You can not select more than 25 topics Topics must start with a letter or number, can include dashes ('-') and can be up to 35 characters long.

4083 lines
160KB

  1. /*
  2. * VP9 compatible video decoder
  3. *
  4. * Copyright (C) 2013 Ronald S. Bultje <rsbultje gmail com>
  5. * Copyright (C) 2013 Clément Bœsch <u pkh me>
  6. *
  7. * This file is part of FFmpeg.
  8. *
  9. * FFmpeg is free software; you can redistribute it and/or
  10. * modify it under the terms of the GNU Lesser General Public
  11. * License as published by the Free Software Foundation; either
  12. * version 2.1 of the License, or (at your option) any later version.
  13. *
  14. * FFmpeg is distributed in the hope that it will be useful,
  15. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  16. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  17. * Lesser General Public License for more details.
  18. *
  19. * You should have received a copy of the GNU Lesser General Public
  20. * License along with FFmpeg; if not, write to the Free Software
  21. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  22. */
  23. #include "avcodec.h"
  24. #include "get_bits.h"
  25. #include "internal.h"
  26. #include "thread.h"
  27. #include "videodsp.h"
  28. #include "vp56.h"
  29. #include "vp9.h"
  30. #include "vp9data.h"
  31. #include "vp9dsp.h"
  32. #include "libavutil/avassert.h"
  33. #define VP9_SYNCCODE 0x498342
  34. enum CompPredMode {
  35. PRED_SINGLEREF,
  36. PRED_COMPREF,
  37. PRED_SWITCHABLE,
  38. };
  39. enum BlockLevel {
  40. BL_64X64,
  41. BL_32X32,
  42. BL_16X16,
  43. BL_8X8,
  44. };
  45. enum BlockSize {
  46. BS_64x64,
  47. BS_64x32,
  48. BS_32x64,
  49. BS_32x32,
  50. BS_32x16,
  51. BS_16x32,
  52. BS_16x16,
  53. BS_16x8,
  54. BS_8x16,
  55. BS_8x8,
  56. BS_8x4,
  57. BS_4x8,
  58. BS_4x4,
  59. N_BS_SIZES,
  60. };
  61. struct VP9mvrefPair {
  62. VP56mv mv[2];
  63. int8_t ref[2];
  64. };
  65. typedef struct VP9Frame {
  66. ThreadFrame tf;
  67. AVBufferRef *extradata;
  68. uint8_t *segmentation_map;
  69. struct VP9mvrefPair *mv;
  70. } VP9Frame;
  71. struct VP9Filter {
  72. uint8_t level[8 * 8];
  73. uint8_t /* bit=col */ mask[2 /* 0=y, 1=uv */][2 /* 0=col, 1=row */]
  74. [8 /* rows */][4 /* 0=16, 1=8, 2=4, 3=inner4 */];
  75. };
  76. typedef struct VP9Block {
  77. uint8_t seg_id, intra, comp, ref[2], mode[4], uvmode, skip;
  78. enum FilterMode filter;
  79. VP56mv mv[4 /* b_idx */][2 /* ref */];
  80. enum BlockSize bs;
  81. enum TxfmMode tx, uvtx;
  82. enum BlockLevel bl;
  83. enum BlockPartition bp;
  84. } VP9Block;
  85. typedef struct VP9Context {
  86. VP9DSPContext dsp;
  87. VideoDSPContext vdsp;
  88. GetBitContext gb;
  89. VP56RangeCoder c;
  90. VP56RangeCoder *c_b;
  91. unsigned c_b_size;
  92. VP9Block *b_base, *b;
  93. int pass, uses_2pass, last_uses_2pass;
  94. int row, row7, col, col7;
  95. uint8_t *dst[3];
  96. ptrdiff_t y_stride, uv_stride;
  97. // bitstream header
  98. uint8_t profile;
  99. uint8_t keyframe, last_keyframe;
  100. uint8_t invisible;
  101. uint8_t use_last_frame_mvs;
  102. uint8_t errorres;
  103. uint8_t colorspace;
  104. uint8_t fullrange;
  105. uint8_t intraonly;
  106. uint8_t resetctx;
  107. uint8_t refreshrefmask;
  108. uint8_t highprecisionmvs;
  109. enum FilterMode filtermode;
  110. uint8_t allowcompinter;
  111. uint8_t fixcompref;
  112. uint8_t refreshctx;
  113. uint8_t parallelmode;
  114. uint8_t framectxid;
  115. uint8_t refidx[3];
  116. uint8_t signbias[3];
  117. uint8_t varcompref[2];
  118. ThreadFrame refs[8], next_refs[8];
  119. #define CUR_FRAME 0
  120. #define LAST_FRAME 1
  121. VP9Frame frames[2];
  122. struct {
  123. uint8_t level;
  124. int8_t sharpness;
  125. uint8_t lim_lut[64];
  126. uint8_t mblim_lut[64];
  127. } filter;
  128. struct {
  129. uint8_t enabled;
  130. int8_t mode[2];
  131. int8_t ref[4];
  132. } lf_delta;
  133. uint8_t yac_qi;
  134. int8_t ydc_qdelta, uvdc_qdelta, uvac_qdelta;
  135. uint8_t lossless;
  136. struct {
  137. uint8_t enabled;
  138. uint8_t temporal;
  139. uint8_t absolute_vals;
  140. uint8_t update_map;
  141. struct {
  142. uint8_t q_enabled;
  143. uint8_t lf_enabled;
  144. uint8_t ref_enabled;
  145. uint8_t skip_enabled;
  146. uint8_t ref_val;
  147. int16_t q_val;
  148. int8_t lf_val;
  149. int16_t qmul[2][2];
  150. uint8_t lflvl[4][2];
  151. } feat[8];
  152. } segmentation;
  153. struct {
  154. unsigned log2_tile_cols, log2_tile_rows;
  155. unsigned tile_cols, tile_rows;
  156. unsigned tile_row_start, tile_row_end, tile_col_start, tile_col_end;
  157. } tiling;
  158. unsigned sb_cols, sb_rows, rows, cols;
  159. struct {
  160. prob_context p;
  161. uint8_t coef[4][2][2][6][6][3];
  162. } prob_ctx[4];
  163. struct {
  164. prob_context p;
  165. uint8_t coef[4][2][2][6][6][11];
  166. uint8_t seg[7];
  167. uint8_t segpred[3];
  168. } prob;
  169. struct {
  170. unsigned y_mode[4][10];
  171. unsigned uv_mode[10][10];
  172. unsigned filter[4][3];
  173. unsigned mv_mode[7][4];
  174. unsigned intra[4][2];
  175. unsigned comp[5][2];
  176. unsigned single_ref[5][2][2];
  177. unsigned comp_ref[5][2];
  178. unsigned tx32p[2][4];
  179. unsigned tx16p[2][3];
  180. unsigned tx8p[2][2];
  181. unsigned skip[3][2];
  182. unsigned mv_joint[4];
  183. struct {
  184. unsigned sign[2];
  185. unsigned classes[11];
  186. unsigned class0[2];
  187. unsigned bits[10][2];
  188. unsigned class0_fp[2][4];
  189. unsigned fp[4];
  190. unsigned class0_hp[2];
  191. unsigned hp[2];
  192. } mv_comp[2];
  193. unsigned partition[4][4][4];
  194. unsigned coef[4][2][2][6][6][3];
  195. unsigned eob[4][2][2][6][6][2];
  196. } counts;
  197. enum TxfmMode txfmmode;
  198. enum CompPredMode comppredmode;
  199. // contextual (left/above) cache
  200. DECLARE_ALIGNED(16, uint8_t, left_y_nnz_ctx)[16];
  201. DECLARE_ALIGNED(16, uint8_t, left_mode_ctx)[16];
  202. DECLARE_ALIGNED(16, VP56mv, left_mv_ctx)[16][2];
  203. DECLARE_ALIGNED(8, uint8_t, left_uv_nnz_ctx)[2][8];
  204. DECLARE_ALIGNED(8, uint8_t, left_partition_ctx)[8];
  205. DECLARE_ALIGNED(8, uint8_t, left_skip_ctx)[8];
  206. DECLARE_ALIGNED(8, uint8_t, left_txfm_ctx)[8];
  207. DECLARE_ALIGNED(8, uint8_t, left_segpred_ctx)[8];
  208. DECLARE_ALIGNED(8, uint8_t, left_intra_ctx)[8];
  209. DECLARE_ALIGNED(8, uint8_t, left_comp_ctx)[8];
  210. DECLARE_ALIGNED(8, uint8_t, left_ref_ctx)[8];
  211. DECLARE_ALIGNED(8, uint8_t, left_filter_ctx)[8];
  212. uint8_t *above_partition_ctx;
  213. uint8_t *above_mode_ctx;
  214. // FIXME maybe merge some of the below in a flags field?
  215. uint8_t *above_y_nnz_ctx;
  216. uint8_t *above_uv_nnz_ctx[2];
  217. uint8_t *above_skip_ctx; // 1bit
  218. uint8_t *above_txfm_ctx; // 2bit
  219. uint8_t *above_segpred_ctx; // 1bit
  220. uint8_t *above_intra_ctx; // 1bit
  221. uint8_t *above_comp_ctx; // 1bit
  222. uint8_t *above_ref_ctx; // 2bit
  223. uint8_t *above_filter_ctx;
  224. VP56mv (*above_mv_ctx)[2];
  225. // whole-frame cache
  226. uint8_t *intra_pred_data[3];
  227. struct VP9Filter *lflvl;
  228. DECLARE_ALIGNED(32, uint8_t, edge_emu_buffer)[71*80];
  229. // block reconstruction intermediates
  230. int block_alloc_using_2pass;
  231. int16_t *block_base, *block, *uvblock_base[2], *uvblock[2];
  232. uint8_t *eob_base, *uveob_base[2], *eob, *uveob[2];
  233. struct { int x, y; } min_mv, max_mv;
  234. DECLARE_ALIGNED(32, uint8_t, tmp_y)[64*64];
  235. DECLARE_ALIGNED(32, uint8_t, tmp_uv)[2][32*32];
  236. } VP9Context;
  237. static const uint8_t bwh_tab[2][N_BS_SIZES][2] = {
  238. {
  239. { 16, 16 }, { 16, 8 }, { 8, 16 }, { 8, 8 }, { 8, 4 }, { 4, 8 },
  240. { 4, 4 }, { 4, 2 }, { 2, 4 }, { 2, 2 }, { 2, 1 }, { 1, 2 }, { 1, 1 },
  241. }, {
  242. { 8, 8 }, { 8, 4 }, { 4, 8 }, { 4, 4 }, { 4, 2 }, { 2, 4 },
  243. { 2, 2 }, { 2, 1 }, { 1, 2 }, { 1, 1 }, { 1, 1 }, { 1, 1 }, { 1, 1 },
  244. }
  245. };
  246. static int vp9_alloc_frame(AVCodecContext *ctx, VP9Frame *f)
  247. {
  248. VP9Context *s = ctx->priv_data;
  249. int ret, sz;
  250. if ((ret = ff_thread_get_buffer(ctx, &f->tf, AV_GET_BUFFER_FLAG_REF)) < 0)
  251. return ret;
  252. sz = 64 * s->sb_cols * s->sb_rows;
  253. if (!(f->extradata = av_buffer_allocz(sz * (1 + sizeof(struct VP9mvrefPair))))) {
  254. ff_thread_release_buffer(ctx, &f->tf);
  255. return AVERROR(ENOMEM);
  256. }
  257. f->segmentation_map = f->extradata->data;
  258. f->mv = (struct VP9mvrefPair *) (f->extradata->data + sz);
  259. // retain segmentation map if it doesn't update
  260. if (s->segmentation.enabled && !s->segmentation.update_map &&
  261. !s->intraonly && !s->keyframe && !s->errorres &&
  262. ctx->active_thread_type != FF_THREAD_FRAME) {
  263. memcpy(f->segmentation_map, s->frames[LAST_FRAME].segmentation_map, sz);
  264. }
  265. return 0;
  266. }
  267. static void vp9_unref_frame(AVCodecContext *ctx, VP9Frame *f)
  268. {
  269. ff_thread_release_buffer(ctx, &f->tf);
  270. av_buffer_unref(&f->extradata);
  271. }
  272. static int vp9_ref_frame(AVCodecContext *ctx, VP9Frame *dst, VP9Frame *src)
  273. {
  274. int res;
  275. if ((res = ff_thread_ref_frame(&dst->tf, &src->tf)) < 0) {
  276. return res;
  277. } else if (!(dst->extradata = av_buffer_ref(src->extradata))) {
  278. vp9_unref_frame(ctx, dst);
  279. return AVERROR(ENOMEM);
  280. }
  281. dst->segmentation_map = src->segmentation_map;
  282. dst->mv = src->mv;
  283. return 0;
  284. }
  285. static int update_size(AVCodecContext *ctx, int w, int h)
  286. {
  287. VP9Context *s = ctx->priv_data;
  288. uint8_t *p;
  289. av_assert0(w > 0 && h > 0);
  290. if (s->intra_pred_data[0] && w == ctx->width && h == ctx->height)
  291. return 0;
  292. ctx->width = w;
  293. ctx->height = h;
  294. s->sb_cols = (w + 63) >> 6;
  295. s->sb_rows = (h + 63) >> 6;
  296. s->cols = (w + 7) >> 3;
  297. s->rows = (h + 7) >> 3;
  298. #define assign(var, type, n) var = (type) p; p += s->sb_cols * (n) * sizeof(*var)
  299. av_freep(&s->intra_pred_data[0]);
  300. p = av_malloc(s->sb_cols * (240 + sizeof(*s->lflvl) + 16 * sizeof(*s->above_mv_ctx)));
  301. if (!p)
  302. return AVERROR(ENOMEM);
  303. assign(s->intra_pred_data[0], uint8_t *, 64);
  304. assign(s->intra_pred_data[1], uint8_t *, 32);
  305. assign(s->intra_pred_data[2], uint8_t *, 32);
  306. assign(s->above_y_nnz_ctx, uint8_t *, 16);
  307. assign(s->above_mode_ctx, uint8_t *, 16);
  308. assign(s->above_mv_ctx, VP56mv(*)[2], 16);
  309. assign(s->above_partition_ctx, uint8_t *, 8);
  310. assign(s->above_skip_ctx, uint8_t *, 8);
  311. assign(s->above_txfm_ctx, uint8_t *, 8);
  312. assign(s->above_uv_nnz_ctx[0], uint8_t *, 8);
  313. assign(s->above_uv_nnz_ctx[1], uint8_t *, 8);
  314. assign(s->above_segpred_ctx, uint8_t *, 8);
  315. assign(s->above_intra_ctx, uint8_t *, 8);
  316. assign(s->above_comp_ctx, uint8_t *, 8);
  317. assign(s->above_ref_ctx, uint8_t *, 8);
  318. assign(s->above_filter_ctx, uint8_t *, 8);
  319. assign(s->lflvl, struct VP9Filter *, 1);
  320. #undef assign
  321. // these will be re-allocated a little later
  322. av_freep(&s->b_base);
  323. av_freep(&s->block_base);
  324. return 0;
  325. }
  326. static int update_block_buffers(AVCodecContext *ctx)
  327. {
  328. VP9Context *s = ctx->priv_data;
  329. if (s->b_base && s->block_base && s->block_alloc_using_2pass == s->uses_2pass)
  330. return 0;
  331. av_free(s->b_base);
  332. av_free(s->block_base);
  333. if (s->uses_2pass) {
  334. int sbs = s->sb_cols * s->sb_rows;
  335. s->b_base = av_malloc_array(s->cols * s->rows, sizeof(VP9Block));
  336. s->block_base = av_mallocz((64 * 64 + 128) * sbs * 3);
  337. if (!s->b_base || !s->block_base)
  338. return AVERROR(ENOMEM);
  339. s->uvblock_base[0] = s->block_base + sbs * 64 * 64;
  340. s->uvblock_base[1] = s->uvblock_base[0] + sbs * 32 * 32;
  341. s->eob_base = (uint8_t *) (s->uvblock_base[1] + sbs * 32 * 32);
  342. s->uveob_base[0] = s->eob_base + 256 * sbs;
  343. s->uveob_base[1] = s->uveob_base[0] + 64 * sbs;
  344. } else {
  345. s->b_base = av_malloc(sizeof(VP9Block));
  346. s->block_base = av_mallocz((64 * 64 + 128) * 3);
  347. if (!s->b_base || !s->block_base)
  348. return AVERROR(ENOMEM);
  349. s->uvblock_base[0] = s->block_base + 64 * 64;
  350. s->uvblock_base[1] = s->uvblock_base[0] + 32 * 32;
  351. s->eob_base = (uint8_t *) (s->uvblock_base[1] + 32 * 32);
  352. s->uveob_base[0] = s->eob_base + 256;
  353. s->uveob_base[1] = s->uveob_base[0] + 64;
  354. }
  355. s->block_alloc_using_2pass = s->uses_2pass;
  356. return 0;
  357. }
  358. // for some reason the sign bit is at the end, not the start, of a bit sequence
  359. static av_always_inline int get_sbits_inv(GetBitContext *gb, int n)
  360. {
  361. int v = get_bits(gb, n);
  362. return get_bits1(gb) ? -v : v;
  363. }
  364. static av_always_inline int inv_recenter_nonneg(int v, int m)
  365. {
  366. return v > 2 * m ? v : v & 1 ? m - ((v + 1) >> 1) : m + (v >> 1);
  367. }
  368. // differential forward probability updates
  369. static int update_prob(VP56RangeCoder *c, int p)
  370. {
  371. static const int inv_map_table[254] = {
  372. 7, 20, 33, 46, 59, 72, 85, 98, 111, 124, 137, 150, 163, 176,
  373. 189, 202, 215, 228, 241, 254, 1, 2, 3, 4, 5, 6, 8, 9,
  374. 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 21, 22, 23, 24,
  375. 25, 26, 27, 28, 29, 30, 31, 32, 34, 35, 36, 37, 38, 39,
  376. 40, 41, 42, 43, 44, 45, 47, 48, 49, 50, 51, 52, 53, 54,
  377. 55, 56, 57, 58, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69,
  378. 70, 71, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84,
  379. 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 99, 100,
  380. 101, 102, 103, 104, 105, 106, 107, 108, 109, 110, 112, 113, 114, 115,
  381. 116, 117, 118, 119, 120, 121, 122, 123, 125, 126, 127, 128, 129, 130,
  382. 131, 132, 133, 134, 135, 136, 138, 139, 140, 141, 142, 143, 144, 145,
  383. 146, 147, 148, 149, 151, 152, 153, 154, 155, 156, 157, 158, 159, 160,
  384. 161, 162, 164, 165, 166, 167, 168, 169, 170, 171, 172, 173, 174, 175,
  385. 177, 178, 179, 180, 181, 182, 183, 184, 185, 186, 187, 188, 190, 191,
  386. 192, 193, 194, 195, 196, 197, 198, 199, 200, 201, 203, 204, 205, 206,
  387. 207, 208, 209, 210, 211, 212, 213, 214, 216, 217, 218, 219, 220, 221,
  388. 222, 223, 224, 225, 226, 227, 229, 230, 231, 232, 233, 234, 235, 236,
  389. 237, 238, 239, 240, 242, 243, 244, 245, 246, 247, 248, 249, 250, 251,
  390. 252, 253,
  391. };
  392. int d;
  393. /* This code is trying to do a differential probability update. For a
  394. * current probability A in the range [1, 255], the difference to a new
  395. * probability of any value can be expressed differentially as 1-A,255-A
  396. * where some part of this (absolute range) exists both in positive as
  397. * well as the negative part, whereas another part only exists in one
  398. * half. We're trying to code this shared part differentially, i.e.
  399. * times two where the value of the lowest bit specifies the sign, and
  400. * the single part is then coded on top of this. This absolute difference
  401. * then again has a value of [0,254], but a bigger value in this range
  402. * indicates that we're further away from the original value A, so we
  403. * can code this as a VLC code, since higher values are increasingly
  404. * unlikely. The first 20 values in inv_map_table[] allow 'cheap, rough'
  405. * updates vs. the 'fine, exact' updates further down the range, which
  406. * adds one extra dimension to this differential update model. */
  407. if (!vp8_rac_get(c)) {
  408. d = vp8_rac_get_uint(c, 4) + 0;
  409. } else if (!vp8_rac_get(c)) {
  410. d = vp8_rac_get_uint(c, 4) + 16;
  411. } else if (!vp8_rac_get(c)) {
  412. d = vp8_rac_get_uint(c, 5) + 32;
  413. } else {
  414. d = vp8_rac_get_uint(c, 7);
  415. if (d >= 65)
  416. d = (d << 1) - 65 + vp8_rac_get(c);
  417. d += 64;
  418. }
  419. return p <= 128 ? 1 + inv_recenter_nonneg(inv_map_table[d], p - 1) :
  420. 255 - inv_recenter_nonneg(inv_map_table[d], 255 - p);
  421. }
  422. static int decode_frame_header(AVCodecContext *ctx,
  423. const uint8_t *data, int size, int *ref)
  424. {
  425. VP9Context *s = ctx->priv_data;
  426. int c, i, j, k, l, m, n, w, h, max, size2, res, sharp;
  427. int last_invisible;
  428. const uint8_t *data2;
  429. /* general header */
  430. if ((res = init_get_bits8(&s->gb, data, size)) < 0) {
  431. av_log(ctx, AV_LOG_ERROR, "Failed to initialize bitstream reader\n");
  432. return res;
  433. }
  434. if (get_bits(&s->gb, 2) != 0x2) { // frame marker
  435. av_log(ctx, AV_LOG_ERROR, "Invalid frame marker\n");
  436. return AVERROR_INVALIDDATA;
  437. }
  438. s->profile = get_bits1(&s->gb);
  439. if (get_bits1(&s->gb)) { // reserved bit
  440. av_log(ctx, AV_LOG_ERROR, "Reserved bit should be zero\n");
  441. return AVERROR_INVALIDDATA;
  442. }
  443. if (get_bits1(&s->gb)) {
  444. *ref = get_bits(&s->gb, 3);
  445. return 0;
  446. }
  447. s->last_uses_2pass = s->uses_2pass;
  448. s->last_keyframe = s->keyframe;
  449. s->keyframe = !get_bits1(&s->gb);
  450. last_invisible = s->invisible;
  451. s->invisible = !get_bits1(&s->gb);
  452. s->errorres = get_bits1(&s->gb);
  453. s->use_last_frame_mvs = !s->errorres && !last_invisible;
  454. if (s->keyframe) {
  455. if (get_bits_long(&s->gb, 24) != VP9_SYNCCODE) { // synccode
  456. av_log(ctx, AV_LOG_ERROR, "Invalid sync code\n");
  457. return AVERROR_INVALIDDATA;
  458. }
  459. s->colorspace = get_bits(&s->gb, 3);
  460. if (s->colorspace == 7) { // RGB = profile 1
  461. av_log(ctx, AV_LOG_ERROR, "RGB not supported in profile 0\n");
  462. return AVERROR_INVALIDDATA;
  463. }
  464. s->fullrange = get_bits1(&s->gb);
  465. // for profile 1, here follows the subsampling bits
  466. s->refreshrefmask = 0xff;
  467. w = get_bits(&s->gb, 16) + 1;
  468. h = get_bits(&s->gb, 16) + 1;
  469. if (get_bits1(&s->gb)) // display size
  470. skip_bits(&s->gb, 32);
  471. } else {
  472. s->intraonly = s->invisible ? get_bits1(&s->gb) : 0;
  473. s->resetctx = s->errorres ? 0 : get_bits(&s->gb, 2);
  474. if (s->intraonly) {
  475. if (get_bits_long(&s->gb, 24) != VP9_SYNCCODE) { // synccode
  476. av_log(ctx, AV_LOG_ERROR, "Invalid sync code\n");
  477. return AVERROR_INVALIDDATA;
  478. }
  479. s->refreshrefmask = get_bits(&s->gb, 8);
  480. w = get_bits(&s->gb, 16) + 1;
  481. h = get_bits(&s->gb, 16) + 1;
  482. if (get_bits1(&s->gb)) // display size
  483. skip_bits(&s->gb, 32);
  484. } else {
  485. s->refreshrefmask = get_bits(&s->gb, 8);
  486. s->refidx[0] = get_bits(&s->gb, 3);
  487. s->signbias[0] = get_bits1(&s->gb);
  488. s->refidx[1] = get_bits(&s->gb, 3);
  489. s->signbias[1] = get_bits1(&s->gb);
  490. s->refidx[2] = get_bits(&s->gb, 3);
  491. s->signbias[2] = get_bits1(&s->gb);
  492. if (!s->refs[s->refidx[0]].f->data[0] ||
  493. !s->refs[s->refidx[1]].f->data[0] ||
  494. !s->refs[s->refidx[2]].f->data[0]) {
  495. av_log(ctx, AV_LOG_ERROR, "Not all references are available\n");
  496. return AVERROR_INVALIDDATA;
  497. }
  498. if (get_bits1(&s->gb)) {
  499. w = s->refs[s->refidx[0]].f->width;
  500. h = s->refs[s->refidx[0]].f->height;
  501. } else if (get_bits1(&s->gb)) {
  502. w = s->refs[s->refidx[1]].f->width;
  503. h = s->refs[s->refidx[1]].f->height;
  504. } else if (get_bits1(&s->gb)) {
  505. w = s->refs[s->refidx[2]].f->width;
  506. h = s->refs[s->refidx[2]].f->height;
  507. } else {
  508. w = get_bits(&s->gb, 16) + 1;
  509. h = get_bits(&s->gb, 16) + 1;
  510. }
  511. // Note that in this code, "CUR_FRAME" is actually before we
  512. // have formally allocated a frame, and thus actually represents
  513. // the _last_ frame
  514. s->use_last_frame_mvs &= s->frames[CUR_FRAME].tf.f->width == w &&
  515. s->frames[CUR_FRAME].tf.f->height == h;
  516. if (get_bits1(&s->gb)) // display size
  517. skip_bits(&s->gb, 32);
  518. s->highprecisionmvs = get_bits1(&s->gb);
  519. s->filtermode = get_bits1(&s->gb) ? FILTER_SWITCHABLE :
  520. get_bits(&s->gb, 2);
  521. s->allowcompinter = s->signbias[0] != s->signbias[1] ||
  522. s->signbias[0] != s->signbias[2];
  523. if (s->allowcompinter) {
  524. if (s->signbias[0] == s->signbias[1]) {
  525. s->fixcompref = 2;
  526. s->varcompref[0] = 0;
  527. s->varcompref[1] = 1;
  528. } else if (s->signbias[0] == s->signbias[2]) {
  529. s->fixcompref = 1;
  530. s->varcompref[0] = 0;
  531. s->varcompref[1] = 2;
  532. } else {
  533. s->fixcompref = 0;
  534. s->varcompref[0] = 1;
  535. s->varcompref[1] = 2;
  536. }
  537. }
  538. }
  539. }
  540. s->refreshctx = s->errorres ? 0 : get_bits1(&s->gb);
  541. s->parallelmode = s->errorres ? 1 : get_bits1(&s->gb);
  542. s->framectxid = c = get_bits(&s->gb, 2);
  543. /* loopfilter header data */
  544. s->filter.level = get_bits(&s->gb, 6);
  545. sharp = get_bits(&s->gb, 3);
  546. // if sharpness changed, reinit lim/mblim LUTs. if it didn't change, keep
  547. // the old cache values since they are still valid
  548. if (s->filter.sharpness != sharp)
  549. memset(s->filter.lim_lut, 0, sizeof(s->filter.lim_lut));
  550. s->filter.sharpness = sharp;
  551. if ((s->lf_delta.enabled = get_bits1(&s->gb))) {
  552. if (get_bits1(&s->gb)) {
  553. for (i = 0; i < 4; i++)
  554. if (get_bits1(&s->gb))
  555. s->lf_delta.ref[i] = get_sbits_inv(&s->gb, 6);
  556. for (i = 0; i < 2; i++)
  557. if (get_bits1(&s->gb))
  558. s->lf_delta.mode[i] = get_sbits_inv(&s->gb, 6);
  559. }
  560. } else {
  561. memset(&s->lf_delta, 0, sizeof(s->lf_delta));
  562. }
  563. /* quantization header data */
  564. s->yac_qi = get_bits(&s->gb, 8);
  565. s->ydc_qdelta = get_bits1(&s->gb) ? get_sbits_inv(&s->gb, 4) : 0;
  566. s->uvdc_qdelta = get_bits1(&s->gb) ? get_sbits_inv(&s->gb, 4) : 0;
  567. s->uvac_qdelta = get_bits1(&s->gb) ? get_sbits_inv(&s->gb, 4) : 0;
  568. s->lossless = s->yac_qi == 0 && s->ydc_qdelta == 0 &&
  569. s->uvdc_qdelta == 0 && s->uvac_qdelta == 0;
  570. /* segmentation header info */
  571. if ((s->segmentation.enabled = get_bits1(&s->gb))) {
  572. if ((s->segmentation.update_map = get_bits1(&s->gb))) {
  573. for (i = 0; i < 7; i++)
  574. s->prob.seg[i] = get_bits1(&s->gb) ?
  575. get_bits(&s->gb, 8) : 255;
  576. if ((s->segmentation.temporal = get_bits1(&s->gb))) {
  577. for (i = 0; i < 3; i++)
  578. s->prob.segpred[i] = get_bits1(&s->gb) ?
  579. get_bits(&s->gb, 8) : 255;
  580. }
  581. }
  582. if ((!s->segmentation.update_map || s->segmentation.temporal) &&
  583. (w != s->frames[CUR_FRAME].tf.f->width ||
  584. h != s->frames[CUR_FRAME].tf.f->height)) {
  585. av_log(ctx, AV_LOG_ERROR,
  586. "Reference segmap (temp=%d,update=%d) enabled on size-change!\n",
  587. s->segmentation.temporal, s->segmentation.update_map);
  588. return AVERROR_INVALIDDATA;
  589. }
  590. if (get_bits1(&s->gb)) {
  591. s->segmentation.absolute_vals = get_bits1(&s->gb);
  592. for (i = 0; i < 8; i++) {
  593. if ((s->segmentation.feat[i].q_enabled = get_bits1(&s->gb)))
  594. s->segmentation.feat[i].q_val = get_sbits_inv(&s->gb, 8);
  595. if ((s->segmentation.feat[i].lf_enabled = get_bits1(&s->gb)))
  596. s->segmentation.feat[i].lf_val = get_sbits_inv(&s->gb, 6);
  597. if ((s->segmentation.feat[i].ref_enabled = get_bits1(&s->gb)))
  598. s->segmentation.feat[i].ref_val = get_bits(&s->gb, 2);
  599. s->segmentation.feat[i].skip_enabled = get_bits1(&s->gb);
  600. }
  601. }
  602. } else {
  603. s->segmentation.feat[0].q_enabled = 0;
  604. s->segmentation.feat[0].lf_enabled = 0;
  605. s->segmentation.feat[0].skip_enabled = 0;
  606. s->segmentation.feat[0].ref_enabled = 0;
  607. }
  608. // set qmul[] based on Y/UV, AC/DC and segmentation Q idx deltas
  609. for (i = 0; i < (s->segmentation.enabled ? 8 : 1); i++) {
  610. int qyac, qydc, quvac, quvdc, lflvl, sh;
  611. if (s->segmentation.feat[i].q_enabled) {
  612. if (s->segmentation.absolute_vals)
  613. qyac = s->segmentation.feat[i].q_val;
  614. else
  615. qyac = s->yac_qi + s->segmentation.feat[i].q_val;
  616. } else {
  617. qyac = s->yac_qi;
  618. }
  619. qydc = av_clip_uintp2(qyac + s->ydc_qdelta, 8);
  620. quvdc = av_clip_uintp2(qyac + s->uvdc_qdelta, 8);
  621. quvac = av_clip_uintp2(qyac + s->uvac_qdelta, 8);
  622. qyac = av_clip_uintp2(qyac, 8);
  623. s->segmentation.feat[i].qmul[0][0] = vp9_dc_qlookup[qydc];
  624. s->segmentation.feat[i].qmul[0][1] = vp9_ac_qlookup[qyac];
  625. s->segmentation.feat[i].qmul[1][0] = vp9_dc_qlookup[quvdc];
  626. s->segmentation.feat[i].qmul[1][1] = vp9_ac_qlookup[quvac];
  627. sh = s->filter.level >= 32;
  628. if (s->segmentation.feat[i].lf_enabled) {
  629. if (s->segmentation.absolute_vals)
  630. lflvl = s->segmentation.feat[i].lf_val;
  631. else
  632. lflvl = s->filter.level + s->segmentation.feat[i].lf_val;
  633. } else {
  634. lflvl = s->filter.level;
  635. }
  636. s->segmentation.feat[i].lflvl[0][0] =
  637. s->segmentation.feat[i].lflvl[0][1] =
  638. av_clip_uintp2(lflvl + (s->lf_delta.ref[0] << sh), 6);
  639. for (j = 1; j < 4; j++) {
  640. s->segmentation.feat[i].lflvl[j][0] =
  641. av_clip_uintp2(lflvl + ((s->lf_delta.ref[j] +
  642. s->lf_delta.mode[0]) << sh), 6);
  643. s->segmentation.feat[i].lflvl[j][1] =
  644. av_clip_uintp2(lflvl + ((s->lf_delta.ref[j] +
  645. s->lf_delta.mode[1]) << sh), 6);
  646. }
  647. }
  648. /* tiling info */
  649. if ((res = update_size(ctx, w, h)) < 0) {
  650. av_log(ctx, AV_LOG_ERROR, "Failed to initialize decoder for %dx%d\n", w, h);
  651. return res;
  652. }
  653. for (s->tiling.log2_tile_cols = 0;
  654. (s->sb_cols >> s->tiling.log2_tile_cols) > 64;
  655. s->tiling.log2_tile_cols++) ;
  656. for (max = 0; (s->sb_cols >> max) >= 4; max++) ;
  657. max = FFMAX(0, max - 1);
  658. while (max > s->tiling.log2_tile_cols) {
  659. if (get_bits1(&s->gb))
  660. s->tiling.log2_tile_cols++;
  661. else
  662. break;
  663. }
  664. s->tiling.log2_tile_rows = decode012(&s->gb);
  665. s->tiling.tile_rows = 1 << s->tiling.log2_tile_rows;
  666. if (s->tiling.tile_cols != (1 << s->tiling.log2_tile_cols)) {
  667. s->tiling.tile_cols = 1 << s->tiling.log2_tile_cols;
  668. s->c_b = av_fast_realloc(s->c_b, &s->c_b_size,
  669. sizeof(VP56RangeCoder) * s->tiling.tile_cols);
  670. if (!s->c_b) {
  671. av_log(ctx, AV_LOG_ERROR, "Ran out of memory during range coder init\n");
  672. return AVERROR(ENOMEM);
  673. }
  674. }
  675. if (s->keyframe || s->errorres || s->intraonly) {
  676. s->prob_ctx[0].p = s->prob_ctx[1].p = s->prob_ctx[2].p =
  677. s->prob_ctx[3].p = vp9_default_probs;
  678. memcpy(s->prob_ctx[0].coef, vp9_default_coef_probs,
  679. sizeof(vp9_default_coef_probs));
  680. memcpy(s->prob_ctx[1].coef, vp9_default_coef_probs,
  681. sizeof(vp9_default_coef_probs));
  682. memcpy(s->prob_ctx[2].coef, vp9_default_coef_probs,
  683. sizeof(vp9_default_coef_probs));
  684. memcpy(s->prob_ctx[3].coef, vp9_default_coef_probs,
  685. sizeof(vp9_default_coef_probs));
  686. }
  687. // next 16 bits is size of the rest of the header (arith-coded)
  688. size2 = get_bits(&s->gb, 16);
  689. data2 = align_get_bits(&s->gb);
  690. if (size2 > size - (data2 - data)) {
  691. av_log(ctx, AV_LOG_ERROR, "Invalid compressed header size\n");
  692. return AVERROR_INVALIDDATA;
  693. }
  694. ff_vp56_init_range_decoder(&s->c, data2, size2);
  695. if (vp56_rac_get_prob_branchy(&s->c, 128)) { // marker bit
  696. av_log(ctx, AV_LOG_ERROR, "Marker bit was set\n");
  697. return AVERROR_INVALIDDATA;
  698. }
  699. if (s->keyframe || s->intraonly) {
  700. memset(s->counts.coef, 0, sizeof(s->counts.coef) + sizeof(s->counts.eob));
  701. } else {
  702. memset(&s->counts, 0, sizeof(s->counts));
  703. }
  704. // FIXME is it faster to not copy here, but do it down in the fw updates
  705. // as explicit copies if the fw update is missing (and skip the copy upon
  706. // fw update)?
  707. s->prob.p = s->prob_ctx[c].p;
  708. // txfm updates
  709. if (s->lossless) {
  710. s->txfmmode = TX_4X4;
  711. } else {
  712. s->txfmmode = vp8_rac_get_uint(&s->c, 2);
  713. if (s->txfmmode == 3)
  714. s->txfmmode += vp8_rac_get(&s->c);
  715. if (s->txfmmode == TX_SWITCHABLE) {
  716. for (i = 0; i < 2; i++)
  717. if (vp56_rac_get_prob_branchy(&s->c, 252))
  718. s->prob.p.tx8p[i] = update_prob(&s->c, s->prob.p.tx8p[i]);
  719. for (i = 0; i < 2; i++)
  720. for (j = 0; j < 2; j++)
  721. if (vp56_rac_get_prob_branchy(&s->c, 252))
  722. s->prob.p.tx16p[i][j] =
  723. update_prob(&s->c, s->prob.p.tx16p[i][j]);
  724. for (i = 0; i < 2; i++)
  725. for (j = 0; j < 3; j++)
  726. if (vp56_rac_get_prob_branchy(&s->c, 252))
  727. s->prob.p.tx32p[i][j] =
  728. update_prob(&s->c, s->prob.p.tx32p[i][j]);
  729. }
  730. }
  731. // coef updates
  732. for (i = 0; i < 4; i++) {
  733. uint8_t (*ref)[2][6][6][3] = s->prob_ctx[c].coef[i];
  734. if (vp8_rac_get(&s->c)) {
  735. for (j = 0; j < 2; j++)
  736. for (k = 0; k < 2; k++)
  737. for (l = 0; l < 6; l++)
  738. for (m = 0; m < 6; m++) {
  739. uint8_t *p = s->prob.coef[i][j][k][l][m];
  740. uint8_t *r = ref[j][k][l][m];
  741. if (m >= 3 && l == 0) // dc only has 3 pt
  742. break;
  743. for (n = 0; n < 3; n++) {
  744. if (vp56_rac_get_prob_branchy(&s->c, 252)) {
  745. p[n] = update_prob(&s->c, r[n]);
  746. } else {
  747. p[n] = r[n];
  748. }
  749. }
  750. p[3] = 0;
  751. }
  752. } else {
  753. for (j = 0; j < 2; j++)
  754. for (k = 0; k < 2; k++)
  755. for (l = 0; l < 6; l++)
  756. for (m = 0; m < 6; m++) {
  757. uint8_t *p = s->prob.coef[i][j][k][l][m];
  758. uint8_t *r = ref[j][k][l][m];
  759. if (m > 3 && l == 0) // dc only has 3 pt
  760. break;
  761. memcpy(p, r, 3);
  762. p[3] = 0;
  763. }
  764. }
  765. if (s->txfmmode == i)
  766. break;
  767. }
  768. // mode updates
  769. for (i = 0; i < 3; i++)
  770. if (vp56_rac_get_prob_branchy(&s->c, 252))
  771. s->prob.p.skip[i] = update_prob(&s->c, s->prob.p.skip[i]);
  772. if (!s->keyframe && !s->intraonly) {
  773. for (i = 0; i < 7; i++)
  774. for (j = 0; j < 3; j++)
  775. if (vp56_rac_get_prob_branchy(&s->c, 252))
  776. s->prob.p.mv_mode[i][j] =
  777. update_prob(&s->c, s->prob.p.mv_mode[i][j]);
  778. if (s->filtermode == FILTER_SWITCHABLE)
  779. for (i = 0; i < 4; i++)
  780. for (j = 0; j < 2; j++)
  781. if (vp56_rac_get_prob_branchy(&s->c, 252))
  782. s->prob.p.filter[i][j] =
  783. update_prob(&s->c, s->prob.p.filter[i][j]);
  784. for (i = 0; i < 4; i++)
  785. if (vp56_rac_get_prob_branchy(&s->c, 252))
  786. s->prob.p.intra[i] = update_prob(&s->c, s->prob.p.intra[i]);
  787. if (s->allowcompinter) {
  788. s->comppredmode = vp8_rac_get(&s->c);
  789. if (s->comppredmode)
  790. s->comppredmode += vp8_rac_get(&s->c);
  791. if (s->comppredmode == PRED_SWITCHABLE)
  792. for (i = 0; i < 5; i++)
  793. if (vp56_rac_get_prob_branchy(&s->c, 252))
  794. s->prob.p.comp[i] =
  795. update_prob(&s->c, s->prob.p.comp[i]);
  796. } else {
  797. s->comppredmode = PRED_SINGLEREF;
  798. }
  799. if (s->comppredmode != PRED_COMPREF) {
  800. for (i = 0; i < 5; i++) {
  801. if (vp56_rac_get_prob_branchy(&s->c, 252))
  802. s->prob.p.single_ref[i][0] =
  803. update_prob(&s->c, s->prob.p.single_ref[i][0]);
  804. if (vp56_rac_get_prob_branchy(&s->c, 252))
  805. s->prob.p.single_ref[i][1] =
  806. update_prob(&s->c, s->prob.p.single_ref[i][1]);
  807. }
  808. }
  809. if (s->comppredmode != PRED_SINGLEREF) {
  810. for (i = 0; i < 5; i++)
  811. if (vp56_rac_get_prob_branchy(&s->c, 252))
  812. s->prob.p.comp_ref[i] =
  813. update_prob(&s->c, s->prob.p.comp_ref[i]);
  814. }
  815. for (i = 0; i < 4; i++)
  816. for (j = 0; j < 9; j++)
  817. if (vp56_rac_get_prob_branchy(&s->c, 252))
  818. s->prob.p.y_mode[i][j] =
  819. update_prob(&s->c, s->prob.p.y_mode[i][j]);
  820. for (i = 0; i < 4; i++)
  821. for (j = 0; j < 4; j++)
  822. for (k = 0; k < 3; k++)
  823. if (vp56_rac_get_prob_branchy(&s->c, 252))
  824. s->prob.p.partition[3 - i][j][k] =
  825. update_prob(&s->c, s->prob.p.partition[3 - i][j][k]);
  826. // mv fields don't use the update_prob subexp model for some reason
  827. for (i = 0; i < 3; i++)
  828. if (vp56_rac_get_prob_branchy(&s->c, 252))
  829. s->prob.p.mv_joint[i] = (vp8_rac_get_uint(&s->c, 7) << 1) | 1;
  830. for (i = 0; i < 2; i++) {
  831. if (vp56_rac_get_prob_branchy(&s->c, 252))
  832. s->prob.p.mv_comp[i].sign = (vp8_rac_get_uint(&s->c, 7) << 1) | 1;
  833. for (j = 0; j < 10; j++)
  834. if (vp56_rac_get_prob_branchy(&s->c, 252))
  835. s->prob.p.mv_comp[i].classes[j] =
  836. (vp8_rac_get_uint(&s->c, 7) << 1) | 1;
  837. if (vp56_rac_get_prob_branchy(&s->c, 252))
  838. s->prob.p.mv_comp[i].class0 = (vp8_rac_get_uint(&s->c, 7) << 1) | 1;
  839. for (j = 0; j < 10; j++)
  840. if (vp56_rac_get_prob_branchy(&s->c, 252))
  841. s->prob.p.mv_comp[i].bits[j] =
  842. (vp8_rac_get_uint(&s->c, 7) << 1) | 1;
  843. }
  844. for (i = 0; i < 2; i++) {
  845. for (j = 0; j < 2; j++)
  846. for (k = 0; k < 3; k++)
  847. if (vp56_rac_get_prob_branchy(&s->c, 252))
  848. s->prob.p.mv_comp[i].class0_fp[j][k] =
  849. (vp8_rac_get_uint(&s->c, 7) << 1) | 1;
  850. for (j = 0; j < 3; j++)
  851. if (vp56_rac_get_prob_branchy(&s->c, 252))
  852. s->prob.p.mv_comp[i].fp[j] =
  853. (vp8_rac_get_uint(&s->c, 7) << 1) | 1;
  854. }
  855. if (s->highprecisionmvs) {
  856. for (i = 0; i < 2; i++) {
  857. if (vp56_rac_get_prob_branchy(&s->c, 252))
  858. s->prob.p.mv_comp[i].class0_hp =
  859. (vp8_rac_get_uint(&s->c, 7) << 1) | 1;
  860. if (vp56_rac_get_prob_branchy(&s->c, 252))
  861. s->prob.p.mv_comp[i].hp =
  862. (vp8_rac_get_uint(&s->c, 7) << 1) | 1;
  863. }
  864. }
  865. }
  866. return (data2 - data) + size2;
  867. }
  868. static av_always_inline void clamp_mv(VP56mv *dst, const VP56mv *src,
  869. VP9Context *s)
  870. {
  871. dst->x = av_clip(src->x, s->min_mv.x, s->max_mv.x);
  872. dst->y = av_clip(src->y, s->min_mv.y, s->max_mv.y);
  873. }
  874. static void find_ref_mvs(VP9Context *s,
  875. VP56mv *pmv, int ref, int z, int idx, int sb)
  876. {
  877. static const int8_t mv_ref_blk_off[N_BS_SIZES][8][2] = {
  878. [BS_64x64] = {{ 3, -1 }, { -1, 3 }, { 4, -1 }, { -1, 4 },
  879. { -1, -1 }, { 0, -1 }, { -1, 0 }, { 6, -1 }},
  880. [BS_64x32] = {{ 0, -1 }, { -1, 0 }, { 4, -1 }, { -1, 2 },
  881. { -1, -1 }, { 0, -3 }, { -3, 0 }, { 2, -1 }},
  882. [BS_32x64] = {{ -1, 0 }, { 0, -1 }, { -1, 4 }, { 2, -1 },
  883. { -1, -1 }, { -3, 0 }, { 0, -3 }, { -1, 2 }},
  884. [BS_32x32] = {{ 1, -1 }, { -1, 1 }, { 2, -1 }, { -1, 2 },
  885. { -1, -1 }, { 0, -3 }, { -3, 0 }, { -3, -3 }},
  886. [BS_32x16] = {{ 0, -1 }, { -1, 0 }, { 2, -1 }, { -1, -1 },
  887. { -1, 1 }, { 0, -3 }, { -3, 0 }, { -3, -3 }},
  888. [BS_16x32] = {{ -1, 0 }, { 0, -1 }, { -1, 2 }, { -1, -1 },
  889. { 1, -1 }, { -3, 0 }, { 0, -3 }, { -3, -3 }},
  890. [BS_16x16] = {{ 0, -1 }, { -1, 0 }, { 1, -1 }, { -1, 1 },
  891. { -1, -1 }, { 0, -3 }, { -3, 0 }, { -3, -3 }},
  892. [BS_16x8] = {{ 0, -1 }, { -1, 0 }, { 1, -1 }, { -1, -1 },
  893. { 0, -2 }, { -2, 0 }, { -2, -1 }, { -1, -2 }},
  894. [BS_8x16] = {{ -1, 0 }, { 0, -1 }, { -1, 1 }, { -1, -1 },
  895. { -2, 0 }, { 0, -2 }, { -1, -2 }, { -2, -1 }},
  896. [BS_8x8] = {{ 0, -1 }, { -1, 0 }, { -1, -1 }, { 0, -2 },
  897. { -2, 0 }, { -1, -2 }, { -2, -1 }, { -2, -2 }},
  898. [BS_8x4] = {{ 0, -1 }, { -1, 0 }, { -1, -1 }, { 0, -2 },
  899. { -2, 0 }, { -1, -2 }, { -2, -1 }, { -2, -2 }},
  900. [BS_4x8] = {{ 0, -1 }, { -1, 0 }, { -1, -1 }, { 0, -2 },
  901. { -2, 0 }, { -1, -2 }, { -2, -1 }, { -2, -2 }},
  902. [BS_4x4] = {{ 0, -1 }, { -1, 0 }, { -1, -1 }, { 0, -2 },
  903. { -2, 0 }, { -1, -2 }, { -2, -1 }, { -2, -2 }},
  904. };
  905. VP9Block *b = s->b;
  906. int row = s->row, col = s->col, row7 = s->row7;
  907. const int8_t (*p)[2] = mv_ref_blk_off[b->bs];
  908. #define INVALID_MV 0x80008000U
  909. uint32_t mem = INVALID_MV;
  910. int i;
  911. #define RETURN_DIRECT_MV(mv) \
  912. do { \
  913. uint32_t m = AV_RN32A(&mv); \
  914. if (!idx) { \
  915. AV_WN32A(pmv, m); \
  916. return; \
  917. } else if (mem == INVALID_MV) { \
  918. mem = m; \
  919. } else if (m != mem) { \
  920. AV_WN32A(pmv, m); \
  921. return; \
  922. } \
  923. } while (0)
  924. if (sb >= 0) {
  925. if (sb == 2 || sb == 1) {
  926. RETURN_DIRECT_MV(b->mv[0][z]);
  927. } else if (sb == 3) {
  928. RETURN_DIRECT_MV(b->mv[2][z]);
  929. RETURN_DIRECT_MV(b->mv[1][z]);
  930. RETURN_DIRECT_MV(b->mv[0][z]);
  931. }
  932. #define RETURN_MV(mv) \
  933. do { \
  934. if (sb > 0) { \
  935. VP56mv tmp; \
  936. uint32_t m; \
  937. clamp_mv(&tmp, &mv, s); \
  938. m = AV_RN32A(&tmp); \
  939. if (!idx) { \
  940. AV_WN32A(pmv, m); \
  941. return; \
  942. } else if (mem == INVALID_MV) { \
  943. mem = m; \
  944. } else if (m != mem) { \
  945. AV_WN32A(pmv, m); \
  946. return; \
  947. } \
  948. } else { \
  949. uint32_t m = AV_RN32A(&mv); \
  950. if (!idx) { \
  951. clamp_mv(pmv, &mv, s); \
  952. return; \
  953. } else if (mem == INVALID_MV) { \
  954. mem = m; \
  955. } else if (m != mem) { \
  956. clamp_mv(pmv, &mv, s); \
  957. return; \
  958. } \
  959. } \
  960. } while (0)
  961. if (row > 0) {
  962. struct VP9mvrefPair *mv = &s->frames[CUR_FRAME].mv[(row - 1) * s->sb_cols * 8 + col];
  963. if (mv->ref[0] == ref) {
  964. RETURN_MV(s->above_mv_ctx[2 * col + (sb & 1)][0]);
  965. } else if (mv->ref[1] == ref) {
  966. RETURN_MV(s->above_mv_ctx[2 * col + (sb & 1)][1]);
  967. }
  968. }
  969. if (col > s->tiling.tile_col_start) {
  970. struct VP9mvrefPair *mv = &s->frames[CUR_FRAME].mv[row * s->sb_cols * 8 + col - 1];
  971. if (mv->ref[0] == ref) {
  972. RETURN_MV(s->left_mv_ctx[2 * row7 + (sb >> 1)][0]);
  973. } else if (mv->ref[1] == ref) {
  974. RETURN_MV(s->left_mv_ctx[2 * row7 + (sb >> 1)][1]);
  975. }
  976. }
  977. i = 2;
  978. } else {
  979. i = 0;
  980. }
  981. // previously coded MVs in this neighbourhood, using same reference frame
  982. for (; i < 8; i++) {
  983. int c = p[i][0] + col, r = p[i][1] + row;
  984. if (c >= s->tiling.tile_col_start && c < s->cols && r >= 0 && r < s->rows) {
  985. struct VP9mvrefPair *mv = &s->frames[CUR_FRAME].mv[r * s->sb_cols * 8 + c];
  986. if (mv->ref[0] == ref) {
  987. RETURN_MV(mv->mv[0]);
  988. } else if (mv->ref[1] == ref) {
  989. RETURN_MV(mv->mv[1]);
  990. }
  991. }
  992. }
  993. // MV at this position in previous frame, using same reference frame
  994. if (s->use_last_frame_mvs) {
  995. struct VP9mvrefPair *mv = &s->frames[LAST_FRAME].mv[row * s->sb_cols * 8 + col];
  996. if (!s->last_uses_2pass)
  997. ff_thread_await_progress(&s->frames[LAST_FRAME].tf, row >> 3, 0);
  998. if (mv->ref[0] == ref) {
  999. RETURN_MV(mv->mv[0]);
  1000. } else if (mv->ref[1] == ref) {
  1001. RETURN_MV(mv->mv[1]);
  1002. }
  1003. }
  1004. #define RETURN_SCALE_MV(mv, scale) \
  1005. do { \
  1006. if (scale) { \
  1007. VP56mv mv_temp = { -mv.x, -mv.y }; \
  1008. RETURN_MV(mv_temp); \
  1009. } else { \
  1010. RETURN_MV(mv); \
  1011. } \
  1012. } while (0)
  1013. // previously coded MVs in this neighbourhood, using different reference frame
  1014. for (i = 0; i < 8; i++) {
  1015. int c = p[i][0] + col, r = p[i][1] + row;
  1016. if (c >= s->tiling.tile_col_start && c < s->cols && r >= 0 && r < s->rows) {
  1017. struct VP9mvrefPair *mv = &s->frames[CUR_FRAME].mv[r * s->sb_cols * 8 + c];
  1018. if (mv->ref[0] != ref && mv->ref[0] >= 0) {
  1019. RETURN_SCALE_MV(mv->mv[0], s->signbias[mv->ref[0]] != s->signbias[ref]);
  1020. }
  1021. if (mv->ref[1] != ref && mv->ref[1] >= 0 &&
  1022. // BUG - libvpx has this condition regardless of whether
  1023. // we used the first ref MV and pre-scaling
  1024. AV_RN32A(&mv->mv[0]) != AV_RN32A(&mv->mv[1])) {
  1025. RETURN_SCALE_MV(mv->mv[1], s->signbias[mv->ref[1]] != s->signbias[ref]);
  1026. }
  1027. }
  1028. }
  1029. // MV at this position in previous frame, using different reference frame
  1030. if (s->use_last_frame_mvs) {
  1031. struct VP9mvrefPair *mv = &s->frames[LAST_FRAME].mv[row * s->sb_cols * 8 + col];
  1032. // no need to await_progress, because we already did that above
  1033. if (mv->ref[0] != ref && mv->ref[0] >= 0) {
  1034. RETURN_SCALE_MV(mv->mv[0], s->signbias[mv->ref[0]] != s->signbias[ref]);
  1035. }
  1036. if (mv->ref[1] != ref && mv->ref[1] >= 0 &&
  1037. // BUG - libvpx has this condition regardless of whether
  1038. // we used the first ref MV and pre-scaling
  1039. AV_RN32A(&mv->mv[0]) != AV_RN32A(&mv->mv[1])) {
  1040. RETURN_SCALE_MV(mv->mv[1], s->signbias[mv->ref[1]] != s->signbias[ref]);
  1041. }
  1042. }
  1043. AV_ZERO32(pmv);
  1044. #undef INVALID_MV
  1045. #undef RETURN_MV
  1046. #undef RETURN_SCALE_MV
  1047. }
  1048. static av_always_inline int read_mv_component(VP9Context *s, int idx, int hp)
  1049. {
  1050. int bit, sign = vp56_rac_get_prob(&s->c, s->prob.p.mv_comp[idx].sign);
  1051. int n, c = vp8_rac_get_tree(&s->c, vp9_mv_class_tree,
  1052. s->prob.p.mv_comp[idx].classes);
  1053. s->counts.mv_comp[idx].sign[sign]++;
  1054. s->counts.mv_comp[idx].classes[c]++;
  1055. if (c) {
  1056. int m;
  1057. for (n = 0, m = 0; m < c; m++) {
  1058. bit = vp56_rac_get_prob(&s->c, s->prob.p.mv_comp[idx].bits[m]);
  1059. n |= bit << m;
  1060. s->counts.mv_comp[idx].bits[m][bit]++;
  1061. }
  1062. n <<= 3;
  1063. bit = vp8_rac_get_tree(&s->c, vp9_mv_fp_tree, s->prob.p.mv_comp[idx].fp);
  1064. n |= bit << 1;
  1065. s->counts.mv_comp[idx].fp[bit]++;
  1066. if (hp) {
  1067. bit = vp56_rac_get_prob(&s->c, s->prob.p.mv_comp[idx].hp);
  1068. s->counts.mv_comp[idx].hp[bit]++;
  1069. n |= bit;
  1070. } else {
  1071. n |= 1;
  1072. // bug in libvpx - we count for bw entropy purposes even if the
  1073. // bit wasn't coded
  1074. s->counts.mv_comp[idx].hp[1]++;
  1075. }
  1076. n += 8 << c;
  1077. } else {
  1078. n = vp56_rac_get_prob(&s->c, s->prob.p.mv_comp[idx].class0);
  1079. s->counts.mv_comp[idx].class0[n]++;
  1080. bit = vp8_rac_get_tree(&s->c, vp9_mv_fp_tree,
  1081. s->prob.p.mv_comp[idx].class0_fp[n]);
  1082. s->counts.mv_comp[idx].class0_fp[n][bit]++;
  1083. n = (n << 3) | (bit << 1);
  1084. if (hp) {
  1085. bit = vp56_rac_get_prob(&s->c, s->prob.p.mv_comp[idx].class0_hp);
  1086. s->counts.mv_comp[idx].class0_hp[bit]++;
  1087. n |= bit;
  1088. } else {
  1089. n |= 1;
  1090. // bug in libvpx - we count for bw entropy purposes even if the
  1091. // bit wasn't coded
  1092. s->counts.mv_comp[idx].class0_hp[1]++;
  1093. }
  1094. }
  1095. return sign ? -(n + 1) : (n + 1);
  1096. }
  1097. static void fill_mv(VP9Context *s,
  1098. VP56mv *mv, int mode, int sb)
  1099. {
  1100. VP9Block *b = s->b;
  1101. if (mode == ZEROMV) {
  1102. AV_ZERO64(mv);
  1103. } else {
  1104. int hp;
  1105. // FIXME cache this value and reuse for other subblocks
  1106. find_ref_mvs(s, &mv[0], b->ref[0], 0, mode == NEARMV,
  1107. mode == NEWMV ? -1 : sb);
  1108. // FIXME maybe move this code into find_ref_mvs()
  1109. if ((mode == NEWMV || sb == -1) &&
  1110. !(hp = s->highprecisionmvs && abs(mv[0].x) < 64 && abs(mv[0].y) < 64)) {
  1111. if (mv[0].y & 1) {
  1112. if (mv[0].y < 0)
  1113. mv[0].y++;
  1114. else
  1115. mv[0].y--;
  1116. }
  1117. if (mv[0].x & 1) {
  1118. if (mv[0].x < 0)
  1119. mv[0].x++;
  1120. else
  1121. mv[0].x--;
  1122. }
  1123. }
  1124. if (mode == NEWMV) {
  1125. enum MVJoint j = vp8_rac_get_tree(&s->c, vp9_mv_joint_tree,
  1126. s->prob.p.mv_joint);
  1127. s->counts.mv_joint[j]++;
  1128. if (j >= MV_JOINT_V)
  1129. mv[0].y += read_mv_component(s, 0, hp);
  1130. if (j & 1)
  1131. mv[0].x += read_mv_component(s, 1, hp);
  1132. }
  1133. if (b->comp) {
  1134. // FIXME cache this value and reuse for other subblocks
  1135. find_ref_mvs(s, &mv[1], b->ref[1], 1, mode == NEARMV,
  1136. mode == NEWMV ? -1 : sb);
  1137. if ((mode == NEWMV || sb == -1) &&
  1138. !(hp = s->highprecisionmvs && abs(mv[1].x) < 64 && abs(mv[1].y) < 64)) {
  1139. if (mv[1].y & 1) {
  1140. if (mv[1].y < 0)
  1141. mv[1].y++;
  1142. else
  1143. mv[1].y--;
  1144. }
  1145. if (mv[1].x & 1) {
  1146. if (mv[1].x < 0)
  1147. mv[1].x++;
  1148. else
  1149. mv[1].x--;
  1150. }
  1151. }
  1152. if (mode == NEWMV) {
  1153. enum MVJoint j = vp8_rac_get_tree(&s->c, vp9_mv_joint_tree,
  1154. s->prob.p.mv_joint);
  1155. s->counts.mv_joint[j]++;
  1156. if (j >= MV_JOINT_V)
  1157. mv[1].y += read_mv_component(s, 0, hp);
  1158. if (j & 1)
  1159. mv[1].x += read_mv_component(s, 1, hp);
  1160. }
  1161. }
  1162. }
  1163. }
  1164. static av_always_inline void setctx_2d(uint8_t *ptr, int w, int h,
  1165. ptrdiff_t stride, int v)
  1166. {
  1167. switch (w) {
  1168. case 1:
  1169. do {
  1170. *ptr = v;
  1171. ptr += stride;
  1172. } while (--h);
  1173. break;
  1174. case 2: {
  1175. int v16 = v * 0x0101;
  1176. do {
  1177. AV_WN16A(ptr, v16);
  1178. ptr += stride;
  1179. } while (--h);
  1180. break;
  1181. }
  1182. case 4: {
  1183. uint32_t v32 = v * 0x01010101;
  1184. do {
  1185. AV_WN32A(ptr, v32);
  1186. ptr += stride;
  1187. } while (--h);
  1188. break;
  1189. }
  1190. case 8: {
  1191. #if HAVE_FAST_64BIT
  1192. uint64_t v64 = v * 0x0101010101010101ULL;
  1193. do {
  1194. AV_WN64A(ptr, v64);
  1195. ptr += stride;
  1196. } while (--h);
  1197. #else
  1198. uint32_t v32 = v * 0x01010101;
  1199. do {
  1200. AV_WN32A(ptr, v32);
  1201. AV_WN32A(ptr + 4, v32);
  1202. ptr += stride;
  1203. } while (--h);
  1204. #endif
  1205. break;
  1206. }
  1207. }
  1208. }
  1209. static void decode_mode(AVCodecContext *ctx)
  1210. {
  1211. static const uint8_t left_ctx[N_BS_SIZES] = {
  1212. 0x0, 0x8, 0x0, 0x8, 0xc, 0x8, 0xc, 0xe, 0xc, 0xe, 0xf, 0xe, 0xf
  1213. };
  1214. static const uint8_t above_ctx[N_BS_SIZES] = {
  1215. 0x0, 0x0, 0x8, 0x8, 0x8, 0xc, 0xc, 0xc, 0xe, 0xe, 0xe, 0xf, 0xf
  1216. };
  1217. static const uint8_t max_tx_for_bl_bp[N_BS_SIZES] = {
  1218. TX_32X32, TX_32X32, TX_32X32, TX_32X32, TX_16X16, TX_16X16,
  1219. TX_16X16, TX_8X8, TX_8X8, TX_8X8, TX_4X4, TX_4X4, TX_4X4
  1220. };
  1221. VP9Context *s = ctx->priv_data;
  1222. VP9Block *b = s->b;
  1223. int row = s->row, col = s->col, row7 = s->row7;
  1224. enum TxfmMode max_tx = max_tx_for_bl_bp[b->bs];
  1225. int w4 = FFMIN(s->cols - col, bwh_tab[1][b->bs][0]);
  1226. int h4 = FFMIN(s->rows - row, bwh_tab[1][b->bs][1]), y;
  1227. int have_a = row > 0, have_l = col > s->tiling.tile_col_start;
  1228. int vref, filter_id;
  1229. if (!s->segmentation.enabled) {
  1230. b->seg_id = 0;
  1231. } else if (s->keyframe || s->intraonly) {
  1232. b->seg_id = vp8_rac_get_tree(&s->c, vp9_segmentation_tree, s->prob.seg);
  1233. } else if (!s->segmentation.update_map ||
  1234. (s->segmentation.temporal &&
  1235. vp56_rac_get_prob_branchy(&s->c,
  1236. s->prob.segpred[s->above_segpred_ctx[col] +
  1237. s->left_segpred_ctx[row7]]))) {
  1238. if (!s->errorres) {
  1239. int pred = 8, x;
  1240. uint8_t *refsegmap = s->frames[LAST_FRAME].segmentation_map;
  1241. if (!s->last_uses_2pass)
  1242. ff_thread_await_progress(&s->frames[LAST_FRAME].tf, row >> 3, 0);
  1243. for (y = 0; y < h4; y++) {
  1244. int idx_base = (y + row) * 8 * s->sb_cols + col;
  1245. for (x = 0; x < w4; x++)
  1246. pred = FFMIN(pred, refsegmap[idx_base + x]);
  1247. if (!s->segmentation.update_map && ctx->active_thread_type == FF_THREAD_FRAME) {
  1248. // FIXME maybe retain reference to previous frame as
  1249. // segmap reference instead of copying the whole map
  1250. // into a new buffer
  1251. memcpy(&s->frames[CUR_FRAME].segmentation_map[idx_base],
  1252. &refsegmap[idx_base], w4);
  1253. }
  1254. }
  1255. av_assert1(pred < 8);
  1256. b->seg_id = pred;
  1257. } else {
  1258. b->seg_id = 0;
  1259. }
  1260. memset(&s->above_segpred_ctx[col], 1, w4);
  1261. memset(&s->left_segpred_ctx[row7], 1, h4);
  1262. } else {
  1263. b->seg_id = vp8_rac_get_tree(&s->c, vp9_segmentation_tree,
  1264. s->prob.seg);
  1265. memset(&s->above_segpred_ctx[col], 0, w4);
  1266. memset(&s->left_segpred_ctx[row7], 0, h4);
  1267. }
  1268. if (s->segmentation.enabled &&
  1269. (s->segmentation.update_map || s->keyframe || s->intraonly)) {
  1270. setctx_2d(&s->frames[CUR_FRAME].segmentation_map[row * 8 * s->sb_cols + col],
  1271. w4, h4, 8 * s->sb_cols, b->seg_id);
  1272. }
  1273. b->skip = s->segmentation.enabled &&
  1274. s->segmentation.feat[b->seg_id].skip_enabled;
  1275. if (!b->skip) {
  1276. int c = s->left_skip_ctx[row7] + s->above_skip_ctx[col];
  1277. b->skip = vp56_rac_get_prob(&s->c, s->prob.p.skip[c]);
  1278. s->counts.skip[c][b->skip]++;
  1279. }
  1280. if (s->keyframe || s->intraonly) {
  1281. b->intra = 1;
  1282. } else if (s->segmentation.feat[b->seg_id].ref_enabled) {
  1283. b->intra = !s->segmentation.feat[b->seg_id].ref_val;
  1284. } else {
  1285. int c, bit;
  1286. if (have_a && have_l) {
  1287. c = s->above_intra_ctx[col] + s->left_intra_ctx[row7];
  1288. c += (c == 2);
  1289. } else {
  1290. c = have_a ? 2 * s->above_intra_ctx[col] :
  1291. have_l ? 2 * s->left_intra_ctx[row7] : 0;
  1292. }
  1293. bit = vp56_rac_get_prob(&s->c, s->prob.p.intra[c]);
  1294. s->counts.intra[c][bit]++;
  1295. b->intra = !bit;
  1296. }
  1297. if ((b->intra || !b->skip) && s->txfmmode == TX_SWITCHABLE) {
  1298. int c;
  1299. if (have_a) {
  1300. if (have_l) {
  1301. c = (s->above_skip_ctx[col] ? max_tx :
  1302. s->above_txfm_ctx[col]) +
  1303. (s->left_skip_ctx[row7] ? max_tx :
  1304. s->left_txfm_ctx[row7]) > max_tx;
  1305. } else {
  1306. c = s->above_skip_ctx[col] ? 1 :
  1307. (s->above_txfm_ctx[col] * 2 > max_tx);
  1308. }
  1309. } else if (have_l) {
  1310. c = s->left_skip_ctx[row7] ? 1 :
  1311. (s->left_txfm_ctx[row7] * 2 > max_tx);
  1312. } else {
  1313. c = 1;
  1314. }
  1315. switch (max_tx) {
  1316. case TX_32X32:
  1317. b->tx = vp56_rac_get_prob(&s->c, s->prob.p.tx32p[c][0]);
  1318. if (b->tx) {
  1319. b->tx += vp56_rac_get_prob(&s->c, s->prob.p.tx32p[c][1]);
  1320. if (b->tx == 2)
  1321. b->tx += vp56_rac_get_prob(&s->c, s->prob.p.tx32p[c][2]);
  1322. }
  1323. s->counts.tx32p[c][b->tx]++;
  1324. break;
  1325. case TX_16X16:
  1326. b->tx = vp56_rac_get_prob(&s->c, s->prob.p.tx16p[c][0]);
  1327. if (b->tx)
  1328. b->tx += vp56_rac_get_prob(&s->c, s->prob.p.tx16p[c][1]);
  1329. s->counts.tx16p[c][b->tx]++;
  1330. break;
  1331. case TX_8X8:
  1332. b->tx = vp56_rac_get_prob(&s->c, s->prob.p.tx8p[c]);
  1333. s->counts.tx8p[c][b->tx]++;
  1334. break;
  1335. case TX_4X4:
  1336. b->tx = TX_4X4;
  1337. break;
  1338. }
  1339. } else {
  1340. b->tx = FFMIN(max_tx, s->txfmmode);
  1341. }
  1342. if (s->keyframe || s->intraonly) {
  1343. uint8_t *a = &s->above_mode_ctx[col * 2];
  1344. uint8_t *l = &s->left_mode_ctx[(row7) << 1];
  1345. b->comp = 0;
  1346. if (b->bs > BS_8x8) {
  1347. // FIXME the memory storage intermediates here aren't really
  1348. // necessary, they're just there to make the code slightly
  1349. // simpler for now
  1350. b->mode[0] = a[0] = vp8_rac_get_tree(&s->c, vp9_intramode_tree,
  1351. vp9_default_kf_ymode_probs[a[0]][l[0]]);
  1352. if (b->bs != BS_8x4) {
  1353. b->mode[1] = vp8_rac_get_tree(&s->c, vp9_intramode_tree,
  1354. vp9_default_kf_ymode_probs[a[1]][b->mode[0]]);
  1355. l[0] = a[1] = b->mode[1];
  1356. } else {
  1357. l[0] = a[1] = b->mode[1] = b->mode[0];
  1358. }
  1359. if (b->bs != BS_4x8) {
  1360. b->mode[2] = a[0] = vp8_rac_get_tree(&s->c, vp9_intramode_tree,
  1361. vp9_default_kf_ymode_probs[a[0]][l[1]]);
  1362. if (b->bs != BS_8x4) {
  1363. b->mode[3] = vp8_rac_get_tree(&s->c, vp9_intramode_tree,
  1364. vp9_default_kf_ymode_probs[a[1]][b->mode[2]]);
  1365. l[1] = a[1] = b->mode[3];
  1366. } else {
  1367. l[1] = a[1] = b->mode[3] = b->mode[2];
  1368. }
  1369. } else {
  1370. b->mode[2] = b->mode[0];
  1371. l[1] = a[1] = b->mode[3] = b->mode[1];
  1372. }
  1373. } else {
  1374. b->mode[0] = vp8_rac_get_tree(&s->c, vp9_intramode_tree,
  1375. vp9_default_kf_ymode_probs[*a][*l]);
  1376. b->mode[3] = b->mode[2] = b->mode[1] = b->mode[0];
  1377. // FIXME this can probably be optimized
  1378. memset(a, b->mode[0], bwh_tab[0][b->bs][0]);
  1379. memset(l, b->mode[0], bwh_tab[0][b->bs][1]);
  1380. }
  1381. b->uvmode = vp8_rac_get_tree(&s->c, vp9_intramode_tree,
  1382. vp9_default_kf_uvmode_probs[b->mode[3]]);
  1383. } else if (b->intra) {
  1384. b->comp = 0;
  1385. if (b->bs > BS_8x8) {
  1386. b->mode[0] = vp8_rac_get_tree(&s->c, vp9_intramode_tree,
  1387. s->prob.p.y_mode[0]);
  1388. s->counts.y_mode[0][b->mode[0]]++;
  1389. if (b->bs != BS_8x4) {
  1390. b->mode[1] = vp8_rac_get_tree(&s->c, vp9_intramode_tree,
  1391. s->prob.p.y_mode[0]);
  1392. s->counts.y_mode[0][b->mode[1]]++;
  1393. } else {
  1394. b->mode[1] = b->mode[0];
  1395. }
  1396. if (b->bs != BS_4x8) {
  1397. b->mode[2] = vp8_rac_get_tree(&s->c, vp9_intramode_tree,
  1398. s->prob.p.y_mode[0]);
  1399. s->counts.y_mode[0][b->mode[2]]++;
  1400. if (b->bs != BS_8x4) {
  1401. b->mode[3] = vp8_rac_get_tree(&s->c, vp9_intramode_tree,
  1402. s->prob.p.y_mode[0]);
  1403. s->counts.y_mode[0][b->mode[3]]++;
  1404. } else {
  1405. b->mode[3] = b->mode[2];
  1406. }
  1407. } else {
  1408. b->mode[2] = b->mode[0];
  1409. b->mode[3] = b->mode[1];
  1410. }
  1411. } else {
  1412. static const uint8_t size_group[10] = {
  1413. 3, 3, 3, 3, 2, 2, 2, 1, 1, 1
  1414. };
  1415. int sz = size_group[b->bs];
  1416. b->mode[0] = vp8_rac_get_tree(&s->c, vp9_intramode_tree,
  1417. s->prob.p.y_mode[sz]);
  1418. b->mode[1] = b->mode[2] = b->mode[3] = b->mode[0];
  1419. s->counts.y_mode[sz][b->mode[3]]++;
  1420. }
  1421. b->uvmode = vp8_rac_get_tree(&s->c, vp9_intramode_tree,
  1422. s->prob.p.uv_mode[b->mode[3]]);
  1423. s->counts.uv_mode[b->mode[3]][b->uvmode]++;
  1424. } else {
  1425. static const uint8_t inter_mode_ctx_lut[14][14] = {
  1426. { 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 5, 5, 5, 5 },
  1427. { 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 5, 5, 5, 5 },
  1428. { 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 5, 5, 5, 5 },
  1429. { 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 5, 5, 5, 5 },
  1430. { 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 5, 5, 5, 5 },
  1431. { 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 5, 5, 5, 5 },
  1432. { 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 5, 5, 5, 5 },
  1433. { 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 5, 5, 5, 5 },
  1434. { 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 5, 5, 5, 5 },
  1435. { 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 5, 5, 5, 5 },
  1436. { 5, 5, 5, 5, 5, 5, 5, 5, 5, 5, 2, 2, 1, 3 },
  1437. { 5, 5, 5, 5, 5, 5, 5, 5, 5, 5, 2, 2, 1, 3 },
  1438. { 5, 5, 5, 5, 5, 5, 5, 5, 5, 5, 1, 1, 0, 3 },
  1439. { 5, 5, 5, 5, 5, 5, 5, 5, 5, 5, 3, 3, 3, 4 },
  1440. };
  1441. if (s->segmentation.feat[b->seg_id].ref_enabled) {
  1442. av_assert2(s->segmentation.feat[b->seg_id].ref_val != 0);
  1443. b->comp = 0;
  1444. b->ref[0] = s->segmentation.feat[b->seg_id].ref_val - 1;
  1445. } else {
  1446. // read comp_pred flag
  1447. if (s->comppredmode != PRED_SWITCHABLE) {
  1448. b->comp = s->comppredmode == PRED_COMPREF;
  1449. } else {
  1450. int c;
  1451. // FIXME add intra as ref=0xff (or -1) to make these easier?
  1452. if (have_a) {
  1453. if (have_l) {
  1454. if (s->above_comp_ctx[col] && s->left_comp_ctx[row7]) {
  1455. c = 4;
  1456. } else if (s->above_comp_ctx[col]) {
  1457. c = 2 + (s->left_intra_ctx[row7] ||
  1458. s->left_ref_ctx[row7] == s->fixcompref);
  1459. } else if (s->left_comp_ctx[row7]) {
  1460. c = 2 + (s->above_intra_ctx[col] ||
  1461. s->above_ref_ctx[col] == s->fixcompref);
  1462. } else {
  1463. c = (!s->above_intra_ctx[col] &&
  1464. s->above_ref_ctx[col] == s->fixcompref) ^
  1465. (!s->left_intra_ctx[row7] &&
  1466. s->left_ref_ctx[row & 7] == s->fixcompref);
  1467. }
  1468. } else {
  1469. c = s->above_comp_ctx[col] ? 3 :
  1470. (!s->above_intra_ctx[col] && s->above_ref_ctx[col] == s->fixcompref);
  1471. }
  1472. } else if (have_l) {
  1473. c = s->left_comp_ctx[row7] ? 3 :
  1474. (!s->left_intra_ctx[row7] && s->left_ref_ctx[row7] == s->fixcompref);
  1475. } else {
  1476. c = 1;
  1477. }
  1478. b->comp = vp56_rac_get_prob(&s->c, s->prob.p.comp[c]);
  1479. s->counts.comp[c][b->comp]++;
  1480. }
  1481. // read actual references
  1482. // FIXME probably cache a few variables here to prevent repetitive
  1483. // memory accesses below
  1484. if (b->comp) /* two references */ {
  1485. int fix_idx = s->signbias[s->fixcompref], var_idx = !fix_idx, c, bit;
  1486. b->ref[fix_idx] = s->fixcompref;
  1487. // FIXME can this codeblob be replaced by some sort of LUT?
  1488. if (have_a) {
  1489. if (have_l) {
  1490. if (s->above_intra_ctx[col]) {
  1491. if (s->left_intra_ctx[row7]) {
  1492. c = 2;
  1493. } else {
  1494. c = 1 + 2 * (s->left_ref_ctx[row7] != s->varcompref[1]);
  1495. }
  1496. } else if (s->left_intra_ctx[row7]) {
  1497. c = 1 + 2 * (s->above_ref_ctx[col] != s->varcompref[1]);
  1498. } else {
  1499. int refl = s->left_ref_ctx[row7], refa = s->above_ref_ctx[col];
  1500. if (refl == refa && refa == s->varcompref[1]) {
  1501. c = 0;
  1502. } else if (!s->left_comp_ctx[row7] && !s->above_comp_ctx[col]) {
  1503. if ((refa == s->fixcompref && refl == s->varcompref[0]) ||
  1504. (refl == s->fixcompref && refa == s->varcompref[0])) {
  1505. c = 4;
  1506. } else {
  1507. c = (refa == refl) ? 3 : 1;
  1508. }
  1509. } else if (!s->left_comp_ctx[row7]) {
  1510. if (refa == s->varcompref[1] && refl != s->varcompref[1]) {
  1511. c = 1;
  1512. } else {
  1513. c = (refl == s->varcompref[1] &&
  1514. refa != s->varcompref[1]) ? 2 : 4;
  1515. }
  1516. } else if (!s->above_comp_ctx[col]) {
  1517. if (refl == s->varcompref[1] && refa != s->varcompref[1]) {
  1518. c = 1;
  1519. } else {
  1520. c = (refa == s->varcompref[1] &&
  1521. refl != s->varcompref[1]) ? 2 : 4;
  1522. }
  1523. } else {
  1524. c = (refl == refa) ? 4 : 2;
  1525. }
  1526. }
  1527. } else {
  1528. if (s->above_intra_ctx[col]) {
  1529. c = 2;
  1530. } else if (s->above_comp_ctx[col]) {
  1531. c = 4 * (s->above_ref_ctx[col] != s->varcompref[1]);
  1532. } else {
  1533. c = 3 * (s->above_ref_ctx[col] != s->varcompref[1]);
  1534. }
  1535. }
  1536. } else if (have_l) {
  1537. if (s->left_intra_ctx[row7]) {
  1538. c = 2;
  1539. } else if (s->left_comp_ctx[row7]) {
  1540. c = 4 * (s->left_ref_ctx[row7] != s->varcompref[1]);
  1541. } else {
  1542. c = 3 * (s->left_ref_ctx[row7] != s->varcompref[1]);
  1543. }
  1544. } else {
  1545. c = 2;
  1546. }
  1547. bit = vp56_rac_get_prob(&s->c, s->prob.p.comp_ref[c]);
  1548. b->ref[var_idx] = s->varcompref[bit];
  1549. s->counts.comp_ref[c][bit]++;
  1550. } else /* single reference */ {
  1551. int bit, c;
  1552. if (have_a && !s->above_intra_ctx[col]) {
  1553. if (have_l && !s->left_intra_ctx[row7]) {
  1554. if (s->left_comp_ctx[row7]) {
  1555. if (s->above_comp_ctx[col]) {
  1556. c = 1 + (!s->fixcompref || !s->left_ref_ctx[row7] ||
  1557. !s->above_ref_ctx[col]);
  1558. } else {
  1559. c = (3 * !s->above_ref_ctx[col]) +
  1560. (!s->fixcompref || !s->left_ref_ctx[row7]);
  1561. }
  1562. } else if (s->above_comp_ctx[col]) {
  1563. c = (3 * !s->left_ref_ctx[row7]) +
  1564. (!s->fixcompref || !s->above_ref_ctx[col]);
  1565. } else {
  1566. c = 2 * !s->left_ref_ctx[row7] + 2 * !s->above_ref_ctx[col];
  1567. }
  1568. } else if (s->above_intra_ctx[col]) {
  1569. c = 2;
  1570. } else if (s->above_comp_ctx[col]) {
  1571. c = 1 + (!s->fixcompref || !s->above_ref_ctx[col]);
  1572. } else {
  1573. c = 4 * (!s->above_ref_ctx[col]);
  1574. }
  1575. } else if (have_l && !s->left_intra_ctx[row7]) {
  1576. if (s->left_intra_ctx[row7]) {
  1577. c = 2;
  1578. } else if (s->left_comp_ctx[row7]) {
  1579. c = 1 + (!s->fixcompref || !s->left_ref_ctx[row7]);
  1580. } else {
  1581. c = 4 * (!s->left_ref_ctx[row7]);
  1582. }
  1583. } else {
  1584. c = 2;
  1585. }
  1586. bit = vp56_rac_get_prob(&s->c, s->prob.p.single_ref[c][0]);
  1587. s->counts.single_ref[c][0][bit]++;
  1588. if (!bit) {
  1589. b->ref[0] = 0;
  1590. } else {
  1591. // FIXME can this codeblob be replaced by some sort of LUT?
  1592. if (have_a) {
  1593. if (have_l) {
  1594. if (s->left_intra_ctx[row7]) {
  1595. if (s->above_intra_ctx[col]) {
  1596. c = 2;
  1597. } else if (s->above_comp_ctx[col]) {
  1598. c = 1 + 2 * (s->fixcompref == 1 ||
  1599. s->above_ref_ctx[col] == 1);
  1600. } else if (!s->above_ref_ctx[col]) {
  1601. c = 3;
  1602. } else {
  1603. c = 4 * (s->above_ref_ctx[col] == 1);
  1604. }
  1605. } else if (s->above_intra_ctx[col]) {
  1606. if (s->left_intra_ctx[row7]) {
  1607. c = 2;
  1608. } else if (s->left_comp_ctx[row7]) {
  1609. c = 1 + 2 * (s->fixcompref == 1 ||
  1610. s->left_ref_ctx[row7] == 1);
  1611. } else if (!s->left_ref_ctx[row7]) {
  1612. c = 3;
  1613. } else {
  1614. c = 4 * (s->left_ref_ctx[row7] == 1);
  1615. }
  1616. } else if (s->above_comp_ctx[col]) {
  1617. if (s->left_comp_ctx[row7]) {
  1618. if (s->left_ref_ctx[row7] == s->above_ref_ctx[col]) {
  1619. c = 3 * (s->fixcompref == 1 ||
  1620. s->left_ref_ctx[row7] == 1);
  1621. } else {
  1622. c = 2;
  1623. }
  1624. } else if (!s->left_ref_ctx[row7]) {
  1625. c = 1 + 2 * (s->fixcompref == 1 ||
  1626. s->above_ref_ctx[col] == 1);
  1627. } else {
  1628. c = 3 * (s->left_ref_ctx[row7] == 1) +
  1629. (s->fixcompref == 1 || s->above_ref_ctx[col] == 1);
  1630. }
  1631. } else if (s->left_comp_ctx[row7]) {
  1632. if (!s->above_ref_ctx[col]) {
  1633. c = 1 + 2 * (s->fixcompref == 1 ||
  1634. s->left_ref_ctx[row7] == 1);
  1635. } else {
  1636. c = 3 * (s->above_ref_ctx[col] == 1) +
  1637. (s->fixcompref == 1 || s->left_ref_ctx[row7] == 1);
  1638. }
  1639. } else if (!s->above_ref_ctx[col]) {
  1640. if (!s->left_ref_ctx[row7]) {
  1641. c = 3;
  1642. } else {
  1643. c = 4 * (s->left_ref_ctx[row7] == 1);
  1644. }
  1645. } else if (!s->left_ref_ctx[row7]) {
  1646. c = 4 * (s->above_ref_ctx[col] == 1);
  1647. } else {
  1648. c = 2 * (s->left_ref_ctx[row7] == 1) +
  1649. 2 * (s->above_ref_ctx[col] == 1);
  1650. }
  1651. } else {
  1652. if (s->above_intra_ctx[col] ||
  1653. (!s->above_comp_ctx[col] && !s->above_ref_ctx[col])) {
  1654. c = 2;
  1655. } else if (s->above_comp_ctx[col]) {
  1656. c = 3 * (s->fixcompref == 1 || s->above_ref_ctx[col] == 1);
  1657. } else {
  1658. c = 4 * (s->above_ref_ctx[col] == 1);
  1659. }
  1660. }
  1661. } else if (have_l) {
  1662. if (s->left_intra_ctx[row7] ||
  1663. (!s->left_comp_ctx[row7] && !s->left_ref_ctx[row7])) {
  1664. c = 2;
  1665. } else if (s->left_comp_ctx[row7]) {
  1666. c = 3 * (s->fixcompref == 1 || s->left_ref_ctx[row7] == 1);
  1667. } else {
  1668. c = 4 * (s->left_ref_ctx[row7] == 1);
  1669. }
  1670. } else {
  1671. c = 2;
  1672. }
  1673. bit = vp56_rac_get_prob(&s->c, s->prob.p.single_ref[c][1]);
  1674. s->counts.single_ref[c][1][bit]++;
  1675. b->ref[0] = 1 + bit;
  1676. }
  1677. }
  1678. }
  1679. if (b->bs <= BS_8x8) {
  1680. if (s->segmentation.feat[b->seg_id].skip_enabled) {
  1681. b->mode[0] = b->mode[1] = b->mode[2] = b->mode[3] = ZEROMV;
  1682. } else {
  1683. static const uint8_t off[10] = {
  1684. 3, 0, 0, 1, 0, 0, 0, 0, 0, 0
  1685. };
  1686. // FIXME this needs to use the LUT tables from find_ref_mvs
  1687. // because not all are -1,0/0,-1
  1688. int c = inter_mode_ctx_lut[s->above_mode_ctx[col + off[b->bs]]]
  1689. [s->left_mode_ctx[row7 + off[b->bs]]];
  1690. b->mode[0] = vp8_rac_get_tree(&s->c, vp9_inter_mode_tree,
  1691. s->prob.p.mv_mode[c]);
  1692. b->mode[1] = b->mode[2] = b->mode[3] = b->mode[0];
  1693. s->counts.mv_mode[c][b->mode[0] - 10]++;
  1694. }
  1695. }
  1696. if (s->filtermode == FILTER_SWITCHABLE) {
  1697. int c;
  1698. if (have_a && s->above_mode_ctx[col] >= NEARESTMV) {
  1699. if (have_l && s->left_mode_ctx[row7] >= NEARESTMV) {
  1700. c = s->above_filter_ctx[col] == s->left_filter_ctx[row7] ?
  1701. s->left_filter_ctx[row7] : 3;
  1702. } else {
  1703. c = s->above_filter_ctx[col];
  1704. }
  1705. } else if (have_l && s->left_mode_ctx[row7] >= NEARESTMV) {
  1706. c = s->left_filter_ctx[row7];
  1707. } else {
  1708. c = 3;
  1709. }
  1710. filter_id = vp8_rac_get_tree(&s->c, vp9_filter_tree,
  1711. s->prob.p.filter[c]);
  1712. s->counts.filter[c][filter_id]++;
  1713. b->filter = vp9_filter_lut[filter_id];
  1714. } else {
  1715. b->filter = s->filtermode;
  1716. }
  1717. if (b->bs > BS_8x8) {
  1718. int c = inter_mode_ctx_lut[s->above_mode_ctx[col]][s->left_mode_ctx[row7]];
  1719. b->mode[0] = vp8_rac_get_tree(&s->c, vp9_inter_mode_tree,
  1720. s->prob.p.mv_mode[c]);
  1721. s->counts.mv_mode[c][b->mode[0] - 10]++;
  1722. fill_mv(s, b->mv[0], b->mode[0], 0);
  1723. if (b->bs != BS_8x4) {
  1724. b->mode[1] = vp8_rac_get_tree(&s->c, vp9_inter_mode_tree,
  1725. s->prob.p.mv_mode[c]);
  1726. s->counts.mv_mode[c][b->mode[1] - 10]++;
  1727. fill_mv(s, b->mv[1], b->mode[1], 1);
  1728. } else {
  1729. b->mode[1] = b->mode[0];
  1730. AV_COPY32(&b->mv[1][0], &b->mv[0][0]);
  1731. AV_COPY32(&b->mv[1][1], &b->mv[0][1]);
  1732. }
  1733. if (b->bs != BS_4x8) {
  1734. b->mode[2] = vp8_rac_get_tree(&s->c, vp9_inter_mode_tree,
  1735. s->prob.p.mv_mode[c]);
  1736. s->counts.mv_mode[c][b->mode[2] - 10]++;
  1737. fill_mv(s, b->mv[2], b->mode[2], 2);
  1738. if (b->bs != BS_8x4) {
  1739. b->mode[3] = vp8_rac_get_tree(&s->c, vp9_inter_mode_tree,
  1740. s->prob.p.mv_mode[c]);
  1741. s->counts.mv_mode[c][b->mode[3] - 10]++;
  1742. fill_mv(s, b->mv[3], b->mode[3], 3);
  1743. } else {
  1744. b->mode[3] = b->mode[2];
  1745. AV_COPY32(&b->mv[3][0], &b->mv[2][0]);
  1746. AV_COPY32(&b->mv[3][1], &b->mv[2][1]);
  1747. }
  1748. } else {
  1749. b->mode[2] = b->mode[0];
  1750. AV_COPY32(&b->mv[2][0], &b->mv[0][0]);
  1751. AV_COPY32(&b->mv[2][1], &b->mv[0][1]);
  1752. b->mode[3] = b->mode[1];
  1753. AV_COPY32(&b->mv[3][0], &b->mv[1][0]);
  1754. AV_COPY32(&b->mv[3][1], &b->mv[1][1]);
  1755. }
  1756. } else {
  1757. fill_mv(s, b->mv[0], b->mode[0], -1);
  1758. AV_COPY32(&b->mv[1][0], &b->mv[0][0]);
  1759. AV_COPY32(&b->mv[2][0], &b->mv[0][0]);
  1760. AV_COPY32(&b->mv[3][0], &b->mv[0][0]);
  1761. AV_COPY32(&b->mv[1][1], &b->mv[0][1]);
  1762. AV_COPY32(&b->mv[2][1], &b->mv[0][1]);
  1763. AV_COPY32(&b->mv[3][1], &b->mv[0][1]);
  1764. }
  1765. vref = b->ref[b->comp ? s->signbias[s->varcompref[0]] : 0];
  1766. }
  1767. #if HAVE_FAST_64BIT
  1768. #define SPLAT_CTX(var, val, n) \
  1769. switch (n) { \
  1770. case 1: var = val; break; \
  1771. case 2: AV_WN16A(&var, val * 0x0101); break; \
  1772. case 4: AV_WN32A(&var, val * 0x01010101); break; \
  1773. case 8: AV_WN64A(&var, val * 0x0101010101010101ULL); break; \
  1774. case 16: { \
  1775. uint64_t v64 = val * 0x0101010101010101ULL; \
  1776. AV_WN64A( &var, v64); \
  1777. AV_WN64A(&((uint8_t *) &var)[8], v64); \
  1778. break; \
  1779. } \
  1780. }
  1781. #else
  1782. #define SPLAT_CTX(var, val, n) \
  1783. switch (n) { \
  1784. case 1: var = val; break; \
  1785. case 2: AV_WN16A(&var, val * 0x0101); break; \
  1786. case 4: AV_WN32A(&var, val * 0x01010101); break; \
  1787. case 8: { \
  1788. uint32_t v32 = val * 0x01010101; \
  1789. AV_WN32A( &var, v32); \
  1790. AV_WN32A(&((uint8_t *) &var)[4], v32); \
  1791. break; \
  1792. } \
  1793. case 16: { \
  1794. uint32_t v32 = val * 0x01010101; \
  1795. AV_WN32A( &var, v32); \
  1796. AV_WN32A(&((uint8_t *) &var)[4], v32); \
  1797. AV_WN32A(&((uint8_t *) &var)[8], v32); \
  1798. AV_WN32A(&((uint8_t *) &var)[12], v32); \
  1799. break; \
  1800. } \
  1801. }
  1802. #endif
  1803. switch (bwh_tab[1][b->bs][0]) {
  1804. #define SET_CTXS(dir, off, n) \
  1805. do { \
  1806. SPLAT_CTX(s->dir##_skip_ctx[off], b->skip, n); \
  1807. SPLAT_CTX(s->dir##_txfm_ctx[off], b->tx, n); \
  1808. SPLAT_CTX(s->dir##_partition_ctx[off], dir##_ctx[b->bs], n); \
  1809. if (!s->keyframe && !s->intraonly) { \
  1810. SPLAT_CTX(s->dir##_intra_ctx[off], b->intra, n); \
  1811. SPLAT_CTX(s->dir##_comp_ctx[off], b->comp, n); \
  1812. SPLAT_CTX(s->dir##_mode_ctx[off], b->mode[3], n); \
  1813. if (!b->intra) { \
  1814. SPLAT_CTX(s->dir##_ref_ctx[off], vref, n); \
  1815. if (s->filtermode == FILTER_SWITCHABLE) { \
  1816. SPLAT_CTX(s->dir##_filter_ctx[off], filter_id, n); \
  1817. } \
  1818. } \
  1819. } \
  1820. } while (0)
  1821. case 1: SET_CTXS(above, col, 1); break;
  1822. case 2: SET_CTXS(above, col, 2); break;
  1823. case 4: SET_CTXS(above, col, 4); break;
  1824. case 8: SET_CTXS(above, col, 8); break;
  1825. }
  1826. switch (bwh_tab[1][b->bs][1]) {
  1827. case 1: SET_CTXS(left, row7, 1); break;
  1828. case 2: SET_CTXS(left, row7, 2); break;
  1829. case 4: SET_CTXS(left, row7, 4); break;
  1830. case 8: SET_CTXS(left, row7, 8); break;
  1831. }
  1832. #undef SPLAT_CTX
  1833. #undef SET_CTXS
  1834. if (!s->keyframe && !s->intraonly) {
  1835. if (b->bs > BS_8x8) {
  1836. int mv0 = AV_RN32A(&b->mv[3][0]), mv1 = AV_RN32A(&b->mv[3][1]);
  1837. AV_COPY32(&s->left_mv_ctx[row7 * 2 + 0][0], &b->mv[1][0]);
  1838. AV_COPY32(&s->left_mv_ctx[row7 * 2 + 0][1], &b->mv[1][1]);
  1839. AV_WN32A(&s->left_mv_ctx[row7 * 2 + 1][0], mv0);
  1840. AV_WN32A(&s->left_mv_ctx[row7 * 2 + 1][1], mv1);
  1841. AV_COPY32(&s->above_mv_ctx[col * 2 + 0][0], &b->mv[2][0]);
  1842. AV_COPY32(&s->above_mv_ctx[col * 2 + 0][1], &b->mv[2][1]);
  1843. AV_WN32A(&s->above_mv_ctx[col * 2 + 1][0], mv0);
  1844. AV_WN32A(&s->above_mv_ctx[col * 2 + 1][1], mv1);
  1845. } else {
  1846. int n, mv0 = AV_RN32A(&b->mv[3][0]), mv1 = AV_RN32A(&b->mv[3][1]);
  1847. for (n = 0; n < w4 * 2; n++) {
  1848. AV_WN32A(&s->above_mv_ctx[col * 2 + n][0], mv0);
  1849. AV_WN32A(&s->above_mv_ctx[col * 2 + n][1], mv1);
  1850. }
  1851. for (n = 0; n < h4 * 2; n++) {
  1852. AV_WN32A(&s->left_mv_ctx[row7 * 2 + n][0], mv0);
  1853. AV_WN32A(&s->left_mv_ctx[row7 * 2 + n][1], mv1);
  1854. }
  1855. }
  1856. }
  1857. // FIXME kinda ugly
  1858. for (y = 0; y < h4; y++) {
  1859. int x, o = (row + y) * s->sb_cols * 8 + col;
  1860. struct VP9mvrefPair *mv = &s->frames[CUR_FRAME].mv[o];
  1861. if (b->intra) {
  1862. for (x = 0; x < w4; x++) {
  1863. mv[x].ref[0] =
  1864. mv[x].ref[1] = -1;
  1865. }
  1866. } else if (b->comp) {
  1867. for (x = 0; x < w4; x++) {
  1868. mv[x].ref[0] = b->ref[0];
  1869. mv[x].ref[1] = b->ref[1];
  1870. AV_COPY32(&mv[x].mv[0], &b->mv[3][0]);
  1871. AV_COPY32(&mv[x].mv[1], &b->mv[3][1]);
  1872. }
  1873. } else {
  1874. for (x = 0; x < w4; x++) {
  1875. mv[x].ref[0] = b->ref[0];
  1876. mv[x].ref[1] = -1;
  1877. AV_COPY32(&mv[x].mv[0], &b->mv[3][0]);
  1878. }
  1879. }
  1880. }
  1881. }
  1882. // FIXME merge cnt/eob arguments?
  1883. static av_always_inline int
  1884. decode_coeffs_b_generic(VP56RangeCoder *c, int16_t *coef, int n_coeffs,
  1885. int is_tx32x32, unsigned (*cnt)[6][3],
  1886. unsigned (*eob)[6][2], uint8_t (*p)[6][11],
  1887. int nnz, const int16_t *scan, const int16_t (*nb)[2],
  1888. const int16_t *band_counts, const int16_t *qmul)
  1889. {
  1890. int i = 0, band = 0, band_left = band_counts[band];
  1891. uint8_t *tp = p[0][nnz];
  1892. uint8_t cache[1024];
  1893. do {
  1894. int val, rc;
  1895. val = vp56_rac_get_prob_branchy(c, tp[0]); // eob
  1896. eob[band][nnz][val]++;
  1897. if (!val)
  1898. break;
  1899. skip_eob:
  1900. if (!vp56_rac_get_prob_branchy(c, tp[1])) { // zero
  1901. cnt[band][nnz][0]++;
  1902. if (!--band_left)
  1903. band_left = band_counts[++band];
  1904. cache[scan[i]] = 0;
  1905. nnz = (1 + cache[nb[i][0]] + cache[nb[i][1]]) >> 1;
  1906. tp = p[band][nnz];
  1907. if (++i == n_coeffs)
  1908. break; //invalid input; blocks should end with EOB
  1909. goto skip_eob;
  1910. }
  1911. rc = scan[i];
  1912. if (!vp56_rac_get_prob_branchy(c, tp[2])) { // one
  1913. cnt[band][nnz][1]++;
  1914. val = 1;
  1915. cache[rc] = 1;
  1916. } else {
  1917. // fill in p[3-10] (model fill) - only once per frame for each pos
  1918. if (!tp[3])
  1919. memcpy(&tp[3], vp9_model_pareto8[tp[2]], 8);
  1920. cnt[band][nnz][2]++;
  1921. if (!vp56_rac_get_prob_branchy(c, tp[3])) { // 2, 3, 4
  1922. if (!vp56_rac_get_prob_branchy(c, tp[4])) {
  1923. cache[rc] = val = 2;
  1924. } else {
  1925. val = 3 + vp56_rac_get_prob(c, tp[5]);
  1926. cache[rc] = 3;
  1927. }
  1928. } else if (!vp56_rac_get_prob_branchy(c, tp[6])) { // cat1/2
  1929. cache[rc] = 4;
  1930. if (!vp56_rac_get_prob_branchy(c, tp[7])) {
  1931. val = 5 + vp56_rac_get_prob(c, 159);
  1932. } else {
  1933. val = 7 + (vp56_rac_get_prob(c, 165) << 1);
  1934. val += vp56_rac_get_prob(c, 145);
  1935. }
  1936. } else { // cat 3-6
  1937. cache[rc] = 5;
  1938. if (!vp56_rac_get_prob_branchy(c, tp[8])) {
  1939. if (!vp56_rac_get_prob_branchy(c, tp[9])) {
  1940. val = 11 + (vp56_rac_get_prob(c, 173) << 2);
  1941. val += (vp56_rac_get_prob(c, 148) << 1);
  1942. val += vp56_rac_get_prob(c, 140);
  1943. } else {
  1944. val = 19 + (vp56_rac_get_prob(c, 176) << 3);
  1945. val += (vp56_rac_get_prob(c, 155) << 2);
  1946. val += (vp56_rac_get_prob(c, 140) << 1);
  1947. val += vp56_rac_get_prob(c, 135);
  1948. }
  1949. } else if (!vp56_rac_get_prob_branchy(c, tp[10])) {
  1950. val = 35 + (vp56_rac_get_prob(c, 180) << 4);
  1951. val += (vp56_rac_get_prob(c, 157) << 3);
  1952. val += (vp56_rac_get_prob(c, 141) << 2);
  1953. val += (vp56_rac_get_prob(c, 134) << 1);
  1954. val += vp56_rac_get_prob(c, 130);
  1955. } else {
  1956. val = 67 + (vp56_rac_get_prob(c, 254) << 13);
  1957. val += (vp56_rac_get_prob(c, 254) << 12);
  1958. val += (vp56_rac_get_prob(c, 254) << 11);
  1959. val += (vp56_rac_get_prob(c, 252) << 10);
  1960. val += (vp56_rac_get_prob(c, 249) << 9);
  1961. val += (vp56_rac_get_prob(c, 243) << 8);
  1962. val += (vp56_rac_get_prob(c, 230) << 7);
  1963. val += (vp56_rac_get_prob(c, 196) << 6);
  1964. val += (vp56_rac_get_prob(c, 177) << 5);
  1965. val += (vp56_rac_get_prob(c, 153) << 4);
  1966. val += (vp56_rac_get_prob(c, 140) << 3);
  1967. val += (vp56_rac_get_prob(c, 133) << 2);
  1968. val += (vp56_rac_get_prob(c, 130) << 1);
  1969. val += vp56_rac_get_prob(c, 129);
  1970. }
  1971. }
  1972. }
  1973. if (!--band_left)
  1974. band_left = band_counts[++band];
  1975. if (is_tx32x32)
  1976. coef[rc] = ((vp8_rac_get(c) ? -val : val) * qmul[!!i]) / 2;
  1977. else
  1978. coef[rc] = (vp8_rac_get(c) ? -val : val) * qmul[!!i];
  1979. nnz = (1 + cache[nb[i][0]] + cache[nb[i][1]]) >> 1;
  1980. tp = p[band][nnz];
  1981. } while (++i < n_coeffs);
  1982. return i;
  1983. }
  1984. static int decode_coeffs_b(VP56RangeCoder *c, int16_t *coef, int n_coeffs,
  1985. unsigned (*cnt)[6][3], unsigned (*eob)[6][2],
  1986. uint8_t (*p)[6][11], int nnz, const int16_t *scan,
  1987. const int16_t (*nb)[2], const int16_t *band_counts,
  1988. const int16_t *qmul)
  1989. {
  1990. return decode_coeffs_b_generic(c, coef, n_coeffs, 0, cnt, eob, p,
  1991. nnz, scan, nb, band_counts, qmul);
  1992. }
  1993. static int decode_coeffs_b32(VP56RangeCoder *c, int16_t *coef, int n_coeffs,
  1994. unsigned (*cnt)[6][3], unsigned (*eob)[6][2],
  1995. uint8_t (*p)[6][11], int nnz, const int16_t *scan,
  1996. const int16_t (*nb)[2], const int16_t *band_counts,
  1997. const int16_t *qmul)
  1998. {
  1999. return decode_coeffs_b_generic(c, coef, n_coeffs, 1, cnt, eob, p,
  2000. nnz, scan, nb, band_counts, qmul);
  2001. }
  2002. static void decode_coeffs(AVCodecContext *ctx)
  2003. {
  2004. VP9Context *s = ctx->priv_data;
  2005. VP9Block *b = s->b;
  2006. int row = s->row, col = s->col;
  2007. uint8_t (*p)[6][11] = s->prob.coef[b->tx][0 /* y */][!b->intra];
  2008. unsigned (*c)[6][3] = s->counts.coef[b->tx][0 /* y */][!b->intra];
  2009. unsigned (*e)[6][2] = s->counts.eob[b->tx][0 /* y */][!b->intra];
  2010. int w4 = bwh_tab[1][b->bs][0] << 1, h4 = bwh_tab[1][b->bs][1] << 1;
  2011. int end_x = FFMIN(2 * (s->cols - col), w4);
  2012. int end_y = FFMIN(2 * (s->rows - row), h4);
  2013. int n, pl, x, y, res;
  2014. int16_t (*qmul)[2] = s->segmentation.feat[b->seg_id].qmul;
  2015. int tx = 4 * s->lossless + b->tx;
  2016. const int16_t * const *yscans = vp9_scans[tx];
  2017. const int16_t (* const *ynbs)[2] = vp9_scans_nb[tx];
  2018. const int16_t *uvscan = vp9_scans[b->uvtx][DCT_DCT];
  2019. const int16_t (*uvnb)[2] = vp9_scans_nb[b->uvtx][DCT_DCT];
  2020. uint8_t *a = &s->above_y_nnz_ctx[col * 2];
  2021. uint8_t *l = &s->left_y_nnz_ctx[(row & 7) << 1];
  2022. static const int16_t band_counts[4][8] = {
  2023. { 1, 2, 3, 4, 3, 16 - 13 },
  2024. { 1, 2, 3, 4, 11, 64 - 21 },
  2025. { 1, 2, 3, 4, 11, 256 - 21 },
  2026. { 1, 2, 3, 4, 11, 1024 - 21 },
  2027. };
  2028. const int16_t *y_band_counts = band_counts[b->tx];
  2029. const int16_t *uv_band_counts = band_counts[b->uvtx];
  2030. #define MERGE(la, end, step, rd) \
  2031. for (n = 0; n < end; n += step) \
  2032. la[n] = !!rd(&la[n])
  2033. #define MERGE_CTX(step, rd) \
  2034. do { \
  2035. MERGE(l, end_y, step, rd); \
  2036. MERGE(a, end_x, step, rd); \
  2037. } while (0)
  2038. #define DECODE_Y_COEF_LOOP(step, mode_index, v) \
  2039. for (n = 0, y = 0; y < end_y; y += step) { \
  2040. for (x = 0; x < end_x; x += step, n += step * step) { \
  2041. enum TxfmType txtp = vp9_intra_txfm_type[b->mode[mode_index]]; \
  2042. res = decode_coeffs_b##v(&s->c, s->block + 16 * n, 16 * step * step, \
  2043. c, e, p, a[x] + l[y], yscans[txtp], \
  2044. ynbs[txtp], y_band_counts, qmul[0]); \
  2045. a[x] = l[y] = !!res; \
  2046. if (step >= 4) { \
  2047. AV_WN16A(&s->eob[n], res); \
  2048. } else { \
  2049. s->eob[n] = res; \
  2050. } \
  2051. } \
  2052. }
  2053. #define SPLAT(la, end, step, cond) \
  2054. if (step == 2) { \
  2055. for (n = 1; n < end; n += step) \
  2056. la[n] = la[n - 1]; \
  2057. } else if (step == 4) { \
  2058. if (cond) { \
  2059. for (n = 0; n < end; n += step) \
  2060. AV_WN32A(&la[n], la[n] * 0x01010101); \
  2061. } else { \
  2062. for (n = 0; n < end; n += step) \
  2063. memset(&la[n + 1], la[n], FFMIN(end - n - 1, 3)); \
  2064. } \
  2065. } else /* step == 8 */ { \
  2066. if (cond) { \
  2067. if (HAVE_FAST_64BIT) { \
  2068. for (n = 0; n < end; n += step) \
  2069. AV_WN64A(&la[n], la[n] * 0x0101010101010101ULL); \
  2070. } else { \
  2071. for (n = 0; n < end; n += step) { \
  2072. uint32_t v32 = la[n] * 0x01010101; \
  2073. AV_WN32A(&la[n], v32); \
  2074. AV_WN32A(&la[n + 4], v32); \
  2075. } \
  2076. } \
  2077. } else { \
  2078. for (n = 0; n < end; n += step) \
  2079. memset(&la[n + 1], la[n], FFMIN(end - n - 1, 7)); \
  2080. } \
  2081. }
  2082. #define SPLAT_CTX(step) \
  2083. do { \
  2084. SPLAT(a, end_x, step, end_x == w4); \
  2085. SPLAT(l, end_y, step, end_y == h4); \
  2086. } while (0)
  2087. /* y tokens */
  2088. switch (b->tx) {
  2089. case TX_4X4:
  2090. DECODE_Y_COEF_LOOP(1, b->bs > BS_8x8 ? n : 0,);
  2091. break;
  2092. case TX_8X8:
  2093. MERGE_CTX(2, AV_RN16A);
  2094. DECODE_Y_COEF_LOOP(2, 0,);
  2095. SPLAT_CTX(2);
  2096. break;
  2097. case TX_16X16:
  2098. MERGE_CTX(4, AV_RN32A);
  2099. DECODE_Y_COEF_LOOP(4, 0,);
  2100. SPLAT_CTX(4);
  2101. break;
  2102. case TX_32X32:
  2103. MERGE_CTX(8, AV_RN64A);
  2104. DECODE_Y_COEF_LOOP(8, 0, 32);
  2105. SPLAT_CTX(8);
  2106. break;
  2107. }
  2108. #define DECODE_UV_COEF_LOOP(step) \
  2109. for (n = 0, y = 0; y < end_y; y += step) { \
  2110. for (x = 0; x < end_x; x += step, n += step * step) { \
  2111. res = decode_coeffs_b(&s->c, s->uvblock[pl] + 16 * n, \
  2112. 16 * step * step, c, e, p, a[x] + l[y], \
  2113. uvscan, uvnb, uv_band_counts, qmul[1]); \
  2114. a[x] = l[y] = !!res; \
  2115. if (step >= 4) { \
  2116. AV_WN16A(&s->uveob[pl][n], res); \
  2117. } else { \
  2118. s->uveob[pl][n] = res; \
  2119. } \
  2120. } \
  2121. }
  2122. p = s->prob.coef[b->uvtx][1 /* uv */][!b->intra];
  2123. c = s->counts.coef[b->uvtx][1 /* uv */][!b->intra];
  2124. e = s->counts.eob[b->uvtx][1 /* uv */][!b->intra];
  2125. w4 >>= 1;
  2126. h4 >>= 1;
  2127. end_x >>= 1;
  2128. end_y >>= 1;
  2129. for (pl = 0; pl < 2; pl++) {
  2130. a = &s->above_uv_nnz_ctx[pl][col];
  2131. l = &s->left_uv_nnz_ctx[pl][row & 7];
  2132. switch (b->uvtx) {
  2133. case TX_4X4:
  2134. DECODE_UV_COEF_LOOP(1);
  2135. break;
  2136. case TX_8X8:
  2137. MERGE_CTX(2, AV_RN16A);
  2138. DECODE_UV_COEF_LOOP(2);
  2139. SPLAT_CTX(2);
  2140. break;
  2141. case TX_16X16:
  2142. MERGE_CTX(4, AV_RN32A);
  2143. DECODE_UV_COEF_LOOP(4);
  2144. SPLAT_CTX(4);
  2145. break;
  2146. case TX_32X32:
  2147. MERGE_CTX(8, AV_RN64A);
  2148. // a 64x64 (max) uv block can ever only contain 1 tx32x32 block
  2149. // so there is no need to loop
  2150. res = decode_coeffs_b32(&s->c, s->uvblock[pl],
  2151. 1024, c, e, p, a[0] + l[0],
  2152. uvscan, uvnb, uv_band_counts, qmul[1]);
  2153. a[0] = l[0] = !!res;
  2154. AV_WN16A(&s->uveob[pl][0], res);
  2155. SPLAT_CTX(8);
  2156. break;
  2157. }
  2158. }
  2159. }
  2160. static av_always_inline int check_intra_mode(VP9Context *s, int mode, uint8_t **a,
  2161. uint8_t *dst_edge, ptrdiff_t stride_edge,
  2162. uint8_t *dst_inner, ptrdiff_t stride_inner,
  2163. uint8_t *l, int col, int x, int w,
  2164. int row, int y, enum TxfmMode tx,
  2165. int p)
  2166. {
  2167. int have_top = row > 0 || y > 0;
  2168. int have_left = col > s->tiling.tile_col_start || x > 0;
  2169. int have_right = x < w - 1;
  2170. static const uint8_t mode_conv[10][2 /* have_left */][2 /* have_top */] = {
  2171. [VERT_PRED] = { { DC_127_PRED, VERT_PRED },
  2172. { DC_127_PRED, VERT_PRED } },
  2173. [HOR_PRED] = { { DC_129_PRED, DC_129_PRED },
  2174. { HOR_PRED, HOR_PRED } },
  2175. [DC_PRED] = { { DC_128_PRED, TOP_DC_PRED },
  2176. { LEFT_DC_PRED, DC_PRED } },
  2177. [DIAG_DOWN_LEFT_PRED] = { { DC_127_PRED, DIAG_DOWN_LEFT_PRED },
  2178. { DC_127_PRED, DIAG_DOWN_LEFT_PRED } },
  2179. [DIAG_DOWN_RIGHT_PRED] = { { DIAG_DOWN_RIGHT_PRED, DIAG_DOWN_RIGHT_PRED },
  2180. { DIAG_DOWN_RIGHT_PRED, DIAG_DOWN_RIGHT_PRED } },
  2181. [VERT_RIGHT_PRED] = { { VERT_RIGHT_PRED, VERT_RIGHT_PRED },
  2182. { VERT_RIGHT_PRED, VERT_RIGHT_PRED } },
  2183. [HOR_DOWN_PRED] = { { HOR_DOWN_PRED, HOR_DOWN_PRED },
  2184. { HOR_DOWN_PRED, HOR_DOWN_PRED } },
  2185. [VERT_LEFT_PRED] = { { DC_127_PRED, VERT_LEFT_PRED },
  2186. { DC_127_PRED, VERT_LEFT_PRED } },
  2187. [HOR_UP_PRED] = { { DC_129_PRED, DC_129_PRED },
  2188. { HOR_UP_PRED, HOR_UP_PRED } },
  2189. [TM_VP8_PRED] = { { DC_129_PRED, VERT_PRED },
  2190. { HOR_PRED, TM_VP8_PRED } },
  2191. };
  2192. static const struct {
  2193. uint8_t needs_left:1;
  2194. uint8_t needs_top:1;
  2195. uint8_t needs_topleft:1;
  2196. uint8_t needs_topright:1;
  2197. } edges[N_INTRA_PRED_MODES] = {
  2198. [VERT_PRED] = { .needs_top = 1 },
  2199. [HOR_PRED] = { .needs_left = 1 },
  2200. [DC_PRED] = { .needs_top = 1, .needs_left = 1 },
  2201. [DIAG_DOWN_LEFT_PRED] = { .needs_top = 1, .needs_topright = 1 },
  2202. [DIAG_DOWN_RIGHT_PRED] = { .needs_left = 1, .needs_top = 1, .needs_topleft = 1 },
  2203. [VERT_RIGHT_PRED] = { .needs_left = 1, .needs_top = 1, .needs_topleft = 1 },
  2204. [HOR_DOWN_PRED] = { .needs_left = 1, .needs_top = 1, .needs_topleft = 1 },
  2205. [VERT_LEFT_PRED] = { .needs_top = 1, .needs_topright = 1 },
  2206. [HOR_UP_PRED] = { .needs_left = 1 },
  2207. [TM_VP8_PRED] = { .needs_left = 1, .needs_top = 1, .needs_topleft = 1 },
  2208. [LEFT_DC_PRED] = { .needs_left = 1 },
  2209. [TOP_DC_PRED] = { .needs_top = 1 },
  2210. [DC_128_PRED] = { 0 },
  2211. [DC_127_PRED] = { 0 },
  2212. [DC_129_PRED] = { 0 }
  2213. };
  2214. av_assert2(mode >= 0 && mode < 10);
  2215. mode = mode_conv[mode][have_left][have_top];
  2216. if (edges[mode].needs_top) {
  2217. uint8_t *top, *topleft;
  2218. int n_px_need = 4 << tx, n_px_have = (((s->cols - col) << !p) - x) * 4;
  2219. int n_px_need_tr = 0;
  2220. if (tx == TX_4X4 && edges[mode].needs_topright && have_right)
  2221. n_px_need_tr = 4;
  2222. // if top of sb64-row, use s->intra_pred_data[] instead of
  2223. // dst[-stride] for intra prediction (it contains pre- instead of
  2224. // post-loopfilter data)
  2225. if (have_top) {
  2226. top = !(row & 7) && !y ?
  2227. s->intra_pred_data[p] + col * (8 >> !!p) + x * 4 :
  2228. y == 0 ? &dst_edge[-stride_edge] : &dst_inner[-stride_inner];
  2229. if (have_left)
  2230. topleft = !(row & 7) && !y ?
  2231. s->intra_pred_data[p] + col * (8 >> !!p) + x * 4 :
  2232. y == 0 || x == 0 ? &dst_edge[-stride_edge] :
  2233. &dst_inner[-stride_inner];
  2234. }
  2235. if (have_top &&
  2236. (!edges[mode].needs_topleft || (have_left && top == topleft)) &&
  2237. (tx != TX_4X4 || !edges[mode].needs_topright || have_right) &&
  2238. n_px_need + n_px_need_tr <= n_px_have) {
  2239. *a = top;
  2240. } else {
  2241. if (have_top) {
  2242. if (n_px_need <= n_px_have) {
  2243. memcpy(*a, top, n_px_need);
  2244. } else {
  2245. memcpy(*a, top, n_px_have);
  2246. memset(&(*a)[n_px_have], (*a)[n_px_have - 1],
  2247. n_px_need - n_px_have);
  2248. }
  2249. } else {
  2250. memset(*a, 127, n_px_need);
  2251. }
  2252. if (edges[mode].needs_topleft) {
  2253. if (have_left && have_top) {
  2254. (*a)[-1] = topleft[-1];
  2255. } else {
  2256. (*a)[-1] = have_top ? 129 : 127;
  2257. }
  2258. }
  2259. if (tx == TX_4X4 && edges[mode].needs_topright) {
  2260. if (have_top && have_right &&
  2261. n_px_need + n_px_need_tr <= n_px_have) {
  2262. memcpy(&(*a)[4], &top[4], 4);
  2263. } else {
  2264. memset(&(*a)[4], (*a)[3], 4);
  2265. }
  2266. }
  2267. }
  2268. }
  2269. if (edges[mode].needs_left) {
  2270. if (have_left) {
  2271. int n_px_need = 4 << tx, i, n_px_have = (((s->rows - row) << !p) - y) * 4;
  2272. uint8_t *dst = x == 0 ? dst_edge : dst_inner;
  2273. ptrdiff_t stride = x == 0 ? stride_edge : stride_inner;
  2274. if (n_px_need <= n_px_have) {
  2275. for (i = 0; i < n_px_need; i++)
  2276. l[n_px_need - 1 - i] = dst[i * stride - 1];
  2277. } else {
  2278. for (i = 0; i < n_px_have; i++)
  2279. l[n_px_need - 1 - i] = dst[i * stride - 1];
  2280. memset(l, l[n_px_need - n_px_have], n_px_need - n_px_have);
  2281. }
  2282. } else {
  2283. memset(l, 129, 4 << tx);
  2284. }
  2285. }
  2286. return mode;
  2287. }
  2288. static void intra_recon(AVCodecContext *ctx, ptrdiff_t y_off, ptrdiff_t uv_off)
  2289. {
  2290. VP9Context *s = ctx->priv_data;
  2291. VP9Block *b = s->b;
  2292. int row = s->row, col = s->col;
  2293. int w4 = bwh_tab[1][b->bs][0] << 1, step1d = 1 << b->tx, n;
  2294. int h4 = bwh_tab[1][b->bs][1] << 1, x, y, step = 1 << (b->tx * 2);
  2295. int end_x = FFMIN(2 * (s->cols - col), w4);
  2296. int end_y = FFMIN(2 * (s->rows - row), h4);
  2297. int tx = 4 * s->lossless + b->tx, uvtx = b->uvtx + 4 * s->lossless;
  2298. int uvstep1d = 1 << b->uvtx, p;
  2299. uint8_t *dst = s->dst[0], *dst_r = s->frames[CUR_FRAME].tf.f->data[0] + y_off;
  2300. LOCAL_ALIGNED_32(uint8_t, a_buf, [64]);
  2301. LOCAL_ALIGNED_32(uint8_t, l, [32]);
  2302. for (n = 0, y = 0; y < end_y; y += step1d) {
  2303. uint8_t *ptr = dst, *ptr_r = dst_r;
  2304. for (x = 0; x < end_x; x += step1d, ptr += 4 * step1d,
  2305. ptr_r += 4 * step1d, n += step) {
  2306. int mode = b->mode[b->bs > BS_8x8 && b->tx == TX_4X4 ?
  2307. y * 2 + x : 0];
  2308. uint8_t *a = &a_buf[32];
  2309. enum TxfmType txtp = vp9_intra_txfm_type[mode];
  2310. int eob = b->skip ? 0 : b->tx > TX_8X8 ? AV_RN16A(&s->eob[n]) : s->eob[n];
  2311. mode = check_intra_mode(s, mode, &a, ptr_r,
  2312. s->frames[CUR_FRAME].tf.f->linesize[0],
  2313. ptr, s->y_stride, l,
  2314. col, x, w4, row, y, b->tx, 0);
  2315. s->dsp.intra_pred[b->tx][mode](ptr, s->y_stride, l, a);
  2316. if (eob)
  2317. s->dsp.itxfm_add[tx][txtp](ptr, s->y_stride,
  2318. s->block + 16 * n, eob);
  2319. }
  2320. dst_r += 4 * step1d * s->frames[CUR_FRAME].tf.f->linesize[0];
  2321. dst += 4 * step1d * s->y_stride;
  2322. }
  2323. // U/V
  2324. w4 >>= 1;
  2325. end_x >>= 1;
  2326. end_y >>= 1;
  2327. step = 1 << (b->uvtx * 2);
  2328. for (p = 0; p < 2; p++) {
  2329. dst = s->dst[1 + p];
  2330. dst_r = s->frames[CUR_FRAME].tf.f->data[1 + p] + uv_off;
  2331. for (n = 0, y = 0; y < end_y; y += uvstep1d) {
  2332. uint8_t *ptr = dst, *ptr_r = dst_r;
  2333. for (x = 0; x < end_x; x += uvstep1d, ptr += 4 * uvstep1d,
  2334. ptr_r += 4 * uvstep1d, n += step) {
  2335. int mode = b->uvmode;
  2336. uint8_t *a = &a_buf[32];
  2337. int eob = b->skip ? 0 : b->uvtx > TX_8X8 ? AV_RN16A(&s->uveob[p][n]) : s->uveob[p][n];
  2338. mode = check_intra_mode(s, mode, &a, ptr_r,
  2339. s->frames[CUR_FRAME].tf.f->linesize[1],
  2340. ptr, s->uv_stride, l,
  2341. col, x, w4, row, y, b->uvtx, p + 1);
  2342. s->dsp.intra_pred[b->uvtx][mode](ptr, s->uv_stride, l, a);
  2343. if (eob)
  2344. s->dsp.itxfm_add[uvtx][DCT_DCT](ptr, s->uv_stride,
  2345. s->uvblock[p] + 16 * n, eob);
  2346. }
  2347. dst_r += 4 * uvstep1d * s->frames[CUR_FRAME].tf.f->linesize[1];
  2348. dst += 4 * uvstep1d * s->uv_stride;
  2349. }
  2350. }
  2351. }
  2352. static av_always_inline void mc_luma_dir(VP9Context *s, vp9_mc_func (*mc)[2],
  2353. uint8_t *dst, ptrdiff_t dst_stride,
  2354. const uint8_t *ref, ptrdiff_t ref_stride,
  2355. ThreadFrame *ref_frame,
  2356. ptrdiff_t y, ptrdiff_t x, const VP56mv *mv,
  2357. int bw, int bh, int w, int h)
  2358. {
  2359. int mx = mv->x, my = mv->y, th;
  2360. y += my >> 3;
  2361. x += mx >> 3;
  2362. ref += y * ref_stride + x;
  2363. mx &= 7;
  2364. my &= 7;
  2365. // FIXME bilinear filter only needs 0/1 pixels, not 3/4
  2366. // we use +7 because the last 7 pixels of each sbrow can be changed in
  2367. // the longest loopfilter of the next sbrow
  2368. th = (y + bh + 4 * !!my + 7) >> 6;
  2369. ff_thread_await_progress(ref_frame, FFMAX(th, 0), 0);
  2370. if (x < !!mx * 3 || y < !!my * 3 ||
  2371. x + !!mx * 4 > w - bw || y + !!my * 4 > h - bh) {
  2372. s->vdsp.emulated_edge_mc(s->edge_emu_buffer,
  2373. ref - !!my * 3 * ref_stride - !!mx * 3,
  2374. 80, ref_stride,
  2375. bw + !!mx * 7, bh + !!my * 7,
  2376. x - !!mx * 3, y - !!my * 3, w, h);
  2377. ref = s->edge_emu_buffer + !!my * 3 * 80 + !!mx * 3;
  2378. ref_stride = 80;
  2379. }
  2380. mc[!!mx][!!my](dst, dst_stride, ref, ref_stride, bh, mx << 1, my << 1);
  2381. }
  2382. static av_always_inline void mc_chroma_dir(VP9Context *s, vp9_mc_func (*mc)[2],
  2383. uint8_t *dst_u, uint8_t *dst_v,
  2384. ptrdiff_t dst_stride,
  2385. const uint8_t *ref_u, ptrdiff_t src_stride_u,
  2386. const uint8_t *ref_v, ptrdiff_t src_stride_v,
  2387. ThreadFrame *ref_frame,
  2388. ptrdiff_t y, ptrdiff_t x, const VP56mv *mv,
  2389. int bw, int bh, int w, int h)
  2390. {
  2391. int mx = mv->x, my = mv->y, th;
  2392. y += my >> 4;
  2393. x += mx >> 4;
  2394. ref_u += y * src_stride_u + x;
  2395. ref_v += y * src_stride_v + x;
  2396. mx &= 15;
  2397. my &= 15;
  2398. // FIXME bilinear filter only needs 0/1 pixels, not 3/4
  2399. // we use +7 because the last 7 pixels of each sbrow can be changed in
  2400. // the longest loopfilter of the next sbrow
  2401. th = (y + bh + 4 * !!my + 7) >> 5;
  2402. ff_thread_await_progress(ref_frame, FFMAX(th, 0), 0);
  2403. if (x < !!mx * 3 || y < !!my * 3 ||
  2404. x + !!mx * 4 > w - bw || y + !!my * 4 > h - bh) {
  2405. s->vdsp.emulated_edge_mc(s->edge_emu_buffer,
  2406. ref_u - !!my * 3 * src_stride_u - !!mx * 3,
  2407. 80, src_stride_u,
  2408. bw + !!mx * 7, bh + !!my * 7,
  2409. x - !!mx * 3, y - !!my * 3, w, h);
  2410. ref_u = s->edge_emu_buffer + !!my * 3 * 80 + !!mx * 3;
  2411. mc[!!mx][!!my](dst_u, dst_stride, ref_u, 80, bh, mx, my);
  2412. s->vdsp.emulated_edge_mc(s->edge_emu_buffer,
  2413. ref_v - !!my * 3 * src_stride_v - !!mx * 3,
  2414. 80, src_stride_v,
  2415. bw + !!mx * 7, bh + !!my * 7,
  2416. x - !!mx * 3, y - !!my * 3, w, h);
  2417. ref_v = s->edge_emu_buffer + !!my * 3 * 80 + !!mx * 3;
  2418. mc[!!mx][!!my](dst_v, dst_stride, ref_v, 80, bh, mx, my);
  2419. } else {
  2420. mc[!!mx][!!my](dst_u, dst_stride, ref_u, src_stride_u, bh, mx, my);
  2421. mc[!!mx][!!my](dst_v, dst_stride, ref_v, src_stride_v, bh, mx, my);
  2422. }
  2423. }
  2424. static void inter_recon(AVCodecContext *ctx)
  2425. {
  2426. static const uint8_t bwlog_tab[2][N_BS_SIZES] = {
  2427. { 0, 0, 1, 1, 1, 2, 2, 2, 3, 3, 3, 4, 4 },
  2428. { 1, 1, 2, 2, 2, 3, 3, 3, 4, 4, 4, 4, 4 },
  2429. };
  2430. VP9Context *s = ctx->priv_data;
  2431. VP9Block *b = s->b;
  2432. int row = s->row, col = s->col;
  2433. ThreadFrame *tref1 = &s->refs[s->refidx[b->ref[0]]], *tref2;
  2434. AVFrame *ref1 = tref1->f, *ref2;
  2435. int w1 = ref1->width, h1 = ref1->height, w2, h2;
  2436. ptrdiff_t ls_y = s->y_stride, ls_uv = s->uv_stride;
  2437. if (b->comp) {
  2438. tref2 = &s->refs[s->refidx[b->ref[1]]];
  2439. ref2 = tref2->f;
  2440. w2 = ref2->width;
  2441. h2 = ref2->height;
  2442. }
  2443. // y inter pred
  2444. if (b->bs > BS_8x8) {
  2445. if (b->bs == BS_8x4) {
  2446. mc_luma_dir(s, s->dsp.mc[3][b->filter][0], s->dst[0], ls_y,
  2447. ref1->data[0], ref1->linesize[0], tref1,
  2448. row << 3, col << 3, &b->mv[0][0], 8, 4, w1, h1);
  2449. mc_luma_dir(s, s->dsp.mc[3][b->filter][0],
  2450. s->dst[0] + 4 * ls_y, ls_y,
  2451. ref1->data[0], ref1->linesize[0], tref1,
  2452. (row << 3) + 4, col << 3, &b->mv[2][0], 8, 4, w1, h1);
  2453. if (b->comp) {
  2454. mc_luma_dir(s, s->dsp.mc[3][b->filter][1], s->dst[0], ls_y,
  2455. ref2->data[0], ref2->linesize[0], tref2,
  2456. row << 3, col << 3, &b->mv[0][1], 8, 4, w2, h2);
  2457. mc_luma_dir(s, s->dsp.mc[3][b->filter][1],
  2458. s->dst[0] + 4 * ls_y, ls_y,
  2459. ref2->data[0], ref2->linesize[0], tref2,
  2460. (row << 3) + 4, col << 3, &b->mv[2][1], 8, 4, w2, h2);
  2461. }
  2462. } else if (b->bs == BS_4x8) {
  2463. mc_luma_dir(s, s->dsp.mc[4][b->filter][0], s->dst[0], ls_y,
  2464. ref1->data[0], ref1->linesize[0], tref1,
  2465. row << 3, col << 3, &b->mv[0][0], 4, 8, w1, h1);
  2466. mc_luma_dir(s, s->dsp.mc[4][b->filter][0], s->dst[0] + 4, ls_y,
  2467. ref1->data[0], ref1->linesize[0], tref1,
  2468. row << 3, (col << 3) + 4, &b->mv[1][0], 4, 8, w1, h1);
  2469. if (b->comp) {
  2470. mc_luma_dir(s, s->dsp.mc[4][b->filter][1], s->dst[0], ls_y,
  2471. ref2->data[0], ref2->linesize[0], tref2,
  2472. row << 3, col << 3, &b->mv[0][1], 4, 8, w2, h2);
  2473. mc_luma_dir(s, s->dsp.mc[4][b->filter][1], s->dst[0] + 4, ls_y,
  2474. ref2->data[0], ref2->linesize[0], tref2,
  2475. row << 3, (col << 3) + 4, &b->mv[1][1], 4, 8, w2, h2);
  2476. }
  2477. } else {
  2478. av_assert2(b->bs == BS_4x4);
  2479. // FIXME if two horizontally adjacent blocks have the same MV,
  2480. // do a w8 instead of a w4 call
  2481. mc_luma_dir(s, s->dsp.mc[4][b->filter][0], s->dst[0], ls_y,
  2482. ref1->data[0], ref1->linesize[0], tref1,
  2483. row << 3, col << 3, &b->mv[0][0], 4, 4, w1, h1);
  2484. mc_luma_dir(s, s->dsp.mc[4][b->filter][0], s->dst[0] + 4, ls_y,
  2485. ref1->data[0], ref1->linesize[0], tref1,
  2486. row << 3, (col << 3) + 4, &b->mv[1][0], 4, 4, w1, h1);
  2487. mc_luma_dir(s, s->dsp.mc[4][b->filter][0],
  2488. s->dst[0] + 4 * ls_y, ls_y,
  2489. ref1->data[0], ref1->linesize[0], tref1,
  2490. (row << 3) + 4, col << 3, &b->mv[2][0], 4, 4, w1, h1);
  2491. mc_luma_dir(s, s->dsp.mc[4][b->filter][0],
  2492. s->dst[0] + 4 * ls_y + 4, ls_y,
  2493. ref1->data[0], ref1->linesize[0], tref1,
  2494. (row << 3) + 4, (col << 3) + 4, &b->mv[3][0], 4, 4, w1, h1);
  2495. if (b->comp) {
  2496. mc_luma_dir(s, s->dsp.mc[4][b->filter][1], s->dst[0], ls_y,
  2497. ref2->data[0], ref2->linesize[0], tref2,
  2498. row << 3, col << 3, &b->mv[0][1], 4, 4, w2, h2);
  2499. mc_luma_dir(s, s->dsp.mc[4][b->filter][1], s->dst[0] + 4, ls_y,
  2500. ref2->data[0], ref2->linesize[0], tref2,
  2501. row << 3, (col << 3) + 4, &b->mv[1][1], 4, 4, w2, h2);
  2502. mc_luma_dir(s, s->dsp.mc[4][b->filter][1],
  2503. s->dst[0] + 4 * ls_y, ls_y,
  2504. ref2->data[0], ref2->linesize[0], tref2,
  2505. (row << 3) + 4, col << 3, &b->mv[2][1], 4, 4, w2, h2);
  2506. mc_luma_dir(s, s->dsp.mc[4][b->filter][1],
  2507. s->dst[0] + 4 * ls_y + 4, ls_y,
  2508. ref2->data[0], ref2->linesize[0], tref2,
  2509. (row << 3) + 4, (col << 3) + 4, &b->mv[3][1], 4, 4, w2, h2);
  2510. }
  2511. }
  2512. } else {
  2513. int bwl = bwlog_tab[0][b->bs];
  2514. int bw = bwh_tab[0][b->bs][0] * 4, bh = bwh_tab[0][b->bs][1] * 4;
  2515. mc_luma_dir(s, s->dsp.mc[bwl][b->filter][0], s->dst[0], ls_y,
  2516. ref1->data[0], ref1->linesize[0], tref1,
  2517. row << 3, col << 3, &b->mv[0][0],bw, bh, w1, h1);
  2518. if (b->comp)
  2519. mc_luma_dir(s, s->dsp.mc[bwl][b->filter][1], s->dst[0], ls_y,
  2520. ref2->data[0], ref2->linesize[0], tref2,
  2521. row << 3, col << 3, &b->mv[0][1], bw, bh, w2, h2);
  2522. }
  2523. // uv inter pred
  2524. {
  2525. int bwl = bwlog_tab[1][b->bs];
  2526. int bw = bwh_tab[1][b->bs][0] * 4, bh = bwh_tab[1][b->bs][1] * 4;
  2527. VP56mv mvuv;
  2528. w1 = (w1 + 1) >> 1;
  2529. h1 = (h1 + 1) >> 1;
  2530. if (b->comp) {
  2531. w2 = (w2 + 1) >> 1;
  2532. h2 = (h2 + 1) >> 1;
  2533. }
  2534. if (b->bs > BS_8x8) {
  2535. mvuv.x = ROUNDED_DIV(b->mv[0][0].x + b->mv[1][0].x + b->mv[2][0].x + b->mv[3][0].x, 4);
  2536. mvuv.y = ROUNDED_DIV(b->mv[0][0].y + b->mv[1][0].y + b->mv[2][0].y + b->mv[3][0].y, 4);
  2537. } else {
  2538. mvuv = b->mv[0][0];
  2539. }
  2540. mc_chroma_dir(s, s->dsp.mc[bwl][b->filter][0],
  2541. s->dst[1], s->dst[2], ls_uv,
  2542. ref1->data[1], ref1->linesize[1],
  2543. ref1->data[2], ref1->linesize[2], tref1,
  2544. row << 2, col << 2, &mvuv, bw, bh, w1, h1);
  2545. if (b->comp) {
  2546. if (b->bs > BS_8x8) {
  2547. mvuv.x = ROUNDED_DIV(b->mv[0][1].x + b->mv[1][1].x + b->mv[2][1].x + b->mv[3][1].x, 4);
  2548. mvuv.y = ROUNDED_DIV(b->mv[0][1].y + b->mv[1][1].y + b->mv[2][1].y + b->mv[3][1].y, 4);
  2549. } else {
  2550. mvuv = b->mv[0][1];
  2551. }
  2552. mc_chroma_dir(s, s->dsp.mc[bwl][b->filter][1],
  2553. s->dst[1], s->dst[2], ls_uv,
  2554. ref2->data[1], ref2->linesize[1],
  2555. ref2->data[2], ref2->linesize[2], tref2,
  2556. row << 2, col << 2, &mvuv, bw, bh, w2, h2);
  2557. }
  2558. }
  2559. if (!b->skip) {
  2560. /* mostly copied intra_reconn() */
  2561. int w4 = bwh_tab[1][b->bs][0] << 1, step1d = 1 << b->tx, n;
  2562. int h4 = bwh_tab[1][b->bs][1] << 1, x, y, step = 1 << (b->tx * 2);
  2563. int end_x = FFMIN(2 * (s->cols - col), w4);
  2564. int end_y = FFMIN(2 * (s->rows - row), h4);
  2565. int tx = 4 * s->lossless + b->tx, uvtx = b->uvtx + 4 * s->lossless;
  2566. int uvstep1d = 1 << b->uvtx, p;
  2567. uint8_t *dst = s->dst[0];
  2568. // y itxfm add
  2569. for (n = 0, y = 0; y < end_y; y += step1d) {
  2570. uint8_t *ptr = dst;
  2571. for (x = 0; x < end_x; x += step1d, ptr += 4 * step1d, n += step) {
  2572. int eob = b->tx > TX_8X8 ? AV_RN16A(&s->eob[n]) : s->eob[n];
  2573. if (eob)
  2574. s->dsp.itxfm_add[tx][DCT_DCT](ptr, s->y_stride,
  2575. s->block + 16 * n, eob);
  2576. }
  2577. dst += 4 * s->y_stride * step1d;
  2578. }
  2579. // uv itxfm add
  2580. end_x >>= 1;
  2581. end_y >>= 1;
  2582. step = 1 << (b->uvtx * 2);
  2583. for (p = 0; p < 2; p++) {
  2584. dst = s->dst[p + 1];
  2585. for (n = 0, y = 0; y < end_y; y += uvstep1d) {
  2586. uint8_t *ptr = dst;
  2587. for (x = 0; x < end_x; x += uvstep1d, ptr += 4 * uvstep1d, n += step) {
  2588. int eob = b->uvtx > TX_8X8 ? AV_RN16A(&s->uveob[p][n]) : s->uveob[p][n];
  2589. if (eob)
  2590. s->dsp.itxfm_add[uvtx][DCT_DCT](ptr, s->uv_stride,
  2591. s->uvblock[p] + 16 * n, eob);
  2592. }
  2593. dst += 4 * uvstep1d * s->uv_stride;
  2594. }
  2595. }
  2596. }
  2597. }
  2598. static av_always_inline void mask_edges(struct VP9Filter *lflvl, int is_uv,
  2599. int row_and_7, int col_and_7,
  2600. int w, int h, int col_end, int row_end,
  2601. enum TxfmMode tx, int skip_inter)
  2602. {
  2603. // FIXME I'm pretty sure all loops can be replaced by a single LUT if
  2604. // we make VP9Filter.mask uint64_t (i.e. row/col all single variable)
  2605. // and make the LUT 5-indexed (bl, bp, is_uv, tx and row/col), and then
  2606. // use row_and_7/col_and_7 as shifts (1*col_and_7+8*row_and_7)
  2607. // the intended behaviour of the vp9 loopfilter is to work on 8-pixel
  2608. // edges. This means that for UV, we work on two subsampled blocks at
  2609. // a time, and we only use the topleft block's mode information to set
  2610. // things like block strength. Thus, for any block size smaller than
  2611. // 16x16, ignore the odd portion of the block.
  2612. if (tx == TX_4X4 && is_uv) {
  2613. if (h == 1) {
  2614. if (row_and_7 & 1)
  2615. return;
  2616. if (!row_end)
  2617. h += 1;
  2618. }
  2619. if (w == 1) {
  2620. if (col_and_7 & 1)
  2621. return;
  2622. if (!col_end)
  2623. w += 1;
  2624. }
  2625. }
  2626. if (tx == TX_4X4 && !skip_inter) {
  2627. int t = 1 << col_and_7, m_col = (t << w) - t, y;
  2628. int m_col_odd = (t << (w - 1)) - t;
  2629. // on 32-px edges, use the 8-px wide loopfilter; else, use 4-px wide
  2630. if (is_uv) {
  2631. int m_row_8 = m_col & 0x01, m_row_4 = m_col - m_row_8;
  2632. for (y = row_and_7; y < h + row_and_7; y++) {
  2633. int col_mask_id = 2 - !(y & 7);
  2634. lflvl->mask[is_uv][0][y][1] |= m_row_8;
  2635. lflvl->mask[is_uv][0][y][2] |= m_row_4;
  2636. // for odd lines, if the odd col is not being filtered,
  2637. // skip odd row also:
  2638. // .---. <-- a
  2639. // | |
  2640. // |___| <-- b
  2641. // ^ ^
  2642. // c d
  2643. //
  2644. // if a/c are even row/col and b/d are odd, and d is skipped,
  2645. // e.g. right edge of size-66x66.webm, then skip b also (bug)
  2646. if ((col_end & 1) && (y & 1)) {
  2647. lflvl->mask[is_uv][1][y][col_mask_id] |= m_col_odd;
  2648. } else {
  2649. lflvl->mask[is_uv][1][y][col_mask_id] |= m_col;
  2650. }
  2651. }
  2652. } else {
  2653. int m_row_8 = m_col & 0x11, m_row_4 = m_col - m_row_8;
  2654. for (y = row_and_7; y < h + row_and_7; y++) {
  2655. int col_mask_id = 2 - !(y & 3);
  2656. lflvl->mask[is_uv][0][y][1] |= m_row_8; // row edge
  2657. lflvl->mask[is_uv][0][y][2] |= m_row_4;
  2658. lflvl->mask[is_uv][1][y][col_mask_id] |= m_col; // col edge
  2659. lflvl->mask[is_uv][0][y][3] |= m_col;
  2660. lflvl->mask[is_uv][1][y][3] |= m_col;
  2661. }
  2662. }
  2663. } else {
  2664. int y, t = 1 << col_and_7, m_col = (t << w) - t;
  2665. if (!skip_inter) {
  2666. int mask_id = (tx == TX_8X8);
  2667. int l2 = tx + is_uv - 1, step1d = 1 << l2;
  2668. static const unsigned masks[4] = { 0xff, 0x55, 0x11, 0x01 };
  2669. int m_row = m_col & masks[l2];
  2670. // at odd UV col/row edges tx16/tx32 loopfilter edges, force
  2671. // 8wd loopfilter to prevent going off the visible edge.
  2672. if (is_uv && tx > TX_8X8 && (w ^ (w - 1)) == 1) {
  2673. int m_row_16 = ((t << (w - 1)) - t) & masks[l2];
  2674. int m_row_8 = m_row - m_row_16;
  2675. for (y = row_and_7; y < h + row_and_7; y++) {
  2676. lflvl->mask[is_uv][0][y][0] |= m_row_16;
  2677. lflvl->mask[is_uv][0][y][1] |= m_row_8;
  2678. }
  2679. } else {
  2680. for (y = row_and_7; y < h + row_and_7; y++)
  2681. lflvl->mask[is_uv][0][y][mask_id] |= m_row;
  2682. }
  2683. if (is_uv && tx > TX_8X8 && (h ^ (h - 1)) == 1) {
  2684. for (y = row_and_7; y < h + row_and_7 - 1; y += step1d)
  2685. lflvl->mask[is_uv][1][y][0] |= m_col;
  2686. if (y - row_and_7 == h - 1)
  2687. lflvl->mask[is_uv][1][y][1] |= m_col;
  2688. } else {
  2689. for (y = row_and_7; y < h + row_and_7; y += step1d)
  2690. lflvl->mask[is_uv][1][y][mask_id] |= m_col;
  2691. }
  2692. } else if (tx != TX_4X4) {
  2693. int mask_id;
  2694. mask_id = (tx == TX_8X8) || (is_uv && h == 1);
  2695. lflvl->mask[is_uv][1][row_and_7][mask_id] |= m_col;
  2696. mask_id = (tx == TX_8X8) || (is_uv && w == 1);
  2697. for (y = row_and_7; y < h + row_and_7; y++)
  2698. lflvl->mask[is_uv][0][y][mask_id] |= t;
  2699. } else if (is_uv) {
  2700. int t8 = t & 0x01, t4 = t - t8;
  2701. for (y = row_and_7; y < h + row_and_7; y++) {
  2702. lflvl->mask[is_uv][0][y][2] |= t4;
  2703. lflvl->mask[is_uv][0][y][1] |= t8;
  2704. }
  2705. lflvl->mask[is_uv][1][row_and_7][2 - !(row_and_7 & 7)] |= m_col;
  2706. } else {
  2707. int t8 = t & 0x11, t4 = t - t8;
  2708. for (y = row_and_7; y < h + row_and_7; y++) {
  2709. lflvl->mask[is_uv][0][y][2] |= t4;
  2710. lflvl->mask[is_uv][0][y][1] |= t8;
  2711. }
  2712. lflvl->mask[is_uv][1][row_and_7][2 - !(row_and_7 & 3)] |= m_col;
  2713. }
  2714. }
  2715. }
  2716. static void decode_b(AVCodecContext *ctx, int row, int col,
  2717. struct VP9Filter *lflvl, ptrdiff_t yoff, ptrdiff_t uvoff,
  2718. enum BlockLevel bl, enum BlockPartition bp)
  2719. {
  2720. VP9Context *s = ctx->priv_data;
  2721. VP9Block *b = s->b;
  2722. enum BlockSize bs = bl * 3 + bp;
  2723. int w4 = bwh_tab[1][bs][0], h4 = bwh_tab[1][bs][1], lvl;
  2724. int emu[2];
  2725. AVFrame *f = s->frames[CUR_FRAME].tf.f;
  2726. s->row = row;
  2727. s->row7 = row & 7;
  2728. s->col = col;
  2729. s->col7 = col & 7;
  2730. s->min_mv.x = -(128 + col * 64);
  2731. s->min_mv.y = -(128 + row * 64);
  2732. s->max_mv.x = 128 + (s->cols - col - w4) * 64;
  2733. s->max_mv.y = 128 + (s->rows - row - h4) * 64;
  2734. if (s->pass < 2) {
  2735. b->bs = bs;
  2736. b->bl = bl;
  2737. b->bp = bp;
  2738. decode_mode(ctx);
  2739. b->uvtx = b->tx - (w4 * 2 == (1 << b->tx) || h4 * 2 == (1 << b->tx));
  2740. if (!b->skip) {
  2741. decode_coeffs(ctx);
  2742. } else {
  2743. int row7 = s->row7;
  2744. #define SPLAT_ZERO_CTX(v, n) \
  2745. switch (n) { \
  2746. case 1: v = 0; break; \
  2747. case 2: AV_ZERO16(&v); break; \
  2748. case 4: AV_ZERO32(&v); break; \
  2749. case 8: AV_ZERO64(&v); break; \
  2750. case 16: AV_ZERO128(&v); break; \
  2751. }
  2752. #define SPLAT_ZERO_YUV(dir, var, off, n) \
  2753. do { \
  2754. SPLAT_ZERO_CTX(s->dir##_y_##var[off * 2], n * 2); \
  2755. SPLAT_ZERO_CTX(s->dir##_uv_##var[0][off], n); \
  2756. SPLAT_ZERO_CTX(s->dir##_uv_##var[1][off], n); \
  2757. } while (0)
  2758. switch (w4) {
  2759. case 1: SPLAT_ZERO_YUV(above, nnz_ctx, col, 1); break;
  2760. case 2: SPLAT_ZERO_YUV(above, nnz_ctx, col, 2); break;
  2761. case 4: SPLAT_ZERO_YUV(above, nnz_ctx, col, 4); break;
  2762. case 8: SPLAT_ZERO_YUV(above, nnz_ctx, col, 8); break;
  2763. }
  2764. switch (h4) {
  2765. case 1: SPLAT_ZERO_YUV(left, nnz_ctx, row7, 1); break;
  2766. case 2: SPLAT_ZERO_YUV(left, nnz_ctx, row7, 2); break;
  2767. case 4: SPLAT_ZERO_YUV(left, nnz_ctx, row7, 4); break;
  2768. case 8: SPLAT_ZERO_YUV(left, nnz_ctx, row7, 8); break;
  2769. }
  2770. }
  2771. if (s->pass == 1) {
  2772. s->b++;
  2773. s->block += w4 * h4 * 64;
  2774. s->uvblock[0] += w4 * h4 * 16;
  2775. s->uvblock[1] += w4 * h4 * 16;
  2776. s->eob += 4 * w4 * h4;
  2777. s->uveob[0] += w4 * h4;
  2778. s->uveob[1] += w4 * h4;
  2779. return;
  2780. }
  2781. }
  2782. // emulated overhangs if the stride of the target buffer can't hold. This
  2783. // allows to support emu-edge and so on even if we have large block
  2784. // overhangs
  2785. emu[0] = (col + w4) * 8 > f->linesize[0] ||
  2786. (row + h4) > s->rows;
  2787. emu[1] = (col + w4) * 4 > f->linesize[1] ||
  2788. (row + h4) > s->rows;
  2789. if (emu[0]) {
  2790. s->dst[0] = s->tmp_y;
  2791. s->y_stride = 64;
  2792. } else {
  2793. s->dst[0] = f->data[0] + yoff;
  2794. s->y_stride = f->linesize[0];
  2795. }
  2796. if (emu[1]) {
  2797. s->dst[1] = s->tmp_uv[0];
  2798. s->dst[2] = s->tmp_uv[1];
  2799. s->uv_stride = 32;
  2800. } else {
  2801. s->dst[1] = f->data[1] + uvoff;
  2802. s->dst[2] = f->data[2] + uvoff;
  2803. s->uv_stride = f->linesize[1];
  2804. }
  2805. if (b->intra) {
  2806. intra_recon(ctx, yoff, uvoff);
  2807. } else {
  2808. inter_recon(ctx);
  2809. }
  2810. if (emu[0]) {
  2811. int w = FFMIN(s->cols - col, w4) * 8, h = FFMIN(s->rows - row, h4) * 8, n, o = 0;
  2812. for (n = 0; o < w; n++) {
  2813. int bw = 64 >> n;
  2814. av_assert2(n <= 4);
  2815. if (w & bw) {
  2816. s->dsp.mc[n][0][0][0][0](f->data[0] + yoff + o, f->linesize[0],
  2817. s->tmp_y + o, 64, h, 0, 0);
  2818. o += bw;
  2819. }
  2820. }
  2821. }
  2822. if (emu[1]) {
  2823. int w = FFMIN(s->cols - col, w4) * 4, h = FFMIN(s->rows - row, h4) * 4, n, o = 0;
  2824. for (n = 1; o < w; n++) {
  2825. int bw = 64 >> n;
  2826. av_assert2(n <= 4);
  2827. if (w & bw) {
  2828. s->dsp.mc[n][0][0][0][0](f->data[1] + uvoff + o, f->linesize[1],
  2829. s->tmp_uv[0] + o, 32, h, 0, 0);
  2830. s->dsp.mc[n][0][0][0][0](f->data[2] + uvoff + o, f->linesize[2],
  2831. s->tmp_uv[1] + o, 32, h, 0, 0);
  2832. o += bw;
  2833. }
  2834. }
  2835. }
  2836. // pick filter level and find edges to apply filter to
  2837. if (s->filter.level &&
  2838. (lvl = s->segmentation.feat[b->seg_id].lflvl[b->intra ? 0 : b->ref[0] + 1]
  2839. [b->mode[3] != ZEROMV]) > 0) {
  2840. int x_end = FFMIN(s->cols - col, w4), y_end = FFMIN(s->rows - row, h4);
  2841. int skip_inter = !b->intra && b->skip, col7 = s->col7, row7 = s->row7;
  2842. setctx_2d(&lflvl->level[row7 * 8 + col7], w4, h4, 8, lvl);
  2843. mask_edges(lflvl, 0, row7, col7, x_end, y_end, 0, 0, b->tx, skip_inter);
  2844. mask_edges(lflvl, 1, row7, col7, x_end, y_end,
  2845. s->cols & 1 && col + w4 >= s->cols ? s->cols & 7 : 0,
  2846. s->rows & 1 && row + h4 >= s->rows ? s->rows & 7 : 0,
  2847. b->uvtx, skip_inter);
  2848. if (!s->filter.lim_lut[lvl]) {
  2849. int sharp = s->filter.sharpness;
  2850. int limit = lvl;
  2851. if (sharp > 0) {
  2852. limit >>= (sharp + 3) >> 2;
  2853. limit = FFMIN(limit, 9 - sharp);
  2854. }
  2855. limit = FFMAX(limit, 1);
  2856. s->filter.lim_lut[lvl] = limit;
  2857. s->filter.mblim_lut[lvl] = 2 * (lvl + 2) + limit;
  2858. }
  2859. }
  2860. if (s->pass == 2) {
  2861. s->b++;
  2862. s->block += w4 * h4 * 64;
  2863. s->uvblock[0] += w4 * h4 * 16;
  2864. s->uvblock[1] += w4 * h4 * 16;
  2865. s->eob += 4 * w4 * h4;
  2866. s->uveob[0] += w4 * h4;
  2867. s->uveob[1] += w4 * h4;
  2868. }
  2869. }
  2870. static void decode_sb(AVCodecContext *ctx, int row, int col, struct VP9Filter *lflvl,
  2871. ptrdiff_t yoff, ptrdiff_t uvoff, enum BlockLevel bl)
  2872. {
  2873. VP9Context *s = ctx->priv_data;
  2874. int c = ((s->above_partition_ctx[col] >> (3 - bl)) & 1) |
  2875. (((s->left_partition_ctx[row & 0x7] >> (3 - bl)) & 1) << 1);
  2876. const uint8_t *p = s->keyframe ? vp9_default_kf_partition_probs[bl][c] :
  2877. s->prob.p.partition[bl][c];
  2878. enum BlockPartition bp;
  2879. ptrdiff_t hbs = 4 >> bl;
  2880. AVFrame *f = s->frames[CUR_FRAME].tf.f;
  2881. ptrdiff_t y_stride = f->linesize[0], uv_stride = f->linesize[1];
  2882. if (bl == BL_8X8) {
  2883. bp = vp8_rac_get_tree(&s->c, vp9_partition_tree, p);
  2884. decode_b(ctx, row, col, lflvl, yoff, uvoff, bl, bp);
  2885. } else if (col + hbs < s->cols) { // FIXME why not <=?
  2886. if (row + hbs < s->rows) { // FIXME why not <=?
  2887. bp = vp8_rac_get_tree(&s->c, vp9_partition_tree, p);
  2888. switch (bp) {
  2889. case PARTITION_NONE:
  2890. decode_b(ctx, row, col, lflvl, yoff, uvoff, bl, bp);
  2891. break;
  2892. case PARTITION_H:
  2893. decode_b(ctx, row, col, lflvl, yoff, uvoff, bl, bp);
  2894. yoff += hbs * 8 * y_stride;
  2895. uvoff += hbs * 4 * uv_stride;
  2896. decode_b(ctx, row + hbs, col, lflvl, yoff, uvoff, bl, bp);
  2897. break;
  2898. case PARTITION_V:
  2899. decode_b(ctx, row, col, lflvl, yoff, uvoff, bl, bp);
  2900. yoff += hbs * 8;
  2901. uvoff += hbs * 4;
  2902. decode_b(ctx, row, col + hbs, lflvl, yoff, uvoff, bl, bp);
  2903. break;
  2904. case PARTITION_SPLIT:
  2905. decode_sb(ctx, row, col, lflvl, yoff, uvoff, bl + 1);
  2906. decode_sb(ctx, row, col + hbs, lflvl,
  2907. yoff + 8 * hbs, uvoff + 4 * hbs, bl + 1);
  2908. yoff += hbs * 8 * y_stride;
  2909. uvoff += hbs * 4 * uv_stride;
  2910. decode_sb(ctx, row + hbs, col, lflvl, yoff, uvoff, bl + 1);
  2911. decode_sb(ctx, row + hbs, col + hbs, lflvl,
  2912. yoff + 8 * hbs, uvoff + 4 * hbs, bl + 1);
  2913. break;
  2914. default:
  2915. av_assert0(0);
  2916. }
  2917. } else if (vp56_rac_get_prob_branchy(&s->c, p[1])) {
  2918. bp = PARTITION_SPLIT;
  2919. decode_sb(ctx, row, col, lflvl, yoff, uvoff, bl + 1);
  2920. decode_sb(ctx, row, col + hbs, lflvl,
  2921. yoff + 8 * hbs, uvoff + 4 * hbs, bl + 1);
  2922. } else {
  2923. bp = PARTITION_H;
  2924. decode_b(ctx, row, col, lflvl, yoff, uvoff, bl, bp);
  2925. }
  2926. } else if (row + hbs < s->rows) { // FIXME why not <=?
  2927. if (vp56_rac_get_prob_branchy(&s->c, p[2])) {
  2928. bp = PARTITION_SPLIT;
  2929. decode_sb(ctx, row, col, lflvl, yoff, uvoff, bl + 1);
  2930. yoff += hbs * 8 * y_stride;
  2931. uvoff += hbs * 4 * uv_stride;
  2932. decode_sb(ctx, row + hbs, col, lflvl, yoff, uvoff, bl + 1);
  2933. } else {
  2934. bp = PARTITION_V;
  2935. decode_b(ctx, row, col, lflvl, yoff, uvoff, bl, bp);
  2936. }
  2937. } else {
  2938. bp = PARTITION_SPLIT;
  2939. decode_sb(ctx, row, col, lflvl, yoff, uvoff, bl + 1);
  2940. }
  2941. s->counts.partition[bl][c][bp]++;
  2942. }
  2943. static void decode_sb_mem(AVCodecContext *ctx, int row, int col, struct VP9Filter *lflvl,
  2944. ptrdiff_t yoff, ptrdiff_t uvoff, enum BlockLevel bl)
  2945. {
  2946. VP9Context *s = ctx->priv_data;
  2947. VP9Block *b = s->b;
  2948. ptrdiff_t hbs = 4 >> bl;
  2949. AVFrame *f = s->frames[CUR_FRAME].tf.f;
  2950. ptrdiff_t y_stride = f->linesize[0], uv_stride = f->linesize[1];
  2951. if (bl == BL_8X8) {
  2952. av_assert2(b->bl == BL_8X8);
  2953. decode_b(ctx, row, col, lflvl, yoff, uvoff, b->bl, b->bp);
  2954. } else if (s->b->bl == bl) {
  2955. decode_b(ctx, row, col, lflvl, yoff, uvoff, b->bl, b->bp);
  2956. if (b->bp == PARTITION_H && row + hbs < s->rows) {
  2957. yoff += hbs * 8 * y_stride;
  2958. uvoff += hbs * 4 * uv_stride;
  2959. decode_b(ctx, row + hbs, col, lflvl, yoff, uvoff, b->bl, b->bp);
  2960. } else if (b->bp == PARTITION_V && col + hbs < s->cols) {
  2961. yoff += hbs * 8;
  2962. uvoff += hbs * 4;
  2963. decode_b(ctx, row, col + hbs, lflvl, yoff, uvoff, b->bl, b->bp);
  2964. }
  2965. } else {
  2966. decode_sb_mem(ctx, row, col, lflvl, yoff, uvoff, bl + 1);
  2967. if (col + hbs < s->cols) { // FIXME why not <=?
  2968. if (row + hbs < s->rows) {
  2969. decode_sb_mem(ctx, row, col + hbs, lflvl, yoff + 8 * hbs,
  2970. uvoff + 4 * hbs, bl + 1);
  2971. yoff += hbs * 8 * y_stride;
  2972. uvoff += hbs * 4 * uv_stride;
  2973. decode_sb_mem(ctx, row + hbs, col, lflvl, yoff, uvoff, bl + 1);
  2974. decode_sb_mem(ctx, row + hbs, col + hbs, lflvl,
  2975. yoff + 8 * hbs, uvoff + 4 * hbs, bl + 1);
  2976. } else {
  2977. yoff += hbs * 8;
  2978. uvoff += hbs * 4;
  2979. decode_sb_mem(ctx, row, col + hbs, lflvl, yoff, uvoff, bl + 1);
  2980. }
  2981. } else if (row + hbs < s->rows) {
  2982. yoff += hbs * 8 * y_stride;
  2983. uvoff += hbs * 4 * uv_stride;
  2984. decode_sb_mem(ctx, row + hbs, col, lflvl, yoff, uvoff, bl + 1);
  2985. }
  2986. }
  2987. }
  2988. static void loopfilter_sb(AVCodecContext *ctx, struct VP9Filter *lflvl,
  2989. int row, int col, ptrdiff_t yoff, ptrdiff_t uvoff)
  2990. {
  2991. VP9Context *s = ctx->priv_data;
  2992. AVFrame *f = s->frames[CUR_FRAME].tf.f;
  2993. uint8_t *dst = f->data[0] + yoff, *lvl = lflvl->level;
  2994. ptrdiff_t ls_y = f->linesize[0], ls_uv = f->linesize[1];
  2995. int y, x, p;
  2996. // FIXME in how far can we interleave the v/h loopfilter calls? E.g.
  2997. // if you think of them as acting on a 8x8 block max, we can interleave
  2998. // each v/h within the single x loop, but that only works if we work on
  2999. // 8 pixel blocks, and we won't always do that (we want at least 16px
  3000. // to use SSE2 optimizations, perhaps 32 for AVX2)
  3001. // filter edges between columns, Y plane (e.g. block1 | block2)
  3002. for (y = 0; y < 8; y += 2, dst += 16 * ls_y, lvl += 16) {
  3003. uint8_t *ptr = dst, *l = lvl, *hmask1 = lflvl->mask[0][0][y];
  3004. uint8_t *hmask2 = lflvl->mask[0][0][y + 1];
  3005. unsigned hm1 = hmask1[0] | hmask1[1] | hmask1[2], hm13 = hmask1[3];
  3006. unsigned hm2 = hmask2[1] | hmask2[2], hm23 = hmask2[3];
  3007. unsigned hm = hm1 | hm2 | hm13 | hm23;
  3008. for (x = 1; hm & ~(x - 1); x <<= 1, ptr += 8, l++) {
  3009. if (hm1 & x) {
  3010. int L = *l, H = L >> 4;
  3011. int E = s->filter.mblim_lut[L], I = s->filter.lim_lut[L];
  3012. if (col || x > 1) {
  3013. if (hmask1[0] & x) {
  3014. if (hmask2[0] & x) {
  3015. av_assert2(l[8] == L);
  3016. s->dsp.loop_filter_16[0](ptr, ls_y, E, I, H);
  3017. } else {
  3018. s->dsp.loop_filter_8[2][0](ptr, ls_y, E, I, H);
  3019. }
  3020. } else if (hm2 & x) {
  3021. L = l[8];
  3022. H |= (L >> 4) << 8;
  3023. E |= s->filter.mblim_lut[L] << 8;
  3024. I |= s->filter.lim_lut[L] << 8;
  3025. s->dsp.loop_filter_mix2[!!(hmask1[1] & x)]
  3026. [!!(hmask2[1] & x)]
  3027. [0](ptr, ls_y, E, I, H);
  3028. } else {
  3029. s->dsp.loop_filter_8[!!(hmask1[1] & x)]
  3030. [0](ptr, ls_y, E, I, H);
  3031. }
  3032. }
  3033. } else if (hm2 & x) {
  3034. int L = l[8], H = L >> 4;
  3035. int E = s->filter.mblim_lut[L], I = s->filter.lim_lut[L];
  3036. if (col || x > 1) {
  3037. s->dsp.loop_filter_8[!!(hmask2[1] & x)]
  3038. [0](ptr + 8 * ls_y, ls_y, E, I, H);
  3039. }
  3040. }
  3041. if (hm13 & x) {
  3042. int L = *l, H = L >> 4;
  3043. int E = s->filter.mblim_lut[L], I = s->filter.lim_lut[L];
  3044. if (hm23 & x) {
  3045. L = l[8];
  3046. H |= (L >> 4) << 8;
  3047. E |= s->filter.mblim_lut[L] << 8;
  3048. I |= s->filter.lim_lut[L] << 8;
  3049. s->dsp.loop_filter_mix2[0][0][0](ptr + 4, ls_y, E, I, H);
  3050. } else {
  3051. s->dsp.loop_filter_8[0][0](ptr + 4, ls_y, E, I, H);
  3052. }
  3053. } else if (hm23 & x) {
  3054. int L = l[8], H = L >> 4;
  3055. int E = s->filter.mblim_lut[L], I = s->filter.lim_lut[L];
  3056. s->dsp.loop_filter_8[0][0](ptr + 8 * ls_y + 4, ls_y, E, I, H);
  3057. }
  3058. }
  3059. }
  3060. // block1
  3061. // filter edges between rows, Y plane (e.g. ------)
  3062. // block2
  3063. dst = f->data[0] + yoff;
  3064. lvl = lflvl->level;
  3065. for (y = 0; y < 8; y++, dst += 8 * ls_y, lvl += 8) {
  3066. uint8_t *ptr = dst, *l = lvl, *vmask = lflvl->mask[0][1][y];
  3067. unsigned vm = vmask[0] | vmask[1] | vmask[2], vm3 = vmask[3];
  3068. for (x = 1; vm & ~(x - 1); x <<= 2, ptr += 16, l += 2) {
  3069. if (row || y) {
  3070. if (vm & x) {
  3071. int L = *l, H = L >> 4;
  3072. int E = s->filter.mblim_lut[L], I = s->filter.lim_lut[L];
  3073. if (vmask[0] & x) {
  3074. if (vmask[0] & (x << 1)) {
  3075. av_assert2(l[1] == L);
  3076. s->dsp.loop_filter_16[1](ptr, ls_y, E, I, H);
  3077. } else {
  3078. s->dsp.loop_filter_8[2][1](ptr, ls_y, E, I, H);
  3079. }
  3080. } else if (vm & (x << 1)) {
  3081. L = l[1];
  3082. H |= (L >> 4) << 8;
  3083. E |= s->filter.mblim_lut[L] << 8;
  3084. I |= s->filter.lim_lut[L] << 8;
  3085. s->dsp.loop_filter_mix2[!!(vmask[1] & x)]
  3086. [!!(vmask[1] & (x << 1))]
  3087. [1](ptr, ls_y, E, I, H);
  3088. } else {
  3089. s->dsp.loop_filter_8[!!(vmask[1] & x)]
  3090. [1](ptr, ls_y, E, I, H);
  3091. }
  3092. } else if (vm & (x << 1)) {
  3093. int L = l[1], H = L >> 4;
  3094. int E = s->filter.mblim_lut[L], I = s->filter.lim_lut[L];
  3095. s->dsp.loop_filter_8[!!(vmask[1] & (x << 1))]
  3096. [1](ptr + 8, ls_y, E, I, H);
  3097. }
  3098. }
  3099. if (vm3 & x) {
  3100. int L = *l, H = L >> 4;
  3101. int E = s->filter.mblim_lut[L], I = s->filter.lim_lut[L];
  3102. if (vm3 & (x << 1)) {
  3103. L = l[1];
  3104. H |= (L >> 4) << 8;
  3105. E |= s->filter.mblim_lut[L] << 8;
  3106. I |= s->filter.lim_lut[L] << 8;
  3107. s->dsp.loop_filter_mix2[0][0][1](ptr + ls_y * 4, ls_y, E, I, H);
  3108. } else {
  3109. s->dsp.loop_filter_8[0][1](ptr + ls_y * 4, ls_y, E, I, H);
  3110. }
  3111. } else if (vm3 & (x << 1)) {
  3112. int L = l[1], H = L >> 4;
  3113. int E = s->filter.mblim_lut[L], I = s->filter.lim_lut[L];
  3114. s->dsp.loop_filter_8[0][1](ptr + ls_y * 4 + 8, ls_y, E, I, H);
  3115. }
  3116. }
  3117. }
  3118. // same principle but for U/V planes
  3119. for (p = 0; p < 2; p++) {
  3120. lvl = lflvl->level;
  3121. dst = f->data[1 + p] + uvoff;
  3122. for (y = 0; y < 8; y += 4, dst += 16 * ls_uv, lvl += 32) {
  3123. uint8_t *ptr = dst, *l = lvl, *hmask1 = lflvl->mask[1][0][y];
  3124. uint8_t *hmask2 = lflvl->mask[1][0][y + 2];
  3125. unsigned hm1 = hmask1[0] | hmask1[1] | hmask1[2];
  3126. unsigned hm2 = hmask2[1] | hmask2[2], hm = hm1 | hm2;
  3127. for (x = 1; hm & ~(x - 1); x <<= 1, ptr += 4) {
  3128. if (col || x > 1) {
  3129. if (hm1 & x) {
  3130. int L = *l, H = L >> 4;
  3131. int E = s->filter.mblim_lut[L], I = s->filter.lim_lut[L];
  3132. if (hmask1[0] & x) {
  3133. if (hmask2[0] & x) {
  3134. av_assert2(l[16] == L);
  3135. s->dsp.loop_filter_16[0](ptr, ls_uv, E, I, H);
  3136. } else {
  3137. s->dsp.loop_filter_8[2][0](ptr, ls_uv, E, I, H);
  3138. }
  3139. } else if (hm2 & x) {
  3140. L = l[16];
  3141. H |= (L >> 4) << 8;
  3142. E |= s->filter.mblim_lut[L] << 8;
  3143. I |= s->filter.lim_lut[L] << 8;
  3144. s->dsp.loop_filter_mix2[!!(hmask1[1] & x)]
  3145. [!!(hmask2[1] & x)]
  3146. [0](ptr, ls_uv, E, I, H);
  3147. } else {
  3148. s->dsp.loop_filter_8[!!(hmask1[1] & x)]
  3149. [0](ptr, ls_uv, E, I, H);
  3150. }
  3151. } else if (hm2 & x) {
  3152. int L = l[16], H = L >> 4;
  3153. int E = s->filter.mblim_lut[L], I = s->filter.lim_lut[L];
  3154. s->dsp.loop_filter_8[!!(hmask2[1] & x)]
  3155. [0](ptr + 8 * ls_uv, ls_uv, E, I, H);
  3156. }
  3157. }
  3158. if (x & 0xAA)
  3159. l += 2;
  3160. }
  3161. }
  3162. lvl = lflvl->level;
  3163. dst = f->data[1 + p] + uvoff;
  3164. for (y = 0; y < 8; y++, dst += 4 * ls_uv) {
  3165. uint8_t *ptr = dst, *l = lvl, *vmask = lflvl->mask[1][1][y];
  3166. unsigned vm = vmask[0] | vmask[1] | vmask[2];
  3167. for (x = 1; vm & ~(x - 1); x <<= 4, ptr += 16, l += 4) {
  3168. if (row || y) {
  3169. if (vm & x) {
  3170. int L = *l, H = L >> 4;
  3171. int E = s->filter.mblim_lut[L], I = s->filter.lim_lut[L];
  3172. if (vmask[0] & x) {
  3173. if (vmask[0] & (x << 2)) {
  3174. av_assert2(l[2] == L);
  3175. s->dsp.loop_filter_16[1](ptr, ls_uv, E, I, H);
  3176. } else {
  3177. s->dsp.loop_filter_8[2][1](ptr, ls_uv, E, I, H);
  3178. }
  3179. } else if (vm & (x << 2)) {
  3180. L = l[2];
  3181. H |= (L >> 4) << 8;
  3182. E |= s->filter.mblim_lut[L] << 8;
  3183. I |= s->filter.lim_lut[L] << 8;
  3184. s->dsp.loop_filter_mix2[!!(vmask[1] & x)]
  3185. [!!(vmask[1] & (x << 2))]
  3186. [1](ptr, ls_uv, E, I, H);
  3187. } else {
  3188. s->dsp.loop_filter_8[!!(vmask[1] & x)]
  3189. [1](ptr, ls_uv, E, I, H);
  3190. }
  3191. } else if (vm & (x << 2)) {
  3192. int L = l[2], H = L >> 4;
  3193. int E = s->filter.mblim_lut[L], I = s->filter.lim_lut[L];
  3194. s->dsp.loop_filter_8[!!(vmask[1] & (x << 2))]
  3195. [1](ptr + 8, ls_uv, E, I, H);
  3196. }
  3197. }
  3198. }
  3199. if (y & 1)
  3200. lvl += 16;
  3201. }
  3202. }
  3203. }
  3204. static void set_tile_offset(int *start, int *end, int idx, int log2_n, int n)
  3205. {
  3206. int sb_start = ( idx * n) >> log2_n;
  3207. int sb_end = ((idx + 1) * n) >> log2_n;
  3208. *start = FFMIN(sb_start, n) << 3;
  3209. *end = FFMIN(sb_end, n) << 3;
  3210. }
  3211. static av_always_inline void adapt_prob(uint8_t *p, unsigned ct0, unsigned ct1,
  3212. int max_count, int update_factor)
  3213. {
  3214. unsigned ct = ct0 + ct1, p2, p1;
  3215. if (!ct)
  3216. return;
  3217. p1 = *p;
  3218. p2 = ((ct0 << 8) + (ct >> 1)) / ct;
  3219. p2 = av_clip(p2, 1, 255);
  3220. ct = FFMIN(ct, max_count);
  3221. update_factor = FASTDIV(update_factor * ct, max_count);
  3222. // (p1 * (256 - update_factor) + p2 * update_factor + 128) >> 8
  3223. *p = p1 + (((p2 - p1) * update_factor + 128) >> 8);
  3224. }
  3225. static void adapt_probs(VP9Context *s)
  3226. {
  3227. int i, j, k, l, m;
  3228. prob_context *p = &s->prob_ctx[s->framectxid].p;
  3229. int uf = (s->keyframe || s->intraonly || !s->last_keyframe) ? 112 : 128;
  3230. // coefficients
  3231. for (i = 0; i < 4; i++)
  3232. for (j = 0; j < 2; j++)
  3233. for (k = 0; k < 2; k++)
  3234. for (l = 0; l < 6; l++)
  3235. for (m = 0; m < 6; m++) {
  3236. uint8_t *pp = s->prob_ctx[s->framectxid].coef[i][j][k][l][m];
  3237. unsigned *e = s->counts.eob[i][j][k][l][m];
  3238. unsigned *c = s->counts.coef[i][j][k][l][m];
  3239. if (l == 0 && m >= 3) // dc only has 3 pt
  3240. break;
  3241. adapt_prob(&pp[0], e[0], e[1], 24, uf);
  3242. adapt_prob(&pp[1], c[0], c[1] + c[2], 24, uf);
  3243. adapt_prob(&pp[2], c[1], c[2], 24, uf);
  3244. }
  3245. if (s->keyframe || s->intraonly) {
  3246. memcpy(p->skip, s->prob.p.skip, sizeof(p->skip));
  3247. memcpy(p->tx32p, s->prob.p.tx32p, sizeof(p->tx32p));
  3248. memcpy(p->tx16p, s->prob.p.tx16p, sizeof(p->tx16p));
  3249. memcpy(p->tx8p, s->prob.p.tx8p, sizeof(p->tx8p));
  3250. return;
  3251. }
  3252. // skip flag
  3253. for (i = 0; i < 3; i++)
  3254. adapt_prob(&p->skip[i], s->counts.skip[i][0], s->counts.skip[i][1], 20, 128);
  3255. // intra/inter flag
  3256. for (i = 0; i < 4; i++)
  3257. adapt_prob(&p->intra[i], s->counts.intra[i][0], s->counts.intra[i][1], 20, 128);
  3258. // comppred flag
  3259. if (s->comppredmode == PRED_SWITCHABLE) {
  3260. for (i = 0; i < 5; i++)
  3261. adapt_prob(&p->comp[i], s->counts.comp[i][0], s->counts.comp[i][1], 20, 128);
  3262. }
  3263. // reference frames
  3264. if (s->comppredmode != PRED_SINGLEREF) {
  3265. for (i = 0; i < 5; i++)
  3266. adapt_prob(&p->comp_ref[i], s->counts.comp_ref[i][0],
  3267. s->counts.comp_ref[i][1], 20, 128);
  3268. }
  3269. if (s->comppredmode != PRED_COMPREF) {
  3270. for (i = 0; i < 5; i++) {
  3271. uint8_t *pp = p->single_ref[i];
  3272. unsigned (*c)[2] = s->counts.single_ref[i];
  3273. adapt_prob(&pp[0], c[0][0], c[0][1], 20, 128);
  3274. adapt_prob(&pp[1], c[1][0], c[1][1], 20, 128);
  3275. }
  3276. }
  3277. // block partitioning
  3278. for (i = 0; i < 4; i++)
  3279. for (j = 0; j < 4; j++) {
  3280. uint8_t *pp = p->partition[i][j];
  3281. unsigned *c = s->counts.partition[i][j];
  3282. adapt_prob(&pp[0], c[0], c[1] + c[2] + c[3], 20, 128);
  3283. adapt_prob(&pp[1], c[1], c[2] + c[3], 20, 128);
  3284. adapt_prob(&pp[2], c[2], c[3], 20, 128);
  3285. }
  3286. // tx size
  3287. if (s->txfmmode == TX_SWITCHABLE) {
  3288. for (i = 0; i < 2; i++) {
  3289. unsigned *c16 = s->counts.tx16p[i], *c32 = s->counts.tx32p[i];
  3290. adapt_prob(&p->tx8p[i], s->counts.tx8p[i][0], s->counts.tx8p[i][1], 20, 128);
  3291. adapt_prob(&p->tx16p[i][0], c16[0], c16[1] + c16[2], 20, 128);
  3292. adapt_prob(&p->tx16p[i][1], c16[1], c16[2], 20, 128);
  3293. adapt_prob(&p->tx32p[i][0], c32[0], c32[1] + c32[2] + c32[3], 20, 128);
  3294. adapt_prob(&p->tx32p[i][1], c32[1], c32[2] + c32[3], 20, 128);
  3295. adapt_prob(&p->tx32p[i][2], c32[2], c32[3], 20, 128);
  3296. }
  3297. }
  3298. // interpolation filter
  3299. if (s->filtermode == FILTER_SWITCHABLE) {
  3300. for (i = 0; i < 4; i++) {
  3301. uint8_t *pp = p->filter[i];
  3302. unsigned *c = s->counts.filter[i];
  3303. adapt_prob(&pp[0], c[0], c[1] + c[2], 20, 128);
  3304. adapt_prob(&pp[1], c[1], c[2], 20, 128);
  3305. }
  3306. }
  3307. // inter modes
  3308. for (i = 0; i < 7; i++) {
  3309. uint8_t *pp = p->mv_mode[i];
  3310. unsigned *c = s->counts.mv_mode[i];
  3311. adapt_prob(&pp[0], c[2], c[1] + c[0] + c[3], 20, 128);
  3312. adapt_prob(&pp[1], c[0], c[1] + c[3], 20, 128);
  3313. adapt_prob(&pp[2], c[1], c[3], 20, 128);
  3314. }
  3315. // mv joints
  3316. {
  3317. uint8_t *pp = p->mv_joint;
  3318. unsigned *c = s->counts.mv_joint;
  3319. adapt_prob(&pp[0], c[0], c[1] + c[2] + c[3], 20, 128);
  3320. adapt_prob(&pp[1], c[1], c[2] + c[3], 20, 128);
  3321. adapt_prob(&pp[2], c[2], c[3], 20, 128);
  3322. }
  3323. // mv components
  3324. for (i = 0; i < 2; i++) {
  3325. uint8_t *pp;
  3326. unsigned *c, (*c2)[2], sum;
  3327. adapt_prob(&p->mv_comp[i].sign, s->counts.mv_comp[i].sign[0],
  3328. s->counts.mv_comp[i].sign[1], 20, 128);
  3329. pp = p->mv_comp[i].classes;
  3330. c = s->counts.mv_comp[i].classes;
  3331. sum = c[1] + c[2] + c[3] + c[4] + c[5] + c[6] + c[7] + c[8] + c[9] + c[10];
  3332. adapt_prob(&pp[0], c[0], sum, 20, 128);
  3333. sum -= c[1];
  3334. adapt_prob(&pp[1], c[1], sum, 20, 128);
  3335. sum -= c[2] + c[3];
  3336. adapt_prob(&pp[2], c[2] + c[3], sum, 20, 128);
  3337. adapt_prob(&pp[3], c[2], c[3], 20, 128);
  3338. sum -= c[4] + c[5];
  3339. adapt_prob(&pp[4], c[4] + c[5], sum, 20, 128);
  3340. adapt_prob(&pp[5], c[4], c[5], 20, 128);
  3341. sum -= c[6];
  3342. adapt_prob(&pp[6], c[6], sum, 20, 128);
  3343. adapt_prob(&pp[7], c[7] + c[8], c[9] + c[10], 20, 128);
  3344. adapt_prob(&pp[8], c[7], c[8], 20, 128);
  3345. adapt_prob(&pp[9], c[9], c[10], 20, 128);
  3346. adapt_prob(&p->mv_comp[i].class0, s->counts.mv_comp[i].class0[0],
  3347. s->counts.mv_comp[i].class0[1], 20, 128);
  3348. pp = p->mv_comp[i].bits;
  3349. c2 = s->counts.mv_comp[i].bits;
  3350. for (j = 0; j < 10; j++)
  3351. adapt_prob(&pp[j], c2[j][0], c2[j][1], 20, 128);
  3352. for (j = 0; j < 2; j++) {
  3353. pp = p->mv_comp[i].class0_fp[j];
  3354. c = s->counts.mv_comp[i].class0_fp[j];
  3355. adapt_prob(&pp[0], c[0], c[1] + c[2] + c[3], 20, 128);
  3356. adapt_prob(&pp[1], c[1], c[2] + c[3], 20, 128);
  3357. adapt_prob(&pp[2], c[2], c[3], 20, 128);
  3358. }
  3359. pp = p->mv_comp[i].fp;
  3360. c = s->counts.mv_comp[i].fp;
  3361. adapt_prob(&pp[0], c[0], c[1] + c[2] + c[3], 20, 128);
  3362. adapt_prob(&pp[1], c[1], c[2] + c[3], 20, 128);
  3363. adapt_prob(&pp[2], c[2], c[3], 20, 128);
  3364. if (s->highprecisionmvs) {
  3365. adapt_prob(&p->mv_comp[i].class0_hp, s->counts.mv_comp[i].class0_hp[0],
  3366. s->counts.mv_comp[i].class0_hp[1], 20, 128);
  3367. adapt_prob(&p->mv_comp[i].hp, s->counts.mv_comp[i].hp[0],
  3368. s->counts.mv_comp[i].hp[1], 20, 128);
  3369. }
  3370. }
  3371. // y intra modes
  3372. for (i = 0; i < 4; i++) {
  3373. uint8_t *pp = p->y_mode[i];
  3374. unsigned *c = s->counts.y_mode[i], sum, s2;
  3375. sum = c[0] + c[1] + c[3] + c[4] + c[5] + c[6] + c[7] + c[8] + c[9];
  3376. adapt_prob(&pp[0], c[DC_PRED], sum, 20, 128);
  3377. sum -= c[TM_VP8_PRED];
  3378. adapt_prob(&pp[1], c[TM_VP8_PRED], sum, 20, 128);
  3379. sum -= c[VERT_PRED];
  3380. adapt_prob(&pp[2], c[VERT_PRED], sum, 20, 128);
  3381. s2 = c[HOR_PRED] + c[DIAG_DOWN_RIGHT_PRED] + c[VERT_RIGHT_PRED];
  3382. sum -= s2;
  3383. adapt_prob(&pp[3], s2, sum, 20, 128);
  3384. s2 -= c[HOR_PRED];
  3385. adapt_prob(&pp[4], c[HOR_PRED], s2, 20, 128);
  3386. adapt_prob(&pp[5], c[DIAG_DOWN_RIGHT_PRED], c[VERT_RIGHT_PRED], 20, 128);
  3387. sum -= c[DIAG_DOWN_LEFT_PRED];
  3388. adapt_prob(&pp[6], c[DIAG_DOWN_LEFT_PRED], sum, 20, 128);
  3389. sum -= c[VERT_LEFT_PRED];
  3390. adapt_prob(&pp[7], c[VERT_LEFT_PRED], sum, 20, 128);
  3391. adapt_prob(&pp[8], c[HOR_DOWN_PRED], c[HOR_UP_PRED], 20, 128);
  3392. }
  3393. // uv intra modes
  3394. for (i = 0; i < 10; i++) {
  3395. uint8_t *pp = p->uv_mode[i];
  3396. unsigned *c = s->counts.uv_mode[i], sum, s2;
  3397. sum = c[0] + c[1] + c[3] + c[4] + c[5] + c[6] + c[7] + c[8] + c[9];
  3398. adapt_prob(&pp[0], c[DC_PRED], sum, 20, 128);
  3399. sum -= c[TM_VP8_PRED];
  3400. adapt_prob(&pp[1], c[TM_VP8_PRED], sum, 20, 128);
  3401. sum -= c[VERT_PRED];
  3402. adapt_prob(&pp[2], c[VERT_PRED], sum, 20, 128);
  3403. s2 = c[HOR_PRED] + c[DIAG_DOWN_RIGHT_PRED] + c[VERT_RIGHT_PRED];
  3404. sum -= s2;
  3405. adapt_prob(&pp[3], s2, sum, 20, 128);
  3406. s2 -= c[HOR_PRED];
  3407. adapt_prob(&pp[4], c[HOR_PRED], s2, 20, 128);
  3408. adapt_prob(&pp[5], c[DIAG_DOWN_RIGHT_PRED], c[VERT_RIGHT_PRED], 20, 128);
  3409. sum -= c[DIAG_DOWN_LEFT_PRED];
  3410. adapt_prob(&pp[6], c[DIAG_DOWN_LEFT_PRED], sum, 20, 128);
  3411. sum -= c[VERT_LEFT_PRED];
  3412. adapt_prob(&pp[7], c[VERT_LEFT_PRED], sum, 20, 128);
  3413. adapt_prob(&pp[8], c[HOR_DOWN_PRED], c[HOR_UP_PRED], 20, 128);
  3414. }
  3415. }
  3416. static void free_buffers(VP9Context *s)
  3417. {
  3418. av_freep(&s->intra_pred_data[0]);
  3419. av_freep(&s->b_base);
  3420. av_freep(&s->block_base);
  3421. }
  3422. static av_cold int vp9_decode_free(AVCodecContext *ctx)
  3423. {
  3424. VP9Context *s = ctx->priv_data;
  3425. int i;
  3426. for (i = 0; i < 2; i++) {
  3427. if (s->frames[i].tf.f->data[0])
  3428. vp9_unref_frame(ctx, &s->frames[i]);
  3429. av_frame_free(&s->frames[i].tf.f);
  3430. }
  3431. for (i = 0; i < 8; i++) {
  3432. if (s->refs[i].f->data[0])
  3433. ff_thread_release_buffer(ctx, &s->refs[i]);
  3434. av_frame_free(&s->refs[i].f);
  3435. if (s->next_refs[i].f->data[0])
  3436. ff_thread_release_buffer(ctx, &s->next_refs[i]);
  3437. av_frame_free(&s->next_refs[i].f);
  3438. }
  3439. free_buffers(s);
  3440. av_freep(&s->c_b);
  3441. s->c_b_size = 0;
  3442. return 0;
  3443. }
  3444. static int vp9_decode_frame(AVCodecContext *ctx, void *frame,
  3445. int *got_frame, AVPacket *pkt)
  3446. {
  3447. const uint8_t *data = pkt->data;
  3448. int size = pkt->size;
  3449. VP9Context *s = ctx->priv_data;
  3450. int res, tile_row, tile_col, i, ref, row, col;
  3451. ptrdiff_t yoff, uvoff, ls_y, ls_uv;
  3452. AVFrame *f;
  3453. if ((res = decode_frame_header(ctx, data, size, &ref)) < 0) {
  3454. return res;
  3455. } else if (res == 0) {
  3456. if (!s->refs[ref].f->data[0]) {
  3457. av_log(ctx, AV_LOG_ERROR, "Requested reference %d not available\n", ref);
  3458. return AVERROR_INVALIDDATA;
  3459. }
  3460. if ((res = av_frame_ref(frame, s->refs[ref].f)) < 0)
  3461. return res;
  3462. *got_frame = 1;
  3463. return pkt->size;
  3464. }
  3465. data += res;
  3466. size -= res;
  3467. if (s->frames[LAST_FRAME].tf.f->data[0])
  3468. vp9_unref_frame(ctx, &s->frames[LAST_FRAME]);
  3469. if (!s->keyframe && s->frames[CUR_FRAME].tf.f->data[0] &&
  3470. (res = vp9_ref_frame(ctx, &s->frames[LAST_FRAME], &s->frames[CUR_FRAME])) < 0)
  3471. return res;
  3472. if (s->frames[CUR_FRAME].tf.f->data[0])
  3473. vp9_unref_frame(ctx, &s->frames[CUR_FRAME]);
  3474. if ((res = vp9_alloc_frame(ctx, &s->frames[CUR_FRAME])) < 0)
  3475. return res;
  3476. f = s->frames[CUR_FRAME].tf.f;
  3477. f->key_frame = s->keyframe;
  3478. f->pict_type = s->keyframe ? AV_PICTURE_TYPE_I : AV_PICTURE_TYPE_P;
  3479. ls_y = f->linesize[0];
  3480. ls_uv =f->linesize[1];
  3481. // ref frame setup
  3482. for (i = 0; i < 8; i++) {
  3483. if (s->next_refs[i].f->data[0])
  3484. ff_thread_release_buffer(ctx, &s->next_refs[i]);
  3485. if (s->refreshrefmask & (1 << i)) {
  3486. res = ff_thread_ref_frame(&s->next_refs[i], &s->frames[CUR_FRAME].tf);
  3487. } else {
  3488. res = ff_thread_ref_frame(&s->next_refs[i], &s->refs[i]);
  3489. }
  3490. if (res < 0)
  3491. return res;
  3492. }
  3493. // main tile decode loop
  3494. memset(s->above_partition_ctx, 0, s->cols);
  3495. memset(s->above_skip_ctx, 0, s->cols);
  3496. if (s->keyframe || s->intraonly) {
  3497. memset(s->above_mode_ctx, DC_PRED, s->cols * 2);
  3498. } else {
  3499. memset(s->above_mode_ctx, NEARESTMV, s->cols);
  3500. }
  3501. memset(s->above_y_nnz_ctx, 0, s->sb_cols * 16);
  3502. memset(s->above_uv_nnz_ctx[0], 0, s->sb_cols * 8);
  3503. memset(s->above_uv_nnz_ctx[1], 0, s->sb_cols * 8);
  3504. memset(s->above_segpred_ctx, 0, s->cols);
  3505. s->pass = s->uses_2pass =
  3506. ctx->active_thread_type == FF_THREAD_FRAME && s->refreshctx && !s->parallelmode;
  3507. if ((res = update_block_buffers(ctx)) < 0) {
  3508. av_log(ctx, AV_LOG_ERROR,
  3509. "Failed to allocate block buffers\n");
  3510. return res;
  3511. }
  3512. if (s->refreshctx && s->parallelmode) {
  3513. int j, k, l, m;
  3514. for (i = 0; i < 4; i++) {
  3515. for (j = 0; j < 2; j++)
  3516. for (k = 0; k < 2; k++)
  3517. for (l = 0; l < 6; l++)
  3518. for (m = 0; m < 6; m++)
  3519. memcpy(s->prob_ctx[s->framectxid].coef[i][j][k][l][m],
  3520. s->prob.coef[i][j][k][l][m], 3);
  3521. if (s->txfmmode == i)
  3522. break;
  3523. }
  3524. s->prob_ctx[s->framectxid].p = s->prob.p;
  3525. ff_thread_finish_setup(ctx);
  3526. }
  3527. do {
  3528. yoff = uvoff = 0;
  3529. s->b = s->b_base;
  3530. s->block = s->block_base;
  3531. s->uvblock[0] = s->uvblock_base[0];
  3532. s->uvblock[1] = s->uvblock_base[1];
  3533. s->eob = s->eob_base;
  3534. s->uveob[0] = s->uveob_base[0];
  3535. s->uveob[1] = s->uveob_base[1];
  3536. for (tile_row = 0; tile_row < s->tiling.tile_rows; tile_row++) {
  3537. set_tile_offset(&s->tiling.tile_row_start, &s->tiling.tile_row_end,
  3538. tile_row, s->tiling.log2_tile_rows, s->sb_rows);
  3539. if (s->pass != 2) {
  3540. for (tile_col = 0; tile_col < s->tiling.tile_cols; tile_col++) {
  3541. unsigned tile_size;
  3542. if (tile_col == s->tiling.tile_cols - 1 &&
  3543. tile_row == s->tiling.tile_rows - 1) {
  3544. tile_size = size;
  3545. } else {
  3546. tile_size = AV_RB32(data);
  3547. data += 4;
  3548. size -= 4;
  3549. }
  3550. if (tile_size > size) {
  3551. ff_thread_report_progress(&s->frames[CUR_FRAME].tf, INT_MAX, 0);
  3552. return AVERROR_INVALIDDATA;
  3553. }
  3554. ff_vp56_init_range_decoder(&s->c_b[tile_col], data, tile_size);
  3555. if (vp56_rac_get_prob_branchy(&s->c_b[tile_col], 128)) { // marker bit
  3556. ff_thread_report_progress(&s->frames[CUR_FRAME].tf, INT_MAX, 0);
  3557. return AVERROR_INVALIDDATA;
  3558. }
  3559. data += tile_size;
  3560. size -= tile_size;
  3561. }
  3562. }
  3563. for (row = s->tiling.tile_row_start; row < s->tiling.tile_row_end;
  3564. row += 8, yoff += ls_y * 64, uvoff += ls_uv * 32) {
  3565. struct VP9Filter *lflvl_ptr = s->lflvl;
  3566. ptrdiff_t yoff2 = yoff, uvoff2 = uvoff;
  3567. for (tile_col = 0; tile_col < s->tiling.tile_cols; tile_col++) {
  3568. set_tile_offset(&s->tiling.tile_col_start, &s->tiling.tile_col_end,
  3569. tile_col, s->tiling.log2_tile_cols, s->sb_cols);
  3570. if (s->pass != 2) {
  3571. memset(s->left_partition_ctx, 0, 8);
  3572. memset(s->left_skip_ctx, 0, 8);
  3573. if (s->keyframe || s->intraonly) {
  3574. memset(s->left_mode_ctx, DC_PRED, 16);
  3575. } else {
  3576. memset(s->left_mode_ctx, NEARESTMV, 8);
  3577. }
  3578. memset(s->left_y_nnz_ctx, 0, 16);
  3579. memset(s->left_uv_nnz_ctx, 0, 16);
  3580. memset(s->left_segpred_ctx, 0, 8);
  3581. memcpy(&s->c, &s->c_b[tile_col], sizeof(s->c));
  3582. }
  3583. for (col = s->tiling.tile_col_start;
  3584. col < s->tiling.tile_col_end;
  3585. col += 8, yoff2 += 64, uvoff2 += 32, lflvl_ptr++) {
  3586. // FIXME integrate with lf code (i.e. zero after each
  3587. // use, similar to invtxfm coefficients, or similar)
  3588. if (s->pass != 1) {
  3589. memset(lflvl_ptr->mask, 0, sizeof(lflvl_ptr->mask));
  3590. }
  3591. if (s->pass == 2) {
  3592. decode_sb_mem(ctx, row, col, lflvl_ptr,
  3593. yoff2, uvoff2, BL_64X64);
  3594. } else {
  3595. decode_sb(ctx, row, col, lflvl_ptr,
  3596. yoff2, uvoff2, BL_64X64);
  3597. }
  3598. }
  3599. if (s->pass != 2) {
  3600. memcpy(&s->c_b[tile_col], &s->c, sizeof(s->c));
  3601. }
  3602. }
  3603. if (s->pass == 1) {
  3604. continue;
  3605. }
  3606. // backup pre-loopfilter reconstruction data for intra
  3607. // prediction of next row of sb64s
  3608. if (row + 8 < s->rows) {
  3609. memcpy(s->intra_pred_data[0],
  3610. f->data[0] + yoff + 63 * ls_y,
  3611. 8 * s->cols);
  3612. memcpy(s->intra_pred_data[1],
  3613. f->data[1] + uvoff + 31 * ls_uv,
  3614. 4 * s->cols);
  3615. memcpy(s->intra_pred_data[2],
  3616. f->data[2] + uvoff + 31 * ls_uv,
  3617. 4 * s->cols);
  3618. }
  3619. // loopfilter one row
  3620. if (s->filter.level) {
  3621. yoff2 = yoff;
  3622. uvoff2 = uvoff;
  3623. lflvl_ptr = s->lflvl;
  3624. for (col = 0; col < s->cols;
  3625. col += 8, yoff2 += 64, uvoff2 += 32, lflvl_ptr++) {
  3626. loopfilter_sb(ctx, lflvl_ptr, row, col, yoff2, uvoff2);
  3627. }
  3628. }
  3629. // FIXME maybe we can make this more finegrained by running the
  3630. // loopfilter per-block instead of after each sbrow
  3631. // In fact that would also make intra pred left preparation easier?
  3632. ff_thread_report_progress(&s->frames[CUR_FRAME].tf, row >> 3, 0);
  3633. }
  3634. }
  3635. if (s->pass < 2 && s->refreshctx && !s->parallelmode) {
  3636. adapt_probs(s);
  3637. ff_thread_finish_setup(ctx);
  3638. }
  3639. } while (s->pass++ == 1);
  3640. ff_thread_report_progress(&s->frames[CUR_FRAME].tf, INT_MAX, 0);
  3641. // ref frame setup
  3642. for (i = 0; i < 8; i++) {
  3643. if (s->refs[i].f->data[0])
  3644. ff_thread_release_buffer(ctx, &s->refs[i]);
  3645. ff_thread_ref_frame(&s->refs[i], &s->next_refs[i]);
  3646. }
  3647. if (!s->invisible) {
  3648. if ((res = av_frame_ref(frame, s->frames[CUR_FRAME].tf.f)) < 0)
  3649. return res;
  3650. *got_frame = 1;
  3651. }
  3652. return pkt->size;
  3653. }
  3654. static void vp9_decode_flush(AVCodecContext *ctx)
  3655. {
  3656. VP9Context *s = ctx->priv_data;
  3657. int i;
  3658. for (i = 0; i < 2; i++)
  3659. vp9_unref_frame(ctx, &s->frames[i]);
  3660. for (i = 0; i < 8; i++)
  3661. ff_thread_release_buffer(ctx, &s->refs[i]);
  3662. }
  3663. static int init_frames(AVCodecContext *ctx)
  3664. {
  3665. VP9Context *s = ctx->priv_data;
  3666. int i;
  3667. for (i = 0; i < 2; i++) {
  3668. s->frames[i].tf.f = av_frame_alloc();
  3669. if (!s->frames[i].tf.f) {
  3670. vp9_decode_free(ctx);
  3671. av_log(ctx, AV_LOG_ERROR, "Failed to allocate frame buffer %d\n", i);
  3672. return AVERROR(ENOMEM);
  3673. }
  3674. }
  3675. for (i = 0; i < 8; i++) {
  3676. s->refs[i].f = av_frame_alloc();
  3677. s->next_refs[i].f = av_frame_alloc();
  3678. if (!s->refs[i].f || !s->next_refs[i].f) {
  3679. vp9_decode_free(ctx);
  3680. av_log(ctx, AV_LOG_ERROR, "Failed to allocate frame buffer %d\n", i);
  3681. return AVERROR(ENOMEM);
  3682. }
  3683. }
  3684. return 0;
  3685. }
  3686. static av_cold int vp9_decode_init(AVCodecContext *ctx)
  3687. {
  3688. VP9Context *s = ctx->priv_data;
  3689. ctx->internal->allocate_progress = 1;
  3690. ctx->pix_fmt = AV_PIX_FMT_YUV420P;
  3691. ff_vp9dsp_init(&s->dsp);
  3692. ff_videodsp_init(&s->vdsp, 8);
  3693. s->filter.sharpness = -1;
  3694. return init_frames(ctx);
  3695. }
  3696. static av_cold int vp9_decode_init_thread_copy(AVCodecContext *avctx)
  3697. {
  3698. return init_frames(avctx);
  3699. }
  3700. static int vp9_decode_update_thread_context(AVCodecContext *dst, const AVCodecContext *src)
  3701. {
  3702. int i, res;
  3703. VP9Context *s = dst->priv_data, *ssrc = src->priv_data;
  3704. // detect size changes in other threads
  3705. if (s->intra_pred_data[0] &&
  3706. (!ssrc->intra_pred_data[0] || s->cols != ssrc->cols || s->rows != ssrc->rows)) {
  3707. free_buffers(s);
  3708. }
  3709. for (i = 0; i < 2; i++) {
  3710. if (s->frames[i].tf.f->data[0])
  3711. vp9_unref_frame(dst, &s->frames[i]);
  3712. if (ssrc->frames[i].tf.f->data[0]) {
  3713. if ((res = vp9_ref_frame(dst, &s->frames[i], &ssrc->frames[i])) < 0)
  3714. return res;
  3715. }
  3716. }
  3717. for (i = 0; i < 8; i++) {
  3718. if (s->refs[i].f->data[0])
  3719. ff_thread_release_buffer(dst, &s->refs[i]);
  3720. if (ssrc->next_refs[i].f->data[0]) {
  3721. if ((res = ff_thread_ref_frame(&s->refs[i], &ssrc->next_refs[i])) < 0)
  3722. return res;
  3723. }
  3724. }
  3725. s->invisible = ssrc->invisible;
  3726. s->keyframe = ssrc->keyframe;
  3727. s->uses_2pass = ssrc->uses_2pass;
  3728. memcpy(&s->prob_ctx, &ssrc->prob_ctx, sizeof(s->prob_ctx));
  3729. memcpy(&s->lf_delta, &ssrc->lf_delta, sizeof(s->lf_delta));
  3730. if (ssrc->segmentation.enabled) {
  3731. memcpy(&s->segmentation.feat, &ssrc->segmentation.feat,
  3732. sizeof(s->segmentation.feat));
  3733. }
  3734. return 0;
  3735. }
  3736. AVCodec ff_vp9_decoder = {
  3737. .name = "vp9",
  3738. .long_name = NULL_IF_CONFIG_SMALL("Google VP9"),
  3739. .type = AVMEDIA_TYPE_VIDEO,
  3740. .id = AV_CODEC_ID_VP9,
  3741. .priv_data_size = sizeof(VP9Context),
  3742. .init = vp9_decode_init,
  3743. .close = vp9_decode_free,
  3744. .decode = vp9_decode_frame,
  3745. .capabilities = CODEC_CAP_DR1 | CODEC_CAP_FRAME_THREADS,
  3746. .flush = vp9_decode_flush,
  3747. .init_thread_copy = ONLY_IF_THREADS_ENABLED(vp9_decode_init_thread_copy),
  3748. .update_thread_context = ONLY_IF_THREADS_ENABLED(vp9_decode_update_thread_context),
  3749. };