_term_rps = &s->ps.sps->st_rps[rps_idx];
  473. }
  474. sh->short_term_ref_pic_set_size = pos - get_bits_left(gb);
  475. pos = get_bits_left(gb);
  476. ret = decode_lt_rps(s, &sh->long_term_rps, gb);
  477. if (ret < 0) {
  478. av_log(s->avctx, AV_LOG_WARNING, "Invalid long term RPS.\n");
  479. if (s->avctx->err_recognition & AV_EF_EXPLODE)
  480. return AVERROR_INVALIDDATA;
  481. }
  482. sh->long_term_ref_pic_set_size = pos - get_bits_left(gb);
  483. if (s->ps.sps->sps_temporal_mvp_enabled_flag)
  484. sh->slice_temporal_mvp_enabled_flag = get_bits1(gb);
  485. else
  486. sh->slice_temporal_mvp_enabled_flag = 0;
  487. } else {
  488. s->sh.short_term_rps = NULL;
  489. s->poc = 0;
  490. }
  491. /* 8.3.1 */
  492. if (s->temporal_id == 0 &&
  493. s->nal_unit_type != NAL_TRAIL_N &&
  494. s->nal_unit_type != NAL_TSA_N &&
  495. s->nal_unit_type != NAL_STSA_N &&
  496. s->nal_unit_type != NAL_RADL_N &&
  497. s->nal_unit_type != NAL_RADL_R &&
  498. s->nal_unit_type != NAL_RASL_N &&
  499. s->nal_unit_type != NAL_RASL_R)
  500. s->pocTid0 = s->poc;
  501. if (s->ps.sps->sao_enabled) {
  502. sh->slice_sample_adaptive_offset_flag[0] = get_bits1(gb);
  503. if (s->ps.sps->chroma_format_idc) {
  504. sh->slice_sample_adaptive_offset_flag[1] =
  505. sh->slice_sample_adaptive_offset_flag[2] = get_bits1(gb);
  506. }
  507. } else {
  508. sh->slice_sample_adaptive_offset_flag[0] = 0;
  509. sh->slice_sample_adaptive_offset_flag[1] = 0;
  510. sh->slice_sample_adaptive_offset_flag[2] = 0;
  511. }
  512. sh->nb_refs[L0] = sh->nb_refs[L1] = 0;
  513. if (sh->slice_type == P_SLICE || sh->slice_type == B_SLICE) {
  514. int nb_refs;
  515. sh->nb_refs[L0] = s->ps.pps->num_ref_idx_l0_default_active;
  516. if (sh->slice_type == B_SLICE)
  517. sh->nb_refs[L1] = s->ps.pps->num_ref_idx_l1_default_active;
  518. if (get_bits1(gb)) { // num_ref_idx_active_override_flag
  519. sh->nb_refs[L0] = get_ue_golomb_long(gb) + 1;
  520. if (sh->slice_type == B_SLICE)
  521. sh->nb_refs[L1] = get_ue_golomb_long(gb) + 1;
  522. }
  523. if (sh->nb_refs[L0] > MAX_REFS || sh->nb_refs[L1] > MAX_REFS) {
  524. av_log(s->avctx, AV_LOG_ERROR, "Too many refs: %d/%d.\n",
  525. sh->nb_refs[L0], sh->nb_refs[L1]);
  526. return AVERROR_INVALIDDATA;
  527. }
  528. sh->rpl_modification_flag[0] = 0;
  529. sh->rpl_modification_flag[1] = 0;
  530. nb_refs = ff_hevc_frame_nb_refs(s);
  531. if (!nb_refs) {
  532. av_log(s->avctx, AV_LOG_ERROR, "Zero refs for a frame with P or B slices.\n");
  533. return AVERROR_INVALIDDATA;
  534. }
  535. if (s->ps.pps->lists_modification_present_flag && nb_refs > 1) {
  536. sh->rpl_modification_flag[0] = get_bits1(gb);
  537. if (sh->rpl_modification_flag[0]) {
  538. for (i = 0; i < sh->nb_refs[L0]; i++)
  539. sh->list_entry_lx[0][i] = get_bits(gb, av_ceil_log2(nb_refs));
  540. }
  541. if (sh->slice_type == B_SLICE) {
  542. sh->rpl_modification_flag[1] = get_bits1(gb);
  543. if (sh->rpl_modification_flag[1] == 1)
  544. for (i = 0; i < sh->nb_refs[L1]; i++)
  545. sh->list_entry_lx[1][i] = get_bits(gb, av_ceil_log2(nb_refs));
  546. }
  547. }
  548. if (sh->slice_type == B_SLICE)
  549. sh->mvd_l1_zero_flag = get_bits1(gb);
  550. if (s->ps.pps->cabac_init_present_flag)
  551. sh->cabac_init_flag = get_bits1(gb);
  552. else
  553. sh->cabac_init_flag = 0;
  554. sh->collocated_ref_idx = 0;
  555. if (sh->slice_temporal_mvp_enabled_flag) {
  556. sh->collocated_list = L0;
  557. if (sh->slice_type == B_SLICE)
  558. sh->collocated_list = !get_bits1(gb);
  559. if (sh->nb_refs[sh->collocated_list] > 1) {
  560. sh->collocated_ref_idx = get_ue_golomb_long(gb);
  561. if (sh->collocated_ref_idx >= sh->nb_refs[sh->collocated_list]) {
  562. av_log(s->avctx, AV_LOG_ERROR,
  563. "Invalid collocated_ref_idx: %d.\n",
  564. sh->collocated_ref_idx);
  565. return AVERROR_INVALIDDATA;
  566. }
  567. }
  568. }
  569. if ((s->ps.pps->weighted_pred_flag && sh->slice_type == P_SLICE) ||
  570. (s->ps.pps->weighted_bipred_flag && sh->slice_type == B_SLICE)) {
  571. pred_weight_table(s, gb);
  572. }
  573. sh->max_num_merge_cand = 5 - get_ue_golomb_long(gb);
  574. if (sh->max_num_merge_cand < 1 || sh->max_num_merge_cand > 5) {
  575. av_log(s->avctx, AV_LOG_ERROR,
  576. "Invalid number of merging MVP candidates: %d.\n",
  577. sh->max_num_merge_cand);
  578. return AVERROR_INVALIDDATA;
  579. }
  580. }
  581. sh->slice_qp_delta = get_se_golomb(gb);
  582. if (s->ps.pps->pic_slice_level_chroma_qp_offsets_present_flag) {
  583. sh->slice_cb_qp_offset = get_se_golomb(gb);
  584. sh->slice_cr_qp_offset = get_se_golomb(gb);
  585. } else {
  586. sh->slice_cb_qp_offset = 0;
  587. sh->slice_cr_qp_offset = 0;
  588. }
  589. if (s->ps.pps->chroma_qp_offset_list_enabled_flag)
  590. sh->cu_chroma_qp_offset_enabled_flag = get_bits1(gb);
  591. else
  592. sh->cu_chroma_qp_offset_enabled_flag = 0;
  593. if (s->ps.pps->deblocking_filter_control_present_flag) {
  594. int deblocking_filter_override_flag = 0;
  595. if (s->ps.pps->deblocking_filter_override_enabled_flag)
  596. deblocking_filter_override_flag = get_bits1(gb);
  597. if (deblocking_filter_override_flag) {
  598. sh->disable_deblocking_filter_flag = get_bits1(gb);
  599. if (!sh->disable_deblocking_filter_flag) {
  600. sh->beta_offset = get_se_golomb(gb) * 2;
  601. sh->tc_offset = get_se_golomb(gb) * 2;
  602. }
  603. } else {
  604. sh->disable_deblocking_filter_flag = s->ps.pps->disable_dbf;
  605. sh->beta_offset = s->ps.pps->beta_offset;
  606. sh->tc_offset = s->ps.pps->tc_offset;
  607. }
  608. } else {
  609. sh->disable_deblocking_filter_flag = 0;
  610. sh->beta_offset = 0;
  611. sh->tc_offset = 0;
  612. }
  613. if (s->ps.pps->seq_loop_filter_across_slices_enabled_flag &&
  614. (sh->slice_sample_adaptive_offset_flag[0] ||
  615. sh->slice_sample_adaptive_offset_flag[1] ||
  616. !sh->disable_deblocking_filter_flag)) {
  617. sh->slice_loop_filter_across_slices_enabled_flag = get_bits1(gb);
  618. } else {
  619. sh->slice_loop_filter_across_slices_enabled_flag = s->ps.pps->seq_loop_filter_across_slices_enabled_flag;
  620. }
  621. } else if (!s->slice_initialized) {
  622. av_log(s->avctx, AV_LOG_ERROR, "Independent slice segment missing.\n");
  623. return AVERROR_INVALIDDATA;
  624. }
  625. sh->num_entry_point_offsets = 0;
  626. if (s->ps.pps->tiles_enabled_flag || s->ps.pps->entropy_coding_sync_enabled_flag) {
  627. unsigned num_entry_point_offsets = get_ue_golomb_long(gb);
  628. // It would be possible to bound this tighter but this here is simpler
  629. if (num_entry_point_offsets > get_bits_left(gb)) {
  630. av_log(s->avctx, AV_LOG_ERROR, "num_entry_point_offsets %d is invalid\n", num_entry_point_offsets);
  631. return AVERROR_INVALIDDATA;
  632. }
  633. sh->num_entry_point_offsets = num_entry_point_offsets;
  634. if (sh->num_entry_point_offsets > 0) {
  635. int offset_len = get_ue_golomb_long(gb) + 1;
  636. if (offset_len < 1 || offset_len > 32) {
  637. sh->num_entry_point_offsets = 0;
  638. av_log(s->avctx, AV_LOG_ERROR, "offset_len %d is invalid\n", offset_len);
  639. return AVERROR_INVALIDDATA;
  640. }
  641. av_freep(&sh->entry_point_offset);
  642. av_freep(&sh->offset);
  643. av_freep(&sh->size);
  644. sh->entry_point_offset = av_malloc_array(sh->num_entry_point_offsets, sizeof(unsigned));
  645. sh->offset = av_malloc_array(sh->num_entry_point_offsets, sizeof(int));
  646. sh->size = av_malloc_array(sh->num_entry_point_offsets, sizeof(int));
  647. if (!sh->entry_point_offset || !sh->offset || !sh->size) {
  648. sh->num_entry_point_offsets = 0;
  649. av_log(s->avctx, AV_LOG_ERROR, "Failed to allocate memory\n");
  650. return AVERROR(ENOMEM);
  651. }
  652. for (i = 0; i < sh->num_entry_point_offsets; i++) {
  653. unsigned val = get_bits_long(gb, offset_len);
  654. sh->entry_point_offset[i] = val + 1; // +1; // +1 to get the size
  655. }
  656. if (s->threads_number > 1 && (s->ps.pps->num_tile_rows > 1 || s->ps.pps->num_tile_columns > 1)) {
  657. s->enable_parallel_tiles = 0; // TODO: you can enable tiles in parallel here
  658. s->threads_number = 1;
  659. } else
  660. s->enable_parallel_tiles = 0;
  661. } else
  662. s->enable_parallel_tiles = 0;
  663. }
  664. if (s->ps.pps->slice_header_extension_present_flag) {
  665. unsigned int length = get_ue_golomb_long(gb);
  666. if (length*8LL > get_bits_left(gb)) {
  667. av_log(s->avctx, AV_LOG_ERROR, "too many slice_header_extension_data_bytes\n");
  668. return AVERROR_INVALIDDATA;
  669. }
  670. for (i = 0; i < length; i++)
  671. skip_bits(gb, 8); // slice_header_extension_data_byte
  672. }
  673. // Inferred parameters
  674. sh->slice_qp = 26U + s->ps.pps->pic_init_qp_minus26 + sh->slice_qp_delta;
  675. if (sh->slice_qp > 51 ||
  676. sh->slice_qp < -s->ps.sps->qp_bd_offset) {
  677. av_log(s->avctx, AV_LOG_ERROR,
  678. "The slice_qp %d is outside the valid range "
  679. "[%d, 51].\n",
  680. sh->slice_qp,
  681. -s->ps.sps->qp_bd_offset);
  682. return AVERROR_INVALIDDATA;
  683. }
  684. sh->slice_ctb_addr_rs = sh->slice_segment_addr;
  685. if (!s->sh.slice_ctb_addr_rs && s->sh.dependent_slice_segment_flag) {
  686. av_log(s->avctx, AV_LOG_ERROR, "Impossible slice segment.\n");
  687. return AVERROR_INVALIDDATA;
  688. }
  689. if (get_bits_left(gb) < 0) {
  690. av_log(s->avctx, AV_LOG_ERROR,
  691. "Overread slice header by %d bits\n", -get_bits_left(gb));
  692. return AVERROR_INVALIDDATA;
  693. }
  694. s->HEVClc->first_qp_group = !s->sh.dependent_slice_segment_flag;
  695. if (!s->ps.pps->cu_qp_delta_enabled_flag)
  696. s->HEVClc->qp_y = s->sh.slice_qp;
  697. s->slice_initialized = 1;
  698. s->HEVClc->tu.cu_qp_offset_cb = 0;
  699. s->HEVClc->tu.cu_qp_offset_cr = 0;
  700. s->no_rasl_output_flag = IS_IDR(s) || IS_BLA(s) || (s->nal_unit_type == NAL_CRA_NUT && s->last_eos);
  701. return 0;
  702. }
  703. #define CTB(tab, x, y) ((tab)[(y) * s->ps.sps->ctb_width + (x)])
  704. #define SET_SAO(elem, value) \
  705. do { \
  706. if (!sao_merge_up_flag && !sao_merge_left_flag) \
  707. sao->elem = value; \
  708. else if (sao_merge_left_flag) \
  709. sao->elem = CTB(s->sao, rx-1, ry).elem; \
  710. else if (sao_merge_up_flag) \
  711. sao->elem = CTB(s->sao, rx, ry-1).elem; \
  712. else \
  713. sao->elem = 0; \
  714. } while (0)
  715. static void hls_sao_param(HEVCContext *s, int rx, int ry)
  716. {
  717. HEVCLocalContext *lc = s->HEVClc;
  718. int sao_merge_left_flag = 0;
  719. int sao_merge_up_flag = 0;
  720. SAOParams *sao = &CTB(s->sao, rx, ry);
  721. int c_idx, i;
  722. if (s->sh.slice_sample_adaptive_offset_flag[0] ||
  723. s->sh.slice_sample_adaptive_offset_flag[1]) {
  724. if (rx > 0) {
  725. if (lc->ctb_left_flag)
  726. sao_merge_left_flag = ff_hevc_sao_merge_flag_decode(s);
  727. }
  728. if (ry > 0 && !sao_merge_left_flag) {
  729. if (lc->ctb_up_flag)
  730. sao_merge_up_flag = ff_hevc_sao_merge_flag_decode(s);
  731. }
  732. }
  733. for (c_idx = 0; c_idx < (s->ps.sps->chroma_format_idc ? 3 : 1); c_idx++) {
  734. int log2_sao_offset_scale = c_idx == 0 ? s->ps.pps->log2_sao_offset_scale_luma :
  735. s->ps.pps->log2_sao_offset_scale_chroma;
  736. if (!s->sh.slice_sample_adaptive_offset_flag[c_idx]) {
  737. sao->type_idx[c_idx] = SAO_NOT_APPLIED;
  738. continue;
  739. }
  740. if (c_idx == 2) {
  741. sao->type_idx[2] = sao->type_idx[1];
  742. sao->eo_class[2] = sao->eo_class[1];
  743. } else {
  744. SET_SAO(type_idx[c_idx], ff_hevc_sao_type_idx_decode(s));
  745. }
  746. if (sao->type_idx[c_idx] == SAO_NOT_APPLIED)
  747. continue;
  748. for (i = 0; i < 4; i++)
  749. SET_SAO(offset_abs[c_idx][i], ff_hevc_sao_offset_abs_decode(s));
  750. if (sao->type_idx[c_idx] == SAO_BAND) {
  751. for (i = 0; i < 4; i++) {
  752. if (sao->offset_abs[c_idx][i]) {
  753. SET_SAO(offset_sign[c_idx][i],
  754. ff_hevc_sao_offset_sign_decode(s));
  755. } else {
  756. sao->offset_sign[c_idx][i] = 0;
  757. }
  758. }
  759. SET_SAO(band_position[c_idx], ff_hevc_sao_band_position_decode(s));
  760. } else if (c_idx != 2) {
  761. SET_SAO(eo_class[c_idx], ff_hevc_sao_eo_class_decode(s));
  762. }
  763. // Inferred parameters
  764. sao->offset_val[c_idx][0] = 0;
  765. for (i = 0; i < 4; i++) {
  766. sao->offset_val[c_idx][i + 1] = sao->offset_abs[c_idx][i];
  767. if (sao->type_idx[c_idx] == SAO_EDGE) {
  768. if (i > 1)
  769. sao->offset_val[c_idx][i + 1] = -sao->offset_val[c_idx][i + 1];
  770. } else if (sao->offset_sign[c_idx][i]) {
  771. sao->offset_val[c_idx][i + 1] = -sao->offset_val[c_idx][i + 1];
  772. }
  773. sao->offset_val[c_idx][i + 1] *= 1 << log2_sao_offset_scale;
  774. }
  775. }
  776. }
  777. #undef SET_SAO
  778. #undef CTB
  779. static int hls_cross_component_pred(HEVCContext *s, int idx) {
  780. HEVCLocalContext *lc = s->HEVClc;
  781. int log2_res_scale_abs_plus1 = ff_hevc_log2_res_scale_abs(s, idx);
  782. if (log2_res_scale_abs_plus1 != 0) {
  783. int res_scale_sign_flag = ff_hevc_res_scale_sign_flag(s, idx);
  784. lc->tu.res_scale_val = (1 << (log2_res_scale_abs_plus1 - 1)) *
  785. (1 - 2 * res_scale_sign_flag);
  786. } else {
  787. lc->tu.res_scale_val = 0;
  788. }
  789. return 0;
  790. }
  791. static int hls_transform_unit(HEVCContext *s, int x0, int y0,
  792. int xBase, int yBase, int cb_xBase, int cb_yBase,
  793. int log2_cb_size, int log2_trafo_size,
  794. int blk_idx, int cbf_luma, int *cbf_cb, int *cbf_cr)
  795. {
  796. HEVCLocalContext *lc = s->HEVClc;
  797. const int log2_trafo_size_c = log2_trafo_size - s->ps.sps->hshift[1];
  798. int i;
  799. if (lc->cu.pred_mode == MODE_INTRA) {
  800. int trafo_size = 1 << log2_trafo_size;
  801. ff_hevc_set_neighbour_available(s, x0, y0, trafo_size, trafo_size);
  802. s->hpc.intra_pred[log2_trafo_size - 2](s, x0, y0, 0);
  803. }
  804. if (cbf_luma || cbf_cb[0] || cbf_cr[0] ||
  805. (s->ps.sps->chroma_format_idc == 2 && (cbf_cb[1] || cbf_cr[1]))) {
  806. int scan_idx = SCAN_DIAG;
  807. int scan_idx_c = SCAN_DIAG;
  808. int cbf_chroma = cbf_cb[0] || cbf_cr[0] ||
  809. (s->ps.sps->chroma_format_idc == 2 &&
  810. (cbf_cb[1] || cbf_cr[1]));
  811. if (s->ps.pps->cu_qp_delta_enabled_flag && !lc->tu.is_cu_qp_delta_coded) {
  812. lc->tu.cu_qp_delta = ff_hevc_cu_qp_delta_abs(s);
  813. if (lc->tu.cu_qp_delta != 0)
  814. if (ff_hevc_cu_qp_delta_sign_flag(s) == 1)
  815. lc->tu.cu_qp_delta = -lc->tu.cu_qp_delta;
  816. lc->tu.is_cu_qp_delta_coded = 1;
  817. if (lc->tu.cu_qp_delta < -(26 + s->ps.sps->qp_bd_offset / 2) ||
  818. lc->tu.cu_qp_delta > (25 + s->ps.sps->qp_bd_offset / 2)) {
  819. av_log(s->avctx, AV_LOG_ERROR,
  820. "The cu_qp_delta %d is outside the valid range "
  821. "[%d, %d].\n",
  822. lc->tu.cu_qp_delta,
  823. -(26 + s->ps.sps->qp_bd_offset / 2),
  824. (25 + s->ps.sps->qp_bd_offset / 2));
  825. return AVERROR_INVALIDDATA;
  826. }
  827. ff_hevc_set_qPy(s, cb_xBase, cb_yBase, log2_cb_size);
  828. }
  829. if (s->sh.cu_chroma_qp_offset_enabled_flag && cbf_chroma &&
  830. !lc->cu.cu_transquant_bypass_flag && !lc->tu.is_cu_chroma_qp_offset_coded) {
  831. int cu_chroma_qp_offset_flag = ff_hevc_cu_chroma_qp_offset_flag(s);
  832. if (cu_chroma_qp_offset_flag) {
  833. int cu_chroma_qp_offset_idx = 0;
  834. if (s->ps.pps->chroma_qp_offset_list_len_minus1 > 0) {
  835. cu_chroma_qp_offset_idx = ff_hevc_cu_chroma_qp_offset_idx(s);
  836. av_log(s->avctx, AV_LOG_ERROR,
  837. "cu_chroma_qp_offset_idx not yet tested.\n");
  838. }
  839. lc->tu.cu_qp_offset_cb = s->ps.pps->cb_qp_offset_list[cu_chroma_qp_offset_idx];
  840. lc->tu.cu_qp_offset_cr = s->ps.pps->cr_qp_offset_list[cu_chroma_qp_offset_idx];
  841. } else {
  842. lc->tu.cu_qp_offset_cb = 0;
  843. lc->tu.cu_qp_offset_cr = 0;
  844. }
  845. lc->tu.is_cu_chroma_qp_offset_coded = 1;
  846. }
  847. if (lc->cu.pred_mode == MODE_INTRA && log2_trafo_size < 4) {
  848. if (lc->tu.intra_pred_mode >= 6 &&
  849. lc->tu.intra_pred_mode <= 14) {
  850. scan_idx = SCAN_VERT;
  851. } else if (lc->tu.intra_pred_mode >= 22 &&
  852. lc->tu.intra_pred_mode <= 30) {
  853. scan_idx = SCAN_HORIZ;
  854. }
  855. if (lc->tu.intra_pred_mode_c >= 6 &&
  856. lc->tu.intra_pred_mode_c <= 14) {
  857. scan_idx_c = SCAN_VERT;
  858. } else if (lc->tu.intra_pred_mode_c >= 22 &&
  859. lc->tu.intra_pred_mode_c <= 30) {
  860. scan_idx_c = SCAN_HORIZ;
  861. }
  862. }
  863. lc->tu.cross_pf = 0;
  864. if (cbf_luma)
  865. ff_hevc_hls_residual_coding(s, x0, y0, log2_trafo_size, scan_idx, 0);
  866. if (s->ps.sps->chroma_format_idc && (log2_trafo_size > 2 || s->ps.sps->chroma_format_idc == 3)) {
  867. int trafo_size_h = 1 << (log2_trafo_size_c + s->ps.sps->hshift[1]);
  868. int trafo_size_v = 1 << (log2_trafo_size_c + s->ps.sps->vshift[1]);
  869. lc->tu.cross_pf = (s->ps.pps->cross_component_prediction_enabled_flag && cbf_luma &&
  870. (lc->cu.pred_mode == MODE_INTER ||
  871. (lc->tu.chroma_mode_c == 4)));
  872. if (lc->tu.cross_pf) {
  873. hls_cross_component_pred(s, 0);
  874. }
  875. for (i = 0; i < (s->ps.sps->chroma_format_idc == 2 ? 2 : 1); i++) {
  876. if (lc->cu.pred_mode == MODE_INTRA) {
  877. ff_hevc_set_neighbour_available(s, x0, y0 + (i << log2_trafo_size_c), trafo_size_h, trafo_size_v);
  878. s->hpc.intra_pred[log2_trafo_size_c - 2](s, x0, y0 + (i << log2_trafo_size_c), 1);
  879. }
  880. if (cbf_cb[i])
  881. ff_hevc_hls_residual_coding(s, x0, y0 + (i << log2_trafo_size_c),
  882. log2_trafo_size_c, scan_idx_c, 1);
  883. else
  884. if (lc->tu.cross_pf) {
  885. ptrdiff_t stride = s->frame->linesize[1];
  886. int hshift = s->ps.sps->hshift[1];
  887. int vshift = s->ps.sps->vshift[1];
  888. int16_t *coeffs_y = (int16_t*)lc->edge_emu_buffer;
  889. int16_t *coeffs = (int16_t*)lc->edge_emu_buffer2;
  890. int size = 1 << log2_trafo_size_c;
  891. uint8_t *dst = &s->frame->data[1][(y0 >> vshift) * stride +
  892. ((x0 >> hshift) << s->ps.sps->pixel_shift)];
  893. for (i = 0; i < (size * size); i++) {
  894. coeffs[i] = ((lc->tu.res_scale_val * coeffs_y[i]) >> 3);
  895. }
  896. s->hevcdsp.transform_add[log2_trafo_size_c-2](dst, coeffs, stride);
  897. }
  898. }
  899. if (lc->tu.cross_pf) {
  900. hls_cross_component_pred(s, 1);
  901. }
  902. for (i = 0; i < (s->ps.sps->chroma_format_idc == 2 ? 2 : 1); i++) {
  903. if (lc->cu.pred_mode == MODE_INTRA) {
  904. ff_hevc_set_neighbour_available(s, x0, y0 + (i << log2_trafo_size_c), trafo_size_h, trafo_size_v);
  905. s->hpc.intra_pred[log2_trafo_size_c - 2](s, x0, y0 + (i << log2_trafo_size_c), 2);
  906. }
  907. if (cbf_cr[i])
  908. ff_hevc_hls_residual_coding(s, x0, y0 + (i << log2_trafo_size_c),
  909. log2_trafo_size_c, scan_idx_c, 2);
  910. else
  911. if (lc->tu.cross_pf) {
  912. ptrdiff_t stride = s->frame->linesize[2];
  913. int hshift = s->ps.sps->hshift[2];
  914. int vshift = s->ps.sps->vshift[2];
  915. int16_t *coeffs_y = (int16_t*)lc->edge_emu_buffer;
  916. int16_t *coeffs = (int16_t*)lc->edge_emu_buffer2;
  917. int size = 1 << log2_trafo_size_c;
  918. uint8_t *dst = &s->frame->data[2][(y0 >> vshift) * stride +
  919. ((x0 >> hshift) << s->ps.sps->pixel_shift)];
  920. for (i = 0; i < (size * size); i++) {
  921. coeffs[i] = ((lc->tu.res_scale_val * coeffs_y[i]) >> 3);
  922. }
  923. s->hevcdsp.transform_add[log2_trafo_size_c-2](dst, coeffs, stride);
  924. }
  925. }
  926. } else if (s->ps.sps->chroma_format_idc && blk_idx == 3) {
  927. int trafo_size_h = 1 << (log2_trafo_size + 1);
  928. int trafo_size_v = 1 << (log2_trafo_size + s->ps.sps->vshift[1]);
  929. for (i = 0; i < (s->ps.sps->chroma_format_idc == 2 ? 2 : 1); i++) {
  930. if (lc->cu.pred_mode == MODE_INTRA) {
  931. ff_hevc_set_neighbour_available(s, xBase, yBase + (i << log2_trafo_size),
  932. trafo_size_h, trafo_size_v);
  933. s->hpc.intra_pred[log2_trafo_size - 2](s, xBase, yBase + (i << log2_trafo_size), 1);
  934. }
  935. if (cbf_cb[i])
  936. ff_hevc_hls_residual_coding(s, xBase, yBase + (i << log2_trafo_size),
  937. log2_trafo_size, scan_idx_c, 1);
  938. }
  939. for (i = 0; i < (s->ps.sps->chroma_format_idc == 2 ? 2 : 1); i++) {
  940. if (lc->cu.pred_mode == MODE_INTRA) {
  941. ff_hevc_set_neighbour_available(s, xBase, yBase + (i << log2_trafo_size),
  942. trafo_size_h, trafo_size_v);
  943. s->hpc.intra_pred[log2_trafo_size - 2](s, xBase, yBase + (i << log2_trafo_size), 2);
  944. }
  945. if (cbf_cr[i])
  946. ff_hevc_hls_residual_coding(s, xBase, yBase + (i << log2_trafo_size),
  947. log2_trafo_size, scan_idx_c, 2);
  948. }
  949. }
  950. } else if (s->ps.sps->chroma_format_idc && lc->cu.pred_mode == MODE_INTRA) {
  951. if (log2_trafo_size > 2 || s->ps.sps->chroma_format_idc == 3) {
  952. int trafo_size_h = 1 << (log2_trafo_size_c + s->ps.sps->hshift[1]);
  953. int trafo_size_v = 1 << (log2_trafo_size_c + s->ps.sps->vshift[1]);
  954. ff_hevc_set_neighbour_available(s, x0, y0, trafo_size_h, trafo_size_v);
  955. s->hpc.intra_pred[log2_trafo_size_c - 2](s, x0, y0, 1);
  956. s->hpc.intra_pred[log2_trafo_size_c - 2](s, x0, y0, 2);
  957. if (s->ps.sps->chroma_format_idc == 2) {
  958. ff_hevc_set_neighbour_available(s, x0, y0 + (1 << log2_trafo_size_c),
  959. trafo_size_h, trafo_size_v);
  960. s->hpc.intra_pred[log2_trafo_size_c - 2](s, x0, y0 + (1 << log2_trafo_size_c), 1);
  961. s->hpc.intra_pred[log2_trafo_size_c - 2](s, x0, y0 + (1 << log2_trafo_size_c), 2);
  962. }
  963. } else if (blk_idx == 3) {
  964. int trafo_size_h = 1 << (log2_trafo_size + 1);
  965. int trafo_size_v = 1 << (log2_trafo_size + s->ps.sps->vshift[1]);
  966. ff_hevc_set_neighbour_available(s, xBase, yBase,
  967. trafo_size_h, trafo_size_v);
  968. s->hpc.intra_pred[log2_trafo_size - 2](s, xBase, yBase, 1);
  969. s->hpc.intra_pred[log2_trafo_size - 2](s, xBase, yBase, 2);
  970. if (s->ps.sps->chroma_format_idc == 2) {
  971. ff_hevc_set_neighbour_available(s, xBase, yBase + (1 << (log2_trafo_size)),
  972. trafo_size_h, trafo_size_v);
  973. s->hpc.intra_pred[log2_trafo_size - 2](s, xBase, yBase + (1 << (log2_trafo_size)), 1);
  974. s->hpc.intra_pred[log2_trafo_size - 2](s, xBase, yBase + (1 << (log2_trafo_size)), 2);
  975. }
  976. }
  977. }
  978. return 0;
  979. }
  980. static void set_deblocking_bypass(HEVCContext *s, int x0, int y0, int log2_cb_size)
  981. {
  982. int cb_size = 1 << log2_cb_size;
  983. int log2_min_pu_size = s->ps.sps->log2_min_pu_size;
  984. int min_pu_width = s->ps.sps->min_pu_width;
  985. int x_end = FFMIN(x0 + cb_size, s->ps.sps->width);
  986. int y_end = FFMIN(y0 + cb_size, s->ps.sps->height);
  987. int i, j;
  988. for (j = (y0 >> log2_min_pu_size); j < (y_end >> log2_min_pu_size); j++)
  989. for (i = (x0 >> log2_min_pu_size); i < (x_end >> log2_min_pu_size); i++)
  990. s->is_pcm[i + j * min_pu_width] = 2;
  991. }
  992. static int hls_transform_tree(HEVCContext *s, int x0, int y0,
  993. int xBase, int yBase, int cb_xBase, int cb_yBase,
  994. int log2_cb_size, int log2_trafo_size,
  995. int trafo_depth, int blk_idx,
  996. const int *base_cbf_cb, const int *base_cbf_cr)
  997. {
  998. HEVCLocalContext *lc = s->HEVClc;
  999. uint8_t split_transform_flag;
  1000. int cbf_cb[2];
  1001. int cbf_cr[2];
  1002. int ret;
  1003. cbf_cb[0] = base_cbf_cb[0];
  1004. cbf_cb[1] = base_cbf_cb[1];
  1005. cbf_cr[0] = base_cbf_cr[0];
  1006. cbf_cr[1] = base_cbf_cr[1];
  1007. if (lc->cu.intra_split_flag) {
  1008. if (trafo_depth == 1) {
  1009. lc->tu.intra_pred_mode = lc->pu.intra_pred_mode[blk_idx];
  1010. if (s->ps.sps->chroma_format_idc == 3) {
  1011. lc->tu.intra_pred_mode_c = lc->pu.intra_pred_mode_c[blk_idx];
  1012. lc->tu.chroma_mode_c = lc->pu.chroma_mode_c[blk_idx];
  1013. } else {
  1014. lc->tu.intra_pred_mode_c = lc->pu.intra_pred_mode_c[0];
  1015. lc->tu.chroma_mode_c = lc->pu.chroma_mode_c[0];
  1016. }
  1017. }
  1018. } else {
  1019. lc->tu.intra_pred_mode = lc->pu.intra_pred_mode[0];
  1020. lc->tu.intra_pred_mode_c = lc->pu.intra_pred_mode_c[0];
  1021. lc->tu.chroma_mode_c = lc->pu.chroma_mode_c[0];
  1022. }
  1023. if (log2_trafo_size <= s->ps.sps->log2_max_trafo_size &&
  1024. log2_trafo_size > s->ps.sps->log2_min_tb_size &&
  1025. trafo_depth < lc->cu.max_trafo_depth &&
  1026. !(lc->cu.intra_split_flag && trafo_depth == 0)) {
  1027. split_transform_flag = ff_hevc_split_transform_flag_decode(s, log2_trafo_size);
  1028. } else {
  1029. int inter_split = s->ps.sps->max_transform_hierarchy_depth_inter == 0 &&
  1030. lc->cu.pred_mode == MODE_INTER &&
  1031. lc->cu.part_mode != PART_2Nx2N &&
  1032. trafo_depth == 0;
  1033. split_transform_flag = log2_trafo_size > s->ps.sps->log2_max_trafo_size ||
  1034. (lc->cu.intra_split_flag && trafo_depth == 0) ||
  1035. inter_split;
  1036. }
  1037. if (s->ps.sps->chroma_format_idc && (log2_trafo_size > 2 || s->ps.sps->chroma_format_idc == 3)) {
  1038. if (trafo_depth == 0 || cbf_cb[0]) {
  1039. cbf_cb[0] = ff_hevc_cbf_cb_cr_decode(s, trafo_depth);
  1040. if (s->ps.sps->chroma_format_idc == 2 && (!split_transform_flag || log2_trafo_size == 3)) {
  1041. cbf_cb[1] = ff_hevc_cbf_cb_cr_decode(s, trafo_depth);
  1042. }
  1043. }
  1044. if (trafo_depth == 0 || cbf_cr[0]) {
  1045. cbf_cr[0] = ff_hevc_cbf_cb_cr_decode(s, trafo_depth);
  1046. if (s->ps.sps->chroma_format_idc == 2 && (!split_transform_flag || log2_trafo_size == 3)) {
  1047. cbf_cr[1] = ff_hevc_cbf_cb_cr_decode(s, trafo_depth);
  1048. }
  1049. }
  1050. }
  1051. if (split_transform_flag) {
  1052. const int trafo_size_split = 1 << (log2_trafo_size - 1);
  1053. const int x1 = x0 + trafo_size_split;
  1054. const int y1 = y0 + trafo_size_split;
  1055. #define SUBDIVIDE(x, y, idx) \
  1056. do { \
  1057. ret = hls_transform_tree(s, x, y, x0, y0, cb_xBase, cb_yBase, log2_cb_size, \
  1058. log2_trafo_size - 1, trafo_depth + 1, idx, \
  1059. cbf_cb, cbf_cr); \
  1060. if (ret < 0) \
  1061. return ret; \
  1062. } while (0)
  1063. SUBDIVIDE(x0, y0, 0);
  1064. SUBDIVIDE(x1, y0, 1);
  1065. SUBDIVIDE(x0, y1, 2);
  1066. SUBDIVIDE(x1, y1, 3);
  1067. #undef SUBDIVIDE
  1068. } else {
  1069. int min_tu_size = 1 << s->ps.sps->log2_min_tb_size;
  1070. int log2_min_tu_size = s->ps.sps->log2_min_tb_size;
  1071. int min_tu_width = s->ps.sps->min_tb_width;
  1072. int cbf_luma = 1;
  1073. if (lc->cu.pred_mode == MODE_INTRA || trafo_depth != 0 ||
  1074. cbf_cb[0] || cbf_cr[0] ||
  1075. (s->ps.sps->chroma_format_idc == 2 && (cbf_cb[1] || cbf_cr[1]))) {
  1076. cbf_luma = ff_hevc_cbf_luma_decode(s, trafo_depth);
  1077. }
  1078. ret = hls_transform_unit(s, x0, y0, xBase, yBase, cb_xBase, cb_yBase,
  1079. log2_cb_size, log2_trafo_size,
  1080. blk_idx, cbf_luma, cbf_cb, cbf_cr);
  1081. if (ret < 0)
  1082. return ret;
  1083. // TODO: store cbf_luma somewhere else
  1084. if (cbf_luma) {
  1085. int i, j;
  1086. for (i = 0; i < (1 << log2_trafo_size); i += min_tu_size)
  1087. for (j = 0; j < (1 << log2_trafo_size); j += min_tu_size) {
  1088. int x_tu = (x0 + j) >> log2_min_tu_size;
  1089. int y_tu = (y0 + i) >> log2_min_tu_size;
  1090. s->cbf_luma[y_tu * min_tu_width + x_tu] = 1;
  1091. }
  1092. }
  1093. if (!s->sh.disable_deblocking_filter_flag) {
  1094. ff_hevc_deblocking_boundary_strengths(s, x0, y0, log2_trafo_size);
  1095. if (s->ps.pps->transquant_bypass_enable_flag &&
  1096. lc->cu.cu_transquant_bypass_flag)
  1097. set_deblocking_bypass(s, x0, y0, log2_trafo_size);
  1098. }
  1099. }
  1100. return 0;
  1101. }
  1102. static int hls_pcm_sample(HEVCContext *s, int x0, int y0, int log2_cb_size)
  1103. {
  1104. HEVCLocalContext *lc = s->HEVClc;
  1105. GetBitContext gb;
  1106. int cb_size = 1 << log2_cb_size;
  1107. int stride0 = s->frame->linesize[0];
  1108. uint8_t *dst0 = &s->frame->data[0][y0 * stride0 + (x0 << s->ps.sps->pixel_shift)];
  1109. int stride1 = s->frame->linesize[1];
  1110. uint8_t *dst1 = &s->frame->data[1][(y0 >> s->ps.sps->vshift[1]) * stride1 + ((x0 >> s->ps.sps->hshift[1]) << s->ps.sps->pixel_shift)];
  1111. int stride2 = s->frame->linesize[2];
  1112. uint8_t *dst2 = &s->frame->data[2][(y0 >> s->ps.sps->vshift[2]) * stride2 + ((x0 >> s->ps.sps->hshift[2]) << s->ps.sps->pixel_shift)];
  1113. int length = cb_size * cb_size * s->ps.sps->pcm.bit_depth +
  1114. (((cb_size >> s->ps.sps->hshift[1]) * (cb_size >> s->ps.sps->vshift[1])) +
  1115. ((cb_size >> s->ps.sps->hshift[2]) * (cb_size >> s->ps.sps->vshift[2]))) *
  1116. s->ps.sps->pcm.bit_depth_chroma;
  1117. const uint8_t *pcm = skip_bytes(&lc->cc, (length + 7) >> 3);
  1118. int ret;
  1119. if (!s->sh.disable_deblocking_filter_flag)
  1120. ff_hevc_deblocking_boundary_strengths(s, x0, y0, log2_cb_size);
  1121. ret = init_get_bits(&gb, pcm, length);
  1122. if (ret < 0)
  1123. return ret;
  1124. s->hevcdsp.put_pcm(dst0, stride0, cb_size, cb_size, &gb, s->ps.sps->pcm.bit_depth);
  1125. if (s->ps.sps->chroma_format_idc) {
  1126. s->hevcdsp.put_pcm(dst1, stride1,
  1127. cb_size >> s->ps.sps->hshift[1],
  1128. cb_size >> s->ps.sps->vshift[1],
  1129. &gb, s->ps.sps->pcm.bit_depth_chroma);
  1130. s->hevcdsp.put_pcm(dst2, stride2,
  1131. cb_size >> s->ps.sps->hshift[2],
  1132. cb_size >> s->ps.sps->vshift[2],
  1133. &gb, s->ps.sps->pcm.bit_depth_chroma);
  1134. }
  1135. return 0;
  1136. }
  1137. /**
  1138. * 8.5.3.2.2.1 Luma sample unidirectional interpolation process
  1139. *
  1140. * @param s HEVC decoding context
  1141. * @param dst target buffer for block data at block position
  1142. * @param dststride stride of the dst buffer
  1143. * @param ref reference picture buffer at origin (0, 0)
  1144. * @param mv motion vector (relative to block position) to get pixel data from
  1145. * @param x_off horizontal position of block from origin (0, 0)
  1146. * @param y_off vertical position of block from origin (0, 0)
  1147. * @param block_w width of block
  1148. * @param block_h height of block
  1149. * @param luma_weight weighting factor applied to the luma prediction
  1150. * @param luma_offset additive offset applied to the luma prediction value
  1151. */
  1152. static void luma_mc_uni(HEVCContext *s, uint8_t *dst, ptrdiff_t dststride,
  1153. AVFrame *ref, const Mv *mv, int x_off, int y_off,
  1154. int block_w, int block_h, int luma_weight, int luma_offset)
  1155. {
  1156. HEVCLocalContext *lc = s->HEVClc;
  1157. uint8_t *src = ref->data[0];
  1158. ptrdiff_t srcstride = ref->linesize[0];
  1159. int pic_width = s->ps.sps->width;
  1160. int pic_height = s->ps.sps->height;
  1161. int mx = mv->x & 3;
  1162. int my = mv->y & 3;
  1163. int weight_flag = (s->sh.slice_type == P_SLICE && s->ps.pps->weighted_pred_flag) ||
  1164. (s->sh.slice_type == B_SLICE && s->ps.pps->weighted_bipred_flag);
  1165. int idx = ff_hevc_pel_weight[block_w];
  1166. x_off += mv->x >> 2;
  1167. y_off += mv->y >> 2;
  1168. src += y_off * srcstride + (x_off * (1 << s->ps.sps->pixel_shift));
  1169. if (x_off < QPEL_EXTRA_BEFORE || y_off < QPEL_EXTRA_AFTER ||
  1170. x_off >= pic_width - block_w - QPEL_EXTRA_AFTER ||
  1171. y_off >= pic_height - block_h - QPEL_EXTRA_AFTER) {
  1172. const int edge_emu_stride = EDGE_EMU_BUFFER_STRIDE << s->ps.sps->pixel_shift;
  1173. int offset = QPEL_EXTRA_BEFORE * srcstride + (QPEL_EXTRA_BEFORE << s->ps.sps->pixel_shift);
  1174. int buf_offset = QPEL_EXTRA_BEFORE * edge_emu_stride + (QPEL_EXTRA_BEFORE << s->ps.sps->pixel_shift);
  1175. s->vdsp.emulated_edge_mc(lc->edge_emu_buffer, src - offset,
  1176. edge_emu_stride, srcstride,
  1177. block_w + QPEL_EXTRA,
  1178. block_h + QPEL_EXTRA,
  1179. x_off - QPEL_EXTRA_BEFORE, y_off - QPEL_EXTRA_BEFORE,
  1180. pic_width, pic_height);
  1181. src = lc->edge_emu_buffer + buf_offset;
  1182. srcstride = edge_emu_stride;
  1183. }
  1184. if (!weight_flag)
  1185. s->hevcdsp.put_hevc_qpel_uni[idx][!!my][!!mx](dst, dststride, src, srcstride,
  1186. block_h, mx, my, block_w);
  1187. else
  1188. s->hevcdsp.put_hevc_qpel_uni_w[idx][!!my][!!mx](dst, dststride, src, srcstride,
  1189. block_h, s->sh.luma_log2_weight_denom,
  1190. luma_weight, luma_offset, mx, my, block_w);
  1191. }
  1192. /**
  1193. * 8.5.3.2.2.1 Luma sample bidirectional interpolation process
  1194. *
  1195. * @param s HEVC decoding context
  1196. * @param dst target buffer for block data at block position
  1197. * @param dststride stride of the dst buffer
  1198. * @param ref0 reference picture0 buffer at origin (0, 0)
  1199. * @param mv0 motion vector0 (relative to block position) to get pixel data from
  1200. * @param x_off horizontal position of block from origin (0, 0)
  1201. * @param y_off vertical position of block from origin (0, 0)
  1202. * @param block_w width of block
  1203. * @param block_h height of block
  1204. * @param ref1 reference picture1 buffer at origin (0, 0)
  1205. * @param mv1 motion vector1 (relative to block position) to get pixel data from
  1206. * @param current_mv current motion vector structure
  1207. */
  1208. static void luma_mc_bi(HEVCContext *s, uint8_t *dst, ptrdiff_t dststride,
  1209. AVFrame *ref0, const Mv *mv0, int x_off, int y_off,
  1210. int block_w, int block_h, AVFrame *ref1, const Mv *mv1, struct MvField *current_mv)
  1211. {
  1212. HEVCLocalContext *lc = s->HEVClc;
  1213. ptrdiff_t src0stride = ref0->linesize[0];
  1214. ptrdiff_t src1stride = ref1->linesize[0];
  1215. int pic_width = s->ps.sps->width;
  1216. int pic_height = s->ps.sps->height;
  1217. int mx0 = mv0->x & 3;
  1218. int my0 = mv0->y & 3;
  1219. int mx1 = mv1->x & 3;
  1220. int my1 = mv1->y & 3;
  1221. int weight_flag = (s->sh.slice_type == P_SLICE && s->ps.pps->weighted_pred_flag) ||
  1222. (s->sh.slice_type == B_SLICE && s->ps.pps->weighted_bipred_flag);
  1223. int x_off0 = x_off + (mv0->x >> 2);
  1224. int y_off0 = y_off + (mv0->y >> 2);
  1225. int x_off1 = x_off + (mv1->x >> 2);
  1226. int y_off1 = y_off + (mv1->y >> 2);
  1227. int idx = ff_hevc_pel_weight[block_w];
  1228. uint8_t *src0 = ref0->data[0] + y_off0 * src0stride + (int)((unsigned)x_off0 << s->ps.sps->pixel_shift);
  1229. uint8_t *src1 = ref1->data[0] + y_off1 * src1stride + (int)((unsigned)x_off1 << s->ps.sps->pixel_shift);
  1230. if (x_off0 < QPEL_EXTRA_BEFORE || y_off0 < QPEL_EXTRA_AFTER ||
  1231. x_off0 >= pic_width - block_w - QPEL_EXTRA_AFTER ||
  1232. y_off0 >= pic_height - block_h - QPEL_EXTRA_AFTER) {
  1233. const int edge_emu_stride = EDGE_EMU_BUFFER_STRIDE << s->ps.sps->pixel_shift;
  1234. int offset = QPEL_EXTRA_BEFORE * src0stride + (QPEL_EXTRA_BEFORE << s->ps.sps->pixel_shift);
  1235. int buf_offset = QPEL_EXTRA_BEFORE * edge_emu_stride + (QPEL_EXTRA_BEFORE << s->ps.sps->pixel_shift);
  1236. s->vdsp.emulated_edge_mc(lc->edge_emu_buffer, src0 - offset,
  1237. edge_emu_stride, src0stride,
  1238. block_w + QPEL_EXTRA,
  1239. block_h + QPEL_EXTRA,
  1240. x_off0 - QPEL_EXTRA_BEFORE, y_off0 - QPEL_EXTRA_BEFORE,
  1241. pic_width, pic_height);
  1242. src0 = lc->edge_emu_buffer + buf_offset;
  1243. src0stride = edge_emu_stride;
  1244. }
  1245. if (x_off1 < QPEL_EXTRA_BEFORE || y_off1 < QPEL_EXTRA_AFTER ||
  1246. x_off1 >= pic_width - block_w - QPEL_EXTRA_AFTER ||
  1247. y_off1 >= pic_height - block_h - QPEL_EXTRA_AFTER) {
  1248. const int edge_emu_stride = EDGE_EMU_BUFFER_STRIDE << s->ps.sps->pixel_shift;
  1249. int offset = QPEL_EXTRA_BEFORE * src1stride + (QPEL_EXTRA_BEFORE << s->ps.sps->pixel_shift);
  1250. int buf_offset = QPEL_EXTRA_BEFORE * edge_emu_stride + (QPEL_EXTRA_BEFORE << s->ps.sps->pixel_shift);
  1251. s->vdsp.emulated_edge_mc(lc->edge_emu_buffer2, src1 - offset,
  1252. edge_emu_stride, src1stride,
  1253. block_w + QPEL_EXTRA,
  1254. block_h + QPEL_EXTRA,
  1255. x_off1 - QPEL_EXTRA_BEFORE, y_off1 - QPEL_EXTRA_BEFORE,
  1256. pic_width, pic_height);
  1257. src1 = lc->edge_emu_buffer2 + buf_offset;
  1258. src1stride = edge_emu_stride;
  1259. }
  1260. s->hevcdsp.put_hevc_qpel[idx][!!my0][!!mx0](lc->tmp, src0, src0stride,
  1261. block_h, mx0, my0, block_w);
  1262. if (!weight_flag)
  1263. s->hevcdsp.put_hevc_qpel_bi[idx][!!my1][!!mx1](dst, dststride, src1, src1stride, lc->tmp,
  1264. block_h, mx1, my1, block_w);
  1265. else
  1266. s->hevcdsp.put_hevc_qpel_bi_w[idx][!!my1][!!mx1](dst, dststride, src1, src1stride, lc->tmp,
  1267. block_h, s->sh.luma_log2_weight_denom,
  1268. s->sh.luma_weight_l0[current_mv->ref_idx[0]],
  1269. s->sh.luma_weight_l1[current_mv->ref_idx[1]],
  1270. s->sh.luma_offset_l0[current_mv->ref_idx[0]],
  1271. s->sh.luma_offset_l1[current_mv->ref_idx[1]],
  1272. mx1, my1, block_w);
  1273. }
  1274. /**
  1275. * 8.5.3.2.2.2 Chroma sample uniprediction interpolation process
  1276. *
  1277. * @param s HEVC decoding context
  1278. * @param dst1 target buffer for block data at block position (U plane)
  1279. * @param dst2 target buffer for block data at block position (V plane)
  1280. * @param dststride stride of the dst1 and dst2 buffers
  1281. * @param ref reference picture buffer at origin (0, 0)
  1282. * @param mv motion vector (relative to block position) to get pixel data from
  1283. * @param x_off horizontal position of block from origin (0, 0)
  1284. * @param y_off vertical position of block from origin (0, 0)
  1285. * @param block_w width of block
  1286. * @param block_h height of block
  1287. * @param chroma_weight weighting factor applied to the chroma prediction
  1288. * @param chroma_offset additive offset applied to the chroma prediction value
  1289. */
  1290. static void chroma_mc_uni(HEVCContext *s, uint8_t *dst0,
  1291. ptrdiff_t dststride, uint8_t *src0, ptrdiff_t srcstride, int reflist,
  1292. int x_off, int y_off, int block_w, int block_h, struct MvField *current_mv, int chroma_weight, int chroma_offset)
  1293. {
  1294. HEVCLocalContext *lc = s->HEVClc;
  1295. int pic_width = s->ps.sps->width >> s->ps.sps->hshift[1];
  1296. int pic_height = s->ps.sps->height >> s->ps.sps->vshift[1];
  1297. const Mv *mv = &current_mv->mv[reflist];
  1298. int weight_flag = (s->sh.slice_type == P_SLICE && s->ps.pps->weighted_pred_flag) ||
  1299. (s->sh.slice_type == B_SLICE && s->ps.pps->weighted_bipred_flag);
  1300. int idx = ff_hevc_pel_weight[block_w];
  1301. int hshift = s->ps.sps->hshift[1];
  1302. int vshift = s->ps.sps->vshift[1];
  1303. intptr_t mx = av_mod_uintp2(mv->x, 2 + hshift);
  1304. intptr_t my = av_mod_uintp2(mv->y, 2 + vshift);
  1305. intptr_t _mx = mx << (1 - hshift);
  1306. intptr_t _my = my << (1 - vshift);
  1307. x_off += mv->x >> (2 + hshift);
  1308. y_off += mv->y >> (2 + vshift);
  1309. src0 += y_off * srcstride + (x_off * (1 << s->ps.sps->pixel_shift));
  1310. if (x_off < EPEL_EXTRA_BEFORE || y_off < EPEL_EXTRA_AFTER ||
  1311. x_off >= pic_width - block_w - EPEL_EXTRA_AFTER ||
  1312. y_off >= pic_height - block_h - EPEL_EXTRA_AFTER) {
  1313. const int edge_emu_stride = EDGE_EMU_BUFFER_STRIDE << s->ps.sps->pixel_shift;
  1314. int offset0 = EPEL_EXTRA_BEFORE * (srcstride + (1 << s->ps.sps->pixel_shift));
  1315. int buf_offset0 = EPEL_EXTRA_BEFORE *
  1316. (edge_emu_stride + (1 << s->ps.sps->pixel_shift));
  1317. s->vdsp.emulated_edge_mc(lc->edge_emu_buffer, src0 - offset0,
  1318. edge_emu_stride, srcstride,
  1319. block_w + EPEL_EXTRA, block_h + EPEL_EXTRA,
  1320. x_off - EPEL_EXTRA_BEFORE,
  1321. y_off - EPEL_EXTRA_BEFORE,
  1322. pic_width, pic_height);
  1323. src0 = lc->edge_emu_buffer + buf_offset0;
  1324. srcstride = edge_emu_stride;
  1325. }
  1326. if (!weight_flag)
  1327. s->hevcdsp.put_hevc_epel_uni[idx][!!my][!!mx](dst0, dststride, src0, srcstride,
  1328. block_h, _mx, _my, block_w);
  1329. else
  1330. s->hevcdsp.put_hevc_epel_uni_w[idx][!!my][!!mx](dst0, dststride, src0, srcstride,
  1331. block_h, s->sh.chroma_log2_weight_denom,
  1332. chroma_weight, chroma_offset, _mx, _my, block_w);
  1333. }
  1334. /**
  1335. * 8.5.3.2.2.2 Chroma sample bidirectional interpolation process
  1336. *
  1337. * @param s HEVC decoding context
  1338. * @param dst target buffer for block data at block position
  1339. * @param dststride stride of the dst buffer
  1340. * @param ref0 reference picture0 buffer at origin (0, 0)
  1341. * @param mv0 motion vector0 (relative to block position) to get pixel data from
  1342. * @param x_off horizontal position of block from origin (0, 0)
  1343. * @param y_off vertical position of block from origin (0, 0)
  1344. * @param block_w width of block
  1345. * @param block_h height of block
  1346. * @param ref1 reference picture1 buffer at origin (0, 0)
  1347. * @param mv1 motion vector1 (relative to block position) to get pixel data from
  1348. * @param current_mv current motion vector structure
  1349. * @param cidx chroma component(cb, cr)
  1350. */
  1351. static void chroma_mc_bi(HEVCContext *s, uint8_t *dst0, ptrdiff_t dststride, AVFrame *ref0, AVFrame *ref1,
  1352. int x_off, int y_off, int block_w, int block_h, struct MvField *current_mv, int cidx)
  1353. {
  1354. HEVCLocalContext *lc = s->HEVClc;
  1355. uint8_t *src1 = ref0->data[cidx+1];
  1356. uint8_t *src2 = ref1->data[cidx+1];
  1357. ptrdiff_t src1stride = ref0->linesize[cidx+1];
  1358. ptrdiff_t src2stride = ref1->linesize[cidx+1];
  1359. int weight_flag = (s->sh.slice_type == P_SLICE && s->ps.pps->weighted_pred_flag) ||
  1360. (s->sh.slice_type == B_SLICE && s->ps.pps->weighted_bipred_flag);
  1361. int pic_width = s->ps.sps->width >> s->ps.sps->hshift[1];
  1362. int pic_height = s->ps.sps->height >> s->ps.sps->vshift[1];
  1363. Mv *mv0 = &current_mv->mv[0];
  1364. Mv *mv1 = &current_mv->mv[1];
  1365. int hshift = s->ps.sps->hshift[1];
  1366. int vshift = s->ps.sps->vshift[1];
  1367. intptr_t mx0 = av_mod_uintp2(mv0->x, 2 + hshift);
  1368. intptr_t my0 = av_mod_uintp2(mv0->y, 2 + vshift);
  1369. intptr_t mx1 = av_mod_uintp2(mv1->x, 2 + hshift);
  1370. intptr_t my1 = av_mod_uintp2(mv1->y, 2 + vshift);
  1371. intptr_t _mx0 = mx0 << (1 - hshift);
  1372. intptr_t _my0 = my0 << (1 - vshift);
  1373. intptr_t _mx1 = mx1 << (1 - hshift);
  1374. intptr_t _my1 = my1 << (1 - vshift);
  1375. int x_off0 = x_off + (mv0->x >> (2 + hshift));
  1376. int y_off0 = y_off + (mv0->y >> (2 + vshift));
  1377. int x_off1 = x_off + (mv1->x >> (2 + hshift));
  1378. int y_off1 = y_off + (mv1->y >> (2 + vshift));
  1379. int idx = ff_hevc_pel_weight[block_w];
  1380. src1 += y_off0 * src1stride + (int)((unsigned)x_off0 << s->ps.sps->pixel_shift);
  1381. src2 += y_off1 * src2stride + (int)((unsigned)x_off1 << s->ps.sps->pixel_shift);
  1382. if (x_off0 < EPEL_EXTRA_BEFORE || y_off0 < EPEL_EXTRA_AFTER ||
  1383. x_off0 >= pic_width - block_w - EPEL_EXTRA_AFTER ||
  1384. y_off0 >= pic_height - block_h - EPEL_EXTRA_AFTER) {
  1385. const int edge_emu_stride = EDGE_EMU_BUFFER_STRIDE << s->ps.sps->pixel_shift;
  1386. int offset1 = EPEL_EXTRA_BEFORE * (src1stride + (1 << s->ps.sps->pixel_shift));
  1387. int buf_offset1 = EPEL_EXTRA_BEFORE *
  1388. (edge_emu_stride + (1 << s->ps.sps->pixel_shift));
  1389. s->vdsp.emulated_edge_mc(lc->edge_emu_buffer, src1 - offset1,
  1390. edge_emu_stride, src1stride,
  1391. block_w + EPEL_EXTRA, block_h + EPEL_EXTRA,
  1392. x_off0 - EPEL_EXTRA_BEFORE,
  1393. y_off0 - EPEL_EXTRA_BEFORE,
  1394. pic_width, pic_height);
  1395. src1 = lc->edge_emu_buffer + buf_offset1;
  1396. src1stride = edge_emu_stride;
  1397. }
  1398. if (x_off1 < EPEL_EXTRA_BEFORE || y_off1 < EPEL_EXTRA_AFTER ||
  1399. x_off1 >= pic_width - block_w - EPEL_EXTRA_AFTER ||
  1400. y_off1 >= pic_height - block_h - EPEL_EXTRA_AFTER) {
  1401. const int edge_emu_stride = EDGE_EMU_BUFFER_STRIDE << s->ps.sps->pixel_shift;
  1402. int offset1 = EPEL_EXTRA_BEFORE * (src2stride + (1 << s->ps.sps->pixel_shift));
  1403. int buf_offset1 = EPEL_EXTRA_BEFORE *
  1404. (edge_emu_stride + (1 << s->ps.sps->pixel_shift));
  1405. s->vdsp.emulated_edge_mc(lc->edge_emu_buffer2, src2 - offset1,
  1406. edge_emu_stride, src2stride,
  1407. block_w + EPEL_EXTRA, block_h + EPEL_EXTRA,
  1408. x_off1 - EPEL_EXTRA_BEFORE,
  1409. y_off1 - EPEL_EXTRA_BEFORE,
  1410. pic_width, pic_height);
  1411. src2 = lc->edge_emu_buffer2 + buf_offset1;
  1412. src2stride = edge_emu_stride;
  1413. }
  1414. s->hevcdsp.put_hevc_epel[idx][!!my0][!!mx0](lc->tmp, src1, src1stride,
  1415. block_h, _mx0, _my0, block_w);
  1416. if (!weight_flag)
  1417. s->hevcdsp.put_hevc_epel_bi[idx][!!my1][!!mx1](dst0, s->frame->linesize[cidx+1],
  1418. src2, src2stride, lc->tmp,
  1419. block_h, _mx1, _my1, block_w);
  1420. else
  1421. s->hevcdsp.put_hevc_epel_bi_w[idx][!!my1][!!mx1](dst0, s->frame->linesize[cidx+1],
  1422. src2, src2stride, lc->tmp,
  1423. block_h,
  1424. s->sh.chroma_log2_weight_denom,
  1425. s->sh.chroma_weight_l0[current_mv->ref_idx[0]][cidx],
  1426. s->sh.chroma_weight_l1[current_mv->ref_idx[1]][cidx],
  1427. s->sh.chroma_offset_l0[current_mv->ref_idx[0]][cidx],
  1428. s->sh.chroma_offset_l1[current_mv->ref_idx[1]][cidx],
  1429. _mx1, _my1, block_w);
  1430. }
  1431. static void hevc_await_progress(HEVCContext *s, HEVCFrame *ref,
  1432. const Mv *mv, int y0, int height)
  1433. {
  1434. int y = FFMAX(0, (mv->y >> 2) + y0 + height + 9);
  1435. if (s->threads_type == FF_THREAD_FRAME )
  1436. ff_thread_await_progress(&ref->tf, y, 0);
  1437. }
  1438. static void hevc_luma_mv_mvp_mode(HEVCContext *s, int x0, int y0, int nPbW,
  1439. int nPbH, int log2_cb_size, int part_idx,
  1440. int merge_idx, MvField *mv)
  1441. {
  1442. HEVCLocalContext *lc = s->HEVClc;
  1443. enum InterPredIdc inter_pred_idc = PRED_L0;
  1444. int mvp_flag;
  1445. ff_hevc_set_neighbour_available(s, x0, y0, nPbW, nPbH);
  1446. mv->pred_flag = 0;
  1447. if (s->sh.slice_type == B_SLICE)
  1448. inter_pred_idc = ff_hevc_inter_pred_idc_decode(s, nPbW, nPbH);
  1449. if (inter_pred_idc != PRED_L1) {
  1450. if (s->sh.nb_refs[L0])
  1451. mv->ref_idx[0]= ff_hevc_ref_idx_lx_decode(s, s->sh.nb_refs[L0]);
  1452. mv->pred_flag = PF_L0;
  1453. ff_hevc_hls_mvd_coding(s, x0, y0, 0);
  1454. mvp_flag = ff_hevc_mvp_lx_flag_decode(s);
  1455. ff_hevc_luma_mv_mvp_mode(s, x0, y0, nPbW, nPbH, log2_cb_size,
  1456. part_idx, merge_idx, mv, mvp_flag, 0);
  1457. mv->mv[0].x += lc->pu.mvd.x;
  1458. mv->mv[0].y += lc->pu.mvd.y;
  1459. }
  1460. if (inter_pred_idc != PRED_L0) {
  1461. if (s->sh.nb_refs[L1])
  1462. mv->ref_idx[1]= ff_hevc_ref_idx_lx_decode(s, s->sh.nb_refs[L1]);
  1463. if (s->sh.mvd_l1_zero_flag == 1 && inter_pred_idc == PRED_BI) {
  1464. AV_ZERO32(&lc->pu.mvd);
  1465. } else {
  1466. ff_hevc_hls_mvd_coding(s, x0, y0, 1);
  1467. }
  1468. mv->pred_flag += PF_L1;
  1469. mvp_flag = ff_hevc_mvp_lx_flag_decode(s);
  1470. ff_hevc_luma_mv_mvp_mode(s, x0, y0, nPbW, nPbH, log2_cb_size,
  1471. part_idx, merge_idx, mv, mvp_flag, 1);
  1472. mv->mv[1].x += lc->pu.mvd.x;
  1473. mv->mv[1].y += lc->pu.mvd.y;
  1474. }
  1475. }
  1476. static void hls_prediction_unit(HEVCContext *s, int x0, int y0,
  1477. int nPbW, int nPbH,
  1478. int log2_cb_size, int partIdx, int idx)
  1479. {
  1480. #define POS(c_idx, x, y) \
  1481. &s->frame->data[c_idx][((y) >> s->ps.sps->vshift[c_idx]) * s->frame->linesize[c_idx] + \
  1482. (((x) >> s->ps.sps->hshift[c_idx]) << s->ps.sps->pixel_shift)]
  1483. HEVCLocalContext *lc = s->HEVClc;
  1484. int merge_idx = 0;
  1485. struct MvField current_mv = {{{ 0 }}};
  1486. int min_pu_width = s->ps.sps->min_pu_width;
  1487. MvField *tab_mvf = s->ref->tab_mvf;
  1488. RefPicList *refPicList = s->ref->refPicList;
  1489. HEVCFrame *ref0 = NULL, *ref1 = NULL;
  1490. uint8_t *dst0 = POS(0, x0, y0);
  1491. uint8_t *dst1 = POS(1, x0, y0);
  1492. uint8_t *dst2 = POS(2, x0, y0);
  1493. int log2_min_cb_size = s->ps.sps->log2_min_cb_size;
  1494. int min_cb_width = s->ps.sps->min_cb_width;
  1495. int x_cb = x0 >> log2_min_cb_size;
  1496. int y_cb = y0 >> log2_min_cb_size;
  1497. int x_pu, y_pu;
  1498. int i, j;
  1499. int skip_flag = SAMPLE_CTB(s->skip_flag, x_cb, y_cb);
  1500. if (!skip_flag)
  1501. lc->pu.merge_flag = ff_hevc_merge_flag_decode(s);
  1502. if (skip_flag || lc->pu.merge_flag) {
  1503. if (s->sh.max_num_merge_cand > 1)
  1504. merge_idx = ff_hevc_merge_idx_decode(s);
  1505. else
  1506. merge_idx = 0;
  1507. ff_hevc_luma_mv_merge_mode(s, x0, y0, nPbW, nPbH, log2_cb_size,
  1508. partIdx, merge_idx, &current_mv);
  1509. } else {
  1510. hevc_luma_mv_mvp_mode(s, x0, y0, nPbW, nPbH, log2_cb_size,
  1511. partIdx, merge_idx, &current_mv);
  1512. }
  1513. x_pu = x0 >> s->ps.sps->log2_min_pu_size;
  1514. y_pu = y0 >> s->ps.sps->log2_min_pu_size;
  1515. for (j = 0; j < nPbH >> s->ps.sps->log2_min_pu_size; j++)
  1516. for (i = 0; i < nPbW >> s->ps.sps->log2_min_pu_size; i++)
  1517. tab_mvf[(y_pu + j) * min_pu_width + x_pu + i] = current_mv;
  1518. if (current_mv.pred_flag & PF_L0) {
  1519. ref0 = refPicList[0].ref[current_mv.ref_idx[0]];
  1520. if (!ref0)
  1521. return;
  1522. hevc_await_progress(s, ref0, &current_mv.mv[0], y0, nPbH);
  1523. }
  1524. if (current_mv.pred_flag & PF_L1) {
  1525. ref1 = refPicList[1].ref[current_mv.ref_idx[1]];
  1526. if (!ref1)
  1527. return;
  1528. hevc_await_progress(s, ref1, &current_mv.mv[1], y0, nPbH);
  1529. }
  1530. if (current_mv.pred_flag == PF_L0) {
  1531. int x0_c = x0 >> s->ps.sps->hshift[1];
  1532. int y0_c = y0 >> s->ps.sps->vshift[1];
  1533. int nPbW_c = nPbW >> s->ps.sps->hshift[1];
  1534. int nPbH_c = nPbH >> s->ps.sps->vshift[1];
  1535. luma_mc_uni(s, dst0, s->frame->linesize[0], ref0->frame,
  1536. &current_mv.mv[0], x0, y0, nPbW, nPbH,
  1537. s->sh.luma_weight_l0[current_mv.ref_idx[0]],
  1538. s->sh.luma_offset_l0[current_mv.ref_idx[0]]);
  1539. if (s->ps.sps->chroma_format_idc) {
  1540. chroma_mc_uni(s, dst1, s->frame->linesize[1], ref0->frame->data[1], ref0->frame->linesize[1],
  1541. 0, x0_c, y0_c, nPbW_c, nPbH_c, &current_mv,
  1542. s->sh.chroma_weight_l0[current_mv.ref_idx[0]][0], s->sh.chroma_offset_l0[current_mv.ref_idx[0]][0]);
  1543. chroma_mc_uni(s, dst2, s->frame->linesize[2], ref0->frame->data[2], ref0->frame->linesize[2],
  1544. 0, x0_c, y0_c, nPbW_c, nPbH_c, &current_mv,
  1545. s->sh.chroma_weight_l0[current_mv.ref_idx[0]][1], s->sh.chroma_offset_l0[current_mv.ref_idx[0]][1]);
  1546. }
  1547. } else if (current_mv.pred_flag == PF_L1) {
  1548. int x0_c = x0 >> s->ps.sps->hshift[1];
  1549. int y0_c = y0 >> s->ps.sps->vshift[1];
  1550. int nPbW_c = nPbW >> s->ps.sps->hshift[1];
  1551. int nPbH_c = nPbH >> s->ps.sps->vshift[1];
  1552. luma_mc_uni(s, dst0, s->frame->linesize[0], ref1->frame,
  1553. &current_mv.mv[1], x0, y0, nPbW, nPbH,
  1554. s->sh.luma_weight_l1[current_mv.ref_idx[1]],
  1555. s->sh.luma_offset_l1[current_mv.ref_idx[1]]);
  1556. if (s->ps.sps->chroma_format_idc) {
  1557. chroma_mc_uni(s, dst1, s->frame->linesize[1], ref1->frame->data[1], ref1->frame->linesize[1],
  1558. 1, x0_c, y0_c, nPbW_c, nPbH_c, &current_mv,
  1559. s->sh.chroma_weight_l1[current_mv.ref_idx[1]][0], s->sh.chroma_offset_l1[current_mv.ref_idx[1]][0]);
  1560. chroma_mc_uni(s, dst2, s->frame->linesize[2], ref1->frame->data[2], ref1->frame->linesize[2],
  1561. 1, x0_c, y0_c, nPbW_c, nPbH_c, &current_mv,
  1562. s->sh.chroma_weight_l1[current_mv.ref_idx[1]][1], s->sh.chroma_offset_l1[current_mv.ref_idx[1]][1]);
  1563. }
  1564. } else if (current_mv.pred_flag == PF_BI) {
  1565. int x0_c = x0 >> s->ps.sps->hshift[1];
  1566. int y0_c = y0 >> s->ps.sps->vshift[1];
  1567. int nPbW_c = nPbW >> s->ps.sps->hshift[1];
  1568. int nPbH_c = nPbH >> s->ps.sps->vshift[1];
  1569. luma_mc_bi(s, dst0, s->frame->linesize[0], ref0->frame,
  1570. &current_mv.mv[0], x0, y0, nPbW, nPbH,
  1571. ref1->frame, &current_mv.mv[1], &current_mv);
  1572. if (s->ps.sps->chroma_format_idc) {
  1573. chroma_mc_bi(s, dst1, s->frame->linesize[1], ref0->frame, ref1->frame,
  1574. x0_c, y0_c, nPbW_c, nPbH_c, &current_mv, 0);
  1575. chroma_mc_bi(s, dst2, s->frame->linesize[2], ref0->frame, ref1->frame,
  1576. x0_c, y0_c, nPbW_c, nPbH_c, &current_mv, 1);
  1577. }
  1578. }
  1579. }
  1580. /**
  1581. * 8.4.1
  1582. */
  1583. static int luma_intra_pred_mode(HEVCContext *s, int x0, int y0, int pu_size,
  1584. int prev_intra_luma_pred_flag)
  1585. {
  1586. HEVCLocalContext *lc = s->HEVClc;
  1587. int x_pu = x0 >> s->ps.sps->log2_min_pu_size;
  1588. int y_pu = y0 >> s->ps.sps->log2_min_pu_size;
  1589. int min_pu_width = s->ps.sps->min_pu_width;
  1590. int size_in_pus = pu_size >> s->ps.sps->log2_min_pu_size;
  1591. int x0b = av_mod_uintp2(x0, s->ps.sps->log2_ctb_size);
  1592. int y0b = av_mod_uintp2(y0, s->ps.sps->log2_ctb_size);
  1593. int cand_up = (lc->ctb_up_flag || y0b) ?
  1594. s->tab_ipm[(y_pu - 1) * min_pu_width + x_pu] : INTRA_DC;
  1595. int cand_left = (lc->ctb_left_flag || x0b) ?
  1596. s->tab_ipm[y_pu * min_pu_width + x_pu - 1] : INTRA_DC;
  1597. int y_ctb = (y0 >> (s->ps.sps->log2_ctb_size)) << (s->ps.sps->log2_ctb_size);
  1598. MvField *tab_mvf = s->ref->tab_mvf;
  1599. int intra_pred_mode;
  1600. int candidate[3];
  1601. int i, j;
  1602. // intra_pred_mode prediction does not cross vertical CTB boundaries
  1603. if ((y0 - 1) < y_ctb)
  1604. cand_up = INTRA_DC;
  1605. if (cand_left == cand_up) {
  1606. if (cand_left < 2) {
  1607. candidate[0] = INTRA_PLANAR;
  1608. candidate[1] = INTRA_DC;
  1609. candidate[2] = INTRA_ANGULAR_26;
  1610. } else {
  1611. candidate[0] = cand_left;
  1612. candidate[1] = 2 + ((cand_left - 2 - 1 + 32) & 31);
  1613. candidate[2] = 2 + ((cand_left - 2 + 1) & 31);
  1614. }
  1615. } else {
  1616. candidate[0] = cand_left;
  1617. candidate[1] = cand_up;
  1618. if (candidate[0] != INTRA_PLANAR && candidate[1] != INTRA_PLANAR) {
  1619. candidate[2] = INTRA_PLANAR;
  1620. } else if (candidate[0] != INTRA_DC && candidate[1] != INTRA_DC) {
  1621. candidate[2] = INTRA_DC;
  1622. } else {
  1623. candidate[2] = INTRA_ANGULAR_26;
  1624. }
  1625. }
  1626. if (prev_intra_luma_pred_flag) {
  1627. intra_pred_mode = candidate[lc->pu.mpm_idx];
  1628. } else {
  1629. if (candidate[0] > candidate[1])
  1630. FFSWAP(uint8_t, candidate[0], candidate[1]);
  1631. if (candidate[0] > candidate[2])
  1632. FFSWAP(uint8_t, candidate[0], candidate[2]);
  1633. if (candidate[1] > candidate[2])
  1634. FFSWAP(uint8_t, candidate[1], candidate[2]);
  1635. intra_pred_mode = lc->pu.rem_intra_luma_pred_mode;
  1636. for (i = 0; i < 3; i++)
  1637. if (intra_pred_mode >= candidate[i])
  1638. intra_pred_mode++;
  1639. }
  1640. /* write the intra prediction units into the mv array */
  1641. if (!size_in_pus)
  1642. size_in_pus = 1;
  1643. for (i = 0; i < size_in_pus; i++) {
  1644. memset(&s->tab_ipm[(y_pu + i) * min_pu_width + x_pu],
  1645. intra_pred_mode, size_in_pus);
  1646. for (j = 0; j < size_in_pus; j++) {
  1647. tab_mvf[(y_pu + j) * min_pu_width + x_pu + i].pred_flag = PF_INTRA;
  1648. }
  1649. }
  1650. return intra_pred_mode;
  1651. }
  1652. static av_always_inline void set_ct_depth(HEVCContext *s, int x0, int y0,
  1653. int log2_cb_size, int ct_depth)
  1654. {
  1655. int length = (1 << log2_cb_size) >> s->ps.sps->log2_min_cb_size;
  1656. int x_cb = x0 >> s->ps.sps->log2_min_cb_size;
  1657. int y_cb = y0 >> s->ps.sps->log2_min_cb_size;
  1658. int y;
  1659. for (y = 0; y < length; y++)
  1660. memset(&s->tab_ct_depth[(y_cb + y) * s->ps.sps->min_cb_width + x_cb],
  1661. ct_depth, length);
  1662. }
  1663. static const uint8_t tab_mode_idx[] = {
  1664. 0, 1, 2, 2, 2, 2, 3, 5, 7, 8, 10, 12, 13, 15, 17, 18, 19, 20,
  1665. 21, 22, 23, 23, 24, 24, 25, 25, 26, 27, 27, 28, 28, 29, 29, 30, 31};
  1666. static void intra_prediction_unit(HEVCContext *s, int x0, int y0,
  1667. int log2_cb_size)
  1668. {
  1669. HEVCLocalContext *lc = s->HEVClc;
  1670. static const uint8_t intra_chroma_table[4] = { 0, 26, 10, 1 };
  1671. uint8_t prev_intra_luma_pred_flag[4];
  1672. int split = lc->cu.part_mode == PART_NxN;
  1673. int pb_size = (1 << log2_cb_size) >> split;
  1674. int side = split + 1;
  1675. int chroma_mode;
  1676. int i, j;
  1677. for (i = 0; i < side; i++)
  1678. for (j = 0; j < side; j++)
  1679. prev_intra_luma_pred_flag[2 * i + j] = ff_hevc_prev_intra_luma_pred_flag_decode(s);
  1680. for (i = 0; i < side; i++) {
  1681. for (j = 0; j < side; j++) {
  1682. if (prev_intra_luma_pred_flag[2 * i + j])
  1683. lc->pu.mpm_idx = ff_hevc_mpm_idx_decode(s);
  1684. else
  1685. lc->pu.rem_intra_luma_pred_mode = ff_hevc_rem_intra_luma_pred_mode_decode(s);
  1686. lc->pu.intra_pred_mode[2 * i + j] =
  1687. luma_intra_pred_mode(s, x0 + pb_size * j, y0 + pb_size * i, pb_size,
  1688. prev_intra_luma_pred_flag[2 * i + j]);
  1689. }
  1690. }
  1691. if (s->ps.sps->chroma_format_idc == 3) {
  1692. for (i = 0; i < side; i++) {
  1693. for (j = 0; j < side; j++) {
  1694. lc->pu.chroma_mode_c[2 * i + j] = chroma_mode = ff_hevc_intra_chroma_pred_mode_decode(s);
  1695. if (chroma_mode != 4) {
  1696. if (lc->pu.intra_pred_mode[2 * i + j] == intra_chroma_table[chroma_mode])
  1697. lc->pu.intra_pred_mode_c[2 * i + j] = 34;
  1698. else
  1699. lc->pu.intra_pred_mode_c[2 * i + j] = intra_chroma_table[chroma_mode];
  1700. } else {
  1701. lc->pu.intra_pred_mode_c[2 * i + j] = lc->pu.intra_pred_mode[2 * i + j];
  1702. }
  1703. }
  1704. }
  1705. } else if (s->ps.sps->chroma_format_idc == 2) {
  1706. int mode_idx;
  1707. lc->pu.chroma_mode_c[0] = chroma_mode = ff_hevc_intra_chroma_pred_mode_decode(s);
  1708. if (chroma_mode != 4) {
  1709. if (lc->pu.intra_pred_mode[0] == intra_chroma_table[chroma_mode])
  1710. mode_idx = 34;
  1711. else
  1712. mode_idx = intra_chroma_table[chroma_mode];
  1713. } else {
  1714. mode_idx = lc->pu.intra_pred_mode[0];
  1715. }
  1716. lc->pu.intra_pred_mode_c[0] = tab_mode_idx[mode_idx];
  1717. } else if (s->ps.sps->chroma_format_idc != 0) {
  1718. chroma_mode = ff_hevc_intra_chroma_pred_mode_decode(s);
  1719. if (chroma_mode != 4) {
  1720. if (lc->pu.intra_pred_mode[0] == intra_chroma_table[chroma_mode])
  1721. lc->pu.intra_pred_mode_c[0] = 34;
  1722. else
  1723. lc->pu.intra_pred_mode_c[0] = intra_chroma_table[chroma_mode];
  1724. } else {
  1725. lc->pu.intra_pred_mode_c[0] = lc->pu.intra_pred_mode[0];
  1726. }
  1727. }
  1728. }
  1729. static void intra_prediction_unit_default_value(HEVCContext *s,
  1730. int x0, int y0,
  1731. int log2_cb_size)
  1732. {
  1733. HEVCLocalContext *lc = s->HEVClc;
  1734. int pb_size = 1 << log2_cb_size;
  1735. int size_in_pus = pb_size >> s->ps.sps->log2_min_pu_size;
  1736. int min_pu_width = s->ps.sps->min_pu_width;
  1737. MvField *tab_mvf = s->ref->tab_mvf;
  1738. int x_pu = x0 >> s->ps.sps->log2_min_pu_size;
  1739. int y_pu = y0 >> s->ps.sps->log2_min_pu_size;
  1740. int j, k;
  1741. if (size_in_pus == 0)
  1742. size_in_pus = 1;
  1743. for (j = 0; j < size_in_pus; j++)
  1744. memset(&s->tab_ipm[(y_pu + j) * min_pu_width + x_pu], INTRA_DC, size_in_pus);
  1745. if (lc->cu.pred_mode == MODE_INTRA)
  1746. for (j = 0; j < size_in_pus; j++)
  1747. for (k = 0; k < size_in_pus; k++)
  1748. tab_mvf[(y_pu + j) * min_pu_width + x_pu + k].pred_flag = PF_INTRA;
  1749. }
  1750. static int hls_coding_unit(HEVCContext *s, int x0, int y0, int log2_cb_size)
  1751. {
  1752. int cb_size = 1 << log2_cb_size;
  1753. HEVCLocalContext *lc = s->HEVClc;
  1754. int log2_min_cb_size = s->ps.sps->log2_min_cb_size;
  1755. int length = cb_size >> log2_min_cb_size;
  1756. int min_cb_width = s->ps.sps->min_cb_width;
  1757. int x_cb = x0 >> log2_min_cb_size;
  1758. int y_cb = y0 >> log2_min_cb_size;
  1759. int idx = log2_cb_size - 2;
  1760. int qp_block_mask = (1<<(s->ps.sps->log2_ctb_size - s->ps.pps->diff_cu_qp_delta_depth)) - 1;
  1761. int x, y, ret;
  1762. lc->cu.x = x0;
  1763. lc->cu.y = y0;
  1764. lc->cu.pred_mode = MODE_INTRA;
  1765. lc->cu.part_mode = PART_2Nx2N;
  1766. lc->cu.intra_split_flag = 0;
  1767. SAMPLE_CTB(s->skip_flag, x_cb, y_cb) = 0;
  1768. for (x = 0; x < 4; x++)
  1769. lc->pu.intra_pred_mode[x] = 1;
  1770. if (s->ps.pps->transquant_bypass_enable_flag) {
  1771. lc->cu.cu_transquant_bypass_flag = ff_hevc_cu_transquant_bypass_flag_decode(s);
  1772. if (lc->cu.cu_transquant_bypass_flag)
  1773. set_deblocking_bypass(s, x0, y0, log2_cb_size);
  1774. } else
  1775. lc->cu.cu_transquant_bypass_flag = 0;
  1776. if (s->sh.slice_type != I_SLICE) {
  1777. uint8_t skip_flag = ff_hevc_skip_flag_decode(s, x0, y0, x_cb, y_cb);
  1778. x = y_cb * min_cb_width + x_cb;
  1779. for (y = 0; y < length; y++) {
  1780. memset(&s->skip_flag[x], skip_flag, length);
  1781. x += min_cb_width;
  1782. }
  1783. lc->cu.pred_mode = skip_flag ? MODE_SKIP : MODE_INTER;
  1784. } else {
  1785. x = y_cb * min_cb_width + x_cb;
  1786. for (y = 0; y < length; y++) {
  1787. memset(&s->skip_flag[x], 0, length);
  1788. x += min_cb_width;
  1789. }
  1790. }
  1791. if (SAMPLE_CTB(s->skip_flag, x_cb, y_cb)) {
  1792. hls_prediction_unit(s, x0, y0, cb_size, cb_size, log2_cb_size, 0, idx);
  1793. intra_prediction_unit_default_value(s, x0, y0, log2_cb_size);
  1794. if (!s->sh.disable_deblocking_filter_flag)
  1795. ff_hevc_deblocking_boundary_strengths(s, x0, y0, log2_cb_size);
  1796. } else {
  1797. int pcm_flag = 0;
  1798. if (s->sh.slice_type != I_SLICE)
  1799. lc->cu.pred_mode = ff_hevc_pred_mode_decode(s);
  1800. if (lc->cu.pred_mode != MODE_INTRA ||
  1801. log2_cb_size == s->ps.sps->log2_min_cb_size) {
  1802. lc->cu.part_mode = ff_hevc_part_mode_decode(s, log2_cb_size);
  1803. lc->cu.intra_split_flag = lc->cu.part_mode == PART_NxN &&
  1804. lc->cu.pred_mode == MODE_INTRA;
  1805. }
  1806. if (lc->cu.pred_mode == MODE_INTRA) {
  1807. if (lc->cu.part_mode == PART_2Nx2N && s->ps.sps->pcm_enabled_flag &&
  1808. log2_cb_size >= s->ps.sps->pcm.log2_min_pcm_cb_size &&
  1809. log2_cb_size <= s->ps.sps->pcm.log2_max_pcm_cb_size) {
  1810. pcm_flag = ff_hevc_pcm_flag_decode(s);
  1811. }
  1812. if (pcm_flag) {
  1813. intra_prediction_unit_default_value(s, x0, y0, log2_cb_size);
  1814. ret = hls_pcm_sample(s, x0, y0, log2_cb_size);
  1815. if (s->ps.sps->pcm.loop_filter_disable_flag)
  1816. set_deblocking_bypass(s, x0, y0, log2_cb_size);
  1817. if (ret < 0)
  1818. return ret;
  1819. } else {
  1820. intra_prediction_unit(s, x0, y0, log2_cb_size);
  1821. }
  1822. } else {
  1823. intra_prediction_unit_default_value(s, x0, y0, log2_cb_size);
  1824. switch (lc->cu.part_mode) {
  1825. case PART_2Nx2N:
  1826. hls_prediction_unit(s, x0, y0, cb_size, cb_size, log2_cb_size, 0, idx);
  1827. break;
  1828. case PART_2NxN:
  1829. hls_prediction_unit(s, x0, y0, cb_size, cb_size / 2, log2_cb_size, 0, idx);
  1830. hls_prediction_unit(s, x0, y0 + cb_size / 2, cb_size, cb_size / 2, log2_cb_size, 1, idx);
  1831. break;
  1832. case PART_Nx2N:
  1833. hls_prediction_unit(s, x0, y0, cb_size / 2, cb_size, log2_cb_size, 0, idx - 1);
  1834. hls_prediction_unit(s, x0 + cb_size / 2, y0, cb_size / 2, cb_size, log2_cb_size, 1, idx - 1);
  1835. break;
  1836. case PART_2NxnU:
  1837. hls_prediction_unit(s, x0, y0, cb_size, cb_size / 4, log2_cb_size, 0, idx);
  1838. hls_prediction_unit(s, x0, y0 + cb_size / 4, cb_size, cb_size * 3 / 4, log2_cb_size, 1, idx);
  1839. break;
  1840. case PART_2NxnD:
  1841. hls_prediction_unit(s, x0, y0, cb_size, cb_size * 3 / 4, log2_cb_size, 0, idx);
  1842. hls_prediction_unit(s, x0, y0 + cb_size * 3 / 4, cb_size, cb_size / 4, log2_cb_size, 1, idx);
  1843. break;
  1844. case PART_nLx2N:
  1845. hls_prediction_unit(s, x0, y0, cb_size / 4, cb_size, log2_cb_size, 0, idx - 2);
  1846. hls_prediction_unit(s, x0 + cb_size / 4, y0, cb_size * 3 / 4, cb_size, log2_cb_size, 1, idx - 2);
  1847. break;
  1848. case PART_nRx2N:
  1849. hls_prediction_unit(s, x0, y0, cb_size * 3 / 4, cb_size, log2_cb_size, 0, idx - 2);
  1850. hls_prediction_unit(s, x0 + cb_size * 3 / 4, y0, cb_size / 4, cb_size, log2_cb_size, 1, idx - 2);
  1851. break;
  1852. case PART_NxN:
  1853. hls_prediction_unit(s, x0, y0, cb_size / 2, cb_size / 2, log2_cb_size, 0, idx - 1);
  1854. hls_prediction_unit(s, x0 + cb_size / 2, y0, cb_size / 2, cb_size / 2, log2_cb_size, 1, idx - 1);
  1855. hls_prediction_unit(s, x0, y0 + cb_size / 2, cb_size / 2, cb_size / 2, log2_cb_size, 2, idx - 1);
  1856. hls_prediction_unit(s, x0 + cb_size / 2, y0 + cb_size / 2, cb_size / 2, cb_size / 2, log2_cb_size, 3, idx - 1);
  1857. break;
  1858. }
  1859. }
  1860. if (!pcm_flag) {
  1861. int rqt_root_cbf = 1;
  1862. if (lc->cu.pred_mode != MODE_INTRA &&
  1863. !(lc->cu.part_mode == PART_2Nx2N && lc->pu.merge_flag)) {
  1864. rqt_root_cbf = ff_hevc_no_residual_syntax_flag_decode(s);
  1865. }
  1866. if (rqt_root_cbf) {
  1867. const static int cbf[2] = { 0 };
  1868. lc->cu.max_trafo_depth = lc->cu.pred_mode == MODE_INTRA ?
  1869. s->ps.sps->max_transform_hierarchy_depth_intra + lc->cu.intra_split_flag :
  1870. s->ps.sps->max_transform_hierarchy_depth_inter;
  1871. ret = hls_transform_tree(s, x0, y0, x0, y0, x0, y0,
  1872. log2_cb_size,
  1873. log2_cb_size, 0, 0, cbf, cbf);
  1874. if (ret < 0)
  1875. return ret;
  1876. } else {
  1877. if (!s->sh.disable_deblocking_filter_flag)
  1878. ff_hevc_deblocking_boundary_strengths(s, x0, y0, log2_cb_size);
  1879. }
  1880. }
  1881. }
  1882. if (s->ps.pps->cu_qp_delta_enabled_flag && lc->tu.is_cu_qp_delta_coded == 0)
  1883. ff_hevc_set_qPy(s, x0, y0, log2_cb_size);
  1884. x = y_cb * min_cb_width + x_cb;
  1885. for (y = 0; y < length; y++) {
  1886. memset(&s->qp_y_tab[x], lc->qp_y, length);
  1887. x += min_cb_width;
  1888. }
  1889. if(((x0 + (1<<log2_cb_size)) & qp_block_mask) == 0 &&
  1890. ((y0 + (1<<log2_cb_size)) & qp_block_mask) == 0) {
  1891. lc->qPy_pred = lc->qp_y;
  1892. }
  1893. set_ct_depth(s, x0, y0, log2_cb_size, lc->ct_depth);
  1894. return 0;
  1895. }
  1896. static int hls_coding_quadtree(HEVCContext *s, int x0, int y0,
  1897. int log2_cb_size, int cb_depth)
  1898. {
  1899. HEVCLocalContext *lc = s->HEVClc;
  1900. const int cb_size = 1 << log2_cb_size;
  1901. int ret;
  1902. int split_cu;
  1903. lc->ct_depth = cb_depth;
  1904. if (x0 + cb_size <= s->ps.sps->width &&
  1905. y0 + cb_size <= s->ps.sps->height &&
  1906. log2_cb_size > s->ps.sps->log2_min_cb_size) {
  1907. split_cu = ff_hevc_split_coding_unit_flag_decode(s, cb_depth, x0, y0);
  1908. } else {
  1909. split_cu = (log2_cb_size > s->ps.sps->log2_min_cb_size);
  1910. }
  1911. if (s->ps.pps->cu_qp_delta_enabled_flag &&
  1912. log2_cb_size >= s->ps.sps->log2_ctb_size - s->ps.pps->diff_cu_qp_delta_depth) {
  1913. lc->tu.is_cu_qp_delta_coded = 0;
  1914. lc->tu.cu_qp_delta = 0;
  1915. }
  1916. if (s->sh.cu_chroma_qp_offset_enabled_flag &&
  1917. log2_cb_size >= s->ps.sps->log2_ctb_size - s->ps.pps->diff_cu_chroma_qp_offset_depth) {
  1918. lc->tu.is_cu_chroma_qp_offset_coded = 0;
  1919. }
  1920. if (split_cu) {
  1921. int qp_block_mask = (1<<(s->ps.sps->log2_ctb_size - s->ps.pps->diff_cu_qp_delta_depth)) - 1;
  1922. const int cb_size_split = cb_size >> 1;
  1923. const int x1 = x0 + cb_size_split;
  1924. const int y1 = y0 + cb_size_split;
  1925. int more_data = 0;
  1926. more_data = hls_coding_quadtree(s, x0, y0, log2_cb_size - 1, cb_depth + 1);
  1927. if (more_data < 0)
  1928. return more_data;
  1929. if (more_data && x1 < s->ps.sps->width) {
  1930. more_data = hls_coding_quadtree(s, x1, y0, log2_cb_size - 1, cb_depth + 1);
  1931. if (more_data < 0)
  1932. return more_data;
  1933. }
  1934. if (more_data && y1 < s->ps.sps->height) {
  1935. more_data = hls_coding_quadtree(s, x0, y1, log2_cb_size - 1, cb_depth + 1);
  1936. if (more_data < 0)
  1937. return more_data;
  1938. }
  1939. if (more_data && x1 < s->ps.sps->width &&
  1940. y1 < s->ps.sps->height) {
  1941. more_data = hls_coding_quadtree(s, x1, y1, log2_cb_size - 1, cb_depth + 1);
  1942. if (more_data < 0)
  1943. return more_data;
  1944. }
  1945. if(((x0 + (1<<log2_cb_size)) & qp_block_mask) == 0 &&
  1946. ((y0 + (1<<log2_cb_size)) & qp_block_mask) == 0)
  1947. lc->qPy_pred = lc->qp_y;
  1948. if (more_data)
  1949. return ((x1 + cb_size_split) < s->ps.sps->width ||
  1950. (y1 + cb_size_split) < s->ps.sps->height);
  1951. else
  1952. return 0;
  1953. } else {
  1954. ret = hls_coding_unit(s, x0, y0, log2_cb_size);
  1955. if (ret < 0)
  1956. return ret;
  1957. if ((!((x0 + cb_size) %
  1958. (1 << (s->ps.sps->log2_ctb_size))) ||
  1959. (x0 + cb_size >= s->ps.sps->width)) &&
  1960. (!((y0 + cb_size) %
  1961. (1 << (s->ps.sps->log2_ctb_size))) ||
  1962. (y0 + cb_size >= s->ps.sps->height))) {
  1963. int end_of_slice_flag = ff_hevc_end_of_slice_flag_decode(s);
  1964. return !end_of_slice_flag;
  1965. } else {
  1966. return 1;
  1967. }
  1968. }
  1969. return 0;
  1970. }
  1971. static void hls_decode_neighbour(HEVCContext *s, int x_ctb, int y_ctb,
  1972. int ctb_addr_ts)
  1973. {
  1974. HEVCLocalContext *lc = s->HEVClc;
  1975. int ctb_size = 1 << s->ps.sps->log2_ctb_size;
  1976. int ctb_addr_rs = s->ps.pps->ctb_addr_ts_to_rs[ctb_addr_ts];
  1977. int ctb_addr_in_slice = ctb_addr_rs - s->sh.slice_addr;
  1978. s->tab_slice_address[ctb_addr_rs] = s->sh.slice_addr;
  1979. if (s->ps.pps->entropy_coding_sync_enabled_flag) {
  1980. if (x_ctb == 0 && (y_ctb & (ctb_size - 1)) == 0)
  1981. lc->first_qp_group = 1;
  1982. lc->end_of_tiles_x = s->ps.sps->width;
  1983. } else if (s->ps.pps->tiles_enabled_flag) {
  1984. if (ctb_addr_ts && s->ps.pps->tile_id[ctb_addr_ts] != s->ps.pps->tile_id[ctb_addr_ts - 1]) {
  1985. int idxX = s->ps.pps->col_idxX[x_ctb >> s->ps.sps->log2_ctb_size];
  1986. lc->end_of_tiles_x = x_ctb + (s->ps.pps->column_width[idxX] << s->ps.sps->log2_ctb_size);
  1987. lc->first_qp_group = 1;
  1988. }
  1989. } else {
  1990. lc->end_of_tiles_x = s->ps.sps->width;
  1991. }
  1992. lc->end_of_tiles_y = FFMIN(y_ctb + ctb_size, s->ps.sps->height);
  1993. lc->boundary_flags = 0;
  1994. if (s->ps.pps->tiles_enabled_flag) {
  1995. if (x_ctb > 0 && s->ps.pps->tile_id[ctb_addr_ts] != s->ps.pps->tile_id[s->ps.pps->ctb_addr_rs_to_ts[ctb_addr_rs - 1]])
  1996. lc->boundary_flags |= BOUNDARY_LEFT_TILE;
  1997. if (x_ctb > 0 && s->tab_slice_address[ctb_addr_rs] != s->tab_slice_address[ctb_addr_rs - 1])
  1998. lc->boundary_flags |= BOUNDARY_LEFT_SLICE;
  1999. if (y_ctb > 0 && s->ps.pps->tile_id[ctb_addr_ts] != s->ps.pps->tile_id[s->ps.pps->ctb_addr_rs_to_ts[ctb_addr_rs - s->ps.sps->ctb_width]])
  2000. lc->boundary_flags |= BOUNDARY_UPPER_TILE;
  2001. if (y_ctb > 0 && s->tab_slice_address[ctb_addr_rs] != s->tab_slice_address[ctb_addr_rs - s->ps.sps->ctb_width])
  2002. lc->boundary_flags |= BOUNDARY_UPPER_SLICE;
  2003. } else {
  2004. if (ctb_addr_in_slice <= 0)
  2005. lc->boundary_flags |= BOUNDARY_LEFT_SLICE;
  2006. if (ctb_addr_in_slice < s->ps.sps->ctb_width)
  2007. lc->boundary_flags |= BOUNDARY_UPPER_SLICE;
  2008. }
  2009. lc->ctb_left_flag = ((x_ctb > 0) && (ctb_addr_in_slice > 0) && !(lc->boundary_flags & BOUNDARY_LEFT_TILE));
  2010. lc->ctb_up_flag = ((y_ctb > 0) && (ctb_addr_in_slice >= s->ps.sps->ctb_width) && !(lc->boundary_flags & BOUNDARY_UPPER_TILE));
  2011. lc->ctb_up_right_flag = ((y_ctb > 0) && (ctb_addr_in_slice+1 >= s->ps.sps->ctb_width) && (s->ps.pps->tile_id[ctb_addr_ts] == s->ps.pps->tile_id[s->ps.pps->ctb_addr_rs_to_ts[ctb_addr_rs+1 - s->ps.sps->ctb_width]]));
  2012. lc->ctb_up_left_flag = ((x_ctb > 0) && (y_ctb > 0) && (ctb_addr_in_slice-1 >= s->ps.sps->ctb_width) && (s->ps.pps->tile_id[ctb_addr_ts] == s->ps.pps->tile_id[s->ps.pps->ctb_addr_rs_to_ts[ctb_addr_rs-1 - s->ps.sps->ctb_width]]));
  2013. }
  2014. static int hls_decode_entry(AVCodecContext *avctxt, void *isFilterThread)
  2015. {
  2016. HEVCContext *s = avctxt->priv_data;
  2017. int ctb_size = 1 << s->ps.sps->log2_ctb_size;
  2018. int more_data = 1;
  2019. int x_ctb = 0;
  2020. int y_ctb = 0;
  2021. int ctb_addr_ts = s->ps.pps->ctb_addr_rs_to_ts[s->sh.slice_ctb_addr_rs];
  2022. if (!ctb_addr_ts && s->sh.dependent_slice_segment_flag) {
  2023. av_log(s->avctx, AV_LOG_ERROR, "Impossible initial tile.\n");
  2024. return AVERROR_INVALIDDATA;
  2025. }
  2026. if (s->sh.dependent_slice_segment_flag) {
  2027. int prev_rs = s->ps.pps->ctb_addr_ts_to_rs[ctb_addr_ts - 1];
  2028. if (s->tab_slice_address[prev_rs] != s->sh.slice_addr) {
  2029. av_log(s->avctx, AV_LOG_ERROR, "Previous slice segment missing\n");
  2030. return AVERROR_INVALIDDATA;
  2031. }
  2032. }
  2033. while (more_data && ctb_addr_ts < s->ps.sps->ctb_size) {
  2034. int ctb_addr_rs = s->ps.pps->ctb_addr_ts_to_rs[ctb_addr_ts];
  2035. x_ctb = (ctb_addr_rs % ((s->ps.sps->width + ctb_size - 1) >> s->ps.sps->log2_ctb_size)) << s->ps.sps->log2_ctb_size;
  2036. y_ctb = (ctb_addr_rs / ((s->ps.sps->width + ctb_size - 1) >> s->ps.sps->log2_ctb_size)) << s->ps.sps->log2_ctb_size;
  2037. hls_decode_neighbour(s, x_ctb, y_ctb, ctb_addr_ts);
  2038. ff_hevc_cabac_init(s, ctb_addr_ts);
  2039. hls_sao_param(s, x_ctb >> s->ps.sps->log2_ctb_size, y_ctb >> s->ps.sps->log2_ctb_size);
  2040. s->deblock[ctb_addr_rs].beta_offset = s->sh.beta_offset;
  2041. s->deblock[ctb_addr_rs].tc_offset = s->sh.tc_offset;
  2042. s->filter_slice_edges[ctb_addr_rs] = s->sh.slice_loop_filter_across_slices_enabled_flag;
  2043. more_data = hls_coding_quadtree(s, x_ctb, y_ctb, s->ps.sps->log2_ctb_size, 0);
  2044. if (more_data < 0) {
  2045. s->tab_slice_address[ctb_addr_rs] = -1;
  2046. return more_data;
  2047. }
  2048. ctb_addr_ts++;
  2049. ff_hevc_save_states(s, ctb_addr_ts);
  2050. ff_hevc_hls_filters(s, x_ctb, y_ctb, ctb_size);
  2051. }
  2052. if (x_ctb + ctb_size >= s->ps.sps->width &&
  2053. y_ctb + ctb_size >= s->ps.sps->height)
  2054. ff_hevc_hls_filter(s, x_ctb, y_ctb, ctb_size);
  2055. return ctb_addr_ts;
  2056. }
  2057. static int hls_slice_data(HEVCContext *s)
  2058. {
  2059. int arg[2];
  2060. int ret[2];
  2061. arg[0] = 0;
  2062. arg[1] = 1;
  2063. s->avctx->execute(s->avctx, hls_decode_entry, arg, ret , 1, sizeof(int));
  2064. return ret[0];
  2065. }
  2066. static int hls_decode_entry_wpp(AVCodecContext *avctxt, void *input_ctb_row, int job, int self_id)
  2067. {
  2068. HEVCContext *s1 = avctxt->priv_data, *s;
  2069. HEVCLocalContext *lc;
  2070. int ctb_size = 1<< s1->ps.sps->log2_ctb_size;
  2071. int more_data = 1;
  2072. int *ctb_row_p = input_ctb_row;
  2073. int ctb_row = ctb_row_p[job];
  2074. int ctb_addr_rs = s1->sh.slice_ctb_addr_rs + ctb_row * ((s1->ps.sps->width + ctb_size - 1) >> s1->ps.sps->log2_ctb_size);
  2075. int ctb_addr_ts = s1->ps.pps->ctb_addr_rs_to_ts[ctb_addr_rs];
  2076. int thread = ctb_row % s1->threads_number;
  2077. int ret;
  2078. s = s1->sList[self_id];
  2079. lc = s->HEVClc;
  2080. if(ctb_row) {
  2081. ret = init_get_bits8(&lc->gb, s->data + s->sh.offset[ctb_row - 1], s->sh.size[ctb_row - 1]);
  2082. if (ret < 0)
  2083. return ret;
  2084. ff_init_cabac_decoder(&lc->cc, s->data + s->sh.offset[(ctb_row)-1], s->sh.size[ctb_row - 1]);
  2085. }
  2086. while(more_data && ctb_addr_ts < s->ps.sps->ctb_size) {
  2087. int x_ctb = (ctb_addr_rs % s->ps.sps->ctb_width) << s->ps.sps->log2_ctb_size;
  2088. int y_ctb = (ctb_addr_rs / s->ps.sps->ctb_width) << s->ps.sps->log2_ctb_size;
  2089. hls_decode_neighbour(s, x_ctb, y_ctb, ctb_addr_ts);
  2090. ff_thread_await_progress2(s->avctx, ctb_row, thread, SHIFT_CTB_WPP);
  2091. if (avpriv_atomic_int_get(&s1->wpp_err)){
  2092. ff_thread_report_progress2(s->avctx, ctb_row , thread, SHIFT_CTB_WPP);
  2093. return 0;
  2094. }
  2095. ff_hevc_cabac_init(s, ctb_addr_ts);
  2096. hls_sao_param(s, x_ctb >> s->ps.sps->log2_ctb_size, y_ctb >> s->ps.sps->log2_ctb_size);
  2097. more_data = hls_coding_quadtree(s, x_ctb, y_ctb, s->ps.sps->log2_ctb_size, 0);
  2098. if (more_data < 0) {
  2099. s->tab_slice_address[ctb_addr_rs] = -1;
  2100. avpriv_atomic_int_set(&s1->wpp_err, 1);
  2101. ff_thread_report_progress2(s->avctx, ctb_row ,thread, SHIFT_CTB_WPP);
  2102. return more_data;
  2103. }
  2104. ctb_addr_ts++;
  2105. ff_hevc_save_states(s, ctb_addr_ts);
  2106. ff_thread_report_progress2(s->avctx, ctb_row, thread, 1);
  2107. ff_hevc_hls_filters(s, x_ctb, y_ctb, ctb_size);
  2108. if (!more_data && (x_ctb+ctb_size) < s->ps.sps->width && ctb_row != s->sh.num_entry_point_offsets) {
  2109. avpriv_atomic_int_set(&s1->wpp_err, 1);
  2110. ff_thread_report_progress2(s->avctx, ctb_row ,thread, SHIFT_CTB_WPP);
  2111. return 0;
  2112. }
  2113. if ((x_ctb+ctb_size) >= s->ps.sps->width && (y_ctb+ctb_size) >= s->ps.sps->height ) {
  2114. ff_hevc_hls_filter(s, x_ctb, y_ctb, ctb_size);
  2115. ff_thread_report_progress2(s->avctx, ctb_row , thread, SHIFT_CTB_WPP);
  2116. return ctb_addr_ts;
  2117. }
  2118. ctb_addr_rs = s->ps.pps->ctb_addr_ts_to_rs[ctb_addr_ts];
  2119. x_ctb+=ctb_size;
  2120. if(x_ctb >= s->ps.sps->width) {
  2121. break;
  2122. }
  2123. }
  2124. ff_thread_report_progress2(s->avctx, ctb_row ,thread, SHIFT_CTB_WPP);
  2125. return 0;
  2126. }
  2127. static int hls_slice_data_wpp(HEVCContext *s, const HEVCNAL *nal)
  2128. {
  2129. const uint8_t *data = nal->data;
  2130. int length = nal->size;
  2131. HEVCLocalContext *lc = s->HEVClc;
  2132. int *ret = av_malloc_array(s->sh.num_entry_point_offsets + 1, sizeof(int));
  2133. int *arg = av_malloc_array(s->sh.num_entry_point_offsets + 1, sizeof(int));
  2134. int64_t offset;
  2135. int64_t startheader, cmpt = 0;
  2136. int i, j, res = 0;
  2137. if (!ret || !arg) {
  2138. av_free(ret);
  2139. av_free(arg);
  2140. return AVERROR(ENOMEM);
  2141. }
  2142. if (s->sh.slice_ctb_addr_rs + s->sh.num_entry_point_offsets * s->ps.sps->ctb_width >= s->ps.sps->ctb_width * s->ps.sps->ctb_height) {
  2143. av_log(s->avctx, AV_LOG_ERROR, "WPP ctb addresses are wrong (%d %d %d %d)\n",
  2144. s->sh.slice_ctb_addr_rs, s->sh.num_entry_point_offsets,
  2145. s->ps.sps->ctb_width, s->ps.sps->ctb_height
  2146. );
  2147. res = AVERROR_INVALIDDATA;
  2148. goto error;
  2149. }
  2150. ff_alloc_entries(s->avctx, s->sh.num_entry_point_offsets + 1);
  2151. if (!s->sList[1]) {
  2152. for (i = 1; i < s->threads_number; i++) {
  2153. s->sList[i] = av_malloc(sizeof(HEVCContext));
  2154. memcpy(s->sList[i], s, sizeof(HEVCContext));
  2155. s->HEVClcList[i] = av_mallocz(sizeof(HEVCLocalContext));
  2156. s->sList[i]->HEVClc = s->HEVClcList[i];
  2157. }
  2158. }
  2159. offset = (lc->gb.index >> 3);
  2160. for (j = 0, cmpt = 0, startheader = offset + s->sh.entry_point_offset[0]; j < nal->skipped_bytes; j++) {
  2161. if (nal->skipped_bytes_pos[j] >= offset && nal->skipped_bytes_pos[j] < startheader) {
  2162. startheader--;
  2163. cmpt++;
  2164. }
  2165. }
  2166. for (i = 1; i < s->sh.num_entry_point_offsets; i++) {
  2167. offset += (s->sh.entry_point_offset[i - 1] - cmpt);
  2168. for (j = 0, cmpt = 0, startheader = offset
  2169. + s->sh.entry_point_offset[i]; j < nal->skipped_bytes; j++) {
  2170. if (nal->skipped_bytes_pos[j] >= offset && nal->skipped_bytes_pos[j] < startheader) {
  2171. startheader--;
  2172. cmpt++;
  2173. }
  2174. }
  2175. s->sh.size[i - 1] = s->sh.entry_point_offset[i] - cmpt;
  2176. s->sh.offset[i - 1] = offset;
  2177. }
  2178. if (s->sh.num_entry_point_offsets != 0) {
  2179. offset += s->sh.entry_point_offset[s->sh.num_entry_point_offsets - 1] - cmpt;
  2180. if (length < offset) {
  2181. av_log(s->avctx, AV_LOG_ERROR, "entry_point_offset table is corrupted\n");
  2182. res = AVERROR_INVALIDDATA;
  2183. goto error;
  2184. }
  2185. s->sh.size[s->sh.num_entry_point_offsets - 1] = length - offset;
  2186. s->sh.offset[s->sh.num_entry_point_offsets - 1] = offset;
  2187. }
  2188. s->data = data;
  2189. for (i = 1; i < s->threads_number; i++) {
  2190. s->sList[i]->HEVClc->first_qp_group = 1;
  2191. s->sList[i]->HEVClc->qp_y = s->sList[0]->HEVClc->qp_y;
  2192. memcpy(s->sList[i], s, sizeof(HEVCContext));
  2193. s->sList[i]->HEVClc = s->HEVClcList[i];
  2194. }
  2195. avpriv_atomic_int_set(&s->wpp_err, 0);
  2196. ff_reset_entries(s->avctx);
  2197. for (i = 0; i <= s->sh.num_entry_point_offsets; i++) {
  2198. arg[i] = i;
  2199. ret[i] = 0;
  2200. }
  2201. if (s->ps.pps->entropy_coding_sync_enabled_flag)
  2202. s->avctx->execute2(s->avctx, hls_decode_entry_wpp, arg, ret, s->sh.num_entry_point_offsets + 1);
  2203. for (i = 0; i <= s->sh.num_entry_point_offsets; i++)
  2204. res += ret[i];
  2205. error:
  2206. av_free(ret);
  2207. av_free(arg);
  2208. return res;
  2209. }
  2210. static int set_side_data(HEVCContext *s)
  2211. {
  2212. AVFrame *out = s->ref->frame;
  2213. if (s->sei_frame_packing_present &&
  2214. s->frame_packing_arrangement_type >= 3 &&
  2215. s->frame_packing_arrangement_type <= 5 &&
  2216. s->content_interpretation_type > 0 &&
  2217. s->content_interpretation_type < 3) {
  2218. AVStereo3D *stereo = av_stereo3d_create_side_data(out);
  2219. if (!stereo)
  2220. return AVERROR(ENOMEM);
  2221. switch (s->frame_packing_arrangement_type) {
  2222. case 3:
  2223. if (s->quincunx_subsampling)
  2224. stereo->type = AV_STEREO3D_SIDEBYSIDE_QUINCUNX;
  2225. else
  2226. stereo->type = AV_STEREO3D_SIDEBYSIDE;
  2227. break;
  2228. case 4:
  2229. stereo->type = AV_STEREO3D_TOPBOTTOM;
  2230. break;
  2231. case 5:
  2232. stereo->type = AV_STEREO3D_FRAMESEQUENCE;
  2233. break;
  2234. }
  2235. if (s->content_interpretation_type == 2)
  2236. stereo->flags = AV_STEREO3D_FLAG_INVERT;
  2237. }
  2238. if (s->sei_display_orientation_present &&
  2239. (s->sei_anticlockwise_rotation || s->sei_hflip || s->sei_vflip)) {
  2240. double angle = s->sei_anticlockwise_rotation * 360 / (double) (1 << 16);
  2241. AVFrameSideData *rotation = av_frame_new_side_data(out,
  2242. AV_FRAME_DATA_DISPLAYMATRIX,
  2243. sizeof(int32_t) * 9);
  2244. if (!rotation)
  2245. return AVERROR(ENOMEM);
  2246. av_display_rotation_set((int32_t *)rotation->data, angle);
  2247. av_display_matrix_flip((int32_t *)rotation->data,
  2248. s->sei_hflip, s->sei_vflip);
  2249. }
  2250. // Decrement the mastering display flag when IRAP frame has no_rasl_output_flag=1
  2251. // so the side data persists for the entire coded video sequence.
  2252. if (s->sei_mastering_display_info_present > 0 &&
  2253. IS_IRAP(s) && s->no_rasl_output_flag) {
  2254. s->sei_mastering_display_info_present--;
  2255. }
  2256. if (s->sei_mastering_display_info_present) {
  2257. // HEVC uses a g,b,r ordering, which we convert to a more natural r,g,b
  2258. const int mapping[3] = {2, 0, 1};
  2259. const int chroma_den = 50000;
  2260. const int luma_den = 10000;
  2261. int i;
  2262. AVMasteringDisplayMetadata *metadata =
  2263. av_mastering_display_metadata_create_side_data(out);
  2264. if (!metadata)
  2265. return AVERROR(ENOMEM);
  2266. for (i = 0; i < 3; i++) {
  2267. const int j = mapping[i];
  2268. metadata->display_primaries[i][0].num = s->display_primaries[j][0];
  2269. metadata->display_primaries[i][0].den = chroma_den;
  2270. metadata->display_primaries[i][1].num = s->display_primaries[j][1];
  2271. metadata->display_primaries[i][1].den = chroma_den;
  2272. }
  2273. metadata->white_point[0].num = s->white_point[0];
  2274. metadata->white_point[0].den = chroma_den;
  2275. metadata->white_point[1].num = s->white_point[1];
  2276. metadata->white_point[1].den = chroma_den;
  2277. metadata->max_luminance.num = s->max_mastering_luminance;
  2278. metadata->max_luminance.den = luma_den;
  2279. metadata->min_luminance.num = s->min_mastering_luminance;
  2280. metadata->min_luminance.den = luma_den;
  2281. metadata->has_luminance = 1;
  2282. metadata->has_primaries = 1;
  2283. av_log(s->avctx, AV_LOG_DEBUG, "Mastering Display Metadata:\n");
  2284. av_log(s->avctx, AV_LOG_DEBUG,
  2285. "r(%5.4f,%5.4f) g(%5.4f,%5.4f) b(%5.4f %5.4f) wp(%5.4f, %5.4f)\n",
  2286. av_q2d(metadata->display_primaries[0][0]),
  2287. av_q2d(metadata->display_primaries[0][1]),
  2288. av_q2d(metadata->display_primaries[1][0]),
  2289. av_q2d(metadata->display_primaries[1][1]),
  2290. av_q2d(metadata->display_primaries[2][0]),
  2291. av_q2d(metadata->display_primaries[2][1]),
  2292. av_q2d(metadata->white_point[0]), av_q2d(metadata->white_point[1]));
  2293. av_log(s->avctx, AV_LOG_DEBUG,
  2294. "min_luminance=%f, max_luminance=%f\n",
  2295. av_q2d(metadata->min_luminance), av_q2d(metadata->max_luminance));
  2296. }
  2297. if (s->a53_caption) {
  2298. AVFrameSideData* sd = av_frame_new_side_data(out,
  2299. AV_FRAME_DATA_A53_CC,
  2300. s->a53_caption_size);
  2301. if (sd)
  2302. memcpy(sd->data, s->a53_caption, s->a53_caption_size);
  2303. av_freep(&s->a53_caption);
  2304. s->a53_caption_size = 0;
  2305. s->avctx->properties |= FF_CODEC_PROPERTY_CLOSED_CAPTIONS;
  2306. }
  2307. return 0;
  2308. }
  2309. static int hevc_frame_start(HEVCContext *s)
  2310. {
  2311. HEVCLocalContext *lc = s->HEVClc;
  2312. int pic_size_in_ctb = ((s->ps.sps->width >> s->ps.sps->log2_min_cb_size) + 1) *
  2313. ((s->ps.sps->height >> s->ps.sps->log2_min_cb_size) + 1);
  2314. int ret;
  2315. memset(s->horizontal_bs, 0, s->bs_width * s->bs_height);
  2316. memset(s->vertical_bs, 0, s->bs_width * s->bs_height);
  2317. memset(s->cbf_luma, 0, s->ps.sps->min_tb_width * s->ps.sps->min_tb_height);
  2318. memset(s->is_pcm, 0, (s->ps.sps->min_pu_width + 1) * (s->ps.sps->min_pu_height + 1));
  2319. memset(s->tab_slice_address, -1, pic_size_in_ctb * sizeof(*s->tab_slice_address));
  2320. s->is_decoded = 0;
  2321. s->first_nal_type = s->nal_unit_type;
  2322. if (s->ps.pps->tiles_enabled_flag)
  2323. lc->end_of_tiles_x = s->ps.pps->column_width[0] << s->ps.sps->log2_ctb_size;
  2324. ret = ff_hevc_set_new_ref(s, &s->frame, s->poc);
  2325. if (ret < 0)
  2326. goto fail;
  2327. ret = ff_hevc_frame_rps(s);
  2328. if (ret < 0) {
  2329. av_log(s->avctx, AV_LOG_ERROR, "Error constructing the frame RPS.\n");
  2330. goto fail;
  2331. }
  2332. s->ref->frame->key_frame = IS_IRAP(s);
  2333. ret = set_side_data(s);
  2334. if (ret < 0)
  2335. goto fail;
  2336. s->frame->pict_type = 3 - s->sh.slice_type;
  2337. if (!IS_IRAP(s))
  2338. ff_hevc_bump_frame(s);
  2339. av_frame_unref(s->output_frame);
  2340. ret = ff_hevc_output_frame(s, s->output_frame, 0);
  2341. if (ret < 0)
  2342. goto fail;
  2343. if (!s->avctx->hwaccel)
  2344. ff_thread_finish_setup(s->avctx);
  2345. return 0;
  2346. fail:
  2347. if (s->ref)
  2348. ff_hevc_unref_frame(s, s->ref, ~0);
  2349. s->ref = NULL;
  2350. return ret;
  2351. }
  2352. static int decode_nal_unit(HEVCContext *s, const HEVCNAL *nal)
  2353. {
  2354. HEVCLocalContext *lc = s->HEVClc;
  2355. GetBitContext *gb = &lc->gb;
  2356. int ctb_addr_ts, ret;
  2357. *gb = nal->gb;
  2358. s->nal_unit_type = nal->type;
  2359. s->temporal_id = nal->temporal_id;
  2360. switch (s->nal_unit_type) {
  2361. case NAL_VPS:
  2362. ret = ff_hevc_decode_nal_vps(gb, s->avctx, &s->ps);
  2363. if (ret < 0)
  2364. goto fail;
  2365. break;
  2366. case NAL_SPS:
  2367. ret = ff_hevc_decode_nal_sps(gb, s->avctx, &s->ps,
  2368. s->apply_defdispwin);
  2369. if (ret < 0)
  2370. goto fail;
  2371. break;
  2372. case NAL_PPS:
  2373. ret = ff_hevc_decode_nal_pps(gb, s->avctx, &s->ps);
  2374. if (ret < 0)
  2375. goto fail;
  2376. break;
  2377. case NAL_SEI_PREFIX:
  2378. case NAL_SEI_SUFFIX:
  2379. ret = ff_hevc_decode_nal_sei(s);
  2380. if (ret < 0)
  2381. goto fail;
  2382. break;
  2383. case NAL_TRAIL_R:
  2384. case NAL_TRAIL_N:
  2385. case NAL_TSA_N:
  2386. case NAL_TSA_R:
  2387. case NAL_STSA_N:
  2388. case NAL_STSA_R:
  2389. case NAL_BLA_W_LP:
  2390. case NAL_BLA_W_RADL:
  2391. case NAL_BLA_N_LP:
  2392. case NAL_IDR_W_RADL:
  2393. case NAL_IDR_N_LP:
  2394. case NAL_CRA_NUT:
  2395. case NAL_RADL_N:
  2396. case NAL_RADL_R:
  2397. case NAL_RASL_N:
  2398. case NAL_RASL_R:
  2399. ret = hls_slice_header(s);
  2400. if (ret < 0)
  2401. return ret;
  2402. if (s->max_ra == INT_MAX) {
  2403. if (s->nal_unit_type == NAL_CRA_NUT || IS_BLA(s)) {
  2404. s->max_ra = s->poc;
  2405. } else {
  2406. if (IS_IDR(s))
  2407. s->max_ra = INT_MIN;
  2408. }
  2409. }
  2410. if ((s->nal_unit_type == NAL_RASL_R || s->nal_unit_type == NAL_RASL_N) &&
  2411. s->poc <= s->max_ra) {
  2412. s->is_decoded = 0;
  2413. break;
  2414. } else {
  2415. if (s->nal_unit_type == NAL_RASL_R && s->poc > s->max_ra)
  2416. s->max_ra = INT_MIN;
  2417. }
  2418. if (s->sh.first_slice_in_pic_flag) {
  2419. ret = hevc_frame_start(s);
  2420. if (ret < 0)
  2421. return ret;
  2422. } else if (!s->ref) {
  2423. av_log(s->avctx, AV_LOG_ERROR, "First slice in a frame missing.\n");
  2424. goto fail;
  2425. }
  2426. if (s->nal_unit_type != s->first_nal_type) {
  2427. av_log(s->avctx, AV_LOG_ERROR,
  2428. "Non-matching NAL types of the VCL NALUs: %d %d\n",
  2429. s->first_nal_type, s->nal_unit_type);
  2430. return AVERROR_INVALIDDATA;
  2431. }
  2432. if (!s->sh.dependent_slice_segment_flag &&
  2433. s->sh.slice_type != I_SLICE) {
  2434. ret = ff_hevc_slice_rpl(s);
  2435. if (ret < 0) {
  2436. av_log(s->avctx, AV_LOG_WARNING,
  2437. "Error constructing the reference lists for the current slice.\n");
  2438. goto fail;
  2439. }
  2440. }
  2441. if (s->sh.first_slice_in_pic_flag && s->avctx->hwaccel) {
  2442. ret = s->avctx->hwaccel->start_frame(s->avctx, NULL, 0);
  2443. if (ret < 0)
  2444. goto fail;
  2445. }
  2446. if (s->avctx->hwaccel) {
  2447. ret = s->avctx->hwaccel->decode_slice(s->avctx, nal->raw_data, nal->raw_size);
  2448. if (ret < 0)
  2449. goto fail;
  2450. } else {
  2451. if (s->threads_number > 1 && s->sh.num_entry_point_offsets > 0)
  2452. ctb_addr_ts = hls_slice_data_wpp(s, nal);
  2453. else
  2454. ctb_addr_ts = hls_slice_data(s);
  2455. if (ctb_addr_ts >= (s->ps.sps->ctb_width * s->ps.sps->ctb_height)) {
  2456. s->is_decoded = 1;
  2457. }
  2458. if (ctb_addr_ts < 0) {
  2459. ret = ctb_addr_ts;
  2460. goto fail;
  2461. }
  2462. }
  2463. break;
  2464. case NAL_EOS_NUT:
  2465. case NAL_EOB_NUT:
  2466. s->seq_decode = (s->seq_decode + 1) & 0xff;
  2467. s->max_ra = INT_MAX;
  2468. break;
  2469. case NAL_AUD:
  2470. case NAL_FD_NUT:
  2471. break;
  2472. default:
  2473. av_log(s->avctx, AV_LOG_INFO,
  2474. "Skipping NAL unit %d\n", s->nal_unit_type);
  2475. }
  2476. return 0;
  2477. fail:
  2478. if (s->avctx->err_recognition & AV_EF_EXPLODE)
  2479. return ret;
  2480. return 0;
  2481. }
  2482. static int decode_nal_units(HEVCContext *s, const uint8_t *buf, int length)
  2483. {
  2484. int i, ret = 0;
  2485. s->ref = NULL;
  2486. s->last_eos = s->eos;
  2487. s->eos = 0;
  2488. /* split the input packet into NAL units, so we know the upper bound on the
  2489. * number of slices in the frame */
  2490. ret = ff_hevc_split_packet(s, &s->pkt, buf, length, s->avctx, s->is_nalff,
  2491. s->nal_length_size);
  2492. if (ret < 0) {
  2493. av_log(s->avctx, AV_LOG_ERROR,
  2494. "Error splitting the input into NAL units.\n");
  2495. return ret;
  2496. }
  2497. for (i = 0; i < s->pkt.nb_nals; i++) {
  2498. if (s->pkt.nals[i].type == NAL_EOB_NUT ||
  2499. s->pkt.nals[i].type == NAL_EOS_NUT)
  2500. s->eos = 1;
  2501. }
  2502. /* decode the NAL units */
  2503. for (i = 0; i < s->pkt.nb_nals; i++) {
  2504. ret = decode_nal_unit(s, &s->pkt.nals[i]);
  2505. if (ret < 0) {
  2506. av_log(s->avctx, AV_LOG_WARNING,
  2507. "Error parsing NAL unit #%d.\n", i);
  2508. goto fail;
  2509. }
  2510. }
  2511. fail:
  2512. if (s->ref && s->threads_type == FF_THREAD_FRAME)
  2513. ff_thread_report_progress(&s->ref->tf, INT_MAX, 0);
  2514. return ret;
  2515. }
  2516. static void print_md5(void *log_ctx, int level, uint8_t md5[16])
  2517. {
  2518. int i;
  2519. for (i = 0; i < 16; i++)
  2520. av_log(log_ctx, level, "%02"PRIx8, md5[i]);
  2521. }
  2522. static int verify_md5(HEVCContext *s, AVFrame *frame)
  2523. {
  2524. const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(frame->format);
  2525. int pixel_shift;
  2526. int i, j;
  2527. if (!desc)
  2528. return AVERROR(EINVAL);
  2529. pixel_shift = desc->comp[0].depth > 8;
  2530. av_log(s->avctx, AV_LOG_DEBUG, "Verifying checksum for frame with POC %d: ",
  2531. s->poc);
  2532. /* the checksums are LE, so we have to byteswap for >8bpp formats
  2533. * on BE arches */
  2534. #if HAVE_BIGENDIAN
  2535. if (pixel_shift && !s->checksum_buf) {
  2536. av_fast_malloc(&s->checksum_buf, &s->checksum_buf_size,
  2537. FFMAX3(frame->linesize[0], frame->linesize[1],
  2538. frame->linesize[2]));
  2539. if (!s->checksum_buf)
  2540. return AVERROR(ENOMEM);
  2541. }
  2542. #endif
  2543. for (i = 0; frame->data[i]; i++) {
  2544. int width = s->avctx->coded_width;
  2545. int height = s->avctx->coded_height;
  2546. int w = (i == 1 || i == 2) ? (width >> desc->log2_chroma_w) : width;
  2547. int h = (i == 1 || i == 2) ? (height >> desc->log2_chroma_h) : height;
  2548. uint8_t md5[16];
  2549. av_md5_init(s->md5_ctx);
  2550. for (j = 0; j < h; j++) {
  2551. const uint8_t *src = frame->data[i] + j * frame->linesize[i];
  2552. #if HAVE_BIGENDIAN
  2553. if (pixel_shift) {
  2554. s->bdsp.bswap16_buf((uint16_t *) s->checksum_buf,
  2555. (const uint16_t *) src, w);
  2556. src = s->checksum_buf;
  2557. }
  2558. #endif
  2559. av_md5_update(s->md5_ctx, src, w << pixel_shift);
  2560. }
  2561. av_md5_final(s->md5_ctx, md5);
  2562. if (!memcmp(md5, s->md5[i], 16)) {
  2563. av_log (s->avctx, AV_LOG_DEBUG, "plane %d - correct ", i);
  2564. print_md5(s->avctx, AV_LOG_DEBUG, md5);
  2565. av_log (s->avctx, AV_LOG_DEBUG, "; ");
  2566. } else {
  2567. av_log (s->avctx, AV_LOG_ERROR, "mismatching checksum of plane %d - ", i);
  2568. print_md5(s->avctx, AV_LOG_ERROR, md5);
  2569. av_log (s->avctx, AV_LOG_ERROR, " != ");
  2570. print_md5(s->avctx, AV_LOG_ERROR, s->md5[i]);
  2571. av_log (s->avctx, AV_LOG_ERROR, "\n");
  2572. return AVERROR_INVALIDDATA;
  2573. }
  2574. }
  2575. av_log(s->avctx, AV_LOG_DEBUG, "\n");
  2576. return 0;
  2577. }
  2578. static int hevc_decode_frame(AVCodecContext *avctx, void *data, int *got_output,
  2579. AVPacket *avpkt)
  2580. {
  2581. int ret;
  2582. HEVCContext *s = avctx->priv_data;
  2583. if (!avpkt->size) {
  2584. ret = ff_hevc_output_frame(s, data, 1);
  2585. if (ret < 0)
  2586. return ret;
  2587. *got_output = ret;
  2588. return 0;
  2589. }
  2590. s->ref = NULL;
  2591. ret = decode_nal_units(s, avpkt->data, avpkt->size);
  2592. if (ret < 0)
  2593. return ret;
  2594. if (avctx->hwaccel) {
  2595. if (s->ref && (ret = avctx->hwaccel->end_frame(avctx)) < 0) {
  2596. av_log(avctx, AV_LOG_ERROR,
  2597. "hardware accelerator failed to decode picture\n");
  2598. ff_hevc_unref_frame(s, s->ref, ~0);
  2599. return ret;
  2600. }
  2601. } else {
  2602. /* verify the SEI checksum */
  2603. if (avctx->err_recognition & AV_EF_CRCCHECK && s->is_decoded &&
  2604. s->is_md5) {
  2605. ret = verify_md5(s, s->ref->frame);
  2606. if (ret < 0 && avctx->err_recognition & AV_EF_EXPLODE) {
  2607. ff_hevc_unref_frame(s, s->ref, ~0);
  2608. return ret;
  2609. }
  2610. }
  2611. }
  2612. s->is_md5 = 0;
  2613. if (s->is_decoded) {
  2614. av_log(avctx, AV_LOG_DEBUG, "Decoded frame with POC %d.\n", s->poc);
  2615. s->is_decoded = 0;
  2616. }
  2617. if (s->output_frame->buf[0]) {
  2618. av_frame_move_ref(data, s->output_frame);
  2619. *got_output = 1;
  2620. }
  2621. return avpkt->size;
  2622. }
  2623. static int hevc_ref_frame(HEVCContext *s, HEVCFrame *dst, HEVCFrame *src)
  2624. {
  2625. int ret;
  2626. ret = ff_thread_ref_frame(&dst->tf, &src->tf);
  2627. if (ret < 0)
  2628. return ret;
  2629. dst->tab_mvf_buf = av_buffer_ref(src->tab_mvf_buf);
  2630. if (!dst->tab_mvf_buf)
  2631. goto fail;
  2632. dst->tab_mvf = src->tab_mvf;
  2633. dst->rpl_tab_buf = av_buffer_ref(src->rpl_tab_buf);
  2634. if (!dst->rpl_tab_buf)
  2635. goto fail;
  2636. dst->rpl_tab = src->rpl_tab;
  2637. dst->rpl_buf = av_buffer_ref(src->rpl_buf);
  2638. if (!dst->rpl_buf)
  2639. goto fail;
  2640. dst->poc = src->poc;
  2641. dst->ctb_count = src->ctb_count;
  2642. dst->window = src->window;
  2643. dst->flags = src->flags;
  2644. dst->sequence = src->sequence;
  2645. if (src->hwaccel_picture_private) {
  2646. dst->hwaccel_priv_buf = av_buffer_ref(src->hwaccel_priv_buf);
  2647. if (!dst->hwaccel_priv_buf)
  2648. goto fail;
  2649. dst->hwaccel_picture_private = dst->hwaccel_priv_buf->data;
  2650. }
  2651. return 0;
  2652. fail:
  2653. ff_hevc_unref_frame(s, dst, ~0);
  2654. return AVERROR(ENOMEM);
  2655. }
  2656. static av_cold int hevc_decode_free(AVCodecContext *avctx)
  2657. {
  2658. HEVCContext *s = avctx->priv_data;
  2659. int i;
  2660. pic_arrays_free(s);
  2661. av_freep(&s->md5_ctx);
  2662. av_freep(&s->cabac_state);
  2663. for (i = 0; i < 3; i++) {
  2664. av_freep(&s->sao_pixel_buffer_h[i]);
  2665. av_freep(&s->sao_pixel_buffer_v[i]);
  2666. }
  2667. av_frame_free(&s->output_frame);
  2668. for (i = 0; i < FF_ARRAY_ELEMS(s->DPB); i++) {
  2669. ff_hevc_unref_frame(s, &s->DPB[i], ~0);
  2670. av_frame_free(&s->DPB[i].frame);
  2671. }
  2672. for (i = 0; i < FF_ARRAY_ELEMS(s->ps.vps_list); i++)
  2673. av_buffer_unref(&s->ps.vps_list[i]);
  2674. for (i = 0; i < FF_ARRAY_ELEMS(s->ps.sps_list); i++)
  2675. av_buffer_unref(&s->ps.sps_list[i]);
  2676. for (i = 0; i < FF_ARRAY_ELEMS(s->ps.pps_list); i++)
  2677. av_buffer_unref(&s->ps.pps_list[i]);
  2678. s->ps.sps = NULL;
  2679. s->ps.pps = NULL;
  2680. s->ps.vps = NULL;
  2681. av_freep(&s->sh.entry_point_offset);
  2682. av_freep(&s->sh.offset);
  2683. av_freep(&s->sh.size);
  2684. for (i = 1; i < s->threads_number; i++) {
  2685. HEVCLocalContext *lc = s->HEVClcList[i];
  2686. if (lc) {
  2687. av_freep(&s->HEVClcList[i]);
  2688. av_freep(&s->sList[i]);
  2689. }
  2690. }
  2691. if (s->HEVClc == s->HEVClcList[0])
  2692. s->HEVClc = NULL;
  2693. av_freep(&s->HEVClcList[0]);
  2694. for (i = 0; i < s->pkt.nals_allocated; i++) {
  2695. av_freep(&s->pkt.nals[i].rbsp_buffer);
  2696. av_freep(&s->pkt.nals[i].skipped_bytes_pos);
  2697. }
  2698. av_freep(&s->pkt.nals);
  2699. s->pkt.nals_allocated = 0;
  2700. return 0;
  2701. }
  2702. static av_cold int hevc_init_context(AVCodecContext *avctx)
  2703. {
  2704. HEVCContext *s = avctx->priv_data;
  2705. int i;
  2706. s->avctx = avctx;
  2707. s->HEVClc = av_mallocz(sizeof(HEVCLocalContext));
  2708. if (!s->HEVClc)
  2709. goto fail;
  2710. s->HEVClcList[0] = s->HEVClc;
  2711. s->sList[0] = s;
  2712. s->cabac_state = av_malloc(HEVC_CONTEXTS);
  2713. if (!s->cabac_state)
  2714. goto fail;
  2715. s->output_frame = av_frame_alloc();
  2716. if (!s->output_frame)
  2717. goto fail;
  2718. for (i = 0; i < FF_ARRAY_ELEMS(s->DPB); i++) {
  2719. s->DPB[i].frame = av_frame_alloc();
  2720. if (!s->DPB[i].frame)
  2721. goto fail;
  2722. s->DPB[i].tf.f = s->DPB[i].frame;
  2723. }
  2724. s->max_ra = INT_MAX;
  2725. s->md5_ctx = av_md5_alloc();
  2726. if (!s->md5_ctx)
  2727. goto fail;
  2728. ff_bswapdsp_init(&s->bdsp);
  2729. s->context_initialized = 1;
  2730. s->eos = 0;
  2731. ff_hevc_reset_sei(s);
  2732. return 0;
  2733. fail:
  2734. hevc_decode_free(avctx);
  2735. return AVERROR(ENOMEM);
  2736. }
  2737. static int hevc_update_thread_context(AVCodecContext *dst,
  2738. const AVCodecContext *src)
  2739. {
  2740. HEVCContext *s = dst->priv_data;
  2741. HEVCContext *s0 = src->priv_data;
  2742. int i, ret;
  2743. if (!s->context_initialized) {
  2744. ret = hevc_init_context(dst);
  2745. if (ret < 0)
  2746. return ret;
  2747. }
  2748. for (i = 0; i < FF_ARRAY_ELEMS(s->DPB); i++) {
  2749. ff_hevc_unref_frame(s, &s->DPB[i], ~0);
  2750. if (s0->DPB[i].frame->buf[0]) {
  2751. ret = hevc_ref_frame(s, &s->DPB[i], &s0->DPB[i]);
  2752. if (ret < 0)
  2753. return ret;
  2754. }
  2755. }
  2756. if (s->ps.sps != s0->ps.sps)
  2757. s->ps.sps = NULL;
  2758. for (i = 0; i < FF_ARRAY_ELEMS(s->ps.vps_list); i++) {
  2759. av_buffer_unref(&s->ps.vps_list[i]);
  2760. if (s0->ps.vps_list[i]) {
  2761. s->ps.vps_list[i] = av_buffer_ref(s0->ps.vps_list[i]);
  2762. if (!s->ps.vps_list[i])
  2763. return AVERROR(ENOMEM);
  2764. }
  2765. }
  2766. for (i = 0; i < FF_ARRAY_ELEMS(s->ps.sps_list); i++) {
  2767. av_buffer_unref(&s->ps.sps_list[i]);
  2768. if (s0->ps.sps_list[i]) {
  2769. s->ps.sps_list[i] = av_buffer_ref(s0->ps.sps_list[i]);
  2770. if (!s->ps.sps_list[i])
  2771. return AVERROR(ENOMEM);
  2772. }
  2773. }
  2774. for (i = 0; i < FF_ARRAY_ELEMS(s->ps.pps_list); i++) {
  2775. av_buffer_unref(&s->ps.pps_list[i]);
  2776. if (s0->ps.pps_list[i]) {
  2777. s->ps.pps_list[i] = av_buffer_ref(s0->ps.pps_list[i]);
  2778. if (!s->ps.pps_list[i])
  2779. return AVERROR(ENOMEM);
  2780. }
  2781. }
  2782. if (s->ps.sps != s0->ps.sps)
  2783. if ((ret = set_sps(s, s0->ps.sps, src->pix_fmt)) < 0)
  2784. return ret;
  2785. s->seq_decode = s0->seq_decode;
  2786. s->seq_output = s0->seq_output;
  2787. s->pocTid0 = s0->pocTid0;
  2788. s->max_ra = s0->max_ra;
  2789. s->eos = s0->eos;
  2790. s->no_rasl_output_flag = s0->no_rasl_output_flag;
  2791. s->is_nalff = s0->is_nalff;
  2792. s->nal_length_size = s0->nal_length_size;
  2793. s->threads_number = s0->threads_number;
  2794. s->threads_type = s0->threads_type;
  2795. if (s0->eos) {
  2796. s->seq_decode = (s->seq_decode + 1) & 0xff;
  2797. s->max_ra = INT_MAX;
  2798. }
  2799. return 0;
  2800. }
  2801. static int hevc_decode_extradata(HEVCContext *s)
  2802. {
  2803. AVCodecContext *avctx = s->avctx;
  2804. GetByteContext gb;
  2805. int ret, i;
  2806. bytestream2_init(&gb, avctx->extradata, avctx->extradata_size);
  2807. if (avctx->extradata_size > 3 &&
  2808. (avctx->extradata[0] || avctx->extradata[1] ||
  2809. avctx->extradata[2] > 1)) {
  2810. /* It seems the extradata is encoded as hvcC format.
  2811. * Temporarily, we support configurationVersion==0 until 14496-15 3rd
  2812. * is finalized. When finalized, configurationVersion will be 1 and we
  2813. * can recognize hvcC by checking if avctx->extradata[0]==1 or not. */
  2814. int i, j, num_arrays, nal_len_size;
  2815. s->is_nalff = 1;
  2816. bytestream2_skip(&gb, 21);
  2817. nal_len_size = (bytestream2_get_byte(&gb) & 3) + 1;
  2818. num_arrays = bytestream2_get_byte(&gb);
  2819. /* nal units in the hvcC always have length coded with 2 bytes,
  2820. * so put a fake nal_length_size = 2 while parsing them */
  2821. s->nal_length_size = 2;
  2822. /* Decode nal units from hvcC. */
  2823. for (i = 0; i < num_arrays; i++) {
  2824. int type = bytestream2_get_byte(&gb) & 0x3f;
  2825. int cnt = bytestream2_get_be16(&gb);
  2826. for (j = 0; j < cnt; j++) {
  2827. // +2 for the nal size field
  2828. int nalsize = bytestream2_peek_be16(&gb) + 2;
  2829. if (bytestream2_get_bytes_left(&gb) < nalsize) {
  2830. av_log(s->avctx, AV_LOG_ERROR,
  2831. "Invalid NAL unit size in extradata.\n");
  2832. return AVERROR_INVALIDDATA;
  2833. }
  2834. ret = decode_nal_units(s, gb.buffer, nalsize);
  2835. if (ret < 0) {
  2836. av_log(avctx, AV_LOG_ERROR,
  2837. "Decoding nal unit %d %d from hvcC failed\n",
  2838. type, i);
  2839. return ret;
  2840. }
  2841. bytestream2_skip(&gb, nalsize);
  2842. }
  2843. }
  2844. /* Now store right nal length size, that will be used to parse
  2845. * all other nals */
  2846. s->nal_length_size = nal_len_size;
  2847. } else {
  2848. s->is_nalff = 0;
  2849. ret = decode_nal_units(s, avctx->extradata, avctx->extradata_size);
  2850. if (ret < 0)
  2851. return ret;
  2852. }
  2853. /* export stream parameters from the first SPS */
  2854. for (i = 0; i < FF_ARRAY_ELEMS(s->ps.sps_list); i++) {
  2855. if (s->ps.sps_list[i]) {
  2856. const HEVCSPS *sps = (const HEVCSPS*)s->ps.sps_list[i]->data;
  2857. export_stream_params(s->avctx, &s->ps, sps);
  2858. break;
  2859. }
  2860. }
  2861. return 0;
  2862. }
  2863. static av_cold int hevc_decode_init(AVCodecContext *avctx)
  2864. {
  2865. HEVCContext *s = avctx->priv_data;
  2866. int ret;
  2867. avctx->internal->allocate_progress = 1;
  2868. ret = hevc_init_context(avctx);
  2869. if (ret < 0)
  2870. return ret;
  2871. s->enable_parallel_tiles = 0;
  2872. s->picture_struct = 0;
  2873. s->eos = 1;
  2874. if(avctx->active_thread_type & FF_THREAD_SLICE)
  2875. s->threads_number = avctx->thread_count;
  2876. else
  2877. s->threads_number = 1;
  2878. if (avctx->extradata_size > 0 && avctx->extradata) {
  2879. ret = hevc_decode_extradata(s);
  2880. if (ret < 0) {
  2881. hevc_decode_free(avctx);
  2882. return ret;
  2883. }
  2884. }
  2885. if((avctx->active_thread_type & FF_THREAD_FRAME) && avctx->thread_count > 1)
  2886. s->threads_type = FF_THREAD_FRAME;
  2887. else
  2888. s->threads_type = FF_THREAD_SLICE;
  2889. return 0;
  2890. }
  2891. static av_cold int hevc_init_thread_copy(AVCodecContext *avctx)
  2892. {
  2893. HEVCContext *s = avctx->priv_data;
  2894. int ret;
  2895. memset(s, 0, sizeof(*s));
  2896. ret = hevc_init_context(avctx);
  2897. if (ret < 0)
  2898. return ret;
  2899. return 0;
  2900. }
  2901. static void hevc_decode_flush(AVCodecContext *avctx)
  2902. {
  2903. HEVCContext *s = avctx->priv_data;
  2904. ff_hevc_flush_dpb(s);
  2905. s->max_ra = INT_MAX;
  2906. s->eos = 1;
  2907. }
  2908. #define OFFSET(x) offsetof(HEVCContext, x)
  2909. #define PAR (AV_OPT_FLAG_DECODING_PARAM | AV_OPT_FLAG_VIDEO_PARAM)
  2910. static const AVOption options[] = {
  2911. { "apply_defdispwin", "Apply default display window from VUI", OFFSET(apply_defdispwin),
  2912. AV_OPT_TYPE_BOOL, {.i64 = 0}, 0, 1, PAR },
  2913. { "strict-displaywin", "stricly apply default display window size", OFFSET(apply_defdispwin),
  2914. AV_OPT_TYPE_BOOL, {.i64 = 0}, 0, 1, PAR },
  2915. { NULL },
  2916. };
  2917. static const AVClass hevc_decoder_class = {
  2918. .class_name = "HEVC decoder",
  2919. .item_name = av_default_item_name,
  2920. .option = options,
  2921. .version = LIBAVUTIL_VERSION_INT,
  2922. };
  2923. AVCodec ff_hevc_decoder = {
  2924. .name = "hevc",
  2925. .long_name = NULL_IF_CONFIG_SMALL("HEVC (High Efficiency Video Coding)"),
  2926. .type = AVMEDIA_TYPE_VIDEO,
  2927. .id = AV_CODEC_ID_HEVC,
  2928. .priv_data_size = sizeof(HEVCContext),
  2929. .priv_class = &hevc_decoder_class,
  2930. .init = hevc_decode_init,
  2931. .close = hevc_decode_free,
  2932. .decode = hevc_decode_frame,
  2933. .flush = hevc_decode_flush,
  2934. .update_thread_context = hevc_update_thread_context,
  2935. .init_thread_copy = hevc_init_thread_copy,
  2936. .capabilities = AV_CODEC_CAP_DR1 | AV_CODEC_CAP_DELAY |
  2937. AV_CODEC_CAP_SLICE_THREADS | AV_CODEC_CAP_FRAME_THREADS,
  2938. .profiles = NULL_IF_CONFIG_SMALL(ff_hevc_profiles),
  2939. };