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  1. /*
  2. * H.26L/H.264/AVC/JVT/14496-10/... encoder/decoder
  3. * Copyright (c) 2003 Michael Niedermayer <michaelni@gmx.at>
  4. *
  5. * This file is part of FFmpeg.
  6. *
  7. * FFmpeg 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 2.1 of the License, or (at your option) any later version.
  11. *
  12. * FFmpeg 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 FFmpeg; if not, write to the Free Software
  19. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  20. */
  21. /**
  22. * @file libavcodec/h264.c
  23. * H.264 / AVC / MPEG4 part10 codec.
  24. * @author Michael Niedermayer <michaelni@gmx.at>
  25. */
  26. #include "internal.h"
  27. #include "dsputil.h"
  28. #include "avcodec.h"
  29. #include "mpegvideo.h"
  30. #include "h264.h"
  31. #include "h264data.h"
  32. #include "h264_mvpred.h"
  33. #include "h264_parser.h"
  34. #include "golomb.h"
  35. #include "mathops.h"
  36. #include "rectangle.h"
  37. #include "vdpau_internal.h"
  38. #include "cabac.h"
  39. #if ARCH_X86
  40. #include "x86/h264_i386.h"
  41. #endif
  42. //#undef NDEBUG
  43. #include <assert.h>
  44. static void svq3_luma_dc_dequant_idct_c(DCTELEM *block, int qp);
  45. static void svq3_add_idct_c(uint8_t *dst, DCTELEM *block, int stride, int qp, int dc);
  46. static const uint8_t rem6[52]={
  47. 0, 1, 2, 3, 4, 5, 0, 1, 2, 3, 4, 5, 0, 1, 2, 3, 4, 5, 0, 1, 2, 3, 4, 5, 0, 1, 2, 3, 4, 5, 0, 1, 2, 3, 4, 5, 0, 1, 2, 3, 4, 5, 0, 1, 2, 3, 4, 5, 0, 1, 2, 3,
  48. };
  49. static const uint8_t div6[52]={
  50. 0, 0, 0, 0, 0, 0, 1, 1, 1, 1, 1, 1, 2, 2, 2, 2, 2, 2, 3, 3, 3, 3, 3, 3, 4, 4, 4, 4, 4, 4, 5, 5, 5, 5, 5, 5, 6, 6, 6, 6, 6, 6, 7, 7, 7, 7, 7, 7, 8, 8, 8, 8,
  51. };
  52. void ff_h264_write_back_intra_pred_mode(H264Context *h){
  53. const int mb_xy= h->mb_xy;
  54. h->intra4x4_pred_mode[mb_xy][0]= h->intra4x4_pred_mode_cache[7+8*1];
  55. h->intra4x4_pred_mode[mb_xy][1]= h->intra4x4_pred_mode_cache[7+8*2];
  56. h->intra4x4_pred_mode[mb_xy][2]= h->intra4x4_pred_mode_cache[7+8*3];
  57. h->intra4x4_pred_mode[mb_xy][3]= h->intra4x4_pred_mode_cache[7+8*4];
  58. h->intra4x4_pred_mode[mb_xy][4]= h->intra4x4_pred_mode_cache[4+8*4];
  59. h->intra4x4_pred_mode[mb_xy][5]= h->intra4x4_pred_mode_cache[5+8*4];
  60. h->intra4x4_pred_mode[mb_xy][6]= h->intra4x4_pred_mode_cache[6+8*4];
  61. }
  62. /**
  63. * checks if the top & left blocks are available if needed & changes the dc mode so it only uses the available blocks.
  64. */
  65. int ff_h264_check_intra4x4_pred_mode(H264Context *h){
  66. MpegEncContext * const s = &h->s;
  67. static const int8_t top [12]= {-1, 0,LEFT_DC_PRED,-1,-1,-1,-1,-1, 0};
  68. static const int8_t left[12]= { 0,-1, TOP_DC_PRED, 0,-1,-1,-1, 0,-1,DC_128_PRED};
  69. int i;
  70. if(!(h->top_samples_available&0x8000)){
  71. for(i=0; i<4; i++){
  72. int status= top[ h->intra4x4_pred_mode_cache[scan8[0] + i] ];
  73. if(status<0){
  74. av_log(h->s.avctx, AV_LOG_ERROR, "top block unavailable for requested intra4x4 mode %d at %d %d\n", status, s->mb_x, s->mb_y);
  75. return -1;
  76. } else if(status){
  77. h->intra4x4_pred_mode_cache[scan8[0] + i]= status;
  78. }
  79. }
  80. }
  81. if((h->left_samples_available&0x8888)!=0x8888){
  82. static const int mask[4]={0x8000,0x2000,0x80,0x20};
  83. for(i=0; i<4; i++){
  84. if(!(h->left_samples_available&mask[i])){
  85. int status= left[ h->intra4x4_pred_mode_cache[scan8[0] + 8*i] ];
  86. if(status<0){
  87. av_log(h->s.avctx, AV_LOG_ERROR, "left block unavailable for requested intra4x4 mode %d at %d %d\n", status, s->mb_x, s->mb_y);
  88. return -1;
  89. } else if(status){
  90. h->intra4x4_pred_mode_cache[scan8[0] + 8*i]= status;
  91. }
  92. }
  93. }
  94. }
  95. return 0;
  96. } //FIXME cleanup like ff_h264_check_intra_pred_mode
  97. /**
  98. * checks if the top & left blocks are available if needed & changes the dc mode so it only uses the available blocks.
  99. */
  100. int ff_h264_check_intra_pred_mode(H264Context *h, int mode){
  101. MpegEncContext * const s = &h->s;
  102. static const int8_t top [7]= {LEFT_DC_PRED8x8, 1,-1,-1};
  103. static const int8_t left[7]= { TOP_DC_PRED8x8,-1, 2,-1,DC_128_PRED8x8};
  104. if(mode > 6U) {
  105. av_log(h->s.avctx, AV_LOG_ERROR, "out of range intra chroma pred mode at %d %d\n", s->mb_x, s->mb_y);
  106. return -1;
  107. }
  108. if(!(h->top_samples_available&0x8000)){
  109. mode= top[ mode ];
  110. if(mode<0){
  111. av_log(h->s.avctx, AV_LOG_ERROR, "top block unavailable for requested intra mode at %d %d\n", s->mb_x, s->mb_y);
  112. return -1;
  113. }
  114. }
  115. if((h->left_samples_available&0x8080) != 0x8080){
  116. mode= left[ mode ];
  117. if(h->left_samples_available&0x8080){ //mad cow disease mode, aka MBAFF + constrained_intra_pred
  118. mode= ALZHEIMER_DC_L0T_PRED8x8 + (!(h->left_samples_available&0x8000)) + 2*(mode == DC_128_PRED8x8);
  119. }
  120. if(mode<0){
  121. av_log(h->s.avctx, AV_LOG_ERROR, "left block unavailable for requested intra mode at %d %d\n", s->mb_x, s->mb_y);
  122. return -1;
  123. }
  124. }
  125. return mode;
  126. }
  127. const uint8_t *ff_h264_decode_nal(H264Context *h, const uint8_t *src, int *dst_length, int *consumed, int length){
  128. int i, si, di;
  129. uint8_t *dst;
  130. int bufidx;
  131. // src[0]&0x80; //forbidden bit
  132. h->nal_ref_idc= src[0]>>5;
  133. h->nal_unit_type= src[0]&0x1F;
  134. src++; length--;
  135. #if 0
  136. for(i=0; i<length; i++)
  137. printf("%2X ", src[i]);
  138. #endif
  139. #if HAVE_FAST_UNALIGNED
  140. # if HAVE_FAST_64BIT
  141. # define RS 7
  142. for(i=0; i+1<length; i+=9){
  143. if(!((~*(const uint64_t*)(src+i) & (*(const uint64_t*)(src+i) - 0x0100010001000101ULL)) & 0x8000800080008080ULL))
  144. # else
  145. # define RS 3
  146. for(i=0; i+1<length; i+=5){
  147. if(!((~*(const uint32_t*)(src+i) & (*(const uint32_t*)(src+i) - 0x01000101U)) & 0x80008080U))
  148. # endif
  149. continue;
  150. if(i>0 && !src[i]) i--;
  151. while(src[i]) i++;
  152. #else
  153. # define RS 0
  154. for(i=0; i+1<length; i+=2){
  155. if(src[i]) continue;
  156. if(i>0 && src[i-1]==0) i--;
  157. #endif
  158. if(i+2<length && src[i+1]==0 && src[i+2]<=3){
  159. if(src[i+2]!=3){
  160. /* startcode, so we must be past the end */
  161. length=i;
  162. }
  163. break;
  164. }
  165. i-= RS;
  166. }
  167. if(i>=length-1){ //no escaped 0
  168. *dst_length= length;
  169. *consumed= length+1; //+1 for the header
  170. return src;
  171. }
  172. bufidx = h->nal_unit_type == NAL_DPC ? 1 : 0; // use second escape buffer for inter data
  173. av_fast_malloc(&h->rbsp_buffer[bufidx], &h->rbsp_buffer_size[bufidx], length+FF_INPUT_BUFFER_PADDING_SIZE);
  174. dst= h->rbsp_buffer[bufidx];
  175. if (dst == NULL){
  176. return NULL;
  177. }
  178. //printf("decoding esc\n");
  179. memcpy(dst, src, i);
  180. si=di=i;
  181. while(si+2<length){
  182. //remove escapes (very rare 1:2^22)
  183. if(src[si+2]>3){
  184. dst[di++]= src[si++];
  185. dst[di++]= src[si++];
  186. }else if(src[si]==0 && src[si+1]==0){
  187. if(src[si+2]==3){ //escape
  188. dst[di++]= 0;
  189. dst[di++]= 0;
  190. si+=3;
  191. continue;
  192. }else //next start code
  193. goto nsc;
  194. }
  195. dst[di++]= src[si++];
  196. }
  197. while(si<length)
  198. dst[di++]= src[si++];
  199. nsc:
  200. memset(dst+di, 0, FF_INPUT_BUFFER_PADDING_SIZE);
  201. *dst_length= di;
  202. *consumed= si + 1;//+1 for the header
  203. //FIXME store exact number of bits in the getbitcontext (it is needed for decoding)
  204. return dst;
  205. }
  206. int ff_h264_decode_rbsp_trailing(H264Context *h, const uint8_t *src){
  207. int v= *src;
  208. int r;
  209. tprintf(h->s.avctx, "rbsp trailing %X\n", v);
  210. for(r=1; r<9; r++){
  211. if(v&1) return r;
  212. v>>=1;
  213. }
  214. return 0;
  215. }
  216. /**
  217. * IDCT transforms the 16 dc values and dequantizes them.
  218. * @param qp quantization parameter
  219. */
  220. static void h264_luma_dc_dequant_idct_c(DCTELEM *block, int qp, int qmul){
  221. #define stride 16
  222. int i;
  223. int temp[16]; //FIXME check if this is a good idea
  224. static const int x_offset[4]={0, 1*stride, 4* stride, 5*stride};
  225. static const int y_offset[4]={0, 2*stride, 8* stride, 10*stride};
  226. //memset(block, 64, 2*256);
  227. //return;
  228. for(i=0; i<4; i++){
  229. const int offset= y_offset[i];
  230. const int z0= block[offset+stride*0] + block[offset+stride*4];
  231. const int z1= block[offset+stride*0] - block[offset+stride*4];
  232. const int z2= block[offset+stride*1] - block[offset+stride*5];
  233. const int z3= block[offset+stride*1] + block[offset+stride*5];
  234. temp[4*i+0]= z0+z3;
  235. temp[4*i+1]= z1+z2;
  236. temp[4*i+2]= z1-z2;
  237. temp[4*i+3]= z0-z3;
  238. }
  239. for(i=0; i<4; i++){
  240. const int offset= x_offset[i];
  241. const int z0= temp[4*0+i] + temp[4*2+i];
  242. const int z1= temp[4*0+i] - temp[4*2+i];
  243. const int z2= temp[4*1+i] - temp[4*3+i];
  244. const int z3= temp[4*1+i] + temp[4*3+i];
  245. block[stride*0 +offset]= ((((z0 + z3)*qmul + 128 ) >> 8)); //FIXME think about merging this into decode_residual
  246. block[stride*2 +offset]= ((((z1 + z2)*qmul + 128 ) >> 8));
  247. block[stride*8 +offset]= ((((z1 - z2)*qmul + 128 ) >> 8));
  248. block[stride*10+offset]= ((((z0 - z3)*qmul + 128 ) >> 8));
  249. }
  250. }
  251. #if 0
  252. /**
  253. * DCT transforms the 16 dc values.
  254. * @param qp quantization parameter ??? FIXME
  255. */
  256. static void h264_luma_dc_dct_c(DCTELEM *block/*, int qp*/){
  257. // const int qmul= dequant_coeff[qp][0];
  258. int i;
  259. int temp[16]; //FIXME check if this is a good idea
  260. static const int x_offset[4]={0, 1*stride, 4* stride, 5*stride};
  261. static const int y_offset[4]={0, 2*stride, 8* stride, 10*stride};
  262. for(i=0; i<4; i++){
  263. const int offset= y_offset[i];
  264. const int z0= block[offset+stride*0] + block[offset+stride*4];
  265. const int z1= block[offset+stride*0] - block[offset+stride*4];
  266. const int z2= block[offset+stride*1] - block[offset+stride*5];
  267. const int z3= block[offset+stride*1] + block[offset+stride*5];
  268. temp[4*i+0]= z0+z3;
  269. temp[4*i+1]= z1+z2;
  270. temp[4*i+2]= z1-z2;
  271. temp[4*i+3]= z0-z3;
  272. }
  273. for(i=0; i<4; i++){
  274. const int offset= x_offset[i];
  275. const int z0= temp[4*0+i] + temp[4*2+i];
  276. const int z1= temp[4*0+i] - temp[4*2+i];
  277. const int z2= temp[4*1+i] - temp[4*3+i];
  278. const int z3= temp[4*1+i] + temp[4*3+i];
  279. block[stride*0 +offset]= (z0 + z3)>>1;
  280. block[stride*2 +offset]= (z1 + z2)>>1;
  281. block[stride*8 +offset]= (z1 - z2)>>1;
  282. block[stride*10+offset]= (z0 - z3)>>1;
  283. }
  284. }
  285. #endif
  286. #undef xStride
  287. #undef stride
  288. static void chroma_dc_dequant_idct_c(DCTELEM *block, int qp, int qmul){
  289. const int stride= 16*2;
  290. const int xStride= 16;
  291. int a,b,c,d,e;
  292. a= block[stride*0 + xStride*0];
  293. b= block[stride*0 + xStride*1];
  294. c= block[stride*1 + xStride*0];
  295. d= block[stride*1 + xStride*1];
  296. e= a-b;
  297. a= a+b;
  298. b= c-d;
  299. c= c+d;
  300. block[stride*0 + xStride*0]= ((a+c)*qmul) >> 7;
  301. block[stride*0 + xStride*1]= ((e+b)*qmul) >> 7;
  302. block[stride*1 + xStride*0]= ((a-c)*qmul) >> 7;
  303. block[stride*1 + xStride*1]= ((e-b)*qmul) >> 7;
  304. }
  305. #if 0
  306. static void chroma_dc_dct_c(DCTELEM *block){
  307. const int stride= 16*2;
  308. const int xStride= 16;
  309. int a,b,c,d,e;
  310. a= block[stride*0 + xStride*0];
  311. b= block[stride*0 + xStride*1];
  312. c= block[stride*1 + xStride*0];
  313. d= block[stride*1 + xStride*1];
  314. e= a-b;
  315. a= a+b;
  316. b= c-d;
  317. c= c+d;
  318. block[stride*0 + xStride*0]= (a+c);
  319. block[stride*0 + xStride*1]= (e+b);
  320. block[stride*1 + xStride*0]= (a-c);
  321. block[stride*1 + xStride*1]= (e-b);
  322. }
  323. #endif
  324. static inline void mc_dir_part(H264Context *h, Picture *pic, int n, int square, int chroma_height, int delta, int list,
  325. uint8_t *dest_y, uint8_t *dest_cb, uint8_t *dest_cr,
  326. int src_x_offset, int src_y_offset,
  327. qpel_mc_func *qpix_op, h264_chroma_mc_func chroma_op){
  328. MpegEncContext * const s = &h->s;
  329. const int mx= h->mv_cache[list][ scan8[n] ][0] + src_x_offset*8;
  330. int my= h->mv_cache[list][ scan8[n] ][1] + src_y_offset*8;
  331. const int luma_xy= (mx&3) + ((my&3)<<2);
  332. uint8_t * src_y = pic->data[0] + (mx>>2) + (my>>2)*h->mb_linesize;
  333. uint8_t * src_cb, * src_cr;
  334. int extra_width= h->emu_edge_width;
  335. int extra_height= h->emu_edge_height;
  336. int emu=0;
  337. const int full_mx= mx>>2;
  338. const int full_my= my>>2;
  339. const int pic_width = 16*s->mb_width;
  340. const int pic_height = 16*s->mb_height >> MB_FIELD;
  341. if(mx&7) extra_width -= 3;
  342. if(my&7) extra_height -= 3;
  343. if( full_mx < 0-extra_width
  344. || full_my < 0-extra_height
  345. || full_mx + 16/*FIXME*/ > pic_width + extra_width
  346. || full_my + 16/*FIXME*/ > pic_height + extra_height){
  347. ff_emulated_edge_mc(s->edge_emu_buffer, src_y - 2 - 2*h->mb_linesize, h->mb_linesize, 16+5, 16+5/*FIXME*/, full_mx-2, full_my-2, pic_width, pic_height);
  348. src_y= s->edge_emu_buffer + 2 + 2*h->mb_linesize;
  349. emu=1;
  350. }
  351. qpix_op[luma_xy](dest_y, src_y, h->mb_linesize); //FIXME try variable height perhaps?
  352. if(!square){
  353. qpix_op[luma_xy](dest_y + delta, src_y + delta, h->mb_linesize);
  354. }
  355. if(CONFIG_GRAY && s->flags&CODEC_FLAG_GRAY) return;
  356. if(MB_FIELD){
  357. // chroma offset when predicting from a field of opposite parity
  358. my += 2 * ((s->mb_y & 1) - (pic->reference - 1));
  359. emu |= (my>>3) < 0 || (my>>3) + 8 >= (pic_height>>1);
  360. }
  361. src_cb= pic->data[1] + (mx>>3) + (my>>3)*h->mb_uvlinesize;
  362. src_cr= pic->data[2] + (mx>>3) + (my>>3)*h->mb_uvlinesize;
  363. if(emu){
  364. ff_emulated_edge_mc(s->edge_emu_buffer, src_cb, h->mb_uvlinesize, 9, 9/*FIXME*/, (mx>>3), (my>>3), pic_width>>1, pic_height>>1);
  365. src_cb= s->edge_emu_buffer;
  366. }
  367. chroma_op(dest_cb, src_cb, h->mb_uvlinesize, chroma_height, mx&7, my&7);
  368. if(emu){
  369. ff_emulated_edge_mc(s->edge_emu_buffer, src_cr, h->mb_uvlinesize, 9, 9/*FIXME*/, (mx>>3), (my>>3), pic_width>>1, pic_height>>1);
  370. src_cr= s->edge_emu_buffer;
  371. }
  372. chroma_op(dest_cr, src_cr, h->mb_uvlinesize, chroma_height, mx&7, my&7);
  373. }
  374. static inline void mc_part_std(H264Context *h, int n, int square, int chroma_height, int delta,
  375. uint8_t *dest_y, uint8_t *dest_cb, uint8_t *dest_cr,
  376. int x_offset, int y_offset,
  377. qpel_mc_func *qpix_put, h264_chroma_mc_func chroma_put,
  378. qpel_mc_func *qpix_avg, h264_chroma_mc_func chroma_avg,
  379. int list0, int list1){
  380. MpegEncContext * const s = &h->s;
  381. qpel_mc_func *qpix_op= qpix_put;
  382. h264_chroma_mc_func chroma_op= chroma_put;
  383. dest_y += 2*x_offset + 2*y_offset*h-> mb_linesize;
  384. dest_cb += x_offset + y_offset*h->mb_uvlinesize;
  385. dest_cr += x_offset + y_offset*h->mb_uvlinesize;
  386. x_offset += 8*s->mb_x;
  387. y_offset += 8*(s->mb_y >> MB_FIELD);
  388. if(list0){
  389. Picture *ref= &h->ref_list[0][ h->ref_cache[0][ scan8[n] ] ];
  390. mc_dir_part(h, ref, n, square, chroma_height, delta, 0,
  391. dest_y, dest_cb, dest_cr, x_offset, y_offset,
  392. qpix_op, chroma_op);
  393. qpix_op= qpix_avg;
  394. chroma_op= chroma_avg;
  395. }
  396. if(list1){
  397. Picture *ref= &h->ref_list[1][ h->ref_cache[1][ scan8[n] ] ];
  398. mc_dir_part(h, ref, n, square, chroma_height, delta, 1,
  399. dest_y, dest_cb, dest_cr, x_offset, y_offset,
  400. qpix_op, chroma_op);
  401. }
  402. }
  403. static inline void mc_part_weighted(H264Context *h, int n, int square, int chroma_height, int delta,
  404. uint8_t *dest_y, uint8_t *dest_cb, uint8_t *dest_cr,
  405. int x_offset, int y_offset,
  406. qpel_mc_func *qpix_put, h264_chroma_mc_func chroma_put,
  407. h264_weight_func luma_weight_op, h264_weight_func chroma_weight_op,
  408. h264_biweight_func luma_weight_avg, h264_biweight_func chroma_weight_avg,
  409. int list0, int list1){
  410. MpegEncContext * const s = &h->s;
  411. dest_y += 2*x_offset + 2*y_offset*h-> mb_linesize;
  412. dest_cb += x_offset + y_offset*h->mb_uvlinesize;
  413. dest_cr += x_offset + y_offset*h->mb_uvlinesize;
  414. x_offset += 8*s->mb_x;
  415. y_offset += 8*(s->mb_y >> MB_FIELD);
  416. if(list0 && list1){
  417. /* don't optimize for luma-only case, since B-frames usually
  418. * use implicit weights => chroma too. */
  419. uint8_t *tmp_cb = s->obmc_scratchpad;
  420. uint8_t *tmp_cr = s->obmc_scratchpad + 8;
  421. uint8_t *tmp_y = s->obmc_scratchpad + 8*h->mb_uvlinesize;
  422. int refn0 = h->ref_cache[0][ scan8[n] ];
  423. int refn1 = h->ref_cache[1][ scan8[n] ];
  424. mc_dir_part(h, &h->ref_list[0][refn0], n, square, chroma_height, delta, 0,
  425. dest_y, dest_cb, dest_cr,
  426. x_offset, y_offset, qpix_put, chroma_put);
  427. mc_dir_part(h, &h->ref_list[1][refn1], n, square, chroma_height, delta, 1,
  428. tmp_y, tmp_cb, tmp_cr,
  429. x_offset, y_offset, qpix_put, chroma_put);
  430. if(h->use_weight == 2){
  431. int weight0 = h->implicit_weight[refn0][refn1];
  432. int weight1 = 64 - weight0;
  433. luma_weight_avg( dest_y, tmp_y, h-> mb_linesize, 5, weight0, weight1, 0);
  434. chroma_weight_avg(dest_cb, tmp_cb, h->mb_uvlinesize, 5, weight0, weight1, 0);
  435. chroma_weight_avg(dest_cr, tmp_cr, h->mb_uvlinesize, 5, weight0, weight1, 0);
  436. }else{
  437. luma_weight_avg(dest_y, tmp_y, h->mb_linesize, h->luma_log2_weight_denom,
  438. h->luma_weight[0][refn0], h->luma_weight[1][refn1],
  439. h->luma_offset[0][refn0] + h->luma_offset[1][refn1]);
  440. chroma_weight_avg(dest_cb, tmp_cb, h->mb_uvlinesize, h->chroma_log2_weight_denom,
  441. h->chroma_weight[0][refn0][0], h->chroma_weight[1][refn1][0],
  442. h->chroma_offset[0][refn0][0] + h->chroma_offset[1][refn1][0]);
  443. chroma_weight_avg(dest_cr, tmp_cr, h->mb_uvlinesize, h->chroma_log2_weight_denom,
  444. h->chroma_weight[0][refn0][1], h->chroma_weight[1][refn1][1],
  445. h->chroma_offset[0][refn0][1] + h->chroma_offset[1][refn1][1]);
  446. }
  447. }else{
  448. int list = list1 ? 1 : 0;
  449. int refn = h->ref_cache[list][ scan8[n] ];
  450. Picture *ref= &h->ref_list[list][refn];
  451. mc_dir_part(h, ref, n, square, chroma_height, delta, list,
  452. dest_y, dest_cb, dest_cr, x_offset, y_offset,
  453. qpix_put, chroma_put);
  454. luma_weight_op(dest_y, h->mb_linesize, h->luma_log2_weight_denom,
  455. h->luma_weight[list][refn], h->luma_offset[list][refn]);
  456. if(h->use_weight_chroma){
  457. chroma_weight_op(dest_cb, h->mb_uvlinesize, h->chroma_log2_weight_denom,
  458. h->chroma_weight[list][refn][0], h->chroma_offset[list][refn][0]);
  459. chroma_weight_op(dest_cr, h->mb_uvlinesize, h->chroma_log2_weight_denom,
  460. h->chroma_weight[list][refn][1], h->chroma_offset[list][refn][1]);
  461. }
  462. }
  463. }
  464. static inline void mc_part(H264Context *h, int n, int square, int chroma_height, int delta,
  465. uint8_t *dest_y, uint8_t *dest_cb, uint8_t *dest_cr,
  466. int x_offset, int y_offset,
  467. qpel_mc_func *qpix_put, h264_chroma_mc_func chroma_put,
  468. qpel_mc_func *qpix_avg, h264_chroma_mc_func chroma_avg,
  469. h264_weight_func *weight_op, h264_biweight_func *weight_avg,
  470. int list0, int list1){
  471. if((h->use_weight==2 && list0 && list1
  472. && (h->implicit_weight[ h->ref_cache[0][scan8[n]] ][ h->ref_cache[1][scan8[n]] ] != 32))
  473. || h->use_weight==1)
  474. mc_part_weighted(h, n, square, chroma_height, delta, dest_y, dest_cb, dest_cr,
  475. x_offset, y_offset, qpix_put, chroma_put,
  476. weight_op[0], weight_op[3], weight_avg[0], weight_avg[3], list0, list1);
  477. else
  478. mc_part_std(h, n, square, chroma_height, delta, dest_y, dest_cb, dest_cr,
  479. x_offset, y_offset, qpix_put, chroma_put, qpix_avg, chroma_avg, list0, list1);
  480. }
  481. static inline void prefetch_motion(H264Context *h, int list){
  482. /* fetch pixels for estimated mv 4 macroblocks ahead
  483. * optimized for 64byte cache lines */
  484. MpegEncContext * const s = &h->s;
  485. const int refn = h->ref_cache[list][scan8[0]];
  486. if(refn >= 0){
  487. const int mx= (h->mv_cache[list][scan8[0]][0]>>2) + 16*s->mb_x + 8;
  488. const int my= (h->mv_cache[list][scan8[0]][1]>>2) + 16*s->mb_y;
  489. uint8_t **src= h->ref_list[list][refn].data;
  490. int off= mx + (my + (s->mb_x&3)*4)*h->mb_linesize + 64;
  491. s->dsp.prefetch(src[0]+off, s->linesize, 4);
  492. off= (mx>>1) + ((my>>1) + (s->mb_x&7))*s->uvlinesize + 64;
  493. s->dsp.prefetch(src[1]+off, src[2]-src[1], 2);
  494. }
  495. }
  496. static void hl_motion(H264Context *h, uint8_t *dest_y, uint8_t *dest_cb, uint8_t *dest_cr,
  497. qpel_mc_func (*qpix_put)[16], h264_chroma_mc_func (*chroma_put),
  498. qpel_mc_func (*qpix_avg)[16], h264_chroma_mc_func (*chroma_avg),
  499. h264_weight_func *weight_op, h264_biweight_func *weight_avg){
  500. MpegEncContext * const s = &h->s;
  501. const int mb_xy= h->mb_xy;
  502. const int mb_type= s->current_picture.mb_type[mb_xy];
  503. assert(IS_INTER(mb_type));
  504. prefetch_motion(h, 0);
  505. if(IS_16X16(mb_type)){
  506. mc_part(h, 0, 1, 8, 0, dest_y, dest_cb, dest_cr, 0, 0,
  507. qpix_put[0], chroma_put[0], qpix_avg[0], chroma_avg[0],
  508. &weight_op[0], &weight_avg[0],
  509. IS_DIR(mb_type, 0, 0), IS_DIR(mb_type, 0, 1));
  510. }else if(IS_16X8(mb_type)){
  511. mc_part(h, 0, 0, 4, 8, dest_y, dest_cb, dest_cr, 0, 0,
  512. qpix_put[1], chroma_put[0], qpix_avg[1], chroma_avg[0],
  513. &weight_op[1], &weight_avg[1],
  514. IS_DIR(mb_type, 0, 0), IS_DIR(mb_type, 0, 1));
  515. mc_part(h, 8, 0, 4, 8, dest_y, dest_cb, dest_cr, 0, 4,
  516. qpix_put[1], chroma_put[0], qpix_avg[1], chroma_avg[0],
  517. &weight_op[1], &weight_avg[1],
  518. IS_DIR(mb_type, 1, 0), IS_DIR(mb_type, 1, 1));
  519. }else if(IS_8X16(mb_type)){
  520. mc_part(h, 0, 0, 8, 8*h->mb_linesize, dest_y, dest_cb, dest_cr, 0, 0,
  521. qpix_put[1], chroma_put[1], qpix_avg[1], chroma_avg[1],
  522. &weight_op[2], &weight_avg[2],
  523. IS_DIR(mb_type, 0, 0), IS_DIR(mb_type, 0, 1));
  524. mc_part(h, 4, 0, 8, 8*h->mb_linesize, dest_y, dest_cb, dest_cr, 4, 0,
  525. qpix_put[1], chroma_put[1], qpix_avg[1], chroma_avg[1],
  526. &weight_op[2], &weight_avg[2],
  527. IS_DIR(mb_type, 1, 0), IS_DIR(mb_type, 1, 1));
  528. }else{
  529. int i;
  530. assert(IS_8X8(mb_type));
  531. for(i=0; i<4; i++){
  532. const int sub_mb_type= h->sub_mb_type[i];
  533. const int n= 4*i;
  534. int x_offset= (i&1)<<2;
  535. int y_offset= (i&2)<<1;
  536. if(IS_SUB_8X8(sub_mb_type)){
  537. mc_part(h, n, 1, 4, 0, dest_y, dest_cb, dest_cr, x_offset, y_offset,
  538. qpix_put[1], chroma_put[1], qpix_avg[1], chroma_avg[1],
  539. &weight_op[3], &weight_avg[3],
  540. IS_DIR(sub_mb_type, 0, 0), IS_DIR(sub_mb_type, 0, 1));
  541. }else if(IS_SUB_8X4(sub_mb_type)){
  542. mc_part(h, n , 0, 2, 4, dest_y, dest_cb, dest_cr, x_offset, y_offset,
  543. qpix_put[2], chroma_put[1], qpix_avg[2], chroma_avg[1],
  544. &weight_op[4], &weight_avg[4],
  545. IS_DIR(sub_mb_type, 0, 0), IS_DIR(sub_mb_type, 0, 1));
  546. mc_part(h, n+2, 0, 2, 4, dest_y, dest_cb, dest_cr, x_offset, y_offset+2,
  547. qpix_put[2], chroma_put[1], qpix_avg[2], chroma_avg[1],
  548. &weight_op[4], &weight_avg[4],
  549. IS_DIR(sub_mb_type, 0, 0), IS_DIR(sub_mb_type, 0, 1));
  550. }else if(IS_SUB_4X8(sub_mb_type)){
  551. mc_part(h, n , 0, 4, 4*h->mb_linesize, dest_y, dest_cb, dest_cr, x_offset, y_offset,
  552. qpix_put[2], chroma_put[2], qpix_avg[2], chroma_avg[2],
  553. &weight_op[5], &weight_avg[5],
  554. IS_DIR(sub_mb_type, 0, 0), IS_DIR(sub_mb_type, 0, 1));
  555. mc_part(h, n+1, 0, 4, 4*h->mb_linesize, dest_y, dest_cb, dest_cr, x_offset+2, y_offset,
  556. qpix_put[2], chroma_put[2], qpix_avg[2], chroma_avg[2],
  557. &weight_op[5], &weight_avg[5],
  558. IS_DIR(sub_mb_type, 0, 0), IS_DIR(sub_mb_type, 0, 1));
  559. }else{
  560. int j;
  561. assert(IS_SUB_4X4(sub_mb_type));
  562. for(j=0; j<4; j++){
  563. int sub_x_offset= x_offset + 2*(j&1);
  564. int sub_y_offset= y_offset + (j&2);
  565. mc_part(h, n+j, 1, 2, 0, dest_y, dest_cb, dest_cr, sub_x_offset, sub_y_offset,
  566. qpix_put[2], chroma_put[2], qpix_avg[2], chroma_avg[2],
  567. &weight_op[6], &weight_avg[6],
  568. IS_DIR(sub_mb_type, 0, 0), IS_DIR(sub_mb_type, 0, 1));
  569. }
  570. }
  571. }
  572. }
  573. prefetch_motion(h, 1);
  574. }
  575. static void free_tables(H264Context *h){
  576. int i;
  577. H264Context *hx;
  578. av_freep(&h->intra4x4_pred_mode);
  579. av_freep(&h->chroma_pred_mode_table);
  580. av_freep(&h->cbp_table);
  581. av_freep(&h->mvd_table[0]);
  582. av_freep(&h->mvd_table[1]);
  583. av_freep(&h->direct_table);
  584. av_freep(&h->non_zero_count);
  585. av_freep(&h->slice_table_base);
  586. h->slice_table= NULL;
  587. av_freep(&h->list_counts);
  588. av_freep(&h->mb2b_xy);
  589. av_freep(&h->mb2b8_xy);
  590. for(i = 0; i < MAX_THREADS; i++) {
  591. hx = h->thread_context[i];
  592. if(!hx) continue;
  593. av_freep(&hx->top_borders[1]);
  594. av_freep(&hx->top_borders[0]);
  595. av_freep(&hx->s.obmc_scratchpad);
  596. av_freep(&hx->rbsp_buffer[1]);
  597. av_freep(&hx->rbsp_buffer[0]);
  598. hx->rbsp_buffer_size[0] = 0;
  599. hx->rbsp_buffer_size[1] = 0;
  600. if (i) av_freep(&h->thread_context[i]);
  601. }
  602. }
  603. static void init_dequant8_coeff_table(H264Context *h){
  604. int i,q,x;
  605. const int transpose = (h->s.dsp.h264_idct8_add != ff_h264_idct8_add_c); //FIXME ugly
  606. h->dequant8_coeff[0] = h->dequant8_buffer[0];
  607. h->dequant8_coeff[1] = h->dequant8_buffer[1];
  608. for(i=0; i<2; i++ ){
  609. if(i && !memcmp(h->pps.scaling_matrix8[0], h->pps.scaling_matrix8[1], 64*sizeof(uint8_t))){
  610. h->dequant8_coeff[1] = h->dequant8_buffer[0];
  611. break;
  612. }
  613. for(q=0; q<52; q++){
  614. int shift = div6[q];
  615. int idx = rem6[q];
  616. for(x=0; x<64; x++)
  617. h->dequant8_coeff[i][q][transpose ? (x>>3)|((x&7)<<3) : x] =
  618. ((uint32_t)dequant8_coeff_init[idx][ dequant8_coeff_init_scan[((x>>1)&12) | (x&3)] ] *
  619. h->pps.scaling_matrix8[i][x]) << shift;
  620. }
  621. }
  622. }
  623. static void init_dequant4_coeff_table(H264Context *h){
  624. int i,j,q,x;
  625. const int transpose = (h->s.dsp.h264_idct_add != ff_h264_idct_add_c); //FIXME ugly
  626. for(i=0; i<6; i++ ){
  627. h->dequant4_coeff[i] = h->dequant4_buffer[i];
  628. for(j=0; j<i; j++){
  629. if(!memcmp(h->pps.scaling_matrix4[j], h->pps.scaling_matrix4[i], 16*sizeof(uint8_t))){
  630. h->dequant4_coeff[i] = h->dequant4_buffer[j];
  631. break;
  632. }
  633. }
  634. if(j<i)
  635. continue;
  636. for(q=0; q<52; q++){
  637. int shift = div6[q] + 2;
  638. int idx = rem6[q];
  639. for(x=0; x<16; x++)
  640. h->dequant4_coeff[i][q][transpose ? (x>>2)|((x<<2)&0xF) : x] =
  641. ((uint32_t)dequant4_coeff_init[idx][(x&1) + ((x>>2)&1)] *
  642. h->pps.scaling_matrix4[i][x]) << shift;
  643. }
  644. }
  645. }
  646. static void init_dequant_tables(H264Context *h){
  647. int i,x;
  648. init_dequant4_coeff_table(h);
  649. if(h->pps.transform_8x8_mode)
  650. init_dequant8_coeff_table(h);
  651. if(h->sps.transform_bypass){
  652. for(i=0; i<6; i++)
  653. for(x=0; x<16; x++)
  654. h->dequant4_coeff[i][0][x] = 1<<6;
  655. if(h->pps.transform_8x8_mode)
  656. for(i=0; i<2; i++)
  657. for(x=0; x<64; x++)
  658. h->dequant8_coeff[i][0][x] = 1<<6;
  659. }
  660. }
  661. int ff_h264_alloc_tables(H264Context *h){
  662. MpegEncContext * const s = &h->s;
  663. const int big_mb_num= s->mb_stride * (s->mb_height+1);
  664. int x,y;
  665. FF_ALLOCZ_OR_GOTO(h->s.avctx, h->intra4x4_pred_mode, big_mb_num * 8 * sizeof(uint8_t), fail)
  666. FF_ALLOCZ_OR_GOTO(h->s.avctx, h->non_zero_count , big_mb_num * 32 * sizeof(uint8_t), fail)
  667. FF_ALLOCZ_OR_GOTO(h->s.avctx, h->slice_table_base , (big_mb_num+s->mb_stride) * sizeof(*h->slice_table_base), fail)
  668. FF_ALLOCZ_OR_GOTO(h->s.avctx, h->cbp_table, big_mb_num * sizeof(uint16_t), fail)
  669. FF_ALLOCZ_OR_GOTO(h->s.avctx, h->chroma_pred_mode_table, big_mb_num * sizeof(uint8_t), fail)
  670. FF_ALLOCZ_OR_GOTO(h->s.avctx, h->mvd_table[0], 32*big_mb_num * sizeof(uint16_t), fail);
  671. FF_ALLOCZ_OR_GOTO(h->s.avctx, h->mvd_table[1], 32*big_mb_num * sizeof(uint16_t), fail);
  672. FF_ALLOCZ_OR_GOTO(h->s.avctx, h->direct_table, 32*big_mb_num * sizeof(uint8_t) , fail);
  673. FF_ALLOCZ_OR_GOTO(h->s.avctx, h->list_counts, big_mb_num * sizeof(uint8_t), fail)
  674. memset(h->slice_table_base, -1, (big_mb_num+s->mb_stride) * sizeof(*h->slice_table_base));
  675. h->slice_table= h->slice_table_base + s->mb_stride*2 + 1;
  676. FF_ALLOCZ_OR_GOTO(h->s.avctx, h->mb2b_xy , big_mb_num * sizeof(uint32_t), fail);
  677. FF_ALLOCZ_OR_GOTO(h->s.avctx, h->mb2b8_xy , big_mb_num * sizeof(uint32_t), fail);
  678. for(y=0; y<s->mb_height; y++){
  679. for(x=0; x<s->mb_width; x++){
  680. const int mb_xy= x + y*s->mb_stride;
  681. const int b_xy = 4*x + 4*y*h->b_stride;
  682. const int b8_xy= 2*x + 2*y*h->b8_stride;
  683. h->mb2b_xy [mb_xy]= b_xy;
  684. h->mb2b8_xy[mb_xy]= b8_xy;
  685. }
  686. }
  687. s->obmc_scratchpad = NULL;
  688. if(!h->dequant4_coeff[0])
  689. init_dequant_tables(h);
  690. return 0;
  691. fail:
  692. free_tables(h);
  693. return -1;
  694. }
  695. /**
  696. * Mimic alloc_tables(), but for every context thread.
  697. */
  698. static void clone_tables(H264Context *dst, H264Context *src){
  699. dst->intra4x4_pred_mode = src->intra4x4_pred_mode;
  700. dst->non_zero_count = src->non_zero_count;
  701. dst->slice_table = src->slice_table;
  702. dst->cbp_table = src->cbp_table;
  703. dst->mb2b_xy = src->mb2b_xy;
  704. dst->mb2b8_xy = src->mb2b8_xy;
  705. dst->chroma_pred_mode_table = src->chroma_pred_mode_table;
  706. dst->mvd_table[0] = src->mvd_table[0];
  707. dst->mvd_table[1] = src->mvd_table[1];
  708. dst->direct_table = src->direct_table;
  709. dst->list_counts = src->list_counts;
  710. dst->s.obmc_scratchpad = NULL;
  711. ff_h264_pred_init(&dst->hpc, src->s.codec_id);
  712. }
  713. /**
  714. * Init context
  715. * Allocate buffers which are not shared amongst multiple threads.
  716. */
  717. static int context_init(H264Context *h){
  718. FF_ALLOCZ_OR_GOTO(h->s.avctx, h->top_borders[0], h->s.mb_width * (16+8+8) * sizeof(uint8_t), fail)
  719. FF_ALLOCZ_OR_GOTO(h->s.avctx, h->top_borders[1], h->s.mb_width * (16+8+8) * sizeof(uint8_t), fail)
  720. return 0;
  721. fail:
  722. return -1; // free_tables will clean up for us
  723. }
  724. static av_cold void common_init(H264Context *h){
  725. MpegEncContext * const s = &h->s;
  726. s->width = s->avctx->width;
  727. s->height = s->avctx->height;
  728. s->codec_id= s->avctx->codec->id;
  729. ff_h264_pred_init(&h->hpc, s->codec_id);
  730. h->dequant_coeff_pps= -1;
  731. s->unrestricted_mv=1;
  732. s->decode=1; //FIXME
  733. dsputil_init(&s->dsp, s->avctx); // needed so that idct permutation is known early
  734. memset(h->pps.scaling_matrix4, 16, 6*16*sizeof(uint8_t));
  735. memset(h->pps.scaling_matrix8, 16, 2*64*sizeof(uint8_t));
  736. }
  737. av_cold int ff_h264_decode_init(AVCodecContext *avctx){
  738. H264Context *h= avctx->priv_data;
  739. MpegEncContext * const s = &h->s;
  740. MPV_decode_defaults(s);
  741. s->avctx = avctx;
  742. common_init(h);
  743. s->out_format = FMT_H264;
  744. s->workaround_bugs= avctx->workaround_bugs;
  745. // set defaults
  746. // s->decode_mb= ff_h263_decode_mb;
  747. s->quarter_sample = 1;
  748. if(!avctx->has_b_frames)
  749. s->low_delay= 1;
  750. avctx->chroma_sample_location = AVCHROMA_LOC_LEFT;
  751. ff_h264_decode_init_vlc();
  752. if(avctx->extradata_size > 0 && avctx->extradata &&
  753. *(char *)avctx->extradata == 1){
  754. h->is_avc = 1;
  755. h->got_avcC = 0;
  756. } else {
  757. h->is_avc = 0;
  758. }
  759. h->thread_context[0] = h;
  760. h->outputed_poc = INT_MIN;
  761. h->prev_poc_msb= 1<<16;
  762. ff_h264_reset_sei(h);
  763. if(avctx->codec_id == CODEC_ID_H264){
  764. if(avctx->ticks_per_frame == 1){
  765. s->avctx->time_base.den *=2;
  766. }
  767. avctx->ticks_per_frame = 2;
  768. }
  769. return 0;
  770. }
  771. int ff_h264_frame_start(H264Context *h){
  772. MpegEncContext * const s = &h->s;
  773. int i;
  774. if(MPV_frame_start(s, s->avctx) < 0)
  775. return -1;
  776. ff_er_frame_start(s);
  777. /*
  778. * MPV_frame_start uses pict_type to derive key_frame.
  779. * This is incorrect for H.264; IDR markings must be used.
  780. * Zero here; IDR markings per slice in frame or fields are ORed in later.
  781. * See decode_nal_units().
  782. */
  783. s->current_picture_ptr->key_frame= 0;
  784. s->current_picture_ptr->mmco_reset= 0;
  785. assert(s->linesize && s->uvlinesize);
  786. for(i=0; i<16; i++){
  787. h->block_offset[i]= 4*((scan8[i] - scan8[0])&7) + 4*s->linesize*((scan8[i] - scan8[0])>>3);
  788. h->block_offset[24+i]= 4*((scan8[i] - scan8[0])&7) + 8*s->linesize*((scan8[i] - scan8[0])>>3);
  789. }
  790. for(i=0; i<4; i++){
  791. h->block_offset[16+i]=
  792. h->block_offset[20+i]= 4*((scan8[i] - scan8[0])&7) + 4*s->uvlinesize*((scan8[i] - scan8[0])>>3);
  793. h->block_offset[24+16+i]=
  794. h->block_offset[24+20+i]= 4*((scan8[i] - scan8[0])&7) + 8*s->uvlinesize*((scan8[i] - scan8[0])>>3);
  795. }
  796. /* can't be in alloc_tables because linesize isn't known there.
  797. * FIXME: redo bipred weight to not require extra buffer? */
  798. for(i = 0; i < s->avctx->thread_count; i++)
  799. if(!h->thread_context[i]->s.obmc_scratchpad)
  800. h->thread_context[i]->s.obmc_scratchpad = av_malloc(16*2*s->linesize + 8*2*s->uvlinesize);
  801. /* some macroblocks will be accessed before they're available */
  802. if(FRAME_MBAFF || s->avctx->thread_count > 1)
  803. memset(h->slice_table, -1, (s->mb_height*s->mb_stride-1) * sizeof(*h->slice_table));
  804. // s->decode= (s->flags&CODEC_FLAG_PSNR) || !s->encoding || s->current_picture.reference /*|| h->contains_intra*/ || 1;
  805. // We mark the current picture as non-reference after allocating it, so
  806. // that if we break out due to an error it can be released automatically
  807. // in the next MPV_frame_start().
  808. // SVQ3 as well as most other codecs have only last/next/current and thus
  809. // get released even with set reference, besides SVQ3 and others do not
  810. // mark frames as reference later "naturally".
  811. if(s->codec_id != CODEC_ID_SVQ3)
  812. s->current_picture_ptr->reference= 0;
  813. s->current_picture_ptr->field_poc[0]=
  814. s->current_picture_ptr->field_poc[1]= INT_MAX;
  815. assert(s->current_picture_ptr->long_ref==0);
  816. return 0;
  817. }
  818. static inline void backup_mb_border(H264Context *h, uint8_t *src_y, uint8_t *src_cb, uint8_t *src_cr, int linesize, int uvlinesize, int simple){
  819. MpegEncContext * const s = &h->s;
  820. int top_idx = 1;
  821. src_y -= linesize;
  822. src_cb -= uvlinesize;
  823. src_cr -= uvlinesize;
  824. if(!simple && FRAME_MBAFF){
  825. if(s->mb_y&1){
  826. if(!MB_MBAFF){
  827. *(uint64_t*)(h->top_borders[0][s->mb_x]+ 0)= *(uint64_t*)(src_y + 15*linesize);
  828. *(uint64_t*)(h->top_borders[0][s->mb_x]+ 8)= *(uint64_t*)(src_y +8+15*linesize);
  829. if(simple || !CONFIG_GRAY || !(s->flags&CODEC_FLAG_GRAY)){
  830. *(uint64_t*)(h->top_borders[0][s->mb_x]+16)= *(uint64_t*)(src_cb+7*uvlinesize);
  831. *(uint64_t*)(h->top_borders[0][s->mb_x]+24)= *(uint64_t*)(src_cr+7*uvlinesize);
  832. }
  833. }
  834. }else if(MB_MBAFF){
  835. top_idx = 0;
  836. }else
  837. return;
  838. }
  839. // There are two lines saved, the line above the the top macroblock of a pair,
  840. // and the line above the bottom macroblock
  841. *(uint64_t*)(h->top_borders[top_idx][s->mb_x]+0)= *(uint64_t*)(src_y + 16*linesize);
  842. *(uint64_t*)(h->top_borders[top_idx][s->mb_x]+8)= *(uint64_t*)(src_y +8+16*linesize);
  843. if(simple || !CONFIG_GRAY || !(s->flags&CODEC_FLAG_GRAY)){
  844. *(uint64_t*)(h->top_borders[top_idx][s->mb_x]+16)= *(uint64_t*)(src_cb+8*uvlinesize);
  845. *(uint64_t*)(h->top_borders[top_idx][s->mb_x]+24)= *(uint64_t*)(src_cr+8*uvlinesize);
  846. }
  847. }
  848. static inline void xchg_mb_border(H264Context *h, uint8_t *src_y, uint8_t *src_cb, uint8_t *src_cr, int linesize, int uvlinesize, int xchg, int simple){
  849. MpegEncContext * const s = &h->s;
  850. int temp8, i;
  851. uint64_t temp64;
  852. int deblock_left;
  853. int deblock_top;
  854. int mb_xy;
  855. int top_idx = 1;
  856. if(!simple && FRAME_MBAFF){
  857. if(s->mb_y&1){
  858. if(!MB_MBAFF)
  859. return;
  860. }else{
  861. top_idx = MB_MBAFF ? 0 : 1;
  862. }
  863. }
  864. if(h->deblocking_filter == 2) {
  865. mb_xy = h->mb_xy;
  866. deblock_left = h->slice_table[mb_xy] == h->slice_table[mb_xy - 1];
  867. deblock_top = h->slice_table[mb_xy] == h->slice_table[h->top_mb_xy];
  868. } else {
  869. deblock_left = (s->mb_x > 0);
  870. deblock_top = (s->mb_y > !!MB_FIELD);
  871. }
  872. src_y -= linesize + 1;
  873. src_cb -= uvlinesize + 1;
  874. src_cr -= uvlinesize + 1;
  875. #define XCHG(a,b,t,xchg)\
  876. t= a;\
  877. if(xchg)\
  878. a= b;\
  879. b= t;
  880. if(deblock_top){
  881. if(deblock_left){
  882. XCHG(*(uint64_t*)(h->top_borders[top_idx][s->mb_x-1]+8), *(uint64_t*)(src_y -7), temp64, 1);
  883. }
  884. XCHG(*(uint64_t*)(h->top_borders[top_idx][s->mb_x]+0), *(uint64_t*)(src_y +1), temp64, xchg);
  885. XCHG(*(uint64_t*)(h->top_borders[top_idx][s->mb_x]+8), *(uint64_t*)(src_y +9), temp64, 1);
  886. if(s->mb_x+1 < s->mb_width){
  887. XCHG(*(uint64_t*)(h->top_borders[top_idx][s->mb_x+1]), *(uint64_t*)(src_y +17), temp64, 1);
  888. }
  889. }
  890. if(simple || !CONFIG_GRAY || !(s->flags&CODEC_FLAG_GRAY)){
  891. if(deblock_top){
  892. if(deblock_left){
  893. XCHG(*(uint64_t*)(h->top_borders[top_idx][s->mb_x-1]+16), *(uint64_t*)(src_cb -7), temp64, 1);
  894. XCHG(*(uint64_t*)(h->top_borders[top_idx][s->mb_x-1]+24), *(uint64_t*)(src_cr -7), temp64, 1);
  895. }
  896. XCHG(*(uint64_t*)(h->top_borders[top_idx][s->mb_x]+16), *(uint64_t*)(src_cb+1), temp64, 1);
  897. XCHG(*(uint64_t*)(h->top_borders[top_idx][s->mb_x]+24), *(uint64_t*)(src_cr+1), temp64, 1);
  898. }
  899. }
  900. }
  901. static av_always_inline void hl_decode_mb_internal(H264Context *h, int simple){
  902. MpegEncContext * const s = &h->s;
  903. const int mb_x= s->mb_x;
  904. const int mb_y= s->mb_y;
  905. const int mb_xy= h->mb_xy;
  906. const int mb_type= s->current_picture.mb_type[mb_xy];
  907. uint8_t *dest_y, *dest_cb, *dest_cr;
  908. int linesize, uvlinesize /*dct_offset*/;
  909. int i;
  910. int *block_offset = &h->block_offset[0];
  911. const int transform_bypass = !simple && (s->qscale == 0 && h->sps.transform_bypass);
  912. /* is_h264 should always be true if SVQ3 is disabled. */
  913. const int is_h264 = !CONFIG_SVQ3_DECODER || simple || s->codec_id == CODEC_ID_H264;
  914. void (*idct_add)(uint8_t *dst, DCTELEM *block, int stride);
  915. void (*idct_dc_add)(uint8_t *dst, DCTELEM *block, int stride);
  916. dest_y = s->current_picture.data[0] + (mb_x + mb_y * s->linesize ) * 16;
  917. dest_cb = s->current_picture.data[1] + (mb_x + mb_y * s->uvlinesize) * 8;
  918. dest_cr = s->current_picture.data[2] + (mb_x + mb_y * s->uvlinesize) * 8;
  919. s->dsp.prefetch(dest_y + (s->mb_x&3)*4*s->linesize + 64, s->linesize, 4);
  920. s->dsp.prefetch(dest_cb + (s->mb_x&7)*s->uvlinesize + 64, dest_cr - dest_cb, 2);
  921. h->list_counts[mb_xy]= h->list_count;
  922. if (!simple && MB_FIELD) {
  923. linesize = h->mb_linesize = s->linesize * 2;
  924. uvlinesize = h->mb_uvlinesize = s->uvlinesize * 2;
  925. block_offset = &h->block_offset[24];
  926. if(mb_y&1){ //FIXME move out of this function?
  927. dest_y -= s->linesize*15;
  928. dest_cb-= s->uvlinesize*7;
  929. dest_cr-= s->uvlinesize*7;
  930. }
  931. if(FRAME_MBAFF) {
  932. int list;
  933. for(list=0; list<h->list_count; list++){
  934. if(!USES_LIST(mb_type, list))
  935. continue;
  936. if(IS_16X16(mb_type)){
  937. int8_t *ref = &h->ref_cache[list][scan8[0]];
  938. fill_rectangle(ref, 4, 4, 8, (16+*ref)^(s->mb_y&1), 1);
  939. }else{
  940. for(i=0; i<16; i+=4){
  941. int ref = h->ref_cache[list][scan8[i]];
  942. if(ref >= 0)
  943. fill_rectangle(&h->ref_cache[list][scan8[i]], 2, 2, 8, (16+ref)^(s->mb_y&1), 1);
  944. }
  945. }
  946. }
  947. }
  948. } else {
  949. linesize = h->mb_linesize = s->linesize;
  950. uvlinesize = h->mb_uvlinesize = s->uvlinesize;
  951. // dct_offset = s->linesize * 16;
  952. }
  953. if (!simple && IS_INTRA_PCM(mb_type)) {
  954. for (i=0; i<16; i++) {
  955. memcpy(dest_y + i* linesize, h->mb + i*8, 16);
  956. }
  957. for (i=0; i<8; i++) {
  958. memcpy(dest_cb+ i*uvlinesize, h->mb + 128 + i*4, 8);
  959. memcpy(dest_cr+ i*uvlinesize, h->mb + 160 + i*4, 8);
  960. }
  961. } else {
  962. if(IS_INTRA(mb_type)){
  963. if(h->deblocking_filter)
  964. xchg_mb_border(h, dest_y, dest_cb, dest_cr, linesize, uvlinesize, 1, simple);
  965. if(simple || !CONFIG_GRAY || !(s->flags&CODEC_FLAG_GRAY)){
  966. h->hpc.pred8x8[ h->chroma_pred_mode ](dest_cb, uvlinesize);
  967. h->hpc.pred8x8[ h->chroma_pred_mode ](dest_cr, uvlinesize);
  968. }
  969. if(IS_INTRA4x4(mb_type)){
  970. if(simple || !s->encoding){
  971. if(IS_8x8DCT(mb_type)){
  972. if(transform_bypass){
  973. idct_dc_add =
  974. idct_add = s->dsp.add_pixels8;
  975. }else{
  976. idct_dc_add = s->dsp.h264_idct8_dc_add;
  977. idct_add = s->dsp.h264_idct8_add;
  978. }
  979. for(i=0; i<16; i+=4){
  980. uint8_t * const ptr= dest_y + block_offset[i];
  981. const int dir= h->intra4x4_pred_mode_cache[ scan8[i] ];
  982. if(transform_bypass && h->sps.profile_idc==244 && dir<=1){
  983. h->hpc.pred8x8l_add[dir](ptr, h->mb + i*16, linesize);
  984. }else{
  985. const int nnz = h->non_zero_count_cache[ scan8[i] ];
  986. h->hpc.pred8x8l[ dir ](ptr, (h->topleft_samples_available<<i)&0x8000,
  987. (h->topright_samples_available<<i)&0x4000, linesize);
  988. if(nnz){
  989. if(nnz == 1 && h->mb[i*16])
  990. idct_dc_add(ptr, h->mb + i*16, linesize);
  991. else
  992. idct_add (ptr, h->mb + i*16, linesize);
  993. }
  994. }
  995. }
  996. }else{
  997. if(transform_bypass){
  998. idct_dc_add =
  999. idct_add = s->dsp.add_pixels4;
  1000. }else{
  1001. idct_dc_add = s->dsp.h264_idct_dc_add;
  1002. idct_add = s->dsp.h264_idct_add;
  1003. }
  1004. for(i=0; i<16; i++){
  1005. uint8_t * const ptr= dest_y + block_offset[i];
  1006. const int dir= h->intra4x4_pred_mode_cache[ scan8[i] ];
  1007. if(transform_bypass && h->sps.profile_idc==244 && dir<=1){
  1008. h->hpc.pred4x4_add[dir](ptr, h->mb + i*16, linesize);
  1009. }else{
  1010. uint8_t *topright;
  1011. int nnz, tr;
  1012. if(dir == DIAG_DOWN_LEFT_PRED || dir == VERT_LEFT_PRED){
  1013. const int topright_avail= (h->topright_samples_available<<i)&0x8000;
  1014. assert(mb_y || linesize <= block_offset[i]);
  1015. if(!topright_avail){
  1016. tr= ptr[3 - linesize]*0x01010101;
  1017. topright= (uint8_t*) &tr;
  1018. }else
  1019. topright= ptr + 4 - linesize;
  1020. }else
  1021. topright= NULL;
  1022. h->hpc.pred4x4[ dir ](ptr, topright, linesize);
  1023. nnz = h->non_zero_count_cache[ scan8[i] ];
  1024. if(nnz){
  1025. if(is_h264){
  1026. if(nnz == 1 && h->mb[i*16])
  1027. idct_dc_add(ptr, h->mb + i*16, linesize);
  1028. else
  1029. idct_add (ptr, h->mb + i*16, linesize);
  1030. }else
  1031. svq3_add_idct_c(ptr, h->mb + i*16, linesize, s->qscale, 0);
  1032. }
  1033. }
  1034. }
  1035. }
  1036. }
  1037. }else{
  1038. h->hpc.pred16x16[ h->intra16x16_pred_mode ](dest_y , linesize);
  1039. if(is_h264){
  1040. if(!transform_bypass)
  1041. h264_luma_dc_dequant_idct_c(h->mb, s->qscale, h->dequant4_coeff[0][s->qscale][0]);
  1042. }else
  1043. svq3_luma_dc_dequant_idct_c(h->mb, s->qscale);
  1044. }
  1045. if(h->deblocking_filter)
  1046. xchg_mb_border(h, dest_y, dest_cb, dest_cr, linesize, uvlinesize, 0, simple);
  1047. }else if(is_h264){
  1048. hl_motion(h, dest_y, dest_cb, dest_cr,
  1049. s->me.qpel_put, s->dsp.put_h264_chroma_pixels_tab,
  1050. s->me.qpel_avg, s->dsp.avg_h264_chroma_pixels_tab,
  1051. s->dsp.weight_h264_pixels_tab, s->dsp.biweight_h264_pixels_tab);
  1052. }
  1053. if(!IS_INTRA4x4(mb_type)){
  1054. if(is_h264){
  1055. if(IS_INTRA16x16(mb_type)){
  1056. if(transform_bypass){
  1057. if(h->sps.profile_idc==244 && (h->intra16x16_pred_mode==VERT_PRED8x8 || h->intra16x16_pred_mode==HOR_PRED8x8)){
  1058. h->hpc.pred16x16_add[h->intra16x16_pred_mode](dest_y, block_offset, h->mb, linesize);
  1059. }else{
  1060. for(i=0; i<16; i++){
  1061. if(h->non_zero_count_cache[ scan8[i] ] || h->mb[i*16])
  1062. s->dsp.add_pixels4(dest_y + block_offset[i], h->mb + i*16, linesize);
  1063. }
  1064. }
  1065. }else{
  1066. s->dsp.h264_idct_add16intra(dest_y, block_offset, h->mb, linesize, h->non_zero_count_cache);
  1067. }
  1068. }else if(h->cbp&15){
  1069. if(transform_bypass){
  1070. const int di = IS_8x8DCT(mb_type) ? 4 : 1;
  1071. idct_add= IS_8x8DCT(mb_type) ? s->dsp.add_pixels8 : s->dsp.add_pixels4;
  1072. for(i=0; i<16; i+=di){
  1073. if(h->non_zero_count_cache[ scan8[i] ]){
  1074. idct_add(dest_y + block_offset[i], h->mb + i*16, linesize);
  1075. }
  1076. }
  1077. }else{
  1078. if(IS_8x8DCT(mb_type)){
  1079. s->dsp.h264_idct8_add4(dest_y, block_offset, h->mb, linesize, h->non_zero_count_cache);
  1080. }else{
  1081. s->dsp.h264_idct_add16(dest_y, block_offset, h->mb, linesize, h->non_zero_count_cache);
  1082. }
  1083. }
  1084. }
  1085. }else{
  1086. for(i=0; i<16; i++){
  1087. if(h->non_zero_count_cache[ scan8[i] ] || h->mb[i*16]){ //FIXME benchmark weird rule, & below
  1088. uint8_t * const ptr= dest_y + block_offset[i];
  1089. svq3_add_idct_c(ptr, h->mb + i*16, linesize, s->qscale, IS_INTRA(mb_type) ? 1 : 0);
  1090. }
  1091. }
  1092. }
  1093. }
  1094. if((simple || !CONFIG_GRAY || !(s->flags&CODEC_FLAG_GRAY)) && (h->cbp&0x30)){
  1095. uint8_t *dest[2] = {dest_cb, dest_cr};
  1096. if(transform_bypass){
  1097. if(IS_INTRA(mb_type) && h->sps.profile_idc==244 && (h->chroma_pred_mode==VERT_PRED8x8 || h->chroma_pred_mode==HOR_PRED8x8)){
  1098. h->hpc.pred8x8_add[h->chroma_pred_mode](dest[0], block_offset + 16, h->mb + 16*16, uvlinesize);
  1099. h->hpc.pred8x8_add[h->chroma_pred_mode](dest[1], block_offset + 20, h->mb + 20*16, uvlinesize);
  1100. }else{
  1101. idct_add = s->dsp.add_pixels4;
  1102. for(i=16; i<16+8; i++){
  1103. if(h->non_zero_count_cache[ scan8[i] ] || h->mb[i*16])
  1104. idct_add (dest[(i&4)>>2] + block_offset[i], h->mb + i*16, uvlinesize);
  1105. }
  1106. }
  1107. }else{
  1108. chroma_dc_dequant_idct_c(h->mb + 16*16, h->chroma_qp[0], h->dequant4_coeff[IS_INTRA(mb_type) ? 1:4][h->chroma_qp[0]][0]);
  1109. chroma_dc_dequant_idct_c(h->mb + 16*16+4*16, h->chroma_qp[1], h->dequant4_coeff[IS_INTRA(mb_type) ? 2:5][h->chroma_qp[1]][0]);
  1110. if(is_h264){
  1111. idct_add = s->dsp.h264_idct_add;
  1112. idct_dc_add = s->dsp.h264_idct_dc_add;
  1113. for(i=16; i<16+8; i++){
  1114. if(h->non_zero_count_cache[ scan8[i] ])
  1115. idct_add (dest[(i&4)>>2] + block_offset[i], h->mb + i*16, uvlinesize);
  1116. else if(h->mb[i*16])
  1117. idct_dc_add(dest[(i&4)>>2] + block_offset[i], h->mb + i*16, uvlinesize);
  1118. }
  1119. }else{
  1120. for(i=16; i<16+8; i++){
  1121. if(h->non_zero_count_cache[ scan8[i] ] || h->mb[i*16]){
  1122. uint8_t * const ptr= dest[(i&4)>>2] + block_offset[i];
  1123. svq3_add_idct_c(ptr, h->mb + i*16, uvlinesize, ff_h264_chroma_qp[s->qscale + 12] - 12, 2);
  1124. }
  1125. }
  1126. }
  1127. }
  1128. }
  1129. }
  1130. if(h->cbp || IS_INTRA(mb_type))
  1131. s->dsp.clear_blocks(h->mb);
  1132. if(h->deblocking_filter && 0) {
  1133. backup_mb_border(h, dest_y, dest_cb, dest_cr, linesize, uvlinesize, simple);
  1134. fill_filter_caches(h, mb_type); //FIXME don't fill stuff which isn't used by filter_mb
  1135. h->chroma_qp[0] = get_chroma_qp(h, 0, s->current_picture.qscale_table[mb_xy]);
  1136. h->chroma_qp[1] = get_chroma_qp(h, 1, s->current_picture.qscale_table[mb_xy]);
  1137. if (!simple && FRAME_MBAFF) {
  1138. ff_h264_filter_mb (h, mb_x, mb_y, dest_y, dest_cb, dest_cr, linesize, uvlinesize);
  1139. } else {
  1140. ff_h264_filter_mb_fast(h, mb_x, mb_y, dest_y, dest_cb, dest_cr, linesize, uvlinesize);
  1141. }
  1142. }
  1143. }
  1144. /**
  1145. * Process a macroblock; this case avoids checks for expensive uncommon cases.
  1146. */
  1147. static void hl_decode_mb_simple(H264Context *h){
  1148. hl_decode_mb_internal(h, 1);
  1149. }
  1150. /**
  1151. * Process a macroblock; this handles edge cases, such as interlacing.
  1152. */
  1153. static void av_noinline hl_decode_mb_complex(H264Context *h){
  1154. hl_decode_mb_internal(h, 0);
  1155. }
  1156. void ff_h264_hl_decode_mb(H264Context *h){
  1157. MpegEncContext * const s = &h->s;
  1158. const int mb_xy= h->mb_xy;
  1159. const int mb_type= s->current_picture.mb_type[mb_xy];
  1160. int is_complex = CONFIG_SMALL || h->is_complex || IS_INTRA_PCM(mb_type) || s->qscale == 0;
  1161. if (is_complex)
  1162. hl_decode_mb_complex(h);
  1163. else hl_decode_mb_simple(h);
  1164. }
  1165. static int pred_weight_table(H264Context *h){
  1166. MpegEncContext * const s = &h->s;
  1167. int list, i;
  1168. int luma_def, chroma_def;
  1169. h->use_weight= 0;
  1170. h->use_weight_chroma= 0;
  1171. h->luma_log2_weight_denom= get_ue_golomb(&s->gb);
  1172. h->chroma_log2_weight_denom= get_ue_golomb(&s->gb);
  1173. luma_def = 1<<h->luma_log2_weight_denom;
  1174. chroma_def = 1<<h->chroma_log2_weight_denom;
  1175. for(list=0; list<2; list++){
  1176. h->luma_weight_flag[list] = 0;
  1177. h->chroma_weight_flag[list] = 0;
  1178. for(i=0; i<h->ref_count[list]; i++){
  1179. int luma_weight_flag, chroma_weight_flag;
  1180. luma_weight_flag= get_bits1(&s->gb);
  1181. if(luma_weight_flag){
  1182. h->luma_weight[list][i]= get_se_golomb(&s->gb);
  1183. h->luma_offset[list][i]= get_se_golomb(&s->gb);
  1184. if( h->luma_weight[list][i] != luma_def
  1185. || h->luma_offset[list][i] != 0) {
  1186. h->use_weight= 1;
  1187. h->luma_weight_flag[list]= 1;
  1188. }
  1189. }else{
  1190. h->luma_weight[list][i]= luma_def;
  1191. h->luma_offset[list][i]= 0;
  1192. }
  1193. if(CHROMA){
  1194. chroma_weight_flag= get_bits1(&s->gb);
  1195. if(chroma_weight_flag){
  1196. int j;
  1197. for(j=0; j<2; j++){
  1198. h->chroma_weight[list][i][j]= get_se_golomb(&s->gb);
  1199. h->chroma_offset[list][i][j]= get_se_golomb(&s->gb);
  1200. if( h->chroma_weight[list][i][j] != chroma_def
  1201. || h->chroma_offset[list][i][j] != 0) {
  1202. h->use_weight_chroma= 1;
  1203. h->chroma_weight_flag[list]= 1;
  1204. }
  1205. }
  1206. }else{
  1207. int j;
  1208. for(j=0; j<2; j++){
  1209. h->chroma_weight[list][i][j]= chroma_def;
  1210. h->chroma_offset[list][i][j]= 0;
  1211. }
  1212. }
  1213. }
  1214. }
  1215. if(h->slice_type_nos != FF_B_TYPE) break;
  1216. }
  1217. h->use_weight= h->use_weight || h->use_weight_chroma;
  1218. return 0;
  1219. }
  1220. static void implicit_weight_table(H264Context *h){
  1221. MpegEncContext * const s = &h->s;
  1222. int ref0, ref1, i;
  1223. int cur_poc = s->current_picture_ptr->poc;
  1224. for (i = 0; i < 2; i++) {
  1225. h->luma_weight_flag[i] = 0;
  1226. h->chroma_weight_flag[i] = 0;
  1227. }
  1228. if( h->ref_count[0] == 1 && h->ref_count[1] == 1
  1229. && h->ref_list[0][0].poc + h->ref_list[1][0].poc == 2*cur_poc){
  1230. h->use_weight= 0;
  1231. h->use_weight_chroma= 0;
  1232. return;
  1233. }
  1234. h->use_weight= 2;
  1235. h->use_weight_chroma= 2;
  1236. h->luma_log2_weight_denom= 5;
  1237. h->chroma_log2_weight_denom= 5;
  1238. for(ref0=0; ref0 < h->ref_count[0]; ref0++){
  1239. int poc0 = h->ref_list[0][ref0].poc;
  1240. for(ref1=0; ref1 < h->ref_count[1]; ref1++){
  1241. int poc1 = h->ref_list[1][ref1].poc;
  1242. int td = av_clip(poc1 - poc0, -128, 127);
  1243. if(td){
  1244. int tb = av_clip(cur_poc - poc0, -128, 127);
  1245. int tx = (16384 + (FFABS(td) >> 1)) / td;
  1246. int dist_scale_factor = av_clip((tb*tx + 32) >> 6, -1024, 1023) >> 2;
  1247. if(dist_scale_factor < -64 || dist_scale_factor > 128)
  1248. h->implicit_weight[ref0][ref1] = 32;
  1249. else
  1250. h->implicit_weight[ref0][ref1] = 64 - dist_scale_factor;
  1251. }else
  1252. h->implicit_weight[ref0][ref1] = 32;
  1253. }
  1254. }
  1255. }
  1256. /**
  1257. * instantaneous decoder refresh.
  1258. */
  1259. static void idr(H264Context *h){
  1260. ff_h264_remove_all_refs(h);
  1261. h->prev_frame_num= 0;
  1262. h->prev_frame_num_offset= 0;
  1263. h->prev_poc_msb=
  1264. h->prev_poc_lsb= 0;
  1265. }
  1266. /* forget old pics after a seek */
  1267. static void flush_dpb(AVCodecContext *avctx){
  1268. H264Context *h= avctx->priv_data;
  1269. int i;
  1270. for(i=0; i<MAX_DELAYED_PIC_COUNT; i++) {
  1271. if(h->delayed_pic[i])
  1272. h->delayed_pic[i]->reference= 0;
  1273. h->delayed_pic[i]= NULL;
  1274. }
  1275. h->outputed_poc= INT_MIN;
  1276. h->prev_interlaced_frame = 1;
  1277. idr(h);
  1278. if(h->s.current_picture_ptr)
  1279. h->s.current_picture_ptr->reference= 0;
  1280. h->s.first_field= 0;
  1281. ff_h264_reset_sei(h);
  1282. ff_mpeg_flush(avctx);
  1283. }
  1284. static int init_poc(H264Context *h){
  1285. MpegEncContext * const s = &h->s;
  1286. const int max_frame_num= 1<<h->sps.log2_max_frame_num;
  1287. int field_poc[2];
  1288. Picture *cur = s->current_picture_ptr;
  1289. h->frame_num_offset= h->prev_frame_num_offset;
  1290. if(h->frame_num < h->prev_frame_num)
  1291. h->frame_num_offset += max_frame_num;
  1292. if(h->sps.poc_type==0){
  1293. const int max_poc_lsb= 1<<h->sps.log2_max_poc_lsb;
  1294. if (h->poc_lsb < h->prev_poc_lsb && h->prev_poc_lsb - h->poc_lsb >= max_poc_lsb/2)
  1295. h->poc_msb = h->prev_poc_msb + max_poc_lsb;
  1296. else if(h->poc_lsb > h->prev_poc_lsb && h->prev_poc_lsb - h->poc_lsb < -max_poc_lsb/2)
  1297. h->poc_msb = h->prev_poc_msb - max_poc_lsb;
  1298. else
  1299. h->poc_msb = h->prev_poc_msb;
  1300. //printf("poc: %d %d\n", h->poc_msb, h->poc_lsb);
  1301. field_poc[0] =
  1302. field_poc[1] = h->poc_msb + h->poc_lsb;
  1303. if(s->picture_structure == PICT_FRAME)
  1304. field_poc[1] += h->delta_poc_bottom;
  1305. }else if(h->sps.poc_type==1){
  1306. int abs_frame_num, expected_delta_per_poc_cycle, expectedpoc;
  1307. int i;
  1308. if(h->sps.poc_cycle_length != 0)
  1309. abs_frame_num = h->frame_num_offset + h->frame_num;
  1310. else
  1311. abs_frame_num = 0;
  1312. if(h->nal_ref_idc==0 && abs_frame_num > 0)
  1313. abs_frame_num--;
  1314. expected_delta_per_poc_cycle = 0;
  1315. for(i=0; i < h->sps.poc_cycle_length; i++)
  1316. expected_delta_per_poc_cycle += h->sps.offset_for_ref_frame[ i ]; //FIXME integrate during sps parse
  1317. if(abs_frame_num > 0){
  1318. int poc_cycle_cnt = (abs_frame_num - 1) / h->sps.poc_cycle_length;
  1319. int frame_num_in_poc_cycle = (abs_frame_num - 1) % h->sps.poc_cycle_length;
  1320. expectedpoc = poc_cycle_cnt * expected_delta_per_poc_cycle;
  1321. for(i = 0; i <= frame_num_in_poc_cycle; i++)
  1322. expectedpoc = expectedpoc + h->sps.offset_for_ref_frame[ i ];
  1323. } else
  1324. expectedpoc = 0;
  1325. if(h->nal_ref_idc == 0)
  1326. expectedpoc = expectedpoc + h->sps.offset_for_non_ref_pic;
  1327. field_poc[0] = expectedpoc + h->delta_poc[0];
  1328. field_poc[1] = field_poc[0] + h->sps.offset_for_top_to_bottom_field;
  1329. if(s->picture_structure == PICT_FRAME)
  1330. field_poc[1] += h->delta_poc[1];
  1331. }else{
  1332. int poc= 2*(h->frame_num_offset + h->frame_num);
  1333. if(!h->nal_ref_idc)
  1334. poc--;
  1335. field_poc[0]= poc;
  1336. field_poc[1]= poc;
  1337. }
  1338. if(s->picture_structure != PICT_BOTTOM_FIELD)
  1339. s->current_picture_ptr->field_poc[0]= field_poc[0];
  1340. if(s->picture_structure != PICT_TOP_FIELD)
  1341. s->current_picture_ptr->field_poc[1]= field_poc[1];
  1342. cur->poc= FFMIN(cur->field_poc[0], cur->field_poc[1]);
  1343. return 0;
  1344. }
  1345. /**
  1346. * initialize scan tables
  1347. */
  1348. static void init_scan_tables(H264Context *h){
  1349. MpegEncContext * const s = &h->s;
  1350. int i;
  1351. if(s->dsp.h264_idct_add == ff_h264_idct_add_c){ //FIXME little ugly
  1352. memcpy(h->zigzag_scan, zigzag_scan, 16*sizeof(uint8_t));
  1353. memcpy(h-> field_scan, field_scan, 16*sizeof(uint8_t));
  1354. }else{
  1355. for(i=0; i<16; i++){
  1356. #define T(x) (x>>2) | ((x<<2) & 0xF)
  1357. h->zigzag_scan[i] = T(zigzag_scan[i]);
  1358. h-> field_scan[i] = T( field_scan[i]);
  1359. #undef T
  1360. }
  1361. }
  1362. if(s->dsp.h264_idct8_add == ff_h264_idct8_add_c){
  1363. memcpy(h->zigzag_scan8x8, ff_zigzag_direct, 64*sizeof(uint8_t));
  1364. memcpy(h->zigzag_scan8x8_cavlc, zigzag_scan8x8_cavlc, 64*sizeof(uint8_t));
  1365. memcpy(h->field_scan8x8, field_scan8x8, 64*sizeof(uint8_t));
  1366. memcpy(h->field_scan8x8_cavlc, field_scan8x8_cavlc, 64*sizeof(uint8_t));
  1367. }else{
  1368. for(i=0; i<64; i++){
  1369. #define T(x) (x>>3) | ((x&7)<<3)
  1370. h->zigzag_scan8x8[i] = T(ff_zigzag_direct[i]);
  1371. h->zigzag_scan8x8_cavlc[i] = T(zigzag_scan8x8_cavlc[i]);
  1372. h->field_scan8x8[i] = T(field_scan8x8[i]);
  1373. h->field_scan8x8_cavlc[i] = T(field_scan8x8_cavlc[i]);
  1374. #undef T
  1375. }
  1376. }
  1377. if(h->sps.transform_bypass){ //FIXME same ugly
  1378. h->zigzag_scan_q0 = zigzag_scan;
  1379. h->zigzag_scan8x8_q0 = ff_zigzag_direct;
  1380. h->zigzag_scan8x8_cavlc_q0 = zigzag_scan8x8_cavlc;
  1381. h->field_scan_q0 = field_scan;
  1382. h->field_scan8x8_q0 = field_scan8x8;
  1383. h->field_scan8x8_cavlc_q0 = field_scan8x8_cavlc;
  1384. }else{
  1385. h->zigzag_scan_q0 = h->zigzag_scan;
  1386. h->zigzag_scan8x8_q0 = h->zigzag_scan8x8;
  1387. h->zigzag_scan8x8_cavlc_q0 = h->zigzag_scan8x8_cavlc;
  1388. h->field_scan_q0 = h->field_scan;
  1389. h->field_scan8x8_q0 = h->field_scan8x8;
  1390. h->field_scan8x8_cavlc_q0 = h->field_scan8x8_cavlc;
  1391. }
  1392. }
  1393. static void field_end(H264Context *h){
  1394. MpegEncContext * const s = &h->s;
  1395. AVCodecContext * const avctx= s->avctx;
  1396. s->mb_y= 0;
  1397. s->current_picture_ptr->qscale_type= FF_QSCALE_TYPE_H264;
  1398. s->current_picture_ptr->pict_type= s->pict_type;
  1399. if (CONFIG_H264_VDPAU_DECODER && s->avctx->codec->capabilities&CODEC_CAP_HWACCEL_VDPAU)
  1400. ff_vdpau_h264_set_reference_frames(s);
  1401. if(!s->dropable) {
  1402. ff_h264_execute_ref_pic_marking(h, h->mmco, h->mmco_index);
  1403. h->prev_poc_msb= h->poc_msb;
  1404. h->prev_poc_lsb= h->poc_lsb;
  1405. }
  1406. h->prev_frame_num_offset= h->frame_num_offset;
  1407. h->prev_frame_num= h->frame_num;
  1408. if (avctx->hwaccel) {
  1409. if (avctx->hwaccel->end_frame(avctx) < 0)
  1410. av_log(avctx, AV_LOG_ERROR, "hardware accelerator failed to decode picture\n");
  1411. }
  1412. if (CONFIG_H264_VDPAU_DECODER && s->avctx->codec->capabilities&CODEC_CAP_HWACCEL_VDPAU)
  1413. ff_vdpau_h264_picture_complete(s);
  1414. /*
  1415. * FIXME: Error handling code does not seem to support interlaced
  1416. * when slices span multiple rows
  1417. * The ff_er_add_slice calls don't work right for bottom
  1418. * fields; they cause massive erroneous error concealing
  1419. * Error marking covers both fields (top and bottom).
  1420. * This causes a mismatched s->error_count
  1421. * and a bad error table. Further, the error count goes to
  1422. * INT_MAX when called for bottom field, because mb_y is
  1423. * past end by one (callers fault) and resync_mb_y != 0
  1424. * causes problems for the first MB line, too.
  1425. */
  1426. if (!FIELD_PICTURE)
  1427. ff_er_frame_end(s);
  1428. MPV_frame_end(s);
  1429. h->current_slice=0;
  1430. }
  1431. /**
  1432. * Replicates H264 "master" context to thread contexts.
  1433. */
  1434. static void clone_slice(H264Context *dst, H264Context *src)
  1435. {
  1436. memcpy(dst->block_offset, src->block_offset, sizeof(dst->block_offset));
  1437. dst->s.current_picture_ptr = src->s.current_picture_ptr;
  1438. dst->s.current_picture = src->s.current_picture;
  1439. dst->s.linesize = src->s.linesize;
  1440. dst->s.uvlinesize = src->s.uvlinesize;
  1441. dst->s.first_field = src->s.first_field;
  1442. dst->prev_poc_msb = src->prev_poc_msb;
  1443. dst->prev_poc_lsb = src->prev_poc_lsb;
  1444. dst->prev_frame_num_offset = src->prev_frame_num_offset;
  1445. dst->prev_frame_num = src->prev_frame_num;
  1446. dst->short_ref_count = src->short_ref_count;
  1447. memcpy(dst->short_ref, src->short_ref, sizeof(dst->short_ref));
  1448. memcpy(dst->long_ref, src->long_ref, sizeof(dst->long_ref));
  1449. memcpy(dst->default_ref_list, src->default_ref_list, sizeof(dst->default_ref_list));
  1450. memcpy(dst->ref_list, src->ref_list, sizeof(dst->ref_list));
  1451. memcpy(dst->dequant4_coeff, src->dequant4_coeff, sizeof(src->dequant4_coeff));
  1452. memcpy(dst->dequant8_coeff, src->dequant8_coeff, sizeof(src->dequant8_coeff));
  1453. }
  1454. /**
  1455. * decodes a slice header.
  1456. * This will also call MPV_common_init() and frame_start() as needed.
  1457. *
  1458. * @param h h264context
  1459. * @param h0 h264 master context (differs from 'h' when doing sliced based parallel decoding)
  1460. *
  1461. * @return 0 if okay, <0 if an error occurred, 1 if decoding must not be multithreaded
  1462. */
  1463. static int decode_slice_header(H264Context *h, H264Context *h0){
  1464. MpegEncContext * const s = &h->s;
  1465. MpegEncContext * const s0 = &h0->s;
  1466. unsigned int first_mb_in_slice;
  1467. unsigned int pps_id;
  1468. int num_ref_idx_active_override_flag;
  1469. unsigned int slice_type, tmp, i, j;
  1470. int default_ref_list_done = 0;
  1471. int last_pic_structure;
  1472. s->dropable= h->nal_ref_idc == 0;
  1473. if((s->avctx->flags2 & CODEC_FLAG2_FAST) && !h->nal_ref_idc){
  1474. s->me.qpel_put= s->dsp.put_2tap_qpel_pixels_tab;
  1475. s->me.qpel_avg= s->dsp.avg_2tap_qpel_pixels_tab;
  1476. }else{
  1477. s->me.qpel_put= s->dsp.put_h264_qpel_pixels_tab;
  1478. s->me.qpel_avg= s->dsp.avg_h264_qpel_pixels_tab;
  1479. }
  1480. first_mb_in_slice= get_ue_golomb(&s->gb);
  1481. if(first_mb_in_slice == 0){ //FIXME better field boundary detection
  1482. if(h0->current_slice && FIELD_PICTURE){
  1483. field_end(h);
  1484. }
  1485. h0->current_slice = 0;
  1486. if (!s0->first_field)
  1487. s->current_picture_ptr= NULL;
  1488. }
  1489. slice_type= get_ue_golomb_31(&s->gb);
  1490. if(slice_type > 9){
  1491. av_log(h->s.avctx, AV_LOG_ERROR, "slice type too large (%d) at %d %d\n", h->slice_type, s->mb_x, s->mb_y);
  1492. return -1;
  1493. }
  1494. if(slice_type > 4){
  1495. slice_type -= 5;
  1496. h->slice_type_fixed=1;
  1497. }else
  1498. h->slice_type_fixed=0;
  1499. slice_type= golomb_to_pict_type[ slice_type ];
  1500. if (slice_type == FF_I_TYPE
  1501. || (h0->current_slice != 0 && slice_type == h0->last_slice_type) ) {
  1502. default_ref_list_done = 1;
  1503. }
  1504. h->slice_type= slice_type;
  1505. h->slice_type_nos= slice_type & 3;
  1506. s->pict_type= h->slice_type; // to make a few old functions happy, it's wrong though
  1507. if (s->pict_type == FF_B_TYPE && s0->last_picture_ptr == NULL) {
  1508. av_log(h->s.avctx, AV_LOG_ERROR,
  1509. "B picture before any references, skipping\n");
  1510. return -1;
  1511. }
  1512. pps_id= get_ue_golomb(&s->gb);
  1513. if(pps_id>=MAX_PPS_COUNT){
  1514. av_log(h->s.avctx, AV_LOG_ERROR, "pps_id out of range\n");
  1515. return -1;
  1516. }
  1517. if(!h0->pps_buffers[pps_id]) {
  1518. av_log(h->s.avctx, AV_LOG_ERROR, "non-existing PPS %u referenced\n", pps_id);
  1519. return -1;
  1520. }
  1521. h->pps= *h0->pps_buffers[pps_id];
  1522. if(!h0->sps_buffers[h->pps.sps_id]) {
  1523. av_log(h->s.avctx, AV_LOG_ERROR, "non-existing SPS %u referenced\n", h->pps.sps_id);
  1524. return -1;
  1525. }
  1526. h->sps = *h0->sps_buffers[h->pps.sps_id];
  1527. if(h == h0 && h->dequant_coeff_pps != pps_id){
  1528. h->dequant_coeff_pps = pps_id;
  1529. init_dequant_tables(h);
  1530. }
  1531. s->mb_width= h->sps.mb_width;
  1532. s->mb_height= h->sps.mb_height * (2 - h->sps.frame_mbs_only_flag);
  1533. h->b_stride= s->mb_width*4;
  1534. h->b8_stride= s->mb_width*2;
  1535. s->width = 16*s->mb_width - 2*FFMIN(h->sps.crop_right, 7);
  1536. if(h->sps.frame_mbs_only_flag)
  1537. s->height= 16*s->mb_height - 2*FFMIN(h->sps.crop_bottom, 7);
  1538. else
  1539. s->height= 16*s->mb_height - 4*FFMIN(h->sps.crop_bottom, 3);
  1540. if (s->context_initialized
  1541. && ( s->width != s->avctx->width || s->height != s->avctx->height)) {
  1542. if(h != h0)
  1543. return -1; // width / height changed during parallelized decoding
  1544. free_tables(h);
  1545. flush_dpb(s->avctx);
  1546. MPV_common_end(s);
  1547. }
  1548. if (!s->context_initialized) {
  1549. if(h != h0)
  1550. return -1; // we cant (re-)initialize context during parallel decoding
  1551. avcodec_set_dimensions(s->avctx, s->width, s->height);
  1552. s->avctx->sample_aspect_ratio= h->sps.sar;
  1553. if(!s->avctx->sample_aspect_ratio.den)
  1554. s->avctx->sample_aspect_ratio.den = 1;
  1555. if(h->sps.video_signal_type_present_flag){
  1556. s->avctx->color_range = h->sps.full_range ? AVCOL_RANGE_JPEG : AVCOL_RANGE_MPEG;
  1557. if(h->sps.colour_description_present_flag){
  1558. s->avctx->color_primaries = h->sps.color_primaries;
  1559. s->avctx->color_trc = h->sps.color_trc;
  1560. s->avctx->colorspace = h->sps.colorspace;
  1561. }
  1562. }
  1563. if(h->sps.timing_info_present_flag){
  1564. s->avctx->time_base= (AVRational){h->sps.num_units_in_tick, h->sps.time_scale};
  1565. if(h->x264_build > 0 && h->x264_build < 44)
  1566. s->avctx->time_base.den *= 2;
  1567. av_reduce(&s->avctx->time_base.num, &s->avctx->time_base.den,
  1568. s->avctx->time_base.num, s->avctx->time_base.den, 1<<30);
  1569. }
  1570. s->avctx->pix_fmt = s->avctx->get_format(s->avctx, s->avctx->codec->pix_fmts);
  1571. s->avctx->hwaccel = ff_find_hwaccel(s->avctx->codec->id, s->avctx->pix_fmt);
  1572. if (MPV_common_init(s) < 0)
  1573. return -1;
  1574. s->first_field = 0;
  1575. h->prev_interlaced_frame = 1;
  1576. init_scan_tables(h);
  1577. ff_h264_alloc_tables(h);
  1578. for(i = 1; i < s->avctx->thread_count; i++) {
  1579. H264Context *c;
  1580. c = h->thread_context[i] = av_malloc(sizeof(H264Context));
  1581. memcpy(c, h->s.thread_context[i], sizeof(MpegEncContext));
  1582. memset(&c->s + 1, 0, sizeof(H264Context) - sizeof(MpegEncContext));
  1583. c->sps = h->sps;
  1584. c->pps = h->pps;
  1585. init_scan_tables(c);
  1586. clone_tables(c, h);
  1587. }
  1588. for(i = 0; i < s->avctx->thread_count; i++)
  1589. if(context_init(h->thread_context[i]) < 0)
  1590. return -1;
  1591. }
  1592. h->frame_num= get_bits(&s->gb, h->sps.log2_max_frame_num);
  1593. h->mb_mbaff = 0;
  1594. h->mb_aff_frame = 0;
  1595. last_pic_structure = s0->picture_structure;
  1596. if(h->sps.frame_mbs_only_flag){
  1597. s->picture_structure= PICT_FRAME;
  1598. }else{
  1599. if(get_bits1(&s->gb)) { //field_pic_flag
  1600. s->picture_structure= PICT_TOP_FIELD + get_bits1(&s->gb); //bottom_field_flag
  1601. } else {
  1602. s->picture_structure= PICT_FRAME;
  1603. h->mb_aff_frame = h->sps.mb_aff;
  1604. }
  1605. }
  1606. h->mb_field_decoding_flag= s->picture_structure != PICT_FRAME;
  1607. if(h0->current_slice == 0){
  1608. while(h->frame_num != h->prev_frame_num &&
  1609. h->frame_num != (h->prev_frame_num+1)%(1<<h->sps.log2_max_frame_num)){
  1610. av_log(NULL, AV_LOG_DEBUG, "Frame num gap %d %d\n", h->frame_num, h->prev_frame_num);
  1611. if (ff_h264_frame_start(h) < 0)
  1612. return -1;
  1613. h->prev_frame_num++;
  1614. h->prev_frame_num %= 1<<h->sps.log2_max_frame_num;
  1615. s->current_picture_ptr->frame_num= h->prev_frame_num;
  1616. ff_h264_execute_ref_pic_marking(h, NULL, 0);
  1617. }
  1618. /* See if we have a decoded first field looking for a pair... */
  1619. if (s0->first_field) {
  1620. assert(s0->current_picture_ptr);
  1621. assert(s0->current_picture_ptr->data[0]);
  1622. assert(s0->current_picture_ptr->reference != DELAYED_PIC_REF);
  1623. /* figure out if we have a complementary field pair */
  1624. if (!FIELD_PICTURE || s->picture_structure == last_pic_structure) {
  1625. /*
  1626. * Previous field is unmatched. Don't display it, but let it
  1627. * remain for reference if marked as such.
  1628. */
  1629. s0->current_picture_ptr = NULL;
  1630. s0->first_field = FIELD_PICTURE;
  1631. } else {
  1632. if (h->nal_ref_idc &&
  1633. s0->current_picture_ptr->reference &&
  1634. s0->current_picture_ptr->frame_num != h->frame_num) {
  1635. /*
  1636. * This and previous field were reference, but had
  1637. * different frame_nums. Consider this field first in
  1638. * pair. Throw away previous field except for reference
  1639. * purposes.
  1640. */
  1641. s0->first_field = 1;
  1642. s0->current_picture_ptr = NULL;
  1643. } else {
  1644. /* Second field in complementary pair */
  1645. s0->first_field = 0;
  1646. }
  1647. }
  1648. } else {
  1649. /* Frame or first field in a potentially complementary pair */
  1650. assert(!s0->current_picture_ptr);
  1651. s0->first_field = FIELD_PICTURE;
  1652. }
  1653. if((!FIELD_PICTURE || s0->first_field) && ff_h264_frame_start(h) < 0) {
  1654. s0->first_field = 0;
  1655. return -1;
  1656. }
  1657. }
  1658. if(h != h0)
  1659. clone_slice(h, h0);
  1660. s->current_picture_ptr->frame_num= h->frame_num; //FIXME frame_num cleanup
  1661. assert(s->mb_num == s->mb_width * s->mb_height);
  1662. if(first_mb_in_slice << FIELD_OR_MBAFF_PICTURE >= s->mb_num ||
  1663. first_mb_in_slice >= s->mb_num){
  1664. av_log(h->s.avctx, AV_LOG_ERROR, "first_mb_in_slice overflow\n");
  1665. return -1;
  1666. }
  1667. s->resync_mb_x = s->mb_x = first_mb_in_slice % s->mb_width;
  1668. s->resync_mb_y = s->mb_y = (first_mb_in_slice / s->mb_width) << FIELD_OR_MBAFF_PICTURE;
  1669. if (s->picture_structure == PICT_BOTTOM_FIELD)
  1670. s->resync_mb_y = s->mb_y = s->mb_y + 1;
  1671. assert(s->mb_y < s->mb_height);
  1672. if(s->picture_structure==PICT_FRAME){
  1673. h->curr_pic_num= h->frame_num;
  1674. h->max_pic_num= 1<< h->sps.log2_max_frame_num;
  1675. }else{
  1676. h->curr_pic_num= 2*h->frame_num + 1;
  1677. h->max_pic_num= 1<<(h->sps.log2_max_frame_num + 1);
  1678. }
  1679. if(h->nal_unit_type == NAL_IDR_SLICE){
  1680. get_ue_golomb(&s->gb); /* idr_pic_id */
  1681. }
  1682. if(h->sps.poc_type==0){
  1683. h->poc_lsb= get_bits(&s->gb, h->sps.log2_max_poc_lsb);
  1684. if(h->pps.pic_order_present==1 && s->picture_structure==PICT_FRAME){
  1685. h->delta_poc_bottom= get_se_golomb(&s->gb);
  1686. }
  1687. }
  1688. if(h->sps.poc_type==1 && !h->sps.delta_pic_order_always_zero_flag){
  1689. h->delta_poc[0]= get_se_golomb(&s->gb);
  1690. if(h->pps.pic_order_present==1 && s->picture_structure==PICT_FRAME)
  1691. h->delta_poc[1]= get_se_golomb(&s->gb);
  1692. }
  1693. init_poc(h);
  1694. if(h->pps.redundant_pic_cnt_present){
  1695. h->redundant_pic_count= get_ue_golomb(&s->gb);
  1696. }
  1697. //set defaults, might be overridden a few lines later
  1698. h->ref_count[0]= h->pps.ref_count[0];
  1699. h->ref_count[1]= h->pps.ref_count[1];
  1700. if(h->slice_type_nos != FF_I_TYPE){
  1701. if(h->slice_type_nos == FF_B_TYPE){
  1702. h->direct_spatial_mv_pred= get_bits1(&s->gb);
  1703. }
  1704. num_ref_idx_active_override_flag= get_bits1(&s->gb);
  1705. if(num_ref_idx_active_override_flag){
  1706. h->ref_count[0]= get_ue_golomb(&s->gb) + 1;
  1707. if(h->slice_type_nos==FF_B_TYPE)
  1708. h->ref_count[1]= get_ue_golomb(&s->gb) + 1;
  1709. if(h->ref_count[0]-1 > 32-1 || h->ref_count[1]-1 > 32-1){
  1710. av_log(h->s.avctx, AV_LOG_ERROR, "reference overflow\n");
  1711. h->ref_count[0]= h->ref_count[1]= 1;
  1712. return -1;
  1713. }
  1714. }
  1715. if(h->slice_type_nos == FF_B_TYPE)
  1716. h->list_count= 2;
  1717. else
  1718. h->list_count= 1;
  1719. }else
  1720. h->list_count= 0;
  1721. if(!default_ref_list_done){
  1722. ff_h264_fill_default_ref_list(h);
  1723. }
  1724. if(h->slice_type_nos!=FF_I_TYPE && ff_h264_decode_ref_pic_list_reordering(h) < 0)
  1725. return -1;
  1726. if(h->slice_type_nos!=FF_I_TYPE){
  1727. s->last_picture_ptr= &h->ref_list[0][0];
  1728. ff_copy_picture(&s->last_picture, s->last_picture_ptr);
  1729. }
  1730. if(h->slice_type_nos==FF_B_TYPE){
  1731. s->next_picture_ptr= &h->ref_list[1][0];
  1732. ff_copy_picture(&s->next_picture, s->next_picture_ptr);
  1733. }
  1734. if( (h->pps.weighted_pred && h->slice_type_nos == FF_P_TYPE )
  1735. || (h->pps.weighted_bipred_idc==1 && h->slice_type_nos== FF_B_TYPE ) )
  1736. pred_weight_table(h);
  1737. else if(h->pps.weighted_bipred_idc==2 && h->slice_type_nos== FF_B_TYPE)
  1738. implicit_weight_table(h);
  1739. else {
  1740. h->use_weight = 0;
  1741. for (i = 0; i < 2; i++) {
  1742. h->luma_weight_flag[i] = 0;
  1743. h->chroma_weight_flag[i] = 0;
  1744. }
  1745. }
  1746. if(h->nal_ref_idc)
  1747. ff_h264_decode_ref_pic_marking(h0, &s->gb);
  1748. if(FRAME_MBAFF)
  1749. ff_h264_fill_mbaff_ref_list(h);
  1750. if(h->slice_type_nos==FF_B_TYPE && !h->direct_spatial_mv_pred)
  1751. ff_h264_direct_dist_scale_factor(h);
  1752. ff_h264_direct_ref_list_init(h);
  1753. if( h->slice_type_nos != FF_I_TYPE && h->pps.cabac ){
  1754. tmp = get_ue_golomb_31(&s->gb);
  1755. if(tmp > 2){
  1756. av_log(s->avctx, AV_LOG_ERROR, "cabac_init_idc overflow\n");
  1757. return -1;
  1758. }
  1759. h->cabac_init_idc= tmp;
  1760. }
  1761. h->last_qscale_diff = 0;
  1762. tmp = h->pps.init_qp + get_se_golomb(&s->gb);
  1763. if(tmp>51){
  1764. av_log(s->avctx, AV_LOG_ERROR, "QP %u out of range\n", tmp);
  1765. return -1;
  1766. }
  1767. s->qscale= tmp;
  1768. h->chroma_qp[0] = get_chroma_qp(h, 0, s->qscale);
  1769. h->chroma_qp[1] = get_chroma_qp(h, 1, s->qscale);
  1770. //FIXME qscale / qp ... stuff
  1771. if(h->slice_type == FF_SP_TYPE){
  1772. get_bits1(&s->gb); /* sp_for_switch_flag */
  1773. }
  1774. if(h->slice_type==FF_SP_TYPE || h->slice_type == FF_SI_TYPE){
  1775. get_se_golomb(&s->gb); /* slice_qs_delta */
  1776. }
  1777. h->deblocking_filter = 1;
  1778. h->slice_alpha_c0_offset = 0;
  1779. h->slice_beta_offset = 0;
  1780. if( h->pps.deblocking_filter_parameters_present ) {
  1781. tmp= get_ue_golomb_31(&s->gb);
  1782. if(tmp > 2){
  1783. av_log(s->avctx, AV_LOG_ERROR, "deblocking_filter_idc %u out of range\n", tmp);
  1784. return -1;
  1785. }
  1786. h->deblocking_filter= tmp;
  1787. if(h->deblocking_filter < 2)
  1788. h->deblocking_filter^= 1; // 1<->0
  1789. if( h->deblocking_filter ) {
  1790. h->slice_alpha_c0_offset = get_se_golomb(&s->gb) << 1;
  1791. h->slice_beta_offset = get_se_golomb(&s->gb) << 1;
  1792. }
  1793. }
  1794. if( s->avctx->skip_loop_filter >= AVDISCARD_ALL
  1795. ||(s->avctx->skip_loop_filter >= AVDISCARD_NONKEY && h->slice_type_nos != FF_I_TYPE)
  1796. ||(s->avctx->skip_loop_filter >= AVDISCARD_BIDIR && h->slice_type_nos == FF_B_TYPE)
  1797. ||(s->avctx->skip_loop_filter >= AVDISCARD_NONREF && h->nal_ref_idc == 0))
  1798. h->deblocking_filter= 0;
  1799. if(h->deblocking_filter == 1 && h0->max_contexts > 1) {
  1800. if(s->avctx->flags2 & CODEC_FLAG2_FAST) {
  1801. /* Cheat slightly for speed:
  1802. Do not bother to deblock across slices. */
  1803. h->deblocking_filter = 2;
  1804. } else {
  1805. h0->max_contexts = 1;
  1806. if(!h0->single_decode_warning) {
  1807. av_log(s->avctx, AV_LOG_INFO, "Cannot parallelize deblocking type 1, decoding such frames in sequential order\n");
  1808. h0->single_decode_warning = 1;
  1809. }
  1810. if(h != h0)
  1811. return 1; // deblocking switched inside frame
  1812. }
  1813. }
  1814. h->qp_thresh= 15 - FFMIN(h->slice_alpha_c0_offset, h->slice_beta_offset) - FFMAX3(0, h->pps.chroma_qp_index_offset[0], h->pps.chroma_qp_index_offset[1]);
  1815. #if 0 //FMO
  1816. if( h->pps.num_slice_groups > 1 && h->pps.mb_slice_group_map_type >= 3 && h->pps.mb_slice_group_map_type <= 5)
  1817. slice_group_change_cycle= get_bits(&s->gb, ?);
  1818. #endif
  1819. h0->last_slice_type = slice_type;
  1820. h->slice_num = ++h0->current_slice;
  1821. if(h->slice_num >= MAX_SLICES){
  1822. av_log(s->avctx, AV_LOG_ERROR, "Too many slices, increase MAX_SLICES and recompile\n");
  1823. }
  1824. for(j=0; j<2; j++){
  1825. int id_list[16];
  1826. int *ref2frm= h->ref2frm[h->slice_num&(MAX_SLICES-1)][j];
  1827. for(i=0; i<16; i++){
  1828. id_list[i]= 60;
  1829. if(h->ref_list[j][i].data[0]){
  1830. int k;
  1831. uint8_t *base= h->ref_list[j][i].base[0];
  1832. for(k=0; k<h->short_ref_count; k++)
  1833. if(h->short_ref[k]->base[0] == base){
  1834. id_list[i]= k;
  1835. break;
  1836. }
  1837. for(k=0; k<h->long_ref_count; k++)
  1838. if(h->long_ref[k] && h->long_ref[k]->base[0] == base){
  1839. id_list[i]= h->short_ref_count + k;
  1840. break;
  1841. }
  1842. }
  1843. }
  1844. ref2frm[0]=
  1845. ref2frm[1]= -1;
  1846. for(i=0; i<16; i++)
  1847. ref2frm[i+2]= 4*id_list[i]
  1848. +(h->ref_list[j][i].reference&3);
  1849. ref2frm[18+0]=
  1850. ref2frm[18+1]= -1;
  1851. for(i=16; i<48; i++)
  1852. ref2frm[i+4]= 4*id_list[(i-16)>>1]
  1853. +(h->ref_list[j][i].reference&3);
  1854. }
  1855. h->emu_edge_width= (s->flags&CODEC_FLAG_EMU_EDGE) ? 0 : 16;
  1856. h->emu_edge_height= (FRAME_MBAFF || FIELD_PICTURE) ? 0 : h->emu_edge_width;
  1857. s->avctx->refs= h->sps.ref_frame_count;
  1858. if(s->avctx->debug&FF_DEBUG_PICT_INFO){
  1859. av_log(h->s.avctx, AV_LOG_DEBUG, "slice:%d %s mb:%d %c%s%s pps:%u frame:%d poc:%d/%d ref:%d/%d qp:%d loop:%d:%d:%d weight:%d%s %s\n",
  1860. h->slice_num,
  1861. (s->picture_structure==PICT_FRAME ? "F" : s->picture_structure==PICT_TOP_FIELD ? "T" : "B"),
  1862. first_mb_in_slice,
  1863. av_get_pict_type_char(h->slice_type), h->slice_type_fixed ? " fix" : "", h->nal_unit_type == NAL_IDR_SLICE ? " IDR" : "",
  1864. pps_id, h->frame_num,
  1865. s->current_picture_ptr->field_poc[0], s->current_picture_ptr->field_poc[1],
  1866. h->ref_count[0], h->ref_count[1],
  1867. s->qscale,
  1868. h->deblocking_filter, h->slice_alpha_c0_offset/2, h->slice_beta_offset/2,
  1869. h->use_weight,
  1870. h->use_weight==1 && h->use_weight_chroma ? "c" : "",
  1871. h->slice_type == FF_B_TYPE ? (h->direct_spatial_mv_pred ? "SPAT" : "TEMP") : ""
  1872. );
  1873. }
  1874. return 0;
  1875. }
  1876. int ff_h264_get_slice_type(H264Context *h)
  1877. {
  1878. switch (h->slice_type) {
  1879. case FF_P_TYPE: return 0;
  1880. case FF_B_TYPE: return 1;
  1881. case FF_I_TYPE: return 2;
  1882. case FF_SP_TYPE: return 3;
  1883. case FF_SI_TYPE: return 4;
  1884. default: return -1;
  1885. }
  1886. }
  1887. static void loop_filter(H264Context *h){
  1888. MpegEncContext * const s = &h->s;
  1889. uint8_t *dest_y, *dest_cb, *dest_cr;
  1890. int linesize, uvlinesize, mb_x, mb_y;
  1891. const int end_mb_y= s->mb_y + FRAME_MBAFF;
  1892. const int old_slice_type= h->slice_type;
  1893. if(h->deblocking_filter) {
  1894. for(mb_x= 0; mb_x<s->mb_width; mb_x++){
  1895. for(mb_y=end_mb_y - FRAME_MBAFF; mb_y<= end_mb_y; mb_y++){
  1896. int list, mb_xy, mb_type, is_complex;
  1897. mb_xy = h->mb_xy = mb_x + mb_y*s->mb_stride;
  1898. h->slice_num= h->slice_table[mb_xy];
  1899. mb_type= s->current_picture.mb_type[mb_xy];
  1900. h->list_count= h->list_counts[mb_xy];
  1901. if(h->list_count==2){
  1902. h->slice_type= h->slice_type_nos= FF_B_TYPE;
  1903. }else if(h->list_count==1){
  1904. h->slice_type= h->slice_type_nos= FF_P_TYPE;
  1905. }else
  1906. h->slice_type= h->slice_type_nos= FF_I_TYPE;
  1907. if(FRAME_MBAFF)
  1908. h->mb_mbaff = h->mb_field_decoding_flag = !!IS_INTERLACED(mb_type);
  1909. is_complex = CONFIG_SMALL || h->is_complex || IS_INTRA_PCM(mb_type) || s->qscale == 0; //FIXME qscale might be wrong
  1910. s->mb_x= mb_x;
  1911. s->mb_y= mb_y;
  1912. dest_y = s->current_picture.data[0] + (mb_x + mb_y * s->linesize ) * 16;
  1913. dest_cb = s->current_picture.data[1] + (mb_x + mb_y * s->uvlinesize) * 8;
  1914. dest_cr = s->current_picture.data[2] + (mb_x + mb_y * s->uvlinesize) * 8;
  1915. //FIXME simplify above
  1916. if (MB_FIELD) {
  1917. linesize = h->mb_linesize = s->linesize * 2;
  1918. uvlinesize = h->mb_uvlinesize = s->uvlinesize * 2;
  1919. if(mb_y&1){ //FIXME move out of this function?
  1920. dest_y -= s->linesize*15;
  1921. dest_cb-= s->uvlinesize*7;
  1922. dest_cr-= s->uvlinesize*7;
  1923. }
  1924. } else {
  1925. linesize = h->mb_linesize = s->linesize;
  1926. uvlinesize = h->mb_uvlinesize = s->uvlinesize;
  1927. }
  1928. backup_mb_border(h, dest_y, dest_cb, dest_cr, linesize, uvlinesize, !is_complex);
  1929. if(fill_filter_caches(h, mb_type) < 0)
  1930. continue;
  1931. h->chroma_qp[0] = get_chroma_qp(h, 0, s->current_picture.qscale_table[mb_xy]);
  1932. h->chroma_qp[1] = get_chroma_qp(h, 1, s->current_picture.qscale_table[mb_xy]);
  1933. if (is_complex && FRAME_MBAFF) {
  1934. ff_h264_filter_mb (h, mb_x, mb_y, dest_y, dest_cb, dest_cr, linesize, uvlinesize);
  1935. } else {
  1936. ff_h264_filter_mb_fast(h, mb_x, mb_y, dest_y, dest_cb, dest_cr, linesize, uvlinesize);
  1937. }
  1938. }
  1939. }
  1940. }
  1941. h->slice_type= old_slice_type;
  1942. s->mb_x= 0;
  1943. s->mb_y= end_mb_y - FRAME_MBAFF;
  1944. }
  1945. static int decode_slice(struct AVCodecContext *avctx, void *arg){
  1946. H264Context *h = *(void**)arg;
  1947. MpegEncContext * const s = &h->s;
  1948. const int part_mask= s->partitioned_frame ? (AC_END|AC_ERROR) : 0x7F;
  1949. s->mb_skip_run= -1;
  1950. h->is_complex = FRAME_MBAFF || s->picture_structure != PICT_FRAME || s->codec_id != CODEC_ID_H264 ||
  1951. (CONFIG_GRAY && (s->flags&CODEC_FLAG_GRAY));
  1952. if( h->pps.cabac ) {
  1953. /* realign */
  1954. align_get_bits( &s->gb );
  1955. /* init cabac */
  1956. ff_init_cabac_states( &h->cabac);
  1957. ff_init_cabac_decoder( &h->cabac,
  1958. s->gb.buffer + get_bits_count(&s->gb)/8,
  1959. (get_bits_left(&s->gb) + 7)/8);
  1960. ff_h264_init_cabac_states(h);
  1961. for(;;){
  1962. //START_TIMER
  1963. int ret = ff_h264_decode_mb_cabac(h);
  1964. int eos;
  1965. //STOP_TIMER("decode_mb_cabac")
  1966. if(ret>=0) ff_h264_hl_decode_mb(h);
  1967. if( ret >= 0 && FRAME_MBAFF ) { //FIXME optimal? or let mb_decode decode 16x32 ?
  1968. s->mb_y++;
  1969. ret = ff_h264_decode_mb_cabac(h);
  1970. if(ret>=0) ff_h264_hl_decode_mb(h);
  1971. s->mb_y--;
  1972. }
  1973. eos = get_cabac_terminate( &h->cabac );
  1974. if( ret < 0 || h->cabac.bytestream > h->cabac.bytestream_end + 2) {
  1975. av_log(h->s.avctx, AV_LOG_ERROR, "error while decoding MB %d %d, bytestream (%td)\n", s->mb_x, s->mb_y, h->cabac.bytestream_end - h->cabac.bytestream);
  1976. ff_er_add_slice(s, s->resync_mb_x, s->resync_mb_y, s->mb_x, s->mb_y, (AC_ERROR|DC_ERROR|MV_ERROR)&part_mask);
  1977. return -1;
  1978. }
  1979. if( ++s->mb_x >= s->mb_width ) {
  1980. s->mb_x = 0;
  1981. loop_filter(h);
  1982. ff_draw_horiz_band(s, 16*s->mb_y, 16);
  1983. ++s->mb_y;
  1984. if(FIELD_OR_MBAFF_PICTURE) {
  1985. ++s->mb_y;
  1986. }
  1987. }
  1988. if( eos || s->mb_y >= s->mb_height ) {
  1989. tprintf(s->avctx, "slice end %d %d\n", get_bits_count(&s->gb), s->gb.size_in_bits);
  1990. ff_er_add_slice(s, s->resync_mb_x, s->resync_mb_y, s->mb_x-1, s->mb_y, (AC_END|DC_END|MV_END)&part_mask);
  1991. return 0;
  1992. }
  1993. }
  1994. } else {
  1995. for(;;){
  1996. int ret = ff_h264_decode_mb_cavlc(h);
  1997. if(ret>=0) ff_h264_hl_decode_mb(h);
  1998. if(ret>=0 && FRAME_MBAFF){ //FIXME optimal? or let mb_decode decode 16x32 ?
  1999. s->mb_y++;
  2000. ret = ff_h264_decode_mb_cavlc(h);
  2001. if(ret>=0) ff_h264_hl_decode_mb(h);
  2002. s->mb_y--;
  2003. }
  2004. if(ret<0){
  2005. av_log(h->s.avctx, AV_LOG_ERROR, "error while decoding MB %d %d\n", s->mb_x, s->mb_y);
  2006. ff_er_add_slice(s, s->resync_mb_x, s->resync_mb_y, s->mb_x, s->mb_y, (AC_ERROR|DC_ERROR|MV_ERROR)&part_mask);
  2007. return -1;
  2008. }
  2009. if(++s->mb_x >= s->mb_width){
  2010. s->mb_x=0;
  2011. loop_filter(h);
  2012. ff_draw_horiz_band(s, 16*s->mb_y, 16);
  2013. ++s->mb_y;
  2014. if(FIELD_OR_MBAFF_PICTURE) {
  2015. ++s->mb_y;
  2016. }
  2017. if(s->mb_y >= s->mb_height){
  2018. tprintf(s->avctx, "slice end %d %d\n", get_bits_count(&s->gb), s->gb.size_in_bits);
  2019. if(get_bits_count(&s->gb) == s->gb.size_in_bits ) {
  2020. ff_er_add_slice(s, s->resync_mb_x, s->resync_mb_y, s->mb_x-1, s->mb_y, (AC_END|DC_END|MV_END)&part_mask);
  2021. return 0;
  2022. }else{
  2023. ff_er_add_slice(s, s->resync_mb_x, s->resync_mb_y, s->mb_x, s->mb_y, (AC_END|DC_END|MV_END)&part_mask);
  2024. return -1;
  2025. }
  2026. }
  2027. }
  2028. if(get_bits_count(&s->gb) >= s->gb.size_in_bits && s->mb_skip_run<=0){
  2029. tprintf(s->avctx, "slice end %d %d\n", get_bits_count(&s->gb), s->gb.size_in_bits);
  2030. if(get_bits_count(&s->gb) == s->gb.size_in_bits ){
  2031. ff_er_add_slice(s, s->resync_mb_x, s->resync_mb_y, s->mb_x-1, s->mb_y, (AC_END|DC_END|MV_END)&part_mask);
  2032. return 0;
  2033. }else{
  2034. ff_er_add_slice(s, s->resync_mb_x, s->resync_mb_y, s->mb_x, s->mb_y, (AC_ERROR|DC_ERROR|MV_ERROR)&part_mask);
  2035. return -1;
  2036. }
  2037. }
  2038. }
  2039. }
  2040. #if 0
  2041. for(;s->mb_y < s->mb_height; s->mb_y++){
  2042. for(;s->mb_x < s->mb_width; s->mb_x++){
  2043. int ret= decode_mb(h);
  2044. ff_h264_hl_decode_mb(h);
  2045. if(ret<0){
  2046. av_log(s->avctx, AV_LOG_ERROR, "error while decoding MB %d %d\n", s->mb_x, s->mb_y);
  2047. ff_er_add_slice(s, s->resync_mb_x, s->resync_mb_y, s->mb_x, s->mb_y, (AC_ERROR|DC_ERROR|MV_ERROR)&part_mask);
  2048. return -1;
  2049. }
  2050. if(++s->mb_x >= s->mb_width){
  2051. s->mb_x=0;
  2052. if(++s->mb_y >= s->mb_height){
  2053. if(get_bits_count(s->gb) == s->gb.size_in_bits){
  2054. ff_er_add_slice(s, s->resync_mb_x, s->resync_mb_y, s->mb_x-1, s->mb_y, (AC_END|DC_END|MV_END)&part_mask);
  2055. return 0;
  2056. }else{
  2057. ff_er_add_slice(s, s->resync_mb_x, s->resync_mb_y, s->mb_x, s->mb_y, (AC_END|DC_END|MV_END)&part_mask);
  2058. return -1;
  2059. }
  2060. }
  2061. }
  2062. if(get_bits_count(s->?gb) >= s->gb?.size_in_bits){
  2063. if(get_bits_count(s->gb) == s->gb.size_in_bits){
  2064. ff_er_add_slice(s, s->resync_mb_x, s->resync_mb_y, s->mb_x-1, s->mb_y, (AC_END|DC_END|MV_END)&part_mask);
  2065. return 0;
  2066. }else{
  2067. ff_er_add_slice(s, s->resync_mb_x, s->resync_mb_y, s->mb_x, s->mb_y, (AC_ERROR|DC_ERROR|MV_ERROR)&part_mask);
  2068. return -1;
  2069. }
  2070. }
  2071. }
  2072. s->mb_x=0;
  2073. ff_draw_horiz_band(s, 16*s->mb_y, 16);
  2074. }
  2075. #endif
  2076. return -1; //not reached
  2077. }
  2078. /**
  2079. * Call decode_slice() for each context.
  2080. *
  2081. * @param h h264 master context
  2082. * @param context_count number of contexts to execute
  2083. */
  2084. static void execute_decode_slices(H264Context *h, int context_count){
  2085. MpegEncContext * const s = &h->s;
  2086. AVCodecContext * const avctx= s->avctx;
  2087. H264Context *hx;
  2088. int i;
  2089. if (s->avctx->hwaccel)
  2090. return;
  2091. if(s->avctx->codec->capabilities&CODEC_CAP_HWACCEL_VDPAU)
  2092. return;
  2093. if(context_count == 1) {
  2094. decode_slice(avctx, &h);
  2095. } else {
  2096. for(i = 1; i < context_count; i++) {
  2097. hx = h->thread_context[i];
  2098. hx->s.error_recognition = avctx->error_recognition;
  2099. hx->s.error_count = 0;
  2100. }
  2101. avctx->execute(avctx, (void *)decode_slice,
  2102. h->thread_context, NULL, context_count, sizeof(void*));
  2103. /* pull back stuff from slices to master context */
  2104. hx = h->thread_context[context_count - 1];
  2105. s->mb_x = hx->s.mb_x;
  2106. s->mb_y = hx->s.mb_y;
  2107. s->dropable = hx->s.dropable;
  2108. s->picture_structure = hx->s.picture_structure;
  2109. for(i = 1; i < context_count; i++)
  2110. h->s.error_count += h->thread_context[i]->s.error_count;
  2111. }
  2112. }
  2113. static int decode_nal_units(H264Context *h, const uint8_t *buf, int buf_size){
  2114. MpegEncContext * const s = &h->s;
  2115. AVCodecContext * const avctx= s->avctx;
  2116. int buf_index=0;
  2117. H264Context *hx; ///< thread context
  2118. int context_count = 0;
  2119. int next_avc= h->is_avc ? 0 : buf_size;
  2120. h->max_contexts = avctx->thread_count;
  2121. #if 0
  2122. int i;
  2123. for(i=0; i<50; i++){
  2124. av_log(NULL, AV_LOG_ERROR,"%02X ", buf[i]);
  2125. }
  2126. #endif
  2127. if(!(s->flags2 & CODEC_FLAG2_CHUNKS)){
  2128. h->current_slice = 0;
  2129. if (!s->first_field)
  2130. s->current_picture_ptr= NULL;
  2131. ff_h264_reset_sei(h);
  2132. }
  2133. for(;;){
  2134. int consumed;
  2135. int dst_length;
  2136. int bit_length;
  2137. const uint8_t *ptr;
  2138. int i, nalsize = 0;
  2139. int err;
  2140. if(buf_index >= next_avc) {
  2141. if(buf_index >= buf_size) break;
  2142. nalsize = 0;
  2143. for(i = 0; i < h->nal_length_size; i++)
  2144. nalsize = (nalsize << 8) | buf[buf_index++];
  2145. if(nalsize <= 1 || nalsize > buf_size - buf_index){
  2146. if(nalsize == 1){
  2147. buf_index++;
  2148. continue;
  2149. }else{
  2150. av_log(h->s.avctx, AV_LOG_ERROR, "AVC: nal size %d\n", nalsize);
  2151. break;
  2152. }
  2153. }
  2154. next_avc= buf_index + nalsize;
  2155. } else {
  2156. // start code prefix search
  2157. for(; buf_index + 3 < next_avc; buf_index++){
  2158. // This should always succeed in the first iteration.
  2159. if(buf[buf_index] == 0 && buf[buf_index+1] == 0 && buf[buf_index+2] == 1)
  2160. break;
  2161. }
  2162. if(buf_index+3 >= buf_size) break;
  2163. buf_index+=3;
  2164. if(buf_index >= next_avc) continue;
  2165. }
  2166. hx = h->thread_context[context_count];
  2167. ptr= ff_h264_decode_nal(hx, buf + buf_index, &dst_length, &consumed, next_avc - buf_index);
  2168. if (ptr==NULL || dst_length < 0){
  2169. return -1;
  2170. }
  2171. while(ptr[dst_length - 1] == 0 && dst_length > 0)
  2172. dst_length--;
  2173. bit_length= !dst_length ? 0 : (8*dst_length - ff_h264_decode_rbsp_trailing(h, ptr + dst_length - 1));
  2174. if(s->avctx->debug&FF_DEBUG_STARTCODE){
  2175. av_log(h->s.avctx, AV_LOG_DEBUG, "NAL %d at %d/%d length %d\n", hx->nal_unit_type, buf_index, buf_size, dst_length);
  2176. }
  2177. if (h->is_avc && (nalsize != consumed) && nalsize){
  2178. av_log(h->s.avctx, AV_LOG_DEBUG, "AVC: Consumed only %d bytes instead of %d\n", consumed, nalsize);
  2179. }
  2180. buf_index += consumed;
  2181. if( (s->hurry_up == 1 && h->nal_ref_idc == 0) //FIXME do not discard SEI id
  2182. ||(avctx->skip_frame >= AVDISCARD_NONREF && h->nal_ref_idc == 0))
  2183. continue;
  2184. again:
  2185. err = 0;
  2186. switch(hx->nal_unit_type){
  2187. case NAL_IDR_SLICE:
  2188. if (h->nal_unit_type != NAL_IDR_SLICE) {
  2189. av_log(h->s.avctx, AV_LOG_ERROR, "Invalid mix of idr and non-idr slices");
  2190. return -1;
  2191. }
  2192. idr(h); //FIXME ensure we don't loose some frames if there is reordering
  2193. case NAL_SLICE:
  2194. init_get_bits(&hx->s.gb, ptr, bit_length);
  2195. hx->intra_gb_ptr=
  2196. hx->inter_gb_ptr= &hx->s.gb;
  2197. hx->s.data_partitioning = 0;
  2198. if((err = decode_slice_header(hx, h)))
  2199. break;
  2200. if (s->avctx->hwaccel && h->current_slice == 1) {
  2201. if (s->avctx->hwaccel->start_frame(s->avctx, NULL, 0) < 0)
  2202. return -1;
  2203. }
  2204. s->current_picture_ptr->key_frame |=
  2205. (hx->nal_unit_type == NAL_IDR_SLICE) ||
  2206. (h->sei_recovery_frame_cnt >= 0);
  2207. if(hx->redundant_pic_count==0 && hx->s.hurry_up < 5
  2208. && (avctx->skip_frame < AVDISCARD_NONREF || hx->nal_ref_idc)
  2209. && (avctx->skip_frame < AVDISCARD_BIDIR || hx->slice_type_nos!=FF_B_TYPE)
  2210. && (avctx->skip_frame < AVDISCARD_NONKEY || hx->slice_type_nos==FF_I_TYPE)
  2211. && avctx->skip_frame < AVDISCARD_ALL){
  2212. if(avctx->hwaccel) {
  2213. if (avctx->hwaccel->decode_slice(avctx, &buf[buf_index - consumed], consumed) < 0)
  2214. return -1;
  2215. }else
  2216. if(CONFIG_H264_VDPAU_DECODER && s->avctx->codec->capabilities&CODEC_CAP_HWACCEL_VDPAU){
  2217. static const uint8_t start_code[] = {0x00, 0x00, 0x01};
  2218. ff_vdpau_add_data_chunk(s, start_code, sizeof(start_code));
  2219. ff_vdpau_add_data_chunk(s, &buf[buf_index - consumed], consumed );
  2220. }else
  2221. context_count++;
  2222. }
  2223. break;
  2224. case NAL_DPA:
  2225. init_get_bits(&hx->s.gb, ptr, bit_length);
  2226. hx->intra_gb_ptr=
  2227. hx->inter_gb_ptr= NULL;
  2228. if ((err = decode_slice_header(hx, h)) < 0)
  2229. break;
  2230. hx->s.data_partitioning = 1;
  2231. break;
  2232. case NAL_DPB:
  2233. init_get_bits(&hx->intra_gb, ptr, bit_length);
  2234. hx->intra_gb_ptr= &hx->intra_gb;
  2235. break;
  2236. case NAL_DPC:
  2237. init_get_bits(&hx->inter_gb, ptr, bit_length);
  2238. hx->inter_gb_ptr= &hx->inter_gb;
  2239. if(hx->redundant_pic_count==0 && hx->intra_gb_ptr && hx->s.data_partitioning
  2240. && s->context_initialized
  2241. && s->hurry_up < 5
  2242. && (avctx->skip_frame < AVDISCARD_NONREF || hx->nal_ref_idc)
  2243. && (avctx->skip_frame < AVDISCARD_BIDIR || hx->slice_type_nos!=FF_B_TYPE)
  2244. && (avctx->skip_frame < AVDISCARD_NONKEY || hx->slice_type_nos==FF_I_TYPE)
  2245. && avctx->skip_frame < AVDISCARD_ALL)
  2246. context_count++;
  2247. break;
  2248. case NAL_SEI:
  2249. init_get_bits(&s->gb, ptr, bit_length);
  2250. ff_h264_decode_sei(h);
  2251. break;
  2252. case NAL_SPS:
  2253. init_get_bits(&s->gb, ptr, bit_length);
  2254. ff_h264_decode_seq_parameter_set(h);
  2255. if(s->flags& CODEC_FLAG_LOW_DELAY)
  2256. s->low_delay=1;
  2257. if(avctx->has_b_frames < 2)
  2258. avctx->has_b_frames= !s->low_delay;
  2259. break;
  2260. case NAL_PPS:
  2261. init_get_bits(&s->gb, ptr, bit_length);
  2262. ff_h264_decode_picture_parameter_set(h, bit_length);
  2263. break;
  2264. case NAL_AUD:
  2265. case NAL_END_SEQUENCE:
  2266. case NAL_END_STREAM:
  2267. case NAL_FILLER_DATA:
  2268. case NAL_SPS_EXT:
  2269. case NAL_AUXILIARY_SLICE:
  2270. break;
  2271. default:
  2272. av_log(avctx, AV_LOG_DEBUG, "Unknown NAL code: %d (%d bits)\n", hx->nal_unit_type, bit_length);
  2273. }
  2274. if(context_count == h->max_contexts) {
  2275. execute_decode_slices(h, context_count);
  2276. context_count = 0;
  2277. }
  2278. if (err < 0)
  2279. av_log(h->s.avctx, AV_LOG_ERROR, "decode_slice_header error\n");
  2280. else if(err == 1) {
  2281. /* Slice could not be decoded in parallel mode, copy down
  2282. * NAL unit stuff to context 0 and restart. Note that
  2283. * rbsp_buffer is not transferred, but since we no longer
  2284. * run in parallel mode this should not be an issue. */
  2285. h->nal_unit_type = hx->nal_unit_type;
  2286. h->nal_ref_idc = hx->nal_ref_idc;
  2287. hx = h;
  2288. goto again;
  2289. }
  2290. }
  2291. if(context_count)
  2292. execute_decode_slices(h, context_count);
  2293. return buf_index;
  2294. }
  2295. /**
  2296. * returns the number of bytes consumed for building the current frame
  2297. */
  2298. static int get_consumed_bytes(MpegEncContext *s, int pos, int buf_size){
  2299. if(pos==0) pos=1; //avoid infinite loops (i doubt that is needed but ...)
  2300. if(pos+10>buf_size) pos=buf_size; // oops ;)
  2301. return pos;
  2302. }
  2303. static int decode_frame(AVCodecContext *avctx,
  2304. void *data, int *data_size,
  2305. AVPacket *avpkt)
  2306. {
  2307. const uint8_t *buf = avpkt->data;
  2308. int buf_size = avpkt->size;
  2309. H264Context *h = avctx->priv_data;
  2310. MpegEncContext *s = &h->s;
  2311. AVFrame *pict = data;
  2312. int buf_index;
  2313. s->flags= avctx->flags;
  2314. s->flags2= avctx->flags2;
  2315. /* end of stream, output what is still in the buffers */
  2316. if (buf_size == 0) {
  2317. Picture *out;
  2318. int i, out_idx;
  2319. //FIXME factorize this with the output code below
  2320. out = h->delayed_pic[0];
  2321. out_idx = 0;
  2322. for(i=1; h->delayed_pic[i] && !h->delayed_pic[i]->key_frame && !h->delayed_pic[i]->mmco_reset; i++)
  2323. if(h->delayed_pic[i]->poc < out->poc){
  2324. out = h->delayed_pic[i];
  2325. out_idx = i;
  2326. }
  2327. for(i=out_idx; h->delayed_pic[i]; i++)
  2328. h->delayed_pic[i] = h->delayed_pic[i+1];
  2329. if(out){
  2330. *data_size = sizeof(AVFrame);
  2331. *pict= *(AVFrame*)out;
  2332. }
  2333. return 0;
  2334. }
  2335. if(h->is_avc && !h->got_avcC) {
  2336. int i, cnt, nalsize;
  2337. unsigned char *p = avctx->extradata;
  2338. if(avctx->extradata_size < 7) {
  2339. av_log(avctx, AV_LOG_ERROR, "avcC too short\n");
  2340. return -1;
  2341. }
  2342. if(*p != 1) {
  2343. av_log(avctx, AV_LOG_ERROR, "Unknown avcC version %d\n", *p);
  2344. return -1;
  2345. }
  2346. /* sps and pps in the avcC always have length coded with 2 bytes,
  2347. so put a fake nal_length_size = 2 while parsing them */
  2348. h->nal_length_size = 2;
  2349. // Decode sps from avcC
  2350. cnt = *(p+5) & 0x1f; // Number of sps
  2351. p += 6;
  2352. for (i = 0; i < cnt; i++) {
  2353. nalsize = AV_RB16(p) + 2;
  2354. if(decode_nal_units(h, p, nalsize) < 0) {
  2355. av_log(avctx, AV_LOG_ERROR, "Decoding sps %d from avcC failed\n", i);
  2356. return -1;
  2357. }
  2358. p += nalsize;
  2359. }
  2360. // Decode pps from avcC
  2361. cnt = *(p++); // Number of pps
  2362. for (i = 0; i < cnt; i++) {
  2363. nalsize = AV_RB16(p) + 2;
  2364. if(decode_nal_units(h, p, nalsize) != nalsize) {
  2365. av_log(avctx, AV_LOG_ERROR, "Decoding pps %d from avcC failed\n", i);
  2366. return -1;
  2367. }
  2368. p += nalsize;
  2369. }
  2370. // Now store right nal length size, that will be use to parse all other nals
  2371. h->nal_length_size = ((*(((char*)(avctx->extradata))+4))&0x03)+1;
  2372. // Do not reparse avcC
  2373. h->got_avcC = 1;
  2374. }
  2375. if(!h->got_avcC && !h->is_avc && s->avctx->extradata_size){
  2376. if(decode_nal_units(h, s->avctx->extradata, s->avctx->extradata_size) < 0)
  2377. return -1;
  2378. h->got_avcC = 1;
  2379. }
  2380. buf_index=decode_nal_units(h, buf, buf_size);
  2381. if(buf_index < 0)
  2382. return -1;
  2383. if(!(s->flags2 & CODEC_FLAG2_CHUNKS) && !s->current_picture_ptr){
  2384. if (avctx->skip_frame >= AVDISCARD_NONREF || s->hurry_up) return 0;
  2385. av_log(avctx, AV_LOG_ERROR, "no frame!\n");
  2386. return -1;
  2387. }
  2388. if(!(s->flags2 & CODEC_FLAG2_CHUNKS) || (s->mb_y >= s->mb_height && s->mb_height)){
  2389. Picture *out = s->current_picture_ptr;
  2390. Picture *cur = s->current_picture_ptr;
  2391. int i, pics, out_of_order, out_idx;
  2392. field_end(h);
  2393. if (cur->field_poc[0]==INT_MAX || cur->field_poc[1]==INT_MAX) {
  2394. /* Wait for second field. */
  2395. *data_size = 0;
  2396. } else {
  2397. cur->interlaced_frame = 0;
  2398. cur->repeat_pict = 0;
  2399. /* Signal interlacing information externally. */
  2400. /* Prioritize picture timing SEI information over used decoding process if it exists. */
  2401. if(h->sps.pic_struct_present_flag){
  2402. switch (h->sei_pic_struct)
  2403. {
  2404. case SEI_PIC_STRUCT_FRAME:
  2405. break;
  2406. case SEI_PIC_STRUCT_TOP_FIELD:
  2407. case SEI_PIC_STRUCT_BOTTOM_FIELD:
  2408. cur->interlaced_frame = 1;
  2409. break;
  2410. case SEI_PIC_STRUCT_TOP_BOTTOM:
  2411. case SEI_PIC_STRUCT_BOTTOM_TOP:
  2412. if (FIELD_OR_MBAFF_PICTURE)
  2413. cur->interlaced_frame = 1;
  2414. else
  2415. // try to flag soft telecine progressive
  2416. cur->interlaced_frame = h->prev_interlaced_frame;
  2417. break;
  2418. case SEI_PIC_STRUCT_TOP_BOTTOM_TOP:
  2419. case SEI_PIC_STRUCT_BOTTOM_TOP_BOTTOM:
  2420. // Signal the possibility of telecined film externally (pic_struct 5,6)
  2421. // From these hints, let the applications decide if they apply deinterlacing.
  2422. cur->repeat_pict = 1;
  2423. break;
  2424. case SEI_PIC_STRUCT_FRAME_DOUBLING:
  2425. // Force progressive here, as doubling interlaced frame is a bad idea.
  2426. cur->repeat_pict = 2;
  2427. break;
  2428. case SEI_PIC_STRUCT_FRAME_TRIPLING:
  2429. cur->repeat_pict = 4;
  2430. break;
  2431. }
  2432. if ((h->sei_ct_type & 3) && h->sei_pic_struct <= SEI_PIC_STRUCT_BOTTOM_TOP)
  2433. cur->interlaced_frame = (h->sei_ct_type & (1<<1)) != 0;
  2434. }else{
  2435. /* Derive interlacing flag from used decoding process. */
  2436. cur->interlaced_frame = FIELD_OR_MBAFF_PICTURE;
  2437. }
  2438. h->prev_interlaced_frame = cur->interlaced_frame;
  2439. if (cur->field_poc[0] != cur->field_poc[1]){
  2440. /* Derive top_field_first from field pocs. */
  2441. cur->top_field_first = cur->field_poc[0] < cur->field_poc[1];
  2442. }else{
  2443. if(cur->interlaced_frame || h->sps.pic_struct_present_flag){
  2444. /* Use picture timing SEI information. Even if it is a information of a past frame, better than nothing. */
  2445. if(h->sei_pic_struct == SEI_PIC_STRUCT_TOP_BOTTOM
  2446. || h->sei_pic_struct == SEI_PIC_STRUCT_TOP_BOTTOM_TOP)
  2447. cur->top_field_first = 1;
  2448. else
  2449. cur->top_field_first = 0;
  2450. }else{
  2451. /* Most likely progressive */
  2452. cur->top_field_first = 0;
  2453. }
  2454. }
  2455. //FIXME do something with unavailable reference frames
  2456. /* Sort B-frames into display order */
  2457. if(h->sps.bitstream_restriction_flag
  2458. && s->avctx->has_b_frames < h->sps.num_reorder_frames){
  2459. s->avctx->has_b_frames = h->sps.num_reorder_frames;
  2460. s->low_delay = 0;
  2461. }
  2462. if( s->avctx->strict_std_compliance >= FF_COMPLIANCE_STRICT
  2463. && !h->sps.bitstream_restriction_flag){
  2464. s->avctx->has_b_frames= MAX_DELAYED_PIC_COUNT;
  2465. s->low_delay= 0;
  2466. }
  2467. pics = 0;
  2468. while(h->delayed_pic[pics]) pics++;
  2469. assert(pics <= MAX_DELAYED_PIC_COUNT);
  2470. h->delayed_pic[pics++] = cur;
  2471. if(cur->reference == 0)
  2472. cur->reference = DELAYED_PIC_REF;
  2473. out = h->delayed_pic[0];
  2474. out_idx = 0;
  2475. for(i=1; h->delayed_pic[i] && !h->delayed_pic[i]->key_frame && !h->delayed_pic[i]->mmco_reset; i++)
  2476. if(h->delayed_pic[i]->poc < out->poc){
  2477. out = h->delayed_pic[i];
  2478. out_idx = i;
  2479. }
  2480. if(s->avctx->has_b_frames == 0 && (h->delayed_pic[0]->key_frame || h->delayed_pic[0]->mmco_reset))
  2481. h->outputed_poc= INT_MIN;
  2482. out_of_order = out->poc < h->outputed_poc;
  2483. if(h->sps.bitstream_restriction_flag && s->avctx->has_b_frames >= h->sps.num_reorder_frames)
  2484. { }
  2485. else if((out_of_order && pics-1 == s->avctx->has_b_frames && s->avctx->has_b_frames < MAX_DELAYED_PIC_COUNT)
  2486. || (s->low_delay &&
  2487. ((h->outputed_poc != INT_MIN && out->poc > h->outputed_poc + 2)
  2488. || cur->pict_type == FF_B_TYPE)))
  2489. {
  2490. s->low_delay = 0;
  2491. s->avctx->has_b_frames++;
  2492. }
  2493. if(out_of_order || pics > s->avctx->has_b_frames){
  2494. out->reference &= ~DELAYED_PIC_REF;
  2495. for(i=out_idx; h->delayed_pic[i]; i++)
  2496. h->delayed_pic[i] = h->delayed_pic[i+1];
  2497. }
  2498. if(!out_of_order && pics > s->avctx->has_b_frames){
  2499. *data_size = sizeof(AVFrame);
  2500. if(out_idx==0 && h->delayed_pic[0] && (h->delayed_pic[0]->key_frame || h->delayed_pic[0]->mmco_reset)) {
  2501. h->outputed_poc = INT_MIN;
  2502. } else
  2503. h->outputed_poc = out->poc;
  2504. *pict= *(AVFrame*)out;
  2505. }else{
  2506. av_log(avctx, AV_LOG_DEBUG, "no picture\n");
  2507. }
  2508. }
  2509. }
  2510. assert(pict->data[0] || !*data_size);
  2511. ff_print_debug_info(s, pict);
  2512. //printf("out %d\n", (int)pict->data[0]);
  2513. return get_consumed_bytes(s, buf_index, buf_size);
  2514. }
  2515. #if 0
  2516. static inline void fill_mb_avail(H264Context *h){
  2517. MpegEncContext * const s = &h->s;
  2518. const int mb_xy= s->mb_x + s->mb_y*s->mb_stride;
  2519. if(s->mb_y){
  2520. h->mb_avail[0]= s->mb_x && h->slice_table[mb_xy - s->mb_stride - 1] == h->slice_num;
  2521. h->mb_avail[1]= h->slice_table[mb_xy - s->mb_stride ] == h->slice_num;
  2522. h->mb_avail[2]= s->mb_x+1 < s->mb_width && h->slice_table[mb_xy - s->mb_stride + 1] == h->slice_num;
  2523. }else{
  2524. h->mb_avail[0]=
  2525. h->mb_avail[1]=
  2526. h->mb_avail[2]= 0;
  2527. }
  2528. h->mb_avail[3]= s->mb_x && h->slice_table[mb_xy - 1] == h->slice_num;
  2529. h->mb_avail[4]= 1; //FIXME move out
  2530. h->mb_avail[5]= 0; //FIXME move out
  2531. }
  2532. #endif
  2533. #ifdef TEST
  2534. #undef printf
  2535. #undef random
  2536. #define COUNT 8000
  2537. #define SIZE (COUNT*40)
  2538. int main(void){
  2539. int i;
  2540. uint8_t temp[SIZE];
  2541. PutBitContext pb;
  2542. GetBitContext gb;
  2543. // int int_temp[10000];
  2544. DSPContext dsp;
  2545. AVCodecContext avctx;
  2546. dsputil_init(&dsp, &avctx);
  2547. init_put_bits(&pb, temp, SIZE);
  2548. printf("testing unsigned exp golomb\n");
  2549. for(i=0; i<COUNT; i++){
  2550. START_TIMER
  2551. set_ue_golomb(&pb, i);
  2552. STOP_TIMER("set_ue_golomb");
  2553. }
  2554. flush_put_bits(&pb);
  2555. init_get_bits(&gb, temp, 8*SIZE);
  2556. for(i=0; i<COUNT; i++){
  2557. int j, s;
  2558. s= show_bits(&gb, 24);
  2559. START_TIMER
  2560. j= get_ue_golomb(&gb);
  2561. if(j != i){
  2562. printf("mismatch! at %d (%d should be %d) bits:%6X\n", i, j, i, s);
  2563. // return -1;
  2564. }
  2565. STOP_TIMER("get_ue_golomb");
  2566. }
  2567. init_put_bits(&pb, temp, SIZE);
  2568. printf("testing signed exp golomb\n");
  2569. for(i=0; i<COUNT; i++){
  2570. START_TIMER
  2571. set_se_golomb(&pb, i - COUNT/2);
  2572. STOP_TIMER("set_se_golomb");
  2573. }
  2574. flush_put_bits(&pb);
  2575. init_get_bits(&gb, temp, 8*SIZE);
  2576. for(i=0; i<COUNT; i++){
  2577. int j, s;
  2578. s= show_bits(&gb, 24);
  2579. START_TIMER
  2580. j= get_se_golomb(&gb);
  2581. if(j != i - COUNT/2){
  2582. printf("mismatch! at %d (%d should be %d) bits:%6X\n", i, j, i, s);
  2583. // return -1;
  2584. }
  2585. STOP_TIMER("get_se_golomb");
  2586. }
  2587. #if 0
  2588. printf("testing 4x4 (I)DCT\n");
  2589. DCTELEM block[16];
  2590. uint8_t src[16], ref[16];
  2591. uint64_t error= 0, max_error=0;
  2592. for(i=0; i<COUNT; i++){
  2593. int j;
  2594. // printf("%d %d %d\n", r1, r2, (r2-r1)*16);
  2595. for(j=0; j<16; j++){
  2596. ref[j]= random()%255;
  2597. src[j]= random()%255;
  2598. }
  2599. h264_diff_dct_c(block, src, ref, 4);
  2600. //normalize
  2601. for(j=0; j<16; j++){
  2602. // printf("%d ", block[j]);
  2603. block[j]= block[j]*4;
  2604. if(j&1) block[j]= (block[j]*4 + 2)/5;
  2605. if(j&4) block[j]= (block[j]*4 + 2)/5;
  2606. }
  2607. // printf("\n");
  2608. s->dsp.h264_idct_add(ref, block, 4);
  2609. /* for(j=0; j<16; j++){
  2610. printf("%d ", ref[j]);
  2611. }
  2612. printf("\n");*/
  2613. for(j=0; j<16; j++){
  2614. int diff= FFABS(src[j] - ref[j]);
  2615. error+= diff*diff;
  2616. max_error= FFMAX(max_error, diff);
  2617. }
  2618. }
  2619. printf("error=%f max_error=%d\n", ((float)error)/COUNT/16, (int)max_error );
  2620. printf("testing quantizer\n");
  2621. for(qp=0; qp<52; qp++){
  2622. for(i=0; i<16; i++)
  2623. src1_block[i]= src2_block[i]= random()%255;
  2624. }
  2625. printf("Testing NAL layer\n");
  2626. uint8_t bitstream[COUNT];
  2627. uint8_t nal[COUNT*2];
  2628. H264Context h;
  2629. memset(&h, 0, sizeof(H264Context));
  2630. for(i=0; i<COUNT; i++){
  2631. int zeros= i;
  2632. int nal_length;
  2633. int consumed;
  2634. int out_length;
  2635. uint8_t *out;
  2636. int j;
  2637. for(j=0; j<COUNT; j++){
  2638. bitstream[j]= (random() % 255) + 1;
  2639. }
  2640. for(j=0; j<zeros; j++){
  2641. int pos= random() % COUNT;
  2642. while(bitstream[pos] == 0){
  2643. pos++;
  2644. pos %= COUNT;
  2645. }
  2646. bitstream[pos]=0;
  2647. }
  2648. START_TIMER
  2649. nal_length= encode_nal(&h, nal, bitstream, COUNT, COUNT*2);
  2650. if(nal_length<0){
  2651. printf("encoding failed\n");
  2652. return -1;
  2653. }
  2654. out= ff_h264_decode_nal(&h, nal, &out_length, &consumed, nal_length);
  2655. STOP_TIMER("NAL")
  2656. if(out_length != COUNT){
  2657. printf("incorrect length %d %d\n", out_length, COUNT);
  2658. return -1;
  2659. }
  2660. if(consumed != nal_length){
  2661. printf("incorrect consumed length %d %d\n", nal_length, consumed);
  2662. return -1;
  2663. }
  2664. if(memcmp(bitstream, out, COUNT)){
  2665. printf("mismatch\n");
  2666. return -1;
  2667. }
  2668. }
  2669. #endif
  2670. printf("Testing RBSP\n");
  2671. return 0;
  2672. }
  2673. #endif /* TEST */
  2674. av_cold void ff_h264_free_context(H264Context *h)
  2675. {
  2676. int i;
  2677. free_tables(h); //FIXME cleanup init stuff perhaps
  2678. for(i = 0; i < MAX_SPS_COUNT; i++)
  2679. av_freep(h->sps_buffers + i);
  2680. for(i = 0; i < MAX_PPS_COUNT; i++)
  2681. av_freep(h->pps_buffers + i);
  2682. }
  2683. av_cold int ff_h264_decode_end(AVCodecContext *avctx)
  2684. {
  2685. H264Context *h = avctx->priv_data;
  2686. MpegEncContext *s = &h->s;
  2687. ff_h264_free_context(h);
  2688. MPV_common_end(s);
  2689. // memset(h, 0, sizeof(H264Context));
  2690. return 0;
  2691. }
  2692. AVCodec h264_decoder = {
  2693. "h264",
  2694. CODEC_TYPE_VIDEO,
  2695. CODEC_ID_H264,
  2696. sizeof(H264Context),
  2697. ff_h264_decode_init,
  2698. NULL,
  2699. ff_h264_decode_end,
  2700. decode_frame,
  2701. /*CODEC_CAP_DRAW_HORIZ_BAND |*/ CODEC_CAP_DR1 | CODEC_CAP_DELAY,
  2702. .flush= flush_dpb,
  2703. .long_name = NULL_IF_CONFIG_SMALL("H.264 / AVC / MPEG-4 AVC / MPEG-4 part 10"),
  2704. .pix_fmts= ff_hwaccel_pixfmt_list_420,
  2705. };
  2706. #if CONFIG_H264_VDPAU_DECODER
  2707. AVCodec h264_vdpau_decoder = {
  2708. "h264_vdpau",
  2709. CODEC_TYPE_VIDEO,
  2710. CODEC_ID_H264,
  2711. sizeof(H264Context),
  2712. ff_h264_decode_init,
  2713. NULL,
  2714. ff_h264_decode_end,
  2715. decode_frame,
  2716. CODEC_CAP_DR1 | CODEC_CAP_DELAY | CODEC_CAP_HWACCEL_VDPAU,
  2717. .flush= flush_dpb,
  2718. .long_name = NULL_IF_CONFIG_SMALL("H.264 / AVC / MPEG-4 AVC / MPEG-4 part 10 (VDPAU acceleration)"),
  2719. .pix_fmts = (const enum PixelFormat[]){PIX_FMT_VDPAU_H264, PIX_FMT_NONE},
  2720. };
  2721. #endif