Coverage Report

Created: 2026-04-01 07:42

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/libvpx/vp8/encoder/ratectrl.c
Line
Count
Source
1
/*
2
 *  Copyright (c) 2010 The WebM project authors. All Rights Reserved.
3
 *
4
 *  Use of this source code is governed by a BSD-style license
5
 *  that can be found in the LICENSE file in the root of the source
6
 *  tree. An additional intellectual property rights grant can be found
7
 *  in the file PATENTS.  All contributing project authors may
8
 *  be found in the AUTHORS file in the root of the source tree.
9
 */
10
11
#include <stdlib.h>
12
#include <stdio.h>
13
#include <string.h>
14
#include <limits.h>
15
#include <assert.h>
16
17
#include "math.h"
18
#include "vp8/common/common.h"
19
#include "ratectrl.h"
20
#include "vp8/common/entropymode.h"
21
#include "vpx_mem/vpx_mem.h"
22
#include "vp8/common/systemdependent.h"
23
#include "encodemv.h"
24
#include "vpx_dsp/vpx_dsp_common.h"
25
#include "vpx_ports/system_state.h"
26
27
63.4k
#define MIN_BPB_FACTOR 0.01
28
77.3k
#define MAX_BPB_FACTOR 50
29
30
extern const MB_PREDICTION_MODE vp8_mode_order[MAX_MODES];
31
32
#ifdef MODE_STATS
33
extern int y_modes[5];
34
extern int uv_modes[4];
35
extern int b_modes[10];
36
37
extern int inter_y_modes[10];
38
extern int inter_uv_modes[4];
39
extern int inter_b_modes[10];
40
#endif
41
42
/* Bits Per MB at different Q (Multiplied by 512) */
43
447k
#define BPER_MB_NORMBITS 9
44
45
/* Work in progress recalibration of baseline rate tables based on
46
 * the assumption that bits per mb is inversely proportional to the
47
 * quantizer value.
48
 */
49
const int vp8_bits_per_mb[2][QINDEX_RANGE] = {
50
  /* Intra case 450000/Qintra */
51
  {
52
      1125000, 900000, 750000, 642857, 562500, 500000, 450000, 450000, 409090,
53
      375000,  346153, 321428, 300000, 281250, 264705, 264705, 250000, 236842,
54
      225000,  225000, 214285, 214285, 204545, 204545, 195652, 195652, 187500,
55
      180000,  180000, 173076, 166666, 160714, 155172, 150000, 145161, 140625,
56
      136363,  132352, 128571, 125000, 121621, 121621, 118421, 115384, 112500,
57
      109756,  107142, 104651, 102272, 100000, 97826,  97826,  95744,  93750,
58
      91836,   90000,  88235,  86538,  84905,  83333,  81818,  80357,  78947,
59
      77586,   76271,  75000,  73770,  72580,  71428,  70312,  69230,  68181,
60
      67164,   66176,  65217,  64285,  63380,  62500,  61643,  60810,  60000,
61
      59210,   59210,  58441,  57692,  56962,  56250,  55555,  54878,  54216,
62
      53571,   52941,  52325,  51724,  51136,  50561,  49450,  48387,  47368,
63
      46875,   45918,  45000,  44554,  44117,  43269,  42452,  41666,  40909,
64
      40178,   39473,  38793,  38135,  36885,  36290,  35714,  35156,  34615,
65
      34090,   33582,  33088,  32608,  32142,  31468,  31034,  30405,  29801,
66
      29220,   28662,
67
  },
68
  /* Inter case 285000/Qinter */
69
  {
70
      712500, 570000, 475000, 407142, 356250, 316666, 285000, 259090, 237500,
71
      219230, 203571, 190000, 178125, 167647, 158333, 150000, 142500, 135714,
72
      129545, 123913, 118750, 114000, 109615, 105555, 101785, 98275,  95000,
73
      91935,  89062,  86363,  83823,  81428,  79166,  77027,  75000,  73076,
74
      71250,  69512,  67857,  66279,  64772,  63333,  61956,  60638,  59375,
75
      58163,  57000,  55882,  54807,  53773,  52777,  51818,  50892,  50000,
76
      49137,  47500,  45967,  44531,  43181,  41911,  40714,  39583,  38513,
77
      37500,  36538,  35625,  34756,  33928,  33139,  32386,  31666,  30978,
78
      30319,  29687,  29081,  28500,  27941,  27403,  26886,  26388,  25909,
79
      25446,  25000,  24568,  23949,  23360,  22800,  22265,  21755,  21268,
80
      20802,  20357,  19930,  19520,  19127,  18750,  18387,  18037,  17701,
81
      17378,  17065,  16764,  16473,  16101,  15745,  15405,  15079,  14766,
82
      14467,  14179,  13902,  13636,  13380,  13133,  12895,  12666,  12445,
83
      12179,  11924,  11632,  11445,  11220,  11003,  10795,  10594,  10401,
84
      10215,  10035,
85
  }
86
};
87
88
static const int kf_boost_qadjustment[QINDEX_RANGE] = {
89
  128, 129, 130, 131, 132, 133, 134, 135, 136, 137, 138, 139, 140, 141, 142,
90
  143, 144, 145, 146, 147, 148, 149, 150, 151, 152, 153, 154, 155, 156, 157,
91
  158, 159, 160, 161, 162, 163, 164, 165, 166, 167, 168, 169, 170, 171, 172,
92
  173, 174, 175, 176, 177, 178, 179, 180, 181, 182, 183, 184, 185, 186, 187,
93
  188, 189, 190, 191, 192, 193, 194, 195, 196, 197, 198, 199, 200, 200, 201,
94
  201, 202, 203, 203, 203, 204, 204, 205, 205, 206, 206, 207, 207, 208, 208,
95
  209, 209, 210, 210, 211, 211, 212, 212, 213, 213, 214, 214, 215, 215, 216,
96
  216, 217, 217, 218, 218, 219, 219, 220, 220, 220, 220, 220, 220, 220, 220,
97
  220, 220, 220, 220, 220, 220, 220, 220,
98
};
99
100
/* #define GFQ_ADJUSTMENT (Q+100) */
101
8.81k
#define GFQ_ADJUSTMENT vp8_gf_boost_qadjustment[Q]
102
const int vp8_gf_boost_qadjustment[QINDEX_RANGE] = {
103
  80,  82,  84,  86,  88,  90,  92,  94,  96,  97,  98,  99,  100, 101, 102,
104
  103, 104, 105, 106, 107, 108, 109, 110, 111, 112, 113, 114, 115, 116, 117,
105
  118, 119, 120, 121, 122, 123, 124, 125, 126, 127, 128, 129, 130, 131, 132,
106
  133, 134, 135, 136, 137, 138, 139, 140, 141, 142, 143, 144, 145, 146, 147,
107
  148, 149, 150, 151, 152, 153, 154, 155, 156, 157, 158, 159, 160, 161, 162,
108
  163, 164, 165, 166, 167, 168, 169, 170, 171, 172, 173, 174, 175, 176, 177,
109
  178, 179, 180, 181, 182, 183, 184, 184, 185, 185, 186, 186, 187, 187, 188,
110
  188, 189, 189, 190, 190, 191, 191, 192, 192, 193, 193, 194, 194, 194, 194,
111
  195, 195, 196, 196, 197, 197, 198, 198
112
};
113
114
/*
115
const int vp8_gf_boost_qadjustment[QINDEX_RANGE] =
116
{
117
    100,101,102,103,104,105,105,106,
118
    106,107,107,108,109,109,110,111,
119
    112,113,114,115,116,117,118,119,
120
    120,121,122,123,124,125,126,127,
121
    128,129,130,131,132,133,134,135,
122
    136,137,138,139,140,141,142,143,
123
    144,145,146,147,148,149,150,151,
124
    152,153,154,155,156,157,158,159,
125
    160,161,162,163,164,165,166,167,
126
    168,169,170,170,171,171,172,172,
127
    173,173,173,174,174,174,175,175,
128
    175,176,176,176,177,177,177,177,
129
    178,178,179,179,180,180,181,181,
130
    182,182,183,183,184,184,185,185,
131
    186,186,187,187,188,188,189,189,
132
    190,190,191,191,192,192,193,193,
133
};
134
*/
135
136
static const int kf_gf_boost_qlimits[QINDEX_RANGE] = {
137
  150, 155, 160, 165, 170, 175, 180, 185, 190, 195, 200, 205, 210, 215, 220,
138
  225, 230, 235, 240, 245, 250, 255, 260, 265, 270, 275, 280, 285, 290, 295,
139
  300, 305, 310, 320, 330, 340, 350, 360, 370, 380, 390, 400, 410, 420, 430,
140
  440, 450, 460, 470, 480, 490, 500, 510, 520, 530, 540, 550, 560, 570, 580,
141
  590, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600,
142
  600, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600,
143
  600, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600,
144
  600, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600, 600,
145
  600, 600, 600, 600, 600, 600, 600, 600,
146
};
147
148
static const int gf_adjust_table[101] = {
149
  100, 115, 130, 145, 160, 175, 190, 200, 210, 220, 230, 240, 260, 270, 280,
150
  290, 300, 310, 320, 330, 340, 350, 360, 370, 380, 390, 400, 400, 400, 400,
151
  400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400,
152
  400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400,
153
  400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400,
154
  400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400,
155
  400, 400, 400, 400, 400, 400, 400, 400, 400, 400, 400,
156
};
157
158
static const int gf_intra_usage_adjustment[20] = {
159
  125, 120, 115, 110, 105, 100, 95, 85, 80, 75,
160
  70,  65,  60,  55,  50,  50,  50, 50, 50, 50,
161
};
162
163
static const int gf_interval_table[101] = {
164
  7,  7,  7,  7,  7,  7,  7,  7,  7,  7,  7,  7,  7,  7,  7,  7,  7,
165
  7,  7,  7,  7,  7,  7,  7,  7,  7,  7,  7,  7,  7,  7,  8,  8,  8,
166
  8,  8,  8,  8,  8,  8,  8,  8,  8,  8,  8,  8,  8,  8,  8,  8,  8,
167
  9,  9,  9,  9,  9,  9,  9,  9,  9,  9,  9,  9,  9,  9,  9,  9,  9,
168
  9,  9,  9,  10, 10, 10, 10, 10, 10, 10, 10, 10, 10, 10, 10, 10, 10,
169
  10, 10, 10, 10, 10, 10, 11, 11, 11, 11, 11, 11, 11, 11, 11, 11,
170
};
171
172
static const unsigned int prior_key_frame_weight[KEY_FRAME_CONTEXT] = { 1, 2, 3,
173
                                                                        4, 5 };
174
175
116k
void vp8_save_coding_context(VP8_COMP *cpi) {
176
116k
  CODING_CONTEXT *const cc = &cpi->coding_context;
177
178
  /* Stores a snapshot of key state variables which can subsequently be
179
   * restored with a call to vp8_restore_coding_context. These functions are
180
   * intended for use in a re-code loop in vp8_compress_frame where the
181
   * quantizer value is adjusted between loop iterations.
182
   */
183
184
116k
  cc->frames_since_key = cpi->frames_since_key;
185
116k
  cc->filter_level = cpi->common.filter_level;
186
116k
  cc->frames_till_gf_update_due = cpi->frames_till_gf_update_due;
187
116k
  cc->frames_since_golden = cpi->frames_since_golden;
188
189
116k
  vp8_copy(cc->mvc, cpi->common.fc.mvc);
190
116k
  vp8_copy(cc->mvcosts, cpi->rd_costs.mvcosts);
191
192
116k
  vp8_copy(cc->ymode_prob, cpi->common.fc.ymode_prob);
193
116k
  vp8_copy(cc->uv_mode_prob, cpi->common.fc.uv_mode_prob);
194
195
116k
  vp8_copy(cc->ymode_count, cpi->mb.ymode_count);
196
116k
  vp8_copy(cc->uv_mode_count, cpi->mb.uv_mode_count);
197
198
/* Stats */
199
#ifdef MODE_STATS
200
  vp8_copy(cc->y_modes, y_modes);
201
  vp8_copy(cc->uv_modes, uv_modes);
202
  vp8_copy(cc->b_modes, b_modes);
203
  vp8_copy(cc->inter_y_modes, inter_y_modes);
204
  vp8_copy(cc->inter_uv_modes, inter_uv_modes);
205
  vp8_copy(cc->inter_b_modes, inter_b_modes);
206
#endif
207
208
116k
  cc->this_frame_percent_intra = cpi->this_frame_percent_intra;
209
116k
}
210
211
32.0k
void vp8_restore_coding_context(VP8_COMP *cpi) {
212
32.0k
  CODING_CONTEXT *const cc = &cpi->coding_context;
213
214
  /* Restore key state variables to the snapshot state stored in the
215
   * previous call to vp8_save_coding_context.
216
   */
217
218
32.0k
  cpi->frames_since_key = cc->frames_since_key;
219
32.0k
  cpi->common.filter_level = cc->filter_level;
220
32.0k
  cpi->frames_till_gf_update_due = cc->frames_till_gf_update_due;
221
32.0k
  cpi->frames_since_golden = cc->frames_since_golden;
222
223
32.0k
  vp8_copy(cpi->common.fc.mvc, cc->mvc);
224
225
32.0k
  vp8_copy(cpi->rd_costs.mvcosts, cc->mvcosts);
226
227
32.0k
  vp8_copy(cpi->common.fc.ymode_prob, cc->ymode_prob);
228
32.0k
  vp8_copy(cpi->common.fc.uv_mode_prob, cc->uv_mode_prob);
229
230
32.0k
  vp8_copy(cpi->mb.ymode_count, cc->ymode_count);
231
32.0k
  vp8_copy(cpi->mb.uv_mode_count, cc->uv_mode_count);
232
233
/* Stats */
234
#ifdef MODE_STATS
235
  vp8_copy(y_modes, cc->y_modes);
236
  vp8_copy(uv_modes, cc->uv_modes);
237
  vp8_copy(b_modes, cc->b_modes);
238
  vp8_copy(inter_y_modes, cc->inter_y_modes);
239
  vp8_copy(inter_uv_modes, cc->inter_uv_modes);
240
  vp8_copy(inter_b_modes, cc->inter_b_modes);
241
#endif
242
243
32.0k
  cpi->this_frame_percent_intra = cc->this_frame_percent_intra;
244
32.0k
}
245
246
35.5k
void vp8_setup_key_frame(VP8_COMP *cpi) {
247
  /* Setup for Key frame: */
248
249
35.5k
  vp8_default_coef_probs(&cpi->common);
250
251
35.5k
  memcpy(cpi->common.fc.mvc, vp8_default_mv_context,
252
35.5k
         sizeof(vp8_default_mv_context));
253
35.5k
  {
254
35.5k
    int flag[2] = { 1, 1 };
255
35.5k
    vp8_build_component_cost_table(
256
35.5k
        cpi->mb.mvcost, (const MV_CONTEXT *)cpi->common.fc.mvc, flag);
257
35.5k
  }
258
259
  /* Make sure we initialize separate contexts for altref,gold, and normal.
260
   * TODO shouldn't need 3 different copies of structure to do this!
261
   */
262
35.5k
  cpi->lfc_a = cpi->common.fc;
263
35.5k
  cpi->lfc_g = cpi->common.fc;
264
35.5k
  cpi->lfc_n = cpi->common.fc;
265
266
35.5k
  cpi->common.filter_level = cpi->common.base_qindex * 3 / 8;
267
268
  /* Provisional interval before next GF */
269
35.5k
  if (cpi->auto_gold) {
270
35.5k
    cpi->frames_till_gf_update_due = cpi->baseline_gf_interval;
271
35.5k
  } else {
272
0
    cpi->frames_till_gf_update_due = DEFAULT_GF_INTERVAL;
273
0
  }
274
275
35.5k
  cpi->common.refresh_golden_frame = 1;
276
35.5k
  cpi->common.refresh_alt_ref_frame = 1;
277
35.5k
}
278
279
static int estimate_bits_at_q(int frame_kind, int Q, int MBs,
280
0
                              double correction_factor) {
281
0
  int Bpm = (int)(.5 + correction_factor * vp8_bits_per_mb[frame_kind][Q]);
282
283
  /* Attempt to retain reasonable accuracy without overflow. The cutoff is
284
   * chosen such that the maximum product of Bpm and MBs fits 31 bits. The
285
   * largest Bpm takes 20 bits.
286
   */
287
0
  if (MBs > (1 << 11)) {
288
0
    return (Bpm >> BPER_MB_NORMBITS) * MBs;
289
0
  } else {
290
0
    return (Bpm * MBs) >> BPER_MB_NORMBITS;
291
0
  }
292
0
}
293
294
21.8k
static void calc_iframe_target_size(VP8_COMP *cpi) {
295
  /* boost defaults to half second */
296
21.8k
  int kf_boost;
297
21.8k
  uint64_t target;
298
299
  /* Clear down mmx registers to allow floating point in what follows */
300
21.8k
  vpx_clear_system_state();
301
302
21.8k
  if (cpi->oxcf.fixed_q >= 0) {
303
0
    int Q = cpi->oxcf.key_q;
304
305
0
    target = estimate_bits_at_q(INTRA_FRAME, Q, cpi->common.MBs,
306
0
                                cpi->key_frame_rate_correction_factor);
307
21.8k
  } else if (cpi->pass == 2) {
308
    /* New Two pass RC */
309
0
    target = cpi->per_frame_bandwidth;
310
0
  }
311
  /* First Frame is a special case */
312
21.8k
  else if (cpi->common.current_video_frame == 0) {
313
    /* 1 Pass there is no information on which to base size so use
314
     * bandwidth per second * fraction of the initial buffer
315
     * level
316
     */
317
6.52k
    target = (uint64_t)cpi->oxcf.starting_buffer_level / 2;
318
319
6.52k
    if (target > cpi->oxcf.target_bandwidth * 3 / 2) {
320
6.31k
      target = cpi->oxcf.target_bandwidth * 3 / 2;
321
6.31k
    }
322
15.3k
  } else {
323
    /* if this keyframe was forced, use a more recent Q estimate */
324
15.3k
    int Q = (cpi->common.frame_flags & FRAMEFLAGS_KEY) ? cpi->avg_frame_qindex
325
15.3k
                                                       : cpi->ni_av_qi;
326
327
15.3k
    int initial_boost = 32; /* |3.0 * per_frame_bandwidth| */
328
    /* Boost depends somewhat on frame rate: only used for 1 layer case. */
329
15.3k
    if (cpi->oxcf.number_of_layers == 1) {
330
15.3k
      kf_boost =
331
15.3k
          VPXMAX(initial_boost, (int)round(2 * cpi->output_framerate - 16));
332
      // cpi->output_framerate may be as large as 10M. Keep kf_boost small
333
      // enough to allow for integer math when multiplying by values in
334
      // kf_boost_qadjustment[].
335
15.3k
      const int kMaxKfBoost = 2000;
336
15.3k
      if (kf_boost > kMaxKfBoost) kf_boost = kMaxKfBoost;
337
15.3k
    } else {
338
      /* Initial factor: set target size to: |3.0 * per_frame_bandwidth|. */
339
0
      kf_boost = initial_boost;
340
0
    }
341
342
    /* adjustment up based on q: this factor ranges from ~1.2 to 2.2. */
343
15.3k
    kf_boost = kf_boost * kf_boost_qadjustment[Q] / 100;
344
345
    /* frame separation adjustment ( down) */
346
15.3k
    if (cpi->frames_since_key < cpi->output_framerate / 2) {
347
10.5k
      kf_boost =
348
10.5k
          (int)(kf_boost * cpi->frames_since_key / (cpi->output_framerate / 2));
349
10.5k
    }
350
351
    /* Minimal target size is |2* per_frame_bandwidth|. */
352
15.3k
    if (kf_boost < 16) kf_boost = 16;
353
354
15.3k
    target = ((uint64_t)(16 + kf_boost) * cpi->per_frame_bandwidth) >> 4;
355
15.3k
    target = VPXMIN(INT_MAX, target);
356
15.3k
  }
357
358
21.8k
  if (cpi->oxcf.rc_max_intra_bitrate_pct) {
359
0
    unsigned int max_rate;
360
    // This product may overflow unsigned int
361
0
    uint64_t product = cpi->per_frame_bandwidth;
362
0
    product *= cpi->oxcf.rc_max_intra_bitrate_pct;
363
0
    product /= 100;
364
0
    max_rate = (unsigned int)VPXMIN(INT_MAX, product);
365
366
0
    if (target > max_rate) target = max_rate;
367
0
  }
368
369
21.8k
  cpi->this_frame_target = (int)target;
370
371
  /* TODO: if we separate rate targeting from Q targeting, move this.
372
   * Reset the active worst quality to the baseline value for key frames.
373
   */
374
21.8k
  if (cpi->pass != 2) cpi->active_worst_quality = cpi->worst_quality;
375
376
#if 0
377
    {
378
        FILE *f;
379
380
        f = fopen("kf_boost.stt", "a");
381
        fprintf(f, " %8u %10d %10d %10d\n",
382
                cpi->common.current_video_frame,  cpi->gfu_boost, cpi->baseline_gf_interval, cpi->source_alt_ref_pending);
383
384
        fclose(f);
385
    }
386
#endif
387
21.8k
}
388
389
/* Do the best we can to define the parameters for the next GF based on what
390
 * information we have available.
391
 */
392
8.81k
static void calc_gf_params(VP8_COMP *cpi) {
393
8.81k
  int Q =
394
8.81k
      (cpi->oxcf.fixed_q < 0) ? cpi->last_q[INTER_FRAME] : cpi->oxcf.fixed_q;
395
8.81k
  int Boost = 0;
396
397
8.81k
  int gf_frame_usage = 0; /* Golden frame usage since last GF */
398
8.81k
  int tot_mbs = cpi->recent_ref_frame_usage[INTRA_FRAME] +
399
8.81k
                cpi->recent_ref_frame_usage[LAST_FRAME] +
400
8.81k
                cpi->recent_ref_frame_usage[GOLDEN_FRAME] +
401
8.81k
                cpi->recent_ref_frame_usage[ALTREF_FRAME];
402
403
8.81k
  int pct_gf_active = (100 * cpi->gf_active_count) /
404
8.81k
                      (cpi->common.mb_rows * cpi->common.mb_cols);
405
406
8.81k
  if (tot_mbs) {
407
8.81k
    gf_frame_usage = (cpi->recent_ref_frame_usage[GOLDEN_FRAME] +
408
8.81k
                      cpi->recent_ref_frame_usage[ALTREF_FRAME]) *
409
8.81k
                     100 / tot_mbs;
410
8.81k
  }
411
412
8.81k
  if (pct_gf_active > gf_frame_usage) gf_frame_usage = pct_gf_active;
413
414
  /* Not two pass */
415
8.81k
  if (cpi->pass != 2) {
416
    /* Single Pass lagged mode: TBD */
417
8.81k
    if (0) {
418
0
    }
419
420
    /* Single Pass compression: Has to use current and historical data */
421
8.81k
    else {
422
#if 0
423
            /* Experimental code */
424
            int index = cpi->one_pass_frame_index;
425
            int frames_to_scan = (cpi->max_gf_interval <= MAX_LAG_BUFFERS) ? cpi->max_gf_interval : MAX_LAG_BUFFERS;
426
427
            /* ************** Experimental code - incomplete */
428
            /*
429
            double decay_val = 1.0;
430
            double IIAccumulator = 0.0;
431
            double last_iiaccumulator = 0.0;
432
            double IIRatio;
433
434
            cpi->one_pass_frame_index = cpi->common.current_video_frame%MAX_LAG_BUFFERS;
435
436
            for ( i = 0; i < (frames_to_scan - 1); i++ )
437
            {
438
                if ( index < 0 )
439
                    index = MAX_LAG_BUFFERS;
440
                index --;
441
442
                if ( cpi->one_pass_frame_stats[index].frame_coded_error > 0.0 )
443
                {
444
                    IIRatio = cpi->one_pass_frame_stats[index].frame_intra_error / cpi->one_pass_frame_stats[index].frame_coded_error;
445
446
                    if ( IIRatio > 30.0 )
447
                        IIRatio = 30.0;
448
                }
449
                else
450
                    IIRatio = 30.0;
451
452
                IIAccumulator += IIRatio * decay_val;
453
454
                decay_val = decay_val * cpi->one_pass_frame_stats[index].frame_pcnt_inter;
455
456
                if (    (i > MIN_GF_INTERVAL) &&
457
                        ((IIAccumulator - last_iiaccumulator) < 2.0) )
458
                {
459
                    break;
460
                }
461
                last_iiaccumulator = IIAccumulator;
462
            }
463
464
            Boost = IIAccumulator*100.0/16.0;
465
            cpi->baseline_gf_interval = i;
466
467
            */
468
#else
469
470
      /*************************************************************/
471
      /* OLD code */
472
473
      /* Adjust boost based upon ambient Q */
474
8.81k
      Boost = GFQ_ADJUSTMENT;
475
476
      /* Adjust based upon most recently measure intra usage */
477
8.81k
      Boost = Boost *
478
8.81k
              gf_intra_usage_adjustment[(cpi->this_frame_percent_intra < 15)
479
8.81k
                                            ? cpi->this_frame_percent_intra
480
8.81k
                                            : 14] /
481
8.81k
              100;
482
483
      /* Adjust gf boost based upon GF usage since last GF */
484
8.81k
      Boost = Boost * gf_adjust_table[gf_frame_usage] / 100;
485
8.81k
#endif
486
8.81k
    }
487
488
    /* golden frame boost without recode loop often goes awry.  be
489
     * safe by keeping numbers down.
490
     */
491
8.81k
    if (!cpi->sf.recode_loop) {
492
5.08k
      if (cpi->compressor_speed == 2) Boost = Boost / 2;
493
5.08k
    }
494
495
    /* Apply an upper limit based on Q for 1 pass encodes */
496
8.81k
    if (Boost > kf_gf_boost_qlimits[Q] && (cpi->pass == 0)) {
497
3.77k
      Boost = kf_gf_boost_qlimits[Q];
498
499
      /* Apply lower limits to boost. */
500
5.03k
    } else if (Boost < 110) {
501
1.36k
      Boost = 110;
502
1.36k
    }
503
504
    /* Note the boost used */
505
8.81k
    cpi->last_boost = Boost;
506
8.81k
  }
507
508
  /* Estimate next interval
509
   * This is updated once the real frame size/boost is known.
510
   */
511
8.81k
  if (cpi->oxcf.fixed_q == -1) {
512
8.81k
    if (cpi->pass == 2) { /* 2 Pass */
513
0
      cpi->frames_till_gf_update_due = cpi->baseline_gf_interval;
514
8.81k
    } else { /* 1 Pass */
515
8.81k
      cpi->frames_till_gf_update_due = cpi->baseline_gf_interval;
516
517
8.81k
      if (cpi->last_boost > 750) cpi->frames_till_gf_update_due++;
518
519
8.81k
      if (cpi->last_boost > 1000) cpi->frames_till_gf_update_due++;
520
521
8.81k
      if (cpi->last_boost > 1250) cpi->frames_till_gf_update_due++;
522
523
8.81k
      if (cpi->last_boost >= 1500) cpi->frames_till_gf_update_due++;
524
525
8.81k
      if (gf_interval_table[gf_frame_usage] > cpi->frames_till_gf_update_due) {
526
4.56k
        cpi->frames_till_gf_update_due = gf_interval_table[gf_frame_usage];
527
4.56k
      }
528
529
8.81k
      if (cpi->frames_till_gf_update_due > cpi->max_gf_interval) {
530
89
        cpi->frames_till_gf_update_due = cpi->max_gf_interval;
531
89
      }
532
8.81k
    }
533
8.81k
  } else {
534
0
    cpi->frames_till_gf_update_due = cpi->baseline_gf_interval;
535
0
  }
536
537
  /* ARF on or off */
538
8.81k
  if (cpi->pass != 2) {
539
    /* For now Alt ref is not allowed except in 2 pass modes. */
540
8.81k
    cpi->source_alt_ref_pending = 0;
541
542
    /*if ( cpi->oxcf.fixed_q == -1)
543
    {
544
        if ( cpi->oxcf.play_alternate && (cpi->last_boost > (100 +
545
    (AF_THRESH*cpi->frames_till_gf_update_due)) ) )
546
            cpi->source_alt_ref_pending = 1;
547
        else
548
            cpi->source_alt_ref_pending = 0;
549
    }*/
550
8.81k
  }
551
8.81k
}
552
553
98.3k
static void calc_pframe_target_size(VP8_COMP *cpi) {
554
98.3k
  int min_frame_target;
555
98.3k
  int old_per_frame_bandwidth = cpi->per_frame_bandwidth;
556
557
98.3k
  if (cpi->current_layer > 0) {
558
0
    cpi->per_frame_bandwidth =
559
0
        cpi->layer_context[cpi->current_layer].avg_frame_size_for_layer;
560
0
  }
561
562
98.3k
  min_frame_target = 0;
563
564
98.3k
  if (cpi->pass == 2) {
565
0
    min_frame_target = cpi->min_frame_bandwidth;
566
567
0
    if (min_frame_target < (cpi->av_per_frame_bandwidth >> 5)) {
568
0
      min_frame_target = cpi->av_per_frame_bandwidth >> 5;
569
0
    }
570
98.3k
  } else if (min_frame_target < cpi->per_frame_bandwidth / 4) {
571
91.0k
    min_frame_target = cpi->per_frame_bandwidth / 4;
572
91.0k
  }
573
574
  /* Special alt reference frame case */
575
98.3k
  if ((cpi->common.refresh_alt_ref_frame) &&
576
0
      (cpi->oxcf.number_of_layers == 1)) {
577
0
    if (cpi->pass == 2) {
578
      /* Per frame bit target for the alt ref frame */
579
0
      cpi->per_frame_bandwidth = cpi->twopass.gf_bits;
580
0
      cpi->this_frame_target = cpi->per_frame_bandwidth;
581
0
    }
582
583
    /* One Pass ??? TBD */
584
0
  }
585
586
  /* Normal frames (gf,and inter) */
587
98.3k
  else {
588
    /* 2 pass */
589
98.3k
    if (cpi->pass == 2) {
590
0
      cpi->this_frame_target = cpi->per_frame_bandwidth;
591
0
    }
592
    /* 1 pass */
593
98.3k
    else {
594
98.3k
      int Adjustment;
595
      /* Make rate adjustment to recover bits spent in key frame
596
       * Test to see if the key frame inter data rate correction
597
       * should still be in force
598
       */
599
98.3k
      if (cpi->kf_overspend_bits > 0) {
600
46.0k
        Adjustment = (cpi->kf_bitrate_adjustment <= cpi->kf_overspend_bits)
601
46.0k
                         ? cpi->kf_bitrate_adjustment
602
46.0k
                         : cpi->kf_overspend_bits;
603
604
46.0k
        if (Adjustment > (cpi->per_frame_bandwidth - min_frame_target)) {
605
7.71k
          Adjustment = (cpi->per_frame_bandwidth - min_frame_target);
606
7.71k
        }
607
608
46.0k
        cpi->kf_overspend_bits -= Adjustment;
609
610
        /* Calculate an inter frame bandwidth target for the next
611
         * few frames designed to recover any extra bits spent on
612
         * the key frame.
613
         */
614
46.0k
        cpi->this_frame_target = cpi->per_frame_bandwidth - Adjustment;
615
616
46.0k
        if (cpi->this_frame_target < min_frame_target) {
617
0
          cpi->this_frame_target = min_frame_target;
618
0
        }
619
52.2k
      } else {
620
52.2k
        cpi->this_frame_target = cpi->per_frame_bandwidth;
621
52.2k
      }
622
623
      /* If appropriate make an adjustment to recover bits spent on a
624
       * recent GF
625
       */
626
98.3k
      if ((cpi->gf_overspend_bits > 0) &&
627
49.3k
          (cpi->this_frame_target > min_frame_target)) {
628
41.4k
        Adjustment = (cpi->non_gf_bitrate_adjustment <= cpi->gf_overspend_bits)
629
41.4k
                         ? cpi->non_gf_bitrate_adjustment
630
41.4k
                         : cpi->gf_overspend_bits;
631
632
41.4k
        if (Adjustment > (cpi->this_frame_target - min_frame_target)) {
633
4.90k
          Adjustment = (cpi->this_frame_target - min_frame_target);
634
4.90k
        }
635
636
41.4k
        cpi->gf_overspend_bits -= Adjustment;
637
41.4k
        cpi->this_frame_target -= Adjustment;
638
41.4k
      }
639
640
      /* Apply small + and - boosts for non gf frames */
641
98.3k
      if ((cpi->last_boost > 150) && (cpi->frames_till_gf_update_due > 0) &&
642
55.1k
          (cpi->current_gf_interval >= (MIN_GF_INTERVAL << 1))) {
643
        /* % Adjustment limited to the range 1% to 10% */
644
33.9k
        Adjustment = (cpi->last_boost - 100) >> 5;
645
646
33.9k
        if (Adjustment > 10) {
647
9.54k
          Adjustment = 10;
648
9.54k
        }
649
33.9k
        assert(Adjustment >= 1);
650
651
        /* Convert to bits */
652
33.9k
        Adjustment = (cpi->this_frame_target * Adjustment) / 100;
653
654
33.9k
        if (Adjustment > (cpi->this_frame_target - min_frame_target)) {
655
662
          Adjustment = (cpi->this_frame_target - min_frame_target);
656
662
        }
657
658
33.9k
        if (cpi->frames_since_golden == (cpi->current_gf_interval >> 1)) {
659
3.73k
          Adjustment = (cpi->current_gf_interval - 1) * Adjustment;
660
          // Limit adjustment to 10% of current target.
661
3.73k
          if (Adjustment > (10 * cpi->this_frame_target) / 100) {
662
3.38k
            Adjustment = (10 * cpi->this_frame_target) / 100;
663
3.38k
          }
664
3.73k
          cpi->this_frame_target += Adjustment;
665
30.2k
        } else {
666
30.2k
          cpi->this_frame_target -= Adjustment;
667
30.2k
        }
668
33.9k
      }
669
98.3k
    }
670
98.3k
  }
671
672
  /* Sanity check that the total sum of adjustments is not above the
673
   * maximum allowed That is that having allowed for KF and GF penalties
674
   * we have not pushed the current interframe target to low. If the
675
   * adjustment we apply here is not capable of recovering all the extra
676
   * bits we have spent in the KF or GF then the remainder will have to
677
   * be recovered over a longer time span via other buffer / rate control
678
   * mechanisms.
679
   */
680
98.3k
  if (cpi->this_frame_target < min_frame_target) {
681
0
    cpi->this_frame_target = min_frame_target;
682
0
  }
683
684
98.3k
  if (!cpi->common.refresh_alt_ref_frame) {
685
    /* Note the baseline target data rate for this inter frame. */
686
98.3k
    cpi->inter_frame_target = cpi->this_frame_target;
687
98.3k
  }
688
689
  /* One Pass specific code */
690
98.3k
  if (cpi->pass == 0) {
691
    /* Adapt target frame size with respect to any buffering constraints: */
692
98.3k
    if (cpi->buffered_mode) {
693
92.7k
      int one_percent_bits = (int)(1 + cpi->oxcf.optimal_buffer_level / 100);
694
695
92.7k
      if ((cpi->buffer_level < cpi->oxcf.optimal_buffer_level) ||
696
50.5k
          (cpi->bits_off_target < cpi->oxcf.optimal_buffer_level)) {
697
50.5k
        int percent_low = 0;
698
699
        /* Decide whether or not we need to adjust the frame data
700
         * rate target.
701
         *
702
         * If we are are below the optimal buffer fullness level
703
         * and adherence to buffering constraints is important to
704
         * the end usage then adjust the per frame target.
705
         */
706
50.5k
        if ((cpi->oxcf.end_usage == USAGE_STREAM_FROM_SERVER) &&
707
0
            (cpi->buffer_level < cpi->oxcf.optimal_buffer_level)) {
708
0
          percent_low =
709
0
              (int)((cpi->oxcf.optimal_buffer_level - cpi->buffer_level) /
710
0
                    one_percent_bits);
711
0
        }
712
        /* Are we overshooting the long term clip data rate... */
713
50.5k
        else if (cpi->bits_off_target < 0) {
714
          /* Adjust per frame data target downwards to compensate. */
715
15.1k
          percent_low =
716
15.1k
              (int)(100 * -cpi->bits_off_target / (cpi->total_byte_count * 8));
717
15.1k
        }
718
719
50.5k
        if (percent_low > cpi->oxcf.under_shoot_pct) {
720
0
          percent_low = cpi->oxcf.under_shoot_pct;
721
50.5k
        } else if (percent_low < 0) {
722
0
          percent_low = 0;
723
0
        }
724
725
        /* lower the target bandwidth for this frame. */
726
50.5k
        cpi->this_frame_target -=
727
50.5k
            (int)(((int64_t)cpi->this_frame_target * percent_low) / 200);
728
729
        /* Are we using allowing control of active_worst_allowed_q
730
         * according to buffer level.
731
         */
732
50.5k
        if (cpi->auto_worst_q && cpi->ni_frames > 150) {
733
4.41k
          int64_t critical_buffer_level;
734
735
          /* For streaming applications the most important factor is
736
           * cpi->buffer_level as this takes into account the
737
           * specified short term buffering constraints. However,
738
           * hitting the long term clip data rate target is also
739
           * important.
740
           */
741
4.41k
          if (cpi->oxcf.end_usage == USAGE_STREAM_FROM_SERVER) {
742
            /* Take the smaller of cpi->buffer_level and
743
             * cpi->bits_off_target
744
             */
745
0
            critical_buffer_level = (cpi->buffer_level < cpi->bits_off_target)
746
0
                                        ? cpi->buffer_level
747
0
                                        : cpi->bits_off_target;
748
0
          }
749
          /* For local file playback short term buffering constraints
750
           * are less of an issue
751
           */
752
4.41k
          else {
753
            /* Consider only how we are doing for the clip as a
754
             * whole
755
             */
756
4.41k
            critical_buffer_level = cpi->bits_off_target;
757
4.41k
          }
758
759
          /* Set the active worst quality based upon the selected
760
           * buffer fullness number.
761
           */
762
4.41k
          if (critical_buffer_level < cpi->oxcf.optimal_buffer_level) {
763
4.41k
            if (critical_buffer_level > (cpi->oxcf.optimal_buffer_level >> 2)) {
764
2.10k
              int64_t qadjustment_range = cpi->worst_quality - cpi->ni_av_qi;
765
2.10k
              int64_t above_base = (critical_buffer_level -
766
2.10k
                                    (cpi->oxcf.optimal_buffer_level >> 2));
767
768
              /* Step active worst quality down from
769
               * cpi->ni_av_qi when (critical_buffer_level ==
770
               * cpi->optimal_buffer_level) to
771
               * cpi->worst_quality when
772
               * (critical_buffer_level ==
773
               *     cpi->optimal_buffer_level >> 2)
774
               */
775
2.10k
              cpi->active_worst_quality =
776
2.10k
                  cpi->worst_quality -
777
2.10k
                  (int)((qadjustment_range * above_base) /
778
2.10k
                        (cpi->oxcf.optimal_buffer_level * 3 >> 2));
779
2.30k
            } else {
780
2.30k
              cpi->active_worst_quality = cpi->worst_quality;
781
2.30k
            }
782
4.41k
          } else {
783
0
            cpi->active_worst_quality = cpi->ni_av_qi;
784
0
          }
785
46.1k
        } else {
786
46.1k
          cpi->active_worst_quality = cpi->worst_quality;
787
46.1k
        }
788
50.5k
      } else {
789
42.1k
        int percent_high = 0;
790
42.1k
        int64_t target = cpi->this_frame_target;
791
792
42.1k
        if ((cpi->oxcf.end_usage == USAGE_STREAM_FROM_SERVER) &&
793
0
            (cpi->buffer_level > cpi->oxcf.optimal_buffer_level)) {
794
0
          percent_high =
795
0
              (int)((cpi->buffer_level - cpi->oxcf.optimal_buffer_level) /
796
0
                    one_percent_bits);
797
42.1k
        } else if (cpi->bits_off_target > cpi->oxcf.optimal_buffer_level) {
798
41.4k
          if (cpi->total_byte_count > 0) {
799
41.4k
            percent_high = (int)((100 * cpi->bits_off_target) /
800
41.4k
                                 (cpi->total_byte_count * 8));
801
41.4k
          } else {
802
0
            percent_high = cpi->oxcf.over_shoot_pct;
803
0
          }
804
41.4k
        }
805
806
42.1k
        if (percent_high > cpi->oxcf.over_shoot_pct) {
807
39.1k
          percent_high = cpi->oxcf.over_shoot_pct;
808
39.1k
        } else if (percent_high < 0) {
809
0
          percent_high = 0;
810
0
        }
811
812
42.1k
        target += (target * percent_high) / 200;
813
42.1k
        target = VPXMIN(target, INT_MAX);
814
42.1k
        cpi->this_frame_target = (int)target;
815
816
        /* Are we allowing control of active_worst_allowed_q according
817
         * to buffer level.
818
         */
819
42.1k
        if (cpi->auto_worst_q && cpi->ni_frames > 150) {
820
          /* When using the relaxed buffer model stick to the
821
           * user specified value
822
           */
823
4.84k
          cpi->active_worst_quality = cpi->ni_av_qi;
824
37.2k
        } else {
825
37.2k
          cpi->active_worst_quality = cpi->worst_quality;
826
37.2k
        }
827
42.1k
      }
828
829
      /* Set active_best_quality to prevent quality rising too high */
830
92.7k
      cpi->active_best_quality = cpi->best_quality;
831
832
      /* Worst quality obviously must not be better than best quality */
833
92.7k
      if (cpi->active_worst_quality <= cpi->active_best_quality) {
834
2.78k
        cpi->active_worst_quality = cpi->active_best_quality + 1;
835
2.78k
      }
836
837
92.7k
      if (cpi->active_worst_quality > 127) cpi->active_worst_quality = 127;
838
92.7k
    }
839
    /* Unbuffered mode (eg. video conferencing) */
840
5.61k
    else {
841
      /* Set the active worst quality */
842
5.61k
      cpi->active_worst_quality = cpi->worst_quality;
843
5.61k
    }
844
845
    /* Special trap for constrained quality mode
846
     * "active_worst_quality" may never drop below cq level
847
     * for any frame type.
848
     */
849
98.3k
    if (cpi->oxcf.end_usage == USAGE_CONSTRAINED_QUALITY &&
850
18.5k
        cpi->active_worst_quality < cpi->cq_target_quality) {
851
0
      cpi->active_worst_quality = cpi->cq_target_quality;
852
0
    }
853
98.3k
  }
854
855
  /* Test to see if we have to drop a frame
856
   * The auto-drop frame code is only used in buffered mode.
857
   * In unbufferd mode (eg vide conferencing) the descision to
858
   * code or drop a frame is made outside the codec in response to real
859
   * world comms or buffer considerations.
860
   */
861
98.3k
  if (cpi->drop_frames_allowed &&
862
0
      (cpi->oxcf.end_usage == USAGE_STREAM_FROM_SERVER) &&
863
0
      ((cpi->common.frame_type != KEY_FRAME))) {
864
    /* Check for a buffer underun-crisis in which case we have to drop
865
     * a frame
866
     */
867
0
    if ((cpi->buffer_level < 0)) {
868
#if 0
869
            FILE *f = fopen("dec.stt", "a");
870
            fprintf(f, "%10d %10d %10d %10d ***** BUFFER EMPTY\n",
871
                    (int) cpi->common.current_video_frame,
872
                    cpi->decimation_factor, cpi->common.horiz_scale,
873
                    (cpi->buffer_level * 100) / cpi->oxcf.optimal_buffer_level);
874
            fclose(f);
875
#endif
876
0
      cpi->drop_frame = 1;
877
878
      /* Update the buffer level variable. */
879
0
      cpi->bits_off_target += cpi->av_per_frame_bandwidth;
880
0
      if (cpi->bits_off_target > cpi->oxcf.maximum_buffer_size) {
881
0
        cpi->bits_off_target = (int)cpi->oxcf.maximum_buffer_size;
882
0
      }
883
0
      cpi->buffer_level = cpi->bits_off_target;
884
885
0
      if (cpi->oxcf.number_of_layers > 1) {
886
0
        unsigned int i;
887
888
        // Propagate bits saved by dropping the frame to higher layers.
889
0
        for (i = cpi->current_layer + 1; i < cpi->oxcf.number_of_layers; ++i) {
890
0
          LAYER_CONTEXT *lc = &cpi->layer_context[i];
891
0
          lc->bits_off_target += (int)(lc->target_bandwidth / lc->framerate);
892
0
          if (lc->bits_off_target > lc->maximum_buffer_size) {
893
0
            lc->bits_off_target = lc->maximum_buffer_size;
894
0
          }
895
0
          lc->buffer_level = lc->bits_off_target;
896
0
        }
897
0
      }
898
0
    }
899
0
  }
900
901
  /* Adjust target frame size for Golden Frames: */
902
98.3k
  if (cpi->oxcf.error_resilient_mode == 0 &&
903
98.3k
      (cpi->frames_till_gf_update_due == 0) && !cpi->drop_frame) {
904
10.1k
    if (!cpi->gf_update_onepass_cbr) {
905
10.1k
      int Q = (cpi->oxcf.fixed_q < 0) ? cpi->last_q[INTER_FRAME]
906
10.1k
                                      : cpi->oxcf.fixed_q;
907
908
10.1k
      int gf_frame_usage = 0; /* Golden frame usage since last GF */
909
10.1k
      int tot_mbs = cpi->recent_ref_frame_usage[INTRA_FRAME] +
910
10.1k
                    cpi->recent_ref_frame_usage[LAST_FRAME] +
911
10.1k
                    cpi->recent_ref_frame_usage[GOLDEN_FRAME] +
912
10.1k
                    cpi->recent_ref_frame_usage[ALTREF_FRAME];
913
914
10.1k
      int pct_gf_active = (100 * cpi->gf_active_count) /
915
10.1k
                          (cpi->common.mb_rows * cpi->common.mb_cols);
916
917
10.1k
      if (tot_mbs) {
918
10.1k
        gf_frame_usage = (cpi->recent_ref_frame_usage[GOLDEN_FRAME] +
919
10.1k
                          cpi->recent_ref_frame_usage[ALTREF_FRAME]) *
920
10.1k
                         100 / tot_mbs;
921
10.1k
      }
922
923
10.1k
      if (pct_gf_active > gf_frame_usage) gf_frame_usage = pct_gf_active;
924
925
      /* Is a fixed manual GF frequency being used */
926
10.1k
      if (cpi->auto_gold) {
927
        /* For one pass throw a GF if recent frame intra usage is
928
         * low or the GF usage is high
929
         */
930
10.1k
        if ((cpi->pass == 0) &&
931
10.1k
            (cpi->this_frame_percent_intra < 15 || gf_frame_usage >= 5)) {
932
8.81k
          cpi->common.refresh_golden_frame = 1;
933
934
          /* Two pass GF descision */
935
8.81k
        } else if (cpi->pass == 2) {
936
0
          cpi->common.refresh_golden_frame = 1;
937
0
        }
938
10.1k
      }
939
940
#if 0
941
942
          /* Debug stats */
943
          if (0) {
944
              FILE *f;
945
946
              f = fopen("gf_usaget.stt", "a");
947
              fprintf(f, " %8ld %10ld %10ld %10ld %10ld\n",
948
                      cpi->common.current_video_frame,  cpi->gfu_boost,
949
                      GFQ_ADJUSTMENT, cpi->gfu_boost, gf_frame_usage);
950
              fclose(f);
951
          }
952
953
#endif
954
955
10.1k
      if (cpi->common.refresh_golden_frame == 1) {
956
#if 0
957
958
            if (0) {
959
                FILE *f;
960
961
                f = fopen("GFexit.stt", "a");
962
                fprintf(f, "%8ld GF coded\n", cpi->common.current_video_frame);
963
                fclose(f);
964
            }
965
966
#endif
967
968
8.81k
        if (cpi->auto_adjust_gold_quantizer) {
969
8.81k
          calc_gf_params(cpi);
970
8.81k
        }
971
972
        /* If we are using alternate ref instead of gf then do not apply the
973
         * boost It will instead be applied to the altref update Jims
974
         * modified boost
975
         */
976
8.81k
        if (!cpi->source_alt_ref_active) {
977
8.81k
          if (cpi->oxcf.fixed_q < 0) {
978
8.81k
            if (cpi->pass == 2) {
979
              /* The spend on the GF is defined in the two pass
980
               * code for two pass encodes
981
               */
982
0
              cpi->this_frame_target = cpi->per_frame_bandwidth;
983
8.81k
            } else {
984
8.81k
              int Boost = cpi->last_boost;
985
8.81k
              int frames_in_section = cpi->frames_till_gf_update_due + 1;
986
8.81k
              int allocation_chunks = (frames_in_section * 100) + (Boost - 100);
987
8.81k
              int bits_in_section =
988
8.81k
                  (int)VPXMIN(INT_MAX, (int64_t)cpi->inter_frame_target *
989
8.81k
                                           frames_in_section);
990
991
              /* Normalize Altboost and allocations chunck down to
992
               * prevent overflow
993
               */
994
8.81k
              while (Boost > 1000) {
995
0
                Boost /= 2;
996
0
                allocation_chunks /= 2;
997
0
              }
998
999
              /* Avoid loss of precision but avoid overflow */
1000
8.81k
              if ((bits_in_section >> 7) > allocation_chunks) {
1001
1.76k
                cpi->this_frame_target =
1002
1.76k
                    Boost * (bits_in_section / allocation_chunks);
1003
7.04k
              } else {
1004
7.04k
                cpi->this_frame_target =
1005
7.04k
                    (Boost * bits_in_section) / allocation_chunks;
1006
7.04k
              }
1007
8.81k
            }
1008
8.81k
          } else {
1009
0
            cpi->this_frame_target =
1010
0
                (estimate_bits_at_q(1, Q, cpi->common.MBs, 1.0) *
1011
0
                 cpi->last_boost) /
1012
0
                100;
1013
0
          }
1014
8.81k
        } else {
1015
          /* If there is an active ARF at this location use the minimum
1016
           * bits on this frame even if it is a contructed arf.
1017
           * The active maximum quantizer insures that an appropriate
1018
           * number of bits will be spent if needed for contstructed ARFs.
1019
           */
1020
0
          cpi->this_frame_target = 0;
1021
0
        }
1022
1023
8.81k
        cpi->current_gf_interval = cpi->frames_till_gf_update_due;
1024
8.81k
      }
1025
10.1k
    } else {
1026
      // Special case for 1 pass CBR: fixed gf period.
1027
      // TODO(marpan): Adjust this boost/interval logic.
1028
      // If gf_cbr_boost_pct is small (below threshold) set the flag
1029
      // gf_noboost_onepass_cbr = 1, which forces the gf to use the same
1030
      // rate correction factor as last.
1031
0
      cpi->gf_noboost_onepass_cbr = (cpi->oxcf.gf_cbr_boost_pct <= 100);
1032
0
      cpi->baseline_gf_interval = cpi->gf_interval_onepass_cbr;
1033
      // Skip this update if the zero_mvcount is low.
1034
0
      if (cpi->zeromv_count > (cpi->common.MBs >> 1)) {
1035
0
        cpi->common.refresh_golden_frame = 1;
1036
0
        cpi->this_frame_target =
1037
0
            (cpi->this_frame_target * (100 + cpi->oxcf.gf_cbr_boost_pct)) / 100;
1038
0
      }
1039
0
      cpi->frames_till_gf_update_due = cpi->baseline_gf_interval;
1040
0
      cpi->current_gf_interval = cpi->frames_till_gf_update_due;
1041
0
    }
1042
10.1k
  }
1043
1044
98.3k
  cpi->per_frame_bandwidth = old_per_frame_bandwidth;
1045
98.3k
}
1046
1047
147k
void vp8_update_rate_correction_factors(VP8_COMP *cpi, int damp_var) {
1048
147k
  int Q = cpi->common.base_qindex;
1049
147k
  int correction_factor = 100;
1050
147k
  double rate_correction_factor;
1051
147k
  double adjustment_limit;
1052
1053
147k
  int projected_size_based_on_q = 0;
1054
1055
  /* Clear down mmx registers to allow floating point in what follows */
1056
147k
  vpx_clear_system_state();
1057
1058
147k
  if (cpi->common.frame_type == KEY_FRAME) {
1059
36.3k
    rate_correction_factor = cpi->key_frame_rate_correction_factor;
1060
110k
  } else {
1061
110k
    if (cpi->oxcf.number_of_layers == 1 && !cpi->gf_noboost_onepass_cbr &&
1062
110k
        (cpi->common.refresh_alt_ref_frame ||
1063
110k
         cpi->common.refresh_golden_frame)) {
1064
10.8k
      rate_correction_factor = cpi->gf_rate_correction_factor;
1065
99.7k
    } else {
1066
99.7k
      rate_correction_factor = cpi->rate_correction_factor;
1067
99.7k
    }
1068
110k
  }
1069
1070
  /* Work out how big we would have expected the frame to be at this Q
1071
   * given the current correction factor. Stay in double to avoid int
1072
   * overflow when values are large
1073
   */
1074
147k
  projected_size_based_on_q =
1075
147k
      (int)(((.5 + rate_correction_factor *
1076
147k
                       vp8_bits_per_mb[cpi->common.frame_type][Q]) *
1077
147k
             cpi->common.MBs) /
1078
147k
            (1 << BPER_MB_NORMBITS));
1079
1080
  /* Make some allowance for cpi->zbin_over_quant */
1081
147k
  if (cpi->mb.zbin_over_quant > 0) {
1082
32.5k
    int Z = cpi->mb.zbin_over_quant;
1083
32.5k
    double Factor = 0.99;
1084
32.5k
    double factor_adjustment = 0.01 / 256.0;
1085
1086
4.99M
    while (Z > 0) {
1087
4.95M
      Z--;
1088
4.95M
      projected_size_based_on_q = (int)(Factor * projected_size_based_on_q);
1089
4.95M
      Factor += factor_adjustment;
1090
1091
4.95M
      if (Factor >= 0.999) Factor = 0.999;
1092
4.95M
    }
1093
32.5k
  }
1094
1095
  /* Work out a size correction factor. */
1096
147k
  if (projected_size_based_on_q > 0) {
1097
137k
    correction_factor = (int)((100 * (int64_t)cpi->projected_frame_size) /
1098
137k
                              projected_size_based_on_q);
1099
137k
  }
1100
1101
  /* More heavily damped adjustment used if we have been oscillating
1102
   * either side of target
1103
   */
1104
147k
  switch (damp_var) {
1105
28.0k
    case 0: adjustment_limit = 0.75; break;
1106
2.93k
    case 1: adjustment_limit = 0.375; break;
1107
116k
    case 2:
1108
116k
    default: adjustment_limit = 0.25; break;
1109
147k
  }
1110
1111
147k
  if (correction_factor > 102) {
1112
    /* We are not already at the worst allowable quality */
1113
67.8k
    correction_factor =
1114
67.8k
        (int)(100.5 + ((correction_factor - 100) * adjustment_limit));
1115
67.8k
    rate_correction_factor =
1116
67.8k
        ((rate_correction_factor * correction_factor) / 100);
1117
1118
    /* Keep rate_correction_factor within limits */
1119
67.8k
    if (rate_correction_factor > MAX_BPB_FACTOR) {
1120
9.53k
      rate_correction_factor = MAX_BPB_FACTOR;
1121
9.53k
    }
1122
79.1k
  } else if (correction_factor < 99) {
1123
    /* We are not already at the best allowable quality */
1124
63.0k
    correction_factor =
1125
63.0k
        (int)(100.5 - ((100 - correction_factor) * adjustment_limit));
1126
63.0k
    rate_correction_factor =
1127
63.0k
        ((rate_correction_factor * correction_factor) / 100);
1128
1129
    /* Keep rate_correction_factor within limits */
1130
63.0k
    if (rate_correction_factor < MIN_BPB_FACTOR) {
1131
307
      rate_correction_factor = MIN_BPB_FACTOR;
1132
307
    }
1133
63.0k
  }
1134
1135
147k
  if (cpi->common.frame_type == KEY_FRAME) {
1136
36.3k
    cpi->key_frame_rate_correction_factor = rate_correction_factor;
1137
110k
  } else {
1138
110k
    if (cpi->oxcf.number_of_layers == 1 && !cpi->gf_noboost_onepass_cbr &&
1139
110k
        (cpi->common.refresh_alt_ref_frame ||
1140
110k
         cpi->common.refresh_golden_frame)) {
1141
10.8k
      cpi->gf_rate_correction_factor = rate_correction_factor;
1142
99.7k
    } else {
1143
99.7k
      cpi->rate_correction_factor = rate_correction_factor;
1144
99.7k
    }
1145
110k
  }
1146
147k
}
1147
1148
0
static int limit_q_cbr_inter(int last_q, int current_q) {
1149
0
  int limit_down = 12;
1150
0
  if (last_q - current_q > limit_down)
1151
0
    return (last_q - limit_down);
1152
0
  else
1153
0
    return current_q;
1154
0
}
1155
1156
148k
int vp8_regulate_q(VP8_COMP *cpi, int target_bits_per_frame) {
1157
148k
  int Q = cpi->active_worst_quality;
1158
1159
148k
  if (cpi->force_maxqp == 1) {
1160
0
    cpi->active_worst_quality = cpi->worst_quality;
1161
0
    return cpi->worst_quality;
1162
0
  }
1163
  /* Reset Zbin OQ value */
1164
148k
  cpi->mb.zbin_over_quant = 0;
1165
1166
148k
  if (cpi->oxcf.fixed_q >= 0) {
1167
0
    Q = cpi->oxcf.fixed_q;
1168
1169
0
    if (cpi->common.frame_type == KEY_FRAME) {
1170
0
      Q = cpi->oxcf.key_q;
1171
0
    } else if (cpi->oxcf.number_of_layers == 1 &&
1172
0
               cpi->common.refresh_alt_ref_frame &&
1173
0
               !cpi->gf_noboost_onepass_cbr) {
1174
0
      Q = cpi->oxcf.alt_q;
1175
0
    } else if (cpi->oxcf.number_of_layers == 1 &&
1176
0
               cpi->common.refresh_golden_frame &&
1177
0
               !cpi->gf_noboost_onepass_cbr) {
1178
0
      Q = cpi->oxcf.gold_q;
1179
0
    }
1180
148k
  } else {
1181
148k
    int i;
1182
148k
    int last_error = INT_MAX;
1183
148k
    int target_bits_per_mb;
1184
148k
    int bits_per_mb_at_this_q;
1185
148k
    double correction_factor;
1186
1187
    /* Select the appropriate correction factor based upon type of frame. */
1188
148k
    if (cpi->common.frame_type == KEY_FRAME) {
1189
34.0k
      correction_factor = cpi->key_frame_rate_correction_factor;
1190
114k
    } else {
1191
114k
      if (cpi->oxcf.number_of_layers == 1 && !cpi->gf_noboost_onepass_cbr &&
1192
114k
          (cpi->common.refresh_alt_ref_frame ||
1193
114k
           cpi->common.refresh_golden_frame)) {
1194
11.0k
        correction_factor = cpi->gf_rate_correction_factor;
1195
103k
      } else {
1196
103k
        correction_factor = cpi->rate_correction_factor;
1197
103k
      }
1198
114k
    }
1199
1200
    /* Calculate required scaling factor based on target frame size and
1201
     * size of frame produced using previous Q
1202
     */
1203
148k
    if (target_bits_per_frame > (INT_MAX >> BPER_MB_NORMBITS)) {
1204
4.97k
      int temp = target_bits_per_frame / cpi->common.MBs;
1205
4.97k
      if (temp > (INT_MAX >> BPER_MB_NORMBITS)) {
1206
1.82k
        target_bits_per_mb = INT_MAX;
1207
3.14k
      } else {
1208
3.14k
        target_bits_per_mb = temp << BPER_MB_NORMBITS;
1209
3.14k
      }
1210
143k
    } else {
1211
143k
      target_bits_per_mb =
1212
143k
          (target_bits_per_frame << BPER_MB_NORMBITS) / cpi->common.MBs;
1213
143k
    }
1214
1215
148k
    i = cpi->active_best_quality;
1216
1217
6.44M
    do {
1218
6.44M
      bits_per_mb_at_this_q =
1219
6.44M
          (int)(.5 +
1220
6.44M
                correction_factor * vp8_bits_per_mb[cpi->common.frame_type][i]);
1221
1222
6.44M
      if (bits_per_mb_at_this_q <= target_bits_per_mb) {
1223
108k
        if ((target_bits_per_mb - bits_per_mb_at_this_q) <= last_error) {
1224
87.0k
          Q = i;
1225
87.0k
        } else {
1226
21.5k
          Q = i - 1;
1227
21.5k
        }
1228
1229
108k
        break;
1230
6.33M
      } else {
1231
6.33M
        last_error = bits_per_mb_at_this_q - target_bits_per_mb;
1232
6.33M
      }
1233
6.44M
    } while (++i <= cpi->active_worst_quality);
1234
1235
    /* If we are at MAXQ then enable Q over-run which seeks to claw
1236
     * back additional bits through things like the RD multiplier
1237
     * and zero bin size.
1238
     */
1239
148k
    if (Q >= MAXQ) {
1240
38.9k
      int zbin_oqmax;
1241
1242
38.9k
      double Factor = 0.99;
1243
38.9k
      double factor_adjustment = 0.01 / 256.0;
1244
1245
38.9k
      if (cpi->common.frame_type == KEY_FRAME) {
1246
5.08k
        zbin_oqmax = 0;
1247
33.8k
      } else if (cpi->oxcf.number_of_layers == 1 &&
1248
33.8k
                 !cpi->gf_noboost_onepass_cbr &&
1249
33.8k
                 (cpi->common.refresh_alt_ref_frame ||
1250
33.8k
                  (cpi->common.refresh_golden_frame &&
1251
1.47k
                   !cpi->source_alt_ref_active))) {
1252
1.47k
        zbin_oqmax = 16;
1253
32.3k
      } else {
1254
32.3k
        zbin_oqmax = ZBIN_OQ_MAX;
1255
32.3k
      }
1256
1257
      /*{
1258
          double Factor =
1259
      (double)target_bits_per_mb/(double)bits_per_mb_at_this_q;
1260
          double Oq;
1261
1262
          Factor = Factor/1.2683;
1263
1264
          Oq = pow( Factor, (1.0/-0.165) );
1265
1266
          if ( Oq > zbin_oqmax )
1267
              Oq = zbin_oqmax;
1268
1269
          cpi->zbin_over_quant = (int)Oq;
1270
      }*/
1271
1272
      /* Each incrment in the zbin is assumed to have a fixed effect
1273
       * on bitrate. This is not of course true. The effect will be
1274
       * highly clip dependent and may well have sudden steps. The
1275
       * idea here is to acheive higher effective quantizers than the
1276
       * normal maximum by expanding the zero bin and hence
1277
       * decreasing the number of low magnitude non zero coefficients.
1278
       */
1279
5.14M
      while (cpi->mb.zbin_over_quant < zbin_oqmax) {
1280
5.11M
        cpi->mb.zbin_over_quant++;
1281
1282
5.11M
        if (cpi->mb.zbin_over_quant > zbin_oqmax) {
1283
0
          cpi->mb.zbin_over_quant = zbin_oqmax;
1284
0
        }
1285
1286
        /* Adjust bits_per_mb_at_this_q estimate */
1287
5.11M
        bits_per_mb_at_this_q = (int)(Factor * bits_per_mb_at_this_q);
1288
5.11M
        Factor += factor_adjustment;
1289
1290
5.11M
        if (Factor >= 0.999) Factor = 0.999;
1291
1292
        /* Break out if we get down to the target rate */
1293
5.11M
        if (bits_per_mb_at_this_q <= target_bits_per_mb) break;
1294
5.11M
      }
1295
38.9k
    }
1296
148k
  }
1297
1298
  // Limit decrease in Q for 1 pass CBR screen content mode.
1299
148k
  if (cpi->common.frame_type != KEY_FRAME && cpi->pass == 0 &&
1300
114k
      cpi->oxcf.end_usage == USAGE_STREAM_FROM_SERVER &&
1301
0
      cpi->oxcf.screen_content_mode)
1302
0
    Q = limit_q_cbr_inter(cpi->last_q[1], Q);
1303
1304
148k
  return Q;
1305
148k
}
1306
1307
15.6k
static int estimate_keyframe_frequency(VP8_COMP *cpi) {
1308
15.6k
  int i;
1309
1310
  /* Average key frame frequency */
1311
15.6k
  int av_key_frame_frequency = 0;
1312
1313
  /* First key frame at start of sequence is a special case. We have no
1314
   * frequency data.
1315
   */
1316
15.6k
  if (cpi->key_frame_count == 1) {
1317
    /* Assume a default of 1 kf every 2 seconds, or the max kf interval,
1318
     * whichever is smaller.
1319
     */
1320
3.58k
    int key_freq = cpi->oxcf.key_freq > 0 ? cpi->oxcf.key_freq : 1;
1321
3.58k
    av_key_frame_frequency = 1 + (int)cpi->output_framerate * 2;
1322
1323
3.58k
    if (cpi->oxcf.auto_key && av_key_frame_frequency > key_freq) {
1324
404
      av_key_frame_frequency = key_freq;
1325
404
    }
1326
1327
3.58k
    cpi->prior_key_frame_distance[KEY_FRAME_CONTEXT - 1] =
1328
3.58k
        av_key_frame_frequency;
1329
12.0k
  } else {
1330
12.0k
    unsigned int total_weight = 0;
1331
12.0k
    int last_kf_interval =
1332
12.0k
        (cpi->frames_since_key > 0) ? cpi->frames_since_key : 1;
1333
1334
    /* reset keyframe context and calculate weighted average of last
1335
     * KEY_FRAME_CONTEXT keyframes
1336
     */
1337
72.3k
    for (i = 0; i < KEY_FRAME_CONTEXT; ++i) {
1338
60.3k
      if (i < KEY_FRAME_CONTEXT - 1) {
1339
48.2k
        cpi->prior_key_frame_distance[i] = cpi->prior_key_frame_distance[i + 1];
1340
48.2k
      } else {
1341
12.0k
        cpi->prior_key_frame_distance[i] = last_kf_interval;
1342
12.0k
      }
1343
1344
60.3k
      av_key_frame_frequency +=
1345
60.3k
          prior_key_frame_weight[i] * cpi->prior_key_frame_distance[i];
1346
60.3k
      total_weight += prior_key_frame_weight[i];
1347
60.3k
    }
1348
1349
12.0k
    av_key_frame_frequency /= total_weight;
1350
12.0k
  }
1351
  // TODO (marpan): Given the checks above, |av_key_frame_frequency|
1352
  // should always be above 0. But for now we keep the sanity check in.
1353
15.6k
  if (av_key_frame_frequency == 0) av_key_frame_frequency = 1;
1354
15.6k
  return av_key_frame_frequency;
1355
15.6k
}
1356
1357
21.8k
void vp8_adjust_key_frame_context(VP8_COMP *cpi) {
1358
  /* Clear down mmx registers to allow floating point in what follows */
1359
21.8k
  vpx_clear_system_state();
1360
1361
  /* Do we have any key frame overspend to recover? */
1362
  /* Two-pass overspend handled elsewhere. */
1363
21.8k
  if ((cpi->pass != 2) &&
1364
21.8k
      (cpi->projected_frame_size > cpi->per_frame_bandwidth)) {
1365
15.6k
    int overspend;
1366
1367
    /* Update the count of key frame overspend to be recovered in
1368
     * subsequent frames. A portion of the KF overspend is treated as gf
1369
     * overspend (and hence recovered more quickly) as the kf is also a
1370
     * gf. Otherwise the few frames following each kf tend to get more
1371
     * bits allocated than those following other gfs.
1372
     */
1373
15.6k
    overspend = (cpi->projected_frame_size - cpi->per_frame_bandwidth);
1374
1375
15.6k
    if (cpi->oxcf.number_of_layers > 1) {
1376
0
      cpi->kf_overspend_bits += overspend;
1377
15.6k
    } else {
1378
15.6k
      cpi->kf_overspend_bits += overspend * 7 / 8;
1379
15.6k
      cpi->gf_overspend_bits += overspend * 1 / 8;
1380
15.6k
    }
1381
1382
    /* Work out how much to try and recover per frame. */
1383
15.6k
    cpi->kf_bitrate_adjustment =
1384
15.6k
        cpi->kf_overspend_bits / estimate_keyframe_frequency(cpi);
1385
15.6k
  }
1386
1387
21.8k
  cpi->frames_since_key = 0;
1388
21.8k
  cpi->key_frame_count++;
1389
21.8k
}
1390
1391
void vp8_compute_frame_size_bounds(VP8_COMP *cpi, int *frame_under_shoot_limit,
1392
120k
                                   int *frame_over_shoot_limit) {
1393
  /* Set-up bounds on acceptable frame size: */
1394
120k
  if (cpi->oxcf.fixed_q >= 0) {
1395
    /* Fixed Q scenario: frame size never outranges target
1396
     * (there is no target!)
1397
     */
1398
0
    *frame_under_shoot_limit = 0;
1399
0
    *frame_over_shoot_limit = INT_MAX;
1400
120k
  } else {
1401
120k
    const int64_t this_frame_target = cpi->this_frame_target;
1402
120k
    int64_t over_shoot_limit, under_shoot_limit;
1403
1404
120k
    if (cpi->common.frame_type == KEY_FRAME) {
1405
21.8k
      over_shoot_limit = this_frame_target * 9 / 8;
1406
21.8k
      under_shoot_limit = this_frame_target * 7 / 8;
1407
98.3k
    } else {
1408
98.3k
      if (cpi->oxcf.number_of_layers > 1 || cpi->common.refresh_alt_ref_frame ||
1409
98.3k
          cpi->common.refresh_golden_frame) {
1410
8.81k
        over_shoot_limit = this_frame_target * 9 / 8;
1411
8.81k
        under_shoot_limit = this_frame_target * 7 / 8;
1412
89.5k
      } else {
1413
        /* For CBR take buffer fullness into account */
1414
89.5k
        if (cpi->oxcf.end_usage == USAGE_STREAM_FROM_SERVER) {
1415
0
          if (cpi->buffer_level >= ((cpi->oxcf.optimal_buffer_level +
1416
0
                                     cpi->oxcf.maximum_buffer_size) >>
1417
0
                                    1)) {
1418
            /* Buffer is too full so relax overshoot and tighten
1419
             * undershoot
1420
             */
1421
0
            over_shoot_limit = this_frame_target * 12 / 8;
1422
0
            under_shoot_limit = this_frame_target * 6 / 8;
1423
0
          } else if (cpi->buffer_level <=
1424
0
                     (cpi->oxcf.optimal_buffer_level >> 1)) {
1425
            /* Buffer is too low so relax undershoot and tighten
1426
             * overshoot
1427
             */
1428
0
            over_shoot_limit = this_frame_target * 10 / 8;
1429
0
            under_shoot_limit = this_frame_target * 4 / 8;
1430
0
          } else {
1431
0
            over_shoot_limit = this_frame_target * 11 / 8;
1432
0
            under_shoot_limit = this_frame_target * 5 / 8;
1433
0
          }
1434
0
        }
1435
        /* VBR and CQ mode */
1436
        /* Note that tighter restrictions here can help quality
1437
         * but hurt encode speed
1438
         */
1439
89.5k
        else {
1440
          /* Stron overshoot limit for constrained quality */
1441
89.5k
          if (cpi->oxcf.end_usage == USAGE_CONSTRAINED_QUALITY) {
1442
16.9k
            over_shoot_limit = this_frame_target * 11 / 8;
1443
16.9k
            under_shoot_limit = this_frame_target * 2 / 8;
1444
72.5k
          } else {
1445
72.5k
            over_shoot_limit = this_frame_target * 11 / 8;
1446
72.5k
            under_shoot_limit = this_frame_target * 5 / 8;
1447
72.5k
          }
1448
89.5k
        }
1449
89.5k
      }
1450
98.3k
    }
1451
1452
    /* For very small rate targets where the fractional adjustment
1453
     * (eg * 7/8) may be tiny make sure there is at least a minimum
1454
     * range.
1455
     */
1456
120k
    over_shoot_limit += 200;
1457
120k
    under_shoot_limit -= 200;
1458
120k
    if (under_shoot_limit < 0) under_shoot_limit = 0;
1459
120k
    if (under_shoot_limit > INT_MAX) under_shoot_limit = INT_MAX;
1460
120k
    if (over_shoot_limit > INT_MAX) over_shoot_limit = INT_MAX;
1461
120k
    *frame_under_shoot_limit = (int)under_shoot_limit;
1462
120k
    *frame_over_shoot_limit = (int)over_shoot_limit;
1463
120k
  }
1464
120k
}
1465
1466
/* return of 0 means drop frame */
1467
120k
int vp8_pick_frame_size(VP8_COMP *cpi) {
1468
120k
  VP8_COMMON *cm = &cpi->common;
1469
1470
120k
  if (cm->frame_type == KEY_FRAME) {
1471
21.8k
    calc_iframe_target_size(cpi);
1472
98.3k
  } else {
1473
98.3k
    calc_pframe_target_size(cpi);
1474
1475
    /* Check if we're dropping the frame: */
1476
98.3k
    if (cpi->drop_frame) {
1477
0
      cpi->drop_frame = 0;
1478
0
      return 0;
1479
0
    }
1480
98.3k
  }
1481
120k
  return 1;
1482
120k
}
1483
// If this just encoded frame (mcomp/transform/quant, but before loopfilter and
1484
// pack_bitstream) has large overshoot, and was not being encoded close to the
1485
// max QP, then drop this frame and force next frame to be encoded at max QP.
1486
// Allow this for screen_content_mode = 2, or if drop frames is allowed.
1487
// TODO(marpan): Should do this exit condition during the encode_frame
1488
// (i.e., halfway during the encoding of the frame) to save cycles.
1489
0
int vp8_drop_encodedframe_overshoot(VP8_COMP *cpi, int Q) {
1490
0
  int force_drop_overshoot = 0;
1491
#if CONFIG_MULTI_RES_ENCODING
1492
  // Only check for dropping due to overshoot on the lowest stream.
1493
  // If the lowest stream of the multi-res encoding was dropped due to
1494
  // overshoot, then force dropping on all upper layer streams
1495
  // (mr_encoder_id > 0).
1496
  LOWER_RES_FRAME_INFO *low_res_frame_info =
1497
      (LOWER_RES_FRAME_INFO *)cpi->oxcf.mr_low_res_mode_info;
1498
  if (cpi->oxcf.mr_total_resolutions > 1 && cpi->oxcf.mr_encoder_id > 0) {
1499
    force_drop_overshoot = low_res_frame_info->is_frame_dropped_overshoot_maxqp;
1500
    if (!force_drop_overshoot) {
1501
      cpi->force_maxqp = 0;
1502
      cpi->frames_since_last_drop_overshoot++;
1503
      return 0;
1504
    }
1505
  }
1506
#endif
1507
0
  if (cpi->common.frame_type != KEY_FRAME &&
1508
0
      (cpi->oxcf.screen_content_mode == 2 ||
1509
0
       (cpi->drop_frames_allowed &&
1510
0
        (force_drop_overshoot ||
1511
0
         (cpi->rate_correction_factor < (8.0f * MIN_BPB_FACTOR) &&
1512
0
          cpi->frames_since_last_drop_overshoot > (int)cpi->framerate))))) {
1513
    // Note: the "projected_frame_size" from encode_frame() only gives estimate
1514
    // of mode/motion vector rate (in non-rd mode): so below we only require
1515
    // that projected_frame_size is somewhat greater than per-frame-bandwidth,
1516
    // but add additional condition with high threshold on prediction residual.
1517
1518
    // QP threshold: only allow dropping if we are not close to qp_max.
1519
0
    int thresh_qp = 3 * cpi->worst_quality >> 2;
1520
    // Rate threshold, in bytes.
1521
0
    int thresh_rate = 2 * (cpi->av_per_frame_bandwidth >> 3);
1522
    // Threshold for the average (over all macroblocks) of the pixel-sum
1523
    // residual error over 16x16 block.
1524
0
    int thresh_pred_err_mb = (200 << 4);
1525
0
    int pred_err_mb = (int)(cpi->mb.prediction_error / cpi->common.MBs);
1526
    // Reduce/ignore thresh_rate if pred_err_mb much larger than its threshold,
1527
    // give more weight to pred_err metric for overshoot detection.
1528
0
    if (cpi->drop_frames_allowed && pred_err_mb > (thresh_pred_err_mb << 4))
1529
0
      thresh_rate = thresh_rate >> 3;
1530
0
    if ((Q < thresh_qp && cpi->projected_frame_size > thresh_rate &&
1531
0
         pred_err_mb > thresh_pred_err_mb &&
1532
0
         pred_err_mb > 2 * cpi->last_pred_err_mb) ||
1533
0
        force_drop_overshoot) {
1534
0
      unsigned int i;
1535
0
      double new_correction_factor;
1536
0
      int target_bits_per_mb;
1537
0
      const int target_size = cpi->av_per_frame_bandwidth;
1538
      // Flag to indicate we will force next frame to be encoded at max QP.
1539
0
      cpi->force_maxqp = 1;
1540
      // Reset the buffer levels.
1541
0
      cpi->buffer_level = cpi->oxcf.optimal_buffer_level;
1542
0
      cpi->bits_off_target = cpi->oxcf.optimal_buffer_level;
1543
      // Compute a new rate correction factor, corresponding to the current
1544
      // target frame size and max_QP, and adjust the rate correction factor
1545
      // upwards, if needed.
1546
      // This is to prevent a bad state where the re-encoded frame at max_QP
1547
      // undershoots significantly, and then we end up dropping every other
1548
      // frame because the QP/rate_correction_factor may have been too low
1549
      // before the drop and then takes too long to come up.
1550
0
      if (target_size > (INT_MAX >> BPER_MB_NORMBITS)) {
1551
0
        int temp = target_size / cpi->common.MBs;
1552
0
        if (temp > (INT_MAX >> BPER_MB_NORMBITS)) {
1553
0
          target_bits_per_mb = INT_MAX;
1554
0
        } else {
1555
0
          target_bits_per_mb = temp << BPER_MB_NORMBITS;
1556
0
        }
1557
0
      } else {
1558
0
        target_bits_per_mb =
1559
0
            (target_size << BPER_MB_NORMBITS) / cpi->common.MBs;
1560
0
      }
1561
      // Rate correction factor based on target_size_per_mb and max_QP.
1562
0
      new_correction_factor =
1563
0
          (double)target_bits_per_mb /
1564
0
          (double)vp8_bits_per_mb[INTER_FRAME][cpi->worst_quality];
1565
0
      if (new_correction_factor > cpi->rate_correction_factor) {
1566
0
        cpi->rate_correction_factor =
1567
0
            VPXMIN(2.0 * cpi->rate_correction_factor, new_correction_factor);
1568
0
      }
1569
0
      if (cpi->rate_correction_factor > MAX_BPB_FACTOR) {
1570
0
        cpi->rate_correction_factor = MAX_BPB_FACTOR;
1571
0
      }
1572
      // Drop this frame: update frame counters.
1573
0
      cpi->common.current_video_frame++;
1574
0
      cpi->frames_since_key++;
1575
0
      cpi->temporal_pattern_counter++;
1576
0
      cpi->frames_since_last_drop_overshoot = 0;
1577
0
      if (cpi->oxcf.number_of_layers > 1) {
1578
        // Set max_qp and rate correction for all temporal layers if overshoot
1579
        // is detected.
1580
0
        for (i = 0; i < cpi->oxcf.number_of_layers; ++i) {
1581
0
          LAYER_CONTEXT *lc = &cpi->layer_context[i];
1582
0
          lc->force_maxqp = 1;
1583
0
          lc->frames_since_last_drop_overshoot = 0;
1584
0
          lc->rate_correction_factor = cpi->rate_correction_factor;
1585
0
        }
1586
0
      }
1587
#if CONFIG_MULTI_RES_ENCODING
1588
      if (cpi->oxcf.mr_total_resolutions > 1)
1589
        low_res_frame_info->is_frame_dropped_overshoot_maxqp = 1;
1590
#endif
1591
0
      return 1;
1592
0
    }
1593
0
    cpi->force_maxqp = 0;
1594
0
    cpi->frames_since_last_drop_overshoot++;
1595
#if CONFIG_MULTI_RES_ENCODING
1596
    if (cpi->oxcf.mr_total_resolutions > 1)
1597
      low_res_frame_info->is_frame_dropped_overshoot_maxqp = 0;
1598
#endif
1599
0
    return 0;
1600
0
  }
1601
0
  cpi->force_maxqp = 0;
1602
0
  cpi->frames_since_last_drop_overshoot++;
1603
#if CONFIG_MULTI_RES_ENCODING
1604
  if (cpi->oxcf.mr_total_resolutions > 1)
1605
    low_res_frame_info->is_frame_dropped_overshoot_maxqp = 0;
1606
#endif
1607
0
  return 0;
1608
0
}