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  1. /*
  2. * Rate control for video encoders
  3. *
  4. * Copyright (c) 2002-2004 Michael Niedermayer <michaelni@gmx.at>
  5. *
  6. * This file is part of FFmpeg.
  7. *
  8. * FFmpeg is free software; you can redistribute it and/or
  9. * modify it under the terms of the GNU Lesser General Public
  10. * License as published by the Free Software Foundation; either
  11. * version 2.1 of the License, or (at your option) any later version.
  12. *
  13. * FFmpeg is distributed in the hope that it will be useful,
  14. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  16. * Lesser General Public License for more details.
  17. *
  18. * You should have received a copy of the GNU Lesser General Public
  19. * License along with FFmpeg; if not, write to the Free Software
  20. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  21. */
  22. /**
  23. * @file
  24. * Rate control for video encoders.
  25. */
  26. #include "libavutil/attributes.h"
  27. #include "libavutil/internal.h"
  28. #include "avcodec.h"
  29. #include "internal.h"
  30. #include "ratecontrol.h"
  31. #include "mpegutils.h"
  32. #include "mpegvideo.h"
  33. #include "libavutil/eval.h"
  34. static int init_pass2(MpegEncContext *s);
  35. static double get_qscale(MpegEncContext *s, RateControlEntry *rce,
  36. double rate_factor, int frame_num);
  37. void ff_write_pass1_stats(MpegEncContext *s)
  38. {
  39. snprintf(s->avctx->stats_out, 256,
  40. "in:%d out:%d type:%d q:%d itex:%d ptex:%d mv:%d misc:%d "
  41. "fcode:%d bcode:%d mc-var:%"PRId64" var:%"PRId64" icount:%d skipcount:%d hbits:%d;\n",
  42. s->current_picture_ptr->f->display_picture_number,
  43. s->current_picture_ptr->f->coded_picture_number,
  44. s->pict_type,
  45. s->current_picture.f->quality,
  46. s->i_tex_bits,
  47. s->p_tex_bits,
  48. s->mv_bits,
  49. s->misc_bits,
  50. s->f_code,
  51. s->b_code,
  52. s->current_picture.mc_mb_var_sum,
  53. s->current_picture.mb_var_sum,
  54. s->i_count, s->skip_count,
  55. s->header_bits);
  56. }
  57. static double get_fps(AVCodecContext *avctx)
  58. {
  59. return 1.0 / av_q2d(avctx->time_base) / FFMAX(avctx->ticks_per_frame, 1);
  60. }
  61. static inline double qp2bits(RateControlEntry *rce, double qp)
  62. {
  63. if (qp <= 0.0) {
  64. av_log(NULL, AV_LOG_ERROR, "qp<=0.0\n");
  65. }
  66. return rce->qscale * (double)(rce->i_tex_bits + rce->p_tex_bits + 1) / qp;
  67. }
  68. static inline double bits2qp(RateControlEntry *rce, double bits)
  69. {
  70. if (bits < 0.9) {
  71. av_log(NULL, AV_LOG_ERROR, "bits<0.9\n");
  72. }
  73. return rce->qscale * (double)(rce->i_tex_bits + rce->p_tex_bits + 1) / bits;
  74. }
  75. av_cold int ff_rate_control_init(MpegEncContext *s)
  76. {
  77. RateControlContext *rcc = &s->rc_context;
  78. int i, res;
  79. static const char * const const_names[] = {
  80. "PI",
  81. "E",
  82. "iTex",
  83. "pTex",
  84. "tex",
  85. "mv",
  86. "fCode",
  87. "iCount",
  88. "mcVar",
  89. "var",
  90. "isI",
  91. "isP",
  92. "isB",
  93. "avgQP",
  94. "qComp",
  95. "avgIITex",
  96. "avgPITex",
  97. "avgPPTex",
  98. "avgBPTex",
  99. "avgTex",
  100. NULL
  101. };
  102. static double (* const func1[])(void *, double) = {
  103. (void *)bits2qp,
  104. (void *)qp2bits,
  105. NULL
  106. };
  107. static const char * const func1_names[] = {
  108. "bits2qp",
  109. "qp2bits",
  110. NULL
  111. };
  112. emms_c();
  113. if (!s->avctx->rc_max_available_vbv_use && s->avctx->rc_buffer_size) {
  114. if (s->avctx->rc_max_rate) {
  115. s->avctx->rc_max_available_vbv_use = av_clipf(s->avctx->rc_max_rate/(s->avctx->rc_buffer_size*get_fps(s->avctx)), 1.0/3, 1.0);
  116. } else
  117. s->avctx->rc_max_available_vbv_use = 1.0;
  118. }
  119. res = av_expr_parse(&rcc->rc_eq_eval,
  120. s->rc_eq ? s->rc_eq : "tex^qComp",
  121. const_names, func1_names, func1,
  122. NULL, NULL, 0, s->avctx);
  123. if (res < 0) {
  124. av_log(s->avctx, AV_LOG_ERROR, "Error parsing rc_eq \"%s\"\n", s->rc_eq);
  125. return res;
  126. }
  127. #if FF_API_RC_STRATEGY
  128. FF_DISABLE_DEPRECATION_WARNINGS
  129. if (!s->rc_strategy)
  130. s->rc_strategy = s->avctx->rc_strategy;
  131. FF_ENABLE_DEPRECATION_WARNINGS
  132. #endif
  133. for (i = 0; i < 5; i++) {
  134. rcc->pred[i].coeff = FF_QP2LAMBDA * 7.0;
  135. rcc->pred[i].count = 1.0;
  136. rcc->pred[i].decay = 0.4;
  137. rcc->i_cplx_sum [i] =
  138. rcc->p_cplx_sum [i] =
  139. rcc->mv_bits_sum[i] =
  140. rcc->qscale_sum [i] =
  141. rcc->frame_count[i] = 1; // 1 is better because of 1/0 and such
  142. rcc->last_qscale_for[i] = FF_QP2LAMBDA * 5;
  143. }
  144. rcc->buffer_index = s->avctx->rc_initial_buffer_occupancy;
  145. if (!rcc->buffer_index)
  146. rcc->buffer_index = s->avctx->rc_buffer_size * 3 / 4;
  147. if (s->avctx->flags & AV_CODEC_FLAG_PASS2) {
  148. int i;
  149. char *p;
  150. /* find number of pics */
  151. p = s->avctx->stats_in;
  152. for (i = -1; p; i++)
  153. p = strchr(p + 1, ';');
  154. i += s->max_b_frames;
  155. if (i <= 0 || i >= INT_MAX / sizeof(RateControlEntry))
  156. return -1;
  157. rcc->entry = av_mallocz(i * sizeof(RateControlEntry));
  158. if (!rcc->entry)
  159. return AVERROR(ENOMEM);
  160. rcc->num_entries = i;
  161. /* init all to skipped P-frames
  162. * (with B-frames we might have a not encoded frame at the end FIXME) */
  163. for (i = 0; i < rcc->num_entries; i++) {
  164. RateControlEntry *rce = &rcc->entry[i];
  165. rce->pict_type = rce->new_pict_type = AV_PICTURE_TYPE_P;
  166. rce->qscale = rce->new_qscale = FF_QP2LAMBDA * 2;
  167. rce->misc_bits = s->mb_num + 10;
  168. rce->mb_var_sum = s->mb_num * 100;
  169. }
  170. /* read stats */
  171. p = s->avctx->stats_in;
  172. for (i = 0; i < rcc->num_entries - s->max_b_frames; i++) {
  173. RateControlEntry *rce;
  174. int picture_number;
  175. int e;
  176. char *next;
  177. next = strchr(p, ';');
  178. if (next) {
  179. (*next) = 0; // sscanf is unbelievably slow on looong strings // FIXME copy / do not write
  180. next++;
  181. }
  182. e = sscanf(p, " in:%d ", &picture_number);
  183. av_assert0(picture_number >= 0);
  184. av_assert0(picture_number < rcc->num_entries);
  185. rce = &rcc->entry[picture_number];
  186. e += sscanf(p, " in:%*d out:%*d type:%d q:%f itex:%d ptex:%d mv:%d misc:%d fcode:%d bcode:%d mc-var:%"SCNd64" var:%"SCNd64" icount:%d skipcount:%d hbits:%d",
  187. &rce->pict_type, &rce->qscale, &rce->i_tex_bits, &rce->p_tex_bits,
  188. &rce->mv_bits, &rce->misc_bits,
  189. &rce->f_code, &rce->b_code,
  190. &rce->mc_mb_var_sum, &rce->mb_var_sum,
  191. &rce->i_count, &rce->skip_count, &rce->header_bits);
  192. if (e != 14) {
  193. av_log(s->avctx, AV_LOG_ERROR,
  194. "statistics are damaged at line %d, parser out=%d\n",
  195. i, e);
  196. return -1;
  197. }
  198. p = next;
  199. }
  200. if (init_pass2(s) < 0) {
  201. ff_rate_control_uninit(s);
  202. return -1;
  203. }
  204. #if FF_API_RC_STRATEGY
  205. av_assert0(MPV_RC_STRATEGY_XVID == FF_RC_STRATEGY_XVID);
  206. #endif
  207. // FIXME maybe move to end
  208. if ((s->avctx->flags & AV_CODEC_FLAG_PASS2) && s->rc_strategy == MPV_RC_STRATEGY_XVID) {
  209. #if CONFIG_LIBXVID
  210. return ff_xvid_rate_control_init(s);
  211. #else
  212. av_log(s->avctx, AV_LOG_ERROR,
  213. "Xvid ratecontrol requires libavcodec compiled with Xvid support.\n");
  214. return -1;
  215. #endif
  216. }
  217. }
  218. if (!(s->avctx->flags & AV_CODEC_FLAG_PASS2)) {
  219. rcc->short_term_qsum = 0.001;
  220. rcc->short_term_qcount = 0.001;
  221. rcc->pass1_rc_eq_output_sum = 0.001;
  222. rcc->pass1_wanted_bits = 0.001;
  223. if (s->avctx->qblur > 1.0) {
  224. av_log(s->avctx, AV_LOG_ERROR, "qblur too large\n");
  225. return -1;
  226. }
  227. /* init stuff with the user specified complexity */
  228. if (s->rc_initial_cplx) {
  229. for (i = 0; i < 60 * 30; i++) {
  230. double bits = s->rc_initial_cplx * (i / 10000.0 + 1.0) * s->mb_num;
  231. RateControlEntry rce;
  232. if (i % ((s->gop_size + 3) / 4) == 0)
  233. rce.pict_type = AV_PICTURE_TYPE_I;
  234. else if (i % (s->max_b_frames + 1))
  235. rce.pict_type = AV_PICTURE_TYPE_B;
  236. else
  237. rce.pict_type = AV_PICTURE_TYPE_P;
  238. rce.new_pict_type = rce.pict_type;
  239. rce.mc_mb_var_sum = bits * s->mb_num / 100000;
  240. rce.mb_var_sum = s->mb_num;
  241. rce.qscale = FF_QP2LAMBDA * 2;
  242. rce.f_code = 2;
  243. rce.b_code = 1;
  244. rce.misc_bits = 1;
  245. if (s->pict_type == AV_PICTURE_TYPE_I) {
  246. rce.i_count = s->mb_num;
  247. rce.i_tex_bits = bits;
  248. rce.p_tex_bits = 0;
  249. rce.mv_bits = 0;
  250. } else {
  251. rce.i_count = 0; // FIXME we do know this approx
  252. rce.i_tex_bits = 0;
  253. rce.p_tex_bits = bits * 0.9;
  254. rce.mv_bits = bits * 0.1;
  255. }
  256. rcc->i_cplx_sum[rce.pict_type] += rce.i_tex_bits * rce.qscale;
  257. rcc->p_cplx_sum[rce.pict_type] += rce.p_tex_bits * rce.qscale;
  258. rcc->mv_bits_sum[rce.pict_type] += rce.mv_bits;
  259. rcc->frame_count[rce.pict_type]++;
  260. get_qscale(s, &rce, rcc->pass1_wanted_bits / rcc->pass1_rc_eq_output_sum, i);
  261. // FIXME misbehaves a little for variable fps
  262. rcc->pass1_wanted_bits += s->bit_rate / get_fps(s->avctx);
  263. }
  264. }
  265. }
  266. return 0;
  267. }
  268. av_cold void ff_rate_control_uninit(MpegEncContext *s)
  269. {
  270. RateControlContext *rcc = &s->rc_context;
  271. emms_c();
  272. av_expr_free(rcc->rc_eq_eval);
  273. av_freep(&rcc->entry);
  274. #if CONFIG_LIBXVID
  275. if ((s->avctx->flags & AV_CODEC_FLAG_PASS2) && s->rc_strategy == MPV_RC_STRATEGY_XVID)
  276. ff_xvid_rate_control_uninit(s);
  277. #endif
  278. }
  279. int ff_vbv_update(MpegEncContext *s, int frame_size)
  280. {
  281. RateControlContext *rcc = &s->rc_context;
  282. const double fps = get_fps(s->avctx);
  283. const int buffer_size = s->avctx->rc_buffer_size;
  284. const double min_rate = s->avctx->rc_min_rate / fps;
  285. const double max_rate = s->avctx->rc_max_rate / fps;
  286. ff_dlog(s, "%d %f %d %f %f\n",
  287. buffer_size, rcc->buffer_index, frame_size, min_rate, max_rate);
  288. if (buffer_size) {
  289. int left;
  290. rcc->buffer_index -= frame_size;
  291. if (rcc->buffer_index < 0) {
  292. av_log(s->avctx, AV_LOG_ERROR, "rc buffer underflow\n");
  293. if (frame_size > max_rate && s->qscale == s->avctx->qmax) {
  294. av_log(s->avctx, AV_LOG_ERROR, "max bitrate possibly too small or try trellis with large lmax or increase qmax\n");
  295. }
  296. rcc->buffer_index = 0;
  297. }
  298. left = buffer_size - rcc->buffer_index - 1;
  299. rcc->buffer_index += av_clip(left, min_rate, max_rate);
  300. if (rcc->buffer_index > buffer_size) {
  301. int stuffing = ceil((rcc->buffer_index - buffer_size) / 8);
  302. if (stuffing < 4 && s->codec_id == AV_CODEC_ID_MPEG4)
  303. stuffing = 4;
  304. rcc->buffer_index -= 8 * stuffing;
  305. if (s->avctx->debug & FF_DEBUG_RC)
  306. av_log(s->avctx, AV_LOG_DEBUG, "stuffing %d bytes\n", stuffing);
  307. return stuffing;
  308. }
  309. }
  310. return 0;
  311. }
  312. /**
  313. * Modify the bitrate curve from pass1 for one frame.
  314. */
  315. static double get_qscale(MpegEncContext *s, RateControlEntry *rce,
  316. double rate_factor, int frame_num)
  317. {
  318. RateControlContext *rcc = &s->rc_context;
  319. AVCodecContext *a = s->avctx;
  320. const int pict_type = rce->new_pict_type;
  321. const double mb_num = s->mb_num;
  322. double q, bits;
  323. int i;
  324. double const_values[] = {
  325. M_PI,
  326. M_E,
  327. rce->i_tex_bits * rce->qscale,
  328. rce->p_tex_bits * rce->qscale,
  329. (rce->i_tex_bits + rce->p_tex_bits) * (double)rce->qscale,
  330. rce->mv_bits / mb_num,
  331. rce->pict_type == AV_PICTURE_TYPE_B ? (rce->f_code + rce->b_code) * 0.5 : rce->f_code,
  332. rce->i_count / mb_num,
  333. rce->mc_mb_var_sum / mb_num,
  334. rce->mb_var_sum / mb_num,
  335. rce->pict_type == AV_PICTURE_TYPE_I,
  336. rce->pict_type == AV_PICTURE_TYPE_P,
  337. rce->pict_type == AV_PICTURE_TYPE_B,
  338. rcc->qscale_sum[pict_type] / (double)rcc->frame_count[pict_type],
  339. a->qcompress,
  340. rcc->i_cplx_sum[AV_PICTURE_TYPE_I] / (double)rcc->frame_count[AV_PICTURE_TYPE_I],
  341. rcc->i_cplx_sum[AV_PICTURE_TYPE_P] / (double)rcc->frame_count[AV_PICTURE_TYPE_P],
  342. rcc->p_cplx_sum[AV_PICTURE_TYPE_P] / (double)rcc->frame_count[AV_PICTURE_TYPE_P],
  343. rcc->p_cplx_sum[AV_PICTURE_TYPE_B] / (double)rcc->frame_count[AV_PICTURE_TYPE_B],
  344. (rcc->i_cplx_sum[pict_type] + rcc->p_cplx_sum[pict_type]) / (double)rcc->frame_count[pict_type],
  345. 0
  346. };
  347. bits = av_expr_eval(rcc->rc_eq_eval, const_values, rce);
  348. if (isnan(bits)) {
  349. av_log(s->avctx, AV_LOG_ERROR, "Error evaluating rc_eq \"%s\"\n", s->rc_eq);
  350. return -1;
  351. }
  352. rcc->pass1_rc_eq_output_sum += bits;
  353. bits *= rate_factor;
  354. if (bits < 0.0)
  355. bits = 0.0;
  356. bits += 1.0; // avoid 1/0 issues
  357. /* user override */
  358. for (i = 0; i < s->avctx->rc_override_count; i++) {
  359. RcOverride *rco = s->avctx->rc_override;
  360. if (rco[i].start_frame > frame_num)
  361. continue;
  362. if (rco[i].end_frame < frame_num)
  363. continue;
  364. if (rco[i].qscale)
  365. bits = qp2bits(rce, rco[i].qscale); // FIXME move at end to really force it?
  366. else
  367. bits *= rco[i].quality_factor;
  368. }
  369. q = bits2qp(rce, bits);
  370. /* I/B difference */
  371. if (pict_type == AV_PICTURE_TYPE_I && s->avctx->i_quant_factor < 0.0)
  372. q = -q * s->avctx->i_quant_factor + s->avctx->i_quant_offset;
  373. else if (pict_type == AV_PICTURE_TYPE_B && s->avctx->b_quant_factor < 0.0)
  374. q = -q * s->avctx->b_quant_factor + s->avctx->b_quant_offset;
  375. if (q < 1)
  376. q = 1;
  377. return q;
  378. }
  379. static double get_diff_limited_q(MpegEncContext *s, RateControlEntry *rce, double q)
  380. {
  381. RateControlContext *rcc = &s->rc_context;
  382. AVCodecContext *a = s->avctx;
  383. const int pict_type = rce->new_pict_type;
  384. const double last_p_q = rcc->last_qscale_for[AV_PICTURE_TYPE_P];
  385. const double last_non_b_q = rcc->last_qscale_for[rcc->last_non_b_pict_type];
  386. if (pict_type == AV_PICTURE_TYPE_I &&
  387. (a->i_quant_factor > 0.0 || rcc->last_non_b_pict_type == AV_PICTURE_TYPE_P))
  388. q = last_p_q * FFABS(a->i_quant_factor) + a->i_quant_offset;
  389. else if (pict_type == AV_PICTURE_TYPE_B &&
  390. a->b_quant_factor > 0.0)
  391. q = last_non_b_q * a->b_quant_factor + a->b_quant_offset;
  392. if (q < 1)
  393. q = 1;
  394. /* last qscale / qdiff stuff */
  395. if (rcc->last_non_b_pict_type == pict_type || pict_type != AV_PICTURE_TYPE_I) {
  396. double last_q = rcc->last_qscale_for[pict_type];
  397. const int maxdiff = FF_QP2LAMBDA * a->max_qdiff;
  398. if (q > last_q + maxdiff)
  399. q = last_q + maxdiff;
  400. else if (q < last_q - maxdiff)
  401. q = last_q - maxdiff;
  402. }
  403. rcc->last_qscale_for[pict_type] = q; // Note we cannot do that after blurring
  404. if (pict_type != AV_PICTURE_TYPE_B)
  405. rcc->last_non_b_pict_type = pict_type;
  406. return q;
  407. }
  408. /**
  409. * Get the qmin & qmax for pict_type.
  410. */
  411. static void get_qminmax(int *qmin_ret, int *qmax_ret, MpegEncContext *s, int pict_type)
  412. {
  413. int qmin = s->lmin;
  414. int qmax = s->lmax;
  415. av_assert0(qmin <= qmax);
  416. switch (pict_type) {
  417. case AV_PICTURE_TYPE_B:
  418. qmin = (int)(qmin * FFABS(s->avctx->b_quant_factor) + s->avctx->b_quant_offset + 0.5);
  419. qmax = (int)(qmax * FFABS(s->avctx->b_quant_factor) + s->avctx->b_quant_offset + 0.5);
  420. break;
  421. case AV_PICTURE_TYPE_I:
  422. qmin = (int)(qmin * FFABS(s->avctx->i_quant_factor) + s->avctx->i_quant_offset + 0.5);
  423. qmax = (int)(qmax * FFABS(s->avctx->i_quant_factor) + s->avctx->i_quant_offset + 0.5);
  424. break;
  425. }
  426. qmin = av_clip(qmin, 1, FF_LAMBDA_MAX);
  427. qmax = av_clip(qmax, 1, FF_LAMBDA_MAX);
  428. if (qmax < qmin)
  429. qmax = qmin;
  430. *qmin_ret = qmin;
  431. *qmax_ret = qmax;
  432. }
  433. static double modify_qscale(MpegEncContext *s, RateControlEntry *rce,
  434. double q, int frame_num)
  435. {
  436. RateControlContext *rcc = &s->rc_context;
  437. const double buffer_size = s->avctx->rc_buffer_size;
  438. const double fps = get_fps(s->avctx);
  439. const double min_rate = s->avctx->rc_min_rate / fps;
  440. const double max_rate = s->avctx->rc_max_rate / fps;
  441. const int pict_type = rce->new_pict_type;
  442. int qmin, qmax;
  443. get_qminmax(&qmin, &qmax, s, pict_type);
  444. /* modulation */
  445. if (s->rc_qmod_freq &&
  446. frame_num % s->rc_qmod_freq == 0 &&
  447. pict_type == AV_PICTURE_TYPE_P)
  448. q *= s->rc_qmod_amp;
  449. /* buffer overflow/underflow protection */
  450. if (buffer_size) {
  451. double expected_size = rcc->buffer_index;
  452. double q_limit;
  453. if (min_rate) {
  454. double d = 2 * (buffer_size - expected_size) / buffer_size;
  455. if (d > 1.0)
  456. d = 1.0;
  457. else if (d < 0.0001)
  458. d = 0.0001;
  459. q *= pow(d, 1.0 / s->rc_buffer_aggressivity);
  460. q_limit = bits2qp(rce,
  461. FFMAX((min_rate - buffer_size + rcc->buffer_index) *
  462. s->avctx->rc_min_vbv_overflow_use, 1));
  463. if (q > q_limit) {
  464. if (s->avctx->debug & FF_DEBUG_RC)
  465. av_log(s->avctx, AV_LOG_DEBUG,
  466. "limiting QP %f -> %f\n", q, q_limit);
  467. q = q_limit;
  468. }
  469. }
  470. if (max_rate) {
  471. double d = 2 * expected_size / buffer_size;
  472. if (d > 1.0)
  473. d = 1.0;
  474. else if (d < 0.0001)
  475. d = 0.0001;
  476. q /= pow(d, 1.0 / s->rc_buffer_aggressivity);
  477. q_limit = bits2qp(rce,
  478. FFMAX(rcc->buffer_index *
  479. s->avctx->rc_max_available_vbv_use,
  480. 1));
  481. if (q < q_limit) {
  482. if (s->avctx->debug & FF_DEBUG_RC)
  483. av_log(s->avctx, AV_LOG_DEBUG,
  484. "limiting QP %f -> %f\n", q, q_limit);
  485. q = q_limit;
  486. }
  487. }
  488. }
  489. ff_dlog(s, "q:%f max:%f min:%f size:%f index:%f agr:%f\n",
  490. q, max_rate, min_rate, buffer_size, rcc->buffer_index,
  491. s->rc_buffer_aggressivity);
  492. if (s->rc_qsquish == 0.0 || qmin == qmax) {
  493. if (q < qmin)
  494. q = qmin;
  495. else if (q > qmax)
  496. q = qmax;
  497. } else {
  498. double min2 = log(qmin);
  499. double max2 = log(qmax);
  500. q = log(q);
  501. q = (q - min2) / (max2 - min2) - 0.5;
  502. q *= -4.0;
  503. q = 1.0 / (1.0 + exp(q));
  504. q = q * (max2 - min2) + min2;
  505. q = exp(q);
  506. }
  507. return q;
  508. }
  509. // ----------------------------------
  510. // 1 Pass Code
  511. static double predict_size(Predictor *p, double q, double var)
  512. {
  513. return p->coeff * var / (q * p->count);
  514. }
  515. static void update_predictor(Predictor *p, double q, double var, double size)
  516. {
  517. double new_coeff = size * q / (var + 1);
  518. if (var < 10)
  519. return;
  520. p->count *= p->decay;
  521. p->coeff *= p->decay;
  522. p->count++;
  523. p->coeff += new_coeff;
  524. }
  525. static void adaptive_quantization(MpegEncContext *s, double q)
  526. {
  527. int i;
  528. const float lumi_masking = s->avctx->lumi_masking / (128.0 * 128.0);
  529. const float dark_masking = s->avctx->dark_masking / (128.0 * 128.0);
  530. const float temp_cplx_masking = s->avctx->temporal_cplx_masking;
  531. const float spatial_cplx_masking = s->avctx->spatial_cplx_masking;
  532. const float p_masking = s->avctx->p_masking;
  533. const float border_masking = s->border_masking;
  534. float bits_sum = 0.0;
  535. float cplx_sum = 0.0;
  536. float *cplx_tab = s->cplx_tab;
  537. float *bits_tab = s->bits_tab;
  538. const int qmin = s->avctx->mb_lmin;
  539. const int qmax = s->avctx->mb_lmax;
  540. Picture *const pic = &s->current_picture;
  541. const int mb_width = s->mb_width;
  542. const int mb_height = s->mb_height;
  543. for (i = 0; i < s->mb_num; i++) {
  544. const int mb_xy = s->mb_index2xy[i];
  545. float temp_cplx = sqrt(pic->mc_mb_var[mb_xy]); // FIXME merge in pow()
  546. float spat_cplx = sqrt(pic->mb_var[mb_xy]);
  547. const int lumi = pic->mb_mean[mb_xy];
  548. float bits, cplx, factor;
  549. int mb_x = mb_xy % s->mb_stride;
  550. int mb_y = mb_xy / s->mb_stride;
  551. int mb_distance;
  552. float mb_factor = 0.0;
  553. if (spat_cplx < 4)
  554. spat_cplx = 4; // FIXME fine-tune
  555. if (temp_cplx < 4)
  556. temp_cplx = 4; // FIXME fine-tune
  557. if ((s->mb_type[mb_xy] & CANDIDATE_MB_TYPE_INTRA)) { // FIXME hq mode
  558. cplx = spat_cplx;
  559. factor = 1.0 + p_masking;
  560. } else {
  561. cplx = temp_cplx;
  562. factor = pow(temp_cplx, -temp_cplx_masking);
  563. }
  564. factor *= pow(spat_cplx, -spatial_cplx_masking);
  565. if (lumi > 127)
  566. factor *= (1.0 - (lumi - 128) * (lumi - 128) * lumi_masking);
  567. else
  568. factor *= (1.0 - (lumi - 128) * (lumi - 128) * dark_masking);
  569. if (mb_x < mb_width / 5) {
  570. mb_distance = mb_width / 5 - mb_x;
  571. mb_factor = (float)mb_distance / (float)(mb_width / 5);
  572. } else if (mb_x > 4 * mb_width / 5) {
  573. mb_distance = mb_x - 4 * mb_width / 5;
  574. mb_factor = (float)mb_distance / (float)(mb_width / 5);
  575. }
  576. if (mb_y < mb_height / 5) {
  577. mb_distance = mb_height / 5 - mb_y;
  578. mb_factor = FFMAX(mb_factor,
  579. (float)mb_distance / (float)(mb_height / 5));
  580. } else if (mb_y > 4 * mb_height / 5) {
  581. mb_distance = mb_y - 4 * mb_height / 5;
  582. mb_factor = FFMAX(mb_factor,
  583. (float)mb_distance / (float)(mb_height / 5));
  584. }
  585. factor *= 1.0 - border_masking * mb_factor;
  586. if (factor < 0.00001)
  587. factor = 0.00001;
  588. bits = cplx * factor;
  589. cplx_sum += cplx;
  590. bits_sum += bits;
  591. cplx_tab[i] = cplx;
  592. bits_tab[i] = bits;
  593. }
  594. /* handle qmin/qmax clipping */
  595. if (s->mpv_flags & FF_MPV_FLAG_NAQ) {
  596. float factor = bits_sum / cplx_sum;
  597. for (i = 0; i < s->mb_num; i++) {
  598. float newq = q * cplx_tab[i] / bits_tab[i];
  599. newq *= factor;
  600. if (newq > qmax) {
  601. bits_sum -= bits_tab[i];
  602. cplx_sum -= cplx_tab[i] * q / qmax;
  603. } else if (newq < qmin) {
  604. bits_sum -= bits_tab[i];
  605. cplx_sum -= cplx_tab[i] * q / qmin;
  606. }
  607. }
  608. if (bits_sum < 0.001)
  609. bits_sum = 0.001;
  610. if (cplx_sum < 0.001)
  611. cplx_sum = 0.001;
  612. }
  613. for (i = 0; i < s->mb_num; i++) {
  614. const int mb_xy = s->mb_index2xy[i];
  615. float newq = q * cplx_tab[i] / bits_tab[i];
  616. int intq;
  617. if (s->mpv_flags & FF_MPV_FLAG_NAQ) {
  618. newq *= bits_sum / cplx_sum;
  619. }
  620. intq = (int)(newq + 0.5);
  621. if (intq > qmax)
  622. intq = qmax;
  623. else if (intq < qmin)
  624. intq = qmin;
  625. s->lambda_table[mb_xy] = intq;
  626. }
  627. }
  628. void ff_get_2pass_fcode(MpegEncContext *s)
  629. {
  630. RateControlContext *rcc = &s->rc_context;
  631. RateControlEntry *rce = &rcc->entry[s->picture_number];
  632. s->f_code = rce->f_code;
  633. s->b_code = rce->b_code;
  634. }
  635. // FIXME rd or at least approx for dquant
  636. float ff_rate_estimate_qscale(MpegEncContext *s, int dry_run)
  637. {
  638. float q;
  639. int qmin, qmax;
  640. float br_compensation;
  641. double diff;
  642. double short_term_q;
  643. double fps;
  644. int picture_number = s->picture_number;
  645. int64_t wanted_bits;
  646. RateControlContext *rcc = &s->rc_context;
  647. AVCodecContext *a = s->avctx;
  648. RateControlEntry local_rce, *rce;
  649. double bits;
  650. double rate_factor;
  651. int64_t var;
  652. const int pict_type = s->pict_type;
  653. Picture * const pic = &s->current_picture;
  654. emms_c();
  655. #if CONFIG_LIBXVID
  656. if ((s->avctx->flags & AV_CODEC_FLAG_PASS2) && s->rc_strategy == MPV_RC_STRATEGY_XVID)
  657. return ff_xvid_rate_estimate_qscale(s, dry_run);
  658. #endif
  659. get_qminmax(&qmin, &qmax, s, pict_type);
  660. fps = get_fps(s->avctx);
  661. /* update predictors */
  662. if (picture_number > 2 && !dry_run) {
  663. const int64_t last_var =
  664. s->last_pict_type == AV_PICTURE_TYPE_I ? rcc->last_mb_var_sum
  665. : rcc->last_mc_mb_var_sum;
  666. av_assert1(s->frame_bits >= s->stuffing_bits);
  667. update_predictor(&rcc->pred[s->last_pict_type],
  668. rcc->last_qscale,
  669. sqrt(last_var),
  670. s->frame_bits - s->stuffing_bits);
  671. }
  672. if (s->avctx->flags & AV_CODEC_FLAG_PASS2) {
  673. av_assert0(picture_number >= 0);
  674. if (picture_number >= rcc->num_entries) {
  675. av_log(s, AV_LOG_ERROR, "Input is longer than 2-pass log file\n");
  676. return -1;
  677. }
  678. rce = &rcc->entry[picture_number];
  679. wanted_bits = rce->expected_bits;
  680. } else {
  681. Picture *dts_pic;
  682. rce = &local_rce;
  683. /* FIXME add a dts field to AVFrame and ensure it is set and use it
  684. * here instead of reordering but the reordering is simpler for now
  685. * until H.264 B-pyramid must be handled. */
  686. if (s->pict_type == AV_PICTURE_TYPE_B || s->low_delay)
  687. dts_pic = s->current_picture_ptr;
  688. else
  689. dts_pic = s->last_picture_ptr;
  690. if (!dts_pic || dts_pic->f->pts == AV_NOPTS_VALUE)
  691. wanted_bits = (uint64_t)(s->bit_rate * (double)picture_number / fps);
  692. else
  693. wanted_bits = (uint64_t)(s->bit_rate * (double)dts_pic->f->pts / fps);
  694. }
  695. diff = s->total_bits - wanted_bits;
  696. br_compensation = (a->bit_rate_tolerance - diff) / a->bit_rate_tolerance;
  697. if (br_compensation <= 0.0)
  698. br_compensation = 0.001;
  699. var = pict_type == AV_PICTURE_TYPE_I ? pic->mb_var_sum : pic->mc_mb_var_sum;
  700. short_term_q = 0; /* avoid warning */
  701. if (s->avctx->flags & AV_CODEC_FLAG_PASS2) {
  702. if (pict_type != AV_PICTURE_TYPE_I)
  703. av_assert0(pict_type == rce->new_pict_type);
  704. q = rce->new_qscale / br_compensation;
  705. ff_dlog(s, "%f %f %f last:%d var:%"PRId64" type:%d//\n", q, rce->new_qscale,
  706. br_compensation, s->frame_bits, var, pict_type);
  707. } else {
  708. rce->pict_type =
  709. rce->new_pict_type = pict_type;
  710. rce->mc_mb_var_sum = pic->mc_mb_var_sum;
  711. rce->mb_var_sum = pic->mb_var_sum;
  712. rce->qscale = FF_QP2LAMBDA * 2;
  713. rce->f_code = s->f_code;
  714. rce->b_code = s->b_code;
  715. rce->misc_bits = 1;
  716. bits = predict_size(&rcc->pred[pict_type], rce->qscale, sqrt(var));
  717. if (pict_type == AV_PICTURE_TYPE_I) {
  718. rce->i_count = s->mb_num;
  719. rce->i_tex_bits = bits;
  720. rce->p_tex_bits = 0;
  721. rce->mv_bits = 0;
  722. } else {
  723. rce->i_count = 0; // FIXME we do know this approx
  724. rce->i_tex_bits = 0;
  725. rce->p_tex_bits = bits * 0.9;
  726. rce->mv_bits = bits * 0.1;
  727. }
  728. rcc->i_cplx_sum[pict_type] += rce->i_tex_bits * rce->qscale;
  729. rcc->p_cplx_sum[pict_type] += rce->p_tex_bits * rce->qscale;
  730. rcc->mv_bits_sum[pict_type] += rce->mv_bits;
  731. rcc->frame_count[pict_type]++;
  732. rate_factor = rcc->pass1_wanted_bits /
  733. rcc->pass1_rc_eq_output_sum * br_compensation;
  734. q = get_qscale(s, rce, rate_factor, picture_number);
  735. if (q < 0)
  736. return -1;
  737. av_assert0(q > 0.0);
  738. q = get_diff_limited_q(s, rce, q);
  739. av_assert0(q > 0.0);
  740. // FIXME type dependent blur like in 2-pass
  741. if (pict_type == AV_PICTURE_TYPE_P || s->intra_only) {
  742. rcc->short_term_qsum *= a->qblur;
  743. rcc->short_term_qcount *= a->qblur;
  744. rcc->short_term_qsum += q;
  745. rcc->short_term_qcount++;
  746. q = short_term_q = rcc->short_term_qsum / rcc->short_term_qcount;
  747. }
  748. av_assert0(q > 0.0);
  749. q = modify_qscale(s, rce, q, picture_number);
  750. rcc->pass1_wanted_bits += s->bit_rate / fps;
  751. av_assert0(q > 0.0);
  752. }
  753. if (s->avctx->debug & FF_DEBUG_RC) {
  754. av_log(s->avctx, AV_LOG_DEBUG,
  755. "%c qp:%d<%2.1f<%d %d want:%d total:%d comp:%f st_q:%2.2f "
  756. "size:%d var:%"PRId64"/%"PRId64" br:%"PRId64" fps:%d\n",
  757. av_get_picture_type_char(pict_type),
  758. qmin, q, qmax, picture_number,
  759. (int)wanted_bits / 1000, (int)s->total_bits / 1000,
  760. br_compensation, short_term_q, s->frame_bits,
  761. pic->mb_var_sum, pic->mc_mb_var_sum,
  762. s->bit_rate / 1000, (int)fps);
  763. }
  764. if (q < qmin)
  765. q = qmin;
  766. else if (q > qmax)
  767. q = qmax;
  768. if (s->adaptive_quant)
  769. adaptive_quantization(s, q);
  770. else
  771. q = (int)(q + 0.5);
  772. if (!dry_run) {
  773. rcc->last_qscale = q;
  774. rcc->last_mc_mb_var_sum = pic->mc_mb_var_sum;
  775. rcc->last_mb_var_sum = pic->mb_var_sum;
  776. }
  777. return q;
  778. }
  779. // ----------------------------------------------
  780. // 2-Pass code
  781. static int init_pass2(MpegEncContext *s)
  782. {
  783. RateControlContext *rcc = &s->rc_context;
  784. AVCodecContext *a = s->avctx;
  785. int i, toobig;
  786. double fps = get_fps(s->avctx);
  787. double complexity[5] = { 0 }; // approximate bits at quant=1
  788. uint64_t const_bits[5] = { 0 }; // quantizer independent bits
  789. uint64_t all_const_bits;
  790. uint64_t all_available_bits = (uint64_t)(s->bit_rate *
  791. (double)rcc->num_entries / fps);
  792. double rate_factor = 0;
  793. double step;
  794. const int filter_size = (int)(a->qblur * 4) | 1;
  795. double expected_bits = 0; // init to silence gcc warning
  796. double *qscale, *blurred_qscale, qscale_sum;
  797. /* find complexity & const_bits & decide the pict_types */
  798. for (i = 0; i < rcc->num_entries; i++) {
  799. RateControlEntry *rce = &rcc->entry[i];
  800. rce->new_pict_type = rce->pict_type;
  801. rcc->i_cplx_sum[rce->pict_type] += rce->i_tex_bits * rce->qscale;
  802. rcc->p_cplx_sum[rce->pict_type] += rce->p_tex_bits * rce->qscale;
  803. rcc->mv_bits_sum[rce->pict_type] += rce->mv_bits;
  804. rcc->frame_count[rce->pict_type]++;
  805. complexity[rce->new_pict_type] += (rce->i_tex_bits + rce->p_tex_bits) *
  806. (double)rce->qscale;
  807. const_bits[rce->new_pict_type] += rce->mv_bits + rce->misc_bits;
  808. }
  809. all_const_bits = const_bits[AV_PICTURE_TYPE_I] +
  810. const_bits[AV_PICTURE_TYPE_P] +
  811. const_bits[AV_PICTURE_TYPE_B];
  812. if (all_available_bits < all_const_bits) {
  813. av_log(s->avctx, AV_LOG_ERROR, "requested bitrate is too low\n");
  814. return -1;
  815. }
  816. qscale = av_malloc_array(rcc->num_entries, sizeof(double));
  817. blurred_qscale = av_malloc_array(rcc->num_entries, sizeof(double));
  818. if (!qscale || !blurred_qscale) {
  819. av_free(qscale);
  820. av_free(blurred_qscale);
  821. return AVERROR(ENOMEM);
  822. }
  823. toobig = 0;
  824. for (step = 256 * 256; step > 0.0000001; step *= 0.5) {
  825. expected_bits = 0;
  826. rate_factor += step;
  827. rcc->buffer_index = s->avctx->rc_buffer_size / 2;
  828. /* find qscale */
  829. for (i = 0; i < rcc->num_entries; i++) {
  830. RateControlEntry *rce = &rcc->entry[i];
  831. qscale[i] = get_qscale(s, &rcc->entry[i], rate_factor, i);
  832. rcc->last_qscale_for[rce->pict_type] = qscale[i];
  833. }
  834. av_assert0(filter_size % 2 == 1);
  835. /* fixed I/B QP relative to P mode */
  836. for (i = FFMAX(0, rcc->num_entries - 300); i < rcc->num_entries; i++) {
  837. RateControlEntry *rce = &rcc->entry[i];
  838. qscale[i] = get_diff_limited_q(s, rce, qscale[i]);
  839. }
  840. for (i = rcc->num_entries - 1; i >= 0; i--) {
  841. RateControlEntry *rce = &rcc->entry[i];
  842. qscale[i] = get_diff_limited_q(s, rce, qscale[i]);
  843. }
  844. /* smooth curve */
  845. for (i = 0; i < rcc->num_entries; i++) {
  846. RateControlEntry *rce = &rcc->entry[i];
  847. const int pict_type = rce->new_pict_type;
  848. int j;
  849. double q = 0.0, sum = 0.0;
  850. for (j = 0; j < filter_size; j++) {
  851. int index = i + j - filter_size / 2;
  852. double d = index - i;
  853. double coeff = a->qblur == 0 ? 1.0 : exp(-d * d / (a->qblur * a->qblur));
  854. if (index < 0 || index >= rcc->num_entries)
  855. continue;
  856. if (pict_type != rcc->entry[index].new_pict_type)
  857. continue;
  858. q += qscale[index] * coeff;
  859. sum += coeff;
  860. }
  861. blurred_qscale[i] = q / sum;
  862. }
  863. /* find expected bits */
  864. for (i = 0; i < rcc->num_entries; i++) {
  865. RateControlEntry *rce = &rcc->entry[i];
  866. double bits;
  867. rce->new_qscale = modify_qscale(s, rce, blurred_qscale[i], i);
  868. bits = qp2bits(rce, rce->new_qscale) + rce->mv_bits + rce->misc_bits;
  869. bits += 8 * ff_vbv_update(s, bits);
  870. rce->expected_bits = expected_bits;
  871. expected_bits += bits;
  872. }
  873. ff_dlog(s->avctx,
  874. "expected_bits: %f all_available_bits: %d rate_factor: %f\n",
  875. expected_bits, (int)all_available_bits, rate_factor);
  876. if (expected_bits > all_available_bits) {
  877. rate_factor -= step;
  878. ++toobig;
  879. }
  880. }
  881. av_free(qscale);
  882. av_free(blurred_qscale);
  883. /* check bitrate calculations and print info */
  884. qscale_sum = 0.0;
  885. for (i = 0; i < rcc->num_entries; i++) {
  886. ff_dlog(s, "[lavc rc] entry[%d].new_qscale = %.3f qp = %.3f\n",
  887. i,
  888. rcc->entry[i].new_qscale,
  889. rcc->entry[i].new_qscale / FF_QP2LAMBDA);
  890. qscale_sum += av_clip(rcc->entry[i].new_qscale / FF_QP2LAMBDA,
  891. s->avctx->qmin, s->avctx->qmax);
  892. }
  893. av_assert0(toobig <= 40);
  894. av_log(s->avctx, AV_LOG_DEBUG,
  895. "[lavc rc] requested bitrate: %"PRId64" bps expected bitrate: %"PRId64" bps\n",
  896. s->bit_rate,
  897. (int64_t)(expected_bits / ((double)all_available_bits / s->bit_rate)));
  898. av_log(s->avctx, AV_LOG_DEBUG,
  899. "[lavc rc] estimated target average qp: %.3f\n",
  900. (float)qscale_sum / rcc->num_entries);
  901. if (toobig == 0) {
  902. av_log(s->avctx, AV_LOG_INFO,
  903. "[lavc rc] Using all of requested bitrate is not "
  904. "necessary for this video with these parameters.\n");
  905. } else if (toobig == 40) {
  906. av_log(s->avctx, AV_LOG_ERROR,
  907. "[lavc rc] Error: bitrate too low for this video "
  908. "with these parameters.\n");
  909. return -1;
  910. } else if (fabs(expected_bits / all_available_bits - 1.0) > 0.01) {
  911. av_log(s->avctx, AV_LOG_ERROR,
  912. "[lavc rc] Error: 2pass curve failed to converge\n");
  913. return -1;
  914. }
  915. return 0;
  916. }