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 <assert.h>
12 #include <limits.h>
13 #include <math.h>
14 #include <stdio.h>
15 #include <stdlib.h>
16 #include <string.h>
17
18 #include "./vpx_dsp_rtcd.h"
19 #include "vpx_dsp/vpx_dsp_common.h"
20 #include "vpx_mem/vpx_mem.h"
21 #include "vpx_ports/mem.h"
22 #include "vpx_ports/system_state.h"
23
24 #include "vp9/common/vp9_alloccommon.h"
25 #include "vp9/encoder/vp9_aq_cyclicrefresh.h"
26 #include "vp9/common/vp9_common.h"
27 #include "vp9/common/vp9_entropymode.h"
28 #include "vp9/common/vp9_quant_common.h"
29 #include "vp9/common/vp9_seg_common.h"
30
31 #include "vp9/encoder/vp9_encodemv.h"
32 #include "vp9/encoder/vp9_ratectrl.h"
33
34 // Max rate per frame for 1080P and below encodes if no level requirement given.
35 // For larger formats limit to MAX_MB_RATE bits per MB
36 // 4Mbits is derived from the level requirement for level 4 (1080P 30) which
37 // requires that HW can sustain a rate of 16Mbits over a 4 frame group.
38 // If a lower level requirement is specified then this may over ride this value.
39 #define MAX_MB_RATE 250
40 #define MAXRATE_1080P 4000000
41
42 #define LIMIT_QRANGE_FOR_ALTREF_AND_KEY 1
43
44 #define MIN_BPB_FACTOR 0.005
45 #define MAX_BPB_FACTOR 50
46
47 #if CONFIG_VP9_HIGHBITDEPTH
48 #define ASSIGN_MINQ_TABLE(bit_depth, name) \
49 do { \
50 switch (bit_depth) { \
51 case VPX_BITS_8: name = name##_8; break; \
52 case VPX_BITS_10: name = name##_10; break; \
53 default: \
54 assert(bit_depth == VPX_BITS_12); \
55 name = name##_12; \
56 break; \
57 } \
58 } while (0)
59 #else
60 #define ASSIGN_MINQ_TABLE(bit_depth, name) \
61 do { \
62 (void)bit_depth; \
63 name = name##_8; \
64 } while (0)
65 #endif
66
67 // Tables relating active max Q to active min Q
68 static int kf_low_motion_minq_8[QINDEX_RANGE];
69 static int kf_high_motion_minq_8[QINDEX_RANGE];
70 static int arfgf_low_motion_minq_8[QINDEX_RANGE];
71 static int arfgf_high_motion_minq_8[QINDEX_RANGE];
72 static int inter_minq_8[QINDEX_RANGE];
73 static int rtc_minq_8[QINDEX_RANGE];
74
75 #if CONFIG_VP9_HIGHBITDEPTH
76 static int kf_low_motion_minq_10[QINDEX_RANGE];
77 static int kf_high_motion_minq_10[QINDEX_RANGE];
78 static int arfgf_low_motion_minq_10[QINDEX_RANGE];
79 static int arfgf_high_motion_minq_10[QINDEX_RANGE];
80 static int inter_minq_10[QINDEX_RANGE];
81 static int rtc_minq_10[QINDEX_RANGE];
82 static int kf_low_motion_minq_12[QINDEX_RANGE];
83 static int kf_high_motion_minq_12[QINDEX_RANGE];
84 static int arfgf_low_motion_minq_12[QINDEX_RANGE];
85 static int arfgf_high_motion_minq_12[QINDEX_RANGE];
86 static int inter_minq_12[QINDEX_RANGE];
87 static int rtc_minq_12[QINDEX_RANGE];
88 #endif
89
90 #ifdef AGGRESSIVE_VBR
91 static int gf_high = 2400;
92 static int gf_low = 400;
93 static int kf_high = 4000;
94 static int kf_low = 400;
95 #else
96 static int gf_high = 2000;
97 static int gf_low = 400;
98 static int kf_high = 4800;
99 static int kf_low = 300;
100 #endif
101
102 // Functions to compute the active minq lookup table entries based on a
103 // formulaic approach to facilitate easier adjustment of the Q tables.
104 // The formulae were derived from computing a 3rd order polynomial best
105 // fit to the original data (after plotting real maxq vs minq (not q index))
get_minq_index(double maxq,double x3,double x2,double x1,vpx_bit_depth_t bit_depth)106 static int get_minq_index(double maxq, double x3, double x2, double x1,
107 vpx_bit_depth_t bit_depth) {
108 int i;
109 const double minqtarget = VPXMIN(((x3 * maxq + x2) * maxq + x1) * maxq, maxq);
110
111 // Special case handling to deal with the step from q2.0
112 // down to lossless mode represented by q 1.0.
113 if (minqtarget <= 2.0) return 0;
114
115 for (i = 0; i < QINDEX_RANGE; i++) {
116 if (minqtarget <= vp9_convert_qindex_to_q(i, bit_depth)) return i;
117 }
118
119 return QINDEX_RANGE - 1;
120 }
121
init_minq_luts(int * kf_low_m,int * kf_high_m,int * arfgf_low,int * arfgf_high,int * inter,int * rtc,vpx_bit_depth_t bit_depth)122 static void init_minq_luts(int *kf_low_m, int *kf_high_m, int *arfgf_low,
123 int *arfgf_high, int *inter, int *rtc,
124 vpx_bit_depth_t bit_depth) {
125 int i;
126 for (i = 0; i < QINDEX_RANGE; i++) {
127 const double maxq = vp9_convert_qindex_to_q(i, bit_depth);
128 kf_low_m[i] = get_minq_index(maxq, 0.000001, -0.0004, 0.150, bit_depth);
129 kf_high_m[i] = get_minq_index(maxq, 0.0000021, -0.00125, 0.45, bit_depth);
130 #ifdef AGGRESSIVE_VBR
131 arfgf_low[i] = get_minq_index(maxq, 0.0000015, -0.0009, 0.275, bit_depth);
132 inter[i] = get_minq_index(maxq, 0.00000271, -0.00113, 0.80, bit_depth);
133 #else
134 arfgf_low[i] = get_minq_index(maxq, 0.0000015, -0.0009, 0.30, bit_depth);
135 inter[i] = get_minq_index(maxq, 0.00000271, -0.00113, 0.70, bit_depth);
136 #endif
137 arfgf_high[i] = get_minq_index(maxq, 0.0000021, -0.00125, 0.55, bit_depth);
138 rtc[i] = get_minq_index(maxq, 0.00000271, -0.00113, 0.70, bit_depth);
139 }
140 }
141
vp9_rc_init_minq_luts(void)142 void vp9_rc_init_minq_luts(void) {
143 init_minq_luts(kf_low_motion_minq_8, kf_high_motion_minq_8,
144 arfgf_low_motion_minq_8, arfgf_high_motion_minq_8,
145 inter_minq_8, rtc_minq_8, VPX_BITS_8);
146 #if CONFIG_VP9_HIGHBITDEPTH
147 init_minq_luts(kf_low_motion_minq_10, kf_high_motion_minq_10,
148 arfgf_low_motion_minq_10, arfgf_high_motion_minq_10,
149 inter_minq_10, rtc_minq_10, VPX_BITS_10);
150 init_minq_luts(kf_low_motion_minq_12, kf_high_motion_minq_12,
151 arfgf_low_motion_minq_12, arfgf_high_motion_minq_12,
152 inter_minq_12, rtc_minq_12, VPX_BITS_12);
153 #endif
154 }
155
156 // These functions use formulaic calculations to make playing with the
157 // quantizer tables easier. If necessary they can be replaced by lookup
158 // tables if and when things settle down in the experimental bitstream
vp9_convert_qindex_to_q(int qindex,vpx_bit_depth_t bit_depth)159 double vp9_convert_qindex_to_q(int qindex, vpx_bit_depth_t bit_depth) {
160 // Convert the index to a real Q value (scaled down to match old Q values)
161 #if CONFIG_VP9_HIGHBITDEPTH
162 switch (bit_depth) {
163 case VPX_BITS_8: return vp9_ac_quant(qindex, 0, bit_depth) / 4.0;
164 case VPX_BITS_10: return vp9_ac_quant(qindex, 0, bit_depth) / 16.0;
165 default:
166 assert(bit_depth == VPX_BITS_12);
167 return vp9_ac_quant(qindex, 0, bit_depth) / 64.0;
168 }
169 #else
170 return vp9_ac_quant(qindex, 0, bit_depth) / 4.0;
171 #endif
172 }
173
vp9_convert_q_to_qindex(double q_val,vpx_bit_depth_t bit_depth)174 int vp9_convert_q_to_qindex(double q_val, vpx_bit_depth_t bit_depth) {
175 int i;
176
177 for (i = 0; i < QINDEX_RANGE; ++i)
178 if (vp9_convert_qindex_to_q(i, bit_depth) >= q_val) break;
179
180 if (i == QINDEX_RANGE) i--;
181
182 return i;
183 }
184
vp9_rc_bits_per_mb(FRAME_TYPE frame_type,int qindex,double correction_factor,vpx_bit_depth_t bit_depth)185 int vp9_rc_bits_per_mb(FRAME_TYPE frame_type, int qindex,
186 double correction_factor, vpx_bit_depth_t bit_depth) {
187 const double q = vp9_convert_qindex_to_q(qindex, bit_depth);
188 int enumerator = frame_type == KEY_FRAME ? 2700000 : 1800000;
189
190 assert(correction_factor <= MAX_BPB_FACTOR &&
191 correction_factor >= MIN_BPB_FACTOR);
192
193 // q based adjustment to baseline enumerator
194 enumerator += (int)(enumerator * q) >> 12;
195 return (int)(enumerator * correction_factor / q);
196 }
197
vp9_estimate_bits_at_q(FRAME_TYPE frame_type,int q,int mbs,double correction_factor,vpx_bit_depth_t bit_depth)198 int vp9_estimate_bits_at_q(FRAME_TYPE frame_type, int q, int mbs,
199 double correction_factor,
200 vpx_bit_depth_t bit_depth) {
201 const int bpm =
202 (int)(vp9_rc_bits_per_mb(frame_type, q, correction_factor, bit_depth));
203 return VPXMAX(FRAME_OVERHEAD_BITS,
204 (int)(((uint64_t)bpm * mbs) >> BPER_MB_NORMBITS));
205 }
206
vp9_rc_clamp_pframe_target_size(const VP9_COMP * const cpi,int target)207 int vp9_rc_clamp_pframe_target_size(const VP9_COMP *const cpi, int target) {
208 const RATE_CONTROL *rc = &cpi->rc;
209 const VP9EncoderConfig *oxcf = &cpi->oxcf;
210
211 const int min_frame_target =
212 VPXMAX(rc->min_frame_bandwidth, rc->avg_frame_bandwidth >> 5);
213 if (target < min_frame_target) target = min_frame_target;
214 if (cpi->refresh_golden_frame && rc->is_src_frame_alt_ref) {
215 // If there is an active ARF at this location use the minimum
216 // bits on this frame even if it is a constructed arf.
217 // The active maximum quantizer insures that an appropriate
218 // number of bits will be spent if needed for constructed ARFs.
219 target = min_frame_target;
220 }
221
222 // Clip the frame target to the maximum allowed value.
223 if (target > rc->max_frame_bandwidth) target = rc->max_frame_bandwidth;
224
225 if (oxcf->rc_max_inter_bitrate_pct) {
226 const int64_t max_rate =
227 (int64_t)rc->avg_frame_bandwidth * oxcf->rc_max_inter_bitrate_pct / 100;
228 // target is of type int and VPXMIN cannot evaluate to larger than target
229 target = (int)VPXMIN(target, max_rate);
230 }
231 return target;
232 }
233
vp9_rc_clamp_iframe_target_size(const VP9_COMP * const cpi,int target)234 int vp9_rc_clamp_iframe_target_size(const VP9_COMP *const cpi, int target) {
235 const RATE_CONTROL *rc = &cpi->rc;
236 const VP9EncoderConfig *oxcf = &cpi->oxcf;
237 if (oxcf->rc_max_intra_bitrate_pct) {
238 const int64_t max_rate =
239 (int64_t)rc->avg_frame_bandwidth * oxcf->rc_max_intra_bitrate_pct / 100;
240 target = (int)VPXMIN(target, max_rate);
241 }
242 if (target > rc->max_frame_bandwidth) target = rc->max_frame_bandwidth;
243 return target;
244 }
245
246 // TODO(marpan/jianj): bits_off_target and buffer_level are used in the same
247 // way for CBR mode, for the buffering updates below. Look into removing one
248 // of these (i.e., bits_off_target).
249 // Update the buffer level before encoding with the per-frame-bandwidth,
vp9_update_buffer_level_preencode(VP9_COMP * cpi)250 void vp9_update_buffer_level_preencode(VP9_COMP *cpi) {
251 RATE_CONTROL *const rc = &cpi->rc;
252 rc->bits_off_target += rc->avg_frame_bandwidth;
253 // Clip the buffer level to the maximum specified buffer size.
254 rc->bits_off_target = VPXMIN(rc->bits_off_target, rc->maximum_buffer_size);
255 rc->buffer_level = rc->bits_off_target;
256 }
257
258 // Update the buffer level before encoding with the per-frame-bandwidth
259 // for SVC. The current and all upper temporal layers are updated, needed
260 // for the layered rate control which involves cumulative buffer levels for
261 // the temporal layers. Allow for using the timestamp(pts) delta for the
262 // framerate when the set_ref_frame_config is used.
update_buffer_level_svc_preencode(VP9_COMP * cpi)263 static void update_buffer_level_svc_preencode(VP9_COMP *cpi) {
264 SVC *const svc = &cpi->svc;
265 int i;
266 // Set this to 1 to use timestamp delta for "framerate" under
267 // ref_frame_config usage.
268 int use_timestamp = 1;
269 const int64_t ts_delta =
270 svc->time_stamp_superframe - svc->time_stamp_prev[svc->spatial_layer_id];
271 for (i = svc->temporal_layer_id; i < svc->number_temporal_layers; ++i) {
272 const int layer =
273 LAYER_IDS_TO_IDX(svc->spatial_layer_id, i, svc->number_temporal_layers);
274 LAYER_CONTEXT *const lc = &svc->layer_context[layer];
275 RATE_CONTROL *const lrc = &lc->rc;
276 if (use_timestamp && cpi->svc.use_set_ref_frame_config &&
277 svc->number_temporal_layers == 1 && ts_delta > 0 &&
278 svc->current_superframe > 0) {
279 // TODO(marpan): This may need to be modified for temporal layers.
280 const double framerate_pts = 10000000.0 / ts_delta;
281 lrc->bits_off_target += (int)round(lc->target_bandwidth / framerate_pts);
282 } else {
283 lrc->bits_off_target += (int)round(lc->target_bandwidth / lc->framerate);
284 }
285 // Clip buffer level to maximum buffer size for the layer.
286 lrc->bits_off_target =
287 VPXMIN(lrc->bits_off_target, lrc->maximum_buffer_size);
288 lrc->buffer_level = lrc->bits_off_target;
289 if (i == svc->temporal_layer_id) {
290 cpi->rc.bits_off_target = lrc->bits_off_target;
291 cpi->rc.buffer_level = lrc->buffer_level;
292 }
293 }
294 }
295
296 // Update the buffer level for higher temporal layers, given the encoded current
297 // temporal layer.
update_layer_buffer_level_postencode(SVC * svc,int encoded_frame_size)298 static void update_layer_buffer_level_postencode(SVC *svc,
299 int encoded_frame_size) {
300 int i = 0;
301 const int current_temporal_layer = svc->temporal_layer_id;
302 for (i = current_temporal_layer + 1; i < svc->number_temporal_layers; ++i) {
303 const int layer =
304 LAYER_IDS_TO_IDX(svc->spatial_layer_id, i, svc->number_temporal_layers);
305 LAYER_CONTEXT *lc = &svc->layer_context[layer];
306 RATE_CONTROL *lrc = &lc->rc;
307 lrc->bits_off_target -= encoded_frame_size;
308 // Clip buffer level to maximum buffer size for the layer.
309 lrc->bits_off_target =
310 VPXMIN(lrc->bits_off_target, lrc->maximum_buffer_size);
311 lrc->buffer_level = lrc->bits_off_target;
312 }
313 }
314
315 // Update the buffer level after encoding with encoded frame size.
update_buffer_level_postencode(VP9_COMP * cpi,int encoded_frame_size)316 static void update_buffer_level_postencode(VP9_COMP *cpi,
317 int encoded_frame_size) {
318 RATE_CONTROL *const rc = &cpi->rc;
319 rc->bits_off_target -= encoded_frame_size;
320 // Clip the buffer level to the maximum specified buffer size.
321 rc->bits_off_target = VPXMIN(rc->bits_off_target, rc->maximum_buffer_size);
322 // For screen-content mode, and if frame-dropper is off, don't let buffer
323 // level go below threshold, given here as -rc->maximum_ buffer_size.
324 if (cpi->oxcf.content == VP9E_CONTENT_SCREEN &&
325 cpi->oxcf.drop_frames_water_mark == 0)
326 rc->bits_off_target = VPXMAX(rc->bits_off_target, -rc->maximum_buffer_size);
327
328 rc->buffer_level = rc->bits_off_target;
329
330 if (is_one_pass_svc(cpi)) {
331 update_layer_buffer_level_postencode(&cpi->svc, encoded_frame_size);
332 }
333 }
334
vp9_rc_get_default_min_gf_interval(int width,int height,double framerate)335 int vp9_rc_get_default_min_gf_interval(int width, int height,
336 double framerate) {
337 // Assume we do not need any constraint lower than 4K 20 fps
338 static const double factor_safe = 3840 * 2160 * 20.0;
339 const double factor = width * height * framerate;
340 const int default_interval =
341 clamp((int)(framerate * 0.125), MIN_GF_INTERVAL, MAX_GF_INTERVAL);
342
343 if (factor <= factor_safe)
344 return default_interval;
345 else
346 return VPXMAX(default_interval,
347 (int)(MIN_GF_INTERVAL * factor / factor_safe + 0.5));
348 // Note this logic makes:
349 // 4K24: 5
350 // 4K30: 6
351 // 4K60: 12
352 }
353
vp9_rc_get_default_max_gf_interval(double framerate,int min_gf_interval)354 int vp9_rc_get_default_max_gf_interval(double framerate, int min_gf_interval) {
355 int interval = VPXMIN(MAX_GF_INTERVAL, (int)(framerate * 0.75));
356 interval += (interval & 0x01); // Round to even value
357 return VPXMAX(interval, min_gf_interval);
358 }
359
vp9_rc_init(const VP9EncoderConfig * oxcf,int pass,RATE_CONTROL * rc)360 void vp9_rc_init(const VP9EncoderConfig *oxcf, int pass, RATE_CONTROL *rc) {
361 int i;
362
363 if (pass == 0 && oxcf->rc_mode == VPX_CBR) {
364 rc->avg_frame_qindex[KEY_FRAME] = oxcf->worst_allowed_q;
365 rc->avg_frame_qindex[INTER_FRAME] = oxcf->worst_allowed_q;
366 } else {
367 rc->avg_frame_qindex[KEY_FRAME] =
368 (oxcf->worst_allowed_q + oxcf->best_allowed_q) / 2;
369 rc->avg_frame_qindex[INTER_FRAME] =
370 (oxcf->worst_allowed_q + oxcf->best_allowed_q) / 2;
371 }
372
373 rc->last_q[KEY_FRAME] = oxcf->best_allowed_q;
374 rc->last_q[INTER_FRAME] = oxcf->worst_allowed_q;
375
376 rc->buffer_level = rc->starting_buffer_level;
377 rc->bits_off_target = rc->starting_buffer_level;
378
379 rc->rolling_target_bits = rc->avg_frame_bandwidth;
380 rc->rolling_actual_bits = rc->avg_frame_bandwidth;
381 rc->long_rolling_target_bits = rc->avg_frame_bandwidth;
382 rc->long_rolling_actual_bits = rc->avg_frame_bandwidth;
383
384 rc->total_actual_bits = 0;
385 rc->total_target_bits = 0;
386 rc->total_target_vs_actual = 0;
387 rc->avg_frame_low_motion = 0;
388 rc->count_last_scene_change = 0;
389 rc->af_ratio_onepass_vbr = 10;
390 rc->prev_avg_source_sad_lag = 0;
391 rc->high_source_sad = 0;
392 rc->reset_high_source_sad = 0;
393 rc->high_source_sad_lagindex = -1;
394 rc->high_num_blocks_with_motion = 0;
395 rc->hybrid_intra_scene_change = 0;
396 rc->re_encode_maxq_scene_change = 0;
397 rc->alt_ref_gf_group = 0;
398 rc->last_frame_is_src_altref = 0;
399 rc->fac_active_worst_inter = 150;
400 rc->fac_active_worst_gf = 100;
401 rc->force_qpmin = 0;
402 for (i = 0; i < MAX_LAG_BUFFERS; ++i) rc->avg_source_sad[i] = 0;
403 rc->frames_to_key = 0;
404 rc->frames_since_key = 8; // Sensible default for first frame.
405 rc->this_key_frame_forced = 0;
406 rc->next_key_frame_forced = 0;
407 rc->source_alt_ref_pending = 0;
408 rc->source_alt_ref_active = 0;
409
410 rc->frames_till_gf_update_due = 0;
411 rc->constrain_gf_key_freq_onepass_vbr = 1;
412 rc->ni_av_qi = oxcf->worst_allowed_q;
413 rc->ni_tot_qi = 0;
414 rc->ni_frames = 0;
415
416 rc->tot_q = 0.0;
417 rc->avg_q = vp9_convert_qindex_to_q(oxcf->worst_allowed_q, oxcf->bit_depth);
418
419 for (i = 0; i < RATE_FACTOR_LEVELS; ++i) {
420 rc->rate_correction_factors[i] = 1.0;
421 rc->damped_adjustment[i] = 0;
422 }
423
424 rc->min_gf_interval = oxcf->min_gf_interval;
425 rc->max_gf_interval = oxcf->max_gf_interval;
426 if (rc->min_gf_interval == 0)
427 rc->min_gf_interval = vp9_rc_get_default_min_gf_interval(
428 oxcf->width, oxcf->height, oxcf->init_framerate);
429 if (rc->max_gf_interval == 0)
430 rc->max_gf_interval = vp9_rc_get_default_max_gf_interval(
431 oxcf->init_framerate, rc->min_gf_interval);
432 rc->baseline_gf_interval = (rc->min_gf_interval + rc->max_gf_interval) / 2;
433 if ((oxcf->pass == 0) && (oxcf->rc_mode == VPX_Q)) {
434 rc->static_scene_max_gf_interval = FIXED_GF_INTERVAL;
435 } else {
436 rc->static_scene_max_gf_interval = MAX_STATIC_GF_GROUP_LENGTH;
437 }
438
439 rc->force_max_q = 0;
440 rc->last_post_encode_dropped_scene_change = 0;
441 rc->use_post_encode_drop = 0;
442 rc->ext_use_post_encode_drop = 0;
443 rc->disable_overshoot_maxq_cbr = 0;
444 rc->arf_active_best_quality_adjustment_factor = 1.0;
445 rc->arf_increase_active_best_quality = 0;
446 rc->preserve_arf_as_gld = 0;
447 rc->preserve_next_arf_as_gld = 0;
448 rc->show_arf_as_gld = 0;
449 }
450
check_buffer_above_thresh(VP9_COMP * cpi,int drop_mark)451 static int check_buffer_above_thresh(VP9_COMP *cpi, int drop_mark) {
452 SVC *svc = &cpi->svc;
453 if (!cpi->use_svc || cpi->svc.framedrop_mode != FULL_SUPERFRAME_DROP) {
454 RATE_CONTROL *const rc = &cpi->rc;
455 return (rc->buffer_level > drop_mark);
456 } else {
457 int i;
458 // For SVC in the FULL_SUPERFRAME_DROP): the condition on
459 // buffer (if its above threshold, so no drop) is checked on current and
460 // upper spatial layers. If any spatial layer is not above threshold then
461 // we return 0.
462 for (i = svc->spatial_layer_id; i < svc->number_spatial_layers; ++i) {
463 const int layer = LAYER_IDS_TO_IDX(i, svc->temporal_layer_id,
464 svc->number_temporal_layers);
465 LAYER_CONTEXT *lc = &svc->layer_context[layer];
466 RATE_CONTROL *lrc = &lc->rc;
467 // Exclude check for layer whose bitrate is 0.
468 if (lc->target_bandwidth > 0) {
469 const int drop_mark_layer = (int)(cpi->svc.framedrop_thresh[i] *
470 lrc->optimal_buffer_level / 100);
471 if (!(lrc->buffer_level > drop_mark_layer)) return 0;
472 }
473 }
474 return 1;
475 }
476 }
477
check_buffer_below_thresh(VP9_COMP * cpi,int drop_mark)478 static int check_buffer_below_thresh(VP9_COMP *cpi, int drop_mark) {
479 SVC *svc = &cpi->svc;
480 if (!cpi->use_svc || cpi->svc.framedrop_mode == LAYER_DROP) {
481 RATE_CONTROL *const rc = &cpi->rc;
482 return (rc->buffer_level <= drop_mark);
483 } else {
484 int i;
485 // For SVC in the constrained framedrop mode (svc->framedrop_mode =
486 // CONSTRAINED_LAYER_DROP or FULL_SUPERFRAME_DROP): the condition on
487 // buffer (if its below threshold, so drop frame) is checked on current
488 // and upper spatial layers. For FULL_SUPERFRAME_DROP mode if any
489 // spatial layer is <= threshold, then we return 1 (drop).
490 for (i = svc->spatial_layer_id; i < svc->number_spatial_layers; ++i) {
491 const int layer = LAYER_IDS_TO_IDX(i, svc->temporal_layer_id,
492 svc->number_temporal_layers);
493 LAYER_CONTEXT *lc = &svc->layer_context[layer];
494 RATE_CONTROL *lrc = &lc->rc;
495 // Exclude check for layer whose bitrate is 0.
496 if (lc->target_bandwidth > 0) {
497 const int drop_mark_layer = (int)(cpi->svc.framedrop_thresh[i] *
498 lrc->optimal_buffer_level / 100);
499 if (cpi->svc.framedrop_mode == FULL_SUPERFRAME_DROP) {
500 if (lrc->buffer_level <= drop_mark_layer) return 1;
501 } else {
502 if (!(lrc->buffer_level <= drop_mark_layer)) return 0;
503 }
504 }
505 }
506 if (cpi->svc.framedrop_mode == FULL_SUPERFRAME_DROP)
507 return 0;
508 else
509 return 1;
510 }
511 }
512
vp9_test_drop(VP9_COMP * cpi)513 int vp9_test_drop(VP9_COMP *cpi) {
514 const VP9EncoderConfig *oxcf = &cpi->oxcf;
515 RATE_CONTROL *const rc = &cpi->rc;
516 SVC *svc = &cpi->svc;
517 int drop_frames_water_mark = oxcf->drop_frames_water_mark;
518 if (cpi->use_svc) {
519 // If we have dropped max_consec_drop frames, then we don't
520 // drop this spatial layer, and reset counter to 0.
521 if (svc->drop_count[svc->spatial_layer_id] == svc->max_consec_drop) {
522 svc->drop_count[svc->spatial_layer_id] = 0;
523 return 0;
524 } else {
525 drop_frames_water_mark = svc->framedrop_thresh[svc->spatial_layer_id];
526 }
527 }
528 if (!drop_frames_water_mark ||
529 (svc->spatial_layer_id > 0 &&
530 svc->framedrop_mode == FULL_SUPERFRAME_DROP)) {
531 return 0;
532 } else {
533 if ((rc->buffer_level < 0 && svc->framedrop_mode != FULL_SUPERFRAME_DROP) ||
534 (check_buffer_below_thresh(cpi, -1) &&
535 svc->framedrop_mode == FULL_SUPERFRAME_DROP)) {
536 // Always drop if buffer is below 0.
537 return 1;
538 } else {
539 // If buffer is below drop_mark, for now just drop every other frame
540 // (starting with the next frame) until it increases back over drop_mark.
541 int drop_mark =
542 (int)(drop_frames_water_mark * rc->optimal_buffer_level / 100);
543 if (check_buffer_above_thresh(cpi, drop_mark) &&
544 (rc->decimation_factor > 0)) {
545 --rc->decimation_factor;
546 } else if (check_buffer_below_thresh(cpi, drop_mark) &&
547 rc->decimation_factor == 0) {
548 rc->decimation_factor = 1;
549 }
550 if (rc->decimation_factor > 0) {
551 if (rc->decimation_count > 0) {
552 --rc->decimation_count;
553 return 1;
554 } else {
555 rc->decimation_count = rc->decimation_factor;
556 return 0;
557 }
558 } else {
559 rc->decimation_count = 0;
560 return 0;
561 }
562 }
563 }
564 }
565
post_encode_drop_cbr(VP9_COMP * cpi,size_t * size)566 int post_encode_drop_cbr(VP9_COMP *cpi, size_t *size) {
567 size_t frame_size = *size << 3;
568 int64_t new_buffer_level =
569 cpi->rc.buffer_level + cpi->rc.avg_frame_bandwidth - (int64_t)frame_size;
570
571 // For now we drop if new buffer level (given the encoded frame size) goes
572 // below 0.
573 if (new_buffer_level < 0) {
574 *size = 0;
575 vp9_rc_postencode_update_drop_frame(cpi);
576 // Update flag to use for next frame.
577 if (cpi->rc.high_source_sad ||
578 (cpi->use_svc && cpi->svc.high_source_sad_superframe))
579 cpi->rc.last_post_encode_dropped_scene_change = 1;
580 // Force max_q on next fame.
581 cpi->rc.force_max_q = 1;
582 cpi->rc.avg_frame_qindex[INTER_FRAME] = cpi->rc.worst_quality;
583 cpi->last_frame_dropped = 1;
584 cpi->ext_refresh_frame_flags_pending = 0;
585 if (cpi->use_svc) {
586 SVC *svc = &cpi->svc;
587 int sl = 0;
588 int tl = 0;
589 svc->last_layer_dropped[svc->spatial_layer_id] = 1;
590 svc->drop_spatial_layer[svc->spatial_layer_id] = 1;
591 svc->drop_count[svc->spatial_layer_id]++;
592 svc->skip_enhancement_layer = 1;
593 // Postencode drop is only checked on base spatial layer,
594 // for now if max-q is set on base we force it on all layers.
595 for (sl = 0; sl < svc->number_spatial_layers; ++sl) {
596 for (tl = 0; tl < svc->number_temporal_layers; ++tl) {
597 const int layer =
598 LAYER_IDS_TO_IDX(sl, tl, svc->number_temporal_layers);
599 LAYER_CONTEXT *lc = &svc->layer_context[layer];
600 RATE_CONTROL *lrc = &lc->rc;
601 lrc->force_max_q = 1;
602 lrc->avg_frame_qindex[INTER_FRAME] = cpi->rc.worst_quality;
603 }
604 }
605 }
606 return 1;
607 }
608
609 cpi->rc.force_max_q = 0;
610 cpi->rc.last_post_encode_dropped_scene_change = 0;
611 return 0;
612 }
613
vp9_rc_drop_frame(VP9_COMP * cpi)614 int vp9_rc_drop_frame(VP9_COMP *cpi) {
615 SVC *svc = &cpi->svc;
616 int svc_prev_layer_dropped = 0;
617 // In the constrained or full_superframe framedrop mode for svc
618 // (framedrop_mode != (LAYER_DROP && CONSTRAINED_FROM_ABOVE)),
619 // if the previous spatial layer was dropped, drop the current spatial layer.
620 if (cpi->use_svc && svc->spatial_layer_id > 0 &&
621 svc->drop_spatial_layer[svc->spatial_layer_id - 1])
622 svc_prev_layer_dropped = 1;
623 if ((svc_prev_layer_dropped && svc->framedrop_mode != LAYER_DROP &&
624 svc->framedrop_mode != CONSTRAINED_FROM_ABOVE_DROP) ||
625 svc->force_drop_constrained_from_above[svc->spatial_layer_id] ||
626 vp9_test_drop(cpi)) {
627 vp9_rc_postencode_update_drop_frame(cpi);
628 cpi->ext_refresh_frame_flags_pending = 0;
629 cpi->last_frame_dropped = 1;
630 if (cpi->use_svc) {
631 svc->last_layer_dropped[svc->spatial_layer_id] = 1;
632 svc->drop_spatial_layer[svc->spatial_layer_id] = 1;
633 svc->drop_count[svc->spatial_layer_id]++;
634 svc->skip_enhancement_layer = 1;
635 if (svc->framedrop_mode == LAYER_DROP ||
636 (svc->framedrop_mode == CONSTRAINED_FROM_ABOVE_DROP &&
637 svc->force_drop_constrained_from_above[svc->number_spatial_layers -
638 1] == 0) ||
639 svc->drop_spatial_layer[0] == 0) {
640 // For the case of constrained drop mode where full superframe is
641 // dropped, we don't increment the svc frame counters.
642 // In particular temporal layer counter (which is incremented in
643 // vp9_inc_frame_in_layer()) won't be incremented, so on a dropped
644 // frame we try the same temporal_layer_id on next incoming frame.
645 // This is to avoid an issue with temporal alignment with full
646 // superframe dropping.
647 vp9_inc_frame_in_layer(cpi);
648 }
649 if (svc->spatial_layer_id == svc->number_spatial_layers - 1) {
650 int i;
651 int all_layers_drop = 1;
652 for (i = 0; i < svc->spatial_layer_id; i++) {
653 if (svc->drop_spatial_layer[i] == 0) {
654 all_layers_drop = 0;
655 break;
656 }
657 }
658 if (all_layers_drop == 1) svc->skip_enhancement_layer = 0;
659 }
660 }
661 return 1;
662 }
663 return 0;
664 }
665
adjust_q_cbr(const VP9_COMP * cpi,int q)666 static int adjust_q_cbr(const VP9_COMP *cpi, int q) {
667 // This makes sure q is between oscillating Qs to prevent resonance.
668 if (!cpi->rc.reset_high_source_sad &&
669 (!cpi->oxcf.gf_cbr_boost_pct ||
670 !(cpi->refresh_alt_ref_frame || cpi->refresh_golden_frame)) &&
671 (cpi->rc.rc_1_frame * cpi->rc.rc_2_frame == -1) &&
672 cpi->rc.q_1_frame != cpi->rc.q_2_frame) {
673 int qclamp = clamp(q, VPXMIN(cpi->rc.q_1_frame, cpi->rc.q_2_frame),
674 VPXMAX(cpi->rc.q_1_frame, cpi->rc.q_2_frame));
675 // If the previous frame had overshoot and the current q needs to increase
676 // above the clamped value, reduce the clamp for faster reaction to
677 // overshoot.
678 if (cpi->rc.rc_1_frame == -1 && q > qclamp)
679 q = (q + qclamp) >> 1;
680 else
681 q = qclamp;
682 }
683 if (cpi->oxcf.content == VP9E_CONTENT_SCREEN)
684 vp9_cyclic_refresh_limit_q(cpi, &q);
685 return VPXMAX(VPXMIN(q, cpi->rc.worst_quality), cpi->rc.best_quality);
686 }
687
get_rate_correction_factor(const VP9_COMP * cpi)688 static double get_rate_correction_factor(const VP9_COMP *cpi) {
689 const RATE_CONTROL *const rc = &cpi->rc;
690 const VP9_COMMON *const cm = &cpi->common;
691 double rcf;
692
693 if (frame_is_intra_only(cm)) {
694 rcf = rc->rate_correction_factors[KF_STD];
695 } else if (cpi->oxcf.pass == 2) {
696 RATE_FACTOR_LEVEL rf_lvl =
697 cpi->twopass.gf_group.rf_level[cpi->twopass.gf_group.index];
698 rcf = rc->rate_correction_factors[rf_lvl];
699 } else {
700 if ((cpi->refresh_alt_ref_frame || cpi->refresh_golden_frame) &&
701 !rc->is_src_frame_alt_ref && !cpi->use_svc &&
702 (cpi->oxcf.rc_mode != VPX_CBR || cpi->oxcf.gf_cbr_boost_pct > 100))
703 rcf = rc->rate_correction_factors[GF_ARF_STD];
704 else
705 rcf = rc->rate_correction_factors[INTER_NORMAL];
706 }
707 rcf *= rcf_mult[rc->frame_size_selector];
708 return fclamp(rcf, MIN_BPB_FACTOR, MAX_BPB_FACTOR);
709 }
710
set_rate_correction_factor(VP9_COMP * cpi,double factor)711 static void set_rate_correction_factor(VP9_COMP *cpi, double factor) {
712 RATE_CONTROL *const rc = &cpi->rc;
713 const VP9_COMMON *const cm = &cpi->common;
714
715 // Normalize RCF to account for the size-dependent scaling factor.
716 factor /= rcf_mult[cpi->rc.frame_size_selector];
717
718 factor = fclamp(factor, MIN_BPB_FACTOR, MAX_BPB_FACTOR);
719
720 if (frame_is_intra_only(cm)) {
721 rc->rate_correction_factors[KF_STD] = factor;
722 } else if (cpi->oxcf.pass == 2) {
723 RATE_FACTOR_LEVEL rf_lvl =
724 cpi->twopass.gf_group.rf_level[cpi->twopass.gf_group.index];
725 rc->rate_correction_factors[rf_lvl] = factor;
726 } else {
727 if ((cpi->refresh_alt_ref_frame || cpi->refresh_golden_frame) &&
728 !rc->is_src_frame_alt_ref && !cpi->use_svc &&
729 (cpi->oxcf.rc_mode != VPX_CBR || cpi->oxcf.gf_cbr_boost_pct > 100))
730 rc->rate_correction_factors[GF_ARF_STD] = factor;
731 else
732 rc->rate_correction_factors[INTER_NORMAL] = factor;
733 }
734 }
735
vp9_rc_update_rate_correction_factors(VP9_COMP * cpi)736 void vp9_rc_update_rate_correction_factors(VP9_COMP *cpi) {
737 const VP9_COMMON *const cm = &cpi->common;
738 int correction_factor = 100;
739 double rate_correction_factor = get_rate_correction_factor(cpi);
740 double adjustment_limit;
741 RATE_FACTOR_LEVEL rf_lvl =
742 cpi->twopass.gf_group.rf_level[cpi->twopass.gf_group.index];
743
744 int projected_size_based_on_q = 0;
745
746 // Do not update the rate factors for arf overlay frames.
747 if (cpi->rc.is_src_frame_alt_ref) return;
748
749 // Clear down mmx registers to allow floating point in what follows
750 vpx_clear_system_state();
751
752 // Work out how big we would have expected the frame to be at this Q given
753 // the current correction factor.
754 // Stay in double to avoid int overflow when values are large
755 if (cpi->oxcf.aq_mode == CYCLIC_REFRESH_AQ && cpi->common.seg.enabled) {
756 projected_size_based_on_q =
757 vp9_cyclic_refresh_estimate_bits_at_q(cpi, rate_correction_factor);
758 } else {
759 FRAME_TYPE frame_type = cm->intra_only ? KEY_FRAME : cm->frame_type;
760 projected_size_based_on_q =
761 vp9_estimate_bits_at_q(frame_type, cm->base_qindex, cm->MBs,
762 rate_correction_factor, cm->bit_depth);
763 }
764 // Work out a size correction factor.
765 if (projected_size_based_on_q > FRAME_OVERHEAD_BITS)
766 correction_factor = (int)((100 * (int64_t)cpi->rc.projected_frame_size) /
767 projected_size_based_on_q);
768
769 // Do not use damped adjustment for the first frame of each frame type
770 if (!cpi->rc.damped_adjustment[rf_lvl]) {
771 adjustment_limit = 1.0;
772 cpi->rc.damped_adjustment[rf_lvl] = 1;
773 } else {
774 // More heavily damped adjustment used if we have been oscillating either
775 // side of target.
776 adjustment_limit =
777 0.25 + 0.5 * VPXMIN(1, fabs(log10(0.01 * correction_factor)));
778 }
779
780 cpi->rc.q_2_frame = cpi->rc.q_1_frame;
781 cpi->rc.q_1_frame = cm->base_qindex;
782 cpi->rc.rc_2_frame = cpi->rc.rc_1_frame;
783 if (correction_factor > 110)
784 cpi->rc.rc_1_frame = -1;
785 else if (correction_factor < 90)
786 cpi->rc.rc_1_frame = 1;
787 else
788 cpi->rc.rc_1_frame = 0;
789
790 // Turn off oscilation detection in the case of massive overshoot.
791 if (cpi->rc.rc_1_frame == -1 && cpi->rc.rc_2_frame == 1 &&
792 correction_factor > 1000) {
793 cpi->rc.rc_2_frame = 0;
794 }
795
796 if (correction_factor > 102) {
797 // We are not already at the worst allowable quality
798 correction_factor =
799 (int)(100 + ((correction_factor - 100) * adjustment_limit));
800 rate_correction_factor = (rate_correction_factor * correction_factor) / 100;
801 // Keep rate_correction_factor within limits
802 if (rate_correction_factor > MAX_BPB_FACTOR)
803 rate_correction_factor = MAX_BPB_FACTOR;
804 } else if (correction_factor < 99) {
805 // We are not already at the best allowable quality
806 correction_factor =
807 (int)(100 - ((100 - correction_factor) * adjustment_limit));
808 rate_correction_factor = (rate_correction_factor * correction_factor) / 100;
809
810 // Keep rate_correction_factor within limits
811 if (rate_correction_factor < MIN_BPB_FACTOR)
812 rate_correction_factor = MIN_BPB_FACTOR;
813 }
814
815 set_rate_correction_factor(cpi, rate_correction_factor);
816 }
817
vp9_rc_regulate_q(const VP9_COMP * cpi,int target_bits_per_frame,int active_best_quality,int active_worst_quality)818 int vp9_rc_regulate_q(const VP9_COMP *cpi, int target_bits_per_frame,
819 int active_best_quality, int active_worst_quality) {
820 const VP9_COMMON *const cm = &cpi->common;
821 CYCLIC_REFRESH *const cr = cpi->cyclic_refresh;
822 int q = active_worst_quality;
823 int last_error = INT_MAX;
824 int i, target_bits_per_mb, bits_per_mb_at_this_q;
825 const double correction_factor = get_rate_correction_factor(cpi);
826
827 // Calculate required scaling factor based on target frame size and size of
828 // frame produced using previous Q.
829 target_bits_per_mb =
830 (int)(((uint64_t)target_bits_per_frame << BPER_MB_NORMBITS) / cm->MBs);
831
832 i = active_best_quality;
833
834 do {
835 if (cpi->oxcf.aq_mode == CYCLIC_REFRESH_AQ && cr->apply_cyclic_refresh &&
836 (!cpi->oxcf.gf_cbr_boost_pct || !cpi->refresh_golden_frame)) {
837 bits_per_mb_at_this_q =
838 (int)vp9_cyclic_refresh_rc_bits_per_mb(cpi, i, correction_factor);
839 } else {
840 FRAME_TYPE frame_type = cm->intra_only ? KEY_FRAME : cm->frame_type;
841 bits_per_mb_at_this_q = (int)vp9_rc_bits_per_mb(
842 frame_type, i, correction_factor, cm->bit_depth);
843 }
844
845 if (bits_per_mb_at_this_q <= target_bits_per_mb) {
846 if ((target_bits_per_mb - bits_per_mb_at_this_q) <= last_error)
847 q = i;
848 else
849 q = i - 1;
850
851 break;
852 } else {
853 last_error = bits_per_mb_at_this_q - target_bits_per_mb;
854 }
855 } while (++i <= active_worst_quality);
856
857 // Adjustment to q for CBR mode.
858 if (cpi->oxcf.rc_mode == VPX_CBR) return adjust_q_cbr(cpi, q);
859
860 return q;
861 }
862
get_active_quality(int q,int gfu_boost,int low,int high,int * low_motion_minq,int * high_motion_minq)863 static int get_active_quality(int q, int gfu_boost, int low, int high,
864 int *low_motion_minq, int *high_motion_minq) {
865 if (gfu_boost > high) {
866 return low_motion_minq[q];
867 } else if (gfu_boost < low) {
868 return high_motion_minq[q];
869 } else {
870 const int gap = high - low;
871 const int offset = high - gfu_boost;
872 const int qdiff = high_motion_minq[q] - low_motion_minq[q];
873 const int adjustment = ((offset * qdiff) + (gap >> 1)) / gap;
874 return low_motion_minq[q] + adjustment;
875 }
876 }
877
get_kf_active_quality(const RATE_CONTROL * const rc,int q,vpx_bit_depth_t bit_depth)878 static int get_kf_active_quality(const RATE_CONTROL *const rc, int q,
879 vpx_bit_depth_t bit_depth) {
880 int *kf_low_motion_minq;
881 int *kf_high_motion_minq;
882 ASSIGN_MINQ_TABLE(bit_depth, kf_low_motion_minq);
883 ASSIGN_MINQ_TABLE(bit_depth, kf_high_motion_minq);
884 return get_active_quality(q, rc->kf_boost, kf_low, kf_high,
885 kf_low_motion_minq, kf_high_motion_minq);
886 }
887
get_gf_active_quality(const VP9_COMP * const cpi,int q,vpx_bit_depth_t bit_depth)888 static int get_gf_active_quality(const VP9_COMP *const cpi, int q,
889 vpx_bit_depth_t bit_depth) {
890 const GF_GROUP *const gf_group = &cpi->twopass.gf_group;
891 const RATE_CONTROL *const rc = &cpi->rc;
892
893 int *arfgf_low_motion_minq;
894 int *arfgf_high_motion_minq;
895 const int gfu_boost = cpi->multi_layer_arf
896 ? gf_group->gfu_boost[gf_group->index]
897 : rc->gfu_boost;
898 ASSIGN_MINQ_TABLE(bit_depth, arfgf_low_motion_minq);
899 ASSIGN_MINQ_TABLE(bit_depth, arfgf_high_motion_minq);
900 return get_active_quality(q, gfu_boost, gf_low, gf_high,
901 arfgf_low_motion_minq, arfgf_high_motion_minq);
902 }
903
calc_active_worst_quality_one_pass_vbr(const VP9_COMP * cpi)904 static int calc_active_worst_quality_one_pass_vbr(const VP9_COMP *cpi) {
905 const RATE_CONTROL *const rc = &cpi->rc;
906 const unsigned int curr_frame = cpi->common.current_video_frame;
907 int active_worst_quality;
908
909 if (cpi->common.frame_type == KEY_FRAME) {
910 active_worst_quality =
911 curr_frame == 0 ? rc->worst_quality : rc->last_q[KEY_FRAME] << 1;
912 } else {
913 if (!rc->is_src_frame_alt_ref && !cpi->use_svc &&
914 (cpi->refresh_golden_frame || cpi->refresh_alt_ref_frame)) {
915 active_worst_quality =
916 curr_frame == 1
917 ? rc->last_q[KEY_FRAME] * 5 >> 2
918 : rc->last_q[INTER_FRAME] * rc->fac_active_worst_gf / 100;
919 } else {
920 active_worst_quality = curr_frame == 1
921 ? rc->last_q[KEY_FRAME] << 1
922 : rc->avg_frame_qindex[INTER_FRAME] *
923 rc->fac_active_worst_inter / 100;
924 }
925 }
926 return VPXMIN(active_worst_quality, rc->worst_quality);
927 }
928
929 // Adjust active_worst_quality level based on buffer level.
calc_active_worst_quality_one_pass_cbr(const VP9_COMP * cpi)930 static int calc_active_worst_quality_one_pass_cbr(const VP9_COMP *cpi) {
931 // Adjust active_worst_quality: If buffer is above the optimal/target level,
932 // bring active_worst_quality down depending on fullness of buffer.
933 // If buffer is below the optimal level, let the active_worst_quality go from
934 // ambient Q (at buffer = optimal level) to worst_quality level
935 // (at buffer = critical level).
936 const VP9_COMMON *const cm = &cpi->common;
937 const RATE_CONTROL *rc = &cpi->rc;
938 // Buffer level below which we push active_worst to worst_quality.
939 int64_t critical_level = rc->optimal_buffer_level >> 3;
940 int64_t buff_lvl_step = 0;
941 int adjustment = 0;
942 int active_worst_quality;
943 int ambient_qp;
944 unsigned int num_frames_weight_key = 5 * cpi->svc.number_temporal_layers;
945 if (frame_is_intra_only(cm) || rc->reset_high_source_sad || rc->force_max_q)
946 return rc->worst_quality;
947 // For ambient_qp we use minimum of avg_frame_qindex[KEY_FRAME/INTER_FRAME]
948 // for the first few frames following key frame. These are both initialized
949 // to worst_quality and updated with (3/4, 1/4) average in postencode_update.
950 // So for first few frames following key, the qp of that key frame is weighted
951 // into the active_worst_quality setting.
952 ambient_qp = (cm->current_video_frame < num_frames_weight_key)
953 ? VPXMIN(rc->avg_frame_qindex[INTER_FRAME],
954 rc->avg_frame_qindex[KEY_FRAME])
955 : rc->avg_frame_qindex[INTER_FRAME];
956 active_worst_quality = VPXMIN(rc->worst_quality, (ambient_qp * 5) >> 2);
957 // For SVC if the current base spatial layer was key frame, use the QP from
958 // that base layer for ambient_qp.
959 if (cpi->use_svc && cpi->svc.spatial_layer_id > 0) {
960 int layer = LAYER_IDS_TO_IDX(0, cpi->svc.temporal_layer_id,
961 cpi->svc.number_temporal_layers);
962 const LAYER_CONTEXT *lc = &cpi->svc.layer_context[layer];
963 if (lc->is_key_frame) {
964 const RATE_CONTROL *lrc = &lc->rc;
965 ambient_qp = VPXMIN(ambient_qp, lrc->last_q[KEY_FRAME]);
966 active_worst_quality = VPXMIN(rc->worst_quality, (ambient_qp * 9) >> 3);
967 }
968 }
969 if (rc->buffer_level > rc->optimal_buffer_level) {
970 // Adjust down.
971 // Maximum limit for down adjustment ~30%; make it lower for screen content.
972 int max_adjustment_down = active_worst_quality / 3;
973 if (cpi->oxcf.content == VP9E_CONTENT_SCREEN)
974 max_adjustment_down = active_worst_quality >> 3;
975 if (max_adjustment_down) {
976 buff_lvl_step = ((rc->maximum_buffer_size - rc->optimal_buffer_level) /
977 max_adjustment_down);
978 if (buff_lvl_step)
979 adjustment = (int)((rc->buffer_level - rc->optimal_buffer_level) /
980 buff_lvl_step);
981 active_worst_quality -= adjustment;
982 }
983 } else if (rc->buffer_level > critical_level) {
984 // Adjust up from ambient Q.
985 if (critical_level) {
986 buff_lvl_step = (rc->optimal_buffer_level - critical_level);
987 if (buff_lvl_step) {
988 adjustment = (int)((rc->worst_quality - ambient_qp) *
989 (rc->optimal_buffer_level - rc->buffer_level) /
990 buff_lvl_step);
991 }
992 active_worst_quality = ambient_qp + adjustment;
993 }
994 } else {
995 // Set to worst_quality if buffer is below critical level.
996 active_worst_quality = rc->worst_quality;
997 }
998 return active_worst_quality;
999 }
1000
rc_pick_q_and_bounds_one_pass_cbr(const VP9_COMP * cpi,int * bottom_index,int * top_index)1001 static int rc_pick_q_and_bounds_one_pass_cbr(const VP9_COMP *cpi,
1002 int *bottom_index,
1003 int *top_index) {
1004 const VP9_COMMON *const cm = &cpi->common;
1005 const RATE_CONTROL *const rc = &cpi->rc;
1006 int active_best_quality;
1007 int active_worst_quality = calc_active_worst_quality_one_pass_cbr(cpi);
1008 int q;
1009 int *rtc_minq;
1010 ASSIGN_MINQ_TABLE(cm->bit_depth, rtc_minq);
1011
1012 if (frame_is_intra_only(cm)) {
1013 active_best_quality = rc->best_quality;
1014 // Handle the special case for key frames forced when we have reached
1015 // the maximum key frame interval. Here force the Q to a range
1016 // based on the ambient Q to reduce the risk of popping.
1017 if (rc->this_key_frame_forced) {
1018 int qindex = rc->last_boosted_qindex;
1019 double last_boosted_q = vp9_convert_qindex_to_q(qindex, cm->bit_depth);
1020 int delta_qindex = vp9_compute_qdelta(
1021 rc, last_boosted_q, (last_boosted_q * 0.75), cm->bit_depth);
1022 active_best_quality = VPXMAX(qindex + delta_qindex, rc->best_quality);
1023 } else if (cm->current_video_frame > 0) {
1024 // not first frame of one pass and kf_boost is set
1025 double q_adj_factor = 1.0;
1026 double q_val;
1027
1028 active_best_quality = get_kf_active_quality(
1029 rc, rc->avg_frame_qindex[KEY_FRAME], cm->bit_depth);
1030
1031 // Allow somewhat lower kf minq with small image formats.
1032 if ((cm->width * cm->height) <= (352 * 288)) {
1033 q_adj_factor -= 0.25;
1034 }
1035
1036 // Convert the adjustment factor to a qindex delta
1037 // on active_best_quality.
1038 q_val = vp9_convert_qindex_to_q(active_best_quality, cm->bit_depth);
1039 active_best_quality +=
1040 vp9_compute_qdelta(rc, q_val, q_val * q_adj_factor, cm->bit_depth);
1041 }
1042 } else if (!rc->is_src_frame_alt_ref && !cpi->use_svc &&
1043 cpi->oxcf.gf_cbr_boost_pct &&
1044 (cpi->refresh_golden_frame || cpi->refresh_alt_ref_frame)) {
1045 // Use the lower of active_worst_quality and recent
1046 // average Q as basis for GF/ARF best Q limit unless last frame was
1047 // a key frame.
1048 if (rc->frames_since_key > 1 &&
1049 rc->avg_frame_qindex[INTER_FRAME] < active_worst_quality) {
1050 q = rc->avg_frame_qindex[INTER_FRAME];
1051 } else {
1052 q = active_worst_quality;
1053 }
1054 active_best_quality = get_gf_active_quality(cpi, q, cm->bit_depth);
1055 } else {
1056 // Use the lower of active_worst_quality and recent/average Q.
1057 if (cm->current_video_frame > 1) {
1058 if (rc->avg_frame_qindex[INTER_FRAME] < active_worst_quality)
1059 active_best_quality = rtc_minq[rc->avg_frame_qindex[INTER_FRAME]];
1060 else
1061 active_best_quality = rtc_minq[active_worst_quality];
1062 } else {
1063 if (rc->avg_frame_qindex[KEY_FRAME] < active_worst_quality)
1064 active_best_quality = rtc_minq[rc->avg_frame_qindex[KEY_FRAME]];
1065 else
1066 active_best_quality = rtc_minq[active_worst_quality];
1067 }
1068 }
1069
1070 // Clip the active best and worst quality values to limits
1071 active_best_quality =
1072 clamp(active_best_quality, rc->best_quality, rc->worst_quality);
1073 active_worst_quality =
1074 clamp(active_worst_quality, active_best_quality, rc->worst_quality);
1075
1076 *top_index = active_worst_quality;
1077 *bottom_index = active_best_quality;
1078
1079 // Special case code to try and match quality with forced key frames
1080 if (frame_is_intra_only(cm) && rc->this_key_frame_forced) {
1081 q = rc->last_boosted_qindex;
1082 } else {
1083 q = vp9_rc_regulate_q(cpi, rc->this_frame_target, active_best_quality,
1084 active_worst_quality);
1085 if (q > *top_index) {
1086 // Special case when we are targeting the max allowed rate
1087 if (rc->this_frame_target >= rc->max_frame_bandwidth)
1088 *top_index = q;
1089 else
1090 q = *top_index;
1091 }
1092 }
1093
1094 assert(*top_index <= rc->worst_quality && *top_index >= rc->best_quality);
1095 assert(*bottom_index <= rc->worst_quality &&
1096 *bottom_index >= rc->best_quality);
1097 assert(q <= rc->worst_quality && q >= rc->best_quality);
1098 return q;
1099 }
1100
get_active_cq_level_one_pass(const RATE_CONTROL * rc,const VP9EncoderConfig * const oxcf)1101 static int get_active_cq_level_one_pass(const RATE_CONTROL *rc,
1102 const VP9EncoderConfig *const oxcf) {
1103 static const double cq_adjust_threshold = 0.1;
1104 int active_cq_level = oxcf->cq_level;
1105 if (oxcf->rc_mode == VPX_CQ && rc->total_target_bits > 0) {
1106 const double x = (double)rc->total_actual_bits / rc->total_target_bits;
1107 if (x < cq_adjust_threshold) {
1108 active_cq_level = (int)(active_cq_level * x / cq_adjust_threshold);
1109 }
1110 }
1111 return active_cq_level;
1112 }
1113
1114 #define SMOOTH_PCT_MIN 0.1
1115 #define SMOOTH_PCT_DIV 0.05
get_active_cq_level_two_pass(const TWO_PASS * twopass,const RATE_CONTROL * rc,const VP9EncoderConfig * const oxcf)1116 static int get_active_cq_level_two_pass(const TWO_PASS *twopass,
1117 const RATE_CONTROL *rc,
1118 const VP9EncoderConfig *const oxcf) {
1119 static const double cq_adjust_threshold = 0.1;
1120 int active_cq_level = oxcf->cq_level;
1121 if (oxcf->rc_mode == VPX_CQ) {
1122 if (twopass->mb_smooth_pct > SMOOTH_PCT_MIN) {
1123 active_cq_level -=
1124 (int)((twopass->mb_smooth_pct - SMOOTH_PCT_MIN) / SMOOTH_PCT_DIV);
1125 active_cq_level = VPXMAX(active_cq_level, 0);
1126 }
1127 if (rc->total_target_bits > 0) {
1128 const double x = (double)rc->total_actual_bits / rc->total_target_bits;
1129 if (x < cq_adjust_threshold) {
1130 active_cq_level = (int)(active_cq_level * x / cq_adjust_threshold);
1131 }
1132 }
1133 }
1134 return active_cq_level;
1135 }
1136
rc_pick_q_and_bounds_one_pass_vbr(const VP9_COMP * cpi,int * bottom_index,int * top_index)1137 static int rc_pick_q_and_bounds_one_pass_vbr(const VP9_COMP *cpi,
1138 int *bottom_index,
1139 int *top_index) {
1140 const VP9_COMMON *const cm = &cpi->common;
1141 const RATE_CONTROL *const rc = &cpi->rc;
1142 const VP9EncoderConfig *const oxcf = &cpi->oxcf;
1143 const int cq_level = get_active_cq_level_one_pass(rc, oxcf);
1144 int active_best_quality;
1145 int active_worst_quality = calc_active_worst_quality_one_pass_vbr(cpi);
1146 int q;
1147 int *inter_minq;
1148 ASSIGN_MINQ_TABLE(cm->bit_depth, inter_minq);
1149
1150 if (frame_is_intra_only(cm)) {
1151 if (oxcf->rc_mode == VPX_Q) {
1152 int qindex = cq_level;
1153 double q = vp9_convert_qindex_to_q(qindex, cm->bit_depth);
1154 int delta_qindex = vp9_compute_qdelta(rc, q, q * 0.25, cm->bit_depth);
1155 active_best_quality = VPXMAX(qindex + delta_qindex, rc->best_quality);
1156 } else if (rc->this_key_frame_forced) {
1157 // Handle the special case for key frames forced when we have reached
1158 // the maximum key frame interval. Here force the Q to a range
1159 // based on the ambient Q to reduce the risk of popping.
1160 int qindex = rc->last_boosted_qindex;
1161 double last_boosted_q = vp9_convert_qindex_to_q(qindex, cm->bit_depth);
1162 int delta_qindex = vp9_compute_qdelta(
1163 rc, last_boosted_q, last_boosted_q * 0.75, cm->bit_depth);
1164 active_best_quality = VPXMAX(qindex + delta_qindex, rc->best_quality);
1165 } else {
1166 // not first frame of one pass and kf_boost is set
1167 double q_adj_factor = 1.0;
1168 double q_val;
1169
1170 active_best_quality = get_kf_active_quality(
1171 rc, rc->avg_frame_qindex[KEY_FRAME], cm->bit_depth);
1172
1173 // Allow somewhat lower kf minq with small image formats.
1174 if ((cm->width * cm->height) <= (352 * 288)) {
1175 q_adj_factor -= 0.25;
1176 }
1177
1178 // Convert the adjustment factor to a qindex delta
1179 // on active_best_quality.
1180 q_val = vp9_convert_qindex_to_q(active_best_quality, cm->bit_depth);
1181 active_best_quality +=
1182 vp9_compute_qdelta(rc, q_val, q_val * q_adj_factor, cm->bit_depth);
1183 }
1184 } else if (!rc->is_src_frame_alt_ref &&
1185 (cpi->refresh_golden_frame || cpi->refresh_alt_ref_frame)) {
1186 // Use the lower of active_worst_quality and recent
1187 // average Q as basis for GF/ARF best Q limit unless last frame was
1188 // a key frame.
1189 if (rc->frames_since_key > 1) {
1190 if (rc->avg_frame_qindex[INTER_FRAME] < active_worst_quality) {
1191 q = rc->avg_frame_qindex[INTER_FRAME];
1192 } else {
1193 q = active_worst_quality;
1194 }
1195 } else {
1196 q = rc->avg_frame_qindex[KEY_FRAME];
1197 }
1198 // For constrained quality dont allow Q less than the cq level
1199 if (oxcf->rc_mode == VPX_CQ) {
1200 if (q < cq_level) q = cq_level;
1201
1202 active_best_quality = get_gf_active_quality(cpi, q, cm->bit_depth);
1203
1204 // Constrained quality use slightly lower active best.
1205 active_best_quality = active_best_quality * 15 / 16;
1206
1207 } else if (oxcf->rc_mode == VPX_Q) {
1208 int qindex = cq_level;
1209 double q = vp9_convert_qindex_to_q(qindex, cm->bit_depth);
1210 int delta_qindex;
1211 if (cpi->refresh_alt_ref_frame)
1212 delta_qindex = vp9_compute_qdelta(rc, q, q * 0.40, cm->bit_depth);
1213 else
1214 delta_qindex = vp9_compute_qdelta(rc, q, q * 0.50, cm->bit_depth);
1215 active_best_quality = VPXMAX(qindex + delta_qindex, rc->best_quality);
1216 } else {
1217 active_best_quality = get_gf_active_quality(cpi, q, cm->bit_depth);
1218 }
1219 } else {
1220 if (oxcf->rc_mode == VPX_Q) {
1221 int qindex = cq_level;
1222 double q = vp9_convert_qindex_to_q(qindex, cm->bit_depth);
1223 double delta_rate[FIXED_GF_INTERVAL] = { 0.50, 1.0, 0.85, 1.0,
1224 0.70, 1.0, 0.85, 1.0 };
1225 int delta_qindex = vp9_compute_qdelta(
1226 rc, q, q * delta_rate[cm->current_video_frame % FIXED_GF_INTERVAL],
1227 cm->bit_depth);
1228 active_best_quality = VPXMAX(qindex + delta_qindex, rc->best_quality);
1229 } else {
1230 // Use the min of the average Q and active_worst_quality as basis for
1231 // active_best.
1232 if (cm->current_video_frame > 1) {
1233 q = VPXMIN(rc->avg_frame_qindex[INTER_FRAME], active_worst_quality);
1234 active_best_quality = inter_minq[q];
1235 } else {
1236 active_best_quality = inter_minq[rc->avg_frame_qindex[KEY_FRAME]];
1237 }
1238 // For the constrained quality mode we don't want
1239 // q to fall below the cq level.
1240 if ((oxcf->rc_mode == VPX_CQ) && (active_best_quality < cq_level)) {
1241 active_best_quality = cq_level;
1242 }
1243 }
1244 }
1245
1246 // Clip the active best and worst quality values to limits
1247 active_best_quality =
1248 clamp(active_best_quality, rc->best_quality, rc->worst_quality);
1249 active_worst_quality =
1250 clamp(active_worst_quality, active_best_quality, rc->worst_quality);
1251
1252 *top_index = active_worst_quality;
1253 *bottom_index = active_best_quality;
1254
1255 #if LIMIT_QRANGE_FOR_ALTREF_AND_KEY
1256 {
1257 int qdelta = 0;
1258 vpx_clear_system_state();
1259
1260 // Limit Q range for the adaptive loop.
1261 if (cm->frame_type == KEY_FRAME && !rc->this_key_frame_forced &&
1262 !(cm->current_video_frame == 0)) {
1263 qdelta = vp9_compute_qdelta_by_rate(
1264 &cpi->rc, cm->frame_type, active_worst_quality, 2.0, cm->bit_depth);
1265 } else if (!rc->is_src_frame_alt_ref &&
1266 (cpi->refresh_golden_frame || cpi->refresh_alt_ref_frame)) {
1267 qdelta = vp9_compute_qdelta_by_rate(
1268 &cpi->rc, cm->frame_type, active_worst_quality, 1.75, cm->bit_depth);
1269 }
1270 if (rc->high_source_sad && cpi->sf.use_altref_onepass) qdelta = 0;
1271 *top_index = active_worst_quality + qdelta;
1272 *top_index = (*top_index > *bottom_index) ? *top_index : *bottom_index;
1273 }
1274 #endif
1275
1276 if (oxcf->rc_mode == VPX_Q) {
1277 q = active_best_quality;
1278 // Special case code to try and match quality with forced key frames
1279 } else if ((cm->frame_type == KEY_FRAME) && rc->this_key_frame_forced) {
1280 q = rc->last_boosted_qindex;
1281 } else {
1282 q = vp9_rc_regulate_q(cpi, rc->this_frame_target, active_best_quality,
1283 active_worst_quality);
1284 if (q > *top_index) {
1285 // Special case when we are targeting the max allowed rate
1286 if (rc->this_frame_target >= rc->max_frame_bandwidth)
1287 *top_index = q;
1288 else
1289 q = *top_index;
1290 }
1291 }
1292
1293 assert(*top_index <= rc->worst_quality && *top_index >= rc->best_quality);
1294 assert(*bottom_index <= rc->worst_quality &&
1295 *bottom_index >= rc->best_quality);
1296 assert(q <= rc->worst_quality && q >= rc->best_quality);
1297 return q;
1298 }
1299
vp9_frame_type_qdelta(const VP9_COMP * cpi,int rf_level,int q)1300 int vp9_frame_type_qdelta(const VP9_COMP *cpi, int rf_level, int q) {
1301 static const double rate_factor_deltas[RATE_FACTOR_LEVELS] = {
1302 1.00, // INTER_NORMAL
1303 1.00, // INTER_HIGH
1304 1.50, // GF_ARF_LOW
1305 1.75, // GF_ARF_STD
1306 2.00, // KF_STD
1307 };
1308 const VP9_COMMON *const cm = &cpi->common;
1309
1310 int qdelta = vp9_compute_qdelta_by_rate(
1311 &cpi->rc, cm->frame_type, q, rate_factor_deltas[rf_level], cm->bit_depth);
1312 return qdelta;
1313 }
1314
1315 #define STATIC_MOTION_THRESH 95
1316
pick_kf_q_bound_two_pass(const VP9_COMP * cpi,int * bottom_index,int * top_index)1317 static void pick_kf_q_bound_two_pass(const VP9_COMP *cpi, int *bottom_index,
1318 int *top_index) {
1319 const VP9_COMMON *const cm = &cpi->common;
1320 const RATE_CONTROL *const rc = &cpi->rc;
1321 int active_best_quality;
1322 int active_worst_quality = cpi->twopass.active_worst_quality;
1323
1324 if (rc->this_key_frame_forced) {
1325 // Handle the special case for key frames forced when we have reached
1326 // the maximum key frame interval. Here force the Q to a range
1327 // based on the ambient Q to reduce the risk of popping.
1328 double last_boosted_q;
1329 int delta_qindex;
1330 int qindex;
1331
1332 if (cpi->twopass.last_kfgroup_zeromotion_pct >= STATIC_MOTION_THRESH) {
1333 qindex = VPXMIN(rc->last_kf_qindex, rc->last_boosted_qindex);
1334 active_best_quality = qindex;
1335 last_boosted_q = vp9_convert_qindex_to_q(qindex, cm->bit_depth);
1336 delta_qindex = vp9_compute_qdelta(rc, last_boosted_q,
1337 last_boosted_q * 1.25, cm->bit_depth);
1338 active_worst_quality =
1339 VPXMIN(qindex + delta_qindex, active_worst_quality);
1340 } else {
1341 qindex = rc->last_boosted_qindex;
1342 last_boosted_q = vp9_convert_qindex_to_q(qindex, cm->bit_depth);
1343 delta_qindex = vp9_compute_qdelta(rc, last_boosted_q,
1344 last_boosted_q * 0.75, cm->bit_depth);
1345 active_best_quality = VPXMAX(qindex + delta_qindex, rc->best_quality);
1346 }
1347 } else {
1348 // Not forced keyframe.
1349 double q_adj_factor = 1.0;
1350 double q_val;
1351 // Baseline value derived from cpi->active_worst_quality and kf boost.
1352 active_best_quality =
1353 get_kf_active_quality(rc, active_worst_quality, cm->bit_depth);
1354 if (cpi->twopass.kf_zeromotion_pct >= STATIC_KF_GROUP_THRESH) {
1355 active_best_quality /= 4;
1356 }
1357
1358 // Dont allow the active min to be lossless (q0) unlesss the max q
1359 // already indicates lossless.
1360 active_best_quality =
1361 VPXMIN(active_worst_quality, VPXMAX(1, active_best_quality));
1362
1363 // Allow somewhat lower kf minq with small image formats.
1364 if ((cm->width * cm->height) <= (352 * 288)) {
1365 q_adj_factor -= 0.25;
1366 }
1367
1368 // Make a further adjustment based on the kf zero motion measure.
1369 q_adj_factor += 0.05 - (0.001 * (double)cpi->twopass.kf_zeromotion_pct);
1370
1371 // Convert the adjustment factor to a qindex delta
1372 // on active_best_quality.
1373 q_val = vp9_convert_qindex_to_q(active_best_quality, cm->bit_depth);
1374 active_best_quality +=
1375 vp9_compute_qdelta(rc, q_val, q_val * q_adj_factor, cm->bit_depth);
1376 }
1377 *top_index = active_worst_quality;
1378 *bottom_index = active_best_quality;
1379 }
1380
rc_constant_q(const VP9_COMP * cpi,int * bottom_index,int * top_index,int gf_group_index)1381 static int rc_constant_q(const VP9_COMP *cpi, int *bottom_index, int *top_index,
1382 int gf_group_index) {
1383 const VP9_COMMON *const cm = &cpi->common;
1384 const RATE_CONTROL *const rc = &cpi->rc;
1385 const VP9EncoderConfig *const oxcf = &cpi->oxcf;
1386 const GF_GROUP *gf_group = &cpi->twopass.gf_group;
1387 const int is_intra_frame = frame_is_intra_only(cm);
1388
1389 const int cq_level = get_active_cq_level_two_pass(&cpi->twopass, rc, oxcf);
1390
1391 int q = cq_level;
1392 int active_best_quality = cq_level;
1393 int active_worst_quality = cq_level;
1394
1395 // Key frame qp decision
1396 if (is_intra_frame && rc->frames_to_key > 1)
1397 pick_kf_q_bound_two_pass(cpi, &active_best_quality, &active_worst_quality);
1398
1399 // ARF / GF qp decision
1400 if (!is_intra_frame && !rc->is_src_frame_alt_ref &&
1401 cpi->refresh_alt_ref_frame) {
1402 active_best_quality = get_gf_active_quality(cpi, q, cm->bit_depth);
1403
1404 // Modify best quality for second level arfs. For mode VPX_Q this
1405 // becomes the baseline frame q.
1406 if (gf_group->rf_level[gf_group_index] == GF_ARF_LOW) {
1407 const int layer_depth = gf_group->layer_depth[gf_group_index];
1408 // linearly fit the frame q depending on the layer depth index from
1409 // the base layer ARF.
1410 active_best_quality = ((layer_depth - 1) * cq_level +
1411 active_best_quality + layer_depth / 2) /
1412 layer_depth;
1413 }
1414 }
1415
1416 q = active_best_quality;
1417 *top_index = active_worst_quality;
1418 *bottom_index = active_best_quality;
1419 return q;
1420 }
1421
rc_pick_q_and_bounds_two_pass(const VP9_COMP * cpi,int * bottom_index,int * top_index,int gf_group_index)1422 static int rc_pick_q_and_bounds_two_pass(const VP9_COMP *cpi, int *bottom_index,
1423 int *top_index, int gf_group_index) {
1424 const VP9_COMMON *const cm = &cpi->common;
1425 const RATE_CONTROL *const rc = &cpi->rc;
1426 const VP9EncoderConfig *const oxcf = &cpi->oxcf;
1427 const GF_GROUP *gf_group = &cpi->twopass.gf_group;
1428 const int cq_level = get_active_cq_level_two_pass(&cpi->twopass, rc, oxcf);
1429 int active_best_quality;
1430 int active_worst_quality = cpi->twopass.active_worst_quality;
1431 int q;
1432 int *inter_minq;
1433 int arf_active_best_quality_hl;
1434 int *arfgf_high_motion_minq, *arfgf_low_motion_minq;
1435 const int boost_frame =
1436 !rc->is_src_frame_alt_ref &&
1437 (cpi->refresh_golden_frame || cpi->refresh_alt_ref_frame);
1438
1439 ASSIGN_MINQ_TABLE(cm->bit_depth, inter_minq);
1440
1441 if (oxcf->rc_mode == VPX_Q)
1442 return rc_constant_q(cpi, bottom_index, top_index, gf_group_index);
1443
1444 if (frame_is_intra_only(cm)) {
1445 pick_kf_q_bound_two_pass(cpi, &active_best_quality, &active_worst_quality);
1446 } else if (boost_frame) {
1447 // Use the lower of active_worst_quality and recent
1448 // average Q as basis for GF/ARF best Q limit unless last frame was
1449 // a key frame.
1450 if (rc->frames_since_key > 1 &&
1451 rc->avg_frame_qindex[INTER_FRAME] < active_worst_quality) {
1452 q = rc->avg_frame_qindex[INTER_FRAME];
1453 } else {
1454 q = active_worst_quality;
1455 }
1456 // For constrained quality dont allow Q less than the cq level
1457 if (oxcf->rc_mode == VPX_CQ) {
1458 if (q < cq_level) q = cq_level;
1459 }
1460 active_best_quality = get_gf_active_quality(cpi, q, cm->bit_depth);
1461 arf_active_best_quality_hl = active_best_quality;
1462
1463 if (rc->arf_increase_active_best_quality == 1) {
1464 ASSIGN_MINQ_TABLE(cm->bit_depth, arfgf_high_motion_minq);
1465 arf_active_best_quality_hl = arfgf_high_motion_minq[q];
1466 } else if (rc->arf_increase_active_best_quality == -1) {
1467 ASSIGN_MINQ_TABLE(cm->bit_depth, arfgf_low_motion_minq);
1468 arf_active_best_quality_hl = arfgf_low_motion_minq[q];
1469 }
1470 active_best_quality =
1471 (int)((double)active_best_quality *
1472 rc->arf_active_best_quality_adjustment_factor +
1473 (double)arf_active_best_quality_hl *
1474 (1.0 - rc->arf_active_best_quality_adjustment_factor));
1475
1476 // Modify best quality for second level arfs. For mode VPX_Q this
1477 // becomes the baseline frame q.
1478 if (gf_group->rf_level[gf_group_index] == GF_ARF_LOW) {
1479 const int layer_depth = gf_group->layer_depth[gf_group_index];
1480 // linearly fit the frame q depending on the layer depth index from
1481 // the base layer ARF.
1482 active_best_quality =
1483 ((layer_depth - 1) * q + active_best_quality + layer_depth / 2) /
1484 layer_depth;
1485 }
1486 } else {
1487 active_best_quality = inter_minq[active_worst_quality];
1488
1489 // For the constrained quality mode we don't want
1490 // q to fall below the cq level.
1491 if ((oxcf->rc_mode == VPX_CQ) && (active_best_quality < cq_level)) {
1492 active_best_quality = cq_level;
1493 }
1494 }
1495
1496 // Extension to max or min Q if undershoot or overshoot is outside
1497 // the permitted range.
1498 if (frame_is_intra_only(cm) || boost_frame) {
1499 const int layer_depth = gf_group->layer_depth[gf_group_index];
1500 active_best_quality -=
1501 (cpi->twopass.extend_minq + cpi->twopass.extend_minq_fast);
1502 active_worst_quality += (cpi->twopass.extend_maxq / 2);
1503
1504 if (gf_group->rf_level[gf_group_index] == GF_ARF_LOW) {
1505 assert(layer_depth > 1);
1506 active_best_quality =
1507 VPXMAX(active_best_quality,
1508 cpi->twopass.last_qindex_of_arf_layer[layer_depth - 1]);
1509 }
1510 } else {
1511 const int max_layer_depth = gf_group->max_layer_depth;
1512 assert(max_layer_depth > 0);
1513
1514 active_best_quality -=
1515 (cpi->twopass.extend_minq + cpi->twopass.extend_minq_fast) / 2;
1516 active_worst_quality += cpi->twopass.extend_maxq;
1517
1518 // For normal frames do not allow an active minq lower than the q used for
1519 // the last boosted frame.
1520 active_best_quality =
1521 VPXMAX(active_best_quality,
1522 cpi->twopass.last_qindex_of_arf_layer[max_layer_depth - 1]);
1523 }
1524
1525 #if LIMIT_QRANGE_FOR_ALTREF_AND_KEY
1526 vpx_clear_system_state();
1527 // Static forced key frames Q restrictions dealt with elsewhere.
1528 if (!frame_is_intra_only(cm) || !rc->this_key_frame_forced ||
1529 cpi->twopass.last_kfgroup_zeromotion_pct < STATIC_MOTION_THRESH) {
1530 int qdelta = vp9_frame_type_qdelta(cpi, gf_group->rf_level[gf_group_index],
1531 active_worst_quality);
1532 active_worst_quality =
1533 VPXMAX(active_worst_quality + qdelta, active_best_quality);
1534 }
1535 #endif
1536
1537 // Modify active_best_quality for downscaled normal frames.
1538 if (rc->frame_size_selector != UNSCALED && !frame_is_kf_gf_arf(cpi)) {
1539 int qdelta = vp9_compute_qdelta_by_rate(
1540 rc, cm->frame_type, active_best_quality, 2.0, cm->bit_depth);
1541 active_best_quality =
1542 VPXMAX(active_best_quality + qdelta, rc->best_quality);
1543 }
1544
1545 active_best_quality =
1546 clamp(active_best_quality, rc->best_quality, rc->worst_quality);
1547 active_worst_quality =
1548 clamp(active_worst_quality, active_best_quality, rc->worst_quality);
1549
1550 if (frame_is_intra_only(cm) && rc->this_key_frame_forced) {
1551 // If static since last kf use better of last boosted and last kf q.
1552 if (cpi->twopass.last_kfgroup_zeromotion_pct >= STATIC_MOTION_THRESH) {
1553 q = VPXMIN(rc->last_kf_qindex, rc->last_boosted_qindex);
1554 } else {
1555 q = rc->last_boosted_qindex;
1556 }
1557 } else if (frame_is_intra_only(cm) && !rc->this_key_frame_forced) {
1558 q = active_best_quality;
1559 } else {
1560 q = vp9_rc_regulate_q(cpi, rc->this_frame_target, active_best_quality,
1561 active_worst_quality);
1562 if (q > active_worst_quality) {
1563 // Special case when we are targeting the max allowed rate.
1564 if (rc->this_frame_target >= rc->max_frame_bandwidth)
1565 active_worst_quality = q;
1566 else
1567 q = active_worst_quality;
1568 }
1569 }
1570 clamp(q, active_best_quality, active_worst_quality);
1571
1572 *top_index = active_worst_quality;
1573 *bottom_index = active_best_quality;
1574
1575 assert(*top_index <= rc->worst_quality && *top_index >= rc->best_quality);
1576 assert(*bottom_index <= rc->worst_quality &&
1577 *bottom_index >= rc->best_quality);
1578 assert(q <= rc->worst_quality && q >= rc->best_quality);
1579 return q;
1580 }
1581
vp9_rc_pick_q_and_bounds(const VP9_COMP * cpi,int * bottom_index,int * top_index)1582 int vp9_rc_pick_q_and_bounds(const VP9_COMP *cpi, int *bottom_index,
1583 int *top_index) {
1584 int q;
1585 const int gf_group_index = cpi->twopass.gf_group.index;
1586 if (cpi->oxcf.pass == 0) {
1587 if (cpi->oxcf.rc_mode == VPX_CBR)
1588 q = rc_pick_q_and_bounds_one_pass_cbr(cpi, bottom_index, top_index);
1589 else
1590 q = rc_pick_q_and_bounds_one_pass_vbr(cpi, bottom_index, top_index);
1591 } else {
1592 q = rc_pick_q_and_bounds_two_pass(cpi, bottom_index, top_index,
1593 gf_group_index);
1594 }
1595 if (cpi->sf.use_nonrd_pick_mode) {
1596 if (cpi->sf.force_frame_boost == 1) q -= cpi->sf.max_delta_qindex;
1597
1598 if (q < *bottom_index)
1599 *bottom_index = q;
1600 else if (q > *top_index)
1601 *top_index = q;
1602 }
1603 return q;
1604 }
1605
vp9_configure_buffer_updates(VP9_COMP * cpi,int gf_group_index)1606 void vp9_configure_buffer_updates(VP9_COMP *cpi, int gf_group_index) {
1607 VP9_COMMON *cm = &cpi->common;
1608 TWO_PASS *const twopass = &cpi->twopass;
1609
1610 cpi->rc.is_src_frame_alt_ref = 0;
1611 cm->show_existing_frame = 0;
1612 cpi->rc.show_arf_as_gld = 0;
1613 switch (twopass->gf_group.update_type[gf_group_index]) {
1614 case KF_UPDATE:
1615 cpi->refresh_last_frame = 1;
1616 cpi->refresh_golden_frame = 1;
1617 cpi->refresh_alt_ref_frame = 1;
1618 break;
1619 case LF_UPDATE:
1620 cpi->refresh_last_frame = 1;
1621 cpi->refresh_golden_frame = 0;
1622 cpi->refresh_alt_ref_frame = 0;
1623 break;
1624 case GF_UPDATE:
1625 cpi->refresh_last_frame = 1;
1626 cpi->refresh_golden_frame = 1;
1627 cpi->refresh_alt_ref_frame = 0;
1628 break;
1629 case OVERLAY_UPDATE:
1630 cpi->refresh_last_frame = 0;
1631 cpi->refresh_golden_frame = 1;
1632 cpi->refresh_alt_ref_frame = 0;
1633 cpi->rc.is_src_frame_alt_ref = 1;
1634 if (cpi->rc.preserve_arf_as_gld) {
1635 cpi->rc.show_arf_as_gld = 1;
1636 cpi->refresh_golden_frame = 0;
1637 cm->show_existing_frame = 1;
1638 cm->refresh_frame_context = 0;
1639 }
1640 break;
1641 case MID_OVERLAY_UPDATE:
1642 cpi->refresh_last_frame = 1;
1643 cpi->refresh_golden_frame = 0;
1644 cpi->refresh_alt_ref_frame = 0;
1645 cpi->rc.is_src_frame_alt_ref = 1;
1646 break;
1647 case USE_BUF_FRAME:
1648 cpi->refresh_last_frame = 0;
1649 cpi->refresh_golden_frame = 0;
1650 cpi->refresh_alt_ref_frame = 0;
1651 cpi->rc.is_src_frame_alt_ref = 1;
1652 cm->show_existing_frame = 1;
1653 cm->refresh_frame_context = 0;
1654 break;
1655 default:
1656 assert(twopass->gf_group.update_type[gf_group_index] == ARF_UPDATE);
1657 cpi->refresh_last_frame = 0;
1658 cpi->refresh_golden_frame = 0;
1659 cpi->refresh_alt_ref_frame = 1;
1660 break;
1661 }
1662 }
1663
vp9_estimate_qp_gop(VP9_COMP * cpi)1664 void vp9_estimate_qp_gop(VP9_COMP *cpi) {
1665 int gop_length = cpi->twopass.gf_group.gf_group_size;
1666 int bottom_index, top_index;
1667 int idx;
1668 const int gf_index = cpi->twopass.gf_group.index;
1669 const int is_src_frame_alt_ref = cpi->rc.is_src_frame_alt_ref;
1670 const int refresh_frame_context = cpi->common.refresh_frame_context;
1671
1672 for (idx = 1; idx <= gop_length; ++idx) {
1673 TplDepFrame *tpl_frame = &cpi->tpl_stats[idx];
1674 int target_rate = cpi->twopass.gf_group.bit_allocation[idx];
1675 cpi->twopass.gf_group.index = idx;
1676 vp9_rc_set_frame_target(cpi, target_rate);
1677 vp9_configure_buffer_updates(cpi, idx);
1678 tpl_frame->base_qindex =
1679 rc_pick_q_and_bounds_two_pass(cpi, &bottom_index, &top_index, idx);
1680 tpl_frame->base_qindex = VPXMAX(tpl_frame->base_qindex, 1);
1681 }
1682 // Reset the actual index and frame update
1683 cpi->twopass.gf_group.index = gf_index;
1684 cpi->rc.is_src_frame_alt_ref = is_src_frame_alt_ref;
1685 cpi->common.refresh_frame_context = refresh_frame_context;
1686 vp9_configure_buffer_updates(cpi, gf_index);
1687 }
1688
vp9_rc_compute_frame_size_bounds(const VP9_COMP * cpi,int frame_target,int * frame_under_shoot_limit,int * frame_over_shoot_limit)1689 void vp9_rc_compute_frame_size_bounds(const VP9_COMP *cpi, int frame_target,
1690 int *frame_under_shoot_limit,
1691 int *frame_over_shoot_limit) {
1692 if (cpi->oxcf.rc_mode == VPX_Q) {
1693 *frame_under_shoot_limit = 0;
1694 *frame_over_shoot_limit = INT_MAX;
1695 } else {
1696 // For very small rate targets where the fractional adjustment
1697 // may be tiny make sure there is at least a minimum range.
1698 const int tol_low =
1699 (int)(((int64_t)cpi->sf.recode_tolerance_low * frame_target) / 100);
1700 const int tol_high =
1701 (int)(((int64_t)cpi->sf.recode_tolerance_high * frame_target) / 100);
1702 *frame_under_shoot_limit = VPXMAX(frame_target - tol_low - 100, 0);
1703 *frame_over_shoot_limit =
1704 VPXMIN(frame_target + tol_high + 100, cpi->rc.max_frame_bandwidth);
1705 }
1706 }
1707
vp9_rc_set_frame_target(VP9_COMP * cpi,int target)1708 void vp9_rc_set_frame_target(VP9_COMP *cpi, int target) {
1709 const VP9_COMMON *const cm = &cpi->common;
1710 RATE_CONTROL *const rc = &cpi->rc;
1711
1712 rc->this_frame_target = target;
1713
1714 // Modify frame size target when down-scaling.
1715 if (cpi->oxcf.resize_mode == RESIZE_DYNAMIC &&
1716 rc->frame_size_selector != UNSCALED) {
1717 rc->this_frame_target = (int)(rc->this_frame_target *
1718 rate_thresh_mult[rc->frame_size_selector]);
1719 }
1720
1721 #if CONFIG_RATE_CTRL
1722 if (cpi->oxcf.use_simple_encode_api) {
1723 if (cpi->encode_command.use_external_target_frame_bits) {
1724 rc->this_frame_target = cpi->encode_command.target_frame_bits;
1725 }
1726 }
1727 #endif // CONFIG_RATE_CTRL
1728
1729 // Target rate per SB64 (including partial SB64s.
1730 rc->sb64_target_rate = (int)(((int64_t)rc->this_frame_target * 64 * 64) /
1731 (cm->width * cm->height));
1732 }
1733
update_alt_ref_frame_stats(VP9_COMP * cpi)1734 static void update_alt_ref_frame_stats(VP9_COMP *cpi) {
1735 // this frame refreshes means next frames don't unless specified by user
1736 RATE_CONTROL *const rc = &cpi->rc;
1737 rc->frames_since_golden = 0;
1738
1739 // Mark the alt ref as done (setting to 0 means no further alt refs pending).
1740 rc->source_alt_ref_pending = 0;
1741
1742 // Set the alternate reference frame active flag
1743 rc->source_alt_ref_active = 1;
1744 }
1745
update_golden_frame_stats(VP9_COMP * cpi)1746 static void update_golden_frame_stats(VP9_COMP *cpi) {
1747 RATE_CONTROL *const rc = &cpi->rc;
1748
1749 // Update the Golden frame usage counts.
1750 if (cpi->refresh_golden_frame) {
1751 // this frame refreshes means next frames don't unless specified by user
1752 rc->frames_since_golden = 0;
1753
1754 // If we are not using alt ref in the up and coming group clear the arf
1755 // active flag. In multi arf group case, if the index is not 0 then
1756 // we are overlaying a mid group arf so should not reset the flag.
1757 if (cpi->oxcf.pass == 2) {
1758 if (!rc->source_alt_ref_pending && (cpi->twopass.gf_group.index == 0))
1759 rc->source_alt_ref_active = 0;
1760 } else if (!rc->source_alt_ref_pending) {
1761 rc->source_alt_ref_active = 0;
1762 }
1763
1764 // Decrement count down till next gf
1765 if (rc->frames_till_gf_update_due > 0) rc->frames_till_gf_update_due--;
1766
1767 } else if (!cpi->refresh_alt_ref_frame) {
1768 // Decrement count down till next gf
1769 if (rc->frames_till_gf_update_due > 0) rc->frames_till_gf_update_due--;
1770
1771 rc->frames_since_golden++;
1772
1773 if (rc->show_arf_as_gld) {
1774 rc->frames_since_golden = 0;
1775 // If we are not using alt ref in the up and coming group clear the arf
1776 // active flag. In multi arf group case, if the index is not 0 then
1777 // we are overlaying a mid group arf so should not reset the flag.
1778 if (!rc->source_alt_ref_pending && (cpi->twopass.gf_group.index == 0))
1779 rc->source_alt_ref_active = 0;
1780 }
1781 }
1782 }
1783
update_altref_usage(VP9_COMP * const cpi)1784 static void update_altref_usage(VP9_COMP *const cpi) {
1785 VP9_COMMON *const cm = &cpi->common;
1786 int sum_ref_frame_usage = 0;
1787 int arf_frame_usage = 0;
1788 int mi_row, mi_col;
1789 if (cpi->rc.alt_ref_gf_group && !cpi->rc.is_src_frame_alt_ref &&
1790 !cpi->refresh_golden_frame && !cpi->refresh_alt_ref_frame)
1791 for (mi_row = 0; mi_row < cm->mi_rows; mi_row += 8) {
1792 for (mi_col = 0; mi_col < cm->mi_cols; mi_col += 8) {
1793 int sboffset = ((cm->mi_cols + 7) >> 3) * (mi_row >> 3) + (mi_col >> 3);
1794 sum_ref_frame_usage += cpi->count_arf_frame_usage[sboffset] +
1795 cpi->count_lastgolden_frame_usage[sboffset];
1796 arf_frame_usage += cpi->count_arf_frame_usage[sboffset];
1797 }
1798 }
1799 if (sum_ref_frame_usage > 0) {
1800 double altref_count = 100.0 * arf_frame_usage / sum_ref_frame_usage;
1801 cpi->rc.perc_arf_usage =
1802 0.75 * cpi->rc.perc_arf_usage + 0.25 * altref_count;
1803 }
1804 }
1805
vp9_compute_frame_low_motion(VP9_COMP * const cpi)1806 void vp9_compute_frame_low_motion(VP9_COMP *const cpi) {
1807 VP9_COMMON *const cm = &cpi->common;
1808 SVC *const svc = &cpi->svc;
1809 int mi_row, mi_col;
1810 MODE_INFO **mi = cm->mi_grid_visible;
1811 RATE_CONTROL *const rc = &cpi->rc;
1812 const int rows = cm->mi_rows, cols = cm->mi_cols;
1813 int cnt_zeromv = 0;
1814 for (mi_row = 0; mi_row < rows; mi_row++) {
1815 for (mi_col = 0; mi_col < cols; mi_col++) {
1816 if (mi[0]->ref_frame[0] == LAST_FRAME &&
1817 abs(mi[0]->mv[0].as_mv.row) < 16 && abs(mi[0]->mv[0].as_mv.col) < 16)
1818 cnt_zeromv++;
1819 mi++;
1820 }
1821 mi += 8;
1822 }
1823 cnt_zeromv = 100 * cnt_zeromv / (rows * cols);
1824 rc->avg_frame_low_motion = (3 * rc->avg_frame_low_motion + cnt_zeromv) >> 2;
1825
1826 // For SVC: set avg_frame_low_motion (only computed on top spatial layer)
1827 // to all lower spatial layers.
1828 if (cpi->use_svc && svc->spatial_layer_id == svc->number_spatial_layers - 1) {
1829 int i;
1830 for (i = 0; i < svc->number_spatial_layers - 1; ++i) {
1831 const int layer = LAYER_IDS_TO_IDX(i, svc->temporal_layer_id,
1832 svc->number_temporal_layers);
1833 LAYER_CONTEXT *const lc = &svc->layer_context[layer];
1834 RATE_CONTROL *const lrc = &lc->rc;
1835 lrc->avg_frame_low_motion = rc->avg_frame_low_motion;
1836 }
1837 }
1838 }
1839
vp9_rc_postencode_update(VP9_COMP * cpi,uint64_t bytes_used)1840 void vp9_rc_postencode_update(VP9_COMP *cpi, uint64_t bytes_used) {
1841 const VP9_COMMON *const cm = &cpi->common;
1842 const VP9EncoderConfig *const oxcf = &cpi->oxcf;
1843 RATE_CONTROL *const rc = &cpi->rc;
1844 SVC *const svc = &cpi->svc;
1845 const int qindex = cm->base_qindex;
1846 const GF_GROUP *gf_group = &cpi->twopass.gf_group;
1847 const int gf_group_index = cpi->twopass.gf_group.index;
1848 const int layer_depth = gf_group->layer_depth[gf_group_index];
1849
1850 // Update rate control heuristics
1851 rc->projected_frame_size = (int)(bytes_used << 3);
1852
1853 // Post encode loop adjustment of Q prediction.
1854 vp9_rc_update_rate_correction_factors(cpi);
1855
1856 // Keep a record of last Q and ambient average Q.
1857 if (frame_is_intra_only(cm)) {
1858 rc->last_q[KEY_FRAME] = qindex;
1859 rc->avg_frame_qindex[KEY_FRAME] =
1860 ROUND_POWER_OF_TWO(3 * rc->avg_frame_qindex[KEY_FRAME] + qindex, 2);
1861 if (cpi->use_svc) {
1862 int i = 0;
1863 SVC *svc = &cpi->svc;
1864 for (i = 0; i < svc->number_temporal_layers; ++i) {
1865 const int layer = LAYER_IDS_TO_IDX(svc->spatial_layer_id, i,
1866 svc->number_temporal_layers);
1867 LAYER_CONTEXT *lc = &svc->layer_context[layer];
1868 RATE_CONTROL *lrc = &lc->rc;
1869 lrc->last_q[KEY_FRAME] = rc->last_q[KEY_FRAME];
1870 lrc->avg_frame_qindex[KEY_FRAME] = rc->avg_frame_qindex[KEY_FRAME];
1871 }
1872 }
1873 } else {
1874 if ((cpi->use_svc) ||
1875 (!rc->is_src_frame_alt_ref &&
1876 !(cpi->refresh_golden_frame || cpi->refresh_alt_ref_frame))) {
1877 rc->last_q[INTER_FRAME] = qindex;
1878 rc->avg_frame_qindex[INTER_FRAME] =
1879 ROUND_POWER_OF_TWO(3 * rc->avg_frame_qindex[INTER_FRAME] + qindex, 2);
1880 rc->ni_frames++;
1881 rc->tot_q += vp9_convert_qindex_to_q(qindex, cm->bit_depth);
1882 rc->avg_q = rc->tot_q / rc->ni_frames;
1883 // Calculate the average Q for normal inter frames (not key or GFU
1884 // frames).
1885 rc->ni_tot_qi += qindex;
1886 rc->ni_av_qi = rc->ni_tot_qi / rc->ni_frames;
1887 }
1888 }
1889
1890 if (cpi->use_svc) vp9_svc_adjust_avg_frame_qindex(cpi);
1891
1892 // Keep record of last boosted (KF/KF/ARF) Q value.
1893 // If the current frame is coded at a lower Q then we also update it.
1894 // If all mbs in this group are skipped only update if the Q value is
1895 // better than that already stored.
1896 // This is used to help set quality in forced key frames to reduce popping
1897 if ((qindex < rc->last_boosted_qindex) || (cm->frame_type == KEY_FRAME) ||
1898 (!rc->constrained_gf_group &&
1899 (cpi->refresh_alt_ref_frame ||
1900 (cpi->refresh_golden_frame && !rc->is_src_frame_alt_ref)))) {
1901 rc->last_boosted_qindex = qindex;
1902 }
1903
1904 if ((qindex < cpi->twopass.last_qindex_of_arf_layer[layer_depth]) ||
1905 (cm->frame_type == KEY_FRAME) ||
1906 (!rc->constrained_gf_group &&
1907 (cpi->refresh_alt_ref_frame ||
1908 (cpi->refresh_golden_frame && !rc->is_src_frame_alt_ref)))) {
1909 cpi->twopass.last_qindex_of_arf_layer[layer_depth] = qindex;
1910 }
1911
1912 if (frame_is_intra_only(cm)) rc->last_kf_qindex = qindex;
1913
1914 update_buffer_level_postencode(cpi, rc->projected_frame_size);
1915
1916 // Rolling monitors of whether we are over or underspending used to help
1917 // regulate min and Max Q in two pass.
1918 if (!frame_is_intra_only(cm)) {
1919 rc->rolling_target_bits = (int)ROUND64_POWER_OF_TWO(
1920 (int64_t)rc->rolling_target_bits * 3 + rc->this_frame_target, 2);
1921 rc->rolling_actual_bits = (int)ROUND64_POWER_OF_TWO(
1922 (int64_t)rc->rolling_actual_bits * 3 + rc->projected_frame_size, 2);
1923 rc->long_rolling_target_bits = (int)ROUND64_POWER_OF_TWO(
1924 (int64_t)rc->long_rolling_target_bits * 31 + rc->this_frame_target, 5);
1925 rc->long_rolling_actual_bits = (int)ROUND64_POWER_OF_TWO(
1926 (int64_t)rc->long_rolling_actual_bits * 31 + rc->projected_frame_size,
1927 5);
1928 }
1929
1930 // Actual bits spent
1931 rc->total_actual_bits += rc->projected_frame_size;
1932 rc->total_target_bits += cm->show_frame ? rc->avg_frame_bandwidth : 0;
1933
1934 rc->total_target_vs_actual = rc->total_actual_bits - rc->total_target_bits;
1935
1936 if (!cpi->use_svc) {
1937 if (is_altref_enabled(cpi) && cpi->refresh_alt_ref_frame &&
1938 (!frame_is_intra_only(cm)))
1939 // Update the alternate reference frame stats as appropriate.
1940 update_alt_ref_frame_stats(cpi);
1941 else
1942 // Update the Golden frame stats as appropriate.
1943 update_golden_frame_stats(cpi);
1944 }
1945
1946 // If second (long term) temporal reference is used for SVC,
1947 // update the golden frame counter, only for base temporal layer.
1948 if (cpi->use_svc && svc->use_gf_temporal_ref_current_layer &&
1949 svc->temporal_layer_id == 0) {
1950 int i = 0;
1951 if (cpi->refresh_golden_frame)
1952 rc->frames_since_golden = 0;
1953 else
1954 rc->frames_since_golden++;
1955 // Decrement count down till next gf
1956 if (rc->frames_till_gf_update_due > 0) rc->frames_till_gf_update_due--;
1957 // Update the frames_since_golden for all upper temporal layers.
1958 for (i = 1; i < svc->number_temporal_layers; ++i) {
1959 const int layer = LAYER_IDS_TO_IDX(svc->spatial_layer_id, i,
1960 svc->number_temporal_layers);
1961 LAYER_CONTEXT *const lc = &svc->layer_context[layer];
1962 RATE_CONTROL *const lrc = &lc->rc;
1963 lrc->frames_since_golden = rc->frames_since_golden;
1964 }
1965 }
1966
1967 if (frame_is_intra_only(cm)) rc->frames_since_key = 0;
1968 if (cm->show_frame) {
1969 rc->frames_since_key++;
1970 rc->frames_to_key--;
1971 }
1972
1973 // Trigger the resizing of the next frame if it is scaled.
1974 if (oxcf->pass != 0) {
1975 cpi->resize_pending =
1976 rc->next_frame_size_selector != rc->frame_size_selector;
1977 rc->frame_size_selector = rc->next_frame_size_selector;
1978 }
1979
1980 if (oxcf->pass == 0) {
1981 if (!frame_is_intra_only(cm))
1982 if (cpi->sf.use_altref_onepass) update_altref_usage(cpi);
1983 cpi->rc.last_frame_is_src_altref = cpi->rc.is_src_frame_alt_ref;
1984 }
1985
1986 if (!frame_is_intra_only(cm)) rc->reset_high_source_sad = 0;
1987
1988 rc->last_avg_frame_bandwidth = rc->avg_frame_bandwidth;
1989 if (cpi->use_svc && svc->spatial_layer_id < svc->number_spatial_layers - 1)
1990 svc->lower_layer_qindex = cm->base_qindex;
1991 }
1992
vp9_rc_postencode_update_drop_frame(VP9_COMP * cpi)1993 void vp9_rc_postencode_update_drop_frame(VP9_COMP *cpi) {
1994 cpi->common.current_video_frame++;
1995 cpi->rc.frames_since_key++;
1996 cpi->rc.frames_to_key--;
1997 cpi->rc.rc_2_frame = 0;
1998 cpi->rc.rc_1_frame = 0;
1999 cpi->rc.last_avg_frame_bandwidth = cpi->rc.avg_frame_bandwidth;
2000 cpi->rc.last_q[INTER_FRAME] = cpi->common.base_qindex;
2001 // For SVC on dropped frame when framedrop_mode != LAYER_DROP:
2002 // in this mode the whole superframe may be dropped if only a single layer
2003 // has buffer underflow (below threshold). Since this can then lead to
2004 // increasing buffer levels/overflow for certain layers even though whole
2005 // superframe is dropped, we cap buffer level if its already stable.
2006 if (cpi->use_svc && cpi->svc.framedrop_mode != LAYER_DROP &&
2007 cpi->rc.buffer_level > cpi->rc.optimal_buffer_level) {
2008 cpi->rc.buffer_level = cpi->rc.optimal_buffer_level;
2009 cpi->rc.bits_off_target = cpi->rc.optimal_buffer_level;
2010 }
2011 }
2012
vp9_calc_pframe_target_size_one_pass_vbr(const VP9_COMP * cpi)2013 int vp9_calc_pframe_target_size_one_pass_vbr(const VP9_COMP *cpi) {
2014 const RATE_CONTROL *const rc = &cpi->rc;
2015 const int af_ratio = rc->af_ratio_onepass_vbr;
2016 int64_t target =
2017 (!rc->is_src_frame_alt_ref &&
2018 (cpi->refresh_golden_frame || cpi->refresh_alt_ref_frame))
2019 ? ((int64_t)rc->avg_frame_bandwidth * rc->baseline_gf_interval *
2020 af_ratio) /
2021 (rc->baseline_gf_interval + af_ratio - 1)
2022 : ((int64_t)rc->avg_frame_bandwidth * rc->baseline_gf_interval) /
2023 (rc->baseline_gf_interval + af_ratio - 1);
2024 // For SVC: refresh flags are used to define the pattern, so we can't
2025 // use that for boosting the target size here.
2026 // TODO(marpan): Consider adding internal boost on TL0 for VBR-SVC.
2027 // For now just use the CBR logic for setting target size.
2028 if (cpi->use_svc) target = vp9_calc_pframe_target_size_one_pass_cbr(cpi);
2029 if (target > INT_MAX) target = INT_MAX;
2030 return vp9_rc_clamp_pframe_target_size(cpi, (int)target);
2031 }
2032
vp9_calc_iframe_target_size_one_pass_vbr(const VP9_COMP * cpi)2033 int vp9_calc_iframe_target_size_one_pass_vbr(const VP9_COMP *cpi) {
2034 static const int kf_ratio = 25;
2035 const RATE_CONTROL *rc = &cpi->rc;
2036 const int target = rc->avg_frame_bandwidth * kf_ratio;
2037 return vp9_rc_clamp_iframe_target_size(cpi, target);
2038 }
2039
adjust_gfint_frame_constraint(VP9_COMP * cpi,int frame_constraint)2040 static void adjust_gfint_frame_constraint(VP9_COMP *cpi, int frame_constraint) {
2041 RATE_CONTROL *const rc = &cpi->rc;
2042 rc->constrained_gf_group = 0;
2043 // Reset gf interval to make more equal spacing for frame_constraint.
2044 if ((frame_constraint <= 7 * rc->baseline_gf_interval >> 2) &&
2045 (frame_constraint > rc->baseline_gf_interval)) {
2046 rc->baseline_gf_interval = frame_constraint >> 1;
2047 if (rc->baseline_gf_interval < 5)
2048 rc->baseline_gf_interval = frame_constraint;
2049 rc->constrained_gf_group = 1;
2050 } else {
2051 // Reset to keep gf_interval <= frame_constraint.
2052 if (rc->baseline_gf_interval > frame_constraint) {
2053 rc->baseline_gf_interval = frame_constraint;
2054 rc->constrained_gf_group = 1;
2055 }
2056 }
2057 }
2058
vp9_set_gf_update_one_pass_vbr(VP9_COMP * const cpi)2059 void vp9_set_gf_update_one_pass_vbr(VP9_COMP *const cpi) {
2060 RATE_CONTROL *const rc = &cpi->rc;
2061 VP9_COMMON *const cm = &cpi->common;
2062 if (rc->frames_till_gf_update_due == 0) {
2063 double rate_err = 1.0;
2064 rc->gfu_boost = DEFAULT_GF_BOOST;
2065 if (cpi->oxcf.aq_mode == CYCLIC_REFRESH_AQ && cpi->oxcf.pass == 0) {
2066 vp9_cyclic_refresh_set_golden_update(cpi);
2067 } else {
2068 rc->baseline_gf_interval = VPXMIN(
2069 20, VPXMAX(10, (rc->min_gf_interval + rc->max_gf_interval) / 2));
2070 }
2071 rc->af_ratio_onepass_vbr = 10;
2072 if (rc->rolling_target_bits > 0)
2073 rate_err =
2074 (double)rc->rolling_actual_bits / (double)rc->rolling_target_bits;
2075 if (cm->current_video_frame > 30) {
2076 if (rc->avg_frame_qindex[INTER_FRAME] > (7 * rc->worst_quality) >> 3 &&
2077 rate_err > 3.5) {
2078 rc->baseline_gf_interval =
2079 VPXMIN(15, (3 * rc->baseline_gf_interval) >> 1);
2080 } else if (rc->avg_frame_low_motion > 0 &&
2081 rc->avg_frame_low_motion < 20) {
2082 // Decrease gf interval for high motion case.
2083 rc->baseline_gf_interval = VPXMAX(6, rc->baseline_gf_interval >> 1);
2084 }
2085 // Adjust boost and af_ratio based on avg_frame_low_motion, which
2086 // varies between 0 and 100 (stationary, 100% zero/small motion).
2087 if (rc->avg_frame_low_motion > 0)
2088 rc->gfu_boost =
2089 VPXMAX(500, DEFAULT_GF_BOOST * (rc->avg_frame_low_motion << 1) /
2090 (rc->avg_frame_low_motion + 100));
2091 else if (rc->avg_frame_low_motion == 0 && rate_err > 1.0)
2092 rc->gfu_boost = DEFAULT_GF_BOOST >> 1;
2093 rc->af_ratio_onepass_vbr = VPXMIN(15, VPXMAX(5, 3 * rc->gfu_boost / 400));
2094 }
2095 if (rc->constrain_gf_key_freq_onepass_vbr)
2096 adjust_gfint_frame_constraint(cpi, rc->frames_to_key);
2097 rc->frames_till_gf_update_due = rc->baseline_gf_interval;
2098 cpi->refresh_golden_frame = 1;
2099 rc->source_alt_ref_pending = 0;
2100 rc->alt_ref_gf_group = 0;
2101 if (cpi->sf.use_altref_onepass && cpi->oxcf.enable_auto_arf) {
2102 rc->source_alt_ref_pending = 1;
2103 rc->alt_ref_gf_group = 1;
2104 }
2105 }
2106 }
2107
vp9_rc_get_one_pass_vbr_params(VP9_COMP * cpi)2108 void vp9_rc_get_one_pass_vbr_params(VP9_COMP *cpi) {
2109 VP9_COMMON *const cm = &cpi->common;
2110 RATE_CONTROL *const rc = &cpi->rc;
2111 int target;
2112 if (!cpi->refresh_alt_ref_frame &&
2113 (cm->current_video_frame == 0 || (cpi->frame_flags & FRAMEFLAGS_KEY) ||
2114 rc->frames_to_key == 0)) {
2115 cm->frame_type = KEY_FRAME;
2116 rc->this_key_frame_forced =
2117 cm->current_video_frame != 0 && rc->frames_to_key == 0;
2118 rc->frames_to_key = cpi->oxcf.key_freq;
2119 rc->kf_boost = DEFAULT_KF_BOOST;
2120 rc->source_alt_ref_active = 0;
2121 } else {
2122 cm->frame_type = INTER_FRAME;
2123 }
2124 vp9_set_gf_update_one_pass_vbr(cpi);
2125 if (cm->frame_type == KEY_FRAME)
2126 target = vp9_calc_iframe_target_size_one_pass_vbr(cpi);
2127 else
2128 target = vp9_calc_pframe_target_size_one_pass_vbr(cpi);
2129 vp9_rc_set_frame_target(cpi, target);
2130 if (cpi->oxcf.aq_mode == CYCLIC_REFRESH_AQ && cpi->oxcf.pass == 0)
2131 vp9_cyclic_refresh_update_parameters(cpi);
2132 }
2133
vp9_calc_pframe_target_size_one_pass_cbr(const VP9_COMP * cpi)2134 int vp9_calc_pframe_target_size_one_pass_cbr(const VP9_COMP *cpi) {
2135 const VP9EncoderConfig *oxcf = &cpi->oxcf;
2136 const RATE_CONTROL *rc = &cpi->rc;
2137 const SVC *const svc = &cpi->svc;
2138 const int64_t diff = rc->optimal_buffer_level - rc->buffer_level;
2139 const int64_t one_pct_bits = 1 + rc->optimal_buffer_level / 100;
2140 int min_frame_target =
2141 VPXMAX(rc->avg_frame_bandwidth >> 4, FRAME_OVERHEAD_BITS);
2142 int target;
2143
2144 if (oxcf->gf_cbr_boost_pct) {
2145 const int af_ratio_pct = oxcf->gf_cbr_boost_pct + 100;
2146 target = cpi->refresh_golden_frame
2147 ? (rc->avg_frame_bandwidth * rc->baseline_gf_interval *
2148 af_ratio_pct) /
2149 (rc->baseline_gf_interval * 100 + af_ratio_pct - 100)
2150 : (rc->avg_frame_bandwidth * rc->baseline_gf_interval * 100) /
2151 (rc->baseline_gf_interval * 100 + af_ratio_pct - 100);
2152 } else {
2153 target = rc->avg_frame_bandwidth;
2154 }
2155 if (is_one_pass_svc(cpi)) {
2156 // Note that for layers, avg_frame_bandwidth is the cumulative
2157 // per-frame-bandwidth. For the target size of this frame, use the
2158 // layer average frame size (i.e., non-cumulative per-frame-bw).
2159 int layer = LAYER_IDS_TO_IDX(svc->spatial_layer_id, svc->temporal_layer_id,
2160 svc->number_temporal_layers);
2161 const LAYER_CONTEXT *lc = &svc->layer_context[layer];
2162 target = lc->avg_frame_size;
2163 min_frame_target = VPXMAX(lc->avg_frame_size >> 4, FRAME_OVERHEAD_BITS);
2164 }
2165 if (diff > 0) {
2166 // Lower the target bandwidth for this frame.
2167 const int pct_low = (int)VPXMIN(diff / one_pct_bits, oxcf->under_shoot_pct);
2168 target -= (target * pct_low) / 200;
2169 } else if (diff < 0) {
2170 // Increase the target bandwidth for this frame.
2171 const int pct_high =
2172 (int)VPXMIN(-diff / one_pct_bits, oxcf->over_shoot_pct);
2173 target += (target * pct_high) / 200;
2174 }
2175 if (oxcf->rc_max_inter_bitrate_pct) {
2176 const int max_rate =
2177 rc->avg_frame_bandwidth * oxcf->rc_max_inter_bitrate_pct / 100;
2178 target = VPXMIN(target, max_rate);
2179 }
2180 return VPXMAX(min_frame_target, target);
2181 }
2182
vp9_calc_iframe_target_size_one_pass_cbr(const VP9_COMP * cpi)2183 int vp9_calc_iframe_target_size_one_pass_cbr(const VP9_COMP *cpi) {
2184 const RATE_CONTROL *rc = &cpi->rc;
2185 const VP9EncoderConfig *oxcf = &cpi->oxcf;
2186 const SVC *const svc = &cpi->svc;
2187 int target;
2188 if (cpi->common.current_video_frame == 0) {
2189 target = ((rc->starting_buffer_level / 2) > INT_MAX)
2190 ? INT_MAX
2191 : (int)(rc->starting_buffer_level / 2);
2192 } else {
2193 int kf_boost = 32;
2194 double framerate = cpi->framerate;
2195 if (svc->number_temporal_layers > 1 && oxcf->rc_mode == VPX_CBR) {
2196 // Use the layer framerate for temporal layers CBR mode.
2197 const int layer =
2198 LAYER_IDS_TO_IDX(svc->spatial_layer_id, svc->temporal_layer_id,
2199 svc->number_temporal_layers);
2200 const LAYER_CONTEXT *lc = &svc->layer_context[layer];
2201 framerate = lc->framerate;
2202 }
2203 kf_boost = VPXMAX(kf_boost, (int)(2 * framerate - 16));
2204 if (rc->frames_since_key < framerate / 2) {
2205 kf_boost = (int)(kf_boost * rc->frames_since_key / (framerate / 2));
2206 }
2207 target = ((16 + kf_boost) * rc->avg_frame_bandwidth) >> 4;
2208 }
2209 return vp9_rc_clamp_iframe_target_size(cpi, target);
2210 }
2211
set_intra_only_frame(VP9_COMP * cpi)2212 static void set_intra_only_frame(VP9_COMP *cpi) {
2213 VP9_COMMON *const cm = &cpi->common;
2214 SVC *const svc = &cpi->svc;
2215 // Don't allow intra_only frame for bypass/flexible SVC mode, or if number
2216 // of spatial layers is 1 or if number of spatial or temporal layers > 3.
2217 // Also if intra-only is inserted on very first frame, don't allow if
2218 // if number of temporal layers > 1. This is because on intra-only frame
2219 // only 3 reference buffers can be updated, but for temporal layers > 1
2220 // we generally need to use buffer slots 4 and 5.
2221 if ((cm->current_video_frame == 0 && svc->number_temporal_layers > 1) ||
2222 svc->number_spatial_layers > 3 || svc->number_temporal_layers > 3 ||
2223 svc->number_spatial_layers == 1)
2224 return;
2225 cm->show_frame = 0;
2226 cm->intra_only = 1;
2227 cm->frame_type = INTER_FRAME;
2228 cpi->ext_refresh_frame_flags_pending = 1;
2229 cpi->ext_refresh_last_frame = 1;
2230 cpi->ext_refresh_golden_frame = 1;
2231 cpi->ext_refresh_alt_ref_frame = 1;
2232 if (cm->current_video_frame == 0) {
2233 cpi->lst_fb_idx = 0;
2234 cpi->gld_fb_idx = 1;
2235 cpi->alt_fb_idx = 2;
2236 } else {
2237 int i;
2238 int count = 0;
2239 cpi->lst_fb_idx = -1;
2240 cpi->gld_fb_idx = -1;
2241 cpi->alt_fb_idx = -1;
2242 svc->update_buffer_slot[0] = 0;
2243 // For intra-only frame we need to refresh all slots that were
2244 // being used for the base layer (fb_idx_base[i] == 1).
2245 // Start with assigning last first, then golden and then alt.
2246 for (i = 0; i < REF_FRAMES; ++i) {
2247 if (svc->fb_idx_base[i] == 1) {
2248 svc->update_buffer_slot[0] |= 1 << i;
2249 count++;
2250 }
2251 if (count == 1 && cpi->lst_fb_idx == -1) cpi->lst_fb_idx = i;
2252 if (count == 2 && cpi->gld_fb_idx == -1) cpi->gld_fb_idx = i;
2253 if (count == 3 && cpi->alt_fb_idx == -1) cpi->alt_fb_idx = i;
2254 }
2255 // If golden or alt is not being used for base layer, then set them
2256 // to the lst_fb_idx.
2257 if (cpi->gld_fb_idx == -1) cpi->gld_fb_idx = cpi->lst_fb_idx;
2258 if (cpi->alt_fb_idx == -1) cpi->alt_fb_idx = cpi->lst_fb_idx;
2259 if (svc->temporal_layering_mode == VP9E_TEMPORAL_LAYERING_MODE_BYPASS) {
2260 cpi->ext_refresh_last_frame = 0;
2261 cpi->ext_refresh_golden_frame = 0;
2262 cpi->ext_refresh_alt_ref_frame = 0;
2263 cpi->ref_frame_flags = 0;
2264 }
2265 }
2266 }
2267
vp9_rc_get_svc_params(VP9_COMP * cpi)2268 void vp9_rc_get_svc_params(VP9_COMP *cpi) {
2269 VP9_COMMON *const cm = &cpi->common;
2270 RATE_CONTROL *const rc = &cpi->rc;
2271 SVC *const svc = &cpi->svc;
2272 int target = rc->avg_frame_bandwidth;
2273 int layer = LAYER_IDS_TO_IDX(svc->spatial_layer_id, svc->temporal_layer_id,
2274 svc->number_temporal_layers);
2275 if (svc->first_spatial_layer_to_encode)
2276 svc->layer_context[svc->temporal_layer_id].is_key_frame = 0;
2277 // Periodic key frames is based on the super-frame counter
2278 // (svc.current_superframe), also only base spatial layer is key frame.
2279 // Key frame is set for any of the following: very first frame, frame flags
2280 // indicates key, superframe counter hits key frequency, or (non-intra) sync
2281 // flag is set for spatial layer 0.
2282 if ((cm->current_video_frame == 0 && !svc->previous_frame_is_intra_only) ||
2283 (cpi->frame_flags & FRAMEFLAGS_KEY) ||
2284 (cpi->oxcf.auto_key &&
2285 (svc->current_superframe % cpi->oxcf.key_freq == 0) &&
2286 !svc->previous_frame_is_intra_only && svc->spatial_layer_id == 0) ||
2287 (svc->spatial_layer_sync[0] == 1 && svc->spatial_layer_id == 0)) {
2288 cm->frame_type = KEY_FRAME;
2289 rc->source_alt_ref_active = 0;
2290 if (is_one_pass_svc(cpi)) {
2291 if (cm->current_video_frame > 0) vp9_svc_reset_temporal_layers(cpi, 1);
2292 layer = LAYER_IDS_TO_IDX(svc->spatial_layer_id, svc->temporal_layer_id,
2293 svc->number_temporal_layers);
2294 svc->layer_context[layer].is_key_frame = 1;
2295 cpi->ref_frame_flags &= (~VP9_LAST_FLAG & ~VP9_GOLD_FLAG & ~VP9_ALT_FLAG);
2296 // Assumption here is that LAST_FRAME is being updated for a keyframe.
2297 // Thus no change in update flags.
2298 if (cpi->oxcf.rc_mode == VPX_CBR)
2299 target = vp9_calc_iframe_target_size_one_pass_cbr(cpi);
2300 else
2301 target = vp9_calc_iframe_target_size_one_pass_vbr(cpi);
2302 }
2303 } else {
2304 cm->frame_type = INTER_FRAME;
2305 if (is_one_pass_svc(cpi)) {
2306 LAYER_CONTEXT *lc = &svc->layer_context[layer];
2307 // Add condition current_video_frame > 0 for the case where first frame
2308 // is intra only followed by overlay/copy frame. In this case we don't
2309 // want to reset is_key_frame to 0 on overlay/copy frame.
2310 lc->is_key_frame =
2311 (svc->spatial_layer_id == 0 && cm->current_video_frame > 0)
2312 ? 0
2313 : svc->layer_context[svc->temporal_layer_id].is_key_frame;
2314 if (cpi->oxcf.rc_mode == VPX_CBR) {
2315 target = vp9_calc_pframe_target_size_one_pass_cbr(cpi);
2316 } else {
2317 double rate_err = 0.0;
2318 rc->fac_active_worst_inter = 140;
2319 rc->fac_active_worst_gf = 100;
2320 if (rc->rolling_target_bits > 0) {
2321 rate_err =
2322 (double)rc->rolling_actual_bits / (double)rc->rolling_target_bits;
2323 if (rate_err < 1.0)
2324 rc->fac_active_worst_inter = 120;
2325 else if (rate_err > 2.0)
2326 // Increase active_worst faster if rate fluctuation is high.
2327 rc->fac_active_worst_inter = 160;
2328 }
2329 target = vp9_calc_pframe_target_size_one_pass_vbr(cpi);
2330 }
2331 }
2332 }
2333
2334 if (svc->simulcast_mode) {
2335 if (svc->spatial_layer_id > 0 &&
2336 svc->layer_context[layer].is_key_frame == 1) {
2337 cm->frame_type = KEY_FRAME;
2338 cpi->ref_frame_flags &= (~VP9_LAST_FLAG & ~VP9_GOLD_FLAG & ~VP9_ALT_FLAG);
2339 if (cpi->oxcf.rc_mode == VPX_CBR)
2340 target = vp9_calc_iframe_target_size_one_pass_cbr(cpi);
2341 else
2342 target = vp9_calc_iframe_target_size_one_pass_vbr(cpi);
2343 }
2344 // Set the buffer idx and refresh flags for key frames in simulcast mode.
2345 // Note the buffer slot for long-term reference is set below (line 2255),
2346 // and alt_ref is used for that on key frame. So use last and golden for
2347 // the other two normal slots.
2348 if (cm->frame_type == KEY_FRAME) {
2349 if (svc->number_spatial_layers == 2) {
2350 if (svc->spatial_layer_id == 0) {
2351 cpi->lst_fb_idx = 0;
2352 cpi->gld_fb_idx = 2;
2353 cpi->alt_fb_idx = 6;
2354 } else if (svc->spatial_layer_id == 1) {
2355 cpi->lst_fb_idx = 1;
2356 cpi->gld_fb_idx = 3;
2357 cpi->alt_fb_idx = 6;
2358 }
2359 } else if (svc->number_spatial_layers == 3) {
2360 if (svc->spatial_layer_id == 0) {
2361 cpi->lst_fb_idx = 0;
2362 cpi->gld_fb_idx = 3;
2363 cpi->alt_fb_idx = 6;
2364 } else if (svc->spatial_layer_id == 1) {
2365 cpi->lst_fb_idx = 1;
2366 cpi->gld_fb_idx = 4;
2367 cpi->alt_fb_idx = 6;
2368 } else if (svc->spatial_layer_id == 2) {
2369 cpi->lst_fb_idx = 2;
2370 cpi->gld_fb_idx = 5;
2371 cpi->alt_fb_idx = 7;
2372 }
2373 }
2374 cpi->ext_refresh_last_frame = 1;
2375 cpi->ext_refresh_golden_frame = 1;
2376 cpi->ext_refresh_alt_ref_frame = 1;
2377 }
2378 }
2379
2380 // Check if superframe contains a sync layer request.
2381 vp9_svc_check_spatial_layer_sync(cpi);
2382
2383 // If long term termporal feature is enabled, set the period of the update.
2384 // The update/refresh of this reference frame is always on base temporal
2385 // layer frame.
2386 if (svc->use_gf_temporal_ref_current_layer) {
2387 // Only use gf long-term prediction on non-key superframes.
2388 if (!svc->layer_context[svc->temporal_layer_id].is_key_frame) {
2389 // Use golden for this reference, which will be used for prediction.
2390 int index = svc->spatial_layer_id;
2391 if (svc->number_spatial_layers == 3) index = svc->spatial_layer_id - 1;
2392 assert(index >= 0);
2393 cpi->gld_fb_idx = svc->buffer_gf_temporal_ref[index].idx;
2394 // Enable prediction off LAST (last reference) and golden (which will
2395 // generally be further behind/long-term reference).
2396 cpi->ref_frame_flags = VP9_LAST_FLAG | VP9_GOLD_FLAG;
2397 }
2398 // Check for update/refresh of reference: only refresh on base temporal
2399 // layer.
2400 if (svc->temporal_layer_id == 0) {
2401 if (svc->layer_context[svc->temporal_layer_id].is_key_frame) {
2402 // On key frame we update the buffer index used for long term reference.
2403 // Use the alt_ref since it is not used or updated on key frames.
2404 int index = svc->spatial_layer_id;
2405 if (svc->number_spatial_layers == 3) index = svc->spatial_layer_id - 1;
2406 assert(index >= 0);
2407 cpi->alt_fb_idx = svc->buffer_gf_temporal_ref[index].idx;
2408 cpi->ext_refresh_alt_ref_frame = 1;
2409 } else if (rc->frames_till_gf_update_due == 0) {
2410 // Set perdiod of next update. Make it a multiple of 10, as the cyclic
2411 // refresh is typically ~10%, and we'd like the update to happen after
2412 // a few cylces of the refresh (so it better quality frame). Note the
2413 // cyclic refresh for SVC only operates on base temporal layer frames.
2414 // Choose 20 as perdiod for now (2 cycles).
2415 rc->baseline_gf_interval = 20;
2416 rc->frames_till_gf_update_due = rc->baseline_gf_interval;
2417 cpi->ext_refresh_golden_frame = 1;
2418 rc->gfu_boost = DEFAULT_GF_BOOST;
2419 }
2420 }
2421 } else if (!svc->use_gf_temporal_ref) {
2422 rc->frames_till_gf_update_due = INT_MAX;
2423 rc->baseline_gf_interval = INT_MAX;
2424 }
2425 if (svc->set_intra_only_frame) {
2426 set_intra_only_frame(cpi);
2427 if (cpi->oxcf.rc_mode == VPX_CBR)
2428 target = vp9_calc_iframe_target_size_one_pass_cbr(cpi);
2429 else
2430 target = vp9_calc_iframe_target_size_one_pass_vbr(cpi);
2431 }
2432 // Overlay frame predicts from LAST (intra-only)
2433 if (svc->previous_frame_is_intra_only) cpi->ref_frame_flags |= VP9_LAST_FLAG;
2434
2435 // Any update/change of global cyclic refresh parameters (amount/delta-qp)
2436 // should be done here, before the frame qp is selected.
2437 if (cpi->oxcf.aq_mode == CYCLIC_REFRESH_AQ)
2438 vp9_cyclic_refresh_update_parameters(cpi);
2439
2440 vp9_rc_set_frame_target(cpi, target);
2441 if (cm->show_frame) update_buffer_level_svc_preencode(cpi);
2442
2443 if (cpi->oxcf.resize_mode == RESIZE_DYNAMIC && svc->single_layer_svc == 1 &&
2444 svc->spatial_layer_id == svc->first_spatial_layer_to_encode &&
2445 svc->temporal_layer_id == 0) {
2446 LAYER_CONTEXT *lc = NULL;
2447 cpi->resize_pending = vp9_resize_one_pass_cbr(cpi);
2448 if (cpi->resize_pending) {
2449 int tl, width, height;
2450 // Apply the same scale to all temporal layers.
2451 for (tl = 0; tl < svc->number_temporal_layers; tl++) {
2452 lc = &svc->layer_context[svc->spatial_layer_id *
2453 svc->number_temporal_layers +
2454 tl];
2455 lc->scaling_factor_num_resize =
2456 cpi->resize_scale_num * lc->scaling_factor_num;
2457 lc->scaling_factor_den_resize =
2458 cpi->resize_scale_den * lc->scaling_factor_den;
2459 // Reset rate control for all temporal layers.
2460 lc->rc.buffer_level = lc->rc.optimal_buffer_level;
2461 lc->rc.bits_off_target = lc->rc.optimal_buffer_level;
2462 lc->rc.rate_correction_factors[INTER_FRAME] =
2463 rc->rate_correction_factors[INTER_FRAME];
2464 }
2465 // Set the size for this current temporal layer.
2466 lc = &svc->layer_context[svc->spatial_layer_id *
2467 svc->number_temporal_layers +
2468 svc->temporal_layer_id];
2469 get_layer_resolution(cpi->oxcf.width, cpi->oxcf.height,
2470 lc->scaling_factor_num_resize,
2471 lc->scaling_factor_den_resize, &width, &height);
2472 vp9_set_size_literal(cpi, width, height);
2473 svc->resize_set = 1;
2474 }
2475 } else {
2476 cpi->resize_pending = 0;
2477 svc->resize_set = 0;
2478 }
2479 }
2480
vp9_rc_get_one_pass_cbr_params(VP9_COMP * cpi)2481 void vp9_rc_get_one_pass_cbr_params(VP9_COMP *cpi) {
2482 VP9_COMMON *const cm = &cpi->common;
2483 RATE_CONTROL *const rc = &cpi->rc;
2484 int target;
2485 if ((cm->current_video_frame == 0) || (cpi->frame_flags & FRAMEFLAGS_KEY) ||
2486 (cpi->oxcf.auto_key && rc->frames_to_key == 0)) {
2487 cm->frame_type = KEY_FRAME;
2488 rc->frames_to_key = cpi->oxcf.key_freq;
2489 rc->kf_boost = DEFAULT_KF_BOOST;
2490 rc->source_alt_ref_active = 0;
2491 } else {
2492 cm->frame_type = INTER_FRAME;
2493 }
2494 if (rc->frames_till_gf_update_due == 0) {
2495 if (cpi->oxcf.aq_mode == CYCLIC_REFRESH_AQ)
2496 vp9_cyclic_refresh_set_golden_update(cpi);
2497 else
2498 rc->baseline_gf_interval =
2499 (rc->min_gf_interval + rc->max_gf_interval) / 2;
2500 rc->frames_till_gf_update_due = rc->baseline_gf_interval;
2501 // NOTE: frames_till_gf_update_due must be <= frames_to_key.
2502 if (rc->frames_till_gf_update_due > rc->frames_to_key)
2503 rc->frames_till_gf_update_due = rc->frames_to_key;
2504 cpi->refresh_golden_frame = 1;
2505 rc->gfu_boost = DEFAULT_GF_BOOST;
2506 }
2507
2508 // Any update/change of global cyclic refresh parameters (amount/delta-qp)
2509 // should be done here, before the frame qp is selected.
2510 if (cpi->oxcf.aq_mode == CYCLIC_REFRESH_AQ)
2511 vp9_cyclic_refresh_update_parameters(cpi);
2512
2513 if (frame_is_intra_only(cm))
2514 target = vp9_calc_iframe_target_size_one_pass_cbr(cpi);
2515 else
2516 target = vp9_calc_pframe_target_size_one_pass_cbr(cpi);
2517
2518 vp9_rc_set_frame_target(cpi, target);
2519
2520 if (cm->show_frame) vp9_update_buffer_level_preencode(cpi);
2521
2522 if (cpi->oxcf.resize_mode == RESIZE_DYNAMIC)
2523 cpi->resize_pending = vp9_resize_one_pass_cbr(cpi);
2524 else
2525 cpi->resize_pending = 0;
2526 }
2527
vp9_compute_qdelta(const RATE_CONTROL * rc,double qstart,double qtarget,vpx_bit_depth_t bit_depth)2528 int vp9_compute_qdelta(const RATE_CONTROL *rc, double qstart, double qtarget,
2529 vpx_bit_depth_t bit_depth) {
2530 int start_index = rc->worst_quality;
2531 int target_index = rc->worst_quality;
2532 int i;
2533
2534 // Convert the average q value to an index.
2535 for (i = rc->best_quality; i < rc->worst_quality; ++i) {
2536 start_index = i;
2537 if (vp9_convert_qindex_to_q(i, bit_depth) >= qstart) break;
2538 }
2539
2540 // Convert the q target to an index
2541 for (i = rc->best_quality; i < rc->worst_quality; ++i) {
2542 target_index = i;
2543 if (vp9_convert_qindex_to_q(i, bit_depth) >= qtarget) break;
2544 }
2545
2546 return target_index - start_index;
2547 }
2548
vp9_compute_qdelta_by_rate(const RATE_CONTROL * rc,FRAME_TYPE frame_type,int qindex,double rate_target_ratio,vpx_bit_depth_t bit_depth)2549 int vp9_compute_qdelta_by_rate(const RATE_CONTROL *rc, FRAME_TYPE frame_type,
2550 int qindex, double rate_target_ratio,
2551 vpx_bit_depth_t bit_depth) {
2552 int target_index = rc->worst_quality;
2553 int i;
2554
2555 // Look up the current projected bits per block for the base index
2556 const int base_bits_per_mb =
2557 vp9_rc_bits_per_mb(frame_type, qindex, 1.0, bit_depth);
2558
2559 // Find the target bits per mb based on the base value and given ratio.
2560 const int target_bits_per_mb = (int)(rate_target_ratio * base_bits_per_mb);
2561
2562 // Convert the q target to an index
2563 for (i = rc->best_quality; i < rc->worst_quality; ++i) {
2564 if (vp9_rc_bits_per_mb(frame_type, i, 1.0, bit_depth) <=
2565 target_bits_per_mb) {
2566 target_index = i;
2567 break;
2568 }
2569 }
2570 return target_index - qindex;
2571 }
2572
vp9_rc_set_gf_interval_range(const VP9_COMP * const cpi,RATE_CONTROL * const rc)2573 void vp9_rc_set_gf_interval_range(const VP9_COMP *const cpi,
2574 RATE_CONTROL *const rc) {
2575 const VP9EncoderConfig *const oxcf = &cpi->oxcf;
2576
2577 // Special case code for 1 pass fixed Q mode tests
2578 if ((oxcf->pass == 0) && (oxcf->rc_mode == VPX_Q)) {
2579 rc->max_gf_interval = FIXED_GF_INTERVAL;
2580 rc->min_gf_interval = FIXED_GF_INTERVAL;
2581 rc->static_scene_max_gf_interval = FIXED_GF_INTERVAL;
2582 } else {
2583 double framerate = cpi->framerate;
2584 // Set Maximum gf/arf interval
2585 rc->max_gf_interval = oxcf->max_gf_interval;
2586 rc->min_gf_interval = oxcf->min_gf_interval;
2587 #if CONFIG_RATE_CTRL
2588 if (oxcf->use_simple_encode_api) {
2589 // In this experiment, we avoid framerate being changed dynamically during
2590 // encoding.
2591 framerate = oxcf->init_framerate;
2592 }
2593 #endif // CONFIG_RATE_CTRL
2594 if (rc->min_gf_interval == 0) {
2595 rc->min_gf_interval = vp9_rc_get_default_min_gf_interval(
2596 oxcf->width, oxcf->height, framerate);
2597 }
2598 if (rc->max_gf_interval == 0) {
2599 rc->max_gf_interval =
2600 vp9_rc_get_default_max_gf_interval(framerate, rc->min_gf_interval);
2601 }
2602
2603 // Extended max interval for genuinely static scenes like slide shows.
2604 rc->static_scene_max_gf_interval = MAX_STATIC_GF_GROUP_LENGTH;
2605
2606 if (rc->max_gf_interval > rc->static_scene_max_gf_interval)
2607 rc->max_gf_interval = rc->static_scene_max_gf_interval;
2608
2609 // Clamp min to max
2610 rc->min_gf_interval = VPXMIN(rc->min_gf_interval, rc->max_gf_interval);
2611
2612 if (oxcf->target_level == LEVEL_AUTO) {
2613 const uint32_t pic_size = cpi->common.width * cpi->common.height;
2614 const uint32_t pic_breadth =
2615 VPXMAX(cpi->common.width, cpi->common.height);
2616 int i;
2617 for (i = 0; i < VP9_LEVELS; ++i) {
2618 if (vp9_level_defs[i].max_luma_picture_size >= pic_size &&
2619 vp9_level_defs[i].max_luma_picture_breadth >= pic_breadth) {
2620 if (rc->min_gf_interval <=
2621 (int)vp9_level_defs[i].min_altref_distance) {
2622 rc->min_gf_interval = (int)vp9_level_defs[i].min_altref_distance;
2623 rc->max_gf_interval =
2624 VPXMAX(rc->max_gf_interval, rc->min_gf_interval);
2625 }
2626 break;
2627 }
2628 }
2629 }
2630 }
2631 }
2632
vp9_rc_update_framerate(VP9_COMP * cpi)2633 void vp9_rc_update_framerate(VP9_COMP *cpi) {
2634 const VP9_COMMON *const cm = &cpi->common;
2635 const VP9EncoderConfig *const oxcf = &cpi->oxcf;
2636 RATE_CONTROL *const rc = &cpi->rc;
2637 int vbr_max_bits;
2638
2639 rc->avg_frame_bandwidth = (int)(oxcf->target_bandwidth / cpi->framerate);
2640 rc->min_frame_bandwidth =
2641 (int)(rc->avg_frame_bandwidth * oxcf->two_pass_vbrmin_section / 100);
2642
2643 rc->min_frame_bandwidth =
2644 VPXMAX(rc->min_frame_bandwidth, FRAME_OVERHEAD_BITS);
2645
2646 // A maximum bitrate for a frame is defined.
2647 // However this limit is extended if a very high rate is given on the command
2648 // line or the rate can not be achieved because of a user specified max q
2649 // (e.g. when the user specifies lossless encode).
2650 //
2651 // If a level is specified that requires a lower maximum rate then the level
2652 // value take precedence.
2653 vbr_max_bits =
2654 (int)(((int64_t)rc->avg_frame_bandwidth * oxcf->two_pass_vbrmax_section) /
2655 100);
2656 rc->max_frame_bandwidth =
2657 VPXMAX(VPXMAX((cm->MBs * MAX_MB_RATE), MAXRATE_1080P), vbr_max_bits);
2658
2659 vp9_rc_set_gf_interval_range(cpi, rc);
2660 }
2661
2662 #define VBR_PCT_ADJUSTMENT_LIMIT 50
2663 // For VBR...adjustment to the frame target based on error from previous frames
vbr_rate_correction(VP9_COMP * cpi,int * this_frame_target)2664 static void vbr_rate_correction(VP9_COMP *cpi, int *this_frame_target) {
2665 RATE_CONTROL *const rc = &cpi->rc;
2666 int64_t vbr_bits_off_target = rc->vbr_bits_off_target;
2667 int max_delta;
2668 int frame_window = VPXMIN(16, ((int)cpi->twopass.total_stats.count -
2669 cpi->common.current_video_frame));
2670
2671 // Calcluate the adjustment to rate for this frame.
2672 if (frame_window > 0) {
2673 max_delta = (vbr_bits_off_target > 0)
2674 ? (int)(vbr_bits_off_target / frame_window)
2675 : (int)(-vbr_bits_off_target / frame_window);
2676
2677 max_delta = VPXMIN(max_delta,
2678 ((*this_frame_target * VBR_PCT_ADJUSTMENT_LIMIT) / 100));
2679
2680 // vbr_bits_off_target > 0 means we have extra bits to spend
2681 if (vbr_bits_off_target > 0) {
2682 *this_frame_target += (vbr_bits_off_target > max_delta)
2683 ? max_delta
2684 : (int)vbr_bits_off_target;
2685 } else {
2686 *this_frame_target -= (vbr_bits_off_target < -max_delta)
2687 ? max_delta
2688 : (int)-vbr_bits_off_target;
2689 }
2690 }
2691
2692 // Fast redistribution of bits arising from massive local undershoot.
2693 // Dont do it for kf,arf,gf or overlay frames.
2694 if (!frame_is_kf_gf_arf(cpi) && !rc->is_src_frame_alt_ref &&
2695 rc->vbr_bits_off_target_fast) {
2696 int one_frame_bits = VPXMAX(rc->avg_frame_bandwidth, *this_frame_target);
2697 int fast_extra_bits;
2698 fast_extra_bits = (int)VPXMIN(rc->vbr_bits_off_target_fast, one_frame_bits);
2699 fast_extra_bits = (int)VPXMIN(
2700 fast_extra_bits,
2701 VPXMAX(one_frame_bits / 8, rc->vbr_bits_off_target_fast / 8));
2702 *this_frame_target += (int)fast_extra_bits;
2703 rc->vbr_bits_off_target_fast -= fast_extra_bits;
2704 }
2705 }
2706
vp9_set_target_rate(VP9_COMP * cpi)2707 void vp9_set_target_rate(VP9_COMP *cpi) {
2708 RATE_CONTROL *const rc = &cpi->rc;
2709 int target_rate = rc->base_frame_target;
2710
2711 if (cpi->common.frame_type == KEY_FRAME)
2712 target_rate = vp9_rc_clamp_iframe_target_size(cpi, target_rate);
2713 else
2714 target_rate = vp9_rc_clamp_pframe_target_size(cpi, target_rate);
2715
2716 if (!cpi->oxcf.vbr_corpus_complexity) {
2717 // Correction to rate target based on prior over or under shoot.
2718 if (cpi->oxcf.rc_mode == VPX_VBR || cpi->oxcf.rc_mode == VPX_CQ)
2719 vbr_rate_correction(cpi, &target_rate);
2720 }
2721 vp9_rc_set_frame_target(cpi, target_rate);
2722 }
2723
2724 // Check if we should resize, based on average QP from past x frames.
2725 // Only allow for resize at most one scale down for now, scaling factor is 2.
vp9_resize_one_pass_cbr(VP9_COMP * cpi)2726 int vp9_resize_one_pass_cbr(VP9_COMP *cpi) {
2727 const VP9_COMMON *const cm = &cpi->common;
2728 RATE_CONTROL *const rc = &cpi->rc;
2729 RESIZE_ACTION resize_action = NO_RESIZE;
2730 int avg_qp_thr1 = 70;
2731 int avg_qp_thr2 = 50;
2732 // Don't allow for resized frame to go below 320x180, resize in steps of 3/4.
2733 int min_width = (320 * 4) / 3;
2734 int min_height = (180 * 4) / 3;
2735 int down_size_on = 1;
2736 int force_downsize_rate = 0;
2737 cpi->resize_scale_num = 1;
2738 cpi->resize_scale_den = 1;
2739 // Don't resize on key frame; reset the counters on key frame.
2740 if (cm->frame_type == KEY_FRAME) {
2741 cpi->resize_avg_qp = 0;
2742 cpi->resize_count = 0;
2743 return 0;
2744 }
2745
2746 // No resizing down if frame size is below some limit.
2747 if ((cm->width * cm->height) < min_width * min_height) down_size_on = 0;
2748
2749 #if CONFIG_VP9_TEMPORAL_DENOISING
2750 // If denoiser is on, apply a smaller qp threshold.
2751 if (cpi->oxcf.noise_sensitivity > 0) {
2752 avg_qp_thr1 = 60;
2753 avg_qp_thr2 = 40;
2754 }
2755 #endif
2756
2757 // Force downsize based on per-frame-bandwidth, for extreme case,
2758 // for HD input.
2759 if (cpi->resize_state == ORIG && cm->width * cm->height >= 1280 * 720) {
2760 if (rc->avg_frame_bandwidth < 300000 / 30) {
2761 resize_action = DOWN_ONEHALF;
2762 cpi->resize_state = ONE_HALF;
2763 force_downsize_rate = 1;
2764 } else if (rc->avg_frame_bandwidth < 400000 / 30) {
2765 resize_action = ONEHALFONLY_RESIZE ? DOWN_ONEHALF : DOWN_THREEFOUR;
2766 cpi->resize_state = ONEHALFONLY_RESIZE ? ONE_HALF : THREE_QUARTER;
2767 force_downsize_rate = 1;
2768 }
2769 } else if (cpi->resize_state == THREE_QUARTER &&
2770 cm->width * cm->height >= 960 * 540) {
2771 if (rc->avg_frame_bandwidth < 300000 / 30) {
2772 resize_action = DOWN_ONEHALF;
2773 cpi->resize_state = ONE_HALF;
2774 force_downsize_rate = 1;
2775 }
2776 }
2777
2778 // Resize based on average buffer underflow and QP over some window.
2779 // Ignore samples close to key frame, since QP is usually high after key.
2780 if (!force_downsize_rate && cpi->rc.frames_since_key > cpi->framerate) {
2781 const int window = VPXMIN(30, (int)(2 * cpi->framerate));
2782 cpi->resize_avg_qp += rc->last_q[INTER_FRAME];
2783 if (cpi->rc.buffer_level < (int)(30 * rc->optimal_buffer_level / 100))
2784 ++cpi->resize_buffer_underflow;
2785 ++cpi->resize_count;
2786 // Check for resize action every "window" frames.
2787 if (cpi->resize_count >= window) {
2788 int avg_qp = cpi->resize_avg_qp / cpi->resize_count;
2789 // Resize down if buffer level has underflowed sufficient amount in past
2790 // window, and we are at original or 3/4 of original resolution.
2791 // Resize back up if average QP is low, and we are currently in a resized
2792 // down state, i.e. 1/2 or 3/4 of original resolution.
2793 // Currently, use a flag to turn 3/4 resizing feature on/off.
2794 if (cpi->resize_buffer_underflow > (cpi->resize_count >> 2) &&
2795 down_size_on) {
2796 if (cpi->resize_state == THREE_QUARTER) {
2797 resize_action = DOWN_ONEHALF;
2798 cpi->resize_state = ONE_HALF;
2799 } else if (cpi->resize_state == ORIG) {
2800 resize_action = ONEHALFONLY_RESIZE ? DOWN_ONEHALF : DOWN_THREEFOUR;
2801 cpi->resize_state = ONEHALFONLY_RESIZE ? ONE_HALF : THREE_QUARTER;
2802 }
2803 } else if (cpi->resize_state != ORIG &&
2804 avg_qp < avg_qp_thr1 * cpi->rc.worst_quality / 100) {
2805 if (cpi->resize_state == THREE_QUARTER ||
2806 avg_qp < avg_qp_thr2 * cpi->rc.worst_quality / 100 ||
2807 ONEHALFONLY_RESIZE) {
2808 resize_action = UP_ORIG;
2809 cpi->resize_state = ORIG;
2810 } else if (cpi->resize_state == ONE_HALF) {
2811 resize_action = UP_THREEFOUR;
2812 cpi->resize_state = THREE_QUARTER;
2813 }
2814 }
2815 // Reset for next window measurement.
2816 cpi->resize_avg_qp = 0;
2817 cpi->resize_count = 0;
2818 cpi->resize_buffer_underflow = 0;
2819 }
2820 }
2821 // If decision is to resize, reset some quantities, and check is we should
2822 // reduce rate correction factor,
2823 if (resize_action != NO_RESIZE) {
2824 int target_bits_per_frame;
2825 int active_worst_quality;
2826 int qindex;
2827 int tot_scale_change;
2828 if (resize_action == DOWN_THREEFOUR || resize_action == UP_THREEFOUR) {
2829 cpi->resize_scale_num = 3;
2830 cpi->resize_scale_den = 4;
2831 } else if (resize_action == DOWN_ONEHALF) {
2832 cpi->resize_scale_num = 1;
2833 cpi->resize_scale_den = 2;
2834 } else { // UP_ORIG or anything else
2835 cpi->resize_scale_num = 1;
2836 cpi->resize_scale_den = 1;
2837 }
2838 tot_scale_change = (cpi->resize_scale_den * cpi->resize_scale_den) /
2839 (cpi->resize_scale_num * cpi->resize_scale_num);
2840 // Reset buffer level to optimal, update target size.
2841 rc->buffer_level = rc->optimal_buffer_level;
2842 rc->bits_off_target = rc->optimal_buffer_level;
2843 rc->this_frame_target = vp9_calc_pframe_target_size_one_pass_cbr(cpi);
2844 // Get the projected qindex, based on the scaled target frame size (scaled
2845 // so target_bits_per_mb in vp9_rc_regulate_q will be correct target).
2846 target_bits_per_frame = (resize_action >= 0)
2847 ? rc->this_frame_target * tot_scale_change
2848 : rc->this_frame_target / tot_scale_change;
2849 active_worst_quality = calc_active_worst_quality_one_pass_cbr(cpi);
2850 qindex = vp9_rc_regulate_q(cpi, target_bits_per_frame, rc->best_quality,
2851 active_worst_quality);
2852 // If resize is down, check if projected q index is close to worst_quality,
2853 // and if so, reduce the rate correction factor (since likely can afford
2854 // lower q for resized frame).
2855 if (resize_action > 0 && qindex > 90 * cpi->rc.worst_quality / 100) {
2856 rc->rate_correction_factors[INTER_NORMAL] *= 0.85;
2857 }
2858 // If resize is back up, check if projected q index is too much above the
2859 // current base_qindex, and if so, reduce the rate correction factor
2860 // (since prefer to keep q for resized frame at least close to previous q).
2861 if (resize_action < 0 && qindex > 130 * cm->base_qindex / 100) {
2862 rc->rate_correction_factors[INTER_NORMAL] *= 0.9;
2863 }
2864 }
2865 return resize_action;
2866 }
2867
adjust_gf_boost_lag_one_pass_vbr(VP9_COMP * cpi,uint64_t avg_sad_current)2868 static void adjust_gf_boost_lag_one_pass_vbr(VP9_COMP *cpi,
2869 uint64_t avg_sad_current) {
2870 VP9_COMMON *const cm = &cpi->common;
2871 RATE_CONTROL *const rc = &cpi->rc;
2872 int target;
2873 int found = 0;
2874 int found2 = 0;
2875 int frame;
2876 int i;
2877 uint64_t avg_source_sad_lag = avg_sad_current;
2878 int high_source_sad_lagindex = -1;
2879 int steady_sad_lagindex = -1;
2880 uint32_t sad_thresh1 = 70000;
2881 uint32_t sad_thresh2 = 120000;
2882 int low_content = 0;
2883 int high_content = 0;
2884 double rate_err = 1.0;
2885 // Get measure of complexity over the future frames, and get the first
2886 // future frame with high_source_sad/scene-change.
2887 int tot_frames = (int)vp9_lookahead_depth(cpi->lookahead) - 1;
2888 for (frame = tot_frames; frame >= 1; --frame) {
2889 const int lagframe_idx = tot_frames - frame + 1;
2890 uint64_t reference_sad = rc->avg_source_sad[0];
2891 for (i = 1; i < lagframe_idx; ++i) {
2892 if (rc->avg_source_sad[i] > 0)
2893 reference_sad = (3 * reference_sad + rc->avg_source_sad[i]) >> 2;
2894 }
2895 // Detect up-coming scene change.
2896 if (!found &&
2897 (rc->avg_source_sad[lagframe_idx] >
2898 VPXMAX(sad_thresh1, (unsigned int)(reference_sad << 1)) ||
2899 rc->avg_source_sad[lagframe_idx] >
2900 VPXMAX(3 * sad_thresh1 >> 2,
2901 (unsigned int)(reference_sad << 2)))) {
2902 high_source_sad_lagindex = lagframe_idx;
2903 found = 1;
2904 }
2905 // Detect change from motion to steady.
2906 if (!found2 && lagframe_idx > 1 && lagframe_idx < tot_frames &&
2907 rc->avg_source_sad[lagframe_idx - 1] > (sad_thresh1 >> 2)) {
2908 found2 = 1;
2909 for (i = lagframe_idx; i < tot_frames; ++i) {
2910 if (!(rc->avg_source_sad[i] > 0 &&
2911 rc->avg_source_sad[i] < (sad_thresh1 >> 2) &&
2912 rc->avg_source_sad[i] <
2913 (rc->avg_source_sad[lagframe_idx - 1] >> 1))) {
2914 found2 = 0;
2915 i = tot_frames;
2916 }
2917 }
2918 if (found2) steady_sad_lagindex = lagframe_idx;
2919 }
2920 avg_source_sad_lag += rc->avg_source_sad[lagframe_idx];
2921 }
2922 if (tot_frames > 0) avg_source_sad_lag = avg_source_sad_lag / tot_frames;
2923 // Constrain distance between detected scene cuts.
2924 if (high_source_sad_lagindex != -1 &&
2925 high_source_sad_lagindex != rc->high_source_sad_lagindex - 1 &&
2926 abs(high_source_sad_lagindex - rc->high_source_sad_lagindex) < 4)
2927 rc->high_source_sad_lagindex = -1;
2928 else
2929 rc->high_source_sad_lagindex = high_source_sad_lagindex;
2930 // Adjust some factors for the next GF group, ignore initial key frame,
2931 // and only for lag_in_frames not too small.
2932 if (cpi->refresh_golden_frame == 1 && cm->current_video_frame > 30 &&
2933 cpi->oxcf.lag_in_frames > 8) {
2934 int frame_constraint;
2935 if (rc->rolling_target_bits > 0)
2936 rate_err =
2937 (double)rc->rolling_actual_bits / (double)rc->rolling_target_bits;
2938 high_content = high_source_sad_lagindex != -1 ||
2939 avg_source_sad_lag > (rc->prev_avg_source_sad_lag << 1) ||
2940 avg_source_sad_lag > sad_thresh2;
2941 low_content = high_source_sad_lagindex == -1 &&
2942 ((avg_source_sad_lag < (rc->prev_avg_source_sad_lag >> 1)) ||
2943 (avg_source_sad_lag < sad_thresh1));
2944 if (low_content) {
2945 rc->gfu_boost = DEFAULT_GF_BOOST;
2946 rc->baseline_gf_interval =
2947 VPXMIN(15, (3 * rc->baseline_gf_interval) >> 1);
2948 } else if (high_content) {
2949 rc->gfu_boost = DEFAULT_GF_BOOST >> 1;
2950 rc->baseline_gf_interval = (rate_err > 3.0)
2951 ? VPXMAX(10, rc->baseline_gf_interval >> 1)
2952 : VPXMAX(6, rc->baseline_gf_interval >> 1);
2953 }
2954 if (rc->baseline_gf_interval > cpi->oxcf.lag_in_frames - 1)
2955 rc->baseline_gf_interval = cpi->oxcf.lag_in_frames - 1;
2956 // Check for constraining gf_interval for up-coming scene/content changes,
2957 // or for up-coming key frame, whichever is closer.
2958 frame_constraint = rc->frames_to_key;
2959 if (rc->high_source_sad_lagindex > 0 &&
2960 frame_constraint > rc->high_source_sad_lagindex)
2961 frame_constraint = rc->high_source_sad_lagindex;
2962 if (steady_sad_lagindex > 3 && frame_constraint > steady_sad_lagindex)
2963 frame_constraint = steady_sad_lagindex;
2964 adjust_gfint_frame_constraint(cpi, frame_constraint);
2965 rc->frames_till_gf_update_due = rc->baseline_gf_interval;
2966 // Adjust factors for active_worst setting & af_ratio for next gf interval.
2967 rc->fac_active_worst_inter = 150; // corresponds to 3/2 (= 150 /100).
2968 rc->fac_active_worst_gf = 100;
2969 if (rate_err < 2.0 && !high_content) {
2970 rc->fac_active_worst_inter = 120;
2971 rc->fac_active_worst_gf = 90;
2972 } else if (rate_err > 8.0 && rc->avg_frame_qindex[INTER_FRAME] < 16) {
2973 // Increase active_worst faster at low Q if rate fluctuation is high.
2974 rc->fac_active_worst_inter = 200;
2975 if (rc->avg_frame_qindex[INTER_FRAME] < 8)
2976 rc->fac_active_worst_inter = 400;
2977 }
2978 if (low_content && rc->avg_frame_low_motion > 80) {
2979 rc->af_ratio_onepass_vbr = 15;
2980 } else if (high_content || rc->avg_frame_low_motion < 30) {
2981 rc->af_ratio_onepass_vbr = 5;
2982 rc->gfu_boost = DEFAULT_GF_BOOST >> 2;
2983 }
2984 if (cpi->sf.use_altref_onepass && cpi->oxcf.enable_auto_arf) {
2985 // Flag to disable usage of ARF based on past usage, only allow this
2986 // disabling if current frame/group does not start with key frame or
2987 // scene cut. Note perc_arf_usage is only computed for speed >= 5.
2988 int arf_usage_low =
2989 (cm->frame_type != KEY_FRAME && !rc->high_source_sad &&
2990 cpi->rc.perc_arf_usage < 15 && cpi->oxcf.speed >= 5);
2991 // Don't use alt-ref for this group under certain conditions.
2992 if (arf_usage_low ||
2993 (rc->high_source_sad_lagindex > 0 &&
2994 rc->high_source_sad_lagindex <= rc->frames_till_gf_update_due) ||
2995 (avg_source_sad_lag > 3 * sad_thresh1 >> 3)) {
2996 rc->source_alt_ref_pending = 0;
2997 rc->alt_ref_gf_group = 0;
2998 } else {
2999 rc->source_alt_ref_pending = 1;
3000 rc->alt_ref_gf_group = 1;
3001 // If alt-ref is used for this gf group, limit the interval.
3002 if (rc->baseline_gf_interval > 12) {
3003 rc->baseline_gf_interval = 12;
3004 rc->frames_till_gf_update_due = rc->baseline_gf_interval;
3005 }
3006 }
3007 }
3008 target = vp9_calc_pframe_target_size_one_pass_vbr(cpi);
3009 vp9_rc_set_frame_target(cpi, target);
3010 }
3011 rc->prev_avg_source_sad_lag = avg_source_sad_lag;
3012 }
3013
3014 // Compute average source sad (temporal sad: between current source and
3015 // previous source) over a subset of superblocks. Use this is detect big changes
3016 // in content and allow rate control to react.
3017 // This function also handles special case of lag_in_frames, to measure content
3018 // level in #future frames set by the lag_in_frames.
vp9_scene_detection_onepass(VP9_COMP * cpi)3019 void vp9_scene_detection_onepass(VP9_COMP *cpi) {
3020 VP9_COMMON *const cm = &cpi->common;
3021 RATE_CONTROL *const rc = &cpi->rc;
3022 YV12_BUFFER_CONFIG const *unscaled_src = cpi->un_scaled_source;
3023 YV12_BUFFER_CONFIG const *unscaled_last_src = cpi->unscaled_last_source;
3024 uint8_t *src_y;
3025 int src_ystride;
3026 int src_width;
3027 int src_height;
3028 uint8_t *last_src_y;
3029 int last_src_ystride;
3030 int last_src_width;
3031 int last_src_height;
3032 if (cpi->un_scaled_source == NULL || cpi->unscaled_last_source == NULL ||
3033 (cpi->use_svc && cpi->svc.current_superframe == 0))
3034 return;
3035 src_y = unscaled_src->y_buffer;
3036 src_ystride = unscaled_src->y_stride;
3037 src_width = unscaled_src->y_width;
3038 src_height = unscaled_src->y_height;
3039 last_src_y = unscaled_last_src->y_buffer;
3040 last_src_ystride = unscaled_last_src->y_stride;
3041 last_src_width = unscaled_last_src->y_width;
3042 last_src_height = unscaled_last_src->y_height;
3043 #if CONFIG_VP9_HIGHBITDEPTH
3044 if (cm->use_highbitdepth) return;
3045 #endif
3046 rc->high_source_sad = 0;
3047 rc->high_num_blocks_with_motion = 0;
3048 // For SVC: scene detection is only checked on first spatial layer of
3049 // the superframe using the original/unscaled resolutions.
3050 if (cpi->svc.spatial_layer_id == cpi->svc.first_spatial_layer_to_encode &&
3051 src_width == last_src_width && src_height == last_src_height) {
3052 YV12_BUFFER_CONFIG *frames[MAX_LAG_BUFFERS] = { NULL };
3053 int num_mi_cols = cm->mi_cols;
3054 int num_mi_rows = cm->mi_rows;
3055 int start_frame = 0;
3056 int frames_to_buffer = 1;
3057 int frame = 0;
3058 int scene_cut_force_key_frame = 0;
3059 int num_zero_temp_sad = 0;
3060 uint64_t avg_sad_current = 0;
3061 uint32_t min_thresh = 20000; // ~5 * 64 * 64
3062 float thresh = 8.0f;
3063 uint32_t thresh_key = 140000;
3064 if (cpi->oxcf.speed <= 5) thresh_key = 240000;
3065 if (cpi->oxcf.content != VP9E_CONTENT_SCREEN) min_thresh = 65000;
3066 if (cpi->oxcf.rc_mode == VPX_VBR) thresh = 2.1f;
3067 if (cpi->use_svc && cpi->svc.number_spatial_layers > 1) {
3068 const int aligned_width = ALIGN_POWER_OF_TWO(src_width, MI_SIZE_LOG2);
3069 const int aligned_height = ALIGN_POWER_OF_TWO(src_height, MI_SIZE_LOG2);
3070 num_mi_cols = aligned_width >> MI_SIZE_LOG2;
3071 num_mi_rows = aligned_height >> MI_SIZE_LOG2;
3072 }
3073 if (cpi->oxcf.lag_in_frames > 0) {
3074 frames_to_buffer = (cm->current_video_frame == 1)
3075 ? (int)vp9_lookahead_depth(cpi->lookahead) - 1
3076 : 2;
3077 start_frame = (int)vp9_lookahead_depth(cpi->lookahead) - 1;
3078 for (frame = 0; frame < frames_to_buffer; ++frame) {
3079 const int lagframe_idx = start_frame - frame;
3080 if (lagframe_idx >= 0) {
3081 struct lookahead_entry *buf =
3082 vp9_lookahead_peek(cpi->lookahead, lagframe_idx);
3083 frames[frame] = &buf->img;
3084 }
3085 }
3086 // The avg_sad for this current frame is the value of frame#1
3087 // (first future frame) from previous frame.
3088 avg_sad_current = rc->avg_source_sad[1];
3089 if (avg_sad_current >
3090 VPXMAX(min_thresh,
3091 (unsigned int)(rc->avg_source_sad[0] * thresh)) &&
3092 cm->current_video_frame > (unsigned int)cpi->oxcf.lag_in_frames)
3093 rc->high_source_sad = 1;
3094 else
3095 rc->high_source_sad = 0;
3096 if (rc->high_source_sad && avg_sad_current > thresh_key)
3097 scene_cut_force_key_frame = 1;
3098 // Update recursive average for current frame.
3099 if (avg_sad_current > 0)
3100 rc->avg_source_sad[0] =
3101 (3 * rc->avg_source_sad[0] + avg_sad_current) >> 2;
3102 // Shift back data, starting at frame#1.
3103 for (frame = 1; frame < cpi->oxcf.lag_in_frames - 1; ++frame)
3104 rc->avg_source_sad[frame] = rc->avg_source_sad[frame + 1];
3105 }
3106 for (frame = 0; frame < frames_to_buffer; ++frame) {
3107 if (cpi->oxcf.lag_in_frames == 0 ||
3108 (frames[frame] != NULL && frames[frame + 1] != NULL &&
3109 frames[frame]->y_width == frames[frame + 1]->y_width &&
3110 frames[frame]->y_height == frames[frame + 1]->y_height)) {
3111 int sbi_row, sbi_col;
3112 const int lagframe_idx =
3113 (cpi->oxcf.lag_in_frames == 0) ? 0 : start_frame - frame + 1;
3114 const BLOCK_SIZE bsize = BLOCK_64X64;
3115 // Loop over sub-sample of frame, compute average sad over 64x64 blocks.
3116 uint64_t avg_sad = 0;
3117 uint64_t tmp_sad = 0;
3118 int num_samples = 0;
3119 int sb_cols = (num_mi_cols + MI_BLOCK_SIZE - 1) / MI_BLOCK_SIZE;
3120 int sb_rows = (num_mi_rows + MI_BLOCK_SIZE - 1) / MI_BLOCK_SIZE;
3121 if (cpi->oxcf.lag_in_frames > 0) {
3122 src_y = frames[frame]->y_buffer;
3123 src_ystride = frames[frame]->y_stride;
3124 last_src_y = frames[frame + 1]->y_buffer;
3125 last_src_ystride = frames[frame + 1]->y_stride;
3126 }
3127 num_zero_temp_sad = 0;
3128 for (sbi_row = 0; sbi_row < sb_rows; ++sbi_row) {
3129 for (sbi_col = 0; sbi_col < sb_cols; ++sbi_col) {
3130 // Checker-board pattern, ignore boundary.
3131 if (((sbi_row > 0 && sbi_col > 0) &&
3132 (sbi_row < sb_rows - 1 && sbi_col < sb_cols - 1) &&
3133 ((sbi_row % 2 == 0 && sbi_col % 2 == 0) ||
3134 (sbi_row % 2 != 0 && sbi_col % 2 != 0)))) {
3135 tmp_sad = cpi->fn_ptr[bsize].sdf(src_y, src_ystride, last_src_y,
3136 last_src_ystride);
3137 avg_sad += tmp_sad;
3138 num_samples++;
3139 if (tmp_sad == 0) num_zero_temp_sad++;
3140 }
3141 src_y += 64;
3142 last_src_y += 64;
3143 }
3144 src_y += (src_ystride << 6) - (sb_cols << 6);
3145 last_src_y += (last_src_ystride << 6) - (sb_cols << 6);
3146 }
3147 if (num_samples > 0) avg_sad = avg_sad / num_samples;
3148 // Set high_source_sad flag if we detect very high increase in avg_sad
3149 // between current and previous frame value(s). Use minimum threshold
3150 // for cases where there is small change from content that is completely
3151 // static.
3152 if (lagframe_idx == 0) {
3153 if (avg_sad >
3154 VPXMAX(min_thresh,
3155 (unsigned int)(rc->avg_source_sad[0] * thresh)) &&
3156 rc->frames_since_key > 1 + cpi->svc.number_spatial_layers &&
3157 num_zero_temp_sad < 3 * (num_samples >> 2))
3158 rc->high_source_sad = 1;
3159 else
3160 rc->high_source_sad = 0;
3161 if (rc->high_source_sad && avg_sad > thresh_key)
3162 scene_cut_force_key_frame = 1;
3163 if (avg_sad > 0 || cpi->oxcf.rc_mode == VPX_CBR)
3164 rc->avg_source_sad[0] = (3 * rc->avg_source_sad[0] + avg_sad) >> 2;
3165 } else {
3166 rc->avg_source_sad[lagframe_idx] = avg_sad;
3167 }
3168 if (num_zero_temp_sad < (3 * num_samples >> 2))
3169 rc->high_num_blocks_with_motion = 1;
3170 }
3171 }
3172 // For CBR non-screen content mode, check if we should reset the rate
3173 // control. Reset is done if high_source_sad is detected and the rate
3174 // control is at very low QP with rate correction factor at min level.
3175 if (cpi->oxcf.rc_mode == VPX_CBR &&
3176 cpi->oxcf.content != VP9E_CONTENT_SCREEN && !cpi->use_svc) {
3177 if (rc->high_source_sad && rc->last_q[INTER_FRAME] == rc->best_quality &&
3178 rc->avg_frame_qindex[INTER_FRAME] < (rc->best_quality << 1) &&
3179 rc->rate_correction_factors[INTER_NORMAL] == MIN_BPB_FACTOR) {
3180 rc->rate_correction_factors[INTER_NORMAL] = 0.5;
3181 rc->avg_frame_qindex[INTER_FRAME] = rc->worst_quality;
3182 rc->buffer_level = rc->optimal_buffer_level;
3183 rc->bits_off_target = rc->optimal_buffer_level;
3184 rc->reset_high_source_sad = 1;
3185 }
3186 if (cm->frame_type != KEY_FRAME && rc->reset_high_source_sad)
3187 rc->this_frame_target = rc->avg_frame_bandwidth;
3188 }
3189 // For SVC the new (updated) avg_source_sad[0] for the current superframe
3190 // updates the setting for all layers.
3191 if (cpi->use_svc) {
3192 int sl, tl;
3193 SVC *const svc = &cpi->svc;
3194 for (sl = 0; sl < svc->number_spatial_layers; ++sl)
3195 for (tl = 0; tl < svc->number_temporal_layers; ++tl) {
3196 int layer = LAYER_IDS_TO_IDX(sl, tl, svc->number_temporal_layers);
3197 LAYER_CONTEXT *const lc = &svc->layer_context[layer];
3198 RATE_CONTROL *const lrc = &lc->rc;
3199 lrc->avg_source_sad[0] = rc->avg_source_sad[0];
3200 }
3201 }
3202 // For VBR, under scene change/high content change, force golden refresh.
3203 if (cpi->oxcf.rc_mode == VPX_VBR && cm->frame_type != KEY_FRAME &&
3204 rc->high_source_sad && rc->frames_to_key > 3 &&
3205 rc->count_last_scene_change > 4 &&
3206 cpi->ext_refresh_frame_flags_pending == 0) {
3207 int target;
3208 cpi->refresh_golden_frame = 1;
3209 if (scene_cut_force_key_frame) cm->frame_type = KEY_FRAME;
3210 rc->source_alt_ref_pending = 0;
3211 if (cpi->sf.use_altref_onepass && cpi->oxcf.enable_auto_arf)
3212 rc->source_alt_ref_pending = 1;
3213 rc->gfu_boost = DEFAULT_GF_BOOST >> 1;
3214 rc->baseline_gf_interval =
3215 VPXMIN(20, VPXMAX(10, rc->baseline_gf_interval));
3216 adjust_gfint_frame_constraint(cpi, rc->frames_to_key);
3217 rc->frames_till_gf_update_due = rc->baseline_gf_interval;
3218 target = vp9_calc_pframe_target_size_one_pass_vbr(cpi);
3219 vp9_rc_set_frame_target(cpi, target);
3220 rc->count_last_scene_change = 0;
3221 } else {
3222 rc->count_last_scene_change++;
3223 }
3224 // If lag_in_frame is used, set the gf boost and interval.
3225 if (cpi->oxcf.lag_in_frames > 0)
3226 adjust_gf_boost_lag_one_pass_vbr(cpi, avg_sad_current);
3227 }
3228 }
3229
3230 // Test if encoded frame will significantly overshoot the target bitrate, and
3231 // if so, set the QP, reset/adjust some rate control parameters, and return 1.
3232 // frame_size = -1 means frame has not been encoded.
vp9_encodedframe_overshoot(VP9_COMP * cpi,int frame_size,int * q)3233 int vp9_encodedframe_overshoot(VP9_COMP *cpi, int frame_size, int *q) {
3234 VP9_COMMON *const cm = &cpi->common;
3235 RATE_CONTROL *const rc = &cpi->rc;
3236 SPEED_FEATURES *const sf = &cpi->sf;
3237 int thresh_qp = 7 * (rc->worst_quality >> 3);
3238 int thresh_rate = rc->avg_frame_bandwidth << 3;
3239 // Lower thresh_qp for video (more overshoot at lower Q) to be
3240 // more conservative for video.
3241 if (cpi->oxcf.content != VP9E_CONTENT_SCREEN)
3242 thresh_qp = 3 * (rc->worst_quality >> 2);
3243 // If this decision is not based on an encoded frame size but just on
3244 // scene/slide change detection (i.e., re_encode_overshoot_cbr_rt ==
3245 // FAST_DETECTION_MAXQ), for now skip the (frame_size > thresh_rate)
3246 // condition in this case.
3247 // TODO(marpan): Use a better size/rate condition for this case and
3248 // adjust thresholds.
3249 if ((sf->overshoot_detection_cbr_rt == FAST_DETECTION_MAXQ ||
3250 frame_size > thresh_rate) &&
3251 cm->base_qindex < thresh_qp) {
3252 double rate_correction_factor =
3253 cpi->rc.rate_correction_factors[INTER_NORMAL];
3254 const int target_size = cpi->rc.avg_frame_bandwidth;
3255 double new_correction_factor;
3256 int target_bits_per_mb;
3257 double q2;
3258 int enumerator;
3259 // Force a re-encode, and for now use max-QP.
3260 *q = cpi->rc.worst_quality;
3261 cpi->cyclic_refresh->counter_encode_maxq_scene_change = 0;
3262 cpi->rc.re_encode_maxq_scene_change = 1;
3263 // If the frame_size is much larger than the threshold (big content change)
3264 // and the encoded frame used alot of Intra modes, then force hybrid_intra
3265 // encoding for the re-encode on this scene change. hybrid_intra will
3266 // use rd-based intra mode selection for small blocks.
3267 if (sf->overshoot_detection_cbr_rt == RE_ENCODE_MAXQ &&
3268 frame_size > (thresh_rate << 1) && cpi->svc.spatial_layer_id == 0) {
3269 MODE_INFO **mi = cm->mi_grid_visible;
3270 int sum_intra_usage = 0;
3271 int mi_row, mi_col;
3272 int tot = 0;
3273 for (mi_row = 0; mi_row < cm->mi_rows; mi_row++) {
3274 for (mi_col = 0; mi_col < cm->mi_cols; mi_col++) {
3275 if (mi[0]->ref_frame[0] == INTRA_FRAME) sum_intra_usage++;
3276 tot++;
3277 mi++;
3278 }
3279 mi += 8;
3280 }
3281 sum_intra_usage = 100 * sum_intra_usage / (cm->mi_rows * cm->mi_cols);
3282 if (sum_intra_usage > 60) cpi->rc.hybrid_intra_scene_change = 1;
3283 }
3284 // Adjust avg_frame_qindex, buffer_level, and rate correction factors, as
3285 // these parameters will affect QP selection for subsequent frames. If they
3286 // have settled down to a very different (low QP) state, then not adjusting
3287 // them may cause next frame to select low QP and overshoot again.
3288 cpi->rc.avg_frame_qindex[INTER_FRAME] = *q;
3289 rc->buffer_level = rc->optimal_buffer_level;
3290 rc->bits_off_target = rc->optimal_buffer_level;
3291 // Reset rate under/over-shoot flags.
3292 cpi->rc.rc_1_frame = 0;
3293 cpi->rc.rc_2_frame = 0;
3294 // Adjust rate correction factor.
3295 target_bits_per_mb =
3296 (int)(((uint64_t)target_size << BPER_MB_NORMBITS) / cm->MBs);
3297 // Rate correction factor based on target_bits_per_mb and qp (==max_QP).
3298 // This comes from the inverse computation of vp9_rc_bits_per_mb().
3299 q2 = vp9_convert_qindex_to_q(*q, cm->bit_depth);
3300 enumerator = 1800000; // Factor for inter frame.
3301 enumerator += (int)(enumerator * q2) >> 12;
3302 new_correction_factor = (double)target_bits_per_mb * q2 / enumerator;
3303 if (new_correction_factor > rate_correction_factor) {
3304 rate_correction_factor =
3305 VPXMIN(2.0 * rate_correction_factor, new_correction_factor);
3306 if (rate_correction_factor > MAX_BPB_FACTOR)
3307 rate_correction_factor = MAX_BPB_FACTOR;
3308 cpi->rc.rate_correction_factors[INTER_NORMAL] = rate_correction_factor;
3309 }
3310 // For temporal layers, reset the rate control parametes across all
3311 // temporal layers. If the first_spatial_layer_to_encode > 0, then this
3312 // superframe has skipped lower base layers. So in this case we should also
3313 // reset and force max-q for spatial layers < first_spatial_layer_to_encode.
3314 if (cpi->use_svc) {
3315 int tl = 0;
3316 int sl = 0;
3317 SVC *svc = &cpi->svc;
3318 for (sl = 0; sl < VPXMAX(1, svc->first_spatial_layer_to_encode); ++sl) {
3319 for (tl = 0; tl < svc->number_temporal_layers; ++tl) {
3320 const int layer =
3321 LAYER_IDS_TO_IDX(sl, tl, svc->number_temporal_layers);
3322 LAYER_CONTEXT *lc = &svc->layer_context[layer];
3323 RATE_CONTROL *lrc = &lc->rc;
3324 lrc->avg_frame_qindex[INTER_FRAME] = *q;
3325 lrc->buffer_level = lrc->optimal_buffer_level;
3326 lrc->bits_off_target = lrc->optimal_buffer_level;
3327 lrc->rc_1_frame = 0;
3328 lrc->rc_2_frame = 0;
3329 lrc->rate_correction_factors[INTER_NORMAL] = rate_correction_factor;
3330 lrc->force_max_q = 1;
3331 }
3332 }
3333 }
3334 return 1;
3335 } else {
3336 return 0;
3337 }
3338 }
3339