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00028 #include <limits.h>
00029
00030 #include "avcodec.h"
00031 #include "dsputil.h"
00032 #include "mpegvideo.h"
00033 #include "h264.h"
00034 #include "rectangle.h"
00035 #include "thread.h"
00036
00037
00038
00039
00040
00041 #undef mb_intra
00042
00043 static void decode_mb(MpegEncContext *s, int ref)
00044 {
00045 s->dest[0] = s->current_picture.f.data[0] + (s->mb_y * 16 * s->linesize) + s->mb_x * 16;
00046 s->dest[1] = s->current_picture.f.data[1] + (s->mb_y * (16 >> s->chroma_y_shift) * s->uvlinesize) + s->mb_x * (16 >> s->chroma_x_shift);
00047 s->dest[2] = s->current_picture.f.data[2] + (s->mb_y * (16 >> s->chroma_y_shift) * s->uvlinesize) + s->mb_x * (16 >> s->chroma_x_shift);
00048
00049 ff_init_block_index(s);
00050 ff_update_block_index(s);
00051 s->dest[1] += (16 >> s->chroma_x_shift) - 8;
00052 s->dest[2] += (16 >> s->chroma_x_shift) - 8;
00053
00054 if (CONFIG_H264_DECODER && s->codec_id == CODEC_ID_H264) {
00055 H264Context *h = (void*)s;
00056 h->mb_xy = s->mb_x + s->mb_y * s->mb_stride;
00057 memset(h->non_zero_count_cache, 0, sizeof(h->non_zero_count_cache));
00058 av_assert1(ref >= 0);
00059
00060
00061
00062
00063 if (ref >= h->ref_count[0])
00064 ref = 0;
00065 if (!h->ref_list[0][ref].f.data[0]) {
00066 av_log(s->avctx, AV_LOG_DEBUG, "Reference not available for error concealing\n");
00067 ref = 0;
00068 }
00069 fill_rectangle(&s->current_picture.f.ref_index[0][4 * h->mb_xy],
00070 2, 2, 2, ref, 1);
00071 fill_rectangle(&h->ref_cache[0][scan8[0]], 4, 4, 8, ref, 1);
00072 fill_rectangle(h->mv_cache[0][scan8[0]], 4, 4, 8,
00073 pack16to32(s->mv[0][0][0], s->mv[0][0][1]), 4);
00074 h->mb_mbaff =
00075 h->mb_field_decoding_flag = 0;
00076 ff_h264_hl_decode_mb(h);
00077 } else {
00078 assert(ref == 0);
00079 ff_MPV_decode_mb(s, s->block);
00080 }
00081 }
00082
00087 static void set_mv_strides(MpegEncContext *s, int *mv_step, int *stride)
00088 {
00089 if (s->codec_id == CODEC_ID_H264) {
00090 H264Context *h = (void*)s;
00091 av_assert0(s->quarter_sample);
00092 *mv_step = 4;
00093 *stride = h->b_stride;
00094 } else {
00095 *mv_step = 2;
00096 *stride = s->b8_stride;
00097 }
00098 }
00099
00103 static void put_dc(MpegEncContext *s, uint8_t *dest_y, uint8_t *dest_cb,
00104 uint8_t *dest_cr, int mb_x, int mb_y)
00105 {
00106 int dc, dcu, dcv, y, i;
00107 for (i = 0; i < 4; i++) {
00108 dc = s->dc_val[0][mb_x * 2 + (i & 1) + (mb_y * 2 + (i >> 1)) * s->b8_stride];
00109 if (dc < 0)
00110 dc = 0;
00111 else if (dc > 2040)
00112 dc = 2040;
00113 for (y = 0; y < 8; y++) {
00114 int x;
00115 for (x = 0; x < 8; x++)
00116 dest_y[x + (i & 1) * 8 + (y + (i >> 1) * 8) * s->linesize] = dc / 8;
00117 }
00118 }
00119 dcu = s->dc_val[1][mb_x + mb_y * s->mb_stride];
00120 dcv = s->dc_val[2][mb_x + mb_y * s->mb_stride];
00121 if (dcu < 0)
00122 dcu = 0;
00123 else if (dcu > 2040)
00124 dcu = 2040;
00125 if (dcv < 0)
00126 dcv = 0;
00127 else if (dcv > 2040)
00128 dcv = 2040;
00129 for (y = 0; y < 8; y++) {
00130 int x;
00131 for (x = 0; x < 8; x++) {
00132 dest_cb[x + y * s->uvlinesize] = dcu / 8;
00133 dest_cr[x + y * s->uvlinesize] = dcv / 8;
00134 }
00135 }
00136 }
00137
00138 static void filter181(int16_t *data, int width, int height, int stride)
00139 {
00140 int x, y;
00141
00142
00143 for (y = 1; y < height - 1; y++) {
00144 int prev_dc = data[0 + y * stride];
00145
00146 for (x = 1; x < width - 1; x++) {
00147 int dc;
00148 dc = -prev_dc +
00149 data[x + y * stride] * 8 -
00150 data[x + 1 + y * stride];
00151 dc = (dc * 10923 + 32768) >> 16;
00152 prev_dc = data[x + y * stride];
00153 data[x + y * stride] = dc;
00154 }
00155 }
00156
00157
00158 for (x = 1; x < width - 1; x++) {
00159 int prev_dc = data[x];
00160
00161 for (y = 1; y < height - 1; y++) {
00162 int dc;
00163
00164 dc = -prev_dc +
00165 data[x + y * stride] * 8 -
00166 data[x + (y + 1) * stride];
00167 dc = (dc * 10923 + 32768) >> 16;
00168 prev_dc = data[x + y * stride];
00169 data[x + y * stride] = dc;
00170 }
00171 }
00172 }
00173
00179 static void guess_dc(MpegEncContext *s, int16_t *dc, int w,
00180 int h, int stride, int is_luma)
00181 {
00182 int b_x, b_y;
00183 int16_t (*col )[4] = av_malloc(stride*h*sizeof( int16_t)*4);
00184 uint32_t (*dist)[4] = av_malloc(stride*h*sizeof(uint32_t)*4);
00185
00186 for(b_y=0; b_y<h; b_y++){
00187 int color= 1024;
00188 int distance= -1;
00189 for(b_x=0; b_x<w; b_x++){
00190 int mb_index_j= (b_x>>is_luma) + (b_y>>is_luma)*s->mb_stride;
00191 int error_j= s->error_status_table[mb_index_j];
00192 int intra_j = IS_INTRA(s->current_picture.f.mb_type[mb_index_j]);
00193 if(intra_j==0 || !(error_j&ER_DC_ERROR)){
00194 color= dc[b_x + b_y*stride];
00195 distance= b_x;
00196 }
00197 col [b_x + b_y*stride][1]= color;
00198 dist[b_x + b_y*stride][1]= distance >= 0 ? b_x-distance : 9999;
00199 }
00200 color= 1024;
00201 distance= -1;
00202 for(b_x=w-1; b_x>=0; b_x--){
00203 int mb_index_j= (b_x>>is_luma) + (b_y>>is_luma)*s->mb_stride;
00204 int error_j= s->error_status_table[mb_index_j];
00205 int intra_j = IS_INTRA(s->current_picture.f.mb_type[mb_index_j]);
00206 if(intra_j==0 || !(error_j&ER_DC_ERROR)){
00207 color= dc[b_x + b_y*stride];
00208 distance= b_x;
00209 }
00210 col [b_x + b_y*stride][0]= color;
00211 dist[b_x + b_y*stride][0]= distance >= 0 ? distance-b_x : 9999;
00212 }
00213 }
00214 for(b_x=0; b_x<w; b_x++){
00215 int color= 1024;
00216 int distance= -1;
00217 for(b_y=0; b_y<h; b_y++){
00218 int mb_index_j= (b_x>>is_luma) + (b_y>>is_luma)*s->mb_stride;
00219 int error_j= s->error_status_table[mb_index_j];
00220 int intra_j = IS_INTRA(s->current_picture.f.mb_type[mb_index_j]);
00221 if(intra_j==0 || !(error_j&ER_DC_ERROR)){
00222 color= dc[b_x + b_y*stride];
00223 distance= b_y;
00224 }
00225 col [b_x + b_y*stride][3]= color;
00226 dist[b_x + b_y*stride][3]= distance >= 0 ? b_y-distance : 9999;
00227 }
00228 color= 1024;
00229 distance= -1;
00230 for(b_y=h-1; b_y>=0; b_y--){
00231 int mb_index_j= (b_x>>is_luma) + (b_y>>is_luma)*s->mb_stride;
00232 int error_j= s->error_status_table[mb_index_j];
00233 int intra_j = IS_INTRA(s->current_picture.f.mb_type[mb_index_j]);
00234 if(intra_j==0 || !(error_j&ER_DC_ERROR)){
00235 color= dc[b_x + b_y*stride];
00236 distance= b_y;
00237 }
00238 col [b_x + b_y*stride][2]= color;
00239 dist[b_x + b_y*stride][2]= distance >= 0 ? distance-b_y : 9999;
00240 }
00241 }
00242
00243 for (b_y = 0; b_y < h; b_y++) {
00244 for (b_x = 0; b_x < w; b_x++) {
00245 int mb_index, error, j;
00246 int64_t guess, weight_sum;
00247 mb_index = (b_x >> is_luma) + (b_y >> is_luma) * s->mb_stride;
00248 error = s->error_status_table[mb_index];
00249
00250 if (IS_INTER(s->current_picture.f.mb_type[mb_index]))
00251 continue;
00252 if (!(error & ER_DC_ERROR))
00253 continue;
00254
00255 weight_sum = 0;
00256 guess = 0;
00257 for (j = 0; j < 4; j++) {
00258 int64_t weight = 256 * 256 * 256 * 16 / FFMAX(dist[b_x + b_y*stride][j], 1);
00259 guess += weight*(int64_t)col[b_x + b_y*stride][j];
00260 weight_sum += weight;
00261 }
00262 guess = (guess + weight_sum / 2) / weight_sum;
00263 dc[b_x + b_y * stride] = guess;
00264 }
00265 }
00266 av_freep(&col);
00267 av_freep(&dist);
00268 }
00269
00275 static void h_block_filter(MpegEncContext *s, uint8_t *dst, int w,
00276 int h, int stride, int is_luma)
00277 {
00278 int b_x, b_y, mvx_stride, mvy_stride;
00279 uint8_t *cm = ff_cropTbl + MAX_NEG_CROP;
00280 set_mv_strides(s, &mvx_stride, &mvy_stride);
00281 mvx_stride >>= is_luma;
00282 mvy_stride *= mvx_stride;
00283
00284 for (b_y = 0; b_y < h; b_y++) {
00285 for (b_x = 0; b_x < w - 1; b_x++) {
00286 int y;
00287 int left_status = s->error_status_table[( b_x >> is_luma) + (b_y >> is_luma) * s->mb_stride];
00288 int right_status = s->error_status_table[((b_x + 1) >> is_luma) + (b_y >> is_luma) * s->mb_stride];
00289 int left_intra = IS_INTRA(s->current_picture.f.mb_type[( b_x >> is_luma) + (b_y >> is_luma) * s->mb_stride]);
00290 int right_intra = IS_INTRA(s->current_picture.f.mb_type[((b_x + 1) >> is_luma) + (b_y >> is_luma) * s->mb_stride]);
00291 int left_damage = left_status & ER_MB_ERROR;
00292 int right_damage = right_status & ER_MB_ERROR;
00293 int offset = b_x * 8 + b_y * stride * 8;
00294 int16_t *left_mv = s->current_picture.f.motion_val[0][mvy_stride * b_y + mvx_stride * b_x];
00295 int16_t *right_mv = s->current_picture.f.motion_val[0][mvy_stride * b_y + mvx_stride * (b_x + 1)];
00296 if (!(left_damage || right_damage))
00297 continue;
00298 if ((!left_intra) && (!right_intra) &&
00299 FFABS(left_mv[0] - right_mv[0]) +
00300 FFABS(left_mv[1] + right_mv[1]) < 2)
00301 continue;
00302
00303 for (y = 0; y < 8; y++) {
00304 int a, b, c, d;
00305
00306 a = dst[offset + 7 + y * stride] - dst[offset + 6 + y * stride];
00307 b = dst[offset + 8 + y * stride] - dst[offset + 7 + y * stride];
00308 c = dst[offset + 9 + y * stride] - dst[offset + 8 + y * stride];
00309
00310 d = FFABS(b) - ((FFABS(a) + FFABS(c) + 1) >> 1);
00311 d = FFMAX(d, 0);
00312 if (b < 0)
00313 d = -d;
00314
00315 if (d == 0)
00316 continue;
00317
00318 if (!(left_damage && right_damage))
00319 d = d * 16 / 9;
00320
00321 if (left_damage) {
00322 dst[offset + 7 + y * stride] = cm[dst[offset + 7 + y * stride] + ((d * 7) >> 4)];
00323 dst[offset + 6 + y * stride] = cm[dst[offset + 6 + y * stride] + ((d * 5) >> 4)];
00324 dst[offset + 5 + y * stride] = cm[dst[offset + 5 + y * stride] + ((d * 3) >> 4)];
00325 dst[offset + 4 + y * stride] = cm[dst[offset + 4 + y * stride] + ((d * 1) >> 4)];
00326 }
00327 if (right_damage) {
00328 dst[offset + 8 + y * stride] = cm[dst[offset + 8 + y * stride] - ((d * 7) >> 4)];
00329 dst[offset + 9 + y * stride] = cm[dst[offset + 9 + y * stride] - ((d * 5) >> 4)];
00330 dst[offset + 10+ y * stride] = cm[dst[offset + 10 + y * stride] - ((d * 3) >> 4)];
00331 dst[offset + 11+ y * stride] = cm[dst[offset + 11 + y * stride] - ((d * 1) >> 4)];
00332 }
00333 }
00334 }
00335 }
00336 }
00337
00343 static void v_block_filter(MpegEncContext *s, uint8_t *dst, int w, int h,
00344 int stride, int is_luma)
00345 {
00346 int b_x, b_y, mvx_stride, mvy_stride;
00347 uint8_t *cm = ff_cropTbl + MAX_NEG_CROP;
00348 set_mv_strides(s, &mvx_stride, &mvy_stride);
00349 mvx_stride >>= is_luma;
00350 mvy_stride *= mvx_stride;
00351
00352 for (b_y = 0; b_y < h - 1; b_y++) {
00353 for (b_x = 0; b_x < w; b_x++) {
00354 int x;
00355 int top_status = s->error_status_table[(b_x >> is_luma) + (b_y >> is_luma) * s->mb_stride];
00356 int bottom_status = s->error_status_table[(b_x >> is_luma) + ((b_y + 1) >> is_luma) * s->mb_stride];
00357 int top_intra = IS_INTRA(s->current_picture.f.mb_type[(b_x >> is_luma) + ( b_y >> is_luma) * s->mb_stride]);
00358 int bottom_intra = IS_INTRA(s->current_picture.f.mb_type[(b_x >> is_luma) + ((b_y + 1) >> is_luma) * s->mb_stride]);
00359 int top_damage = top_status & ER_MB_ERROR;
00360 int bottom_damage = bottom_status & ER_MB_ERROR;
00361 int offset = b_x * 8 + b_y * stride * 8;
00362
00363 int16_t *top_mv = s->current_picture.f.motion_val[0][mvy_stride * b_y + mvx_stride * b_x];
00364 int16_t *bottom_mv = s->current_picture.f.motion_val[0][mvy_stride * (b_y + 1) + mvx_stride * b_x];
00365
00366 if (!(top_damage || bottom_damage))
00367 continue;
00368
00369 if ((!top_intra) && (!bottom_intra) &&
00370 FFABS(top_mv[0] - bottom_mv[0]) +
00371 FFABS(top_mv[1] + bottom_mv[1]) < 2)
00372 continue;
00373
00374 for (x = 0; x < 8; x++) {
00375 int a, b, c, d;
00376
00377 a = dst[offset + x + 7 * stride] - dst[offset + x + 6 * stride];
00378 b = dst[offset + x + 8 * stride] - dst[offset + x + 7 * stride];
00379 c = dst[offset + x + 9 * stride] - dst[offset + x + 8 * stride];
00380
00381 d = FFABS(b) - ((FFABS(a) + FFABS(c) + 1) >> 1);
00382 d = FFMAX(d, 0);
00383 if (b < 0)
00384 d = -d;
00385
00386 if (d == 0)
00387 continue;
00388
00389 if (!(top_damage && bottom_damage))
00390 d = d * 16 / 9;
00391
00392 if (top_damage) {
00393 dst[offset + x + 7 * stride] = cm[dst[offset + x + 7 * stride] + ((d * 7) >> 4)];
00394 dst[offset + x + 6 * stride] = cm[dst[offset + x + 6 * stride] + ((d * 5) >> 4)];
00395 dst[offset + x + 5 * stride] = cm[dst[offset + x + 5 * stride] + ((d * 3) >> 4)];
00396 dst[offset + x + 4 * stride] = cm[dst[offset + x + 4 * stride] + ((d * 1) >> 4)];
00397 }
00398 if (bottom_damage) {
00399 dst[offset + x + 8 * stride] = cm[dst[offset + x + 8 * stride] - ((d * 7) >> 4)];
00400 dst[offset + x + 9 * stride] = cm[dst[offset + x + 9 * stride] - ((d * 5) >> 4)];
00401 dst[offset + x + 10 * stride] = cm[dst[offset + x + 10 * stride] - ((d * 3) >> 4)];
00402 dst[offset + x + 11 * stride] = cm[dst[offset + x + 11 * stride] - ((d * 1) >> 4)];
00403 }
00404 }
00405 }
00406 }
00407 }
00408
00409 static void guess_mv(MpegEncContext *s)
00410 {
00411 uint8_t *fixed = av_malloc(s->mb_stride * s->mb_height);
00412 #define MV_FROZEN 3
00413 #define MV_CHANGED 2
00414 #define MV_UNCHANGED 1
00415 const int mb_stride = s->mb_stride;
00416 const int mb_width = s->mb_width;
00417 const int mb_height = s->mb_height;
00418 int i, depth, num_avail;
00419 int mb_x, mb_y, mot_step, mot_stride;
00420
00421 set_mv_strides(s, &mot_step, &mot_stride);
00422
00423 num_avail = 0;
00424 for (i = 0; i < s->mb_num; i++) {
00425 const int mb_xy = s->mb_index2xy[i];
00426 int f = 0;
00427 int error = s->error_status_table[mb_xy];
00428
00429 if (IS_INTRA(s->current_picture.f.mb_type[mb_xy]))
00430 f = MV_FROZEN;
00431 if (!(error & ER_MV_ERROR))
00432 f = MV_FROZEN;
00433
00434 fixed[mb_xy] = f;
00435 if (f == MV_FROZEN)
00436 num_avail++;
00437 else if(s->last_picture.f.data[0] && s->last_picture.f.motion_val[0]){
00438 const int mb_y= mb_xy / s->mb_stride;
00439 const int mb_x= mb_xy % s->mb_stride;
00440 const int mot_index= (mb_x + mb_y*mot_stride) * mot_step;
00441 s->current_picture.f.motion_val[0][mot_index][0]= s->last_picture.f.motion_val[0][mot_index][0];
00442 s->current_picture.f.motion_val[0][mot_index][1]= s->last_picture.f.motion_val[0][mot_index][1];
00443 s->current_picture.f.ref_index[0][4*mb_xy] = s->last_picture.f.ref_index[0][4*mb_xy];
00444 }
00445 }
00446
00447 if ((!(s->avctx->error_concealment&FF_EC_GUESS_MVS)) ||
00448 num_avail <= mb_width / 2) {
00449 for (mb_y = 0; mb_y < s->mb_height; mb_y++) {
00450 for (mb_x = 0; mb_x < s->mb_width; mb_x++) {
00451 const int mb_xy = mb_x + mb_y * s->mb_stride;
00452
00453 if (IS_INTRA(s->current_picture.f.mb_type[mb_xy]))
00454 continue;
00455 if (!(s->error_status_table[mb_xy] & ER_MV_ERROR))
00456 continue;
00457
00458 s->mv_dir = s->last_picture.f.data[0] ? MV_DIR_FORWARD
00459 : MV_DIR_BACKWARD;
00460 s->mb_intra = 0;
00461 s->mv_type = MV_TYPE_16X16;
00462 s->mb_skipped = 0;
00463
00464 s->dsp.clear_blocks(s->block[0]);
00465
00466 s->mb_x = mb_x;
00467 s->mb_y = mb_y;
00468 s->mv[0][0][0] = 0;
00469 s->mv[0][0][1] = 0;
00470 decode_mb(s, 0);
00471 }
00472 }
00473 goto end;
00474 }
00475
00476 for (depth = 0; ; depth++) {
00477 int changed, pass, none_left;
00478
00479 none_left = 1;
00480 changed = 1;
00481 for (pass = 0; (changed || pass < 2) && pass < 10; pass++) {
00482 int mb_x, mb_y;
00483 int score_sum = 0;
00484
00485 changed = 0;
00486 for (mb_y = 0; mb_y < s->mb_height; mb_y++) {
00487 for (mb_x = 0; mb_x < s->mb_width; mb_x++) {
00488 const int mb_xy = mb_x + mb_y * s->mb_stride;
00489 int mv_predictor[8][2] = { { 0 } };
00490 int ref[8] = { 0 };
00491 int pred_count = 0;
00492 int j;
00493 int best_score = 256 * 256 * 256 * 64;
00494 int best_pred = 0;
00495 const int mot_index = (mb_x + mb_y * mot_stride) * mot_step;
00496 int prev_x, prev_y, prev_ref;
00497
00498 if ((mb_x ^ mb_y ^ pass) & 1)
00499 continue;
00500
00501 if (fixed[mb_xy] == MV_FROZEN)
00502 continue;
00503 av_assert1(!IS_INTRA(s->current_picture.f.mb_type[mb_xy]));
00504 av_assert1(s->last_picture_ptr && s->last_picture_ptr->f.data[0]);
00505
00506 j = 0;
00507 if (mb_x > 0 && fixed[mb_xy - 1] == MV_FROZEN)
00508 j = 1;
00509 if (mb_x + 1 < mb_width && fixed[mb_xy + 1] == MV_FROZEN)
00510 j = 1;
00511 if (mb_y > 0 && fixed[mb_xy - mb_stride] == MV_FROZEN)
00512 j = 1;
00513 if (mb_y + 1 < mb_height && fixed[mb_xy + mb_stride] == MV_FROZEN)
00514 j = 1;
00515 if (j == 0)
00516 continue;
00517
00518 j = 0;
00519 if (mb_x > 0 && fixed[mb_xy - 1 ] == MV_CHANGED)
00520 j = 1;
00521 if (mb_x + 1 < mb_width && fixed[mb_xy + 1 ] == MV_CHANGED)
00522 j = 1;
00523 if (mb_y > 0 && fixed[mb_xy - mb_stride] == MV_CHANGED)
00524 j = 1;
00525 if (mb_y + 1 < mb_height && fixed[mb_xy + mb_stride] == MV_CHANGED)
00526 j = 1;
00527 if (j == 0 && pass > 1)
00528 continue;
00529
00530 none_left = 0;
00531
00532 if (mb_x > 0 && fixed[mb_xy - 1]) {
00533 mv_predictor[pred_count][0] =
00534 s->current_picture.f.motion_val[0][mot_index - mot_step][0];
00535 mv_predictor[pred_count][1] =
00536 s->current_picture.f.motion_val[0][mot_index - mot_step][1];
00537 ref[pred_count] =
00538 s->current_picture.f.ref_index[0][4 * (mb_xy - 1)];
00539 pred_count++;
00540 }
00541 if (mb_x + 1 < mb_width && fixed[mb_xy + 1]) {
00542 mv_predictor[pred_count][0] =
00543 s->current_picture.f.motion_val[0][mot_index + mot_step][0];
00544 mv_predictor[pred_count][1] =
00545 s->current_picture.f.motion_val[0][mot_index + mot_step][1];
00546 ref[pred_count] =
00547 s->current_picture.f.ref_index[0][4 * (mb_xy + 1)];
00548 pred_count++;
00549 }
00550 if (mb_y > 0 && fixed[mb_xy - mb_stride]) {
00551 mv_predictor[pred_count][0] =
00552 s->current_picture.f.motion_val[0][mot_index - mot_stride * mot_step][0];
00553 mv_predictor[pred_count][1] =
00554 s->current_picture.f.motion_val[0][mot_index - mot_stride * mot_step][1];
00555 ref[pred_count] =
00556 s->current_picture.f.ref_index[0][4 * (mb_xy - s->mb_stride)];
00557 pred_count++;
00558 }
00559 if (mb_y + 1<mb_height && fixed[mb_xy + mb_stride]) {
00560 mv_predictor[pred_count][0] =
00561 s->current_picture.f.motion_val[0][mot_index + mot_stride * mot_step][0];
00562 mv_predictor[pred_count][1] =
00563 s->current_picture.f.motion_val[0][mot_index + mot_stride * mot_step][1];
00564 ref[pred_count] =
00565 s->current_picture.f.ref_index[0][4 * (mb_xy + s->mb_stride)];
00566 pred_count++;
00567 }
00568 if (pred_count == 0)
00569 continue;
00570
00571 if (pred_count > 1) {
00572 int sum_x = 0, sum_y = 0, sum_r = 0;
00573 int max_x, max_y, min_x, min_y, max_r, min_r;
00574
00575 for (j = 0; j < pred_count; j++) {
00576 sum_x += mv_predictor[j][0];
00577 sum_y += mv_predictor[j][1];
00578 sum_r += ref[j];
00579 if (j && ref[j] != ref[j - 1])
00580 goto skip_mean_and_median;
00581 }
00582
00583
00584 mv_predictor[pred_count][0] = sum_x / j;
00585 mv_predictor[pred_count][1] = sum_y / j;
00586 ref[pred_count] = sum_r / j;
00587
00588
00589 if (pred_count >= 3) {
00590 min_y = min_x = min_r = 99999;
00591 max_y = max_x = max_r = -99999;
00592 } else {
00593 min_x = min_y = max_x = max_y = min_r = max_r = 0;
00594 }
00595 for (j = 0; j < pred_count; j++) {
00596 max_x = FFMAX(max_x, mv_predictor[j][0]);
00597 max_y = FFMAX(max_y, mv_predictor[j][1]);
00598 max_r = FFMAX(max_r, ref[j]);
00599 min_x = FFMIN(min_x, mv_predictor[j][0]);
00600 min_y = FFMIN(min_y, mv_predictor[j][1]);
00601 min_r = FFMIN(min_r, ref[j]);
00602 }
00603 mv_predictor[pred_count + 1][0] = sum_x - max_x - min_x;
00604 mv_predictor[pred_count + 1][1] = sum_y - max_y - min_y;
00605 ref[pred_count + 1] = sum_r - max_r - min_r;
00606
00607 if (pred_count == 4) {
00608 mv_predictor[pred_count + 1][0] /= 2;
00609 mv_predictor[pred_count + 1][1] /= 2;
00610 ref[pred_count + 1] /= 2;
00611 }
00612 pred_count += 2;
00613 }
00614
00615 skip_mean_and_median:
00616
00617 pred_count++;
00618
00619 if (!fixed[mb_xy] && 0) {
00620 if (s->avctx->codec_id == CODEC_ID_H264) {
00621
00622 } else {
00623 ff_thread_await_progress(&s->last_picture_ptr->f,
00624 mb_y, 0);
00625 }
00626 if (!s->last_picture.f.motion_val[0] ||
00627 !s->last_picture.f.ref_index[0])
00628 goto skip_last_mv;
00629 prev_x = s->last_picture.f.motion_val[0][mot_index][0];
00630 prev_y = s->last_picture.f.motion_val[0][mot_index][1];
00631 prev_ref = s->last_picture.f.ref_index[0][4 * mb_xy];
00632 } else {
00633 prev_x = s->current_picture.f.motion_val[0][mot_index][0];
00634 prev_y = s->current_picture.f.motion_val[0][mot_index][1];
00635 prev_ref = s->current_picture.f.ref_index[0][4 * mb_xy];
00636 }
00637
00638
00639 mv_predictor[pred_count][0] = prev_x;
00640 mv_predictor[pred_count][1] = prev_y;
00641 ref[pred_count] = prev_ref;
00642 pred_count++;
00643
00644 skip_last_mv:
00645 s->mv_dir = MV_DIR_FORWARD;
00646 s->mb_intra = 0;
00647 s->mv_type = MV_TYPE_16X16;
00648 s->mb_skipped = 0;
00649
00650 s->dsp.clear_blocks(s->block[0]);
00651
00652 s->mb_x = mb_x;
00653 s->mb_y = mb_y;
00654
00655 for (j = 0; j < pred_count; j++) {
00656 int score = 0;
00657 uint8_t *src = s->current_picture.f.data[0] +
00658 mb_x * 16 + mb_y * 16 * s->linesize;
00659
00660 s->current_picture.f.motion_val[0][mot_index][0] =
00661 s->mv[0][0][0] = mv_predictor[j][0];
00662 s->current_picture.f.motion_val[0][mot_index][1] =
00663 s->mv[0][0][1] = mv_predictor[j][1];
00664
00665
00666 if (ref[j] < 0)
00667 continue;
00668
00669 decode_mb(s, ref[j]);
00670
00671 if (mb_x > 0 && fixed[mb_xy - 1]) {
00672 int k;
00673 for (k = 0; k < 16; k++)
00674 score += FFABS(src[k * s->linesize - 1] -
00675 src[k * s->linesize]);
00676 }
00677 if (mb_x + 1 < mb_width && fixed[mb_xy + 1]) {
00678 int k;
00679 for (k = 0; k < 16; k++)
00680 score += FFABS(src[k * s->linesize + 15] -
00681 src[k * s->linesize + 16]);
00682 }
00683 if (mb_y > 0 && fixed[mb_xy - mb_stride]) {
00684 int k;
00685 for (k = 0; k < 16; k++)
00686 score += FFABS(src[k - s->linesize] - src[k]);
00687 }
00688 if (mb_y + 1 < mb_height && fixed[mb_xy + mb_stride]) {
00689 int k;
00690 for (k = 0; k < 16; k++)
00691 score += FFABS(src[k + s->linesize * 15] -
00692 src[k + s->linesize * 16]);
00693 }
00694
00695 if (score <= best_score) {
00696 best_score = score;
00697 best_pred = j;
00698 }
00699 }
00700 score_sum += best_score;
00701 s->mv[0][0][0] = mv_predictor[best_pred][0];
00702 s->mv[0][0][1] = mv_predictor[best_pred][1];
00703
00704 for (i = 0; i < mot_step; i++)
00705 for (j = 0; j < mot_step; j++) {
00706 s->current_picture.f.motion_val[0][mot_index + i + j * mot_stride][0] = s->mv[0][0][0];
00707 s->current_picture.f.motion_val[0][mot_index + i + j * mot_stride][1] = s->mv[0][0][1];
00708 }
00709
00710 decode_mb(s, ref[best_pred]);
00711
00712
00713 if (s->mv[0][0][0] != prev_x || s->mv[0][0][1] != prev_y) {
00714 fixed[mb_xy] = MV_CHANGED;
00715 changed++;
00716 } else
00717 fixed[mb_xy] = MV_UNCHANGED;
00718 }
00719 }
00720
00721
00722 }
00723
00724 if (none_left)
00725 goto end;
00726
00727 for (i = 0; i < s->mb_num; i++) {
00728 int mb_xy = s->mb_index2xy[i];
00729 if (fixed[mb_xy])
00730 fixed[mb_xy] = MV_FROZEN;
00731 }
00732
00733 }
00734 end:
00735 av_free(fixed);
00736 }
00737
00738 static int is_intra_more_likely(MpegEncContext *s)
00739 {
00740 int is_intra_likely, i, j, undamaged_count, skip_amount, mb_x, mb_y;
00741
00742 if (!s->last_picture_ptr || !s->last_picture_ptr->f.data[0])
00743 return 1;
00744
00745 undamaged_count = 0;
00746 for (i = 0; i < s->mb_num; i++) {
00747 const int mb_xy = s->mb_index2xy[i];
00748 const int error = s->error_status_table[mb_xy];
00749 if (!((error & ER_DC_ERROR) && (error & ER_MV_ERROR)))
00750 undamaged_count++;
00751 }
00752
00753 if (s->codec_id == CODEC_ID_H264) {
00754 H264Context *h = (void*) s;
00755 if (h->list_count <= 0 || h->ref_count[0] <= 0 ||
00756 !h->ref_list[0][0].f.data[0])
00757 return 1;
00758 }
00759
00760 if (undamaged_count < 5)
00761 return 0;
00762
00763
00764 if (CONFIG_MPEG_XVMC_DECODER &&
00765 s->avctx->xvmc_acceleration &&
00766 s->pict_type == AV_PICTURE_TYPE_I)
00767 return 1;
00768
00769 skip_amount = FFMAX(undamaged_count / 50, 1);
00770 is_intra_likely = 0;
00771
00772 j = 0;
00773 for (mb_y = 0; mb_y < s->mb_height - 1; mb_y++) {
00774 for (mb_x = 0; mb_x < s->mb_width; mb_x++) {
00775 int error;
00776 const int mb_xy = mb_x + mb_y * s->mb_stride;
00777
00778 error = s->error_status_table[mb_xy];
00779 if ((error & ER_DC_ERROR) && (error & ER_MV_ERROR))
00780 continue;
00781
00782 j++;
00783
00784 if ((j % skip_amount) != 0)
00785 continue;
00786
00787 if (s->pict_type == AV_PICTURE_TYPE_I) {
00788 uint8_t *mb_ptr = s->current_picture.f.data[0] +
00789 mb_x * 16 + mb_y * 16 * s->linesize;
00790 uint8_t *last_mb_ptr = s->last_picture.f.data[0] +
00791 mb_x * 16 + mb_y * 16 * s->linesize;
00792
00793 if (s->avctx->codec_id == CODEC_ID_H264) {
00794
00795 } else {
00796 ff_thread_await_progress(&s->last_picture_ptr->f,
00797 mb_y, 0);
00798 }
00799 is_intra_likely += s->dsp.sad[0](NULL, last_mb_ptr, mb_ptr , s->linesize, 16);
00800
00801 is_intra_likely -= s->dsp.sad[0](NULL, last_mb_ptr, last_mb_ptr+s->linesize*16, s->linesize, 16);
00802 } else {
00803 if (IS_INTRA(s->current_picture.f.mb_type[mb_xy]))
00804 is_intra_likely++;
00805 else
00806 is_intra_likely--;
00807 }
00808 }
00809 }
00810
00811 return is_intra_likely > 0;
00812 }
00813
00814 void ff_er_frame_start(MpegEncContext *s)
00815 {
00816 if (!s->err_recognition)
00817 return;
00818
00819 memset(s->error_status_table, ER_MB_ERROR | VP_START | ER_MB_END,
00820 s->mb_stride * s->mb_height * sizeof(uint8_t));
00821 s->error_count = 3 * s->mb_num;
00822 s->error_occurred = 0;
00823 }
00824
00832 void ff_er_add_slice(MpegEncContext *s, int startx, int starty,
00833 int endx, int endy, int status)
00834 {
00835 const int start_i = av_clip(startx + starty * s->mb_width, 0, s->mb_num - 1);
00836 const int end_i = av_clip(endx + endy * s->mb_width, 0, s->mb_num);
00837 const int start_xy = s->mb_index2xy[start_i];
00838 const int end_xy = s->mb_index2xy[end_i];
00839 int mask = -1;
00840
00841 if (s->avctx->hwaccel)
00842 return;
00843
00844 if (start_i > end_i || start_xy > end_xy) {
00845 av_log(s->avctx, AV_LOG_ERROR,
00846 "internal error, slice end before start\n");
00847 return;
00848 }
00849
00850 if (!s->err_recognition)
00851 return;
00852
00853 mask &= ~VP_START;
00854 if (status & (ER_AC_ERROR | ER_AC_END)) {
00855 mask &= ~(ER_AC_ERROR | ER_AC_END);
00856 s->error_count -= end_i - start_i + 1;
00857 }
00858 if (status & (ER_DC_ERROR | ER_DC_END)) {
00859 mask &= ~(ER_DC_ERROR | ER_DC_END);
00860 s->error_count -= end_i - start_i + 1;
00861 }
00862 if (status & (ER_MV_ERROR | ER_MV_END)) {
00863 mask &= ~(ER_MV_ERROR | ER_MV_END);
00864 s->error_count -= end_i - start_i + 1;
00865 }
00866
00867 if (status & ER_MB_ERROR) {
00868 s->error_occurred = 1;
00869 s->error_count = INT_MAX;
00870 }
00871
00872 if (mask == ~0x7F) {
00873 memset(&s->error_status_table[start_xy], 0,
00874 (end_xy - start_xy) * sizeof(uint8_t));
00875 } else {
00876 int i;
00877 for (i = start_xy; i < end_xy; i++)
00878 s->error_status_table[i] &= mask;
00879 }
00880
00881 if (end_i == s->mb_num)
00882 s->error_count = INT_MAX;
00883 else {
00884 s->error_status_table[end_xy] &= mask;
00885 s->error_status_table[end_xy] |= status;
00886 }
00887
00888 s->error_status_table[start_xy] |= VP_START;
00889
00890 if (start_xy > 0 && s->avctx->thread_count <= 1 &&
00891 s->avctx->skip_top * s->mb_width < start_i) {
00892 int prev_status = s->error_status_table[s->mb_index2xy[start_i - 1]];
00893
00894 prev_status &= ~ VP_START;
00895 if (prev_status != (ER_MV_END | ER_DC_END | ER_AC_END))
00896 s->error_count = INT_MAX;
00897 }
00898 }
00899
00900 void ff_er_frame_end(MpegEncContext *s)
00901 {
00902 int i, mb_x, mb_y, error, error_type, dc_error, mv_error, ac_error;
00903 int distance;
00904 int threshold_part[4] = { 100, 100, 100 };
00905 int threshold = 50;
00906 int is_intra_likely;
00907 int size = s->b8_stride * 2 * s->mb_height;
00908 Picture *pic = s->current_picture_ptr;
00909
00910
00911
00912 if (!s->err_recognition || s->error_count == 0 || s->avctx->lowres ||
00913 s->avctx->hwaccel ||
00914 s->avctx->codec->capabilities&CODEC_CAP_HWACCEL_VDPAU ||
00915 s->picture_structure != PICT_FRAME ||
00916 s->error_count == 3 * s->mb_width *
00917 (s->avctx->skip_top + s->avctx->skip_bottom)) {
00918 return;
00919 };
00920
00921 if (s->current_picture.f.motion_val[0] == NULL) {
00922 av_log(s->avctx, AV_LOG_ERROR, "Warning MVs not available\n");
00923
00924 for (i = 0; i < 2; i++) {
00925 pic->f.ref_index[i] = av_mallocz(s->mb_stride * s->mb_height * 4 * sizeof(uint8_t));
00926 pic->motion_val_base[i] = av_mallocz((size + 4) * 2 * sizeof(uint16_t));
00927 pic->f.motion_val[i] = pic->motion_val_base[i] + 4;
00928 }
00929 pic->f.motion_subsample_log2 = 3;
00930 s->current_picture = *s->current_picture_ptr;
00931 }
00932
00933 if (s->avctx->debug & FF_DEBUG_ER) {
00934 for (mb_y = 0; mb_y < s->mb_height; mb_y++) {
00935 for (mb_x = 0; mb_x < s->mb_width; mb_x++) {
00936 int status = s->error_status_table[mb_x + mb_y * s->mb_stride];
00937
00938 av_log(s->avctx, AV_LOG_DEBUG, "%2X ", status);
00939 }
00940 av_log(s->avctx, AV_LOG_DEBUG, "\n");
00941 }
00942 }
00943
00944 #if 1
00945
00946 for (error_type = 1; error_type <= 3; error_type++) {
00947 int end_ok = 0;
00948
00949 for (i = s->mb_num - 1; i >= 0; i--) {
00950 const int mb_xy = s->mb_index2xy[i];
00951 int error = s->error_status_table[mb_xy];
00952
00953 if (error & (1 << error_type))
00954 end_ok = 1;
00955 if (error & (8 << error_type))
00956 end_ok = 1;
00957
00958 if (!end_ok)
00959 s->error_status_table[mb_xy] |= 1 << error_type;
00960
00961 if (error & VP_START)
00962 end_ok = 0;
00963 }
00964 }
00965 #endif
00966 #if 1
00967
00968 if (s->partitioned_frame) {
00969 int end_ok = 0;
00970
00971 for (i = s->mb_num - 1; i >= 0; i--) {
00972 const int mb_xy = s->mb_index2xy[i];
00973 int error = s->error_status_table[mb_xy];
00974
00975 if (error & ER_AC_END)
00976 end_ok = 0;
00977 if ((error & ER_MV_END) ||
00978 (error & ER_DC_END) ||
00979 (error & ER_AC_ERROR))
00980 end_ok = 1;
00981
00982 if (!end_ok)
00983 s->error_status_table[mb_xy]|= ER_AC_ERROR;
00984
00985 if (error & VP_START)
00986 end_ok = 0;
00987 }
00988 }
00989 #endif
00990
00991 if (s->err_recognition & AV_EF_EXPLODE) {
00992 int end_ok = 1;
00993
00994
00995 for (i = s->mb_num - 2; i >= s->mb_width + 100; i--) {
00996 const int mb_xy = s->mb_index2xy[i];
00997 int error1 = s->error_status_table[mb_xy];
00998 int error2 = s->error_status_table[s->mb_index2xy[i + 1]];
00999
01000 if (error1 & VP_START)
01001 end_ok = 1;
01002
01003 if (error2 == (VP_START | ER_MB_ERROR | ER_MB_END) &&
01004 error1 != (VP_START | ER_MB_ERROR | ER_MB_END) &&
01005 ((error1 & ER_AC_END) || (error1 & ER_DC_END) ||
01006 (error1 & ER_MV_END))) {
01007
01008 end_ok = 0;
01009 }
01010
01011 if (!end_ok)
01012 s->error_status_table[mb_xy] |= ER_MB_ERROR;
01013 }
01014 }
01015
01016 #if 1
01017
01018 distance = 9999999;
01019 for (error_type = 1; error_type <= 3; error_type++) {
01020 for (i = s->mb_num - 1; i >= 0; i--) {
01021 const int mb_xy = s->mb_index2xy[i];
01022 int error = s->error_status_table[mb_xy];
01023
01024 if (!s->mbskip_table[mb_xy])
01025 distance++;
01026 if (error & (1 << error_type))
01027 distance = 0;
01028
01029 if (s->partitioned_frame) {
01030 if (distance < threshold_part[error_type - 1])
01031 s->error_status_table[mb_xy] |= 1 << error_type;
01032 } else {
01033 if (distance < threshold)
01034 s->error_status_table[mb_xy] |= 1 << error_type;
01035 }
01036
01037 if (error & VP_START)
01038 distance = 9999999;
01039 }
01040 }
01041 #endif
01042
01043
01044 error = 0;
01045 for (i = 0; i < s->mb_num; i++) {
01046 const int mb_xy = s->mb_index2xy[i];
01047 int old_error = s->error_status_table[mb_xy];
01048
01049 if (old_error & VP_START) {
01050 error = old_error & ER_MB_ERROR;
01051 } else {
01052 error |= old_error & ER_MB_ERROR;
01053 s->error_status_table[mb_xy] |= error;
01054 }
01055 }
01056 #if 1
01057
01058 if (!s->partitioned_frame) {
01059 for (i = 0; i < s->mb_num; i++) {
01060 const int mb_xy = s->mb_index2xy[i];
01061 error = s->error_status_table[mb_xy];
01062 if (error & ER_MB_ERROR)
01063 error |= ER_MB_ERROR;
01064 s->error_status_table[mb_xy] = error;
01065 }
01066 }
01067 #endif
01068
01069 dc_error = ac_error = mv_error = 0;
01070 for (i = 0; i < s->mb_num; i++) {
01071 const int mb_xy = s->mb_index2xy[i];
01072 error = s->error_status_table[mb_xy];
01073 if (error & ER_DC_ERROR)
01074 dc_error++;
01075 if (error & ER_AC_ERROR)
01076 ac_error++;
01077 if (error & ER_MV_ERROR)
01078 mv_error++;
01079 }
01080 av_log(s->avctx, AV_LOG_INFO, "concealing %d DC, %d AC, %d MV errors\n",
01081 dc_error, ac_error, mv_error);
01082
01083 is_intra_likely = is_intra_more_likely(s);
01084
01085
01086 for (i = 0; i < s->mb_num; i++) {
01087 const int mb_xy = s->mb_index2xy[i];
01088 error = s->error_status_table[mb_xy];
01089 if (!((error & ER_DC_ERROR) && (error & ER_MV_ERROR)))
01090 continue;
01091
01092 if (is_intra_likely)
01093 s->current_picture.f.mb_type[mb_xy] = MB_TYPE_INTRA4x4;
01094 else
01095 s->current_picture.f.mb_type[mb_xy] = MB_TYPE_16x16 | MB_TYPE_L0;
01096 }
01097
01098
01099 if (!s->last_picture.f.data[0] && !s->next_picture.f.data[0])
01100 for (i = 0; i < s->mb_num; i++) {
01101 const int mb_xy = s->mb_index2xy[i];
01102 if (!IS_INTRA(s->current_picture.f.mb_type[mb_xy]))
01103 s->current_picture.f.mb_type[mb_xy] = MB_TYPE_INTRA4x4;
01104 }
01105
01106
01107 for (mb_y = 0; mb_y < s->mb_height; mb_y++) {
01108 for (mb_x = 0; mb_x < s->mb_width; mb_x++) {
01109 const int mb_xy = mb_x + mb_y * s->mb_stride;
01110 const int mb_type = s->current_picture.f.mb_type[mb_xy];
01111 int dir = !s->last_picture.f.data[0];
01112
01113 error = s->error_status_table[mb_xy];
01114
01115 if (IS_INTRA(mb_type))
01116 continue;
01117 if (error & ER_MV_ERROR)
01118 continue;
01119 if (!(error & ER_AC_ERROR))
01120 continue;
01121
01122 s->mv_dir = dir ? MV_DIR_BACKWARD : MV_DIR_FORWARD;
01123 s->mb_intra = 0;
01124 s->mb_skipped = 0;
01125 if (IS_8X8(mb_type)) {
01126 int mb_index = mb_x * 2 + mb_y * 2 * s->b8_stride;
01127 int j;
01128 s->mv_type = MV_TYPE_8X8;
01129 for (j = 0; j < 4; j++) {
01130 s->mv[0][j][0] = s->current_picture.f.motion_val[dir][mb_index + (j & 1) + (j >> 1) * s->b8_stride][0];
01131 s->mv[0][j][1] = s->current_picture.f.motion_val[dir][mb_index + (j & 1) + (j >> 1) * s->b8_stride][1];
01132 }
01133 } else {
01134 s->mv_type = MV_TYPE_16X16;
01135 s->mv[0][0][0] = s->current_picture.f.motion_val[dir][mb_x * 2 + mb_y * 2 * s->b8_stride][0];
01136 s->mv[0][0][1] = s->current_picture.f.motion_val[dir][mb_x * 2 + mb_y * 2 * s->b8_stride][1];
01137 }
01138
01139 s->dsp.clear_blocks(s->block[0]);
01140
01141 s->mb_x = mb_x;
01142 s->mb_y = mb_y;
01143 decode_mb(s, 0 );
01144 }
01145 }
01146
01147
01148 if (s->pict_type == AV_PICTURE_TYPE_B) {
01149 for (mb_y = 0; mb_y < s->mb_height; mb_y++) {
01150 for (mb_x = 0; mb_x < s->mb_width; mb_x++) {
01151 int xy = mb_x * 2 + mb_y * 2 * s->b8_stride;
01152 const int mb_xy = mb_x + mb_y * s->mb_stride;
01153 const int mb_type = s->current_picture.f.mb_type[mb_xy];
01154
01155 error = s->error_status_table[mb_xy];
01156
01157 if (IS_INTRA(mb_type))
01158 continue;
01159 if (!(error & ER_MV_ERROR))
01160 continue;
01161 if (!(error & ER_AC_ERROR))
01162 continue;
01163
01164 s->mv_dir = MV_DIR_FORWARD | MV_DIR_BACKWARD;
01165 if (!s->last_picture.f.data[0])
01166 s->mv_dir &= ~MV_DIR_FORWARD;
01167 if (!s->next_picture.f.data[0])
01168 s->mv_dir &= ~MV_DIR_BACKWARD;
01169 s->mb_intra = 0;
01170 s->mv_type = MV_TYPE_16X16;
01171 s->mb_skipped = 0;
01172
01173 if (s->pp_time) {
01174 int time_pp = s->pp_time;
01175 int time_pb = s->pb_time;
01176
01177 if (s->avctx->codec_id == CODEC_ID_H264) {
01178
01179 } else {
01180 ff_thread_await_progress(&s->next_picture_ptr->f, mb_y, 0);
01181 }
01182 s->mv[0][0][0] = s->next_picture.f.motion_val[0][xy][0] * time_pb / time_pp;
01183 s->mv[0][0][1] = s->next_picture.f.motion_val[0][xy][1] * time_pb / time_pp;
01184 s->mv[1][0][0] = s->next_picture.f.motion_val[0][xy][0] * (time_pb - time_pp) / time_pp;
01185 s->mv[1][0][1] = s->next_picture.f.motion_val[0][xy][1] * (time_pb - time_pp) / time_pp;
01186 } else {
01187 s->mv[0][0][0] = 0;
01188 s->mv[0][0][1] = 0;
01189 s->mv[1][0][0] = 0;
01190 s->mv[1][0][1] = 0;
01191 }
01192
01193 s->dsp.clear_blocks(s->block[0]);
01194 s->mb_x = mb_x;
01195 s->mb_y = mb_y;
01196 decode_mb(s, 0);
01197 }
01198 }
01199 } else
01200 guess_mv(s);
01201
01202
01203 if (CONFIG_MPEG_XVMC_DECODER && s->avctx->xvmc_acceleration)
01204 goto ec_clean;
01205
01206 for (mb_y = 0; mb_y < s->mb_height; mb_y++) {
01207 for (mb_x = 0; mb_x < s->mb_width; mb_x++) {
01208 int dc, dcu, dcv, y, n;
01209 int16_t *dc_ptr;
01210 uint8_t *dest_y, *dest_cb, *dest_cr;
01211 const int mb_xy = mb_x + mb_y * s->mb_stride;
01212 const int mb_type = s->current_picture.f.mb_type[mb_xy];
01213
01214 error = s->error_status_table[mb_xy];
01215
01216 if (IS_INTRA(mb_type) && s->partitioned_frame)
01217 continue;
01218
01219
01220
01221 dest_y = s->current_picture.f.data[0] + mb_x * 16 + mb_y * 16 * s->linesize;
01222 dest_cb = s->current_picture.f.data[1] + mb_x * 8 + mb_y * 8 * s->uvlinesize;
01223 dest_cr = s->current_picture.f.data[2] + mb_x * 8 + mb_y * 8 * s->uvlinesize;
01224
01225 dc_ptr = &s->dc_val[0][mb_x * 2 + mb_y * 2 * s->b8_stride];
01226 for (n = 0; n < 4; n++) {
01227 dc = 0;
01228 for (y = 0; y < 8; y++) {
01229 int x;
01230 for (x = 0; x < 8; x++)
01231 dc += dest_y[x + (n & 1) * 8 +
01232 (y + (n >> 1) * 8) * s->linesize];
01233 }
01234 dc_ptr[(n & 1) + (n >> 1) * s->b8_stride] = (dc + 4) >> 3;
01235 }
01236
01237 dcu = dcv = 0;
01238 for (y = 0; y < 8; y++) {
01239 int x;
01240 for (x = 0; x < 8; x++) {
01241 dcu += dest_cb[x + y * s->uvlinesize];
01242 dcv += dest_cr[x + y * s->uvlinesize];
01243 }
01244 }
01245 s->dc_val[1][mb_x + mb_y * s->mb_stride] = (dcu + 4) >> 3;
01246 s->dc_val[2][mb_x + mb_y * s->mb_stride] = (dcv + 4) >> 3;
01247 }
01248 }
01249 #if 1
01250
01251 guess_dc(s, s->dc_val[0], s->mb_width*2, s->mb_height*2, s->b8_stride, 1);
01252 guess_dc(s, s->dc_val[1], s->mb_width , s->mb_height , s->mb_stride, 0);
01253 guess_dc(s, s->dc_val[2], s->mb_width , s->mb_height , s->mb_stride, 0);
01254 #endif
01255
01256
01257 filter181(s->dc_val[0], s->mb_width * 2, s->mb_height * 2, s->b8_stride);
01258
01259 #if 1
01260
01261 for (mb_y = 0; mb_y < s->mb_height; mb_y++) {
01262 for (mb_x = 0; mb_x < s->mb_width; mb_x++) {
01263 uint8_t *dest_y, *dest_cb, *dest_cr;
01264 const int mb_xy = mb_x + mb_y * s->mb_stride;
01265 const int mb_type = s->current_picture.f.mb_type[mb_xy];
01266
01267 error = s->error_status_table[mb_xy];
01268
01269 if (IS_INTER(mb_type))
01270 continue;
01271 if (!(error & ER_AC_ERROR))
01272 continue;
01273
01274 dest_y = s->current_picture.f.data[0] + mb_x * 16 + mb_y * 16 * s->linesize;
01275 dest_cb = s->current_picture.f.data[1] + mb_x * 8 + mb_y * 8 * s->uvlinesize;
01276 dest_cr = s->current_picture.f.data[2] + mb_x * 8 + mb_y * 8 * s->uvlinesize;
01277
01278 put_dc(s, dest_y, dest_cb, dest_cr, mb_x, mb_y);
01279 }
01280 }
01281 #endif
01282
01283 if (s->avctx->error_concealment & FF_EC_DEBLOCK) {
01284
01285 h_block_filter(s, s->current_picture.f.data[0], s->mb_width * 2,
01286 s->mb_height * 2, s->linesize, 1);
01287 h_block_filter(s, s->current_picture.f.data[1], s->mb_width,
01288 s->mb_height , s->uvlinesize, 0);
01289 h_block_filter(s, s->current_picture.f.data[2], s->mb_width,
01290 s->mb_height , s->uvlinesize, 0);
01291
01292
01293 v_block_filter(s, s->current_picture.f.data[0], s->mb_width * 2,
01294 s->mb_height * 2, s->linesize, 1);
01295 v_block_filter(s, s->current_picture.f.data[1], s->mb_width,
01296 s->mb_height , s->uvlinesize, 0);
01297 v_block_filter(s, s->current_picture.f.data[2], s->mb_width,
01298 s->mb_height , s->uvlinesize, 0);
01299 }
01300
01301 ec_clean:
01302
01303 for (i = 0; i < s->mb_num; i++) {
01304 const int mb_xy = s->mb_index2xy[i];
01305 int error = s->error_status_table[mb_xy];
01306
01307 if (s->pict_type != AV_PICTURE_TYPE_B &&
01308 (error & (ER_DC_ERROR | ER_MV_ERROR | ER_AC_ERROR))) {
01309 s->mbskip_table[mb_xy] = 0;
01310 }
01311 s->mbintra_table[mb_xy] = 1;
01312 }
01313 }