Coverage Report

Created: 2026-07-25 07:52

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/theora/lib/analyze.c
Line
Count
Source
1
/********************************************************************
2
 *                                                                  *
3
 * THIS FILE IS PART OF THE OggTheora SOFTWARE CODEC SOURCE CODE.   *
4
 * USE, DISTRIBUTION AND REPRODUCTION OF THIS LIBRARY SOURCE IS     *
5
 * GOVERNED BY A BSD-STYLE SOURCE LICENSE INCLUDED WITH THIS SOURCE *
6
 * IN 'COPYING'. PLEASE READ THESE TERMS BEFORE DISTRIBUTING.       *
7
 *                                                                  *
8
 * THE Theora SOURCE CODE IS COPYRIGHT (C) 2002-2009,2025           *
9
 * by the Xiph.Org Foundation https://www.xiph.org/                 *
10
 *                                                                  *
11
 ********************************************************************
12
13
  function: mode selection code
14
15
 ********************************************************************/
16
#include <limits.h>
17
#include <string.h>
18
#include "encint.h"
19
#include "modedec.h"
20
#if defined(OC_COLLECT_METRICS)
21
# include "collect.c"
22
#endif
23
24
25
26
typedef struct oc_rd_metric          oc_rd_metric;
27
typedef struct oc_mode_choice        oc_mode_choice;
28
29
30
31
/*There are 8 possible schemes used to encode macro block modes.
32
  Schemes 0-6 use a maximally-skewed Huffman code to code each of the modes.
33
  The same set of Huffman codes is used for each of these 7 schemes, but the
34
   mode assigned to each codeword varies.
35
  Scheme 0 writes a custom mapping from codeword to MB mode to the bitstream,
36
   while schemes 1-6 have a fixed mapping.
37
  Scheme 7 just encodes each mode directly in 3 bits.*/
38
39
/*The mode orderings for the various mode coding schemes.
40
  Scheme 0 uses a custom alphabet, which is not stored in this table.
41
  This is the inverse of the equivalent table OC_MODE_ALPHABETS in the
42
   decoder.*/
43
static const unsigned char OC_MODE_RANKS[7][OC_NMODES]={
44
  /*Last MV dominates.*/
45
  /*L P M N I G GM 4*/
46
  {3,4,2,0,1,5,6,7},
47
  /*L P N M I G GM 4*/
48
  {2,4,3,0,1,5,6,7},
49
  /*L M P N I G GM 4*/
50
  {3,4,1,0,2,5,6,7},
51
  /*L M N P I G GM 4*/
52
  {2,4,1,0,3,5,6,7},
53
  /*No MV dominates.*/
54
  /*N L P M I G GM 4*/
55
  {0,4,3,1,2,5,6,7},
56
  /*N G L P M I GM 4*/
57
  {0,5,4,2,3,1,6,7},
58
  /*Default ordering.*/
59
  /*N I M L P G GM 4*/
60
  {0,1,2,3,4,5,6,7}
61
};
62
63
64
65
/*Initialize the mode scheme chooser.
66
  This need only be called once per encoder.*/
67
2.99k
void oc_mode_scheme_chooser_init(oc_mode_scheme_chooser *_chooser){
68
2.99k
  int si;
69
2.99k
  _chooser->mode_ranks[0]=_chooser->scheme0_ranks;
70
23.9k
  for(si=1;si<8;si++)_chooser->mode_ranks[si]=OC_MODE_RANKS[si-1];
71
2.99k
}
72
73
/*Reset the mode scheme chooser.
74
  This needs to be called once for each frame, including the first.*/
75
40.2k
static void oc_mode_scheme_chooser_reset(oc_mode_scheme_chooser *_chooser){
76
40.2k
  int si;
77
40.2k
  memset(_chooser->mode_counts,0,OC_NMODES*sizeof(*_chooser->mode_counts));
78
  /*Scheme 0 starts with 24 bits to store the mode list in.*/
79
40.2k
  _chooser->scheme_bits[0]=24;
80
40.2k
  memset(_chooser->scheme_bits+1,0,7*sizeof(*_chooser->scheme_bits));
81
362k
  for(si=0;si<8;si++){
82
    /*Scheme 7 should always start first, and scheme 0 should always start
83
       last.*/
84
322k
    _chooser->scheme_list[si]=7-si;
85
322k
    _chooser->scheme0_list[si]=_chooser->scheme0_ranks[si]=si;
86
322k
  }
87
40.2k
}
88
89
/*Return the cost of coding _mb_mode in the specified scheme.*/
90
static int oc_mode_scheme_chooser_scheme_mb_cost(
91
10.6M
 const oc_mode_scheme_chooser *_chooser,int _scheme,int _mb_mode){
92
10.6M
  int codebook;
93
10.6M
  int ri;
94
10.6M
  codebook=_scheme+1>>3;
95
  /*For any scheme except 0, we can just use the bit cost of the mode's rank
96
     in that scheme.*/
97
10.6M
  ri=_chooser->mode_ranks[_scheme][_mb_mode];
98
10.6M
  if(_scheme==0){
99
1.41M
    int mc;
100
    /*For scheme 0, incrementing the mode count could potentially change the
101
       mode's rank.
102
      Find the index where the mode would be moved to in the optimal list,
103
       and use its bit cost instead of the one for the mode's current
104
       position in the list.*/
105
    /*We don't actually reorder the list; this is for computing opportunity
106
       cost, not an update.*/
107
1.41M
    mc=_chooser->mode_counts[_mb_mode];
108
3.38M
    while(ri>0&&mc>=_chooser->mode_counts[_chooser->scheme0_list[ri-1]])ri--;
109
1.41M
  }
110
10.6M
  return OC_MODE_BITS[codebook][ri];
111
10.6M
}
112
113
/*This is the real purpose of this data structure: not actually selecting a
114
   mode scheme, but estimating the cost of coding a given mode given all the
115
   modes selected so far.
116
  This is done via opportunity cost: the cost is defined as the number of bits
117
   required to encode all the modes selected so far including the current one
118
   using the best possible scheme, minus the number of bits required to encode
119
   all the modes selected so far not including the current one using the best
120
   possible scheme.
121
  The computational expense of doing this probably makes it overkill.
122
  Just be happy we take a greedy approach instead of trying to solve the
123
   global mode-selection problem (which is NP-hard).
124
  _mb_mode: The mode to determine the cost of.
125
  Return: The number of bits required to code this mode.*/
126
static int oc_mode_scheme_chooser_cost(oc_mode_scheme_chooser *_chooser,
127
3.06M
 int _mb_mode){
128
3.06M
  int scheme0;
129
3.06M
  int scheme1;
130
3.06M
  int best_bits;
131
3.06M
  int mode_bits;
132
3.06M
  int si;
133
3.06M
  int scheme0_bits;
134
3.06M
  int scheme1_bits;
135
3.06M
  scheme0=_chooser->scheme_list[0];
136
3.06M
  scheme1=_chooser->scheme_list[1];
137
3.06M
  scheme0_bits=_chooser->scheme_bits[scheme0];
138
3.06M
  scheme1_bits=_chooser->scheme_bits[scheme1];
139
3.06M
  mode_bits=oc_mode_scheme_chooser_scheme_mb_cost(_chooser,scheme0,_mb_mode);
140
  /*Typical case: If the difference between the best scheme and the next best
141
     is greater than 6 bits, then adding just one mode cannot change which
142
     scheme we use.*/
143
3.06M
  if(scheme1_bits-scheme0_bits>6)return mode_bits;
144
  /*Otherwise, check to see if adding this mode selects a different scheme as
145
     the best.*/
146
1.52M
  si=1;
147
1.52M
  best_bits=scheme0_bits+mode_bits;
148
7.58M
  do{
149
7.58M
    int cur_bits;
150
7.58M
    cur_bits=scheme1_bits+
151
7.58M
     oc_mode_scheme_chooser_scheme_mb_cost(_chooser,scheme1,_mb_mode);
152
7.58M
    if(cur_bits<best_bits)best_bits=cur_bits;
153
7.58M
    if(++si>=8)break;
154
7.58M
    scheme1=_chooser->scheme_list[si];
155
7.58M
    scheme1_bits=_chooser->scheme_bits[scheme1];
156
7.58M
  }
157
7.58M
  while(scheme1_bits-scheme0_bits<=6);
158
1.52M
  return best_bits-scheme0_bits;
159
3.06M
}
160
161
/*Incrementally update the mode counts and per-scheme bit counts and re-order
162
   the scheme lists once a mode has been selected.
163
  _mb_mode: The mode that was chosen.*/
164
static void oc_mode_scheme_chooser_update(oc_mode_scheme_chooser *_chooser,
165
235k
 int _mb_mode){
166
235k
  int ri;
167
235k
  int si;
168
235k
  _chooser->mode_counts[_mb_mode]++;
169
  /*Re-order the scheme0 mode list if necessary.*/
170
317k
  for(ri=_chooser->scheme0_ranks[_mb_mode];ri>0;ri--){
171
125k
    int pmode;
172
125k
    pmode=_chooser->scheme0_list[ri-1];
173
125k
    if(_chooser->mode_counts[pmode]>=_chooser->mode_counts[_mb_mode])break;
174
    /*Reorder the mode ranking.*/
175
81.9k
    _chooser->scheme0_ranks[pmode]++;
176
81.9k
    _chooser->scheme0_list[ri]=pmode;
177
81.9k
  }
178
235k
  _chooser->scheme0_ranks[_mb_mode]=ri;
179
235k
  _chooser->scheme0_list[ri]=_mb_mode;
180
  /*Now add the bit cost for the mode to each scheme.*/
181
2.11M
  for(si=0;si<8;si++){
182
1.88M
    _chooser->scheme_bits[si]+=
183
1.88M
     OC_MODE_BITS[si+1>>3][_chooser->mode_ranks[si][_mb_mode]];
184
1.88M
  }
185
  /*Finally, re-order the list of schemes.*/
186
1.88M
  for(si=1;si<8;si++){
187
1.64M
    int sj;
188
1.64M
    int scheme0;
189
1.64M
    int bits0;
190
1.64M
    sj=si;
191
1.64M
    scheme0=_chooser->scheme_list[si];
192
1.64M
    bits0=_chooser->scheme_bits[scheme0];
193
1.84M
    do{
194
1.84M
      int scheme1;
195
1.84M
      scheme1=_chooser->scheme_list[sj-1];
196
1.84M
      if(bits0>=_chooser->scheme_bits[scheme1])break;
197
211k
      _chooser->scheme_list[sj]=scheme1;
198
211k
    }
199
1.64M
    while(--sj>0);
200
1.64M
    _chooser->scheme_list[sj]=scheme0;
201
1.64M
  }
202
235k
}
203
204
205
206
/*The number of bits required to encode a super block run.
207
  _run_count: The desired run count; must be positive and less than 4130.*/
208
145M
static int oc_sb_run_bits(int _run_count){
209
145M
  int i;
210
543M
  for(i=0;_run_count>=OC_SB_RUN_VAL_MIN[i+1];i++);
211
145M
  return OC_SB_RUN_CODE_NBITS[i];
212
145M
}
213
214
/*The number of bits required to encode a block run.
215
  _run_count: The desired run count; must be positive and less than 30.*/
216
18.5M
static int oc_block_run_bits(int _run_count){
217
18.5M
  return OC_BLOCK_RUN_CODE_NBITS[_run_count-1];
218
18.5M
}
219
220
221
222
207k
static void oc_fr_state_init(oc_fr_state *_fr){
223
207k
  _fr->bits=0;
224
207k
  _fr->sb_partial_count=0;
225
207k
  _fr->sb_full_count=0;
226
207k
  _fr->b_coded_count_prev=0;
227
207k
  _fr->b_coded_count=0;
228
207k
  _fr->b_count=0;
229
207k
  _fr->sb_prefer_partial=0;
230
207k
  _fr->sb_bits=0;
231
207k
  _fr->sb_partial=-1;
232
207k
  _fr->sb_full=-1;
233
207k
  _fr->b_coded_prev=-1;
234
207k
  _fr->b_coded=-1;
235
207k
}
236
237
238
static int oc_fr_state_sb_cost(const oc_fr_state *_fr,
239
9.31M
 int _sb_partial,int _sb_full){
240
9.31M
  int bits;
241
9.31M
  int sb_partial_count;
242
9.31M
  int sb_full_count;
243
9.31M
  bits=0;
244
9.31M
  sb_partial_count=_fr->sb_partial_count;
245
  /*Extend the sb_partial run, or start a new one.*/
246
9.31M
  if(_fr->sb_partial==_sb_partial){
247
1.96M
    if(sb_partial_count>=4129){
248
0
      bits++;
249
0
      sb_partial_count=0;
250
0
    }
251
1.96M
    else bits-=oc_sb_run_bits(sb_partial_count);
252
1.96M
  }
253
7.34M
  else sb_partial_count=0;
254
9.31M
  bits+=oc_sb_run_bits(++sb_partial_count);
255
9.31M
  if(!_sb_partial){
256
    /*Extend the sb_full run, or start a new one.*/
257
2.65M
    sb_full_count=_fr->sb_full_count;
258
2.65M
    if(_fr->sb_full==_sb_full){
259
833k
      if(sb_full_count>=4129){
260
0
        bits++;
261
0
        sb_full_count=0;
262
0
      }
263
833k
      else bits-=oc_sb_run_bits(sb_full_count);
264
833k
    }
265
1.82M
    else sb_full_count=0;
266
2.65M
    bits+=oc_sb_run_bits(++sb_full_count);
267
2.65M
  }
268
9.31M
  return bits;
269
9.31M
}
270
271
static void oc_fr_state_advance_sb(oc_fr_state *_fr,
272
217k
 int _sb_partial,int _sb_full){
273
217k
  int sb_partial_count;
274
217k
  int sb_full_count;
275
217k
  sb_partial_count=_fr->sb_partial_count;
276
217k
  if(_fr->sb_partial!=_sb_partial||sb_partial_count>=4129)sb_partial_count=0;
277
217k
  sb_partial_count++;
278
217k
  if(!_sb_partial){
279
136k
    sb_full_count=_fr->sb_full_count;
280
136k
    if(_fr->sb_full!=_sb_full||sb_full_count>=4129)sb_full_count=0;
281
136k
    sb_full_count++;
282
136k
    _fr->sb_full_count=sb_full_count;
283
136k
    _fr->sb_full=_sb_full;
284
    /*Roll back the partial block state.*/
285
136k
    _fr->b_coded=_fr->b_coded_prev;
286
136k
    _fr->b_coded_count=_fr->b_coded_count_prev;
287
136k
  }
288
81.1k
  else{
289
    /*Commit back the partial block state.*/
290
81.1k
    _fr->b_coded_prev=_fr->b_coded;
291
81.1k
    _fr->b_coded_count_prev=_fr->b_coded_count;
292
81.1k
  }
293
217k
  _fr->sb_partial_count=sb_partial_count;
294
217k
  _fr->sb_partial=_sb_partial;
295
217k
  _fr->b_count=0;
296
217k
  _fr->sb_prefer_partial=0;
297
217k
  _fr->sb_bits=0;
298
217k
}
299
300
/*Commit the state of the current super block and advance to the next.*/
301
217k
static void oc_fr_state_flush_sb(oc_fr_state *_fr){
302
217k
  int sb_partial;
303
217k
  int sb_full;
304
217k
  int b_coded_count;
305
217k
  int b_count;
306
217k
  b_count=_fr->b_count;
307
217k
  b_coded_count=_fr->b_coded_count;
308
217k
  sb_full=_fr->b_coded;
309
217k
  sb_partial=b_coded_count<b_count;
310
217k
  if(!sb_partial){
311
    /*If the super block is fully coded/uncoded...*/
312
136k
    if(_fr->sb_prefer_partial){
313
      /*So far coding this super block as partial was cheaper anyway.*/
314
1.15k
      if(b_coded_count>15||_fr->b_coded_prev<0){
315
797
        int sb_bits;
316
        /*If the block run is too long, this will limit how far it can be
317
           extended into the next partial super block.
318
          If we need to extend it farther, we don't want to have to roll all
319
           the way back here (since there could be many full SBs between now
320
           and then), so we disallow this.
321
          Similarly, if this is the start of a stripe, we don't know how the
322
           length of the outstanding block run from the previous stripe.*/
323
797
        sb_bits=oc_fr_state_sb_cost(_fr,sb_partial,sb_full);
324
797
        _fr->bits+=sb_bits-_fr->sb_bits;
325
797
        _fr->sb_bits=sb_bits;
326
797
      }
327
359
      else sb_partial=1;
328
1.15k
    }
329
136k
  }
330
217k
  oc_fr_state_advance_sb(_fr,sb_partial,sb_full);
331
217k
}
332
333
23.2M
static void oc_fr_state_advance_block(oc_fr_state *_fr,int _b_coded){
334
23.2M
  ptrdiff_t bits;
335
23.2M
  int       sb_bits;
336
23.2M
  int       b_coded_count;
337
23.2M
  int       b_count;
338
23.2M
  int       sb_prefer_partial;
339
23.2M
  sb_bits=_fr->sb_bits;
340
23.2M
  bits=_fr->bits-sb_bits;
341
23.2M
  b_count=_fr->b_count;
342
23.2M
  b_coded_count=_fr->b_coded_count;
343
23.2M
  sb_prefer_partial=_fr->sb_prefer_partial;
344
23.2M
  if(b_coded_count>=b_count){
345
16.4M
    int sb_partial_bits;
346
    /*This super block is currently fully coded/uncoded.*/
347
16.4M
    if(b_count<=0){
348
      /*This is the first block in this SB.*/
349
2.22M
      b_count=1;
350
      /*Check to see whether it's cheaper to code it partially or fully.*/
351
2.22M
      if(_fr->b_coded==_b_coded){
352
435k
        sb_partial_bits=-oc_block_run_bits(b_coded_count);
353
435k
        sb_partial_bits+=oc_block_run_bits(++b_coded_count);
354
435k
      }
355
1.78M
      else{
356
1.78M
        b_coded_count=1;
357
1.78M
        sb_partial_bits=2;
358
1.78M
      }
359
2.22M
      sb_partial_bits+=oc_fr_state_sb_cost(_fr,1,_b_coded);
360
2.22M
      sb_bits=oc_fr_state_sb_cost(_fr,0,_b_coded);
361
2.22M
      sb_prefer_partial=sb_partial_bits<sb_bits;
362
2.22M
      sb_bits^=(sb_partial_bits^sb_bits)&-sb_prefer_partial;
363
2.22M
    }
364
14.2M
    else if(_fr->b_coded==_b_coded){
365
9.58M
      b_coded_count++;
366
9.58M
      if(++b_count<16){
367
9.23M
        if(sb_prefer_partial){
368
          /*Check to see if it's cheaper to code it fully.*/
369
428k
          sb_partial_bits=sb_bits;
370
428k
          sb_partial_bits+=oc_block_run_bits(b_coded_count);
371
428k
          if(b_coded_count>0){
372
428k
            sb_partial_bits-=oc_block_run_bits(b_coded_count-1);
373
428k
          }
374
428k
          sb_bits=oc_fr_state_sb_cost(_fr,0,_b_coded);
375
428k
          sb_prefer_partial=sb_partial_bits<sb_bits;
376
428k
          sb_bits^=(sb_partial_bits^sb_bits)&-sb_prefer_partial;
377
428k
        }
378
        /*There's no need to check the converse (whether it's cheaper to code
379
           this SB partially if we were coding it fully), since the cost to
380
           code a SB partially can only increase as we add more blocks, whereas
381
           the cost to code it fully stays constant.*/
382
9.23M
      }
383
354k
      else{
384
        /*If we get to the end and this SB is still full, then force it to be
385
           coded full.
386
          Otherwise we might not be able to extend the block run far enough
387
           into the next partial SB.*/
388
354k
        if(sb_prefer_partial){
389
3.94k
          sb_prefer_partial=0;
390
3.94k
          sb_bits=oc_fr_state_sb_cost(_fr,0,_b_coded);
391
3.94k
        }
392
354k
      }
393
9.58M
    }
394
4.62M
    else{
395
      /*This SB was full, but now must be made partial.*/
396
4.62M
      if(!sb_prefer_partial){
397
4.42M
        sb_bits=oc_block_run_bits(b_coded_count);
398
4.42M
        if(b_coded_count>b_count){
399
1.17M
          sb_bits-=oc_block_run_bits(b_coded_count-b_count);
400
1.17M
        }
401
4.42M
        sb_bits+=oc_fr_state_sb_cost(_fr,1,_b_coded);
402
4.42M
      }
403
4.62M
      b_count++;
404
4.62M
      b_coded_count=1;
405
4.62M
      sb_prefer_partial=1;
406
4.62M
      sb_bits+=2;
407
4.62M
    }
408
16.4M
  }
409
6.79M
  else{
410
6.79M
    b_count++;
411
6.79M
    if(_fr->b_coded==_b_coded)sb_bits-=oc_block_run_bits(b_coded_count);
412
2.32M
    else b_coded_count=0;
413
6.79M
    sb_bits+=oc_block_run_bits(++b_coded_count);
414
6.79M
  }
415
23.2M
  _fr->bits=bits+sb_bits;
416
23.2M
  _fr->b_coded_count=b_coded_count;
417
23.2M
  _fr->b_coded=_b_coded;
418
23.2M
  _fr->b_count=b_count;
419
23.2M
  _fr->sb_prefer_partial=sb_prefer_partial;
420
23.2M
  _fr->sb_bits=sb_bits;
421
23.2M
}
422
423
8.23M
static void oc_fr_skip_block(oc_fr_state *_fr){
424
8.23M
  oc_fr_state_advance_block(_fr,0);
425
8.23M
}
426
427
14.9M
static void oc_fr_code_block(oc_fr_state *_fr){
428
14.9M
  oc_fr_state_advance_block(_fr,1);
429
14.9M
}
430
431
1.54M
static int oc_fr_cost1(const oc_fr_state *_fr){
432
1.54M
  oc_fr_state tmp;
433
1.54M
  ptrdiff_t   bits;
434
1.54M
  *&tmp=*_fr;
435
1.54M
  oc_fr_skip_block(&tmp);
436
1.54M
  bits=tmp.bits;
437
1.54M
  *&tmp=*_fr;
438
1.54M
  oc_fr_code_block(&tmp);
439
1.54M
  return (int)(tmp.bits-bits);
440
1.54M
}
441
442
240k
static int oc_fr_cost4(const oc_fr_state *_pre,const oc_fr_state *_post){
443
240k
  oc_fr_state tmp;
444
240k
  *&tmp=*_pre;
445
240k
  oc_fr_skip_block(&tmp);
446
240k
  oc_fr_skip_block(&tmp);
447
240k
  oc_fr_skip_block(&tmp);
448
240k
  oc_fr_skip_block(&tmp);
449
240k
  return (int)(_post->bits-tmp.bits);
450
240k
}
451
452
453
454
247k
static void oc_qii_state_init(oc_qii_state *_qs){
455
247k
  _qs->bits=0;
456
247k
  _qs->qi01_count=0;
457
247k
  _qs->qi01=-1;
458
247k
  _qs->qi12_count=0;
459
247k
  _qs->qi12=-1;
460
247k
}
461
462
463
static void oc_qii_state_advance(oc_qii_state *_qd,
464
57.7M
 const oc_qii_state *_qs,int _qii){
465
57.7M
  ptrdiff_t bits;
466
57.7M
  int       qi01;
467
57.7M
  int       qi01_count;
468
57.7M
  int       qi12;
469
57.7M
  int       qi12_count;
470
57.7M
  bits=_qs->bits;
471
57.7M
  qi01=_qii+1>>1;
472
57.7M
  qi01_count=_qs->qi01_count;
473
57.7M
  if(qi01==_qs->qi01){
474
34.6M
    if(qi01_count>=4129){
475
2.99k
      bits++;
476
2.99k
      qi01_count=0;
477
2.99k
    }
478
34.6M
    else bits-=oc_sb_run_bits(qi01_count);
479
34.6M
  }
480
23.1M
  else qi01_count=0;
481
57.7M
  qi01_count++;
482
57.7M
  bits+=oc_sb_run_bits(qi01_count);
483
57.7M
  qi12_count=_qs->qi12_count;
484
57.7M
  if(_qii){
485
24.9M
    qi12=_qii>>1;
486
24.9M
    if(qi12==_qs->qi12){
487
13.5M
      if(qi12_count>=4129){
488
1.40k
        bits++;
489
1.40k
        qi12_count=0;
490
1.40k
      }
491
13.5M
      else bits-=oc_sb_run_bits(qi12_count);
492
13.5M
    }
493
11.4M
    else qi12_count=0;
494
24.9M
    qi12_count++;
495
24.9M
    bits+=oc_sb_run_bits(qi12_count);
496
24.9M
  }
497
32.8M
  else qi12=_qs->qi12;
498
57.7M
  _qd->bits=bits;
499
57.7M
  _qd->qi01=qi01;
500
57.7M
  _qd->qi01_count=qi01_count;
501
57.7M
  _qd->qi12=qi12;
502
57.7M
  _qd->qi12_count=qi12_count;
503
57.7M
}
504
505
506
507
69.0k
static void oc_enc_pipeline_init(oc_enc_ctx *_enc,oc_enc_pipeline_state *_pipe){
508
69.0k
  ptrdiff_t *coded_fragis;
509
69.0k
  unsigned   mcu_nvsbs;
510
69.0k
  ptrdiff_t  mcu_nfrags;
511
69.0k
  int        flimit;
512
69.0k
  int        hdec;
513
69.0k
  int        vdec;
514
69.0k
  int        pli;
515
69.0k
  int        nqis;
516
69.0k
  int        qii;
517
69.0k
  int        qi0;
518
69.0k
  int        qti;
519
  /*Initialize the per-plane coded block flag trackers.
520
    These are used for bit-estimation purposes only; the real flag bits span
521
     all three planes, so we can't compute them in parallel.*/
522
276k
  for(pli=0;pli<3;pli++)oc_fr_state_init(_pipe->fr+pli);
523
276k
  for(pli=0;pli<3;pli++)oc_qii_state_init(_pipe->qs+pli);
524
  /*Set up the per-plane skip SSD storage pointers.*/
525
69.0k
  mcu_nvsbs=_enc->mcu_nvsbs;
526
69.0k
  mcu_nfrags=mcu_nvsbs*_enc->state.fplanes[0].nhsbs*16;
527
69.0k
  hdec=!(_enc->state.info.pixel_fmt&1);
528
69.0k
  vdec=!(_enc->state.info.pixel_fmt&2);
529
69.0k
  _pipe->skip_ssd[0]=_enc->mcu_skip_ssd;
530
69.0k
  _pipe->skip_ssd[1]=_pipe->skip_ssd[0]+mcu_nfrags;
531
69.0k
  _pipe->skip_ssd[2]=_pipe->skip_ssd[1]+(mcu_nfrags>>hdec+vdec);
532
  /*Set up per-plane pointers to the coded and uncoded fragments lists.
533
    Unlike the decoder, each planes' coded and uncoded fragment list is kept
534
     separate during the analysis stage; we only make the coded list for all
535
     three planes contiguous right before the final packet is output
536
     (destroying the uncoded lists, which are no longer needed).*/
537
69.0k
  coded_fragis=_enc->state.coded_fragis;
538
276k
  for(pli=0;pli<3;pli++){
539
207k
    _pipe->coded_fragis[pli]=coded_fragis;
540
207k
    coded_fragis+=_enc->state.fplanes[pli].nfrags;
541
207k
    _pipe->uncoded_fragis[pli]=coded_fragis;
542
207k
  }
543
69.0k
  memset(_pipe->ncoded_fragis,0,sizeof(_pipe->ncoded_fragis));
544
69.0k
  memset(_pipe->nuncoded_fragis,0,sizeof(_pipe->nuncoded_fragis));
545
  /*Set up condensed quantizer tables.*/
546
69.0k
  qi0=_enc->state.qis[0];
547
69.0k
  nqis=_enc->state.nqis;
548
276k
  for(pli=0;pli<3;pli++){
549
565k
    for(qii=0;qii<nqis;qii++){
550
358k
      int qi;
551
358k
      qi=_enc->state.qis[qii];
552
1.07M
      for(qti=0;qti<2;qti++){
553
        /*Set the DC coefficient in the dequantization table.*/
554
717k
        _enc->state.dequant_tables[qi][pli][qti][0]=
555
717k
         _enc->dequant_dc[qi0][pli][qti];
556
717k
        _enc->dequant[pli][qii][qti]=_enc->state.dequant_tables[qi][pli][qti];
557
        /*Copy over the quantization table.*/
558
717k
        memcpy(_enc->enquant[pli][qii][qti],_enc->enquant_tables[qi][pli][qti],
559
717k
         _enc->opt_data.enquant_table_size);
560
717k
      }
561
358k
    }
562
207k
  }
563
  /*Fix up the DC coefficients in the quantization tables.*/
564
69.0k
  oc_enc_enquant_table_fixup(_enc,_enc->enquant,nqis);
565
  /*Initialize the tokenization state.*/
566
276k
  for(pli=0;pli<3;pli++){
567
207k
    _pipe->ndct_tokens1[pli]=0;
568
207k
    _pipe->eob_run1[pli]=0;
569
207k
  }
570
  /*Initialize the bounding value array for the loop filter.*/
571
69.0k
  flimit=_enc->state.loop_filter_limits[_enc->state.qis[0]];
572
69.0k
  _pipe->loop_filter=flimit!=0;
573
69.0k
  if(flimit!=0)oc_loop_filter_init(&_enc->state,_pipe->bounding_values,flimit);
574
  /*Clear the temporary DCT scratch space.*/
575
69.0k
  memset(_pipe->dct_data,0,sizeof(_pipe->dct_data));
576
69.0k
}
577
578
/*Sets the current MCU stripe to super block row _sby.
579
  Return: A non-zero value if this was the last MCU.*/
580
static int oc_enc_pipeline_set_stripe(oc_enc_ctx *_enc,
581
221k
 oc_enc_pipeline_state *_pipe,int _sby){
582
221k
  const oc_fragment_plane *fplane;
583
221k
  unsigned                 mcu_nvsbs;
584
221k
  int                      sby_end;
585
221k
  int                      notdone;
586
221k
  int                      vdec;
587
221k
  int                      pli;
588
221k
  mcu_nvsbs=_enc->mcu_nvsbs;
589
221k
  sby_end=_enc->state.fplanes[0].nvsbs;
590
221k
  notdone=_sby+mcu_nvsbs<sby_end;
591
221k
  if(notdone)sby_end=_sby+mcu_nvsbs;
592
221k
  vdec=0;
593
887k
  for(pli=0;pli<3;pli++){
594
665k
    fplane=_enc->state.fplanes+pli;
595
665k
    _pipe->sbi0[pli]=fplane->sboffset+(_sby>>vdec)*fplane->nhsbs;
596
665k
    _pipe->fragy0[pli]=_sby<<2-vdec;
597
665k
    _pipe->froffset[pli]=fplane->froffset
598
665k
     +_pipe->fragy0[pli]*(ptrdiff_t)fplane->nhfrags;
599
665k
    if(notdone){
600
458k
      _pipe->sbi_end[pli]=fplane->sboffset+(sby_end>>vdec)*fplane->nhsbs;
601
458k
      _pipe->fragy_end[pli]=sby_end<<2-vdec;
602
458k
    }
603
207k
    else{
604
207k
      _pipe->sbi_end[pli]=fplane->sboffset+fplane->nsbs;
605
207k
      _pipe->fragy_end[pli]=fplane->nvfrags;
606
207k
    }
607
665k
    vdec=!(_enc->state.info.pixel_fmt&2);
608
665k
  }
609
221k
  return notdone;
610
221k
}
611
612
static void oc_enc_pipeline_finish_mcu_plane(oc_enc_ctx *_enc,
613
665k
 oc_enc_pipeline_state *_pipe,int _pli,int _sdelay,int _edelay){
614
  /*Copy over all the uncoded fragments from this plane and advance the uncoded
615
     fragment list.*/
616
665k
  if(_pipe->nuncoded_fragis[_pli]>0){
617
76.9k
    _pipe->uncoded_fragis[_pli]-=_pipe->nuncoded_fragis[_pli];
618
76.9k
    oc_frag_copy_list(&_enc->state,
619
76.9k
     _enc->state.ref_frame_data[OC_FRAME_SELF],
620
76.9k
     _enc->state.ref_frame_data[OC_FRAME_PREV],
621
76.9k
     _enc->state.ref_ystride[_pli],_pipe->uncoded_fragis[_pli],
622
76.9k
     _pipe->nuncoded_fragis[_pli],_enc->state.frag_buf_offs);
623
76.9k
    _pipe->nuncoded_fragis[_pli]=0;
624
76.9k
  }
625
  /*Perform DC prediction.*/
626
665k
  oc_enc_pred_dc_frag_rows(_enc,_pli,
627
665k
   _pipe->fragy0[_pli],_pipe->fragy_end[_pli]);
628
  /*Finish DC tokenization.*/
629
665k
  oc_enc_tokenize_dc_frag_list(_enc,_pli,
630
665k
   _pipe->coded_fragis[_pli],_pipe->ncoded_fragis[_pli],
631
665k
   _pipe->ndct_tokens1[_pli],_pipe->eob_run1[_pli]);
632
665k
  _pipe->ndct_tokens1[_pli]=_enc->ndct_tokens[_pli][1];
633
665k
  _pipe->eob_run1[_pli]=_enc->eob_run[_pli][1];
634
  /*And advance the coded fragment list.*/
635
665k
  _enc->state.ncoded_fragis[_pli]+=_pipe->ncoded_fragis[_pli];
636
665k
  _pipe->coded_fragis[_pli]+=_pipe->ncoded_fragis[_pli];
637
665k
  _pipe->ncoded_fragis[_pli]=0;
638
  /*Apply the loop filter if necessary.*/
639
665k
  if(_pipe->loop_filter){
640
410k
    oc_state_loop_filter_frag_rows(&_enc->state,
641
410k
     _pipe->bounding_values,OC_FRAME_SELF,_pli,
642
410k
     _pipe->fragy0[_pli]-_sdelay,_pipe->fragy_end[_pli]-_edelay);
643
410k
  }
644
254k
  else _sdelay=_edelay=0;
645
  /*To fill borders, we have an additional two pixel delay, since a fragment
646
     in the next row could filter its top edge, using two pixels from a
647
     fragment in this row.
648
    But there's no reason to delay a full fragment between the two.*/
649
665k
  oc_state_borders_fill_rows(&_enc->state,
650
665k
   _enc->state.ref_frame_idx[OC_FRAME_SELF],_pli,
651
665k
   (_pipe->fragy0[_pli]-_sdelay<<3)-(_sdelay<<1),
652
665k
   (_pipe->fragy_end[_pli]-_edelay<<3)-(_edelay<<1));
653
665k
}
654
655
656
657
/*Cost information about the coded blocks in a MB.*/
658
struct oc_rd_metric{
659
  int uncoded_ac_ssd;
660
  int coded_ac_ssd;
661
  int ac_bits;
662
  int dc_flag;
663
};
664
665
666
667
static int oc_enc_block_transform_quantize(oc_enc_ctx *_enc,
668
 oc_enc_pipeline_state *_pipe,int _pli,ptrdiff_t _fragi,
669
 unsigned _rd_scale,unsigned _rd_iscale,oc_rd_metric *_mo,
670
18.8M
 oc_fr_state *_fr,oc_token_checkpoint **_stack){
671
18.8M
  ogg_int16_t            *data;
672
18.8M
  ogg_int16_t            *dct;
673
18.8M
  ogg_int16_t            *idct;
674
18.8M
  oc_qii_state            qs;
675
18.8M
  const ogg_uint16_t     *dequant;
676
18.8M
  ogg_uint16_t            dequant_dc;
677
18.8M
  ptrdiff_t               frag_offs;
678
18.8M
  int                     ystride;
679
18.8M
  const unsigned char    *src;
680
18.8M
  const unsigned char    *ref;
681
18.8M
  unsigned char          *dst;
682
18.8M
  int                     nonzero;
683
18.8M
  unsigned                uncoded_ssd;
684
18.8M
  unsigned                coded_ssd;
685
18.8M
  oc_token_checkpoint    *checkpoint;
686
18.8M
  oc_fragment            *frags;
687
18.8M
  int                     mb_mode;
688
18.8M
  int                     refi;
689
18.8M
  int                     mv_offs[2];
690
18.8M
  int                     nmv_offs;
691
18.8M
  int                     ac_bits;
692
18.8M
  int                     borderi;
693
18.8M
  int                     nqis;
694
18.8M
  int                     qti;
695
18.8M
  int                     qii;
696
18.8M
  int                     dc;
697
18.8M
  nqis=_enc->state.nqis;
698
18.8M
  frags=_enc->state.frags;
699
18.8M
  frag_offs=_enc->state.frag_buf_offs[_fragi];
700
18.8M
  ystride=_enc->state.ref_ystride[_pli];
701
18.8M
  src=_enc->state.ref_frame_data[OC_FRAME_IO]+frag_offs;
702
18.8M
  borderi=frags[_fragi].borderi;
703
18.8M
  qii=frags[_fragi].qii;
704
18.8M
  data=_enc->pipe.dct_data;
705
18.8M
  dct=data+64;
706
18.8M
  idct=data+128;
707
18.8M
  if(qii&~3){
708
273k
#if !defined(OC_COLLECT_METRICS)
709
273k
    if(_enc->sp_level>=OC_SP_LEVEL_EARLY_SKIP){
710
      /*Enable early skip detection.*/
711
273k
      frags[_fragi].coded=0;
712
273k
      frags[_fragi].refi=OC_FRAME_NONE;
713
273k
      oc_fr_skip_block(_fr);
714
273k
      return 0;
715
273k
    }
716
0
#endif
717
    /*Try and code this block anyway.*/
718
0
    qii&=3;
719
0
  }
720
18.6M
  refi=frags[_fragi].refi;
721
18.6M
  mb_mode=frags[_fragi].mb_mode;
722
18.6M
  ref=_enc->state.ref_frame_data[refi]+frag_offs;
723
18.6M
  dst=_enc->state.ref_frame_data[OC_FRAME_SELF]+frag_offs;
724
  /*Motion compensation:*/
725
18.6M
  switch(mb_mode){
726
18.0M
    case OC_MODE_INTRA:{
727
18.0M
      nmv_offs=0;
728
18.0M
      oc_enc_frag_sub_128(_enc,data,src,ystride);
729
18.0M
    }break;
730
20.5k
    case OC_MODE_GOLDEN_NOMV:
731
260k
    case OC_MODE_INTER_NOMV:{
732
260k
      nmv_offs=1;
733
260k
      mv_offs[0]=0;
734
260k
      oc_enc_frag_sub(_enc,data,src,ref,ystride);
735
260k
    }break;
736
341k
    default:{
737
341k
      const oc_mv *frag_mvs;
738
341k
      frag_mvs=_enc->state.frag_mvs;
739
341k
      nmv_offs=oc_state_get_mv_offsets(&_enc->state,mv_offs,
740
341k
       _pli,frag_mvs[_fragi]);
741
341k
      if(nmv_offs>1){
742
305k
        oc_enc_frag_copy2(_enc,dst,
743
305k
         ref+mv_offs[0],ref+mv_offs[1],ystride);
744
305k
        oc_enc_frag_sub(_enc,data,src,dst,ystride);
745
305k
      }
746
35.5k
      else oc_enc_frag_sub(_enc,data,src,ref+mv_offs[0],ystride);
747
341k
    }break;
748
18.6M
  }
749
#if defined(OC_COLLECT_METRICS)
750
  {
751
    unsigned sad;
752
    unsigned satd;
753
    switch(nmv_offs){
754
      case 0:{
755
        sad=oc_enc_frag_intra_sad(_enc,src,ystride);
756
        satd=oc_enc_frag_intra_satd(_enc,&dc,src,ystride);
757
      }break;
758
      case 1:{
759
        sad=oc_enc_frag_sad_thresh(_enc,src,ref+mv_offs[0],ystride,UINT_MAX);
760
        satd=oc_enc_frag_satd(_enc,&dc,src,ref+mv_offs[0],ystride);
761
        satd+=abs(dc);
762
      }break;
763
      default:{
764
        sad=oc_enc_frag_sad_thresh(_enc,src,dst,ystride,UINT_MAX);
765
        satd=oc_enc_frag_satd(_enc,&dc,src,dst,ystride);
766
        satd+=abs(dc);
767
      }break;
768
    }
769
    _enc->frag_sad[_fragi]=sad;
770
    _enc->frag_satd[_fragi]=satd;
771
  }
772
#endif
773
  /*Transform:*/
774
18.6M
  oc_enc_fdct8x8(_enc,dct,data);
775
  /*Quantize:*/
776
18.6M
  qti=mb_mode!=OC_MODE_INTRA;
777
18.6M
  dequant=_enc->dequant[_pli][qii][qti];
778
18.6M
  nonzero=oc_enc_quantize(_enc,data,dct,dequant,_enc->enquant[_pli][qii][qti]);
779
18.6M
  dc=data[0];
780
  /*Tokenize.*/
781
18.6M
  checkpoint=*_stack;
782
18.6M
  if(_enc->sp_level<OC_SP_LEVEL_FAST_ANALYSIS){
783
18.6M
    ac_bits=oc_enc_tokenize_ac(_enc,_pli,_fragi,idct,data,dequant,dct,
784
18.6M
     nonzero+1,_stack,OC_RD_ISCALE(_enc->lambda,_rd_iscale),qti?0:3);
785
18.6M
  }
786
0
  else{
787
0
    ac_bits=oc_enc_tokenize_ac_fast(_enc,_pli,_fragi,idct,data,dequant,dct,
788
0
     nonzero+1,_stack,OC_RD_ISCALE(_enc->lambda,_rd_iscale),qti?0:3);
789
0
  }
790
  /*Reconstruct.
791
    TODO: nonzero may need to be adjusted after tokenization.*/
792
18.6M
  dequant_dc=dequant[0];
793
18.6M
  if(nonzero==0){
794
15.7M
    ogg_int16_t p;
795
15.7M
    int         ci;
796
15.7M
    int         qi01;
797
15.7M
    int         qi12;
798
    /*We round this dequant product (and not any of the others) because there's
799
       no iDCT rounding.*/
800
15.7M
    p=(ogg_int16_t)(dc*(ogg_int32_t)dequant_dc+15>>5);
801
    /*LOOP VECTORIZES.*/
802
1.02G
    for(ci=0;ci<64;ci++)data[ci]=p;
803
    /*We didn't code any AC coefficients, so don't change the quantizer.*/
804
15.7M
    qi01=_pipe->qs[_pli].qi01;
805
15.7M
    qi12=_pipe->qs[_pli].qi12;
806
15.7M
    if(qi01>0)qii=1+qi12;
807
13.8M
    else if(qi01>=0)qii=0;
808
15.7M
  }
809
2.87M
  else{
810
2.87M
    idct[0]=dc*dequant_dc;
811
    /*Note: This clears idct[] back to zero for the next block.*/
812
2.87M
    oc_idct8x8(&_enc->state,data,idct,nonzero+1);
813
2.87M
  }
814
18.6M
  frags[_fragi].qii=qii;
815
18.6M
  if(nqis>1){
816
7.10M
    oc_qii_state_advance(&qs,_pipe->qs+_pli,qii);
817
7.10M
    ac_bits+=qs.bits-_pipe->qs[_pli].bits;
818
7.10M
  }
819
18.6M
  if(!qti)oc_enc_frag_recon_intra(_enc,dst,ystride,data);
820
602k
  else{
821
602k
    oc_enc_frag_recon_inter(_enc,dst,
822
602k
     nmv_offs==1?ref+mv_offs[0]:dst,ystride,data);
823
602k
  }
824
  /*If _fr is NULL, then this is an INTRA frame, and we can't skip blocks.*/
825
18.6M
#if !defined(OC_COLLECT_METRICS)
826
18.6M
  if(_fr!=NULL)
827
1.54M
#endif
828
1.54M
  {
829
    /*In retrospect, should we have skipped this block?*/
830
1.54M
    if(borderi<0){
831
852k
      coded_ssd=oc_enc_frag_ssd(_enc,src,dst,ystride);
832
852k
    }
833
689k
    else{
834
689k
      coded_ssd=oc_enc_frag_border_ssd(_enc,src,dst,ystride,
835
689k
       _enc->state.borders[borderi].mask);
836
689k
    }
837
    /*Scale to match DCT domain.*/
838
1.54M
    coded_ssd<<=4;
839
#if defined(OC_COLLECT_METRICS)
840
    _enc->frag_ssd[_fragi]=coded_ssd;
841
  }
842
  if(_fr!=NULL){
843
#endif
844
1.54M
    coded_ssd=OC_RD_SCALE(coded_ssd,_rd_scale);
845
1.54M
    uncoded_ssd=_pipe->skip_ssd[_pli][_fragi-_pipe->froffset[_pli]];
846
1.54M
    if(uncoded_ssd<UINT_MAX&&
847
     /*Don't allow luma blocks to be skipped in 4MV mode when VP3 compatibility
848
        is enabled.*/
849
1.54M
     (!_enc->vp3_compatible||mb_mode!=OC_MODE_INTER_MV_FOUR||_pli)){
850
1.54M
      int overhead_bits;
851
1.54M
      overhead_bits=oc_fr_cost1(_fr);
852
      /*Although the fragment coding overhead determination is accurate, it is
853
         greedy, using very coarse-grained local information.
854
        Allowing it to mildly discourage coding turns out to be beneficial, but
855
         it's not clear that allowing it to encourage coding through negative
856
         coding overhead deltas is useful.
857
        For that reason, we disallow negative coding overheads.*/
858
1.54M
      if(overhead_bits<0)overhead_bits=0;
859
1.54M
      if(uncoded_ssd<=coded_ssd+(overhead_bits+ac_bits)*_enc->lambda){
860
        /*Hm, not worth it; roll back.*/
861
327k
        oc_enc_tokenlog_rollback(_enc,checkpoint,(*_stack)-checkpoint);
862
327k
        *_stack=checkpoint;
863
327k
        frags[_fragi].coded=0;
864
327k
        frags[_fragi].refi=OC_FRAME_NONE;
865
327k
        oc_fr_skip_block(_fr);
866
327k
        return 0;
867
327k
      }
868
1.54M
    }
869
0
    else _mo->dc_flag=1;
870
1.21M
    _mo->uncoded_ac_ssd+=uncoded_ssd;
871
1.21M
    _mo->coded_ac_ssd+=coded_ssd;
872
1.21M
    _mo->ac_bits+=ac_bits;
873
1.21M
    oc_fr_code_block(_fr);
874
1.21M
  }
875
  /*GCC 4.4.4 generates a warning here because it can't tell that
876
     the init code in the nqis check above will run anytime this
877
     line runs.*/
878
18.2M
  if(nqis>1)*(_pipe->qs+_pli)=*&qs;
879
18.2M
  frags[_fragi].dc=dc;
880
18.2M
  frags[_fragi].coded=1;
881
18.2M
  return 1;
882
18.6M
}
883
884
static int oc_enc_mb_transform_quantize_inter_luma(oc_enc_ctx *_enc,
885
 oc_enc_pipeline_state *_pipe,unsigned _mbi,int _mode_overhead,
886
295k
 const unsigned _rd_scale[4],const unsigned _rd_iscale[4]){
887
  /*Worst case token stack usage for 4 fragments.*/
888
295k
  oc_token_checkpoint  stack[64*4];
889
295k
  oc_token_checkpoint *stackptr;
890
295k
  const oc_sb_map     *sb_maps;
891
295k
  signed char         *mb_modes;
892
295k
  oc_fragment         *frags;
893
295k
  ptrdiff_t           *coded_fragis;
894
295k
  ptrdiff_t            ncoded_fragis;
895
295k
  ptrdiff_t           *uncoded_fragis;
896
295k
  ptrdiff_t            nuncoded_fragis;
897
295k
  oc_rd_metric         mo;
898
295k
  oc_fr_state          fr_checkpoint;
899
295k
  oc_qii_state         qs_checkpoint;
900
295k
  int                  mb_mode;
901
295k
  int                  refi;
902
295k
  int                  ncoded;
903
295k
  ptrdiff_t            fragi;
904
295k
  int                  bi;
905
295k
  *&fr_checkpoint=*(_pipe->fr+0);
906
295k
  *&qs_checkpoint=*(_pipe->qs+0);
907
295k
  sb_maps=(const oc_sb_map *)_enc->state.sb_maps;
908
295k
  mb_modes=_enc->state.mb_modes;
909
295k
  frags=_enc->state.frags;
910
295k
  coded_fragis=_pipe->coded_fragis[0];
911
295k
  ncoded_fragis=_pipe->ncoded_fragis[0];
912
295k
  uncoded_fragis=_pipe->uncoded_fragis[0];
913
295k
  nuncoded_fragis=_pipe->nuncoded_fragis[0];
914
295k
  mb_mode=mb_modes[_mbi];
915
295k
  refi=OC_FRAME_FOR_MODE(mb_mode);
916
295k
  ncoded=0;
917
295k
  stackptr=stack;
918
295k
  memset(&mo,0,sizeof(mo));
919
1.47M
  for(bi=0;bi<4;bi++){
920
1.18M
    fragi=sb_maps[_mbi>>2][_mbi&3][bi];
921
1.18M
    frags[fragi].refi=refi;
922
1.18M
    frags[fragi].mb_mode=mb_mode;
923
1.18M
    if(oc_enc_block_transform_quantize(_enc,_pipe,0,fragi,
924
1.18M
     _rd_scale[bi],_rd_iscale[bi],&mo,_pipe->fr+0,&stackptr)){
925
822k
      coded_fragis[ncoded_fragis++]=fragi;
926
822k
      ncoded++;
927
822k
    }
928
359k
    else *(uncoded_fragis-++nuncoded_fragis)=fragi;
929
1.18M
  }
930
295k
  if(ncoded>0&&!mo.dc_flag){
931
240k
    int cost;
932
    /*Some individual blocks were worth coding.
933
      See if that's still true when accounting for mode and MV overhead.*/
934
240k
    cost=mo.coded_ac_ssd+_enc->lambda*(mo.ac_bits
935
240k
     +oc_fr_cost4(&fr_checkpoint,_pipe->fr+0)+_mode_overhead);
936
240k
    if(mo.uncoded_ac_ssd<=cost){
937
      /*Taking macroblock overhead into account, it is not worth coding this
938
         MB.*/
939
5.44k
      oc_enc_tokenlog_rollback(_enc,stack,stackptr-stack);
940
5.44k
      *(_pipe->fr+0)=*&fr_checkpoint;
941
5.44k
      *(_pipe->qs+0)=*&qs_checkpoint;
942
27.2k
      for(bi=0;bi<4;bi++){
943
21.7k
        fragi=sb_maps[_mbi>>2][_mbi&3][bi];
944
21.7k
        if(frags[fragi].coded){
945
9.98k
          *(uncoded_fragis-++nuncoded_fragis)=fragi;
946
9.98k
          frags[fragi].coded=0;
947
9.98k
          frags[fragi].refi=OC_FRAME_NONE;
948
9.98k
        }
949
21.7k
        oc_fr_skip_block(_pipe->fr+0);
950
21.7k
      }
951
5.44k
      ncoded_fragis-=ncoded;
952
5.44k
      ncoded=0;
953
5.44k
    }
954
240k
  }
955
  /*If no luma blocks coded, the mode is forced.*/
956
295k
  if(ncoded==0)mb_modes[_mbi]=OC_MODE_INTER_NOMV;
957
  /*Assume that a 1MV with a single coded block is always cheaper than a 4MV
958
     with a single coded block.
959
    This may not be strictly true: a 4MV computes chroma MVs using (0,0) for
960
     skipped blocks, while a 1MV does not.*/
961
235k
  else if(ncoded==1&&mb_mode==OC_MODE_INTER_MV_FOUR){
962
204
    mb_modes[_mbi]=OC_MODE_INTER_MV;
963
204
  }
964
295k
  _pipe->ncoded_fragis[0]=ncoded_fragis;
965
295k
  _pipe->nuncoded_fragis[0]=nuncoded_fragis;
966
295k
  return ncoded;
967
295k
}
968
969
static void oc_enc_sb_transform_quantize_inter_chroma(oc_enc_ctx *_enc,
970
85.2k
 oc_enc_pipeline_state *_pipe,int _pli,int _sbi_start,int _sbi_end){
971
85.2k
  const ogg_uint16_t *mcu_rd_scale;
972
85.2k
  const ogg_uint16_t *mcu_rd_iscale;
973
85.2k
  const oc_sb_map    *sb_maps;
974
85.2k
  oc_sb_flags        *sb_flags;
975
85.2k
  oc_fr_state        *fr;
976
85.2k
  ptrdiff_t          *coded_fragis;
977
85.2k
  ptrdiff_t           ncoded_fragis;
978
85.2k
  ptrdiff_t          *uncoded_fragis;
979
85.2k
  ptrdiff_t           nuncoded_fragis;
980
85.2k
  ptrdiff_t           froffset;
981
85.2k
  int                 sbi;
982
85.2k
  fr=_pipe->fr+_pli;
983
85.2k
  mcu_rd_scale=(const ogg_uint16_t *)_enc->mcu_rd_scale;
984
85.2k
  mcu_rd_iscale=(const ogg_uint16_t *)_enc->mcu_rd_iscale;
985
85.2k
  sb_maps=(const oc_sb_map *)_enc->state.sb_maps;
986
85.2k
  sb_flags=_enc->state.sb_flags;
987
85.2k
  coded_fragis=_pipe->coded_fragis[_pli];
988
85.2k
  ncoded_fragis=_pipe->ncoded_fragis[_pli];
989
85.2k
  uncoded_fragis=_pipe->uncoded_fragis[_pli];
990
85.2k
  nuncoded_fragis=_pipe->nuncoded_fragis[_pli];
991
85.2k
  froffset=_pipe->froffset[_pli];
992
208k
  for(sbi=_sbi_start;sbi<_sbi_end;sbi++){
993
    /*Worst case token stack usage for 1 fragment.*/
994
123k
    oc_token_checkpoint stack[64];
995
123k
    oc_rd_metric        mo;
996
123k
    int                 quadi;
997
123k
    int                 bi;
998
123k
    memset(&mo,0,sizeof(mo));
999
2.46M
    for(quadi=0;quadi<4;quadi++)for(bi=0;bi<4;bi++){
1000
1.97M
      ptrdiff_t fragi;
1001
1.97M
      fragi=sb_maps[sbi][quadi][bi];
1002
1.97M
      if(fragi>=0){
1003
634k
        oc_token_checkpoint *stackptr;
1004
634k
        unsigned             rd_scale;
1005
634k
        unsigned             rd_iscale;
1006
634k
        rd_scale=mcu_rd_scale[fragi-froffset];
1007
634k
        rd_iscale=mcu_rd_iscale[fragi-froffset];
1008
634k
        stackptr=stack;
1009
634k
        if(oc_enc_block_transform_quantize(_enc,_pipe,_pli,fragi,
1010
634k
         rd_scale,rd_iscale,&mo,fr,&stackptr)){
1011
393k
          coded_fragis[ncoded_fragis++]=fragi;
1012
393k
        }
1013
240k
        else *(uncoded_fragis-++nuncoded_fragis)=fragi;
1014
634k
      }
1015
1.97M
    }
1016
123k
    oc_fr_state_flush_sb(fr);
1017
123k
    sb_flags[sbi].coded_fully=fr->sb_full;
1018
123k
    sb_flags[sbi].coded_partially=fr->sb_partial;
1019
123k
  }
1020
85.2k
  _pipe->ncoded_fragis[_pli]=ncoded_fragis;
1021
85.2k
  _pipe->nuncoded_fragis[_pli]=nuncoded_fragis;
1022
85.2k
}
1023
1024
/*Mode decision is done by exhaustively examining all potential choices.
1025
  Obviously, doing the motion compensation, fDCT, tokenization, and then
1026
   counting the bits each token uses is computationally expensive.
1027
  Theora's EOB runs can also split the cost of these tokens across multiple
1028
   fragments, and naturally we don't know what the optimal choice of Huffman
1029
   codes will be until we know all the tokens we're going to encode in all the
1030
   fragments.
1031
  So we use a simple approach to estimating the bit cost and distortion of each
1032
   mode based upon the SATD value of the residual before coding.
1033
  The mathematics behind the technique are outlined by Kim \cite{Kim03}, but
1034
   the process (modified somewhat from that of the paper) is very simple.
1035
  We build a non-linear regression of the mappings from
1036
   (pre-transform+quantization) SATD to (post-transform+quantization) bits and
1037
   SSD for each qi.
1038
  A separate set of mappings is kept for each quantization type and color
1039
   plane.
1040
  The mappings are constructed by partitioning the SATD values into a small
1041
   number of bins (currently 24) and using a linear regression in each bin
1042
   (as opposed to the 0th-order regression used by Kim).
1043
  The bit counts and SSD measurements are obtained by examining actual encoded
1044
   frames, with appropriate lambda values and optimal Huffman codes selected.
1045
  EOB bits are assigned to the fragment that started the EOB run (as opposed to
1046
   dividing them among all the blocks in the run; the latter approach seems
1047
   more theoretically correct, but Monty's testing showed a small improvement
1048
   with the former, though that may have been merely statistical noise).
1049
1050
  @ARTICLE{Kim03,
1051
    author="Hyun Mun Kim",
1052
    title="Adaptive Rate Control Using Nonlinear Regression",
1053
    journal="IEEE Transactions on Circuits and Systems for Video Technology",
1054
    volume=13,
1055
    number=5,
1056
    pages="432--439",
1057
    month=May,
1058
    year=2003
1059
  }*/
1060
1061
/*Computes (_ssd+_lambda*_rate)/(1<<OC_BIT_SCALE) with rounding, avoiding
1062
   overflow for large lambda values.*/
1063
#define OC_MODE_RD_COST(_ssd,_rate,_lambda) \
1064
75.3M
 ((_ssd)>>OC_BIT_SCALE)+((_rate)>>OC_BIT_SCALE)*(_lambda) \
1065
75.3M
 +(((_ssd)&(1<<OC_BIT_SCALE)-1)+((_rate)&(1<<OC_BIT_SCALE)-1)*(_lambda) \
1066
75.3M
 +((1<<OC_BIT_SCALE)>>1)>>OC_BIT_SCALE)
1067
1068
69.0k
static void oc_enc_mode_rd_init(oc_enc_ctx *_enc){
1069
69.0k
#if !defined(OC_COLLECT_METRICS)
1070
69.0k
  const
1071
69.0k
#endif
1072
69.0k
  oc_mode_rd (*oc_mode_rd_table)[3][2][OC_COMP_BINS]=
1073
69.0k
   _enc->sp_level<OC_SP_LEVEL_NOSATD?OC_MODE_RD_SATD:OC_MODE_RD_SAD;
1074
69.0k
  int qii;
1075
#if defined(OC_COLLECT_METRICS)
1076
  oc_enc_mode_metrics_load(_enc);
1077
#endif
1078
188k
  for(qii=0;qii<_enc->state.nqis;qii++){
1079
119k
    int qi;
1080
119k
    int pli;
1081
119k
    qi=_enc->state.qis[qii];
1082
478k
    for(pli=0;pli<3;pli++){
1083
358k
      int qti;
1084
1.07M
      for(qti=0;qti<2;qti++){
1085
717k
        int log_plq;
1086
717k
        int modeline;
1087
717k
        int bin;
1088
717k
        int dx;
1089
717k
        int dq;
1090
717k
        log_plq=_enc->log_plq[qi][pli][qti];
1091
        /*Find the pair of rows in the mode table that bracket this quantizer.
1092
          If it falls outside the range the table covers, then we just use a
1093
           pair on the edge for linear extrapolation.*/
1094
3.50M
        for(modeline=0;modeline<OC_LOGQ_BINS-1&&
1095
3.50M
         OC_MODE_LOGQ[modeline+1][pli][qti]>log_plq;modeline++);
1096
        /*Interpolate a row for this quantizer.*/
1097
717k
        dx=OC_MODE_LOGQ[modeline][pli][qti]-log_plq;
1098
717k
        dq=OC_MODE_LOGQ[modeline][pli][qti]-OC_MODE_LOGQ[modeline+1][pli][qti];
1099
717k
        if(dq==0)dq=1;
1100
17.9M
        for(bin=0;bin<OC_COMP_BINS;bin++){
1101
17.2M
          int y0;
1102
17.2M
          int z0;
1103
17.2M
          int dy;
1104
17.2M
          int dz;
1105
17.2M
          y0=oc_mode_rd_table[modeline][pli][qti][bin].rate;
1106
17.2M
          z0=oc_mode_rd_table[modeline][pli][qti][bin].rmse;
1107
17.2M
          dy=oc_mode_rd_table[modeline+1][pli][qti][bin].rate-y0;
1108
17.2M
          dz=oc_mode_rd_table[modeline+1][pli][qti][bin].rmse-z0;
1109
17.2M
          _enc->mode_rd[qii][pli][qti][bin].rate=
1110
17.2M
           (ogg_int16_t)OC_CLAMPI(-32768,y0+(dy*dx+(dq>>1))/dq,32767);
1111
17.2M
          _enc->mode_rd[qii][pli][qti][bin].rmse=
1112
17.2M
           (ogg_int16_t)OC_CLAMPI(-32768,z0+(dz*dx+(dq>>1))/dq,32767);
1113
17.2M
        }
1114
717k
      }
1115
358k
    }
1116
119k
  }
1117
69.0k
}
1118
1119
/*Estimate the R-D cost of the DCT coefficients given the SATD of a block after
1120
   prediction.*/
1121
static unsigned oc_dct_cost2(oc_enc_ctx *_enc,unsigned *_ssd,
1122
49.8M
 int _qii,int _pli,int _qti,int _satd){
1123
49.8M
  unsigned rmse;
1124
49.8M
  int      shift;
1125
49.8M
  int      bin;
1126
49.8M
  int      dx;
1127
49.8M
  int      y0;
1128
49.8M
  int      z0;
1129
49.8M
  int      dy;
1130
49.8M
  int      dz;
1131
  /*SATD metrics for chroma planes vary much less than luma, so we scale them
1132
     by 4 to distribute them into the mode decision bins more evenly.*/
1133
49.8M
  _satd<<=_pli+1&2;
1134
49.8M
  shift=_enc->sp_level<OC_SP_LEVEL_NOSATD?OC_SATD_SHIFT:OC_SAD_SHIFT;
1135
49.8M
  bin=OC_MINI(_satd>>shift,OC_COMP_BINS-2);
1136
49.8M
  dx=_satd-(bin<<shift);
1137
49.8M
  y0=_enc->mode_rd[_qii][_pli][_qti][bin].rate;
1138
49.8M
  z0=_enc->mode_rd[_qii][_pli][_qti][bin].rmse;
1139
49.8M
  dy=_enc->mode_rd[_qii][_pli][_qti][bin+1].rate-y0;
1140
49.8M
  dz=_enc->mode_rd[_qii][_pli][_qti][bin+1].rmse-z0;
1141
49.8M
  rmse=OC_MAXI(z0+(dz*dx>>shift),0);
1142
49.8M
  *_ssd=rmse*rmse>>2*OC_RMSE_SCALE-OC_BIT_SCALE;
1143
49.8M
  return OC_MAXI(y0+(dy*dx>>shift),0);
1144
49.8M
}
1145
1146
/*activity_avg must be positive, or flat regions could get a zero weight, which
1147
   confounds analysis.
1148
  We set the minimum to this value so that it also avoids the need for divide
1149
   by zero checks in oc_mb_masking().*/
1150
# define OC_ACTIVITY_AVG_MIN (1<<OC_RD_SCALE_BITS)
1151
1152
static unsigned oc_mb_activity(oc_enc_ctx *_enc,unsigned _mbi,
1153
2.57M
 unsigned _activity[4]){
1154
2.57M
  const unsigned char *src;
1155
2.57M
  const ptrdiff_t     *frag_buf_offs;
1156
2.57M
  const ptrdiff_t     *sb_map;
1157
2.57M
  unsigned             luma;
1158
2.57M
  int                  ystride;
1159
2.57M
  ptrdiff_t            frag_offs;
1160
2.57M
  ptrdiff_t            fragi;
1161
2.57M
  int                  bi;
1162
2.57M
  frag_buf_offs=_enc->state.frag_buf_offs;
1163
2.57M
  sb_map=_enc->state.sb_maps[_mbi>>2][_mbi&3];
1164
2.57M
  src=_enc->state.ref_frame_data[OC_FRAME_IO];
1165
2.57M
  ystride=_enc->state.ref_ystride[0];
1166
2.57M
  luma=0;
1167
12.8M
  for(bi=0;bi<4;bi++){
1168
10.3M
    const unsigned char *s;
1169
10.3M
    unsigned             x;
1170
10.3M
    unsigned             x2;
1171
10.3M
    unsigned             act;
1172
10.3M
    int                  i;
1173
10.3M
    int                  j;
1174
10.3M
    fragi=sb_map[bi];
1175
10.3M
    frag_offs=frag_buf_offs[fragi];
1176
    /*TODO: This could be replaced with SATD^2, since we already have to
1177
       compute SATD.*/
1178
10.3M
    x=x2=0;
1179
10.3M
    s=src+frag_offs;
1180
92.8M
    for(i=0;i<8;i++){
1181
742M
      for(j=0;j<8;j++){
1182
660M
        unsigned c;
1183
660M
        c=s[j];
1184
660M
        x+=c;
1185
660M
        x2+=c*c;
1186
660M
      }
1187
82.5M
      s+=ystride;
1188
82.5M
    }
1189
10.3M
    luma+=x;
1190
10.3M
    act=(x2<<6)-x*x;
1191
10.3M
    if(act<8<<12){
1192
      /*The region is flat.*/
1193
8.04M
      act=OC_MINI(act,5<<12);
1194
8.04M
    }
1195
2.27M
    else{
1196
2.27M
      unsigned e1;
1197
2.27M
      unsigned e2;
1198
2.27M
      unsigned e3;
1199
2.27M
      unsigned e4;
1200
      /*Test for an edge.
1201
        TODO: There are probably much simpler ways to do this (e.g., it could
1202
         probably be combined with the SATD calculation).
1203
        Alternatively, we could split the block around the mean and compute the
1204
         reduction in variance in each half.
1205
        For a Gaussian source the reduction should be
1206
         (1-2/pi) ~= 0.36338022763241865692446494650994.
1207
        Significantly more reduction is a good indication of a bi-level image.
1208
        This has the advantage of identifying, in addition to straight edges,
1209
         small text regions, which would otherwise be classified as "texture".*/
1210
2.27M
      e1=e2=e3=e4=0;
1211
2.27M
      s=src+frag_offs-1;
1212
20.4M
      for(i=0;i<8;i++){
1213
163M
        for(j=0;j<8;j++){
1214
145M
          e1+=abs((s[j+2]-s[j]<<1)+(s-ystride)[j+2]-(s-ystride)[j]
1215
145M
           +(s+ystride)[j+2]-(s+ystride)[j]);
1216
145M
          e2+=abs(((s+ystride)[j+1]-(s-ystride)[j+1]<<1)
1217
145M
           +(s+ystride)[j]-(s-ystride)[j]+(s+ystride)[j+2]-(s-ystride)[j+2]);
1218
145M
          e3+=abs(((s+ystride)[j+2]-(s-ystride)[j]<<1)
1219
145M
           +(s+ystride)[j+1]-s[j]+s[j+2]-(s-ystride)[j+1]);
1220
145M
          e4+=abs(((s+ystride)[j]-(s-ystride)[j+2]<<1)
1221
145M
           +(s+ystride)[j+1]-s[j+2]+s[j]-(s-ystride)[j+1]);
1222
145M
        }
1223
18.1M
        s+=ystride;
1224
18.1M
      }
1225
      /*If the largest component of the edge energy is at least 40% of the
1226
         total, then classify the block as an edge block.*/
1227
2.27M
      if(5*OC_MAXI(OC_MAXI(e1,e2),OC_MAXI(e3,e4))>2*(e1+e2+e3+e4)){
1228
         /*act=act_th*(act/act_th)**0.7
1229
              =exp(log(act_th)+0.7*(log(act)-log(act_th))).
1230
           Here act_th=5.0 and 0x394A=oc_blog32_q10(5<<12).*/
1231
29.2k
         act=oc_bexp32_q10(0x394A+(7*(oc_blog32_q10(act)-0x394A+5)/10));
1232
29.2k
      }
1233
2.27M
    }
1234
10.3M
    _activity[bi]=act;
1235
10.3M
  }
1236
2.57M
  return luma;
1237
2.57M
}
1238
1239
static void oc_mb_activity_fast(oc_enc_ctx *_enc,unsigned _mbi,
1240
0
 unsigned _activity[4],const unsigned _intra_satd[12]){
1241
0
  int bi;
1242
0
  for(bi=0;bi<4;bi++){
1243
0
    unsigned act;
1244
0
    act=(11*_intra_satd[bi]>>8)*_intra_satd[bi];
1245
0
    if(act<8<<12){
1246
      /*The region is flat.*/
1247
0
      act=OC_MINI(act,5<<12);
1248
0
    }
1249
0
    _activity[bi]=act;
1250
0
  }
1251
0
}
1252
1253
/*Compute the masking scales for the blocks in a macro block.
1254
  All masking is computed from the luma blocks.
1255
  We derive scaling factors for the chroma blocks from these, and use the same
1256
   ones for all chroma blocks, regardless of the subsampling.
1257
  It's possible for luma to be perfectly flat and yet have high chroma energy,
1258
   but this is unlikely in non-artificial images, and not a case that has been
1259
   addressed by any research to my knowledge.
1260
  The output of the masking process is two scale factors, which are fed into
1261
   the various R-D optimizations.
1262
  The first, rd_scale, is applied to D in the equation
1263
    D*rd_scale+lambda*R.
1264
  This is the form that must be used to properly combine scores from multiple
1265
   blocks, and can be interpreted as scaling distortions by their visibility.
1266
  The inverse, rd_iscale, is applied to lambda in the equation
1267
    D+rd_iscale*lambda*R.
1268
  This is equivalent to the first form within a single block, but much faster
1269
   to use when evaluating many possible distortions (e.g., during actual
1270
   quantization, where separate distortions are evaluated for every
1271
   coefficient).
1272
  The two macros OC_RD_SCALE(rd_scale,d) and OC_RD_ISCALE(rd_iscale,lambda) are
1273
   used to perform the multiplications with the proper re-scaling for the range
1274
   of the scaling factors.
1275
  Many researchers apply masking values directly to the quantizers used, and
1276
   not to the R-D cost.
1277
  Since we generally use MSE for D, rd_scale must use the square of their
1278
   values to generate an equivalent effect.*/
1279
static unsigned oc_mb_masking(unsigned _rd_scale[5],unsigned _rd_iscale[5],
1280
 const ogg_uint16_t _chroma_rd_scale[2],const unsigned _activity[4],
1281
2.57M
 unsigned _activity_avg,unsigned _luma,unsigned _luma_avg){
1282
2.57M
  unsigned activity_sum;
1283
2.57M
  unsigned la;
1284
2.57M
  unsigned lb;
1285
2.57M
  unsigned d;
1286
2.57M
  int      bi;
1287
2.57M
  int      bi_min;
1288
2.57M
  int      bi_min2;
1289
  /*The ratio lb/la is meant to approximate
1290
     ((((_luma-16)/219)*(255/128))**0.649**0.4**2), which is the
1291
     effective luminance masking from~\cite{LKW06} (including the self-masking
1292
     deflator).
1293
    The following actually turns out to be a pretty good approximation for
1294
     _luma>75 or so.
1295
    For smaller values luminance does not really follow Weber's Law anyway, and
1296
     this approximation gives a much less aggressive bitrate boost in this
1297
     region.
1298
    Though some researchers claim that contrast sensitivity actually decreases
1299
     for very low luminance values, in my experience excessive brightness on
1300
     LCDs or buggy color conversions (e.g., treating Y' as full-range instead
1301
     of the CCIR 601 range) make artifacts in such regions extremely visible.
1302
    We substitute _luma_avg for 128 to allow the strength of the masking to
1303
     vary with the actual average image luminance, within certain limits (the
1304
     caller has clamped _luma_avg to the range [90,160], inclusive).
1305
    @ARTICLE{LKW06,
1306
      author="Zhen Liu and Lina J. Karam and Andrew B. Watson",
1307
      title="{JPEG2000} Encoding With Perceptual Distortion Control",
1308
      journal="{IEEE} Transactions on Image Processing",
1309
      volume=15,
1310
      number=7,
1311
      pages="1763--1778",
1312
      month=Jul,
1313
      year=2006
1314
    }*/
1315
#if 0
1316
  la=_luma+4*_luma_avg;
1317
  lb=4*_luma+_luma_avg;
1318
#else
1319
  /*Disable luminance masking.*/
1320
2.57M
  la=lb=1;
1321
2.57M
#endif
1322
2.57M
  activity_sum=0;
1323
12.8M
  for(bi=0;bi<4;bi++){
1324
10.3M
    unsigned a;
1325
10.3M
    unsigned b;
1326
10.3M
    activity_sum+=_activity[bi];
1327
    /*Apply activity masking.*/
1328
10.3M
    a=_activity[bi]+4*_activity_avg;
1329
10.3M
    b=4*_activity[bi]+_activity_avg;
1330
10.3M
    d=OC_RD_SCALE(b,1);
1331
    /*And luminance masking.*/
1332
10.3M
    d=(a+(d>>1))/d;
1333
10.3M
    _rd_scale[bi]=(d*la+(lb>>1))/lb;
1334
    /*And now the inverse.*/
1335
10.3M
    d=OC_MAXI(OC_RD_ISCALE(a,1),1);
1336
10.3M
    d=(b+(d>>1))/d;
1337
10.3M
    _rd_iscale[bi]=(d*lb+(la>>1))/la;
1338
10.3M
  }
1339
  /*Now compute scaling factors for chroma blocks.
1340
    We start by finding the two smallest iscales from the luma blocks.*/
1341
2.57M
  bi_min=_rd_iscale[1]<_rd_iscale[0];
1342
2.57M
  bi_min2=1-bi_min;
1343
7.73M
  for(bi=2;bi<4;bi++){
1344
5.15M
    if(_rd_iscale[bi]<_rd_iscale[bi_min]){
1345
410k
      bi_min2=bi_min;
1346
410k
      bi_min=bi;
1347
410k
    }
1348
4.74M
    else if(_rd_iscale[bi]<_rd_iscale[bi_min2])bi_min2=bi;
1349
5.15M
  }
1350
  /*If the minimum iscale is less than 1.0, use the second smallest instead,
1351
     and force the value to at least 1.0 (inflating chroma is a waste).*/
1352
2.57M
  if(_rd_iscale[bi_min]<(1<<OC_RD_ISCALE_BITS))bi_min=bi_min2;
1353
2.57M
  d=OC_MINI(_rd_scale[bi_min],1<<OC_RD_SCALE_BITS);
1354
2.57M
  _rd_scale[4]=OC_RD_SCALE(d,_chroma_rd_scale[0]);
1355
2.57M
  d=OC_MAXI(_rd_iscale[bi_min],1<<OC_RD_ISCALE_BITS);
1356
2.57M
  _rd_iscale[4]=OC_RD_ISCALE(d,_chroma_rd_scale[1]);
1357
2.57M
  return activity_sum;
1358
2.57M
}
1359
1360
static int oc_mb_intra_satd(oc_enc_ctx *_enc,unsigned _mbi,
1361
295k
 unsigned _frag_satd[12]){
1362
295k
  const unsigned char   *src;
1363
295k
  const ptrdiff_t       *frag_buf_offs;
1364
295k
  const ptrdiff_t       *sb_map;
1365
295k
  const oc_mb_map_plane *mb_map;
1366
295k
  const unsigned char   *map_idxs;
1367
295k
  int                    map_nidxs;
1368
295k
  int                    mapii;
1369
295k
  int                    mapi;
1370
295k
  int                    ystride;
1371
295k
  int                    pli;
1372
295k
  int                    bi;
1373
295k
  ptrdiff_t              fragi;
1374
295k
  ptrdiff_t              frag_offs;
1375
295k
  unsigned               luma;
1376
295k
  int                    dc;
1377
295k
  frag_buf_offs=_enc->state.frag_buf_offs;
1378
295k
  sb_map=_enc->state.sb_maps[_mbi>>2][_mbi&3];
1379
295k
  src=_enc->state.ref_frame_data[OC_FRAME_IO];
1380
295k
  ystride=_enc->state.ref_ystride[0];
1381
295k
  luma=0;
1382
1.47M
  for(bi=0;bi<4;bi++){
1383
1.18M
    fragi=sb_map[bi];
1384
1.18M
    frag_offs=frag_buf_offs[fragi];
1385
1.18M
    _frag_satd[bi]=oc_enc_frag_intra_satd(_enc,&dc,src+frag_offs,ystride);
1386
1.18M
    luma+=dc;
1387
1.18M
  }
1388
295k
  mb_map=(const oc_mb_map_plane *)_enc->state.mb_maps[_mbi];
1389
295k
  map_idxs=OC_MB_MAP_IDXS[_enc->state.info.pixel_fmt];
1390
295k
  map_nidxs=OC_MB_MAP_NIDXS[_enc->state.info.pixel_fmt];
1391
  /*Note: This assumes ref_ystride[1]==ref_ystride[2].*/
1392
295k
  ystride=_enc->state.ref_ystride[1];
1393
929k
  for(mapii=4;mapii<map_nidxs;mapii++){
1394
634k
    mapi=map_idxs[mapii];
1395
634k
    pli=mapi>>2;
1396
634k
    bi=mapi&3;
1397
634k
    fragi=mb_map[pli][bi];
1398
634k
    frag_offs=frag_buf_offs[fragi];
1399
634k
    _frag_satd[mapii]=oc_enc_frag_intra_satd(_enc,&dc,src+frag_offs,ystride);
1400
634k
  }
1401
295k
  return luma;
1402
295k
}
1403
1404
/*Select luma block-level quantizers for a MB in an INTRA frame.*/
1405
static unsigned oc_analyze_intra_mb_luma(oc_enc_ctx *_enc,
1406
2.28M
 const oc_qii_state *_qs,unsigned _mbi,const unsigned _rd_scale[4]){
1407
2.28M
  const unsigned char *src;
1408
2.28M
  const ptrdiff_t     *frag_buf_offs;
1409
2.28M
  const oc_sb_map     *sb_maps;
1410
2.28M
  oc_fragment         *frags;
1411
2.28M
  ptrdiff_t            frag_offs;
1412
2.28M
  ptrdiff_t            fragi;
1413
2.28M
  oc_qii_state         qs[4][3];
1414
2.28M
  unsigned             cost[4][3];
1415
2.28M
  unsigned             ssd[4][3];
1416
2.28M
  unsigned             rate[4][3];
1417
2.28M
  int                  prev[3][3];
1418
2.28M
  unsigned             satd;
1419
2.28M
  int                  dc;
1420
2.28M
  unsigned             best_cost;
1421
2.28M
  unsigned             best_ssd;
1422
2.28M
  unsigned             best_rate;
1423
2.28M
  int                  best_qii;
1424
2.28M
  int                  qii;
1425
2.28M
  int                  lambda;
1426
2.28M
  int                  ystride;
1427
2.28M
  int                  nqis;
1428
2.28M
  int                  bi;
1429
2.28M
  frag_buf_offs=_enc->state.frag_buf_offs;
1430
2.28M
  sb_maps=(const oc_sb_map *)_enc->state.sb_maps;
1431
2.28M
  src=_enc->state.ref_frame_data[OC_FRAME_IO];
1432
2.28M
  ystride=_enc->state.ref_ystride[0];
1433
2.28M
  fragi=sb_maps[_mbi>>2][_mbi&3][0];
1434
2.28M
  frag_offs=frag_buf_offs[fragi];
1435
2.28M
  if(_enc->sp_level<OC_SP_LEVEL_NOSATD){
1436
2.28M
    satd=oc_enc_frag_intra_satd(_enc,&dc,src+frag_offs,ystride);
1437
2.28M
  }
1438
0
  else{
1439
0
    satd=oc_enc_frag_intra_sad(_enc,src+frag_offs,ystride);
1440
0
  }
1441
2.28M
  nqis=_enc->state.nqis;
1442
2.28M
  lambda=_enc->lambda;
1443
6.02M
  for(qii=0;qii<nqis;qii++){
1444
3.74M
    oc_qii_state_advance(qs[0]+qii,_qs,qii);
1445
3.74M
    rate[0][qii]=oc_dct_cost2(_enc,ssd[0]+qii,qii,0,0,satd)
1446
3.74M
     +(qs[0][qii].bits-_qs->bits<<OC_BIT_SCALE);
1447
3.74M
    ssd[0][qii]=OC_RD_SCALE(ssd[0][qii],_rd_scale[0]);
1448
3.74M
    cost[0][qii]=OC_MODE_RD_COST(ssd[0][qii],rate[0][qii],lambda);
1449
3.74M
  }
1450
9.13M
  for(bi=1;bi<4;bi++){
1451
6.85M
    fragi=sb_maps[_mbi>>2][_mbi&3][bi];
1452
6.85M
    frag_offs=frag_buf_offs[fragi];
1453
6.85M
    if(_enc->sp_level<OC_SP_LEVEL_NOSATD){
1454
6.85M
      satd=oc_enc_frag_intra_satd(_enc,&dc,src+frag_offs,ystride);
1455
6.85M
    }
1456
0
    else{
1457
0
      satd=oc_enc_frag_intra_sad(_enc,src+frag_offs,ystride);
1458
0
    }
1459
18.0M
    for(qii=0;qii<nqis;qii++){
1460
11.2M
      oc_qii_state qt[3];
1461
11.2M
      unsigned     cur_ssd;
1462
11.2M
      unsigned     cur_rate;
1463
11.2M
      int          best_qij;
1464
11.2M
      int          qij;
1465
11.2M
      oc_qii_state_advance(qt+0,qs[bi-1]+0,qii);
1466
11.2M
      cur_rate=oc_dct_cost2(_enc,&cur_ssd,qii,0,0,satd);
1467
11.2M
      cur_ssd=OC_RD_SCALE(cur_ssd,_rd_scale[bi]);
1468
11.2M
      best_ssd=ssd[bi-1][0]+cur_ssd;
1469
11.2M
      best_rate=rate[bi-1][0]+cur_rate
1470
11.2M
       +(qt[0].bits-qs[bi-1][0].bits<<OC_BIT_SCALE);
1471
11.2M
      best_cost=OC_MODE_RD_COST(best_ssd,best_rate,lambda);
1472
11.2M
      best_qij=0;
1473
24.0M
      for(qij=1;qij<nqis;qij++){
1474
12.8M
        unsigned chain_ssd;
1475
12.8M
        unsigned chain_rate;
1476
12.8M
        unsigned chain_cost;
1477
12.8M
        oc_qii_state_advance(qt+qij,qs[bi-1]+qij,qii);
1478
12.8M
        chain_ssd=ssd[bi-1][qij]+cur_ssd;
1479
12.8M
        chain_rate=rate[bi-1][qij]+cur_rate
1480
12.8M
         +(qt[qij].bits-qs[bi-1][qij].bits<<OC_BIT_SCALE);
1481
12.8M
        chain_cost=OC_MODE_RD_COST(chain_ssd,chain_rate,lambda);
1482
12.8M
        if(chain_cost<best_cost){
1483
5.06M
          best_cost=chain_cost;
1484
5.06M
          best_ssd=chain_ssd;
1485
5.06M
          best_rate=chain_rate;
1486
5.06M
          best_qij=qij;
1487
5.06M
        }
1488
12.8M
      }
1489
11.2M
      *(qs[bi]+qii)=*(qt+best_qij);
1490
11.2M
      cost[bi][qii]=best_cost;
1491
11.2M
      ssd[bi][qii]=best_ssd;
1492
11.2M
      rate[bi][qii]=best_rate;
1493
11.2M
      prev[bi-1][qii]=best_qij;
1494
11.2M
    }
1495
6.85M
  }
1496
2.28M
  best_qii=0;
1497
2.28M
  best_cost=cost[3][0];
1498
3.74M
  for(qii=1;qii<nqis;qii++){
1499
1.45M
    if(cost[3][qii]<best_cost){
1500
504k
      best_cost=cost[3][qii];
1501
504k
      best_qii=qii;
1502
504k
    }
1503
1.45M
  }
1504
2.28M
  frags=_enc->state.frags;
1505
9.13M
  for(bi=3;;){
1506
9.13M
    fragi=sb_maps[_mbi>>2][_mbi&3][bi];
1507
9.13M
    frags[fragi].qii=best_qii;
1508
9.13M
    if(bi--<=0)break;
1509
6.85M
    best_qii=prev[bi][best_qii];
1510
6.85M
  }
1511
2.28M
  return best_cost;
1512
2.28M
}
1513
1514
/*Select a block-level quantizer for a single chroma block in an INTRA frame.*/
1515
static unsigned oc_analyze_intra_chroma_block(oc_enc_ctx *_enc,
1516
7.94M
 const oc_qii_state *_qs,int _pli,ptrdiff_t _fragi,unsigned _rd_scale){
1517
7.94M
  const unsigned char *src;
1518
7.94M
  oc_fragment         *frags;
1519
7.94M
  ptrdiff_t            frag_offs;
1520
7.94M
  oc_qii_state         qt[3];
1521
7.94M
  unsigned             cost[3];
1522
7.94M
  unsigned             satd;
1523
7.94M
  int                  dc;
1524
7.94M
  unsigned             best_cost;
1525
7.94M
  int                  best_qii;
1526
7.94M
  int                  qii;
1527
7.94M
  int                  lambda;
1528
7.94M
  int                  ystride;
1529
7.94M
  int                  nqis;
1530
7.94M
  src=_enc->state.ref_frame_data[OC_FRAME_IO];
1531
7.94M
  ystride=_enc->state.ref_ystride[_pli];
1532
7.94M
  frag_offs=_enc->state.frag_buf_offs[_fragi];
1533
7.94M
  if(_enc->sp_level<OC_SP_LEVEL_NOSATD){
1534
7.94M
    satd=oc_enc_frag_intra_satd(_enc,&dc,src+frag_offs,ystride);
1535
7.94M
  }
1536
0
  else{
1537
0
    satd=oc_enc_frag_intra_sad(_enc,src+frag_offs,ystride);
1538
0
  }
1539
  /*Most chroma blocks have no AC coefficients to speak of anyway, so it's not
1540
     worth spending the bits to change the AC quantizer.
1541
    TODO: This may be worth revisiting when we separate out DC and AC
1542
     predictions from SATD.*/
1543
#if 0
1544
  nqis=_enc->state.nqis;
1545
#else
1546
7.94M
  nqis=1;
1547
7.94M
#endif
1548
7.94M
  lambda=_enc->lambda;
1549
7.94M
  best_qii=0;
1550
15.8M
  for(qii=0;qii<nqis;qii++){
1551
7.94M
    unsigned cur_rate;
1552
7.94M
    unsigned cur_ssd;
1553
7.94M
    oc_qii_state_advance(qt+qii,_qs,qii);
1554
7.94M
    cur_rate=oc_dct_cost2(_enc,&cur_ssd,qii,_pli,0,satd)
1555
7.94M
     +(qt[qii].bits-_qs->bits<<OC_BIT_SCALE);
1556
7.94M
    cur_ssd=OC_RD_SCALE(cur_ssd,_rd_scale);
1557
7.94M
    cost[qii]=OC_MODE_RD_COST(cur_ssd,cur_rate,lambda);
1558
7.94M
  }
1559
7.94M
  best_cost=cost[0];
1560
7.94M
  for(qii=1;qii<nqis;qii++){
1561
0
    if(cost[qii]<best_cost){
1562
0
      best_cost=cost[qii];
1563
0
      best_qii=qii;
1564
0
    }
1565
0
  }
1566
7.94M
  frags=_enc->state.frags;
1567
7.94M
  frags[_fragi].qii=best_qii;
1568
7.94M
  return best_cost;
1569
7.94M
}
1570
1571
static void oc_enc_mb_transform_quantize_intra_luma(oc_enc_ctx *_enc,
1572
 oc_enc_pipeline_state *_pipe,unsigned _mbi,
1573
2.28M
 const unsigned _rd_scale[4],const unsigned _rd_iscale[4]){
1574
  /*Worst case token stack usage for 4 fragments.*/
1575
2.28M
  oc_token_checkpoint  stack[64*4];
1576
2.28M
  oc_token_checkpoint *stackptr;
1577
2.28M
  const oc_sb_map     *sb_maps;
1578
2.28M
  oc_fragment         *frags;
1579
2.28M
  ptrdiff_t           *coded_fragis;
1580
2.28M
  ptrdiff_t            ncoded_fragis;
1581
2.28M
  ptrdiff_t            fragi;
1582
2.28M
  int                  bi;
1583
2.28M
  sb_maps=(const oc_sb_map *)_enc->state.sb_maps;
1584
2.28M
  frags=_enc->state.frags;
1585
2.28M
  coded_fragis=_pipe->coded_fragis[0];
1586
2.28M
  ncoded_fragis=_pipe->ncoded_fragis[0];
1587
2.28M
  stackptr=stack;
1588
11.4M
  for(bi=0;bi<4;bi++){
1589
9.13M
    fragi=sb_maps[_mbi>>2][_mbi&3][bi];
1590
9.13M
    frags[fragi].refi=OC_FRAME_SELF;
1591
9.13M
    frags[fragi].mb_mode=OC_MODE_INTRA;
1592
9.13M
    oc_enc_block_transform_quantize(_enc,_pipe,0,fragi,
1593
9.13M
     _rd_scale[bi],_rd_iscale[bi],NULL,NULL,&stackptr);
1594
9.13M
    coded_fragis[ncoded_fragis++]=fragi;
1595
9.13M
  }
1596
2.28M
  _pipe->ncoded_fragis[0]=ncoded_fragis;
1597
2.28M
}
1598
1599
static void oc_enc_sb_transform_quantize_intra_chroma(oc_enc_ctx *_enc,
1600
358k
 oc_enc_pipeline_state *_pipe,int _pli,int _sbi_start,int _sbi_end){
1601
358k
  const ogg_uint16_t *mcu_rd_scale;
1602
358k
  const ogg_uint16_t *mcu_rd_iscale;
1603
358k
  const oc_sb_map    *sb_maps;
1604
358k
  ptrdiff_t          *coded_fragis;
1605
358k
  ptrdiff_t           ncoded_fragis;
1606
358k
  ptrdiff_t           froffset;
1607
358k
  int                 sbi;
1608
358k
  mcu_rd_scale=(const ogg_uint16_t *)_enc->mcu_rd_scale;
1609
358k
  mcu_rd_iscale=(const ogg_uint16_t *)_enc->mcu_rd_iscale;
1610
358k
  sb_maps=(const oc_sb_map *)_enc->state.sb_maps;
1611
358k
  coded_fragis=_pipe->coded_fragis[_pli];
1612
358k
  ncoded_fragis=_pipe->ncoded_fragis[_pli];
1613
358k
  froffset=_pipe->froffset[_pli];
1614
1.64M
  for(sbi=_sbi_start;sbi<_sbi_end;sbi++){
1615
    /*Worst case token stack usage for 1 fragment.*/
1616
1.28M
    oc_token_checkpoint stack[64];
1617
1.28M
    int                 quadi;
1618
1.28M
    int                 bi;
1619
25.7M
    for(quadi=0;quadi<4;quadi++)for(bi=0;bi<4;bi++){
1620
20.5M
      ptrdiff_t fragi;
1621
20.5M
      fragi=sb_maps[sbi][quadi][bi];
1622
20.5M
      if(fragi>=0){
1623
7.94M
        oc_token_checkpoint *stackptr;
1624
7.94M
        unsigned             rd_scale;
1625
7.94M
        unsigned             rd_iscale;
1626
7.94M
        rd_scale=mcu_rd_scale[fragi-froffset];
1627
7.94M
        rd_iscale=mcu_rd_iscale[fragi-froffset];
1628
7.94M
        oc_analyze_intra_chroma_block(_enc,_pipe->qs+_pli,_pli,fragi,rd_scale);
1629
7.94M
        stackptr=stack;
1630
7.94M
        oc_enc_block_transform_quantize(_enc,_pipe,_pli,fragi,
1631
7.94M
         rd_scale,rd_iscale,NULL,NULL,&stackptr);
1632
7.94M
        coded_fragis[ncoded_fragis++]=fragi;
1633
7.94M
      }
1634
20.5M
    }
1635
1.28M
  }
1636
358k
  _pipe->ncoded_fragis[_pli]=ncoded_fragis;
1637
358k
}
1638
1639
/*Analysis stage for an INTRA frame.*/
1640
28.7k
void oc_enc_analyze_intra(oc_enc_ctx *_enc,int _recode){
1641
28.7k
  ogg_int64_t             activity_sum;
1642
28.7k
  ogg_int64_t             luma_sum;
1643
28.7k
  unsigned                activity_avg;
1644
28.7k
  unsigned                luma_avg;
1645
28.7k
  const ogg_uint16_t     *chroma_rd_scale;
1646
28.7k
  ogg_uint16_t           *mcu_rd_scale;
1647
28.7k
  ogg_uint16_t           *mcu_rd_iscale;
1648
28.7k
  const unsigned char    *map_idxs;
1649
28.7k
  int                     nmap_idxs;
1650
28.7k
  oc_sb_flags            *sb_flags;
1651
28.7k
  signed char            *mb_modes;
1652
28.7k
  const oc_mb_map        *mb_maps;
1653
28.7k
  const oc_sb_map        *sb_maps;
1654
28.7k
  oc_fragment            *frags;
1655
28.7k
  unsigned                stripe_sby;
1656
28.7k
  unsigned                mcu_nvsbs;
1657
28.7k
  int                     notstart;
1658
28.7k
  int                     notdone;
1659
28.7k
  int                     refi;
1660
28.7k
  int                     pli;
1661
28.7k
  _enc->state.frame_type=OC_INTRA_FRAME;
1662
28.7k
  oc_enc_tokenize_start(_enc);
1663
28.7k
  oc_enc_pipeline_init(_enc,&_enc->pipe);
1664
28.7k
  oc_enc_mode_rd_init(_enc);
1665
28.7k
  activity_sum=luma_sum=0;
1666
28.7k
  activity_avg=_enc->activity_avg;
1667
28.7k
  luma_avg=OC_CLAMPI(90<<8,_enc->luma_avg,160<<8);
1668
28.7k
  chroma_rd_scale=_enc->chroma_rd_scale[OC_INTRA_FRAME][_enc->state.qis[0]];
1669
28.7k
  mcu_rd_scale=_enc->mcu_rd_scale;
1670
28.7k
  mcu_rd_iscale=_enc->mcu_rd_iscale;
1671
  /*Choose MVs and MB modes and quantize and code luma.
1672
    Must be done in Hilbert order.*/
1673
28.7k
  map_idxs=OC_MB_MAP_IDXS[_enc->state.info.pixel_fmt];
1674
28.7k
  nmap_idxs=OC_MB_MAP_NIDXS[_enc->state.info.pixel_fmt];
1675
28.7k
  _enc->state.ncoded_fragis[0]=0;
1676
28.7k
  _enc->state.ncoded_fragis[1]=0;
1677
28.7k
  _enc->state.ncoded_fragis[2]=0;
1678
28.7k
  sb_flags=_enc->state.sb_flags;
1679
28.7k
  mb_modes=_enc->state.mb_modes;
1680
28.7k
  mb_maps=(const oc_mb_map *)_enc->state.mb_maps;
1681
28.7k
  sb_maps=(const oc_sb_map *)_enc->state.sb_maps;
1682
28.7k
  frags=_enc->state.frags;
1683
28.7k
  notstart=0;
1684
28.7k
  notdone=1;
1685
28.7k
  mcu_nvsbs=_enc->mcu_nvsbs;
1686
207k
  for(stripe_sby=0;notdone;stripe_sby+=mcu_nvsbs){
1687
179k
    ptrdiff_t cfroffset;
1688
179k
    unsigned  sbi;
1689
179k
    unsigned  sbi_end;
1690
179k
    notdone=oc_enc_pipeline_set_stripe(_enc,&_enc->pipe,stripe_sby);
1691
179k
    sbi_end=_enc->pipe.sbi_end[0];
1692
179k
    cfroffset=_enc->pipe.froffset[1];
1693
1.23M
    for(sbi=_enc->pipe.sbi0[0];sbi<sbi_end;sbi++){
1694
1.05M
      int quadi;
1695
      /*Mode addressing is through Y plane, always 4 MB per SB.*/
1696
5.28M
      for(quadi=0;quadi<4;quadi++)if(sb_flags[sbi].quad_valid&1<<quadi){
1697
2.28M
        unsigned  activity[4];
1698
2.28M
        unsigned  rd_scale[5];
1699
2.28M
        unsigned  rd_iscale[5];
1700
2.28M
        unsigned  luma;
1701
2.28M
        unsigned  mbi;
1702
2.28M
        int       mapii;
1703
2.28M
        int       mapi;
1704
2.28M
        int       bi;
1705
2.28M
        ptrdiff_t fragi;
1706
2.28M
        mbi=sbi<<2|quadi;
1707
        /*Activity masking.*/
1708
2.28M
        if(_enc->sp_level<OC_SP_LEVEL_FAST_ANALYSIS){
1709
2.28M
          luma=oc_mb_activity(_enc,mbi,activity);
1710
2.28M
        }
1711
0
        else{
1712
0
          unsigned intra_satd[12];
1713
0
          luma=oc_mb_intra_satd(_enc,mbi,intra_satd);
1714
0
          oc_mb_activity_fast(_enc,mbi,activity,intra_satd);
1715
0
          for(bi=0;bi<4;bi++)frags[sb_maps[mbi>>2][mbi&3][bi]].qii=0;
1716
0
        }
1717
2.28M
        activity_sum+=oc_mb_masking(rd_scale,rd_iscale,
1718
2.28M
         chroma_rd_scale,activity,activity_avg,luma,luma_avg);
1719
2.28M
        luma_sum+=luma;
1720
        /*Motion estimation:
1721
          We do a basic 1MV search for all macroblocks, coded or not,
1722
           keyframe or not, unless we aren't using motion estimation at all.*/
1723
2.28M
        if(!_recode&&_enc->state.curframe_num>0&&
1724
8.11k
         _enc->sp_level<OC_SP_LEVEL_NOMC&&_enc->keyframe_frequency_force>1){
1725
719
          oc_mcenc_search(_enc,mbi);
1726
719
        }
1727
2.28M
        if(_enc->sp_level<OC_SP_LEVEL_FAST_ANALYSIS){
1728
2.28M
          oc_analyze_intra_mb_luma(_enc,_enc->pipe.qs+0,mbi,rd_scale);
1729
2.28M
        }
1730
2.28M
        mb_modes[mbi]=OC_MODE_INTRA;
1731
2.28M
        oc_enc_mb_transform_quantize_intra_luma(_enc,&_enc->pipe,
1732
2.28M
         mbi,rd_scale,rd_iscale);
1733
        /*Propagate final MB mode and MVs to the chroma blocks.*/
1734
10.2M
        for(mapii=4;mapii<nmap_idxs;mapii++){
1735
7.94M
          mapi=map_idxs[mapii];
1736
7.94M
          pli=mapi>>2;
1737
7.94M
          bi=mapi&3;
1738
7.94M
          fragi=mb_maps[mbi][pli][bi];
1739
7.94M
          frags[fragi].refi=OC_FRAME_SELF;
1740
7.94M
          frags[fragi].mb_mode=OC_MODE_INTRA;
1741
7.94M
        }
1742
        /*Save masking scale factors for chroma blocks.*/
1743
6.25M
        for(mapii=4;mapii<(nmap_idxs-4>>1)+4;mapii++){
1744
3.97M
          mapi=map_idxs[mapii];
1745
3.97M
          bi=mapi&3;
1746
3.97M
          fragi=mb_maps[mbi][1][bi];
1747
3.97M
          mcu_rd_scale[fragi-cfroffset]=(ogg_uint16_t)rd_scale[4];
1748
3.97M
          mcu_rd_iscale[fragi-cfroffset]=(ogg_uint16_t)rd_iscale[4];
1749
3.97M
        }
1750
2.28M
      }
1751
1.05M
    }
1752
179k
    oc_enc_pipeline_finish_mcu_plane(_enc,&_enc->pipe,0,notstart,notdone);
1753
    /*Code chroma planes.*/
1754
537k
    for(pli=1;pli<3;pli++){
1755
358k
      oc_enc_sb_transform_quantize_intra_chroma(_enc,&_enc->pipe,
1756
358k
       pli,_enc->pipe.sbi0[pli],_enc->pipe.sbi_end[pli]);
1757
358k
      oc_enc_pipeline_finish_mcu_plane(_enc,&_enc->pipe,pli,notstart,notdone);
1758
358k
    }
1759
179k
    notstart=1;
1760
179k
  }
1761
  /*Compute the average block activity and MB luma score for the frame.*/
1762
28.7k
  _enc->activity_avg=OC_MAXI(OC_ACTIVITY_AVG_MIN,
1763
28.7k
   (unsigned)((activity_sum+(_enc->state.fplanes[0].nfrags>>1))/
1764
28.7k
   _enc->state.fplanes[0].nfrags));
1765
28.7k
  _enc->luma_avg=(unsigned)((luma_sum+(_enc->state.nmbs>>1))/_enc->state.nmbs);
1766
  /*Finish filling in the reference frame borders.*/
1767
28.7k
  refi=_enc->state.ref_frame_idx[OC_FRAME_SELF];
1768
114k
  for(pli=0;pli<3;pli++)oc_state_borders_fill_caps(&_enc->state,refi,pli);
1769
28.7k
  _enc->state.ntotal_coded_fragis=_enc->state.nfrags;
1770
28.7k
}
1771
1772
1773
1774
/*Cost information about a MB mode.*/
1775
struct oc_mode_choice{
1776
  unsigned      cost;
1777
  unsigned      ssd;
1778
  unsigned      rate;
1779
  unsigned      overhead;
1780
  unsigned char qii[12];
1781
};
1782
1783
1784
1785
4.01M
static void oc_mode_set_cost(oc_mode_choice *_modec,int _lambda){
1786
4.01M
  _modec->cost=OC_MODE_RD_COST(_modec->ssd,
1787
4.01M
   _modec->rate+_modec->overhead,_lambda);
1788
4.01M
}
1789
1790
/*A set of skip SSD's to use to disable early skipping.*/
1791
static const unsigned OC_NOSKIP[12]={
1792
  UINT_MAX,UINT_MAX,UINT_MAX,UINT_MAX,
1793
  UINT_MAX,UINT_MAX,UINT_MAX,UINT_MAX,
1794
  UINT_MAX,UINT_MAX,UINT_MAX,UINT_MAX
1795
};
1796
1797
/*The estimated number of bits used by a coded chroma block to specify the AC
1798
   quantizer.
1799
  TODO: Currently this is just 0.5*log2(3) (estimating about 50% compression);
1800
   measurements suggest this is in the right ballpark, but it varies somewhat
1801
   with lambda.*/
1802
6.56M
#define OC_CHROMA_QII_RATE ((0xCAE00D1DU>>31-OC_BIT_SCALE)+1>>1)
1803
1804
static void oc_analyze_mb_mode_luma(oc_enc_ctx *_enc,
1805
 oc_mode_choice *_modec,const oc_fr_state *_fr,const oc_qii_state *_qs,
1806
 const unsigned _frag_satd[12],const unsigned _skip_ssd[12],
1807
3.06M
 const unsigned _rd_scale[4],int _qti){
1808
3.06M
  oc_fr_state  fr;
1809
3.06M
  oc_qii_state qs;
1810
3.06M
  unsigned     ssd;
1811
3.06M
  unsigned     rate;
1812
3.06M
  unsigned     satd;
1813
3.06M
  unsigned     best_ssd;
1814
3.06M
  unsigned     best_rate;
1815
3.06M
  int          best_fri;
1816
3.06M
  int          best_qii;
1817
3.06M
  int          lambda;
1818
3.06M
  int          nqis;
1819
3.06M
  int          nskipped;
1820
3.06M
  int          bi;
1821
3.06M
  lambda=_enc->lambda;
1822
3.06M
  nqis=_enc->state.nqis;
1823
  /*We could do a trellis optimization here, but we don't make final skip
1824
     decisions until after transform+quantization, so the result wouldn't be
1825
     optimal anyway.
1826
    Instead we just use a greedy approach; for most SATD values, the
1827
     differences between the qiis are large enough to drown out the cost to
1828
     code the flags, anyway.*/
1829
3.06M
  *&fr=*_fr;
1830
3.06M
  *&qs=*_qs;
1831
3.06M
  ssd=rate=nskipped=0;
1832
15.3M
  for(bi=0;bi<4;bi++){
1833
12.2M
    oc_fr_state  ft[2];
1834
12.2M
    oc_qii_state qt[3];
1835
12.2M
    unsigned     best_cost;
1836
12.2M
    unsigned     cur_cost;
1837
12.2M
    unsigned     cur_ssd;
1838
12.2M
    unsigned     cur_rate;
1839
12.2M
    unsigned     cur_overhead;
1840
12.2M
    int          qii;
1841
12.2M
    satd=_frag_satd[bi];
1842
12.2M
    *(ft+0)=*&fr;
1843
12.2M
    oc_fr_code_block(ft+0);
1844
12.2M
    cur_overhead=ft[0].bits-fr.bits;
1845
12.2M
    best_rate=oc_dct_cost2(_enc,&best_ssd,0,0,_qti,satd)
1846
12.2M
     +(cur_overhead<<OC_BIT_SCALE);
1847
12.2M
    if(nqis>1){
1848
5.60M
      oc_qii_state_advance(qt+0,&qs,0);
1849
5.60M
      best_rate+=qt[0].bits-qs.bits<<OC_BIT_SCALE;
1850
5.60M
    }
1851
12.2M
    best_ssd=OC_RD_SCALE(best_ssd,_rd_scale[bi]);
1852
12.2M
    best_cost=OC_MODE_RD_COST(ssd+best_ssd,rate+best_rate,lambda);
1853
12.2M
    best_fri=0;
1854
12.2M
    best_qii=0;
1855
20.3M
    for(qii=1;qii<nqis;qii++){
1856
8.15M
      oc_qii_state_advance(qt+qii,&qs,qii);
1857
8.15M
      cur_rate=oc_dct_cost2(_enc,&cur_ssd,qii,0,_qti,satd)
1858
8.15M
       +(cur_overhead+qt[qii].bits-qs.bits<<OC_BIT_SCALE);
1859
8.15M
      cur_ssd=OC_RD_SCALE(cur_ssd,_rd_scale[bi]);
1860
8.15M
      cur_cost=OC_MODE_RD_COST(ssd+cur_ssd,rate+cur_rate,lambda);
1861
8.15M
      if(cur_cost<best_cost){
1862
2.90M
        best_cost=cur_cost;
1863
2.90M
        best_ssd=cur_ssd;
1864
2.90M
        best_rate=cur_rate;
1865
2.90M
        best_qii=qii;
1866
2.90M
      }
1867
8.15M
    }
1868
12.2M
    if(_skip_ssd[bi]<(UINT_MAX>>OC_BIT_SCALE+2)&&nskipped<3){
1869
5.10M
      *(ft+1)=*&fr;
1870
5.10M
      oc_fr_skip_block(ft+1);
1871
5.10M
      cur_overhead=ft[1].bits-fr.bits<<OC_BIT_SCALE;
1872
5.10M
      cur_ssd=_skip_ssd[bi]<<OC_BIT_SCALE;
1873
5.10M
      cur_cost=OC_MODE_RD_COST(ssd+cur_ssd,rate+cur_overhead,lambda);
1874
5.10M
      if(cur_cost<=best_cost){
1875
1.36M
        best_ssd=cur_ssd;
1876
1.36M
        best_rate=cur_overhead;
1877
1.36M
        best_fri=1;
1878
1.36M
        best_qii+=4;
1879
1.36M
      }
1880
5.10M
    }
1881
12.2M
    rate+=best_rate;
1882
12.2M
    ssd+=best_ssd;
1883
12.2M
    *&fr=*(ft+best_fri);
1884
12.2M
    if(best_fri==0)*&qs=*(qt+best_qii);
1885
1.36M
    else nskipped++;
1886
12.2M
    _modec->qii[bi]=best_qii;
1887
12.2M
  }
1888
3.06M
  _modec->ssd=ssd;
1889
3.06M
  _modec->rate=rate;
1890
3.06M
}
1891
1892
static void oc_analyze_mb_mode_chroma(oc_enc_ctx *_enc,
1893
 oc_mode_choice *_modec,const oc_fr_state *_fr,const oc_qii_state *_qs,
1894
 const unsigned _frag_satd[12],const unsigned _skip_ssd[12],
1895
3.06M
 unsigned _rd_scale,int _qti){
1896
3.06M
  unsigned ssd;
1897
3.06M
  unsigned rate;
1898
3.06M
  unsigned satd;
1899
3.06M
  unsigned best_ssd;
1900
3.06M
  unsigned best_rate;
1901
3.06M
  int      best_qii;
1902
3.06M
  unsigned cur_cost;
1903
3.06M
  unsigned cur_ssd;
1904
3.06M
  unsigned cur_rate;
1905
3.06M
  int      lambda;
1906
3.06M
  int      nblocks;
1907
3.06M
  int      nqis;
1908
3.06M
  int      pli;
1909
3.06M
  int      bi;
1910
3.06M
  int      qii;
1911
3.06M
  lambda=_enc->lambda;
1912
  /*Most chroma blocks have no AC coefficients to speak of anyway, so it's not
1913
     worth spending the bits to change the AC quantizer.
1914
    TODO: This may be worth revisiting when we separate out DC and AC
1915
     predictions from SATD.*/
1916
#if 0
1917
  nqis=_enc->state.nqis;
1918
#else
1919
3.06M
  nqis=1;
1920
3.06M
#endif
1921
3.06M
  ssd=_modec->ssd;
1922
3.06M
  rate=_modec->rate;
1923
  /*Because (except in 4:4:4 mode) we aren't considering chroma blocks in coded
1924
     order, we assume a constant overhead for coded block and qii flags.*/
1925
3.06M
  nblocks=OC_MB_MAP_NIDXS[_enc->state.info.pixel_fmt];
1926
3.06M
  nblocks=(nblocks-4>>1)+4;
1927
3.06M
  bi=4;
1928
9.18M
  for(pli=1;pli<3;pli++){
1929
12.6M
    for(;bi<nblocks;bi++){
1930
6.56M
      unsigned best_cost;
1931
6.56M
      satd=_frag_satd[bi];
1932
6.56M
      best_rate=oc_dct_cost2(_enc,&best_ssd,0,pli,_qti,satd)
1933
6.56M
       +OC_CHROMA_QII_RATE;
1934
6.56M
      best_ssd=OC_RD_SCALE(best_ssd,_rd_scale);
1935
6.56M
      best_cost=OC_MODE_RD_COST(ssd+best_ssd,rate+best_rate,lambda);
1936
6.56M
      best_qii=0;
1937
6.56M
      for(qii=1;qii<nqis;qii++){
1938
0
        cur_rate=oc_dct_cost2(_enc,&cur_ssd,qii,pli,_qti,satd)
1939
0
         +OC_CHROMA_QII_RATE;
1940
0
        cur_ssd=OC_RD_SCALE(cur_ssd,_rd_scale);
1941
0
        cur_cost=OC_MODE_RD_COST(ssd+cur_ssd,rate+cur_rate,lambda);
1942
0
        if(cur_cost<best_cost){
1943
0
          best_cost=cur_cost;
1944
0
          best_ssd=cur_ssd;
1945
0
          best_rate=cur_rate;
1946
0
          best_qii=qii;
1947
0
        }
1948
0
      }
1949
6.56M
      if(_skip_ssd[bi]<(UINT_MAX>>OC_BIT_SCALE+2)){
1950
3.47M
        cur_ssd=_skip_ssd[bi]<<OC_BIT_SCALE;
1951
3.47M
        cur_cost=OC_MODE_RD_COST(ssd+cur_ssd,rate,lambda);
1952
3.47M
        if(cur_cost<=best_cost){
1953
1.46M
          best_ssd=cur_ssd;
1954
1.46M
          best_rate=0;
1955
1.46M
          best_qii+=4;
1956
1.46M
        }
1957
3.47M
      }
1958
6.56M
      rate+=best_rate;
1959
6.56M
      ssd+=best_ssd;
1960
6.56M
      _modec->qii[bi]=best_qii;
1961
6.56M
    }
1962
6.12M
    nblocks=(nblocks-4<<1)+4;
1963
6.12M
  }
1964
3.06M
  _modec->ssd=ssd;
1965
3.06M
  _modec->rate=rate;
1966
3.06M
}
1967
1968
static void oc_skip_cost(oc_enc_ctx *_enc,oc_enc_pipeline_state *_pipe,
1969
295k
 unsigned _mbi,const unsigned _rd_scale[4],unsigned _ssd[12]){
1970
295k
  const unsigned char   *src;
1971
295k
  const unsigned char   *ref;
1972
295k
  int                    ystride;
1973
295k
  const oc_fragment     *frags;
1974
295k
  const ptrdiff_t       *frag_buf_offs;
1975
295k
  const ptrdiff_t       *sb_map;
1976
295k
  const oc_mb_map_plane *mb_map;
1977
295k
  const unsigned char   *map_idxs;
1978
295k
  oc_mv                 *mvs;
1979
295k
  int                    map_nidxs;
1980
295k
  unsigned               uncoded_ssd;
1981
295k
  int                    mapii;
1982
295k
  int                    mapi;
1983
295k
  int                    pli;
1984
295k
  int                    bi;
1985
295k
  ptrdiff_t              fragi;
1986
295k
  ptrdiff_t              frag_offs;
1987
295k
  int                    borderi;
1988
295k
  src=_enc->state.ref_frame_data[OC_FRAME_IO];
1989
295k
  ref=_enc->state.ref_frame_data[OC_FRAME_PREV];
1990
295k
  ystride=_enc->state.ref_ystride[0];
1991
295k
  frags=_enc->state.frags;
1992
295k
  frag_buf_offs=_enc->state.frag_buf_offs;
1993
295k
  sb_map=_enc->state.sb_maps[_mbi>>2][_mbi&3];
1994
295k
  mvs=_enc->mb_info[_mbi].block_mv;
1995
1.47M
  for(bi=0;bi<4;bi++){
1996
1.18M
    fragi=sb_map[bi];
1997
1.18M
    borderi=frags[fragi].borderi;
1998
1.18M
    frag_offs=frag_buf_offs[fragi];
1999
1.18M
    if(borderi<0){
2000
717k
      uncoded_ssd=oc_enc_frag_ssd(_enc,src+frag_offs,ref+frag_offs,ystride);
2001
717k
    }
2002
463k
    else{
2003
463k
      uncoded_ssd=oc_enc_frag_border_ssd(_enc,
2004
463k
       src+frag_offs,ref+frag_offs,ystride,_enc->state.borders[borderi].mask);
2005
463k
    }
2006
    /*Scale to match DCT domain and RD.*/
2007
1.18M
    uncoded_ssd=OC_RD_SKIP_SCALE(uncoded_ssd,_rd_scale[bi]);
2008
    /*Motion is a special case; if there is more than a full-pixel motion
2009
       against the prior frame, penalize skipping.
2010
      TODO: The factor of two here is a kludge, but it tested out better than a
2011
       hard limit.*/
2012
1.18M
    if(mvs[bi]!=0)uncoded_ssd*=2;
2013
1.18M
    _pipe->skip_ssd[0][fragi-_pipe->froffset[0]]=_ssd[bi]=uncoded_ssd;
2014
1.18M
  }
2015
295k
  mb_map=(const oc_mb_map_plane *)_enc->state.mb_maps[_mbi];
2016
295k
  map_nidxs=OC_MB_MAP_NIDXS[_enc->state.info.pixel_fmt];
2017
295k
  map_idxs=OC_MB_MAP_IDXS[_enc->state.info.pixel_fmt];
2018
295k
  map_nidxs=(map_nidxs-4>>1)+4;
2019
295k
  mapii=4;
2020
295k
  mvs=_enc->mb_info[_mbi].unref_mv;
2021
886k
  for(pli=1;pli<3;pli++){
2022
590k
    ystride=_enc->state.ref_ystride[pli];
2023
1.22M
    for(;mapii<map_nidxs;mapii++){
2024
634k
      mapi=map_idxs[mapii];
2025
634k
      bi=mapi&3;
2026
634k
      fragi=mb_map[pli][bi];
2027
634k
      borderi=frags[fragi].borderi;
2028
634k
      frag_offs=frag_buf_offs[fragi];
2029
634k
      if(borderi<0){
2030
369k
        uncoded_ssd=oc_enc_frag_ssd(_enc,src+frag_offs,ref+frag_offs,ystride);
2031
369k
      }
2032
264k
      else{
2033
264k
        uncoded_ssd=oc_enc_frag_border_ssd(_enc,
2034
264k
         src+frag_offs,ref+frag_offs,ystride,_enc->state.borders[borderi].mask);
2035
264k
      }
2036
      /*Scale to match DCT domain and RD.*/
2037
634k
      uncoded_ssd=OC_RD_SKIP_SCALE(uncoded_ssd,_rd_scale[4]);
2038
      /*Motion is a special case; if there is more than a full-pixel motion
2039
         against the prior frame, penalize skipping.
2040
        TODO: The factor of two here is a kludge, but it tested out better than
2041
         a hard limit*/
2042
634k
      if(mvs[OC_FRAME_PREV]!=0)uncoded_ssd*=2;
2043
634k
      _pipe->skip_ssd[pli][fragi-_pipe->froffset[pli]]=_ssd[mapii]=uncoded_ssd;
2044
634k
    }
2045
590k
    map_nidxs=(map_nidxs-4<<1)+4;
2046
590k
  }
2047
295k
}
2048
2049
2050
static void oc_cost_intra(oc_enc_ctx *_enc,oc_mode_choice *_modec,
2051
 unsigned _mbi,const oc_fr_state *_fr,const oc_qii_state *_qs,
2052
 const unsigned _frag_satd[12],const unsigned _skip_ssd[12],
2053
590k
 const unsigned _rd_scale[5]){
2054
590k
  oc_analyze_mb_mode_luma(_enc,_modec,_fr,_qs,_frag_satd,_skip_ssd,_rd_scale,0);
2055
590k
  oc_analyze_mb_mode_chroma(_enc,_modec,_fr,_qs,
2056
590k
   _frag_satd,_skip_ssd,_rd_scale[4],0);
2057
590k
  _modec->overhead=
2058
590k
   oc_mode_scheme_chooser_cost(&_enc->chooser,OC_MODE_INTRA)<<OC_BIT_SCALE;
2059
590k
  oc_mode_set_cost(_modec,_enc->lambda);
2060
590k
}
2061
2062
static void oc_cost_inter(oc_enc_ctx *_enc,oc_mode_choice *_modec,
2063
 unsigned _mbi,int _mb_mode,oc_mv _mv,
2064
 const oc_fr_state *_fr,const oc_qii_state *_qs,
2065
2.13M
 const unsigned _skip_ssd[12],const unsigned _rd_scale[5]){
2066
2.13M
  unsigned               frag_satd[12];
2067
2.13M
  const unsigned char   *src;
2068
2.13M
  const unsigned char   *ref;
2069
2.13M
  int                    ystride;
2070
2.13M
  const ptrdiff_t       *frag_buf_offs;
2071
2.13M
  const ptrdiff_t       *sb_map;
2072
2.13M
  const oc_mb_map_plane *mb_map;
2073
2.13M
  const unsigned char   *map_idxs;
2074
2.13M
  int                    map_nidxs;
2075
2.13M
  int                    mapii;
2076
2.13M
  int                    mapi;
2077
2.13M
  int                    mv_offs[2];
2078
2.13M
  int                    pli;
2079
2.13M
  int                    bi;
2080
2.13M
  ptrdiff_t              fragi;
2081
2.13M
  ptrdiff_t              frag_offs;
2082
2.13M
  int                    dc;
2083
2.13M
  src=_enc->state.ref_frame_data[OC_FRAME_IO];
2084
2.13M
  ref=_enc->state.ref_frame_data[OC_FRAME_FOR_MODE(_mb_mode)];
2085
2.13M
  ystride=_enc->state.ref_ystride[0];
2086
2.13M
  frag_buf_offs=_enc->state.frag_buf_offs;
2087
2.13M
  sb_map=_enc->state.sb_maps[_mbi>>2][_mbi&3];
2088
2.13M
  _modec->rate=_modec->ssd=0;
2089
2.13M
  if(oc_state_get_mv_offsets(&_enc->state,mv_offs,0,_mv)>1){
2090
2.23M
    for(bi=0;bi<4;bi++){
2091
1.78M
      fragi=sb_map[bi];
2092
1.78M
      frag_offs=frag_buf_offs[fragi];
2093
1.78M
      if(_enc->sp_level<OC_SP_LEVEL_NOSATD){
2094
1.78M
        frag_satd[bi]=oc_enc_frag_satd2(_enc,&dc,src+frag_offs,
2095
1.78M
         ref+frag_offs+mv_offs[0],ref+frag_offs+mv_offs[1],ystride);
2096
1.78M
        frag_satd[bi]+=abs(dc);
2097
1.78M
      }
2098
0
      else{
2099
0
        frag_satd[bi]=oc_enc_frag_sad2_thresh(_enc,src+frag_offs,
2100
0
         ref+frag_offs+mv_offs[0],ref+frag_offs+mv_offs[1],ystride,UINT_MAX);
2101
0
      }
2102
1.78M
    }
2103
446k
  }
2104
1.68M
  else{
2105
8.44M
    for(bi=0;bi<4;bi++){
2106
6.75M
      fragi=sb_map[bi];
2107
6.75M
      frag_offs=frag_buf_offs[fragi];
2108
6.75M
      if(_enc->sp_level<OC_SP_LEVEL_NOSATD){
2109
6.75M
        frag_satd[bi]=oc_enc_frag_satd(_enc,&dc,src+frag_offs,
2110
6.75M
         ref+frag_offs+mv_offs[0],ystride);
2111
6.75M
        frag_satd[bi]+=abs(dc);
2112
6.75M
      }
2113
0
      else{
2114
0
        frag_satd[bi]=oc_enc_frag_sad(_enc,src+frag_offs,
2115
0
         ref+frag_offs+mv_offs[0],ystride);
2116
0
      }
2117
6.75M
    }
2118
1.68M
  }
2119
2.13M
  mb_map=(const oc_mb_map_plane *)_enc->state.mb_maps[_mbi];
2120
2.13M
  map_idxs=OC_MB_MAP_IDXS[_enc->state.info.pixel_fmt];
2121
2.13M
  map_nidxs=OC_MB_MAP_NIDXS[_enc->state.info.pixel_fmt];
2122
  /*Note: This assumes ref_ystride[1]==ref_ystride[2].*/
2123
2.13M
  ystride=_enc->state.ref_ystride[1];
2124
2.13M
  if(oc_state_get_mv_offsets(&_enc->state,mv_offs,1,_mv)>1){
2125
2.44M
    for(mapii=4;mapii<map_nidxs;mapii++){
2126
1.65M
      mapi=map_idxs[mapii];
2127
1.65M
      pli=mapi>>2;
2128
1.65M
      bi=mapi&3;
2129
1.65M
      fragi=mb_map[pli][bi];
2130
1.65M
      frag_offs=frag_buf_offs[fragi];
2131
1.65M
      if(_enc->sp_level<OC_SP_LEVEL_NOSATD){
2132
1.65M
        frag_satd[mapii]=oc_enc_frag_satd2(_enc,&dc,src+frag_offs,
2133
1.65M
         ref+frag_offs+mv_offs[0],ref+frag_offs+mv_offs[1],ystride);
2134
1.65M
        frag_satd[mapii]+=abs(dc);
2135
1.65M
      }
2136
0
      else{
2137
0
        frag_satd[mapii]=oc_enc_frag_sad2_thresh(_enc,src+frag_offs,
2138
0
         ref+frag_offs+mv_offs[0],ref+frag_offs+mv_offs[1],ystride,UINT_MAX);
2139
0
      }
2140
1.65M
    }
2141
795k
  }
2142
1.33M
  else{
2143
4.26M
    for(mapii=4;mapii<map_nidxs;mapii++){
2144
2.92M
      mapi=map_idxs[mapii];
2145
2.92M
      pli=mapi>>2;
2146
2.92M
      bi=mapi&3;
2147
2.92M
      fragi=mb_map[pli][bi];
2148
2.92M
      frag_offs=frag_buf_offs[fragi];
2149
2.92M
      if(_enc->sp_level<OC_SP_LEVEL_NOSATD){
2150
2.92M
        frag_satd[mapii]=oc_enc_frag_satd(_enc,&dc,src+frag_offs,
2151
2.92M
         ref+frag_offs+mv_offs[0],ystride);
2152
2.92M
        frag_satd[mapii]+=abs(dc);
2153
2.92M
      }
2154
0
      else{
2155
0
        frag_satd[mapii]=oc_enc_frag_sad(_enc,src+frag_offs,
2156
0
         ref+frag_offs+mv_offs[0],ystride);
2157
0
      }
2158
2.92M
    }
2159
1.33M
  }
2160
2.13M
  oc_analyze_mb_mode_luma(_enc,_modec,_fr,_qs,frag_satd,_skip_ssd,_rd_scale,1);
2161
2.13M
  oc_analyze_mb_mode_chroma(_enc,_modec,_fr,_qs,
2162
2.13M
   frag_satd,_skip_ssd,_rd_scale[4],1);
2163
2.13M
  _modec->overhead=
2164
2.13M
   oc_mode_scheme_chooser_cost(&_enc->chooser,_mb_mode)<<OC_BIT_SCALE;
2165
2.13M
  oc_mode_set_cost(_modec,_enc->lambda);
2166
2.13M
}
2167
2168
static void oc_cost_inter_nomv(oc_enc_ctx *_enc,oc_mode_choice *_modec,
2169
 unsigned _mbi,int _mb_mode,const oc_fr_state *_fr,const oc_qii_state *_qs,
2170
590k
 const unsigned _skip_ssd[12],const unsigned _rd_scale[5]){
2171
590k
  oc_cost_inter(_enc,_modec,_mbi,_mb_mode,0,_fr,_qs,_skip_ssd,_rd_scale);
2172
590k
}
2173
2174
static int oc_cost_inter1mv(oc_enc_ctx *_enc,oc_mode_choice *_modec,
2175
 unsigned _mbi,int _mb_mode,oc_mv _mv,
2176
 const oc_fr_state *_fr,const oc_qii_state *_qs,const unsigned _skip_ssd[12],
2177
953k
 const unsigned _rd_scale[5]){
2178
953k
  int bits0;
2179
953k
  oc_cost_inter(_enc,_modec,_mbi,_mb_mode,_mv,_fr,_qs,_skip_ssd,_rd_scale);
2180
953k
  bits0=OC_MV_BITS[0][OC_MV_X(_mv)+31]+OC_MV_BITS[0][OC_MV_Y(_mv)+31];
2181
953k
  _modec->overhead+=OC_MINI(_enc->mv_bits[0]+bits0,_enc->mv_bits[1]+12)
2182
953k
   -OC_MINI(_enc->mv_bits[0],_enc->mv_bits[1])<<OC_BIT_SCALE;
2183
953k
  oc_mode_set_cost(_modec,_enc->lambda);
2184
953k
  return bits0;
2185
953k
}
2186
2187
/*A mapping from oc_mb_map (raster) ordering to oc_sb_map (Hilbert) ordering.*/
2188
static const unsigned char OC_MB_PHASE[4][4]={
2189
  {0,1,3,2},{0,3,1,2},{0,3,1,2},{2,3,1,0}
2190
};
2191
2192
static void oc_cost_inter4mv(oc_enc_ctx *_enc,oc_mode_choice *_modec,
2193
 unsigned _mbi,oc_mv _mv[4],const oc_fr_state *_fr,const oc_qii_state *_qs,
2194
334k
 const unsigned _skip_ssd[12],const unsigned _rd_scale[5]){
2195
334k
  unsigned               frag_satd[12];
2196
334k
  oc_mv                  lbmvs[4];
2197
334k
  oc_mv                  cbmvs[4];
2198
334k
  const unsigned char   *src;
2199
334k
  const unsigned char   *ref;
2200
334k
  int                    ystride;
2201
334k
  const ptrdiff_t       *frag_buf_offs;
2202
334k
  oc_mv                 *frag_mvs;
2203
334k
  const oc_mb_map_plane *mb_map;
2204
334k
  const unsigned char   *map_idxs;
2205
334k
  int                    map_nidxs;
2206
334k
  int                    nqis;
2207
334k
  int                    mapii;
2208
334k
  int                    mapi;
2209
334k
  int                    mv_offs[2];
2210
334k
  int                    pli;
2211
334k
  int                    bi;
2212
334k
  ptrdiff_t              fragi;
2213
334k
  ptrdiff_t              frag_offs;
2214
334k
  int                    bits0;
2215
334k
  int                    bits1;
2216
334k
  unsigned               satd;
2217
334k
  int                    dc;
2218
334k
  src=_enc->state.ref_frame_data[OC_FRAME_IO];
2219
334k
  ref=_enc->state.ref_frame_data[OC_FRAME_PREV];
2220
334k
  ystride=_enc->state.ref_ystride[0];
2221
334k
  frag_buf_offs=_enc->state.frag_buf_offs;
2222
334k
  frag_mvs=_enc->state.frag_mvs;
2223
334k
  mb_map=(const oc_mb_map_plane *)_enc->state.mb_maps[_mbi];
2224
334k
  _modec->rate=_modec->ssd=0;
2225
1.67M
  for(bi=0;bi<4;bi++){
2226
1.33M
    fragi=mb_map[0][bi];
2227
    /*Save the block MVs as the current ones while we're here; we'll replace
2228
       them if we don't ultimately choose 4MV mode.*/
2229
1.33M
    frag_mvs[fragi]=_mv[bi];
2230
1.33M
    frag_offs=frag_buf_offs[fragi];
2231
1.33M
    if(oc_state_get_mv_offsets(&_enc->state,mv_offs,0,_mv[bi])>1){
2232
140k
      satd=oc_enc_frag_satd2(_enc,&dc,src+frag_offs,
2233
140k
       ref+frag_offs+mv_offs[0],ref+frag_offs+mv_offs[1],ystride);
2234
140k
    }
2235
1.19M
    else{
2236
1.19M
      satd=oc_enc_frag_satd(_enc,&dc,src+frag_offs,
2237
1.19M
       ref+frag_offs+mv_offs[0],ystride);
2238
1.19M
    }
2239
1.33M
    frag_satd[OC_MB_PHASE[_mbi&3][bi]]=satd+abs(dc);
2240
1.33M
  }
2241
334k
  oc_analyze_mb_mode_luma(_enc,_modec,_fr,_qs,frag_satd,
2242
334k
   _enc->vp3_compatible?OC_NOSKIP:_skip_ssd,_rd_scale,1);
2243
  /*Figure out which blocks are being skipped and give them (0,0) MVs.*/
2244
334k
  bits0=0;
2245
334k
  bits1=0;
2246
334k
  nqis=_enc->state.nqis;
2247
1.67M
  for(bi=0;bi<4;bi++){
2248
1.33M
    if(_modec->qii[OC_MB_PHASE[_mbi&3][bi]]>=nqis)lbmvs[bi]=0;
2249
1.18M
    else{
2250
1.18M
      lbmvs[bi]=_mv[bi];
2251
1.18M
      bits0+=OC_MV_BITS[0][OC_MV_X(_mv[bi])+31]
2252
1.18M
       +OC_MV_BITS[0][OC_MV_Y(_mv[bi])+31];
2253
1.18M
      bits1+=12;
2254
1.18M
    }
2255
1.33M
  }
2256
334k
  (*OC_SET_CHROMA_MVS_TABLE[_enc->state.info.pixel_fmt])(cbmvs,lbmvs);
2257
334k
  map_idxs=OC_MB_MAP_IDXS[_enc->state.info.pixel_fmt];
2258
334k
  map_nidxs=OC_MB_MAP_NIDXS[_enc->state.info.pixel_fmt];
2259
  /*Note: This assumes ref_ystride[1]==ref_ystride[2].*/
2260
334k
  ystride=_enc->state.ref_ystride[1];
2261
1.05M
  for(mapii=4;mapii<map_nidxs;mapii++){
2262
720k
    mapi=map_idxs[mapii];
2263
720k
    pli=mapi>>2;
2264
720k
    bi=mapi&3;
2265
720k
    fragi=mb_map[pli][bi];
2266
720k
    frag_offs=frag_buf_offs[fragi];
2267
    /*TODO: We could save half these calls by re-using the results for the Cb
2268
       and Cr planes; is it worth it?*/
2269
720k
    if(oc_state_get_mv_offsets(&_enc->state,mv_offs,pli,cbmvs[bi])>1){
2270
479k
      satd=oc_enc_frag_satd2(_enc,&dc,src+frag_offs,
2271
479k
       ref+frag_offs+mv_offs[0],ref+frag_offs+mv_offs[1],ystride);
2272
479k
    }
2273
241k
    else{
2274
241k
      satd=oc_enc_frag_satd(_enc,&dc,src+frag_offs,
2275
241k
       ref+frag_offs+mv_offs[0],ystride);
2276
241k
    }
2277
720k
    frag_satd[mapii]=satd+abs(dc);
2278
720k
  }
2279
334k
  oc_analyze_mb_mode_chroma(_enc,_modec,_fr,_qs,
2280
334k
   frag_satd,_skip_ssd,_rd_scale[4],1);
2281
334k
  _modec->overhead=
2282
334k
   oc_mode_scheme_chooser_cost(&_enc->chooser,OC_MODE_INTER_MV_FOUR)
2283
334k
   +OC_MINI(_enc->mv_bits[0]+bits0,_enc->mv_bits[1]+bits1)
2284
334k
   -OC_MINI(_enc->mv_bits[0],_enc->mv_bits[1])<<OC_BIT_SCALE;
2285
334k
  oc_mode_set_cost(_modec,_enc->lambda);
2286
334k
}
2287
2288
40.2k
int oc_enc_analyze_inter(oc_enc_ctx *_enc,int _allow_keyframe,int _recode){
2289
40.2k
  oc_set_chroma_mvs_func  set_chroma_mvs;
2290
40.2k
  oc_qii_state            intra_luma_qs;
2291
40.2k
  oc_mv                   last_mv;
2292
40.2k
  oc_mv                   prior_mv;
2293
40.2k
  ogg_int64_t             interbits;
2294
40.2k
  ogg_int64_t             intrabits;
2295
40.2k
  ogg_int64_t             activity_sum;
2296
40.2k
  ogg_int64_t             luma_sum;
2297
40.2k
  unsigned                activity_avg;
2298
40.2k
  unsigned                luma_avg;
2299
40.2k
  const ogg_uint16_t     *chroma_rd_scale;
2300
40.2k
  ogg_uint16_t           *mcu_rd_scale;
2301
40.2k
  ogg_uint16_t           *mcu_rd_iscale;
2302
40.2k
  const unsigned char    *map_idxs;
2303
40.2k
  int                     nmap_idxs;
2304
40.2k
  unsigned               *coded_mbis;
2305
40.2k
  unsigned               *uncoded_mbis;
2306
40.2k
  size_t                  ncoded_mbis;
2307
40.2k
  size_t                  nuncoded_mbis;
2308
40.2k
  oc_sb_flags            *sb_flags;
2309
40.2k
  signed char            *mb_modes;
2310
40.2k
  const oc_sb_map        *sb_maps;
2311
40.2k
  const oc_mb_map        *mb_maps;
2312
40.2k
  oc_mb_enc_info         *embs;
2313
40.2k
  oc_fragment            *frags;
2314
40.2k
  oc_mv                  *frag_mvs;
2315
40.2k
  unsigned                stripe_sby;
2316
40.2k
  unsigned                mcu_nvsbs;
2317
40.2k
  int                     notstart;
2318
40.2k
  int                     notdone;
2319
40.2k
  unsigned                sbi;
2320
40.2k
  unsigned                sbi_end;
2321
40.2k
  int                     refi;
2322
40.2k
  int                     pli;
2323
40.2k
  int                     sp_level;
2324
40.2k
  sp_level=_enc->sp_level;
2325
40.2k
  set_chroma_mvs=OC_SET_CHROMA_MVS_TABLE[_enc->state.info.pixel_fmt];
2326
40.2k
  _enc->state.frame_type=OC_INTER_FRAME;
2327
40.2k
  oc_mode_scheme_chooser_reset(&_enc->chooser);
2328
40.2k
  oc_enc_tokenize_start(_enc);
2329
40.2k
  oc_enc_pipeline_init(_enc,&_enc->pipe);
2330
40.2k
  oc_enc_mode_rd_init(_enc);
2331
40.2k
  if(_allow_keyframe)oc_qii_state_init(&intra_luma_qs);
2332
40.2k
  _enc->mv_bits[0]=_enc->mv_bits[1]=0;
2333
40.2k
  interbits=intrabits=0;
2334
40.2k
  activity_sum=luma_sum=0;
2335
40.2k
  activity_avg=_enc->activity_avg;
2336
40.2k
  luma_avg=OC_CLAMPI(90<<8,_enc->luma_avg,160<<8);
2337
40.2k
  chroma_rd_scale=_enc->chroma_rd_scale[OC_INTER_FRAME][_enc->state.qis[0]];
2338
40.2k
  mcu_rd_scale=_enc->mcu_rd_scale;
2339
40.2k
  mcu_rd_iscale=_enc->mcu_rd_iscale;
2340
40.2k
  last_mv=prior_mv=0;
2341
  /*Choose MVs and MB modes and quantize and code luma.
2342
    Must be done in Hilbert order.*/
2343
40.2k
  map_idxs=OC_MB_MAP_IDXS[_enc->state.info.pixel_fmt];
2344
40.2k
  nmap_idxs=OC_MB_MAP_NIDXS[_enc->state.info.pixel_fmt];
2345
40.2k
  coded_mbis=_enc->coded_mbis;
2346
40.2k
  uncoded_mbis=coded_mbis+_enc->state.nmbs;
2347
40.2k
  ncoded_mbis=0;
2348
40.2k
  nuncoded_mbis=0;
2349
40.2k
  _enc->state.ncoded_fragis[0]=0;
2350
40.2k
  _enc->state.ncoded_fragis[1]=0;
2351
40.2k
  _enc->state.ncoded_fragis[2]=0;
2352
40.2k
  sb_flags=_enc->state.sb_flags;
2353
40.2k
  mb_modes=_enc->state.mb_modes;
2354
40.2k
  sb_maps=(const oc_sb_map *)_enc->state.sb_maps;
2355
40.2k
  mb_maps=(const oc_mb_map *)_enc->state.mb_maps;
2356
40.2k
  embs=_enc->mb_info;
2357
40.2k
  frags=_enc->state.frags;
2358
40.2k
  frag_mvs=_enc->state.frag_mvs;
2359
40.2k
  notstart=0;
2360
40.2k
  notdone=1;
2361
40.2k
  mcu_nvsbs=_enc->mcu_nvsbs;
2362
82.9k
  for(stripe_sby=0;notdone;stripe_sby+=mcu_nvsbs){
2363
42.6k
    ptrdiff_t cfroffset;
2364
42.6k
    notdone=oc_enc_pipeline_set_stripe(_enc,&_enc->pipe,stripe_sby);
2365
42.6k
    sbi_end=_enc->pipe.sbi_end[0];
2366
42.6k
    cfroffset=_enc->pipe.froffset[1];
2367
136k
    for(sbi=_enc->pipe.sbi0[0];sbi<sbi_end;sbi++){
2368
94.1k
      int quadi;
2369
      /*Mode addressing is through Y plane, always 4 MB per SB.*/
2370
470k
      for(quadi=0;quadi<4;quadi++)if(sb_flags[sbi].quad_valid&1<<quadi){
2371
295k
        oc_mode_choice modes[8];
2372
295k
        unsigned       activity[4];
2373
295k
        unsigned       rd_scale[5];
2374
295k
        unsigned       rd_iscale[5];
2375
295k
        unsigned       skip_ssd[12];
2376
295k
        unsigned       intra_satd[12];
2377
295k
        unsigned       luma;
2378
295k
        int            mb_mv_bits_0;
2379
295k
        int            mb_gmv_bits_0;
2380
295k
        int            inter_mv_pref;
2381
295k
        int            mb_mode;
2382
295k
        int            refi;
2383
295k
        int            mv;
2384
295k
        unsigned       mbi;
2385
295k
        int            mapii;
2386
295k
        int            mapi;
2387
295k
        int            bi;
2388
295k
        ptrdiff_t      fragi;
2389
295k
        mbi=sbi<<2|quadi;
2390
295k
        luma=oc_mb_intra_satd(_enc,mbi,intra_satd);
2391
        /*Activity masking.*/
2392
295k
        if(sp_level<OC_SP_LEVEL_FAST_ANALYSIS){
2393
295k
          oc_mb_activity(_enc,mbi,activity);
2394
295k
        }
2395
0
        else oc_mb_activity_fast(_enc,mbi,activity,intra_satd);
2396
295k
        luma_sum+=luma;
2397
295k
        activity_sum+=oc_mb_masking(rd_scale,rd_iscale,
2398
295k
         chroma_rd_scale,activity,activity_avg,luma,luma_avg);
2399
        /*Motion estimation:
2400
          We always do a basic 1MV search for all macroblocks, coded or not,
2401
           keyframe or not.*/
2402
295k
        if(!_recode&&sp_level<OC_SP_LEVEL_NOMC)oc_mcenc_search(_enc,mbi);
2403
295k
        mv=0;
2404
        /*Find the block choice with the lowest estimated coding cost.
2405
          If a Cb or Cr block is coded but no Y' block from a macro block then
2406
           the mode MUST be OC_MODE_INTER_NOMV.
2407
          This is the default state to which the mode data structure is
2408
           initialised in encoder and decoder at the start of each frame.*/
2409
        /*Block coding cost is estimated from correlated SATD metrics.*/
2410
        /*At this point, all blocks that are in frame are still marked coded.*/
2411
295k
        if(!_recode){
2412
218k
          embs[mbi].unref_mv[OC_FRAME_GOLD]=
2413
218k
           embs[mbi].analysis_mv[0][OC_FRAME_GOLD];
2414
218k
          embs[mbi].unref_mv[OC_FRAME_PREV]=
2415
218k
           embs[mbi].analysis_mv[0][OC_FRAME_PREV];
2416
218k
          embs[mbi].refined=0;
2417
218k
        }
2418
        /*Estimate the cost of coding this MB in a keyframe.*/
2419
295k
        if(_allow_keyframe){
2420
295k
          oc_cost_intra(_enc,modes+OC_MODE_INTRA,mbi,
2421
295k
           _enc->pipe.fr+0,&intra_luma_qs,intra_satd,OC_NOSKIP,rd_scale);
2422
295k
          intrabits+=modes[OC_MODE_INTRA].rate;
2423
1.47M
          for(bi=0;bi<4;bi++){
2424
1.18M
            oc_qii_state_advance(&intra_luma_qs,&intra_luma_qs,
2425
1.18M
             modes[OC_MODE_INTRA].qii[bi]);
2426
1.18M
          }
2427
295k
        }
2428
        /*Estimate the cost in a delta frame for various modes.*/
2429
295k
        oc_skip_cost(_enc,&_enc->pipe,mbi,rd_scale,skip_ssd);
2430
295k
        if(sp_level<OC_SP_LEVEL_NOMC){
2431
295k
          oc_cost_inter_nomv(_enc,modes+OC_MODE_INTER_NOMV,mbi,
2432
295k
           OC_MODE_INTER_NOMV,_enc->pipe.fr+0,_enc->pipe.qs+0,
2433
295k
           skip_ssd,rd_scale);
2434
295k
          oc_cost_intra(_enc,modes+OC_MODE_INTRA,mbi,
2435
295k
           _enc->pipe.fr+0,_enc->pipe.qs+0,intra_satd,skip_ssd,rd_scale);
2436
295k
          mb_mv_bits_0=oc_cost_inter1mv(_enc,modes+OC_MODE_INTER_MV,mbi,
2437
295k
           OC_MODE_INTER_MV,embs[mbi].unref_mv[OC_FRAME_PREV],
2438
295k
           _enc->pipe.fr+0,_enc->pipe.qs+0,skip_ssd,rd_scale);
2439
295k
          oc_cost_inter(_enc,modes+OC_MODE_INTER_MV_LAST,mbi,
2440
295k
           OC_MODE_INTER_MV_LAST,last_mv,_enc->pipe.fr+0,_enc->pipe.qs+0,
2441
295k
           skip_ssd,rd_scale);
2442
295k
          oc_cost_inter(_enc,modes+OC_MODE_INTER_MV_LAST2,mbi,
2443
295k
           OC_MODE_INTER_MV_LAST2,prior_mv,_enc->pipe.fr+0,_enc->pipe.qs+0,
2444
295k
           skip_ssd,rd_scale);
2445
295k
          oc_cost_inter_nomv(_enc,modes+OC_MODE_GOLDEN_NOMV,mbi,
2446
295k
           OC_MODE_GOLDEN_NOMV,_enc->pipe.fr+0,_enc->pipe.qs+0,
2447
295k
           skip_ssd,rd_scale);
2448
295k
          mb_gmv_bits_0=oc_cost_inter1mv(_enc,modes+OC_MODE_GOLDEN_MV,mbi,
2449
295k
           OC_MODE_GOLDEN_MV,embs[mbi].unref_mv[OC_FRAME_GOLD],
2450
295k
           _enc->pipe.fr+0,_enc->pipe.qs+0,skip_ssd,rd_scale);
2451
          /*The explicit MV modes (2,6,7) have not yet gone through halfpel
2452
             refinement.
2453
            We choose the explicit MV mode that's already furthest ahead on
2454
             R-D cost and refine only that one.
2455
            We have to be careful to remember which ones we've refined so that
2456
             we don't refine it again if we re-encode this frame.*/
2457
295k
          inter_mv_pref=_enc->lambda*3;
2458
295k
          if(sp_level<OC_SP_LEVEL_FAST_ANALYSIS){
2459
295k
            oc_cost_inter4mv(_enc,modes+OC_MODE_INTER_MV_FOUR,mbi,
2460
295k
             embs[mbi].block_mv,_enc->pipe.fr+0,_enc->pipe.qs+0,
2461
295k
             skip_ssd,rd_scale);
2462
295k
          }
2463
0
          else{
2464
0
            modes[OC_MODE_INTER_MV_FOUR].cost=UINT_MAX;
2465
0
          }
2466
295k
          if(modes[OC_MODE_INTER_MV_FOUR].cost<modes[OC_MODE_INTER_MV].cost&&
2467
55.1k
           modes[OC_MODE_INTER_MV_FOUR].cost<modes[OC_MODE_GOLDEN_MV].cost){
2468
39.4k
            if(!(embs[mbi].refined&0x80)){
2469
28.4k
              oc_mcenc_refine4mv(_enc,mbi);
2470
28.4k
              embs[mbi].refined|=0x80;
2471
28.4k
            }
2472
39.4k
            oc_cost_inter4mv(_enc,modes+OC_MODE_INTER_MV_FOUR,mbi,
2473
39.4k
             embs[mbi].ref_mv,_enc->pipe.fr+0,_enc->pipe.qs+0,
2474
39.4k
             skip_ssd,rd_scale);
2475
39.4k
          }
2476
255k
          else if(modes[OC_MODE_GOLDEN_MV].cost+inter_mv_pref<
2477
255k
           modes[OC_MODE_INTER_MV].cost){
2478
67.3k
            if(!(embs[mbi].refined&0x40)){
2479
56.0k
              oc_mcenc_refine1mv(_enc,mbi,OC_FRAME_GOLD);
2480
56.0k
              embs[mbi].refined|=0x40;
2481
56.0k
            }
2482
67.3k
            mb_gmv_bits_0=oc_cost_inter1mv(_enc,modes+OC_MODE_GOLDEN_MV,mbi,
2483
67.3k
             OC_MODE_GOLDEN_MV,embs[mbi].analysis_mv[0][OC_FRAME_GOLD],
2484
67.3k
             _enc->pipe.fr+0,_enc->pipe.qs+0,skip_ssd,rd_scale);
2485
67.3k
          }
2486
295k
          if(!(embs[mbi].refined&0x04)){
2487
218k
            oc_mcenc_refine1mv(_enc,mbi,OC_FRAME_PREV);
2488
218k
            embs[mbi].refined|=0x04;
2489
218k
          }
2490
295k
          mb_mv_bits_0=oc_cost_inter1mv(_enc,modes+OC_MODE_INTER_MV,mbi,
2491
295k
           OC_MODE_INTER_MV,embs[mbi].analysis_mv[0][OC_FRAME_PREV],
2492
295k
           _enc->pipe.fr+0,_enc->pipe.qs+0,skip_ssd,rd_scale);
2493
          /*Finally, pick the mode with the cheapest estimated R-D cost.*/
2494
295k
          mb_mode=OC_MODE_INTER_NOMV;
2495
295k
          if(modes[OC_MODE_INTRA].cost<modes[OC_MODE_INTER_NOMV].cost){
2496
218k
            mb_mode=OC_MODE_INTRA;
2497
218k
          }
2498
295k
          if(modes[OC_MODE_INTER_MV_LAST].cost<modes[mb_mode].cost){
2499
37.8k
            mb_mode=OC_MODE_INTER_MV_LAST;
2500
37.8k
          }
2501
295k
          if(modes[OC_MODE_INTER_MV_LAST2].cost<modes[mb_mode].cost){
2502
11.4k
            mb_mode=OC_MODE_INTER_MV_LAST2;
2503
11.4k
          }
2504
295k
          if(modes[OC_MODE_GOLDEN_NOMV].cost<modes[mb_mode].cost){
2505
7.68k
            mb_mode=OC_MODE_GOLDEN_NOMV;
2506
7.68k
          }
2507
295k
          if(modes[OC_MODE_GOLDEN_MV].cost<modes[mb_mode].cost){
2508
24.7k
            mb_mode=OC_MODE_GOLDEN_MV;
2509
24.7k
          }
2510
295k
          if(modes[OC_MODE_INTER_MV_FOUR].cost<modes[mb_mode].cost){
2511
14.4k
            mb_mode=OC_MODE_INTER_MV_FOUR;
2512
14.4k
          }
2513
          /*We prefer OC_MODE_INTER_MV, but not over LAST and LAST2.*/
2514
295k
          if(mb_mode==OC_MODE_INTER_MV_LAST||mb_mode==OC_MODE_INTER_MV_LAST2){
2515
31.9k
            inter_mv_pref=0;
2516
31.9k
          }
2517
295k
          if(modes[OC_MODE_INTER_MV].cost<modes[mb_mode].cost+inter_mv_pref){
2518
22.8k
            mb_mode=OC_MODE_INTER_MV;
2519
22.8k
          }
2520
295k
        }
2521
0
        else{
2522
0
          oc_cost_inter_nomv(_enc,modes+OC_MODE_INTER_NOMV,mbi,
2523
0
           OC_MODE_INTER_NOMV,_enc->pipe.fr+0,_enc->pipe.qs+0,
2524
0
           skip_ssd,rd_scale);
2525
0
          oc_cost_intra(_enc,modes+OC_MODE_INTRA,mbi,
2526
0
           _enc->pipe.fr+0,_enc->pipe.qs+0,intra_satd,skip_ssd,rd_scale);
2527
0
          oc_cost_inter_nomv(_enc,modes+OC_MODE_GOLDEN_NOMV,mbi,
2528
0
           OC_MODE_GOLDEN_NOMV,_enc->pipe.fr+0,_enc->pipe.qs+0,
2529
0
           skip_ssd,rd_scale);
2530
0
          mb_mode=OC_MODE_INTER_NOMV;
2531
0
          if(modes[OC_MODE_INTRA].cost<modes[OC_MODE_INTER_NOMV].cost){
2532
0
            mb_mode=OC_MODE_INTRA;
2533
0
          }
2534
0
          if(modes[OC_MODE_GOLDEN_NOMV].cost<modes[mb_mode].cost){
2535
0
            mb_mode=OC_MODE_GOLDEN_NOMV;
2536
0
          }
2537
0
          mb_mv_bits_0=mb_gmv_bits_0=0;
2538
0
        }
2539
295k
        mb_modes[mbi]=mb_mode;
2540
        /*Propagate the MVs to the luma blocks.*/
2541
295k
        if(mb_mode!=OC_MODE_INTER_MV_FOUR){
2542
285k
          switch(mb_mode){
2543
22.8k
            case OC_MODE_INTER_MV:{
2544
22.8k
              mv=embs[mbi].analysis_mv[0][OC_FRAME_PREV];
2545
22.8k
            }break;
2546
20.5k
            case OC_MODE_INTER_MV_LAST:mv=last_mv;break;
2547
6.34k
            case OC_MODE_INTER_MV_LAST2:mv=prior_mv;break;
2548
15.5k
            case OC_MODE_GOLDEN_MV:{
2549
15.5k
              mv=embs[mbi].analysis_mv[0][OC_FRAME_GOLD];
2550
15.5k
            }break;
2551
285k
          }
2552
1.42M
          for(bi=0;bi<4;bi++){
2553
1.14M
            fragi=mb_maps[mbi][0][bi];
2554
1.14M
            frag_mvs[fragi]=mv;
2555
1.14M
          }
2556
285k
        }
2557
1.47M
        for(bi=0;bi<4;bi++){
2558
1.18M
          fragi=sb_maps[mbi>>2][mbi&3][bi];
2559
1.18M
          frags[fragi].qii=modes[mb_mode].qii[bi];
2560
1.18M
        }
2561
295k
        if(oc_enc_mb_transform_quantize_inter_luma(_enc,&_enc->pipe,mbi,
2562
295k
         modes[mb_mode].overhead>>OC_BIT_SCALE,rd_scale,rd_iscale)>0){
2563
235k
          int orig_mb_mode;
2564
235k
          orig_mb_mode=mb_mode;
2565
235k
          mb_mode=mb_modes[mbi];
2566
235k
          refi=OC_FRAME_FOR_MODE(mb_mode);
2567
235k
          switch(mb_mode){
2568
11.7k
            case OC_MODE_INTER_MV:{
2569
11.7k
              prior_mv=last_mv;
2570
              /*If we're backing out from 4MV, find the MV we're actually
2571
                 using.*/
2572
11.7k
              if(orig_mb_mode==OC_MODE_INTER_MV_FOUR){
2573
560
                for(bi=0;;bi++){
2574
560
                  fragi=mb_maps[mbi][0][bi];
2575
560
                  if(frags[fragi].coded){
2576
204
                    mv=last_mv=frag_mvs[fragi];
2577
204
                    break;
2578
204
                  }
2579
560
                }
2580
204
                mb_mv_bits_0=OC_MV_BITS[0][OC_MV_X(mv)+31]
2581
204
                 +OC_MV_BITS[0][OC_MV_Y(mv)+31];
2582
204
              }
2583
              /*Otherwise we used the original analysis MV.*/
2584
11.5k
              else last_mv=embs[mbi].analysis_mv[0][OC_FRAME_PREV];
2585
11.7k
              _enc->mv_bits[0]+=mb_mv_bits_0;
2586
11.7k
              _enc->mv_bits[1]+=12;
2587
11.7k
            }break;
2588
4.81k
            case OC_MODE_INTER_MV_LAST2:{
2589
4.81k
              oc_mv tmp_mv;
2590
4.81k
              tmp_mv=prior_mv;
2591
4.81k
              prior_mv=last_mv;
2592
4.81k
              last_mv=tmp_mv;
2593
4.81k
            }break;
2594
9.07k
            case OC_MODE_GOLDEN_MV:{
2595
9.07k
              _enc->mv_bits[0]+=mb_gmv_bits_0;
2596
9.07k
              _enc->mv_bits[1]+=12;
2597
9.07k
            }break;
2598
8.07k
            case OC_MODE_INTER_MV_FOUR:{
2599
8.07k
              oc_mv lbmvs[4];
2600
8.07k
              oc_mv cbmvs[4];
2601
8.07k
              prior_mv=last_mv;
2602
40.3k
              for(bi=0;bi<4;bi++){
2603
32.3k
                fragi=mb_maps[mbi][0][bi];
2604
32.3k
                if(frags[fragi].coded){
2605
30.7k
                  lbmvs[bi]=last_mv=frag_mvs[fragi];
2606
30.7k
                  _enc->mv_bits[0]+=OC_MV_BITS[0][OC_MV_X(last_mv)+31]
2607
30.7k
                   +OC_MV_BITS[0][OC_MV_Y(last_mv)+31];
2608
30.7k
                  _enc->mv_bits[1]+=12;
2609
30.7k
                }
2610
                /*Replace the block MVs for not-coded blocks with (0,0).*/
2611
1.59k
                else lbmvs[bi]=0;
2612
32.3k
              }
2613
8.07k
              (*set_chroma_mvs)(cbmvs,lbmvs);
2614
24.4k
              for(mapii=4;mapii<nmap_idxs;mapii++){
2615
16.4k
                mapi=map_idxs[mapii];
2616
16.4k
                pli=mapi>>2;
2617
16.4k
                bi=mapi&3;
2618
16.4k
                fragi=mb_maps[mbi][pli][bi];
2619
16.4k
                frags[fragi].qii=modes[OC_MODE_INTER_MV_FOUR].qii[mapii];
2620
16.4k
                frags[fragi].refi=refi;
2621
16.4k
                frags[fragi].mb_mode=mb_mode;
2622
16.4k
                frag_mvs[fragi]=cbmvs[bi];
2623
16.4k
              }
2624
8.07k
            }break;
2625
235k
          }
2626
235k
          coded_mbis[ncoded_mbis++]=mbi;
2627
235k
          oc_mode_scheme_chooser_update(&_enc->chooser,mb_mode);
2628
235k
          interbits+=modes[mb_mode].rate+modes[mb_mode].overhead;
2629
235k
        }
2630
59.9k
        else{
2631
59.9k
          *(uncoded_mbis-++nuncoded_mbis)=mbi;
2632
59.9k
          mb_mode=OC_MODE_INTER_NOMV;
2633
59.9k
          refi=OC_FRAME_PREV;
2634
59.9k
          mv=0;
2635
59.9k
        }
2636
        /*Propagate final MB mode and MVs to the chroma blocks.
2637
          This has already been done for 4MV mode, since it requires individual
2638
           block motion vectors.*/
2639
295k
        if(mb_mode!=OC_MODE_INTER_MV_FOUR){
2640
904k
          for(mapii=4;mapii<nmap_idxs;mapii++){
2641
617k
            mapi=map_idxs[mapii];
2642
617k
            pli=mapi>>2;
2643
617k
            bi=mapi&3;
2644
617k
            fragi=mb_maps[mbi][pli][bi];
2645
            /*If we switched from 4MV mode to INTER_MV mode, then the qii
2646
               values won't have been chosen with the right MV, but it's
2647
               probably not worth re-estimating them.*/
2648
617k
            frags[fragi].qii=modes[mb_mode].qii[mapii];
2649
617k
            frags[fragi].refi=refi;
2650
617k
            frags[fragi].mb_mode=mb_mode;
2651
617k
            frag_mvs[fragi]=mv;
2652
617k
          }
2653
287k
        }
2654
        /*Save masking scale factors for chroma blocks.*/
2655
612k
        for(mapii=4;mapii<(nmap_idxs-4>>1)+4;mapii++){
2656
317k
          mapi=map_idxs[mapii];
2657
317k
          bi=mapi&3;
2658
317k
          fragi=mb_maps[mbi][1][bi];
2659
317k
          mcu_rd_scale[fragi-cfroffset]=(ogg_uint16_t)rd_scale[4];
2660
317k
          mcu_rd_iscale[fragi-cfroffset]=(ogg_uint16_t)rd_iscale[4];
2661
317k
        }
2662
295k
      }
2663
94.1k
      oc_fr_state_flush_sb(_enc->pipe.fr+0);
2664
94.1k
      sb_flags[sbi].coded_fully=_enc->pipe.fr[0].sb_full;
2665
94.1k
      sb_flags[sbi].coded_partially=_enc->pipe.fr[0].sb_partial;
2666
94.1k
    }
2667
42.6k
    oc_enc_pipeline_finish_mcu_plane(_enc,&_enc->pipe,0,notstart,notdone);
2668
    /*Code chroma planes.*/
2669
127k
    for(pli=1;pli<3;pli++){
2670
85.2k
      oc_enc_sb_transform_quantize_inter_chroma(_enc,&_enc->pipe,
2671
85.2k
       pli,_enc->pipe.sbi0[pli],_enc->pipe.sbi_end[pli]);
2672
85.2k
      oc_enc_pipeline_finish_mcu_plane(_enc,&_enc->pipe,pli,notstart,notdone);
2673
85.2k
    }
2674
42.6k
    notstart=1;
2675
42.6k
  }
2676
  /*Update the average block activity and MB luma score for the frame.
2677
    We could use a Bessel follower here, but fast reaction is probably almost
2678
     always best.*/
2679
40.2k
  _enc->activity_avg=OC_MAXI(OC_ACTIVITY_AVG_MIN,
2680
40.2k
   (unsigned)((activity_sum+(_enc->state.fplanes[0].nfrags>>1))/
2681
40.2k
   _enc->state.fplanes[0].nfrags));
2682
40.2k
  _enc->luma_avg=(unsigned)((luma_sum+(_enc->state.nmbs>>1))/_enc->state.nmbs);
2683
  /*Finish filling in the reference frame borders.*/
2684
40.2k
  refi=_enc->state.ref_frame_idx[OC_FRAME_SELF];
2685
161k
  for(pli=0;pli<3;pli++)oc_state_borders_fill_caps(&_enc->state,refi,pli);
2686
  /*Finish adding flagging overhead costs to inter bit counts to determine if
2687
     we should have coded a key frame instead.*/
2688
40.2k
  if(_allow_keyframe){
2689
    /*Technically the chroma plane counts are over-estimations, because they
2690
       don't account for continuing runs from the luma planes, but the
2691
       inaccuracy is small.
2692
      We don't need to add the luma plane coding flag costs, because they are
2693
       already included in the MB rate estimates.*/
2694
120k
    for(pli=1;pli<3;pli++)interbits+=_enc->pipe.fr[pli].bits<<OC_BIT_SCALE;
2695
40.2k
    if(interbits>intrabits)return 1;
2696
40.2k
  }
2697
19.7k
  _enc->ncoded_mbis=ncoded_mbis;
2698
  /*Compact the coded fragment list.*/
2699
19.7k
  {
2700
19.7k
    ptrdiff_t ncoded_fragis;
2701
19.7k
    ncoded_fragis=_enc->state.ncoded_fragis[0];
2702
59.1k
    for(pli=1;pli<3;pli++){
2703
39.4k
      memmove(_enc->state.coded_fragis+ncoded_fragis,
2704
39.4k
       _enc->state.coded_fragis+_enc->state.fplanes[pli].froffset,
2705
39.4k
       _enc->state.ncoded_fragis[pli]*sizeof(*_enc->state.coded_fragis));
2706
39.4k
      ncoded_fragis+=_enc->state.ncoded_fragis[pli];
2707
39.4k
    }
2708
19.7k
    _enc->state.ntotal_coded_fragis=ncoded_fragis;
2709
19.7k
  }
2710
19.7k
  return 0;
2711
40.2k
}