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  1. /*
  2. * Rate control for video encoders
  3. *
  4. * Copyright (c) 2002 Michael Niedermayer <michaelni@gmx.at>
  5. *
  6. * This library is free software; you can redistribute it and/or
  7. * modify it under the terms of the GNU Lesser General Public
  8. * License as published by the Free Software Foundation; either
  9. * version 2 of the License, or (at your option) any later version.
  10. *
  11. * This library is distributed in the hope that it will be useful,
  12. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  13. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  14. * Lesser General Public License for more details.
  15. *
  16. * You should have received a copy of the GNU Lesser General Public
  17. * License along with this library; if not, write to the Free Software
  18. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  19. */
  20. /**
  21. * @file ratecontrol.c
  22. * Rate control for video encoders.
  23. */
  24. #include "avcodec.h"
  25. #include "dsputil.h"
  26. #include "mpegvideo.h"
  27. #undef NDEBUG // allways check asserts, the speed effect is far too small to disable them
  28. #include <assert.h>
  29. #ifndef M_E
  30. #define M_E 2.718281828
  31. #endif
  32. static int init_pass2(MpegEncContext *s);
  33. static double get_qscale(MpegEncContext *s, RateControlEntry *rce, double rate_factor, int frame_num);
  34. void ff_write_pass1_stats(MpegEncContext *s){
  35. sprintf(s->avctx->stats_out, "in:%d out:%d type:%d q:%f itex:%d ptex:%d mv:%d misc:%d fcode:%d bcode:%d mc-var:%d var:%d icount:%d;\n",
  36. s->picture_number, s->input_picture_number - s->max_b_frames, s->pict_type,
  37. s->frame_qscale, s->i_tex_bits, s->p_tex_bits, s->mv_bits, s->misc_bits,
  38. s->f_code, s->b_code, s->current_picture.mc_mb_var_sum, s->current_picture.mb_var_sum, s->i_count);
  39. }
  40. int ff_rate_control_init(MpegEncContext *s)
  41. {
  42. RateControlContext *rcc= &s->rc_context;
  43. int i;
  44. emms_c();
  45. for(i=0; i<5; i++){
  46. rcc->pred[i].coeff= 7.0;
  47. rcc->pred[i].count= 1.0;
  48. rcc->pred[i].decay= 0.4;
  49. rcc->i_cplx_sum [i]=
  50. rcc->p_cplx_sum [i]=
  51. rcc->mv_bits_sum[i]=
  52. rcc->qscale_sum [i]=
  53. rcc->frame_count[i]= 1; // 1 is better cuz of 1/0 and such
  54. rcc->last_qscale_for[i]=5;
  55. }
  56. rcc->buffer_index= s->avctx->rc_buffer_size/2;
  57. if(s->flags&CODEC_FLAG_PASS2){
  58. int i;
  59. char *p;
  60. /* find number of pics */
  61. p= s->avctx->stats_in;
  62. for(i=-1; p; i++){
  63. p= strchr(p+1, ';');
  64. }
  65. i+= s->max_b_frames;
  66. rcc->entry = (RateControlEntry*)av_mallocz(i*sizeof(RateControlEntry));
  67. rcc->num_entries= i;
  68. /* init all to skiped p frames (with b frames we might have a not encoded frame at the end FIXME) */
  69. for(i=0; i<rcc->num_entries; i++){
  70. RateControlEntry *rce= &rcc->entry[i];
  71. rce->pict_type= rce->new_pict_type=P_TYPE;
  72. rce->qscale= rce->new_qscale=2;
  73. rce->misc_bits= s->mb_num + 10;
  74. rce->mb_var_sum= s->mb_num*100;
  75. }
  76. /* read stats */
  77. p= s->avctx->stats_in;
  78. for(i=0; i<rcc->num_entries - s->max_b_frames; i++){
  79. RateControlEntry *rce;
  80. int picture_number;
  81. int e;
  82. char *next;
  83. next= strchr(p, ';');
  84. if(next){
  85. (*next)=0; //sscanf in unbelieavle slow on looong strings //FIXME copy / dont write
  86. next++;
  87. }
  88. e= sscanf(p, " in:%d ", &picture_number);
  89. assert(picture_number >= 0);
  90. assert(picture_number < rcc->num_entries);
  91. rce= &rcc->entry[picture_number];
  92. 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:%d var:%d icount:%d",
  93. &rce->pict_type, &rce->qscale, &rce->i_tex_bits, &rce->p_tex_bits, &rce->mv_bits, &rce->misc_bits,
  94. &rce->f_code, &rce->b_code, &rce->mc_mb_var_sum, &rce->mb_var_sum, &rce->i_count);
  95. if(e!=12){
  96. fprintf(stderr, "statistics are damaged at line %d, parser out=%d\n", i, e);
  97. return -1;
  98. }
  99. p= next;
  100. }
  101. if(init_pass2(s) < 0) return -1;
  102. }
  103. if(!(s->flags&CODEC_FLAG_PASS2)){
  104. rcc->short_term_qsum=0.001;
  105. rcc->short_term_qcount=0.001;
  106. rcc->pass1_rc_eq_output_sum= 0.001;
  107. rcc->pass1_wanted_bits=0.001;
  108. /* init stuff with the user specified complexity */
  109. if(s->avctx->rc_initial_cplx){
  110. for(i=0; i<60*30; i++){
  111. double bits= s->avctx->rc_initial_cplx * (i/10000.0 + 1.0)*s->mb_num;
  112. RateControlEntry rce;
  113. double q;
  114. if (i%((s->gop_size+3)/4)==0) rce.pict_type= I_TYPE;
  115. else if(i%(s->max_b_frames+1)) rce.pict_type= B_TYPE;
  116. else rce.pict_type= P_TYPE;
  117. rce.new_pict_type= rce.pict_type;
  118. rce.mc_mb_var_sum= bits*s->mb_num/100000;
  119. rce.mb_var_sum = s->mb_num;
  120. rce.qscale = 2;
  121. rce.f_code = 2;
  122. rce.b_code = 1;
  123. rce.misc_bits= 1;
  124. if(s->pict_type== I_TYPE){
  125. rce.i_count = s->mb_num;
  126. rce.i_tex_bits= bits;
  127. rce.p_tex_bits= 0;
  128. rce.mv_bits= 0;
  129. }else{
  130. rce.i_count = 0; //FIXME we do know this approx
  131. rce.i_tex_bits= 0;
  132. rce.p_tex_bits= bits*0.9;
  133. rce.mv_bits= bits*0.1;
  134. }
  135. rcc->i_cplx_sum [rce.pict_type] += rce.i_tex_bits*rce.qscale;
  136. rcc->p_cplx_sum [rce.pict_type] += rce.p_tex_bits*rce.qscale;
  137. rcc->mv_bits_sum[rce.pict_type] += rce.mv_bits;
  138. rcc->frame_count[rce.pict_type] ++;
  139. bits= rce.i_tex_bits + rce.p_tex_bits;
  140. q= get_qscale(s, &rce, rcc->pass1_wanted_bits/rcc->pass1_rc_eq_output_sum, i);
  141. rcc->pass1_wanted_bits+= s->bit_rate/(s->avctx->frame_rate / (double)s->avctx->frame_rate_base);
  142. }
  143. }
  144. }
  145. return 0;
  146. }
  147. void ff_rate_control_uninit(MpegEncContext *s)
  148. {
  149. RateControlContext *rcc= &s->rc_context;
  150. emms_c();
  151. av_freep(&rcc->entry);
  152. }
  153. static inline double qp2bits(RateControlEntry *rce, double qp){
  154. if(qp<=0.0){
  155. fprintf(stderr, "qp<=0.0\n");
  156. }
  157. return rce->qscale * (double)(rce->i_tex_bits + rce->p_tex_bits+1)/ qp;
  158. }
  159. static inline double bits2qp(RateControlEntry *rce, double bits){
  160. if(bits<0.9){
  161. fprintf(stderr, "bits<0.9\n");
  162. }
  163. return rce->qscale * (double)(rce->i_tex_bits + rce->p_tex_bits+1)/ bits;
  164. }
  165. static void update_rc_buffer(MpegEncContext *s, int frame_size){
  166. RateControlContext *rcc= &s->rc_context;
  167. const double fps= (double)s->avctx->frame_rate / (double)s->avctx->frame_rate_base;
  168. const double buffer_size= s->avctx->rc_buffer_size;
  169. const double min_rate= s->avctx->rc_min_rate/fps;
  170. const double max_rate= s->avctx->rc_max_rate/fps;
  171. if(buffer_size){
  172. rcc->buffer_index-= frame_size;
  173. if(rcc->buffer_index < buffer_size/2 /*FIXME /2 */ || min_rate==0){
  174. rcc->buffer_index+= max_rate;
  175. if(rcc->buffer_index >= buffer_size)
  176. rcc->buffer_index= buffer_size-1;
  177. }else{
  178. rcc->buffer_index+= min_rate;
  179. }
  180. if(rcc->buffer_index < 0)
  181. fprintf(stderr, "rc buffer underflow\n");
  182. if(rcc->buffer_index >= s->avctx->rc_buffer_size)
  183. fprintf(stderr, "rc buffer overflow\n");
  184. }
  185. }
  186. /**
  187. * modifies the bitrate curve from pass1 for one frame
  188. */
  189. static double get_qscale(MpegEncContext *s, RateControlEntry *rce, double rate_factor, int frame_num){
  190. RateControlContext *rcc= &s->rc_context;
  191. double q, bits;
  192. const int pict_type= rce->new_pict_type;
  193. const double mb_num= s->mb_num;
  194. int i;
  195. double const_values[]={
  196. M_PI,
  197. M_E,
  198. rce->i_tex_bits*rce->qscale,
  199. rce->p_tex_bits*rce->qscale,
  200. (rce->i_tex_bits + rce->p_tex_bits)*(double)rce->qscale,
  201. rce->mv_bits/mb_num,
  202. rce->pict_type == B_TYPE ? (rce->f_code + rce->b_code)*0.5 : rce->f_code,
  203. rce->i_count/mb_num,
  204. rce->mc_mb_var_sum/mb_num,
  205. rce->mb_var_sum/mb_num,
  206. rce->pict_type == I_TYPE,
  207. rce->pict_type == P_TYPE,
  208. rce->pict_type == B_TYPE,
  209. rcc->qscale_sum[pict_type] / (double)rcc->frame_count[pict_type],
  210. s->qcompress,
  211. /* rcc->last_qscale_for[I_TYPE],
  212. rcc->last_qscale_for[P_TYPE],
  213. rcc->last_qscale_for[B_TYPE],
  214. rcc->next_non_b_qscale,*/
  215. rcc->i_cplx_sum[I_TYPE] / (double)rcc->frame_count[I_TYPE],
  216. rcc->i_cplx_sum[P_TYPE] / (double)rcc->frame_count[P_TYPE],
  217. rcc->p_cplx_sum[P_TYPE] / (double)rcc->frame_count[P_TYPE],
  218. rcc->p_cplx_sum[B_TYPE] / (double)rcc->frame_count[B_TYPE],
  219. (rcc->i_cplx_sum[pict_type] + rcc->p_cplx_sum[pict_type]) / (double)rcc->frame_count[pict_type],
  220. 0
  221. };
  222. static const char *const_names[]={
  223. "PI",
  224. "E",
  225. "iTex",
  226. "pTex",
  227. "tex",
  228. "mv",
  229. "fCode",
  230. "iCount",
  231. "mcVar",
  232. "var",
  233. "isI",
  234. "isP",
  235. "isB",
  236. "avgQP",
  237. "qComp",
  238. /* "lastIQP",
  239. "lastPQP",
  240. "lastBQP",
  241. "nextNonBQP",*/
  242. "avgIITex",
  243. "avgPITex",
  244. "avgPPTex",
  245. "avgBPTex",
  246. "avgTex",
  247. NULL
  248. };
  249. static double (*func1[])(void *, double)={
  250. (void *)bits2qp,
  251. (void *)qp2bits,
  252. NULL
  253. };
  254. static const char *func1_names[]={
  255. "bits2qp",
  256. "qp2bits",
  257. NULL
  258. };
  259. bits= ff_eval(s->avctx->rc_eq, const_values, const_names, func1, func1_names, NULL, NULL, rce);
  260. rcc->pass1_rc_eq_output_sum+= bits;
  261. bits*=rate_factor;
  262. if(bits<0.0) bits=0.0;
  263. bits+= 1.0; //avoid 1/0 issues
  264. /* user override */
  265. for(i=0; i<s->avctx->rc_override_count; i++){
  266. RcOverride *rco= s->avctx->rc_override;
  267. if(rco[i].start_frame > frame_num) continue;
  268. if(rco[i].end_frame < frame_num) continue;
  269. if(rco[i].qscale)
  270. bits= qp2bits(rce, rco[i].qscale); //FIXME move at end to really force it?
  271. else
  272. bits*= rco[i].quality_factor;
  273. }
  274. q= bits2qp(rce, bits);
  275. /* I/B difference */
  276. if (pict_type==I_TYPE && s->avctx->i_quant_factor<0.0)
  277. q= -q*s->avctx->i_quant_factor + s->avctx->i_quant_offset;
  278. else if(pict_type==B_TYPE && s->avctx->b_quant_factor<0.0)
  279. q= -q*s->avctx->b_quant_factor + s->avctx->b_quant_offset;
  280. return q;
  281. }
  282. static double get_diff_limited_q(MpegEncContext *s, RateControlEntry *rce, double q){
  283. RateControlContext *rcc= &s->rc_context;
  284. AVCodecContext *a= s->avctx;
  285. const int pict_type= rce->new_pict_type;
  286. const double last_p_q = rcc->last_qscale_for[P_TYPE];
  287. const double last_non_b_q= rcc->last_qscale_for[rcc->last_non_b_pict_type];
  288. if (pict_type==I_TYPE && (a->i_quant_factor>0.0 || rcc->last_non_b_pict_type==P_TYPE))
  289. q= last_p_q *ABS(a->i_quant_factor) + a->i_quant_offset;
  290. else if(pict_type==B_TYPE && a->b_quant_factor>0.0)
  291. q= last_non_b_q* a->b_quant_factor + a->b_quant_offset;
  292. /* last qscale / qdiff stuff */
  293. if(rcc->last_non_b_pict_type==pict_type || pict_type!=I_TYPE){
  294. double last_q= rcc->last_qscale_for[pict_type];
  295. if (q > last_q + a->max_qdiff) q= last_q + a->max_qdiff;
  296. else if(q < last_q - a->max_qdiff) q= last_q - a->max_qdiff;
  297. }
  298. rcc->last_qscale_for[pict_type]= q; //Note we cant do that after blurring
  299. if(pict_type!=B_TYPE)
  300. rcc->last_non_b_pict_type= pict_type;
  301. return q;
  302. }
  303. /**
  304. * gets the qmin & qmax for pict_type
  305. */
  306. static void get_qminmax(int *qmin_ret, int *qmax_ret, MpegEncContext *s, int pict_type){
  307. int qmin= s->avctx->qmin;
  308. int qmax= s->avctx->qmax;
  309. assert(qmin <= qmax);
  310. if(pict_type==B_TYPE){
  311. qmin= (int)(qmin*ABS(s->avctx->b_quant_factor)+s->avctx->b_quant_offset + 0.5);
  312. qmax= (int)(qmax*ABS(s->avctx->b_quant_factor)+s->avctx->b_quant_offset + 0.5);
  313. }else if(pict_type==I_TYPE){
  314. qmin= (int)(qmin*ABS(s->avctx->i_quant_factor)+s->avctx->i_quant_offset + 0.5);
  315. qmax= (int)(qmax*ABS(s->avctx->i_quant_factor)+s->avctx->i_quant_offset + 0.5);
  316. }
  317. qmin= clip(qmin, 1, 31);
  318. qmax= clip(qmax, 1, 31);
  319. if(qmin==1 && s->avctx->qmin>1) qmin=2; //avoid qmin=1 unless the user wants qmin=1
  320. if(qmin<3 && s->max_qcoeff<=128 && pict_type==I_TYPE) qmin=3; //reduce cliping problems
  321. if(qmax<qmin) qmax= qmin;
  322. *qmin_ret= qmin;
  323. *qmax_ret= qmax;
  324. }
  325. static double modify_qscale(MpegEncContext *s, RateControlEntry *rce, double q, int frame_num){
  326. RateControlContext *rcc= &s->rc_context;
  327. int qmin, qmax;
  328. double bits;
  329. const int pict_type= rce->new_pict_type;
  330. const double buffer_size= s->avctx->rc_buffer_size;
  331. const double min_rate= s->avctx->rc_min_rate;
  332. const double max_rate= s->avctx->rc_max_rate;
  333. get_qminmax(&qmin, &qmax, s, pict_type);
  334. /* modulation */
  335. if(s->avctx->rc_qmod_freq && frame_num%s->avctx->rc_qmod_freq==0 && pict_type==P_TYPE)
  336. q*= s->avctx->rc_qmod_amp;
  337. bits= qp2bits(rce, q);
  338. //printf("q:%f\n", q);
  339. /* buffer overflow/underflow protection */
  340. if(buffer_size){
  341. double expected_size= rcc->buffer_index;
  342. if(min_rate){
  343. double d= 2*(buffer_size - expected_size)/buffer_size;
  344. if(d>1.0) d=1.0;
  345. else if(d<0.0001) d=0.0001;
  346. q*= pow(d, 1.0/s->avctx->rc_buffer_aggressivity);
  347. q= FFMIN(q, bits2qp(rce, FFMAX((min_rate - buffer_size + rcc->buffer_index)*2, 1)));
  348. }
  349. if(max_rate){
  350. double d= 2*expected_size/buffer_size;
  351. if(d>1.0) d=1.0;
  352. else if(d<0.0001) d=0.0001;
  353. q/= pow(d, 1.0/s->avctx->rc_buffer_aggressivity);
  354. q= FFMAX(q, bits2qp(rce, FFMAX(rcc->buffer_index/2, 1)));
  355. }
  356. }
  357. //printf("q:%f max:%f min:%f size:%f index:%d bits:%f agr:%f\n", q,max_rate, min_rate, buffer_size, rcc->buffer_index, bits, s->avctx->rc_buffer_aggressivity);
  358. if(s->avctx->rc_qsquish==0.0 || qmin==qmax){
  359. if (q<qmin) q=qmin;
  360. else if(q>qmax) q=qmax;
  361. }else{
  362. double min2= log(qmin);
  363. double max2= log(qmax);
  364. q= log(q);
  365. q= (q - min2)/(max2-min2) - 0.5;
  366. q*= -4.0;
  367. q= 1.0/(1.0 + exp(q));
  368. q= q*(max2-min2) + min2;
  369. q= exp(q);
  370. }
  371. return q;
  372. }
  373. //----------------------------------
  374. // 1 Pass Code
  375. static double predict_size(Predictor *p, double q, double var)
  376. {
  377. return p->coeff*var / (q*p->count);
  378. }
  379. /*
  380. static double predict_qp(Predictor *p, double size, double var)
  381. {
  382. //printf("coeff:%f, count:%f, var:%f, size:%f//\n", p->coeff, p->count, var, size);
  383. return p->coeff*var / (size*p->count);
  384. }
  385. */
  386. static void update_predictor(Predictor *p, double q, double var, double size)
  387. {
  388. double new_coeff= size*q / (var + 1);
  389. if(var<10) return;
  390. p->count*= p->decay;
  391. p->coeff*= p->decay;
  392. p->count++;
  393. p->coeff+= new_coeff;
  394. }
  395. static void adaptive_quantization(MpegEncContext *s, double q){
  396. int i;
  397. const float lumi_masking= s->avctx->lumi_masking / (128.0*128.0);
  398. const float dark_masking= s->avctx->dark_masking / (128.0*128.0);
  399. const float temp_cplx_masking= s->avctx->temporal_cplx_masking;
  400. const float spatial_cplx_masking = s->avctx->spatial_cplx_masking;
  401. const float p_masking = s->avctx->p_masking;
  402. float bits_sum= 0.0;
  403. float cplx_sum= 0.0;
  404. float cplx_tab[s->mb_num];
  405. float bits_tab[s->mb_num];
  406. const int qmin= s->avctx->mb_qmin;
  407. const int qmax= s->avctx->mb_qmax;
  408. Picture * const pic= &s->current_picture;
  409. int last_qscale=0;
  410. for(i=0; i<s->mb_num; i++){
  411. const int mb_xy= s->mb_index2xy[i];
  412. float temp_cplx= sqrt(pic->mc_mb_var[mb_xy]);
  413. float spat_cplx= sqrt(pic->mb_var[mb_xy]);
  414. const int lumi= pic->mb_mean[mb_xy];
  415. float bits, cplx, factor;
  416. if(spat_cplx < q/3) spat_cplx= q/3; //FIXME finetune
  417. if(temp_cplx < q/3) temp_cplx= q/3; //FIXME finetune
  418. if((s->mb_type[mb_xy]&MB_TYPE_INTRA)){//FIXME hq mode
  419. cplx= spat_cplx;
  420. factor= 1.0 + p_masking;
  421. }else{
  422. cplx= temp_cplx;
  423. factor= pow(temp_cplx, - temp_cplx_masking);
  424. }
  425. factor*=pow(spat_cplx, - spatial_cplx_masking);
  426. if(lumi>127)
  427. factor*= (1.0 - (lumi-128)*(lumi-128)*lumi_masking);
  428. else
  429. factor*= (1.0 - (lumi-128)*(lumi-128)*dark_masking);
  430. if(factor<0.00001) factor= 0.00001;
  431. bits= cplx*factor;
  432. cplx_sum+= cplx;
  433. bits_sum+= bits;
  434. cplx_tab[i]= cplx;
  435. bits_tab[i]= bits;
  436. }
  437. /* handle qmin/qmax cliping */
  438. if(s->flags&CODEC_FLAG_NORMALIZE_AQP){
  439. for(i=0; i<s->mb_num; i++){
  440. float newq= q*cplx_tab[i]/bits_tab[i];
  441. newq*= bits_sum/cplx_sum;
  442. if (newq > qmax){
  443. bits_sum -= bits_tab[i];
  444. cplx_sum -= cplx_tab[i]*q/qmax;
  445. }
  446. else if(newq < qmin){
  447. bits_sum -= bits_tab[i];
  448. cplx_sum -= cplx_tab[i]*q/qmin;
  449. }
  450. }
  451. }
  452. for(i=0; i<s->mb_num; i++){
  453. const int mb_xy= s->mb_index2xy[i];
  454. float newq= q*cplx_tab[i]/bits_tab[i];
  455. int intq;
  456. if(s->flags&CODEC_FLAG_NORMALIZE_AQP){
  457. newq*= bits_sum/cplx_sum;
  458. }
  459. if(i && ABS(last_qscale - newq)<0.75)
  460. intq= last_qscale;
  461. else
  462. intq= (int)(newq + 0.5);
  463. if (intq > qmax) intq= qmax;
  464. else if(intq < qmin) intq= qmin;
  465. //if(i%s->mb_width==0) printf("\n");
  466. //printf("%2d%3d ", intq, ff_sqrt(s->mc_mb_var[i]));
  467. last_qscale=
  468. pic->qscale_table[mb_xy]= intq;
  469. }
  470. }
  471. float ff_rate_estimate_qscale(MpegEncContext *s)
  472. {
  473. float q;
  474. int qmin, qmax;
  475. float br_compensation;
  476. double diff;
  477. double short_term_q;
  478. double fps;
  479. int picture_number= s->picture_number;
  480. int64_t wanted_bits;
  481. RateControlContext *rcc= &s->rc_context;
  482. RateControlEntry local_rce, *rce;
  483. double bits;
  484. double rate_factor;
  485. int var;
  486. const int pict_type= s->pict_type;
  487. Picture * const pic= &s->current_picture;
  488. emms_c();
  489. get_qminmax(&qmin, &qmax, s, pict_type);
  490. fps= (double)s->avctx->frame_rate / (double)s->avctx->frame_rate_base;
  491. //printf("input_pic_num:%d pic_num:%d frame_rate:%d\n", s->input_picture_number, s->picture_number, s->frame_rate);
  492. /* update predictors */
  493. if(picture_number>2){
  494. const int last_var= s->last_pict_type == I_TYPE ? rcc->last_mb_var_sum : rcc->last_mc_mb_var_sum;
  495. update_predictor(&rcc->pred[s->last_pict_type], rcc->last_qscale, sqrt(last_var), s->frame_bits);
  496. }
  497. if(s->flags&CODEC_FLAG_PASS2){
  498. assert(picture_number>=0);
  499. assert(picture_number<rcc->num_entries);
  500. rce= &rcc->entry[picture_number];
  501. wanted_bits= rce->expected_bits;
  502. }else{
  503. rce= &local_rce;
  504. wanted_bits= (uint64_t)(s->bit_rate*(double)picture_number/fps);
  505. }
  506. diff= s->total_bits - wanted_bits;
  507. br_compensation= (s->bit_rate_tolerance - diff)/s->bit_rate_tolerance;
  508. if(br_compensation<=0.0) br_compensation=0.001;
  509. var= pict_type == I_TYPE ? pic->mb_var_sum : pic->mc_mb_var_sum;
  510. short_term_q = 0; /* avoid warning */
  511. if(s->flags&CODEC_FLAG_PASS2){
  512. if(pict_type!=I_TYPE)
  513. assert(pict_type == rce->new_pict_type);
  514. q= rce->new_qscale / br_compensation;
  515. //printf("%f %f %f last:%d var:%d type:%d//\n", q, rce->new_qscale, br_compensation, s->frame_bits, var, pict_type);
  516. }else{
  517. rce->pict_type=
  518. rce->new_pict_type= pict_type;
  519. rce->mc_mb_var_sum= pic->mc_mb_var_sum;
  520. rce->mb_var_sum = pic-> mb_var_sum;
  521. rce->qscale = 2;
  522. rce->f_code = s->f_code;
  523. rce->b_code = s->b_code;
  524. rce->misc_bits= 1;
  525. if(picture_number>0)
  526. update_rc_buffer(s, s->frame_bits);
  527. bits= predict_size(&rcc->pred[pict_type], rce->qscale, sqrt(var));
  528. if(pict_type== I_TYPE){
  529. rce->i_count = s->mb_num;
  530. rce->i_tex_bits= bits;
  531. rce->p_tex_bits= 0;
  532. rce->mv_bits= 0;
  533. }else{
  534. rce->i_count = 0; //FIXME we do know this approx
  535. rce->i_tex_bits= 0;
  536. rce->p_tex_bits= bits*0.9;
  537. rce->mv_bits= bits*0.1;
  538. }
  539. rcc->i_cplx_sum [pict_type] += rce->i_tex_bits*rce->qscale;
  540. rcc->p_cplx_sum [pict_type] += rce->p_tex_bits*rce->qscale;
  541. rcc->mv_bits_sum[pict_type] += rce->mv_bits;
  542. rcc->frame_count[pict_type] ++;
  543. bits= rce->i_tex_bits + rce->p_tex_bits;
  544. rate_factor= rcc->pass1_wanted_bits/rcc->pass1_rc_eq_output_sum * br_compensation;
  545. q= get_qscale(s, rce, rate_factor, picture_number);
  546. assert(q>0.0);
  547. //printf("%f ", q);
  548. q= get_diff_limited_q(s, rce, q);
  549. //printf("%f ", q);
  550. assert(q>0.0);
  551. if(pict_type==P_TYPE || s->intra_only){ //FIXME type dependant blur like in 2-pass
  552. rcc->short_term_qsum*=s->qblur;
  553. rcc->short_term_qcount*=s->qblur;
  554. rcc->short_term_qsum+= q;
  555. rcc->short_term_qcount++;
  556. //printf("%f ", q);
  557. q= short_term_q= rcc->short_term_qsum/rcc->short_term_qcount;
  558. //printf("%f ", q);
  559. }
  560. assert(q>0.0);
  561. q= modify_qscale(s, rce, q, picture_number);
  562. rcc->pass1_wanted_bits+= s->bit_rate/fps;
  563. assert(q>0.0);
  564. }
  565. if(s->avctx->debug&FF_DEBUG_RC){
  566. printf("%c qp:%d<%2.1f<%d %d want:%d total:%d comp:%f st_q:%2.2f size:%d var:%d/%d br:%d fps:%d\n",
  567. av_get_pict_type_char(pict_type), qmin, q, qmax, picture_number, (int)wanted_bits/1000, (int)s->total_bits/1000,
  568. br_compensation, short_term_q, s->frame_bits, pic->mb_var_sum, pic->mc_mb_var_sum, s->bit_rate/1000, (int)fps
  569. );
  570. }
  571. if (q<qmin) q=qmin;
  572. else if(q>qmax) q=qmax;
  573. if(s->adaptive_quant)
  574. adaptive_quantization(s, q);
  575. else
  576. q= (int)(q + 0.5);
  577. rcc->last_qscale= q;
  578. rcc->last_mc_mb_var_sum= pic->mc_mb_var_sum;
  579. rcc->last_mb_var_sum= pic->mb_var_sum;
  580. #if 0
  581. {
  582. static int mvsum=0, texsum=0;
  583. mvsum += s->mv_bits;
  584. texsum += s->i_tex_bits + s->p_tex_bits;
  585. printf("%d %d//\n\n", mvsum, texsum);
  586. }
  587. #endif
  588. return q;
  589. }
  590. //----------------------------------------------
  591. // 2-Pass code
  592. static int init_pass2(MpegEncContext *s)
  593. {
  594. RateControlContext *rcc= &s->rc_context;
  595. int i;
  596. double fps= (double)s->avctx->frame_rate / (double)s->avctx->frame_rate_base;
  597. double complexity[5]={0,0,0,0,0}; // aproximate bits at quant=1
  598. double avg_quantizer[5];
  599. uint64_t const_bits[5]={0,0,0,0,0}; // quantizer idependant bits
  600. uint64_t available_bits[5];
  601. uint64_t all_const_bits;
  602. uint64_t all_available_bits= (uint64_t)(s->bit_rate*(double)rcc->num_entries/fps);
  603. double rate_factor=0;
  604. double step;
  605. //int last_i_frame=-10000000;
  606. const int filter_size= (int)(s->qblur*4) | 1;
  607. double expected_bits;
  608. double *qscale, *blured_qscale;
  609. /* find complexity & const_bits & decide the pict_types */
  610. for(i=0; i<rcc->num_entries; i++){
  611. RateControlEntry *rce= &rcc->entry[i];
  612. rce->new_pict_type= rce->pict_type;
  613. rcc->i_cplx_sum [rce->pict_type] += rce->i_tex_bits*rce->qscale;
  614. rcc->p_cplx_sum [rce->pict_type] += rce->p_tex_bits*rce->qscale;
  615. rcc->mv_bits_sum[rce->pict_type] += rce->mv_bits;
  616. rcc->frame_count[rce->pict_type] ++;
  617. complexity[rce->new_pict_type]+= (rce->i_tex_bits+ rce->p_tex_bits)*(double)rce->qscale;
  618. const_bits[rce->new_pict_type]+= rce->mv_bits + rce->misc_bits;
  619. }
  620. all_const_bits= const_bits[I_TYPE] + const_bits[P_TYPE] + const_bits[B_TYPE];
  621. if(all_available_bits < all_const_bits){
  622. fprintf(stderr, "requested bitrate is to low\n");
  623. return -1;
  624. }
  625. /* find average quantizers */
  626. avg_quantizer[P_TYPE]=0;
  627. for(step=256*256; step>0.0000001; step*=0.5){
  628. double expected_bits=0;
  629. avg_quantizer[P_TYPE]+= step;
  630. avg_quantizer[I_TYPE]= avg_quantizer[P_TYPE]*ABS(s->avctx->i_quant_factor) + s->avctx->i_quant_offset;
  631. avg_quantizer[B_TYPE]= avg_quantizer[P_TYPE]*ABS(s->avctx->b_quant_factor) + s->avctx->b_quant_offset;
  632. expected_bits=
  633. + all_const_bits
  634. + complexity[I_TYPE]/avg_quantizer[I_TYPE]
  635. + complexity[P_TYPE]/avg_quantizer[P_TYPE]
  636. + complexity[B_TYPE]/avg_quantizer[B_TYPE];
  637. if(expected_bits < all_available_bits) avg_quantizer[P_TYPE]-= step;
  638. //printf("%f %lld %f\n", expected_bits, all_available_bits, avg_quantizer[P_TYPE]);
  639. }
  640. //printf("qp_i:%f, qp_p:%f, qp_b:%f\n", avg_quantizer[I_TYPE],avg_quantizer[P_TYPE],avg_quantizer[B_TYPE]);
  641. for(i=0; i<5; i++){
  642. available_bits[i]= const_bits[i] + complexity[i]/avg_quantizer[i];
  643. }
  644. //printf("%lld %lld %lld %lld\n", available_bits[I_TYPE], available_bits[P_TYPE], available_bits[B_TYPE], all_available_bits);
  645. qscale= av_malloc(sizeof(double)*rcc->num_entries);
  646. blured_qscale= av_malloc(sizeof(double)*rcc->num_entries);
  647. for(step=256*256; step>0.0000001; step*=0.5){
  648. expected_bits=0;
  649. rate_factor+= step;
  650. rcc->buffer_index= s->avctx->rc_buffer_size/2;
  651. /* find qscale */
  652. for(i=0; i<rcc->num_entries; i++){
  653. qscale[i]= get_qscale(s, &rcc->entry[i], rate_factor, i);
  654. }
  655. assert(filter_size%2==1);
  656. /* fixed I/B QP relative to P mode */
  657. for(i=rcc->num_entries-1; i>=0; i--){
  658. RateControlEntry *rce= &rcc->entry[i];
  659. qscale[i]= get_diff_limited_q(s, rce, qscale[i]);
  660. }
  661. /* smooth curve */
  662. for(i=0; i<rcc->num_entries; i++){
  663. RateControlEntry *rce= &rcc->entry[i];
  664. const int pict_type= rce->new_pict_type;
  665. int j;
  666. double q=0.0, sum=0.0;
  667. for(j=0; j<filter_size; j++){
  668. int index= i+j-filter_size/2;
  669. double d= index-i;
  670. double coeff= s->qblur==0 ? 1.0 : exp(-d*d/(s->qblur * s->qblur));
  671. if(index < 0 || index >= rcc->num_entries) continue;
  672. if(pict_type != rcc->entry[index].new_pict_type) continue;
  673. q+= qscale[index] * coeff;
  674. sum+= coeff;
  675. }
  676. blured_qscale[i]= q/sum;
  677. }
  678. /* find expected bits */
  679. for(i=0; i<rcc->num_entries; i++){
  680. RateControlEntry *rce= &rcc->entry[i];
  681. double bits;
  682. rce->new_qscale= modify_qscale(s, rce, blured_qscale[i], i);
  683. bits= qp2bits(rce, rce->new_qscale) + rce->mv_bits + rce->misc_bits;
  684. //printf("%d %f\n", rce->new_bits, blured_qscale[i]);
  685. update_rc_buffer(s, bits);
  686. rce->expected_bits= expected_bits;
  687. expected_bits += bits;
  688. }
  689. // printf("%f %d %f\n", expected_bits, (int)all_available_bits, rate_factor);
  690. if(expected_bits > all_available_bits) rate_factor-= step;
  691. }
  692. av_free(qscale);
  693. av_free(blured_qscale);
  694. if(abs(expected_bits/all_available_bits - 1.0) > 0.01 ){
  695. fprintf(stderr, "Error: 2pass curve failed to converge\n");
  696. return -1;
  697. }
  698. return 0;
  699. }