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  1. /*
  2. * Motion estimation
  3. * Copyright (c) 2000,2001 Fabrice Bellard.
  4. * Copyright (c) 2002-2003 Michael Niedermayer
  5. *
  6. *
  7. * This library is free software; you can redistribute it and/or
  8. * modify it under the terms of the GNU Lesser General Public
  9. * License as published by the Free Software Foundation; either
  10. * version 2 of the License, or (at your option) any later version.
  11. *
  12. * This library is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  15. * Lesser General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU Lesser General Public
  18. * License along with this library; if not, write to the Free Software
  19. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  20. *
  21. * new Motion Estimation (X1/EPZS) by Michael Niedermayer <michaelni@gmx.at>
  22. */
  23. /**
  24. * @file motion_est.c
  25. * Motion estimation.
  26. */
  27. #include <stdlib.h>
  28. #include <stdio.h>
  29. #include <limits.h>
  30. #include "avcodec.h"
  31. #include "dsputil.h"
  32. #include "mpegvideo.h"
  33. //#undef NDEBUG
  34. //#include <assert.h>
  35. #define SQ(a) ((a)*(a))
  36. #define P_LEFT P[1]
  37. #define P_TOP P[2]
  38. #define P_TOPRIGHT P[3]
  39. #define P_MEDIAN P[4]
  40. #define P_MV1 P[9]
  41. static inline int sad_hpel_motion_search(MpegEncContext * s,
  42. int *mx_ptr, int *my_ptr, int dmin,
  43. int xmin, int ymin, int xmax, int ymax,
  44. int pred_x, int pred_y, Picture *picture,
  45. int n, int size, uint8_t * const mv_penalty);
  46. static inline int update_map_generation(MpegEncContext * s)
  47. {
  48. s->me.map_generation+= 1<<(ME_MAP_MV_BITS*2);
  49. if(s->me.map_generation==0){
  50. s->me.map_generation= 1<<(ME_MAP_MV_BITS*2);
  51. memset(s->me.map, 0, sizeof(uint32_t)*ME_MAP_SIZE);
  52. }
  53. return s->me.map_generation;
  54. }
  55. /* shape adaptive search stuff */
  56. typedef struct Minima{
  57. int height;
  58. int x, y;
  59. int checked;
  60. }Minima;
  61. static int minima_cmp(const void *a, const void *b){
  62. const Minima *da = (const Minima *) a;
  63. const Minima *db = (const Minima *) b;
  64. return da->height - db->height;
  65. }
  66. /* SIMPLE */
  67. #define RENAME(a) simple_ ## a
  68. #define CMP(d, x, y, size)\
  69. d = cmp(s, src_y, (ref_y) + (x) + (y)*(stride), stride);
  70. #define CMP_HPEL(d, dx, dy, x, y, size)\
  71. {\
  72. const int dxy= (dx) + 2*(dy);\
  73. hpel_put[0][dxy](s->me.scratchpad, (ref_y) + (x) + (y)*(stride), stride, (16>>size));\
  74. d = cmp_sub(s, s->me.scratchpad, src_y, stride);\
  75. }
  76. #define CMP_QPEL(d, dx, dy, x, y, size)\
  77. {\
  78. const int dxy= (dx) + 4*(dy);\
  79. qpel_put[0][dxy](s->me.scratchpad, (ref_y) + (x) + (y)*(stride), stride);\
  80. d = cmp_sub(s, s->me.scratchpad, src_y, stride);\
  81. }
  82. #include "motion_est_template.c"
  83. #undef RENAME
  84. #undef CMP
  85. #undef CMP_HPEL
  86. #undef CMP_QPEL
  87. #undef INIT
  88. /* SIMPLE CHROMA */
  89. #define RENAME(a) simple_chroma_ ## a
  90. #define CMP(d, x, y, size)\
  91. d = cmp(s, src_y, (ref_y) + (x) + (y)*(stride), stride);\
  92. if(chroma_cmp){\
  93. int dxy= ((x)&1) + 2*((y)&1);\
  94. int c= ((x)>>1) + ((y)>>1)*uvstride;\
  95. \
  96. chroma_hpel_put[0][dxy](s->me.scratchpad, ref_u + c, uvstride, 8);\
  97. d += chroma_cmp(s, s->me.scratchpad, src_u, uvstride);\
  98. chroma_hpel_put[0][dxy](s->me.scratchpad, ref_v + c, uvstride, 8);\
  99. d += chroma_cmp(s, s->me.scratchpad, src_v, uvstride);\
  100. }
  101. #define CMP_HPEL(d, dx, dy, x, y, size)\
  102. {\
  103. const int dxy= (dx) + 2*(dy);\
  104. hpel_put[0][dxy](s->me.scratchpad, (ref_y) + (x) + (y)*(stride), stride, (16>>size));\
  105. d = cmp_sub(s, s->me.scratchpad, src_y, stride);\
  106. if(chroma_cmp_sub){\
  107. int cxy= (dxy) | ((x)&1) | (2*((y)&1));\
  108. int c= ((x)>>1) + ((y)>>1)*uvstride;\
  109. chroma_hpel_put[0][cxy](s->me.scratchpad, ref_u + c, uvstride, 8);\
  110. d += chroma_cmp_sub(s, s->me.scratchpad, src_u, uvstride);\
  111. chroma_hpel_put[0][cxy](s->me.scratchpad, ref_v + c, uvstride, 8);\
  112. d += chroma_cmp_sub(s, s->me.scratchpad, src_v, uvstride);\
  113. }\
  114. }
  115. #define CMP_QPEL(d, dx, dy, x, y, size)\
  116. {\
  117. const int dxy= (dx) + 4*(dy);\
  118. qpel_put[0][dxy](s->me.scratchpad, (ref_y) + (x) + (y)*(stride), stride);\
  119. d = cmp_sub(s, s->me.scratchpad, src_y, stride);\
  120. if(chroma_cmp_sub){\
  121. int cxy, c;\
  122. int cx= (4*(x) + (dx))/2;\
  123. int cy= (4*(y) + (dy))/2;\
  124. cx= (cx>>1)|(cx&1);\
  125. cy= (cy>>1)|(cy&1);\
  126. cxy= (cx&1) + 2*(cy&1);\
  127. c= ((cx)>>1) + ((cy)>>1)*uvstride;\
  128. chroma_hpel_put[0][cxy](s->me.scratchpad, ref_u + c, uvstride, 8);\
  129. d += chroma_cmp_sub(s, s->me.scratchpad, src_u, uvstride);\
  130. chroma_hpel_put[0][cxy](s->me.scratchpad, ref_v + c, uvstride, 8);\
  131. d += chroma_cmp_sub(s, s->me.scratchpad, src_v, uvstride);\
  132. }\
  133. }
  134. #include "motion_est_template.c"
  135. #undef RENAME
  136. #undef CMP
  137. #undef CMP_HPEL
  138. #undef CMP_QPEL
  139. #undef INIT
  140. /* SIMPLE DIRECT HPEL */
  141. #define RENAME(a) simple_direct_hpel_ ## a
  142. //FIXME precalc divisions stuff
  143. #define CMP_DIRECT(d, dx, dy, x, y, size, cmp_func)\
  144. if((x) >= xmin && 2*(x) + (dx) <= 2*xmax && (y) >= ymin && 2*(y) + (dy) <= 2*ymax){\
  145. const int hx= 2*(x) + (dx);\
  146. const int hy= 2*(y) + (dy);\
  147. if(s->mv_type==MV_TYPE_8X8){\
  148. int i;\
  149. for(i=0; i<4; i++){\
  150. int fx = s->me.direct_basis_mv[i][0] + hx;\
  151. int fy = s->me.direct_basis_mv[i][1] + hy;\
  152. int bx = hx ? fx - s->me.co_located_mv[i][0] : s->me.co_located_mv[i][0]*(time_pb - time_pp)/time_pp + (i &1)*16;\
  153. int by = hy ? fy - s->me.co_located_mv[i][1] : s->me.co_located_mv[i][1]*(time_pb - time_pp)/time_pp + (i>>1)*16;\
  154. int fxy= (fx&1) + 2*(fy&1);\
  155. int bxy= (bx&1) + 2*(by&1);\
  156. \
  157. uint8_t *dst= s->me.scratchpad + 8*(i&1) + 8*stride*(i>>1);\
  158. hpel_put[1][fxy](dst, (ref_y ) + (fx>>1) + (fy>>1)*(stride), stride, 8);\
  159. hpel_avg[1][bxy](dst, (ref2_y) + (bx>>1) + (by>>1)*(stride), stride, 8);\
  160. }\
  161. }else{\
  162. int fx = s->me.direct_basis_mv[0][0] + hx;\
  163. int fy = s->me.direct_basis_mv[0][1] + hy;\
  164. int bx = hx ? fx - s->me.co_located_mv[0][0] : (s->me.co_located_mv[0][0]*(time_pb - time_pp)/time_pp);\
  165. int by = hy ? fy - s->me.co_located_mv[0][1] : (s->me.co_located_mv[0][1]*(time_pb - time_pp)/time_pp);\
  166. int fxy= (fx&1) + 2*(fy&1);\
  167. int bxy= (bx&1) + 2*(by&1);\
  168. \
  169. assert((fx>>1) + 16*s->mb_x >= -16);\
  170. assert((fy>>1) + 16*s->mb_y >= -16);\
  171. assert((fx>>1) + 16*s->mb_x <= s->width);\
  172. assert((fy>>1) + 16*s->mb_y <= s->height);\
  173. assert((bx>>1) + 16*s->mb_x >= -16);\
  174. assert((by>>1) + 16*s->mb_y >= -16);\
  175. assert((bx>>1) + 16*s->mb_x <= s->width);\
  176. assert((by>>1) + 16*s->mb_y <= s->height);\
  177. \
  178. hpel_put[0][fxy](s->me.scratchpad, (ref_y ) + (fx>>1) + (fy>>1)*(stride), stride, 16);\
  179. hpel_avg[0][bxy](s->me.scratchpad, (ref2_y) + (bx>>1) + (by>>1)*(stride), stride, 16);\
  180. }\
  181. d = cmp_func(s, s->me.scratchpad, src_y, stride);\
  182. }else\
  183. d= 256*256*256*32;
  184. #define CMP_HPEL(d, dx, dy, x, y, size)\
  185. CMP_DIRECT(d, dx, dy, x, y, size, cmp_sub)
  186. #define CMP(d, x, y, size)\
  187. CMP_DIRECT(d, 0, 0, x, y, size, cmp)
  188. #include "motion_est_template.c"
  189. #undef RENAME
  190. #undef CMP
  191. #undef CMP_HPEL
  192. #undef CMP_QPEL
  193. #undef INIT
  194. #undef CMP_DIRECT
  195. /* SIMPLE DIRECT QPEL */
  196. #define RENAME(a) simple_direct_qpel_ ## a
  197. #define CMP_DIRECT(d, dx, dy, x, y, size, cmp_func)\
  198. if((x) >= xmin && 4*(x) + (dx) <= 4*xmax && (y) >= ymin && 4*(y) + (dy) <= 4*ymax){\
  199. const int qx= 4*(x) + (dx);\
  200. const int qy= 4*(y) + (dy);\
  201. if(s->mv_type==MV_TYPE_8X8){\
  202. int i;\
  203. for(i=0; i<4; i++){\
  204. int fx = s->me.direct_basis_mv[i][0] + qx;\
  205. int fy = s->me.direct_basis_mv[i][1] + qy;\
  206. int bx = qx ? fx - s->me.co_located_mv[i][0] : s->me.co_located_mv[i][0]*(time_pb - time_pp)/time_pp + (i &1)*16;\
  207. int by = qy ? fy - s->me.co_located_mv[i][1] : s->me.co_located_mv[i][1]*(time_pb - time_pp)/time_pp + (i>>1)*16;\
  208. int fxy= (fx&3) + 4*(fy&3);\
  209. int bxy= (bx&3) + 4*(by&3);\
  210. \
  211. uint8_t *dst= s->me.scratchpad + 8*(i&1) + 8*stride*(i>>1);\
  212. qpel_put[1][fxy](dst, (ref_y ) + (fx>>2) + (fy>>2)*(stride), stride);\
  213. qpel_avg[1][bxy](dst, (ref2_y) + (bx>>2) + (by>>2)*(stride), stride);\
  214. }\
  215. }else{\
  216. int fx = s->me.direct_basis_mv[0][0] + qx;\
  217. int fy = s->me.direct_basis_mv[0][1] + qy;\
  218. int bx = qx ? fx - s->me.co_located_mv[0][0] : s->me.co_located_mv[0][0]*(time_pb - time_pp)/time_pp;\
  219. int by = qy ? fy - s->me.co_located_mv[0][1] : s->me.co_located_mv[0][1]*(time_pb - time_pp)/time_pp;\
  220. int fxy= (fx&3) + 4*(fy&3);\
  221. int bxy= (bx&3) + 4*(by&3);\
  222. \
  223. qpel_put[1][fxy](s->me.scratchpad , (ref_y ) + (fx>>2) + (fy>>2)*(stride) , stride);\
  224. qpel_put[1][fxy](s->me.scratchpad + 8 , (ref_y ) + (fx>>2) + (fy>>2)*(stride) + 8 , stride);\
  225. qpel_put[1][fxy](s->me.scratchpad + 8*stride, (ref_y ) + (fx>>2) + (fy>>2)*(stride) + 8*stride, stride);\
  226. qpel_put[1][fxy](s->me.scratchpad + 8 + 8*stride, (ref_y ) + (fx>>2) + (fy>>2)*(stride) + 8 + 8*stride, stride);\
  227. qpel_avg[1][bxy](s->me.scratchpad , (ref2_y) + (bx>>2) + (by>>2)*(stride) , stride);\
  228. qpel_avg[1][bxy](s->me.scratchpad + 8 , (ref2_y) + (bx>>2) + (by>>2)*(stride) + 8 , stride);\
  229. qpel_avg[1][bxy](s->me.scratchpad + 8*stride, (ref2_y) + (bx>>2) + (by>>2)*(stride) + 8*stride, stride);\
  230. qpel_avg[1][bxy](s->me.scratchpad + 8 + 8*stride, (ref2_y) + (bx>>2) + (by>>2)*(stride) + 8 + 8*stride, stride);\
  231. }\
  232. d = cmp_func(s, s->me.scratchpad, src_y, stride);\
  233. }else\
  234. d= 256*256*256*32;
  235. #define CMP_QPEL(d, dx, dy, x, y, size)\
  236. CMP_DIRECT(d, dx, dy, x, y, size, cmp_sub)
  237. #define CMP(d, x, y, size)\
  238. CMP_DIRECT(d, 0, 0, x, y, size, cmp)
  239. #include "motion_est_template.c"
  240. #undef RENAME
  241. #undef CMP
  242. #undef CMP_HPEL
  243. #undef CMP_QPEL
  244. #undef INIT
  245. #undef CMP__DIRECT
  246. static int zero_cmp(void *s, uint8_t *a, uint8_t *b, int stride){
  247. return 0;
  248. }
  249. static void set_cmp(MpegEncContext *s, me_cmp_func *cmp, int type){
  250. DSPContext* c= &s->dsp;
  251. int i;
  252. memset(cmp, 0, sizeof(void*)*11);
  253. switch(type&0xFF){
  254. case FF_CMP_SAD:
  255. cmp[0]= c->sad[0];
  256. cmp[1]= c->sad[1];
  257. break;
  258. case FF_CMP_SATD:
  259. cmp[0]= c->hadamard8_diff[0];
  260. cmp[1]= c->hadamard8_diff[1];
  261. break;
  262. case FF_CMP_SSE:
  263. cmp[0]= c->sse[0];
  264. cmp[1]= c->sse[1];
  265. break;
  266. case FF_CMP_DCT:
  267. cmp[0]= c->dct_sad[0];
  268. cmp[1]= c->dct_sad[1];
  269. break;
  270. case FF_CMP_PSNR:
  271. cmp[0]= c->quant_psnr[0];
  272. cmp[1]= c->quant_psnr[1];
  273. break;
  274. case FF_CMP_BIT:
  275. cmp[0]= c->bit[0];
  276. cmp[1]= c->bit[1];
  277. break;
  278. case FF_CMP_RD:
  279. cmp[0]= c->rd[0];
  280. cmp[1]= c->rd[1];
  281. break;
  282. case FF_CMP_ZERO:
  283. for(i=0; i<7; i++){
  284. cmp[i]= zero_cmp;
  285. }
  286. break;
  287. default:
  288. av_log(s->avctx, AV_LOG_ERROR,"internal error in cmp function selection\n");
  289. }
  290. }
  291. static inline int get_penalty_factor(MpegEncContext *s, int type){
  292. switch(type&0xFF){
  293. default:
  294. case FF_CMP_SAD:
  295. return s->qscale*2;
  296. case FF_CMP_DCT:
  297. return s->qscale*3;
  298. case FF_CMP_SATD:
  299. return s->qscale*6;
  300. case FF_CMP_SSE:
  301. return s->qscale*s->qscale*2;
  302. case FF_CMP_BIT:
  303. return 1;
  304. case FF_CMP_RD:
  305. case FF_CMP_PSNR:
  306. return (s->qscale*s->qscale*185 + 64)>>7;
  307. }
  308. }
  309. void ff_init_me(MpegEncContext *s){
  310. set_cmp(s, s->dsp.me_pre_cmp, s->avctx->me_pre_cmp);
  311. set_cmp(s, s->dsp.me_cmp, s->avctx->me_cmp);
  312. set_cmp(s, s->dsp.me_sub_cmp, s->avctx->me_sub_cmp);
  313. set_cmp(s, s->dsp.mb_cmp, s->avctx->mb_cmp);
  314. if(s->flags&CODEC_FLAG_QPEL){
  315. if(s->avctx->me_sub_cmp&FF_CMP_CHROMA)
  316. s->me.sub_motion_search= simple_chroma_qpel_motion_search;
  317. else
  318. s->me.sub_motion_search= simple_qpel_motion_search;
  319. }else{
  320. if(s->avctx->me_sub_cmp&FF_CMP_CHROMA)
  321. s->me.sub_motion_search= simple_chroma_hpel_motion_search;
  322. else if( s->avctx->me_sub_cmp == FF_CMP_SAD
  323. && s->avctx-> me_cmp == FF_CMP_SAD
  324. && s->avctx-> mb_cmp == FF_CMP_SAD)
  325. s->me.sub_motion_search= sad_hpel_motion_search;
  326. else
  327. s->me.sub_motion_search= simple_hpel_motion_search;
  328. }
  329. if(s->avctx->me_cmp&FF_CMP_CHROMA){
  330. s->me.motion_search[0]= simple_chroma_epzs_motion_search;
  331. s->me.motion_search[1]= simple_chroma_epzs_motion_search4;
  332. }else{
  333. s->me.motion_search[0]= simple_epzs_motion_search;
  334. s->me.motion_search[1]= simple_epzs_motion_search4;
  335. }
  336. if(s->avctx->me_pre_cmp&FF_CMP_CHROMA){
  337. s->me.pre_motion_search= simple_chroma_epzs_motion_search;
  338. }else{
  339. s->me.pre_motion_search= simple_epzs_motion_search;
  340. }
  341. if(s->flags&CODEC_FLAG_QPEL){
  342. if(s->avctx->mb_cmp&FF_CMP_CHROMA)
  343. s->me.get_mb_score= simple_chroma_qpel_get_mb_score;
  344. else
  345. s->me.get_mb_score= simple_qpel_get_mb_score;
  346. }else{
  347. if(s->avctx->mb_cmp&FF_CMP_CHROMA)
  348. s->me.get_mb_score= simple_chroma_hpel_get_mb_score;
  349. else
  350. s->me.get_mb_score= simple_hpel_get_mb_score;
  351. }
  352. }
  353. #if 0
  354. static int pix_dev(uint8_t * pix, int line_size, int mean)
  355. {
  356. int s, i, j;
  357. s = 0;
  358. for (i = 0; i < 16; i++) {
  359. for (j = 0; j < 16; j += 8) {
  360. s += ABS(pix[0]-mean);
  361. s += ABS(pix[1]-mean);
  362. s += ABS(pix[2]-mean);
  363. s += ABS(pix[3]-mean);
  364. s += ABS(pix[4]-mean);
  365. s += ABS(pix[5]-mean);
  366. s += ABS(pix[6]-mean);
  367. s += ABS(pix[7]-mean);
  368. pix += 8;
  369. }
  370. pix += line_size - 16;
  371. }
  372. return s;
  373. }
  374. #endif
  375. static inline void no_motion_search(MpegEncContext * s,
  376. int *mx_ptr, int *my_ptr)
  377. {
  378. *mx_ptr = 16 * s->mb_x;
  379. *my_ptr = 16 * s->mb_y;
  380. }
  381. static int full_motion_search(MpegEncContext * s,
  382. int *mx_ptr, int *my_ptr, int range,
  383. int xmin, int ymin, int xmax, int ymax, uint8_t *ref_picture)
  384. {
  385. int x1, y1, x2, y2, xx, yy, x, y;
  386. int mx, my, dmin, d;
  387. uint8_t *pix;
  388. xx = 16 * s->mb_x;
  389. yy = 16 * s->mb_y;
  390. x1 = xx - range + 1; /* we loose one pixel to avoid boundary pb with half pixel pred */
  391. if (x1 < xmin)
  392. x1 = xmin;
  393. x2 = xx + range - 1;
  394. if (x2 > xmax)
  395. x2 = xmax;
  396. y1 = yy - range + 1;
  397. if (y1 < ymin)
  398. y1 = ymin;
  399. y2 = yy + range - 1;
  400. if (y2 > ymax)
  401. y2 = ymax;
  402. pix = s->new_picture.data[0] + (yy * s->linesize) + xx;
  403. dmin = 0x7fffffff;
  404. mx = 0;
  405. my = 0;
  406. for (y = y1; y <= y2; y++) {
  407. for (x = x1; x <= x2; x++) {
  408. d = s->dsp.pix_abs16x16(pix, ref_picture + (y * s->linesize) + x,
  409. s->linesize);
  410. if (d < dmin ||
  411. (d == dmin &&
  412. (abs(x - xx) + abs(y - yy)) <
  413. (abs(mx - xx) + abs(my - yy)))) {
  414. dmin = d;
  415. mx = x;
  416. my = y;
  417. }
  418. }
  419. }
  420. *mx_ptr = mx;
  421. *my_ptr = my;
  422. #if 0
  423. if (*mx_ptr < -(2 * range) || *mx_ptr >= (2 * range) ||
  424. *my_ptr < -(2 * range) || *my_ptr >= (2 * range)) {
  425. fprintf(stderr, "error %d %d\n", *mx_ptr, *my_ptr);
  426. }
  427. #endif
  428. return dmin;
  429. }
  430. static int log_motion_search(MpegEncContext * s,
  431. int *mx_ptr, int *my_ptr, int range,
  432. int xmin, int ymin, int xmax, int ymax, uint8_t *ref_picture)
  433. {
  434. int x1, y1, x2, y2, xx, yy, x, y;
  435. int mx, my, dmin, d;
  436. uint8_t *pix;
  437. xx = s->mb_x << 4;
  438. yy = s->mb_y << 4;
  439. /* Left limit */
  440. x1 = xx - range;
  441. if (x1 < xmin)
  442. x1 = xmin;
  443. /* Right limit */
  444. x2 = xx + range;
  445. if (x2 > xmax)
  446. x2 = xmax;
  447. /* Upper limit */
  448. y1 = yy - range;
  449. if (y1 < ymin)
  450. y1 = ymin;
  451. /* Lower limit */
  452. y2 = yy + range;
  453. if (y2 > ymax)
  454. y2 = ymax;
  455. pix = s->new_picture.data[0] + (yy * s->linesize) + xx;
  456. dmin = 0x7fffffff;
  457. mx = 0;
  458. my = 0;
  459. do {
  460. for (y = y1; y <= y2; y += range) {
  461. for (x = x1; x <= x2; x += range) {
  462. d = s->dsp.pix_abs16x16(pix, ref_picture + (y * s->linesize) + x, s->linesize);
  463. if (d < dmin || (d == dmin && (abs(x - xx) + abs(y - yy)) < (abs(mx - xx) + abs(my - yy)))) {
  464. dmin = d;
  465. mx = x;
  466. my = y;
  467. }
  468. }
  469. }
  470. range = range >> 1;
  471. x1 = mx - range;
  472. if (x1 < xmin)
  473. x1 = xmin;
  474. x2 = mx + range;
  475. if (x2 > xmax)
  476. x2 = xmax;
  477. y1 = my - range;
  478. if (y1 < ymin)
  479. y1 = ymin;
  480. y2 = my + range;
  481. if (y2 > ymax)
  482. y2 = ymax;
  483. } while (range >= 1);
  484. #ifdef DEBUG
  485. fprintf(stderr, "log - MX: %d\tMY: %d\n", mx, my);
  486. #endif
  487. *mx_ptr = mx;
  488. *my_ptr = my;
  489. return dmin;
  490. }
  491. static int phods_motion_search(MpegEncContext * s,
  492. int *mx_ptr, int *my_ptr, int range,
  493. int xmin, int ymin, int xmax, int ymax, uint8_t *ref_picture)
  494. {
  495. int x1, y1, x2, y2, xx, yy, x, y, lastx, d;
  496. int mx, my, dminx, dminy;
  497. uint8_t *pix;
  498. xx = s->mb_x << 4;
  499. yy = s->mb_y << 4;
  500. /* Left limit */
  501. x1 = xx - range;
  502. if (x1 < xmin)
  503. x1 = xmin;
  504. /* Right limit */
  505. x2 = xx + range;
  506. if (x2 > xmax)
  507. x2 = xmax;
  508. /* Upper limit */
  509. y1 = yy - range;
  510. if (y1 < ymin)
  511. y1 = ymin;
  512. /* Lower limit */
  513. y2 = yy + range;
  514. if (y2 > ymax)
  515. y2 = ymax;
  516. pix = s->new_picture.data[0] + (yy * s->linesize) + xx;
  517. mx = 0;
  518. my = 0;
  519. x = xx;
  520. y = yy;
  521. do {
  522. dminx = 0x7fffffff;
  523. dminy = 0x7fffffff;
  524. lastx = x;
  525. for (x = x1; x <= x2; x += range) {
  526. d = s->dsp.pix_abs16x16(pix, ref_picture + (y * s->linesize) + x, s->linesize);
  527. if (d < dminx || (d == dminx && (abs(x - xx) + abs(y - yy)) < (abs(mx - xx) + abs(my - yy)))) {
  528. dminx = d;
  529. mx = x;
  530. }
  531. }
  532. x = lastx;
  533. for (y = y1; y <= y2; y += range) {
  534. d = s->dsp.pix_abs16x16(pix, ref_picture + (y * s->linesize) + x, s->linesize);
  535. if (d < dminy || (d == dminy && (abs(x - xx) + abs(y - yy)) < (abs(mx - xx) + abs(my - yy)))) {
  536. dminy = d;
  537. my = y;
  538. }
  539. }
  540. range = range >> 1;
  541. x = mx;
  542. y = my;
  543. x1 = mx - range;
  544. if (x1 < xmin)
  545. x1 = xmin;
  546. x2 = mx + range;
  547. if (x2 > xmax)
  548. x2 = xmax;
  549. y1 = my - range;
  550. if (y1 < ymin)
  551. y1 = ymin;
  552. y2 = my + range;
  553. if (y2 > ymax)
  554. y2 = ymax;
  555. } while (range >= 1);
  556. #ifdef DEBUG
  557. fprintf(stderr, "phods - MX: %d\tMY: %d\n", mx, my);
  558. #endif
  559. /* half pixel search */
  560. *mx_ptr = mx;
  561. *my_ptr = my;
  562. return dminy;
  563. }
  564. #define Z_THRESHOLD 256
  565. #define CHECK_SAD_HALF_MV(suffix, x, y) \
  566. {\
  567. d= pix_abs_ ## suffix(pix, ptr+((x)>>1), s->linesize);\
  568. d += (mv_penalty[pen_x + x] + mv_penalty[pen_y + y])*penalty_factor;\
  569. COPY3_IF_LT(dminh, d, dx, x, dy, y)\
  570. }
  571. static inline int sad_hpel_motion_search(MpegEncContext * s,
  572. int *mx_ptr, int *my_ptr, int dmin,
  573. int xmin, int ymin, int xmax, int ymax,
  574. int pred_x, int pred_y, Picture *picture,
  575. int n, int size, uint8_t * const mv_penalty)
  576. {
  577. uint8_t *ref_picture= picture->data[0];
  578. uint32_t *score_map= s->me.score_map;
  579. const int penalty_factor= s->me.sub_penalty_factor;
  580. int mx, my, xx, yy, dminh;
  581. uint8_t *pix, *ptr;
  582. op_pixels_abs_func pix_abs_x2;
  583. op_pixels_abs_func pix_abs_y2;
  584. op_pixels_abs_func pix_abs_xy2;
  585. if(size==0){
  586. pix_abs_x2 = s->dsp.pix_abs16x16_x2;
  587. pix_abs_y2 = s->dsp.pix_abs16x16_y2;
  588. pix_abs_xy2= s->dsp.pix_abs16x16_xy2;
  589. }else{
  590. pix_abs_x2 = s->dsp.pix_abs8x8_x2;
  591. pix_abs_y2 = s->dsp.pix_abs8x8_y2;
  592. pix_abs_xy2= s->dsp.pix_abs8x8_xy2;
  593. }
  594. if(s->me.skip){
  595. // printf("S");
  596. *mx_ptr = 0;
  597. *my_ptr = 0;
  598. return dmin;
  599. }
  600. // printf("N");
  601. xx = 16 * s->mb_x + 8*(n&1);
  602. yy = 16 * s->mb_y + 8*(n>>1);
  603. pix = s->new_picture.data[0] + (yy * s->linesize) + xx;
  604. mx = *mx_ptr;
  605. my = *my_ptr;
  606. ptr = ref_picture + ((yy + my) * s->linesize) + (xx + mx);
  607. dminh = dmin;
  608. if (mx > xmin && mx < xmax &&
  609. my > ymin && my < ymax) {
  610. int dx=0, dy=0;
  611. int d, pen_x, pen_y;
  612. const int index= (my<<ME_MAP_SHIFT) + mx;
  613. const int t= score_map[(index-(1<<ME_MAP_SHIFT))&(ME_MAP_SIZE-1)];
  614. const int l= score_map[(index- 1 )&(ME_MAP_SIZE-1)];
  615. const int r= score_map[(index+ 1 )&(ME_MAP_SIZE-1)];
  616. const int b= score_map[(index+(1<<ME_MAP_SHIFT))&(ME_MAP_SIZE-1)];
  617. mx<<=1;
  618. my<<=1;
  619. pen_x= pred_x + mx;
  620. pen_y= pred_y + my;
  621. ptr-= s->linesize;
  622. if(t<=b){
  623. CHECK_SAD_HALF_MV(y2 , 0, -1)
  624. if(l<=r){
  625. CHECK_SAD_HALF_MV(xy2, -1, -1)
  626. if(t+r<=b+l){
  627. CHECK_SAD_HALF_MV(xy2, +1, -1)
  628. ptr+= s->linesize;
  629. }else{
  630. ptr+= s->linesize;
  631. CHECK_SAD_HALF_MV(xy2, -1, +1)
  632. }
  633. CHECK_SAD_HALF_MV(x2 , -1, 0)
  634. }else{
  635. CHECK_SAD_HALF_MV(xy2, +1, -1)
  636. if(t+l<=b+r){
  637. CHECK_SAD_HALF_MV(xy2, -1, -1)
  638. ptr+= s->linesize;
  639. }else{
  640. ptr+= s->linesize;
  641. CHECK_SAD_HALF_MV(xy2, +1, +1)
  642. }
  643. CHECK_SAD_HALF_MV(x2 , +1, 0)
  644. }
  645. }else{
  646. if(l<=r){
  647. if(t+l<=b+r){
  648. CHECK_SAD_HALF_MV(xy2, -1, -1)
  649. ptr+= s->linesize;
  650. }else{
  651. ptr+= s->linesize;
  652. CHECK_SAD_HALF_MV(xy2, +1, +1)
  653. }
  654. CHECK_SAD_HALF_MV(x2 , -1, 0)
  655. CHECK_SAD_HALF_MV(xy2, -1, +1)
  656. }else{
  657. if(t+r<=b+l){
  658. CHECK_SAD_HALF_MV(xy2, +1, -1)
  659. ptr+= s->linesize;
  660. }else{
  661. ptr+= s->linesize;
  662. CHECK_SAD_HALF_MV(xy2, -1, +1)
  663. }
  664. CHECK_SAD_HALF_MV(x2 , +1, 0)
  665. CHECK_SAD_HALF_MV(xy2, +1, +1)
  666. }
  667. CHECK_SAD_HALF_MV(y2 , 0, +1)
  668. }
  669. mx+=dx;
  670. my+=dy;
  671. }else{
  672. mx<<=1;
  673. my<<=1;
  674. }
  675. *mx_ptr = mx;
  676. *my_ptr = my;
  677. return dminh;
  678. }
  679. static inline void set_p_mv_tables(MpegEncContext * s, int mx, int my, int mv4)
  680. {
  681. const int xy= s->mb_x + s->mb_y*s->mb_stride;
  682. s->p_mv_table[xy][0] = mx;
  683. s->p_mv_table[xy][1] = my;
  684. /* has allready been set to the 4 MV if 4MV is done */
  685. if(mv4){
  686. int mot_xy= s->block_index[0];
  687. s->motion_val[mot_xy ][0]= mx;
  688. s->motion_val[mot_xy ][1]= my;
  689. s->motion_val[mot_xy+1][0]= mx;
  690. s->motion_val[mot_xy+1][1]= my;
  691. mot_xy += s->block_wrap[0];
  692. s->motion_val[mot_xy ][0]= mx;
  693. s->motion_val[mot_xy ][1]= my;
  694. s->motion_val[mot_xy+1][0]= mx;
  695. s->motion_val[mot_xy+1][1]= my;
  696. }
  697. }
  698. /**
  699. * get fullpel ME search limits.
  700. * @param range the approximate search range for the old ME code, unused for EPZS and newer
  701. */
  702. static inline void get_limits(MpegEncContext *s, int *range, int *xmin, int *ymin, int *xmax, int *ymax)
  703. {
  704. if(s->avctx->me_range) *range= s->avctx->me_range >> 1;
  705. else *range= 16;
  706. if (s->unrestricted_mv) {
  707. *xmin = -16;
  708. *ymin = -16;
  709. *xmax = s->mb_width*16;
  710. *ymax = s->mb_height*16;
  711. } else {
  712. *xmin = 0;
  713. *ymin = 0;
  714. *xmax = s->mb_width*16 - 16;
  715. *ymax = s->mb_height*16 - 16;
  716. }
  717. //FIXME try to limit x/y min/max if me_range is set
  718. }
  719. static inline int h263_mv4_search(MpegEncContext *s, int xmin, int ymin, int xmax, int ymax, int mx, int my, int shift)
  720. {
  721. int block;
  722. int P[10][2];
  723. int dmin_sum=0, mx4_sum=0, my4_sum=0;
  724. uint8_t * const mv_penalty= s->me.mv_penalty[s->f_code] + MAX_MV;
  725. int same=1;
  726. for(block=0; block<4; block++){
  727. int mx4, my4;
  728. int pred_x4, pred_y4;
  729. int dmin4;
  730. static const int off[4]= {2, 1, 1, -1};
  731. const int mot_stride = s->block_wrap[0];
  732. const int mot_xy = s->block_index[block];
  733. // const int block_x= (block&1);
  734. // const int block_y= (block>>1);
  735. #if 1 // this saves us a bit of cliping work and shouldnt affect compression in a negative way
  736. const int rel_xmin4= xmin;
  737. const int rel_xmax4= xmax;
  738. const int rel_ymin4= ymin;
  739. const int rel_ymax4= ymax;
  740. #else
  741. const int rel_xmin4= xmin - block_x*8;
  742. const int rel_xmax4= xmax - block_x*8 + 8;
  743. const int rel_ymin4= ymin - block_y*8;
  744. const int rel_ymax4= ymax - block_y*8 + 8;
  745. #endif
  746. P_LEFT[0] = s->motion_val[mot_xy - 1][0];
  747. P_LEFT[1] = s->motion_val[mot_xy - 1][1];
  748. if(P_LEFT[0] > (rel_xmax4<<shift)) P_LEFT[0] = (rel_xmax4<<shift);
  749. /* special case for first line */
  750. if (s->mb_y == 0 && block<2) {
  751. pred_x4= P_LEFT[0];
  752. pred_y4= P_LEFT[1];
  753. } else {
  754. P_TOP[0] = s->motion_val[mot_xy - mot_stride ][0];
  755. P_TOP[1] = s->motion_val[mot_xy - mot_stride ][1];
  756. P_TOPRIGHT[0] = s->motion_val[mot_xy - mot_stride + off[block]][0];
  757. P_TOPRIGHT[1] = s->motion_val[mot_xy - mot_stride + off[block]][1];
  758. if(P_TOP[1] > (rel_ymax4<<shift)) P_TOP[1] = (rel_ymax4<<shift);
  759. if(P_TOPRIGHT[0] < (rel_xmin4<<shift)) P_TOPRIGHT[0]= (rel_xmin4<<shift);
  760. if(P_TOPRIGHT[0] > (rel_xmax4<<shift)) P_TOPRIGHT[0]= (rel_xmax4<<shift);
  761. if(P_TOPRIGHT[1] > (rel_ymax4<<shift)) P_TOPRIGHT[1]= (rel_ymax4<<shift);
  762. P_MEDIAN[0]= mid_pred(P_LEFT[0], P_TOP[0], P_TOPRIGHT[0]);
  763. P_MEDIAN[1]= mid_pred(P_LEFT[1], P_TOP[1], P_TOPRIGHT[1]);
  764. // if(s->out_format == FMT_H263){
  765. pred_x4 = P_MEDIAN[0];
  766. pred_y4 = P_MEDIAN[1];
  767. #if 0
  768. }else { /* mpeg1 at least */
  769. pred_x4= P_LEFT[0];
  770. pred_y4= P_LEFT[1];
  771. }
  772. #endif
  773. }
  774. P_MV1[0]= mx;
  775. P_MV1[1]= my;
  776. dmin4 = s->me.motion_search[1](s, block, &mx4, &my4, P, pred_x4, pred_y4, rel_xmin4, rel_ymin4, rel_xmax4, rel_ymax4,
  777. &s->last_picture, s->p_mv_table, (1<<16)>>shift, mv_penalty);
  778. dmin4= s->me.sub_motion_search(s, &mx4, &my4, dmin4, rel_xmin4, rel_ymin4, rel_xmax4, rel_ymax4,
  779. pred_x4, pred_y4, &s->last_picture, block, 1, mv_penalty);
  780. if(s->dsp.me_sub_cmp[0] != s->dsp.mb_cmp[0]){
  781. int dxy;
  782. const int offset= ((block&1) + (block>>1)*s->linesize)*8;
  783. uint8_t *dest_y = s->me.scratchpad + offset;
  784. if(s->quarter_sample){
  785. uint8_t *ref= s->last_picture.data[0] + (s->mb_x*16 + (mx4>>2)) + (s->mb_y*16 + (my4>>2))*s->linesize + offset;
  786. dxy = ((my4 & 3) << 2) | (mx4 & 3);
  787. if(s->no_rounding)
  788. s->dsp.put_no_rnd_qpel_pixels_tab[1][dxy](dest_y , ref , s->linesize);
  789. else
  790. s->dsp.put_qpel_pixels_tab [1][dxy](dest_y , ref , s->linesize);
  791. }else{
  792. uint8_t *ref= s->last_picture.data[0] + (s->mb_x*16 + (mx4>>1)) + (s->mb_y*16 + (my4>>1))*s->linesize + offset;
  793. dxy = ((my4 & 1) << 1) | (mx4 & 1);
  794. if(s->no_rounding)
  795. s->dsp.put_no_rnd_pixels_tab[1][dxy](dest_y , ref , s->linesize, 8);
  796. else
  797. s->dsp.put_pixels_tab [1][dxy](dest_y , ref , s->linesize, 8);
  798. }
  799. dmin_sum+= (mv_penalty[mx4-pred_x4] + mv_penalty[my4-pred_y4])*s->me.mb_penalty_factor;
  800. }else
  801. dmin_sum+= dmin4;
  802. if(s->quarter_sample){
  803. mx4_sum+= mx4/2;
  804. my4_sum+= my4/2;
  805. }else{
  806. mx4_sum+= mx4;
  807. my4_sum+= my4;
  808. }
  809. s->motion_val[ s->block_index[block] ][0]= mx4;
  810. s->motion_val[ s->block_index[block] ][1]= my4;
  811. if(mx4 != mx || my4 != my) same=0;
  812. }
  813. if(same)
  814. return INT_MAX;
  815. if(s->dsp.me_sub_cmp[0] != s->dsp.mb_cmp[0]){
  816. dmin_sum += s->dsp.mb_cmp[0](s, s->new_picture.data[0] + s->mb_x*16 + s->mb_y*16*s->linesize, s->me.scratchpad, s->linesize);
  817. }
  818. if(s->avctx->mb_cmp&FF_CMP_CHROMA){
  819. int dxy;
  820. int mx, my;
  821. int offset;
  822. mx= ff_h263_round_chroma(mx4_sum);
  823. my= ff_h263_round_chroma(my4_sum);
  824. dxy = ((my & 1) << 1) | (mx & 1);
  825. offset= (s->mb_x*8 + (mx>>1)) + (s->mb_y*8 + (my>>1))*s->uvlinesize;
  826. if(s->no_rounding){
  827. s->dsp.put_no_rnd_pixels_tab[1][dxy](s->me.scratchpad , s->last_picture.data[1] + offset, s->uvlinesize, 8);
  828. s->dsp.put_no_rnd_pixels_tab[1][dxy](s->me.scratchpad+8 , s->last_picture.data[2] + offset, s->uvlinesize, 8);
  829. }else{
  830. s->dsp.put_pixels_tab [1][dxy](s->me.scratchpad , s->last_picture.data[1] + offset, s->uvlinesize, 8);
  831. s->dsp.put_pixels_tab [1][dxy](s->me.scratchpad+8 , s->last_picture.data[2] + offset, s->uvlinesize, 8);
  832. }
  833. dmin_sum += s->dsp.mb_cmp[1](s, s->new_picture.data[1] + s->mb_x*8 + s->mb_y*8*s->uvlinesize, s->me.scratchpad , s->uvlinesize);
  834. dmin_sum += s->dsp.mb_cmp[1](s, s->new_picture.data[2] + s->mb_x*8 + s->mb_y*8*s->uvlinesize, s->me.scratchpad+8, s->uvlinesize);
  835. }
  836. switch(s->avctx->mb_cmp&0xFF){
  837. /*case FF_CMP_SSE:
  838. return dmin_sum+ 32*s->qscale*s->qscale;*/
  839. case FF_CMP_RD:
  840. return dmin_sum;
  841. default:
  842. return dmin_sum+ 11*s->me.mb_penalty_factor;
  843. }
  844. }
  845. void ff_estimate_p_frame_motion(MpegEncContext * s,
  846. int mb_x, int mb_y)
  847. {
  848. uint8_t *pix, *ppix;
  849. int sum, varc, vard, mx, my, range, dmin, xx, yy;
  850. int xmin, ymin, xmax, ymax;
  851. int rel_xmin, rel_ymin, rel_xmax, rel_ymax;
  852. int pred_x=0, pred_y=0;
  853. int P[10][2];
  854. const int shift= 1+s->quarter_sample;
  855. int mb_type=0;
  856. uint8_t *ref_picture= s->last_picture.data[0];
  857. Picture * const pic= &s->current_picture;
  858. uint8_t * const mv_penalty= s->me.mv_penalty[s->f_code] + MAX_MV;
  859. assert(s->quarter_sample==0 || s->quarter_sample==1);
  860. s->me.penalty_factor = get_penalty_factor(s, s->avctx->me_cmp);
  861. s->me.sub_penalty_factor= get_penalty_factor(s, s->avctx->me_sub_cmp);
  862. s->me.mb_penalty_factor = get_penalty_factor(s, s->avctx->mb_cmp);
  863. get_limits(s, &range, &xmin, &ymin, &xmax, &ymax);
  864. rel_xmin= xmin - mb_x*16;
  865. rel_xmax= xmax - mb_x*16;
  866. rel_ymin= ymin - mb_y*16;
  867. rel_ymax= ymax - mb_y*16;
  868. s->me.skip=0;
  869. switch(s->me_method) {
  870. case ME_ZERO:
  871. default:
  872. no_motion_search(s, &mx, &my);
  873. mx-= mb_x*16;
  874. my-= mb_y*16;
  875. dmin = 0;
  876. break;
  877. case ME_FULL:
  878. dmin = full_motion_search(s, &mx, &my, range, xmin, ymin, xmax, ymax, ref_picture);
  879. mx-= mb_x*16;
  880. my-= mb_y*16;
  881. break;
  882. case ME_LOG:
  883. dmin = log_motion_search(s, &mx, &my, range / 2, xmin, ymin, xmax, ymax, ref_picture);
  884. mx-= mb_x*16;
  885. my-= mb_y*16;
  886. break;
  887. case ME_PHODS:
  888. dmin = phods_motion_search(s, &mx, &my, range / 2, xmin, ymin, xmax, ymax, ref_picture);
  889. mx-= mb_x*16;
  890. my-= mb_y*16;
  891. break;
  892. case ME_X1:
  893. case ME_EPZS:
  894. {
  895. const int mot_stride = s->block_wrap[0];
  896. const int mot_xy = s->block_index[0];
  897. P_LEFT[0] = s->motion_val[mot_xy - 1][0];
  898. P_LEFT[1] = s->motion_val[mot_xy - 1][1];
  899. if(P_LEFT[0] > (rel_xmax<<shift)) P_LEFT[0] = (rel_xmax<<shift);
  900. if(mb_y) {
  901. P_TOP[0] = s->motion_val[mot_xy - mot_stride ][0];
  902. P_TOP[1] = s->motion_val[mot_xy - mot_stride ][1];
  903. P_TOPRIGHT[0] = s->motion_val[mot_xy - mot_stride + 2][0];
  904. P_TOPRIGHT[1] = s->motion_val[mot_xy - mot_stride + 2][1];
  905. if(P_TOP[1] > (rel_ymax<<shift)) P_TOP[1] = (rel_ymax<<shift);
  906. if(P_TOPRIGHT[0] < (rel_xmin<<shift)) P_TOPRIGHT[0]= (rel_xmin<<shift);
  907. if(P_TOPRIGHT[1] > (rel_ymax<<shift)) P_TOPRIGHT[1]= (rel_ymax<<shift);
  908. P_MEDIAN[0]= mid_pred(P_LEFT[0], P_TOP[0], P_TOPRIGHT[0]);
  909. P_MEDIAN[1]= mid_pred(P_LEFT[1], P_TOP[1], P_TOPRIGHT[1]);
  910. if(s->out_format == FMT_H263){
  911. pred_x = P_MEDIAN[0];
  912. pred_y = P_MEDIAN[1];
  913. }else { /* mpeg1 at least */
  914. pred_x= P_LEFT[0];
  915. pred_y= P_LEFT[1];
  916. }
  917. }else{
  918. pred_x= P_LEFT[0];
  919. pred_y= P_LEFT[1];
  920. }
  921. }
  922. dmin = s->me.motion_search[0](s, 0, &mx, &my, P, pred_x, pred_y, rel_xmin, rel_ymin, rel_xmax, rel_ymax,
  923. &s->last_picture, s->p_mv_table, (1<<16)>>shift, mv_penalty);
  924. break;
  925. }
  926. /* intra / predictive decision */
  927. xx = mb_x * 16;
  928. yy = mb_y * 16;
  929. pix = s->new_picture.data[0] + (yy * s->linesize) + xx;
  930. /* At this point (mx,my) are full-pell and the relative displacement */
  931. ppix = ref_picture + ((yy+my) * s->linesize) + (xx+mx);
  932. sum = s->dsp.pix_sum(pix, s->linesize);
  933. varc = (s->dsp.pix_norm1(pix, s->linesize) - (((unsigned)(sum*sum))>>8) + 500 + 128)>>8;
  934. vard = (s->dsp.sse[0](NULL, pix, ppix, s->linesize)+128)>>8;
  935. //printf("%d %d %d %X %X %X\n", s->mb_width, mb_x, mb_y,(int)s, (int)s->mb_var, (int)s->mc_mb_var); fflush(stdout);
  936. pic->mb_var [s->mb_stride * mb_y + mb_x] = varc;
  937. pic->mc_mb_var[s->mb_stride * mb_y + mb_x] = vard;
  938. pic->mb_mean [s->mb_stride * mb_y + mb_x] = (sum+128)>>8;
  939. // pic->mb_cmp_score[s->mb_stride * mb_y + mb_x] = dmin;
  940. pic->mb_var_sum += varc;
  941. pic->mc_mb_var_sum += vard;
  942. //printf("E%d %d %d %X %X %X\n", s->mb_width, mb_x, mb_y,(int)s, (int)s->mb_var, (int)s->mc_mb_var); fflush(stdout);
  943. #if 0
  944. printf("varc=%4d avg_var=%4d (sum=%4d) vard=%4d mx=%2d my=%2d\n",
  945. varc, s->avg_mb_var, sum, vard, mx - xx, my - yy);
  946. #endif
  947. if(s->avctx->mb_decision > FF_MB_DECISION_SIMPLE){
  948. if (vard <= 64 || vard < varc)
  949. s->scene_change_score+= ff_sqrt(vard) - ff_sqrt(varc);
  950. else
  951. s->scene_change_score+= s->qscale;
  952. if (vard*2 + 200 > varc)
  953. mb_type|= MB_TYPE_INTRA;
  954. if (varc*2 + 200 > vard){
  955. mb_type|= MB_TYPE_INTER;
  956. s->me.sub_motion_search(s, &mx, &my, dmin, rel_xmin, rel_ymin, rel_xmax, rel_ymax,
  957. pred_x, pred_y, &s->last_picture, 0, 0, mv_penalty);
  958. if(s->flags&CODEC_FLAG_MV0)
  959. if(mx || my)
  960. mb_type |= MB_TYPE_SKIPED; //FIXME check difference
  961. }else{
  962. mx <<=shift;
  963. my <<=shift;
  964. }
  965. if((s->flags&CODEC_FLAG_4MV)
  966. && !s->me.skip && varc>50 && vard>10){
  967. if(h263_mv4_search(s, rel_xmin, rel_ymin, rel_xmax, rel_ymax, mx, my, shift) < INT_MAX)
  968. mb_type|=MB_TYPE_INTER4V;
  969. set_p_mv_tables(s, mx, my, 0);
  970. }else
  971. set_p_mv_tables(s, mx, my, 1);
  972. }else{
  973. int intra_score, i;
  974. mb_type= MB_TYPE_INTER;
  975. dmin= s->me.sub_motion_search(s, &mx, &my, dmin, rel_xmin, rel_ymin, rel_xmax, rel_ymax,
  976. pred_x, pred_y, &s->last_picture, 0, 0, mv_penalty);
  977. if(s->avctx->me_sub_cmp != s->avctx->mb_cmp && !s->me.skip)
  978. dmin= s->me.get_mb_score(s, mx, my, pred_x, pred_y, &s->last_picture, mv_penalty);
  979. if((s->flags&CODEC_FLAG_4MV)
  980. && !s->me.skip && varc>50 && vard>10){
  981. int dmin4= h263_mv4_search(s, rel_xmin, rel_ymin, rel_xmax, rel_ymax, mx, my, shift);
  982. if(dmin4 < dmin){
  983. mb_type= MB_TYPE_INTER4V;
  984. dmin=dmin4;
  985. }
  986. }
  987. // pic->mb_cmp_score[s->mb_stride * mb_y + mb_x] = dmin;
  988. set_p_mv_tables(s, mx, my, mb_type!=MB_TYPE_INTER4V);
  989. /* get intra luma score */
  990. if((s->avctx->mb_cmp&0xFF)==FF_CMP_SSE){
  991. intra_score= (varc<<8) - 500; //FIXME dont scale it down so we dont have to fix it
  992. }else{
  993. int mean= (sum+128)>>8;
  994. mean*= 0x01010101;
  995. for(i=0; i<16; i++){
  996. *(uint32_t*)(&s->me.scratchpad[i*s->linesize+ 0]) = mean;
  997. *(uint32_t*)(&s->me.scratchpad[i*s->linesize+ 4]) = mean;
  998. *(uint32_t*)(&s->me.scratchpad[i*s->linesize+ 8]) = mean;
  999. *(uint32_t*)(&s->me.scratchpad[i*s->linesize+12]) = mean;
  1000. }
  1001. intra_score= s->dsp.mb_cmp[0](s, s->me.scratchpad, pix, s->linesize);
  1002. }
  1003. #if 0 //FIXME
  1004. /* get chroma score */
  1005. if(s->avctx->mb_cmp&FF_CMP_CHROMA){
  1006. for(i=1; i<3; i++){
  1007. uint8_t *dest_c;
  1008. int mean;
  1009. if(s->out_format == FMT_H263){
  1010. mean= (s->dc_val[i][mb_x + (mb_y+1)*(s->mb_width+2)] + 4)>>3; //FIXME not exact but simple ;)
  1011. }else{
  1012. mean= (s->last_dc[i] + 4)>>3;
  1013. }
  1014. dest_c = s->new_picture.data[i] + (mb_y * 8 * (s->uvlinesize)) + mb_x * 8;
  1015. mean*= 0x01010101;
  1016. for(i=0; i<8; i++){
  1017. *(uint32_t*)(&s->me.scratchpad[i*s->uvlinesize+ 0]) = mean;
  1018. *(uint32_t*)(&s->me.scratchpad[i*s->uvlinesize+ 4]) = mean;
  1019. }
  1020. intra_score+= s->dsp.mb_cmp[1](s, s->me.scratchpad, dest_c, s->uvlinesize);
  1021. }
  1022. }
  1023. #endif
  1024. intra_score += s->me.mb_penalty_factor*16;
  1025. if(intra_score < dmin){
  1026. mb_type= MB_TYPE_INTRA;
  1027. s->current_picture.mb_type[mb_y*s->mb_stride + mb_x]= MB_TYPE_INTRA; //FIXME cleanup
  1028. }else
  1029. s->current_picture.mb_type[mb_y*s->mb_stride + mb_x]= 0;
  1030. if (vard <= 64 || vard < varc) { //FIXME
  1031. s->scene_change_score+= ff_sqrt(vard) - ff_sqrt(varc);
  1032. }else{
  1033. s->scene_change_score+= s->qscale;
  1034. }
  1035. }
  1036. s->mb_type[mb_y*s->mb_stride + mb_x]= mb_type;
  1037. }
  1038. int ff_pre_estimate_p_frame_motion(MpegEncContext * s,
  1039. int mb_x, int mb_y)
  1040. {
  1041. int mx, my, range, dmin;
  1042. int xmin, ymin, xmax, ymax;
  1043. int rel_xmin, rel_ymin, rel_xmax, rel_ymax;
  1044. int pred_x=0, pred_y=0;
  1045. int P[10][2];
  1046. const int shift= 1+s->quarter_sample;
  1047. uint8_t * const mv_penalty= s->me.mv_penalty[s->f_code] + MAX_MV;
  1048. const int xy= mb_x + mb_y*s->mb_stride;
  1049. assert(s->quarter_sample==0 || s->quarter_sample==1);
  1050. s->me.pre_penalty_factor = get_penalty_factor(s, s->avctx->me_pre_cmp);
  1051. get_limits(s, &range, &xmin, &ymin, &xmax, &ymax);
  1052. rel_xmin= xmin - mb_x*16;
  1053. rel_xmax= xmax - mb_x*16;
  1054. rel_ymin= ymin - mb_y*16;
  1055. rel_ymax= ymax - mb_y*16;
  1056. s->me.skip=0;
  1057. P_LEFT[0] = s->p_mv_table[xy + 1][0];
  1058. P_LEFT[1] = s->p_mv_table[xy + 1][1];
  1059. if(P_LEFT[0] < (rel_xmin<<shift)) P_LEFT[0] = (rel_xmin<<shift);
  1060. /* special case for first line */
  1061. if (mb_y == s->mb_height-1) {
  1062. pred_x= P_LEFT[0];
  1063. pred_y= P_LEFT[1];
  1064. P_TOP[0]= P_TOPRIGHT[0]= P_MEDIAN[0]=
  1065. P_TOP[1]= P_TOPRIGHT[1]= P_MEDIAN[1]= 0; //FIXME
  1066. } else {
  1067. P_TOP[0] = s->p_mv_table[xy + s->mb_stride ][0];
  1068. P_TOP[1] = s->p_mv_table[xy + s->mb_stride ][1];
  1069. P_TOPRIGHT[0] = s->p_mv_table[xy + s->mb_stride - 1][0];
  1070. P_TOPRIGHT[1] = s->p_mv_table[xy + s->mb_stride - 1][1];
  1071. if(P_TOP[1] < (rel_ymin<<shift)) P_TOP[1] = (rel_ymin<<shift);
  1072. if(P_TOPRIGHT[0] > (rel_xmax<<shift)) P_TOPRIGHT[0]= (rel_xmax<<shift);
  1073. if(P_TOPRIGHT[1] < (rel_ymin<<shift)) P_TOPRIGHT[1]= (rel_ymin<<shift);
  1074. P_MEDIAN[0]= mid_pred(P_LEFT[0], P_TOP[0], P_TOPRIGHT[0]);
  1075. P_MEDIAN[1]= mid_pred(P_LEFT[1], P_TOP[1], P_TOPRIGHT[1]);
  1076. pred_x = P_MEDIAN[0];
  1077. pred_y = P_MEDIAN[1];
  1078. }
  1079. dmin = s->me.pre_motion_search(s, 0, &mx, &my, P, pred_x, pred_y, rel_xmin, rel_ymin, rel_xmax, rel_ymax,
  1080. &s->last_picture, s->p_mv_table, (1<<16)>>shift, mv_penalty);
  1081. s->p_mv_table[xy][0] = mx<<shift;
  1082. s->p_mv_table[xy][1] = my<<shift;
  1083. return dmin;
  1084. }
  1085. static int ff_estimate_motion_b(MpegEncContext * s,
  1086. int mb_x, int mb_y, int16_t (*mv_table)[2], Picture *picture, int f_code)
  1087. {
  1088. int mx, my, range, dmin;
  1089. int xmin, ymin, xmax, ymax;
  1090. int rel_xmin, rel_ymin, rel_xmax, rel_ymax;
  1091. int pred_x=0, pred_y=0;
  1092. int P[10][2];
  1093. const int shift= 1+s->quarter_sample;
  1094. const int mot_stride = s->mb_stride;
  1095. const int mot_xy = mb_y*mot_stride + mb_x;
  1096. uint8_t * const ref_picture= picture->data[0];
  1097. uint8_t * const mv_penalty= s->me.mv_penalty[f_code] + MAX_MV;
  1098. int mv_scale;
  1099. s->me.penalty_factor = get_penalty_factor(s, s->avctx->me_cmp);
  1100. s->me.sub_penalty_factor= get_penalty_factor(s, s->avctx->me_sub_cmp);
  1101. s->me.mb_penalty_factor = get_penalty_factor(s, s->avctx->mb_cmp);
  1102. get_limits(s, &range, &xmin, &ymin, &xmax, &ymax);
  1103. rel_xmin= xmin - mb_x*16;
  1104. rel_xmax= xmax - mb_x*16;
  1105. rel_ymin= ymin - mb_y*16;
  1106. rel_ymax= ymax - mb_y*16;
  1107. switch(s->me_method) {
  1108. case ME_ZERO:
  1109. default:
  1110. no_motion_search(s, &mx, &my);
  1111. dmin = 0;
  1112. mx-= mb_x*16;
  1113. my-= mb_y*16;
  1114. break;
  1115. case ME_FULL:
  1116. dmin = full_motion_search(s, &mx, &my, range, xmin, ymin, xmax, ymax, ref_picture);
  1117. mx-= mb_x*16;
  1118. my-= mb_y*16;
  1119. break;
  1120. case ME_LOG:
  1121. dmin = log_motion_search(s, &mx, &my, range / 2, xmin, ymin, xmax, ymax, ref_picture);
  1122. mx-= mb_x*16;
  1123. my-= mb_y*16;
  1124. break;
  1125. case ME_PHODS:
  1126. dmin = phods_motion_search(s, &mx, &my, range / 2, xmin, ymin, xmax, ymax, ref_picture);
  1127. mx-= mb_x*16;
  1128. my-= mb_y*16;
  1129. break;
  1130. case ME_X1:
  1131. case ME_EPZS:
  1132. {
  1133. P_LEFT[0] = mv_table[mot_xy - 1][0];
  1134. P_LEFT[1] = mv_table[mot_xy - 1][1];
  1135. if(P_LEFT[0] > (rel_xmax<<shift)) P_LEFT[0] = (rel_xmax<<shift);
  1136. /* special case for first line */
  1137. if (mb_y) {
  1138. P_TOP[0] = mv_table[mot_xy - mot_stride ][0];
  1139. P_TOP[1] = mv_table[mot_xy - mot_stride ][1];
  1140. P_TOPRIGHT[0] = mv_table[mot_xy - mot_stride + 1 ][0];
  1141. P_TOPRIGHT[1] = mv_table[mot_xy - mot_stride + 1 ][1];
  1142. if(P_TOP[1] > (rel_ymax<<shift)) P_TOP[1]= (rel_ymax<<shift);
  1143. if(P_TOPRIGHT[0] < (rel_xmin<<shift)) P_TOPRIGHT[0]= (rel_xmin<<shift);
  1144. if(P_TOPRIGHT[1] > (rel_ymax<<shift)) P_TOPRIGHT[1]= (rel_ymax<<shift);
  1145. P_MEDIAN[0]= mid_pred(P_LEFT[0], P_TOP[0], P_TOPRIGHT[0]);
  1146. P_MEDIAN[1]= mid_pred(P_LEFT[1], P_TOP[1], P_TOPRIGHT[1]);
  1147. }
  1148. pred_x= P_LEFT[0];
  1149. pred_y= P_LEFT[1];
  1150. }
  1151. if(mv_table == s->b_forw_mv_table){
  1152. mv_scale= (s->pb_time<<16) / (s->pp_time<<shift);
  1153. }else{
  1154. mv_scale= ((s->pb_time - s->pp_time)<<16) / (s->pp_time<<shift);
  1155. }
  1156. dmin = s->me.motion_search[0](s, 0, &mx, &my, P, pred_x, pred_y, rel_xmin, rel_ymin, rel_xmax, rel_ymax,
  1157. picture, s->p_mv_table, mv_scale, mv_penalty);
  1158. break;
  1159. }
  1160. dmin= s->me.sub_motion_search(s, &mx, &my, dmin, rel_xmin, rel_ymin, rel_xmax, rel_ymax,
  1161. pred_x, pred_y, picture, 0, 0, mv_penalty);
  1162. if(s->avctx->me_sub_cmp != s->avctx->mb_cmp && !s->me.skip)
  1163. dmin= s->me.get_mb_score(s, mx, my, pred_x, pred_y, picture, mv_penalty);
  1164. //printf("%d %d %d %d//", s->mb_x, s->mb_y, mx, my);
  1165. // s->mb_type[mb_y*s->mb_width + mb_x]= mb_type;
  1166. mv_table[mot_xy][0]= mx;
  1167. mv_table[mot_xy][1]= my;
  1168. return dmin;
  1169. }
  1170. static inline int check_bidir_mv(MpegEncContext * s,
  1171. int mb_x, int mb_y,
  1172. int motion_fx, int motion_fy,
  1173. int motion_bx, int motion_by,
  1174. int pred_fx, int pred_fy,
  1175. int pred_bx, int pred_by)
  1176. {
  1177. //FIXME optimize?
  1178. //FIXME move into template?
  1179. //FIXME better f_code prediction (max mv & distance)
  1180. uint8_t * const mv_penalty= s->me.mv_penalty[s->f_code] + MAX_MV; // f_code of the prev frame
  1181. uint8_t *dest_y = s->me.scratchpad;
  1182. uint8_t *ptr;
  1183. int dxy;
  1184. int src_x, src_y;
  1185. int fbmin;
  1186. if(s->quarter_sample){
  1187. dxy = ((motion_fy & 3) << 2) | (motion_fx & 3);
  1188. src_x = mb_x * 16 + (motion_fx >> 2);
  1189. src_y = mb_y * 16 + (motion_fy >> 2);
  1190. assert(src_x >=-16 && src_x<=s->h_edge_pos);
  1191. assert(src_y >=-16 && src_y<=s->v_edge_pos);
  1192. ptr = s->last_picture.data[0] + (src_y * s->linesize) + src_x;
  1193. s->dsp.put_qpel_pixels_tab[0][dxy](dest_y , ptr , s->linesize);
  1194. dxy = ((motion_by & 3) << 2) | (motion_bx & 3);
  1195. src_x = mb_x * 16 + (motion_bx >> 2);
  1196. src_y = mb_y * 16 + (motion_by >> 2);
  1197. assert(src_x >=-16 && src_x<=s->h_edge_pos);
  1198. assert(src_y >=-16 && src_y<=s->v_edge_pos);
  1199. ptr = s->next_picture.data[0] + (src_y * s->linesize) + src_x;
  1200. s->dsp.avg_qpel_pixels_tab[0][dxy](dest_y , ptr , s->linesize);
  1201. }else{
  1202. dxy = ((motion_fy & 1) << 1) | (motion_fx & 1);
  1203. src_x = mb_x * 16 + (motion_fx >> 1);
  1204. src_y = mb_y * 16 + (motion_fy >> 1);
  1205. assert(src_x >=-16 && src_x<=s->h_edge_pos);
  1206. assert(src_y >=-16 && src_y<=s->v_edge_pos);
  1207. ptr = s->last_picture.data[0] + (src_y * s->linesize) + src_x;
  1208. s->dsp.put_pixels_tab[0][dxy](dest_y , ptr , s->linesize, 16);
  1209. dxy = ((motion_by & 1) << 1) | (motion_bx & 1);
  1210. src_x = mb_x * 16 + (motion_bx >> 1);
  1211. src_y = mb_y * 16 + (motion_by >> 1);
  1212. assert(src_x >=-16 && src_x<=s->h_edge_pos);
  1213. assert(src_y >=-16 && src_y<=s->v_edge_pos);
  1214. ptr = s->next_picture.data[0] + (src_y * s->linesize) + src_x;
  1215. s->dsp.avg_pixels_tab[0][dxy](dest_y , ptr , s->linesize, 16);
  1216. }
  1217. fbmin = (mv_penalty[motion_fx-pred_fx] + mv_penalty[motion_fy-pred_fy])*s->me.mb_penalty_factor
  1218. +(mv_penalty[motion_bx-pred_bx] + mv_penalty[motion_by-pred_by])*s->me.mb_penalty_factor
  1219. + s->dsp.mb_cmp[0](s, s->new_picture.data[0] + mb_x*16 + mb_y*16*s->linesize, dest_y, s->linesize);
  1220. if(s->avctx->mb_cmp&FF_CMP_CHROMA){
  1221. }
  1222. //FIXME CHROMA !!!
  1223. return fbmin;
  1224. }
  1225. /* refine the bidir vectors in hq mode and return the score in both lq & hq mode*/
  1226. static inline int bidir_refine(MpegEncContext * s,
  1227. int mb_x, int mb_y)
  1228. {
  1229. const int mot_stride = s->mb_stride;
  1230. const int xy = mb_y *mot_stride + mb_x;
  1231. int fbmin;
  1232. int pred_fx= s->b_bidir_forw_mv_table[xy-1][0];
  1233. int pred_fy= s->b_bidir_forw_mv_table[xy-1][1];
  1234. int pred_bx= s->b_bidir_back_mv_table[xy-1][0];
  1235. int pred_by= s->b_bidir_back_mv_table[xy-1][1];
  1236. int motion_fx= s->b_bidir_forw_mv_table[xy][0]= s->b_forw_mv_table[xy][0];
  1237. int motion_fy= s->b_bidir_forw_mv_table[xy][1]= s->b_forw_mv_table[xy][1];
  1238. int motion_bx= s->b_bidir_back_mv_table[xy][0]= s->b_back_mv_table[xy][0];
  1239. int motion_by= s->b_bidir_back_mv_table[xy][1]= s->b_back_mv_table[xy][1];
  1240. //FIXME do refinement and add flag
  1241. fbmin= check_bidir_mv(s, mb_x, mb_y,
  1242. motion_fx, motion_fy,
  1243. motion_bx, motion_by,
  1244. pred_fx, pred_fy,
  1245. pred_bx, pred_by);
  1246. return fbmin;
  1247. }
  1248. static inline int direct_search(MpegEncContext * s,
  1249. int mb_x, int mb_y)
  1250. {
  1251. int P[10][2];
  1252. const int mot_stride = s->mb_stride;
  1253. const int mot_xy = mb_y*mot_stride + mb_x;
  1254. const int shift= 1+s->quarter_sample;
  1255. int dmin, i;
  1256. const int time_pp= s->pp_time;
  1257. const int time_pb= s->pb_time;
  1258. int mx, my, xmin, xmax, ymin, ymax;
  1259. int16_t (*mv_table)[2]= s->b_direct_mv_table;
  1260. uint8_t * const mv_penalty= s->me.mv_penalty[1] + MAX_MV;
  1261. ymin= xmin=(-32)>>shift;
  1262. ymax= xmax= 31>>shift;
  1263. if(IS_8X8(s->next_picture.mb_type[mot_xy])){
  1264. s->mv_type= MV_TYPE_8X8;
  1265. }else{
  1266. s->mv_type= MV_TYPE_16X16;
  1267. }
  1268. for(i=0; i<4; i++){
  1269. int index= s->block_index[i];
  1270. int min, max;
  1271. s->me.co_located_mv[i][0]= s->motion_val[index][0];
  1272. s->me.co_located_mv[i][1]= s->motion_val[index][1];
  1273. s->me.direct_basis_mv[i][0]= s->me.co_located_mv[i][0]*time_pb/time_pp + ((i& 1)<<(shift+3));
  1274. s->me.direct_basis_mv[i][1]= s->me.co_located_mv[i][1]*time_pb/time_pp + ((i>>1)<<(shift+3));
  1275. // s->me.direct_basis_mv[1][i][0]= s->me.co_located_mv[i][0]*(time_pb - time_pp)/time_pp + ((i &1)<<(shift+3);
  1276. // s->me.direct_basis_mv[1][i][1]= s->me.co_located_mv[i][1]*(time_pb - time_pp)/time_pp + ((i>>1)<<(shift+3);
  1277. max= FFMAX(s->me.direct_basis_mv[i][0], s->me.direct_basis_mv[i][0] - s->me.co_located_mv[i][0])>>shift;
  1278. min= FFMIN(s->me.direct_basis_mv[i][0], s->me.direct_basis_mv[i][0] - s->me.co_located_mv[i][0])>>shift;
  1279. max+= (2*mb_x + (i& 1))*8 + 1; // +-1 is for the simpler rounding
  1280. min+= (2*mb_x + (i& 1))*8 - 1;
  1281. xmax= FFMIN(xmax, s->width - max);
  1282. xmin= FFMAX(xmin, - 16 - min);
  1283. max= FFMAX(s->me.direct_basis_mv[i][1], s->me.direct_basis_mv[i][1] - s->me.co_located_mv[i][1])>>shift;
  1284. min= FFMIN(s->me.direct_basis_mv[i][1], s->me.direct_basis_mv[i][1] - s->me.co_located_mv[i][1])>>shift;
  1285. max+= (2*mb_y + (i>>1))*8 + 1; // +-1 is for the simpler rounding
  1286. min+= (2*mb_y + (i>>1))*8 - 1;
  1287. ymax= FFMIN(ymax, s->height - max);
  1288. ymin= FFMAX(ymin, - 16 - min);
  1289. if(s->mv_type == MV_TYPE_16X16) break;
  1290. }
  1291. assert(xmax <= 15 && ymax <= 15 && xmin >= -16 && ymin >= -16);
  1292. if(xmax < 0 || xmin >0 || ymax < 0 || ymin > 0){
  1293. s->b_direct_mv_table[mot_xy][0]= 0;
  1294. s->b_direct_mv_table[mot_xy][1]= 0;
  1295. return 256*256*256*64;
  1296. }
  1297. P_LEFT[0] = clip(mv_table[mot_xy - 1][0], xmin<<shift, xmax<<shift);
  1298. P_LEFT[1] = clip(mv_table[mot_xy - 1][1], ymin<<shift, ymax<<shift);
  1299. /* special case for first line */
  1300. if (mb_y) {
  1301. P_TOP[0] = clip(mv_table[mot_xy - mot_stride ][0], xmin<<shift, xmax<<shift);
  1302. P_TOP[1] = clip(mv_table[mot_xy - mot_stride ][1], ymin<<shift, ymax<<shift);
  1303. P_TOPRIGHT[0] = clip(mv_table[mot_xy - mot_stride + 1 ][0], xmin<<shift, xmax<<shift);
  1304. P_TOPRIGHT[1] = clip(mv_table[mot_xy - mot_stride + 1 ][1], ymin<<shift, ymax<<shift);
  1305. P_MEDIAN[0]= mid_pred(P_LEFT[0], P_TOP[0], P_TOPRIGHT[0]);
  1306. P_MEDIAN[1]= mid_pred(P_LEFT[1], P_TOP[1], P_TOPRIGHT[1]);
  1307. }
  1308. //FIXME direct_search ptr in context!!! (needed for chroma anyway or this will get messy)
  1309. if(s->flags&CODEC_FLAG_QPEL){
  1310. dmin = simple_direct_qpel_epzs_motion_search(s, 0, &mx, &my, P, 0, 0, xmin, ymin, xmax, ymax,
  1311. &s->last_picture, mv_table, 1<<14, mv_penalty);
  1312. dmin = simple_direct_qpel_qpel_motion_search(s, &mx, &my, dmin, xmin, ymin, xmax, ymax,
  1313. 0, 0, &s->last_picture, 0, 0, mv_penalty);
  1314. if(s->avctx->me_sub_cmp != s->avctx->mb_cmp && !s->me.skip)
  1315. dmin= simple_direct_qpel_qpel_get_mb_score(s, mx, my, 0, 0, &s->last_picture, mv_penalty);
  1316. }else{
  1317. dmin = simple_direct_hpel_epzs_motion_search(s, 0, &mx, &my, P, 0, 0, xmin, ymin, xmax, ymax,
  1318. &s->last_picture, mv_table, 1<<15, mv_penalty);
  1319. dmin = simple_direct_hpel_hpel_motion_search(s, &mx, &my, dmin, xmin, ymin, xmax, ymax,
  1320. 0, 0, &s->last_picture, 0, 0, mv_penalty);
  1321. if(s->avctx->me_sub_cmp != s->avctx->mb_cmp && !s->me.skip)
  1322. dmin= simple_direct_hpel_hpel_get_mb_score(s, mx, my, 0, 0, &s->last_picture, mv_penalty);
  1323. }
  1324. s->b_direct_mv_table[mot_xy][0]= mx;
  1325. s->b_direct_mv_table[mot_xy][1]= my;
  1326. return dmin;
  1327. }
  1328. void ff_estimate_b_frame_motion(MpegEncContext * s,
  1329. int mb_x, int mb_y)
  1330. {
  1331. const int penalty_factor= s->me.mb_penalty_factor;
  1332. int fmin, bmin, dmin, fbmin;
  1333. int type=0;
  1334. s->me.skip=0;
  1335. if (s->codec_id == CODEC_ID_MPEG4)
  1336. dmin= direct_search(s, mb_x, mb_y);
  1337. else
  1338. dmin= INT_MAX;
  1339. s->me.skip=0;
  1340. fmin= ff_estimate_motion_b(s, mb_x, mb_y, s->b_forw_mv_table, &s->last_picture, s->f_code) + 3*penalty_factor;
  1341. s->me.skip=0;
  1342. bmin= ff_estimate_motion_b(s, mb_x, mb_y, s->b_back_mv_table, &s->next_picture, s->b_code) + 2*penalty_factor;
  1343. //printf(" %d %d ", s->b_forw_mv_table[xy][0], s->b_forw_mv_table[xy][1]);
  1344. s->me.skip=0;
  1345. fbmin= bidir_refine(s, mb_x, mb_y) + penalty_factor;
  1346. //printf("%d %d %d %d\n", dmin, fmin, bmin, fbmin);
  1347. {
  1348. int score= fmin;
  1349. type = MB_TYPE_FORWARD;
  1350. if (dmin <= score){
  1351. score = dmin;
  1352. type = MB_TYPE_DIRECT;
  1353. }
  1354. if(bmin<score){
  1355. score=bmin;
  1356. type= MB_TYPE_BACKWARD;
  1357. }
  1358. if(fbmin<score){
  1359. score=fbmin;
  1360. type= MB_TYPE_BIDIR;
  1361. }
  1362. score= ((unsigned)(score*score + 128*256))>>16;
  1363. s->current_picture.mc_mb_var_sum += score;
  1364. s->current_picture.mc_mb_var[mb_y*s->mb_stride + mb_x] = score; //FIXME use SSE
  1365. }
  1366. if(s->avctx->mb_decision > FF_MB_DECISION_SIMPLE){
  1367. type= MB_TYPE_FORWARD | MB_TYPE_BACKWARD | MB_TYPE_BIDIR | MB_TYPE_DIRECT; //FIXME something smarter
  1368. if(dmin>256*256*16) type&= ~MB_TYPE_DIRECT; //dont try direct mode if its invalid for this MB
  1369. }
  1370. s->mb_type[mb_y*s->mb_stride + mb_x]= type;
  1371. }
  1372. /* find best f_code for ME which do unlimited searches */
  1373. int ff_get_best_fcode(MpegEncContext * s, int16_t (*mv_table)[2], int type)
  1374. {
  1375. if(s->me_method>=ME_EPZS){
  1376. int score[8];
  1377. int i, y;
  1378. uint8_t * fcode_tab= s->fcode_tab;
  1379. int best_fcode=-1;
  1380. int best_score=-10000000;
  1381. for(i=0; i<8; i++) score[i]= s->mb_num*(8-i);
  1382. for(y=0; y<s->mb_height; y++){
  1383. int x;
  1384. int xy= y*s->mb_stride;
  1385. for(x=0; x<s->mb_width; x++){
  1386. if(s->mb_type[xy] & type){
  1387. int fcode= FFMAX(fcode_tab[mv_table[xy][0] + MAX_MV],
  1388. fcode_tab[mv_table[xy][1] + MAX_MV]);
  1389. int j;
  1390. for(j=0; j<fcode && j<8; j++){
  1391. if(s->pict_type==B_TYPE || s->current_picture.mc_mb_var[xy] < s->current_picture.mb_var[xy])
  1392. score[j]-= 170;
  1393. }
  1394. }
  1395. xy++;
  1396. }
  1397. }
  1398. for(i=1; i<8; i++){
  1399. if(score[i] > best_score){
  1400. best_score= score[i];
  1401. best_fcode= i;
  1402. }
  1403. // printf("%d %d\n", i, score[i]);
  1404. }
  1405. // printf("fcode: %d type: %d\n", i, s->pict_type);
  1406. return best_fcode;
  1407. /* for(i=0; i<=MAX_FCODE; i++){
  1408. printf("%d ", mv_num[i]);
  1409. }
  1410. printf("\n");*/
  1411. }else{
  1412. return 1;
  1413. }
  1414. }
  1415. void ff_fix_long_p_mvs(MpegEncContext * s)
  1416. {
  1417. const int f_code= s->f_code;
  1418. int y, range;
  1419. assert(s->pict_type==P_TYPE);
  1420. range = (((s->out_format == FMT_MPEG1) ? 8 : 16) << f_code);
  1421. if(s->msmpeg4_version) range= 16;
  1422. if(s->avctx->me_range && range > s->avctx->me_range) range= s->avctx->me_range;
  1423. /* clip / convert to intra 16x16 type MVs */
  1424. for(y=0; y<s->mb_height; y++){
  1425. int x;
  1426. int xy= y*s->mb_stride;
  1427. for(x=0; x<s->mb_width; x++){
  1428. if(s->mb_type[xy]&MB_TYPE_INTER){
  1429. if( s->p_mv_table[xy][0] >=range || s->p_mv_table[xy][0] <-range
  1430. || s->p_mv_table[xy][1] >=range || s->p_mv_table[xy][1] <-range){
  1431. s->mb_type[xy] &= ~MB_TYPE_INTER;
  1432. s->mb_type[xy] |= MB_TYPE_INTRA;
  1433. s->current_picture.mb_type[xy]= MB_TYPE_INTRA;
  1434. s->p_mv_table[xy][0] = 0;
  1435. s->p_mv_table[xy][1] = 0;
  1436. }
  1437. }
  1438. xy++;
  1439. }
  1440. }
  1441. //printf("%d no:%d %d//\n", clip, noclip, f_code);
  1442. if(s->flags&CODEC_FLAG_4MV){
  1443. const int wrap= 2+ s->mb_width*2;
  1444. /* clip / convert to intra 8x8 type MVs */
  1445. for(y=0; y<s->mb_height; y++){
  1446. int xy= (y*2 + 1)*wrap + 1;
  1447. int i= y*s->mb_stride;
  1448. int x;
  1449. for(x=0; x<s->mb_width; x++){
  1450. if(s->mb_type[i]&MB_TYPE_INTER4V){
  1451. int block;
  1452. for(block=0; block<4; block++){
  1453. int off= (block& 1) + (block>>1)*wrap;
  1454. int mx= s->motion_val[ xy + off ][0];
  1455. int my= s->motion_val[ xy + off ][1];
  1456. if( mx >=range || mx <-range
  1457. || my >=range || my <-range){
  1458. s->mb_type[i] &= ~MB_TYPE_INTER4V;
  1459. s->mb_type[i] |= MB_TYPE_INTRA;
  1460. s->current_picture.mb_type[i]= MB_TYPE_INTRA;
  1461. }
  1462. }
  1463. }
  1464. xy+=2;
  1465. i++;
  1466. }
  1467. }
  1468. }
  1469. }
  1470. void ff_fix_long_b_mvs(MpegEncContext * s, int16_t (*mv_table)[2], int f_code, int type)
  1471. {
  1472. int y;
  1473. // RAL: 8 in MPEG-1, 16 in MPEG-4
  1474. int range = (((s->out_format == FMT_MPEG1) ? 8 : 16) << f_code);
  1475. if(s->avctx->me_range && range > s->avctx->me_range) range= s->avctx->me_range;
  1476. /* clip / convert to intra 16x16 type MVs */
  1477. for(y=0; y<s->mb_height; y++){
  1478. int x;
  1479. int xy= y*s->mb_stride;
  1480. for(x=0; x<s->mb_width; x++){
  1481. if (s->mb_type[xy] & type){ // RAL: "type" test added...
  1482. if( mv_table[xy][0] >=range || mv_table[xy][0] <-range
  1483. || mv_table[xy][1] >=range || mv_table[xy][1] <-range){
  1484. if(s->codec_id == CODEC_ID_MPEG1VIDEO && 0){
  1485. }else{
  1486. if (mv_table[xy][0] > range-1) mv_table[xy][0]= range-1;
  1487. else if(mv_table[xy][0] < -range ) mv_table[xy][0]= -range;
  1488. if (mv_table[xy][1] > range-1) mv_table[xy][1]= range-1;
  1489. else if(mv_table[xy][1] < -range ) mv_table[xy][1]= -range;
  1490. }
  1491. }
  1492. }
  1493. xy++;
  1494. }
  1495. }
  1496. }