1 /*
2 * Copyright (c) 2014 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 <math.h>
12
13 #include "vp9/encoder/vp9_aq_cyclicrefresh.h"
14 #include "vp9/encoder/vp9_encoder.h"
15 #include "vp9/encoder/vp9_svc_layercontext.h"
16 #include "vp9/encoder/vp9_extend.h"
17 #include "vpx_dsp/vpx_dsp_common.h"
18
19 #define SMALL_FRAME_WIDTH 32
20 #define SMALL_FRAME_HEIGHT 16
21
swap_ptr(void * a,void * b)22 static void swap_ptr(void *a, void *b) {
23 void **a_p = (void **)a;
24 void **b_p = (void **)b;
25 void *c = *a_p;
26 *a_p = *b_p;
27 *b_p = c;
28 }
29
vp9_init_layer_context(VP9_COMP * const cpi)30 void vp9_init_layer_context(VP9_COMP *const cpi) {
31 SVC *const svc = &cpi->svc;
32 const VP9EncoderConfig *const oxcf = &cpi->oxcf;
33 int mi_rows = cpi->common.mi_rows;
34 int mi_cols = cpi->common.mi_cols;
35 int sl, tl, i;
36 int alt_ref_idx = svc->number_spatial_layers;
37
38 svc->spatial_layer_id = 0;
39 svc->temporal_layer_id = 0;
40 svc->force_zero_mode_spatial_ref = 0;
41 svc->use_base_mv = 0;
42 svc->use_partition_reuse = 0;
43 svc->use_gf_temporal_ref = 1;
44 svc->use_gf_temporal_ref_current_layer = 0;
45 svc->scaled_temp_is_alloc = 0;
46 svc->scaled_one_half = 0;
47 svc->current_superframe = 0;
48 svc->non_reference_frame = 0;
49 svc->skip_enhancement_layer = 0;
50 svc->disable_inter_layer_pred = INTER_LAYER_PRED_ON;
51 svc->framedrop_mode = CONSTRAINED_LAYER_DROP;
52 svc->set_intra_only_frame = 0;
53 svc->previous_frame_is_intra_only = 0;
54 svc->superframe_has_layer_sync = 0;
55 svc->use_set_ref_frame_config = 0;
56 svc->num_encoded_top_layer = 0;
57 svc->simulcast_mode = 0;
58 svc->single_layer_svc = 0;
59 svc->resize_set = 0;
60
61 for (i = 0; i < REF_FRAMES; ++i) {
62 svc->fb_idx_spatial_layer_id[i] = 0xff;
63 svc->fb_idx_temporal_layer_id[i] = 0xff;
64 svc->fb_idx_base[i] = 0;
65 }
66 for (sl = 0; sl < oxcf->ss_number_layers; ++sl) {
67 svc->last_layer_dropped[sl] = 0;
68 svc->drop_spatial_layer[sl] = 0;
69 svc->ext_frame_flags[sl] = 0;
70 svc->lst_fb_idx[sl] = 0;
71 svc->gld_fb_idx[sl] = 1;
72 svc->alt_fb_idx[sl] = 2;
73 svc->downsample_filter_type[sl] = BILINEAR;
74 svc->downsample_filter_phase[sl] = 8; // Set to 8 for averaging filter.
75 svc->framedrop_thresh[sl] = oxcf->drop_frames_water_mark;
76 svc->fb_idx_upd_tl0[sl] = -1;
77 svc->drop_count[sl] = 0;
78 svc->spatial_layer_sync[sl] = 0;
79 svc->force_drop_constrained_from_above[sl] = 0;
80 }
81 svc->max_consec_drop = INT_MAX;
82
83 svc->buffer_gf_temporal_ref[1].idx = 7;
84 svc->buffer_gf_temporal_ref[0].idx = 6;
85 svc->buffer_gf_temporal_ref[1].is_used = 0;
86 svc->buffer_gf_temporal_ref[0].is_used = 0;
87
88 if (cpi->oxcf.error_resilient_mode == 0 && cpi->oxcf.pass == 2) {
89 if (vpx_realloc_frame_buffer(&cpi->svc.empty_frame.img, SMALL_FRAME_WIDTH,
90 SMALL_FRAME_HEIGHT, cpi->common.subsampling_x,
91 cpi->common.subsampling_y,
92 #if CONFIG_VP9_HIGHBITDEPTH
93 cpi->common.use_highbitdepth,
94 #endif
95 VP9_ENC_BORDER_IN_PIXELS,
96 cpi->common.byte_alignment, NULL, NULL, NULL))
97 vpx_internal_error(&cpi->common.error, VPX_CODEC_MEM_ERROR,
98 "Failed to allocate empty frame for multiple frame "
99 "contexts");
100
101 memset(cpi->svc.empty_frame.img.buffer_alloc, 0x80,
102 cpi->svc.empty_frame.img.buffer_alloc_sz);
103 }
104
105 for (sl = 0; sl < oxcf->ss_number_layers; ++sl) {
106 for (tl = 0; tl < oxcf->ts_number_layers; ++tl) {
107 int layer = LAYER_IDS_TO_IDX(sl, tl, oxcf->ts_number_layers);
108 LAYER_CONTEXT *const lc = &svc->layer_context[layer];
109 RATE_CONTROL *const lrc = &lc->rc;
110 int i;
111 lc->current_video_frame_in_layer = 0;
112 lc->layer_size = 0;
113 lc->frames_from_key_frame = 0;
114 lc->last_frame_type = FRAME_TYPES;
115 lrc->ni_av_qi = oxcf->worst_allowed_q;
116 lrc->total_actual_bits = 0;
117 lrc->total_target_vs_actual = 0;
118 lrc->ni_tot_qi = 0;
119 lrc->tot_q = 0.0;
120 lrc->avg_q = 0.0;
121 lrc->ni_frames = 0;
122 lrc->decimation_count = 0;
123 lrc->decimation_factor = 0;
124 lrc->worst_quality = oxcf->worst_allowed_q;
125 lrc->best_quality = oxcf->best_allowed_q;
126
127 for (i = 0; i < RATE_FACTOR_LEVELS; ++i) {
128 lrc->rate_correction_factors[i] = 1.0;
129 }
130
131 if (cpi->oxcf.rc_mode == VPX_CBR) {
132 lc->target_bandwidth = oxcf->layer_target_bitrate[layer];
133 lrc->last_q[INTER_FRAME] = oxcf->worst_allowed_q;
134 lrc->avg_frame_qindex[INTER_FRAME] = oxcf->worst_allowed_q;
135 lrc->avg_frame_qindex[KEY_FRAME] = oxcf->worst_allowed_q;
136 } else {
137 lc->target_bandwidth = oxcf->layer_target_bitrate[layer];
138 lrc->last_q[KEY_FRAME] = oxcf->best_allowed_q;
139 lrc->last_q[INTER_FRAME] = oxcf->best_allowed_q;
140 lrc->avg_frame_qindex[KEY_FRAME] =
141 (oxcf->worst_allowed_q + oxcf->best_allowed_q) / 2;
142 lrc->avg_frame_qindex[INTER_FRAME] =
143 (oxcf->worst_allowed_q + oxcf->best_allowed_q) / 2;
144 if (oxcf->ss_enable_auto_arf[sl])
145 lc->alt_ref_idx = alt_ref_idx++;
146 else
147 lc->alt_ref_idx = INVALID_IDX;
148 lc->gold_ref_idx = INVALID_IDX;
149 }
150
151 lrc->buffer_level =
152 oxcf->starting_buffer_level_ms * lc->target_bandwidth / 1000;
153 lrc->bits_off_target = lrc->buffer_level;
154
155 // Initialize the cyclic refresh parameters. If spatial layers are used
156 // (i.e., ss_number_layers > 1), these need to be updated per spatial
157 // layer.
158 // Cyclic refresh is only applied on base temporal layer.
159 if (oxcf->ss_number_layers > 1 && tl == 0) {
160 size_t last_coded_q_map_size;
161 size_t consec_zero_mv_size;
162 VP9_COMMON *const cm = &cpi->common;
163 lc->sb_index = 0;
164 lc->actual_num_seg1_blocks = 0;
165 lc->actual_num_seg2_blocks = 0;
166 lc->counter_encode_maxq_scene_change = 0;
167 CHECK_MEM_ERROR(cm, lc->map,
168 vpx_malloc(mi_rows * mi_cols * sizeof(*lc->map)));
169 memset(lc->map, 0, mi_rows * mi_cols);
170 last_coded_q_map_size =
171 mi_rows * mi_cols * sizeof(*lc->last_coded_q_map);
172 CHECK_MEM_ERROR(cm, lc->last_coded_q_map,
173 vpx_malloc(last_coded_q_map_size));
174 assert(MAXQ <= 255);
175 memset(lc->last_coded_q_map, MAXQ, last_coded_q_map_size);
176 consec_zero_mv_size = mi_rows * mi_cols * sizeof(*lc->consec_zero_mv);
177 CHECK_MEM_ERROR(cm, lc->consec_zero_mv,
178 vpx_malloc(consec_zero_mv_size));
179 memset(lc->consec_zero_mv, 0, consec_zero_mv_size);
180 }
181 }
182 }
183
184 // Still have extra buffer for base layer golden frame
185 if (!(svc->number_temporal_layers > 1 && cpi->oxcf.rc_mode == VPX_CBR) &&
186 alt_ref_idx < REF_FRAMES)
187 svc->layer_context[0].gold_ref_idx = alt_ref_idx;
188 }
189
190 // Update the layer context from a change_config() call.
vp9_update_layer_context_change_config(VP9_COMP * const cpi,const int target_bandwidth)191 void vp9_update_layer_context_change_config(VP9_COMP *const cpi,
192 const int target_bandwidth) {
193 SVC *const svc = &cpi->svc;
194 const VP9EncoderConfig *const oxcf = &cpi->oxcf;
195 const RATE_CONTROL *const rc = &cpi->rc;
196 int sl, tl, layer = 0, spatial_layer_target;
197 float bitrate_alloc = 1.0;
198 int num_spatial_layers_nonzero_rate = 0;
199
200 cpi->svc.temporal_layering_mode = oxcf->temporal_layering_mode;
201
202 if (svc->temporal_layering_mode != VP9E_TEMPORAL_LAYERING_MODE_NOLAYERING) {
203 for (sl = 0; sl < oxcf->ss_number_layers; ++sl) {
204 for (tl = 0; tl < oxcf->ts_number_layers; ++tl) {
205 layer = LAYER_IDS_TO_IDX(sl, tl, oxcf->ts_number_layers);
206 svc->layer_context[layer].target_bandwidth =
207 oxcf->layer_target_bitrate[layer];
208 }
209
210 layer = LAYER_IDS_TO_IDX(
211 sl,
212 ((oxcf->ts_number_layers - 1) < 0 ? 0 : (oxcf->ts_number_layers - 1)),
213 oxcf->ts_number_layers);
214 spatial_layer_target = svc->layer_context[layer].target_bandwidth =
215 oxcf->layer_target_bitrate[layer];
216
217 for (tl = 0; tl < oxcf->ts_number_layers; ++tl) {
218 LAYER_CONTEXT *const lc =
219 &svc->layer_context[sl * oxcf->ts_number_layers + tl];
220 RATE_CONTROL *const lrc = &lc->rc;
221
222 lc->spatial_layer_target_bandwidth = spatial_layer_target;
223 bitrate_alloc = (float)lc->target_bandwidth / target_bandwidth;
224 lrc->starting_buffer_level =
225 (int64_t)(rc->starting_buffer_level * bitrate_alloc);
226 lrc->optimal_buffer_level =
227 (int64_t)(rc->optimal_buffer_level * bitrate_alloc);
228 lrc->maximum_buffer_size =
229 (int64_t)(rc->maximum_buffer_size * bitrate_alloc);
230 lrc->bits_off_target =
231 VPXMIN(lrc->bits_off_target, lrc->maximum_buffer_size);
232 lrc->buffer_level = VPXMIN(lrc->buffer_level, lrc->maximum_buffer_size);
233 lc->framerate = cpi->framerate / oxcf->ts_rate_decimator[tl];
234 lrc->avg_frame_bandwidth = (int)(lc->target_bandwidth / lc->framerate);
235 lrc->max_frame_bandwidth = rc->max_frame_bandwidth;
236 lrc->worst_quality = rc->worst_quality;
237 lrc->best_quality = rc->best_quality;
238 }
239 }
240 } else {
241 int layer_end;
242
243 if (svc->number_temporal_layers > 1 && cpi->oxcf.rc_mode == VPX_CBR) {
244 layer_end = svc->number_temporal_layers;
245 } else {
246 layer_end = svc->number_spatial_layers;
247 }
248
249 for (layer = 0; layer < layer_end; ++layer) {
250 LAYER_CONTEXT *const lc = &svc->layer_context[layer];
251 RATE_CONTROL *const lrc = &lc->rc;
252
253 lc->target_bandwidth = oxcf->layer_target_bitrate[layer];
254
255 bitrate_alloc = (float)lc->target_bandwidth / target_bandwidth;
256 // Update buffer-related quantities.
257 lrc->starting_buffer_level =
258 (int64_t)(rc->starting_buffer_level * bitrate_alloc);
259 lrc->optimal_buffer_level =
260 (int64_t)(rc->optimal_buffer_level * bitrate_alloc);
261 lrc->maximum_buffer_size =
262 (int64_t)(rc->maximum_buffer_size * bitrate_alloc);
263 lrc->bits_off_target =
264 VPXMIN(lrc->bits_off_target, lrc->maximum_buffer_size);
265 lrc->buffer_level = VPXMIN(lrc->buffer_level, lrc->maximum_buffer_size);
266 // Update framerate-related quantities.
267 if (svc->number_temporal_layers > 1 && cpi->oxcf.rc_mode == VPX_CBR) {
268 lc->framerate = cpi->framerate / oxcf->ts_rate_decimator[layer];
269 } else {
270 lc->framerate = cpi->framerate;
271 }
272 lrc->avg_frame_bandwidth = (int)(lc->target_bandwidth / lc->framerate);
273 lrc->max_frame_bandwidth = rc->max_frame_bandwidth;
274 // Update qp-related quantities.
275 lrc->worst_quality = rc->worst_quality;
276 lrc->best_quality = rc->best_quality;
277 }
278 }
279 for (sl = 0; sl < oxcf->ss_number_layers; ++sl) {
280 // Check bitrate of spatia layer.
281 layer = LAYER_IDS_TO_IDX(sl, oxcf->ts_number_layers - 1,
282 oxcf->ts_number_layers);
283 if (oxcf->layer_target_bitrate[layer] > 0)
284 num_spatial_layers_nonzero_rate += 1;
285 }
286 if (num_spatial_layers_nonzero_rate == 1)
287 svc->single_layer_svc = 1;
288 else
289 svc->single_layer_svc = 0;
290 }
291
get_layer_context(VP9_COMP * const cpi)292 static LAYER_CONTEXT *get_layer_context(VP9_COMP *const cpi) {
293 if (is_one_pass_svc(cpi))
294 return &cpi->svc.layer_context[cpi->svc.spatial_layer_id *
295 cpi->svc.number_temporal_layers +
296 cpi->svc.temporal_layer_id];
297 else
298 return (cpi->svc.number_temporal_layers > 1 && cpi->oxcf.rc_mode == VPX_CBR)
299 ? &cpi->svc.layer_context[cpi->svc.temporal_layer_id]
300 : &cpi->svc.layer_context[cpi->svc.spatial_layer_id];
301 }
302
vp9_update_temporal_layer_framerate(VP9_COMP * const cpi)303 void vp9_update_temporal_layer_framerate(VP9_COMP *const cpi) {
304 SVC *const svc = &cpi->svc;
305 const VP9EncoderConfig *const oxcf = &cpi->oxcf;
306 LAYER_CONTEXT *const lc = get_layer_context(cpi);
307 RATE_CONTROL *const lrc = &lc->rc;
308 // Index into spatial+temporal arrays.
309 const int st_idx = svc->spatial_layer_id * svc->number_temporal_layers +
310 svc->temporal_layer_id;
311 const int tl = svc->temporal_layer_id;
312
313 lc->framerate = cpi->framerate / oxcf->ts_rate_decimator[tl];
314 lrc->avg_frame_bandwidth = (int)(lc->target_bandwidth / lc->framerate);
315 lrc->max_frame_bandwidth = cpi->rc.max_frame_bandwidth;
316 // Update the average layer frame size (non-cumulative per-frame-bw).
317 if (tl == 0) {
318 lc->avg_frame_size = lrc->avg_frame_bandwidth;
319 } else {
320 const double prev_layer_framerate =
321 cpi->framerate / oxcf->ts_rate_decimator[tl - 1];
322 const int prev_layer_target_bandwidth =
323 oxcf->layer_target_bitrate[st_idx - 1];
324 lc->avg_frame_size =
325 (int)round((lc->target_bandwidth - prev_layer_target_bandwidth) /
326 (lc->framerate - prev_layer_framerate));
327 }
328 }
329
vp9_update_spatial_layer_framerate(VP9_COMP * const cpi,double framerate)330 void vp9_update_spatial_layer_framerate(VP9_COMP *const cpi, double framerate) {
331 const VP9EncoderConfig *const oxcf = &cpi->oxcf;
332 LAYER_CONTEXT *const lc = get_layer_context(cpi);
333 RATE_CONTROL *const lrc = &lc->rc;
334
335 lc->framerate = framerate;
336 lrc->avg_frame_bandwidth = (int)(lc->target_bandwidth / lc->framerate);
337 lrc->min_frame_bandwidth =
338 (int)(lrc->avg_frame_bandwidth * oxcf->two_pass_vbrmin_section / 100);
339 lrc->max_frame_bandwidth = (int)(((int64_t)lrc->avg_frame_bandwidth *
340 oxcf->two_pass_vbrmax_section) /
341 100);
342 vp9_rc_set_gf_interval_range(cpi, lrc);
343 }
344
vp9_restore_layer_context(VP9_COMP * const cpi)345 void vp9_restore_layer_context(VP9_COMP *const cpi) {
346 LAYER_CONTEXT *const lc = get_layer_context(cpi);
347 const int old_frame_since_key = cpi->rc.frames_since_key;
348 const int old_frame_to_key = cpi->rc.frames_to_key;
349 const int old_ext_use_post_encode_drop = cpi->rc.ext_use_post_encode_drop;
350
351 cpi->rc = lc->rc;
352 cpi->twopass = lc->twopass;
353 cpi->oxcf.target_bandwidth = lc->target_bandwidth;
354 cpi->alt_ref_source = lc->alt_ref_source;
355 // Check if it is one_pass_cbr_svc mode and lc->speed > 0 (real-time mode
356 // does not use speed = 0).
357 if (is_one_pass_svc(cpi) && lc->speed > 0) {
358 cpi->oxcf.speed = lc->speed;
359 }
360 cpi->loopfilter_ctrl = lc->loopfilter_ctrl;
361 // Reset the frames_since_key and frames_to_key counters to their values
362 // before the layer restore. Keep these defined for the stream (not layer).
363 if (cpi->svc.number_temporal_layers > 1 ||
364 cpi->svc.number_spatial_layers > 1) {
365 cpi->rc.frames_since_key = old_frame_since_key;
366 cpi->rc.frames_to_key = old_frame_to_key;
367 }
368 cpi->rc.ext_use_post_encode_drop = old_ext_use_post_encode_drop;
369 // For spatial-svc, allow cyclic-refresh to be applied on the spatial layers,
370 // for the base temporal layer.
371 if (cpi->oxcf.aq_mode == CYCLIC_REFRESH_AQ &&
372 cpi->svc.number_spatial_layers > 1 && cpi->svc.temporal_layer_id == 0) {
373 CYCLIC_REFRESH *const cr = cpi->cyclic_refresh;
374 swap_ptr(&cr->map, &lc->map);
375 swap_ptr(&cr->last_coded_q_map, &lc->last_coded_q_map);
376 swap_ptr(&cpi->consec_zero_mv, &lc->consec_zero_mv);
377 cr->sb_index = lc->sb_index;
378 cr->actual_num_seg1_blocks = lc->actual_num_seg1_blocks;
379 cr->actual_num_seg2_blocks = lc->actual_num_seg2_blocks;
380 cr->counter_encode_maxq_scene_change = lc->counter_encode_maxq_scene_change;
381 }
382 }
383
vp9_save_layer_context(VP9_COMP * const cpi)384 void vp9_save_layer_context(VP9_COMP *const cpi) {
385 const VP9EncoderConfig *const oxcf = &cpi->oxcf;
386 LAYER_CONTEXT *const lc = get_layer_context(cpi);
387
388 lc->rc = cpi->rc;
389 lc->twopass = cpi->twopass;
390 lc->target_bandwidth = (int)oxcf->target_bandwidth;
391 lc->alt_ref_source = cpi->alt_ref_source;
392
393 // For spatial-svc, allow cyclic-refresh to be applied on the spatial layers,
394 // for the base temporal layer.
395 if (cpi->oxcf.aq_mode == CYCLIC_REFRESH_AQ &&
396 cpi->svc.number_spatial_layers > 1 && cpi->svc.temporal_layer_id == 0) {
397 CYCLIC_REFRESH *const cr = cpi->cyclic_refresh;
398 signed char *temp = lc->map;
399 uint8_t *temp2 = lc->last_coded_q_map;
400 uint8_t *temp3 = lc->consec_zero_mv;
401 lc->map = cr->map;
402 cr->map = temp;
403 lc->last_coded_q_map = cr->last_coded_q_map;
404 cr->last_coded_q_map = temp2;
405 lc->consec_zero_mv = cpi->consec_zero_mv;
406 cpi->consec_zero_mv = temp3;
407 lc->sb_index = cr->sb_index;
408 lc->actual_num_seg1_blocks = cr->actual_num_seg1_blocks;
409 lc->actual_num_seg2_blocks = cr->actual_num_seg2_blocks;
410 lc->counter_encode_maxq_scene_change = cr->counter_encode_maxq_scene_change;
411 }
412 }
413
414 #if !CONFIG_REALTIME_ONLY
vp9_init_second_pass_spatial_svc(VP9_COMP * cpi)415 void vp9_init_second_pass_spatial_svc(VP9_COMP *cpi) {
416 SVC *const svc = &cpi->svc;
417 int i;
418
419 for (i = 0; i < svc->number_spatial_layers; ++i) {
420 TWO_PASS *const twopass = &svc->layer_context[i].twopass;
421
422 svc->spatial_layer_id = i;
423 vp9_init_second_pass(cpi);
424
425 twopass->total_stats.spatial_layer_id = i;
426 twopass->total_left_stats.spatial_layer_id = i;
427 }
428 svc->spatial_layer_id = 0;
429 }
430 #endif // !CONFIG_REALTIME_ONLY
431
vp9_inc_frame_in_layer(VP9_COMP * const cpi)432 void vp9_inc_frame_in_layer(VP9_COMP *const cpi) {
433 LAYER_CONTEXT *const lc =
434 &cpi->svc.layer_context[cpi->svc.spatial_layer_id *
435 cpi->svc.number_temporal_layers];
436 ++lc->current_video_frame_in_layer;
437 ++lc->frames_from_key_frame;
438 if (cpi->svc.spatial_layer_id == cpi->svc.number_spatial_layers - 1)
439 ++cpi->svc.current_superframe;
440 }
441
get_layer_resolution(const int width_org,const int height_org,const int num,const int den,int * width_out,int * height_out)442 void get_layer_resolution(const int width_org, const int height_org,
443 const int num, const int den, int *width_out,
444 int *height_out) {
445 int w, h;
446
447 if (width_out == NULL || height_out == NULL || den == 0) return;
448
449 w = width_org * num / den;
450 h = height_org * num / den;
451
452 // make height and width even to make chrome player happy
453 w += w % 2;
454 h += h % 2;
455
456 *width_out = w;
457 *height_out = h;
458 }
459
reset_fb_idx_unused(VP9_COMP * const cpi)460 static void reset_fb_idx_unused(VP9_COMP *const cpi) {
461 // If a reference frame is not referenced or refreshed, then set the
462 // fb_idx for that reference to the first one used/referenced.
463 // This is to avoid setting fb_idx for a reference to a slot that is not
464 // used/needed (i.e., since that reference is not referenced or refreshed).
465 MV_REFERENCE_FRAME ref_frame;
466 MV_REFERENCE_FRAME first_ref = 0;
467 int first_fb_idx = 0;
468 int fb_idx[3] = { cpi->lst_fb_idx, cpi->gld_fb_idx, cpi->alt_fb_idx };
469 for (ref_frame = LAST_FRAME; ref_frame <= ALTREF_FRAME; ref_frame++) {
470 if (cpi->ref_frame_flags & ref_frame_to_flag(ref_frame)) {
471 first_ref = ref_frame;
472 first_fb_idx = fb_idx[ref_frame - 1];
473 break;
474 }
475 }
476 if (first_ref > 0) {
477 if (first_ref != LAST_FRAME && !(cpi->ref_frame_flags & VP9_LAST_FLAG) &&
478 !cpi->ext_refresh_last_frame)
479 cpi->lst_fb_idx = first_fb_idx;
480 else if (first_ref != GOLDEN_FRAME &&
481 !(cpi->ref_frame_flags & VP9_GOLD_FLAG) &&
482 !cpi->ext_refresh_golden_frame)
483 cpi->gld_fb_idx = first_fb_idx;
484 else if (first_ref != ALTREF_FRAME &&
485 !(cpi->ref_frame_flags & VP9_ALT_FLAG) &&
486 !cpi->ext_refresh_alt_ref_frame)
487 cpi->alt_fb_idx = first_fb_idx;
488 }
489 }
490
491 // Never refresh any reference frame buffers on top temporal layers in
492 // simulcast mode, which has interlayer prediction disabled.
non_reference_frame_simulcast(VP9_COMP * const cpi)493 static void non_reference_frame_simulcast(VP9_COMP *const cpi) {
494 if (cpi->svc.temporal_layer_id == cpi->svc.number_temporal_layers - 1 &&
495 cpi->svc.temporal_layer_id > 0) {
496 cpi->ext_refresh_last_frame = 0;
497 cpi->ext_refresh_golden_frame = 0;
498 cpi->ext_refresh_alt_ref_frame = 0;
499 }
500 }
501
502 // The function sets proper ref_frame_flags, buffer indices, and buffer update
503 // variables for temporal layering mode 3 - that does 0-2-1-2 temporal layering
504 // scheme.
set_flags_and_fb_idx_for_temporal_mode3(VP9_COMP * const cpi)505 static void set_flags_and_fb_idx_for_temporal_mode3(VP9_COMP *const cpi) {
506 int frame_num_within_temporal_struct = 0;
507 int spatial_id, temporal_id;
508 spatial_id = cpi->svc.spatial_layer_id = cpi->svc.spatial_layer_to_encode;
509 frame_num_within_temporal_struct =
510 cpi->svc
511 .layer_context[cpi->svc.spatial_layer_id *
512 cpi->svc.number_temporal_layers]
513 .current_video_frame_in_layer %
514 4;
515 temporal_id = cpi->svc.temporal_layer_id =
516 (frame_num_within_temporal_struct & 1)
517 ? 2
518 : (frame_num_within_temporal_struct >> 1);
519 cpi->ext_refresh_last_frame = cpi->ext_refresh_golden_frame =
520 cpi->ext_refresh_alt_ref_frame = 0;
521 if (!temporal_id) {
522 cpi->ext_refresh_frame_flags_pending = 1;
523 cpi->ext_refresh_last_frame = 1;
524 if (!spatial_id) {
525 cpi->ref_frame_flags = VP9_LAST_FLAG;
526 } else if (cpi->svc.layer_context[temporal_id].is_key_frame) {
527 // base layer is a key frame.
528 cpi->ref_frame_flags = VP9_LAST_FLAG;
529 cpi->ext_refresh_last_frame = 0;
530 cpi->ext_refresh_golden_frame = 1;
531 } else {
532 cpi->ref_frame_flags = VP9_LAST_FLAG | VP9_GOLD_FLAG;
533 }
534 } else if (temporal_id == 1) {
535 cpi->ext_refresh_frame_flags_pending = 1;
536 cpi->ext_refresh_alt_ref_frame = 1;
537 if (!spatial_id) {
538 cpi->ref_frame_flags = VP9_LAST_FLAG;
539 } else {
540 cpi->ref_frame_flags = VP9_LAST_FLAG | VP9_GOLD_FLAG;
541 }
542 } else {
543 if (frame_num_within_temporal_struct == 1) {
544 // the first tl2 picture
545 if (spatial_id == cpi->svc.number_spatial_layers - 1) { // top layer
546 cpi->ext_refresh_frame_flags_pending = 1;
547 if (!spatial_id)
548 cpi->ref_frame_flags = VP9_LAST_FLAG;
549 else
550 cpi->ref_frame_flags = VP9_LAST_FLAG | VP9_GOLD_FLAG;
551 } else if (!spatial_id) {
552 cpi->ext_refresh_frame_flags_pending = 1;
553 cpi->ext_refresh_alt_ref_frame = 1;
554 cpi->ref_frame_flags = VP9_LAST_FLAG;
555 } else if (spatial_id < cpi->svc.number_spatial_layers - 1) {
556 cpi->ext_refresh_frame_flags_pending = 1;
557 cpi->ext_refresh_alt_ref_frame = 1;
558 cpi->ref_frame_flags = VP9_LAST_FLAG | VP9_GOLD_FLAG;
559 }
560 } else {
561 // The second tl2 picture
562 if (spatial_id == cpi->svc.number_spatial_layers - 1) { // top layer
563 cpi->ext_refresh_frame_flags_pending = 1;
564 if (!spatial_id)
565 cpi->ref_frame_flags = VP9_LAST_FLAG;
566 else
567 cpi->ref_frame_flags = VP9_LAST_FLAG | VP9_GOLD_FLAG;
568 } else if (!spatial_id) {
569 cpi->ext_refresh_frame_flags_pending = 1;
570 cpi->ref_frame_flags = VP9_LAST_FLAG;
571 cpi->ext_refresh_alt_ref_frame = 1;
572 } else { // top layer
573 cpi->ext_refresh_frame_flags_pending = 1;
574 cpi->ref_frame_flags = VP9_LAST_FLAG | VP9_GOLD_FLAG;
575 cpi->ext_refresh_alt_ref_frame = 1;
576 }
577 }
578 }
579 if (temporal_id == 0) {
580 cpi->lst_fb_idx = spatial_id;
581 if (spatial_id) {
582 if (cpi->svc.layer_context[temporal_id].is_key_frame) {
583 cpi->lst_fb_idx = spatial_id - 1;
584 cpi->gld_fb_idx = spatial_id;
585 } else {
586 cpi->gld_fb_idx = spatial_id - 1;
587 }
588 } else {
589 cpi->gld_fb_idx = 0;
590 }
591 cpi->alt_fb_idx = 0;
592 } else if (temporal_id == 1) {
593 cpi->lst_fb_idx = spatial_id;
594 cpi->gld_fb_idx = cpi->svc.number_spatial_layers + spatial_id - 1;
595 cpi->alt_fb_idx = cpi->svc.number_spatial_layers + spatial_id;
596 } else if (frame_num_within_temporal_struct == 1) {
597 cpi->lst_fb_idx = spatial_id;
598 cpi->gld_fb_idx = cpi->svc.number_spatial_layers + spatial_id - 1;
599 cpi->alt_fb_idx = cpi->svc.number_spatial_layers + spatial_id;
600 } else {
601 cpi->lst_fb_idx = cpi->svc.number_spatial_layers + spatial_id;
602 cpi->gld_fb_idx = cpi->svc.number_spatial_layers + spatial_id - 1;
603 cpi->alt_fb_idx = cpi->svc.number_spatial_layers + spatial_id;
604 }
605
606 if (cpi->svc.simulcast_mode) non_reference_frame_simulcast(cpi);
607
608 reset_fb_idx_unused(cpi);
609 }
610
611 // The function sets proper ref_frame_flags, buffer indices, and buffer update
612 // variables for temporal layering mode 2 - that does 0-1-0-1 temporal layering
613 // scheme.
set_flags_and_fb_idx_for_temporal_mode2(VP9_COMP * const cpi)614 static void set_flags_and_fb_idx_for_temporal_mode2(VP9_COMP *const cpi) {
615 int spatial_id, temporal_id;
616 spatial_id = cpi->svc.spatial_layer_id = cpi->svc.spatial_layer_to_encode;
617 temporal_id = cpi->svc.temporal_layer_id =
618 cpi->svc
619 .layer_context[cpi->svc.spatial_layer_id *
620 cpi->svc.number_temporal_layers]
621 .current_video_frame_in_layer &
622 1;
623 cpi->ext_refresh_last_frame = cpi->ext_refresh_golden_frame =
624 cpi->ext_refresh_alt_ref_frame = 0;
625 if (!temporal_id) {
626 cpi->ext_refresh_frame_flags_pending = 1;
627 cpi->ext_refresh_last_frame = 1;
628 if (!spatial_id) {
629 cpi->ref_frame_flags = VP9_LAST_FLAG;
630 } else if (cpi->svc.layer_context[temporal_id].is_key_frame) {
631 // base layer is a key frame.
632 cpi->ref_frame_flags = VP9_LAST_FLAG;
633 cpi->ext_refresh_last_frame = 0;
634 cpi->ext_refresh_golden_frame = 1;
635 } else {
636 cpi->ref_frame_flags = VP9_LAST_FLAG | VP9_GOLD_FLAG;
637 }
638 } else if (temporal_id == 1) {
639 cpi->ext_refresh_frame_flags_pending = 1;
640 cpi->ext_refresh_alt_ref_frame = 1;
641 if (!spatial_id) {
642 cpi->ref_frame_flags = VP9_LAST_FLAG;
643 } else {
644 if (spatial_id == cpi->svc.number_spatial_layers - 1)
645 cpi->ext_refresh_alt_ref_frame = 0;
646 cpi->ref_frame_flags = VP9_LAST_FLAG | VP9_GOLD_FLAG;
647 }
648 }
649
650 if (temporal_id == 0) {
651 cpi->lst_fb_idx = spatial_id;
652 if (spatial_id) {
653 if (cpi->svc.layer_context[temporal_id].is_key_frame) {
654 cpi->lst_fb_idx = spatial_id - 1;
655 cpi->gld_fb_idx = spatial_id;
656 } else {
657 cpi->gld_fb_idx = spatial_id - 1;
658 }
659 } else {
660 cpi->gld_fb_idx = 0;
661 }
662 cpi->alt_fb_idx = 0;
663 } else if (temporal_id == 1) {
664 cpi->lst_fb_idx = spatial_id;
665 cpi->gld_fb_idx = cpi->svc.number_spatial_layers + spatial_id - 1;
666 cpi->alt_fb_idx = cpi->svc.number_spatial_layers + spatial_id;
667 }
668
669 if (cpi->svc.simulcast_mode) non_reference_frame_simulcast(cpi);
670
671 reset_fb_idx_unused(cpi);
672 }
673
674 // The function sets proper ref_frame_flags, buffer indices, and buffer update
675 // variables for temporal layering mode 0 - that has no temporal layering.
set_flags_and_fb_idx_for_temporal_mode_noLayering(VP9_COMP * const cpi)676 static void set_flags_and_fb_idx_for_temporal_mode_noLayering(
677 VP9_COMP *const cpi) {
678 int spatial_id;
679 spatial_id = cpi->svc.spatial_layer_id = cpi->svc.spatial_layer_to_encode;
680 cpi->ext_refresh_last_frame = cpi->ext_refresh_golden_frame =
681 cpi->ext_refresh_alt_ref_frame = 0;
682 cpi->ext_refresh_frame_flags_pending = 1;
683 cpi->ext_refresh_last_frame = 1;
684 if (!spatial_id) {
685 cpi->ref_frame_flags = VP9_LAST_FLAG;
686 } else if (cpi->svc.layer_context[0].is_key_frame) {
687 cpi->ref_frame_flags = VP9_LAST_FLAG;
688 cpi->ext_refresh_last_frame = 0;
689 cpi->ext_refresh_golden_frame = 1;
690 } else {
691 cpi->ref_frame_flags = VP9_LAST_FLAG | VP9_GOLD_FLAG;
692 }
693 cpi->lst_fb_idx = spatial_id;
694 if (spatial_id) {
695 if (cpi->svc.layer_context[0].is_key_frame) {
696 cpi->lst_fb_idx = spatial_id - 1;
697 cpi->gld_fb_idx = spatial_id;
698 } else {
699 cpi->gld_fb_idx = spatial_id - 1;
700 }
701 } else {
702 cpi->gld_fb_idx = 0;
703 }
704
705 if (cpi->svc.simulcast_mode) non_reference_frame_simulcast(cpi);
706
707 reset_fb_idx_unused(cpi);
708 }
709
set_flags_and_fb_idx_bypass_via_set_ref_frame_config(VP9_COMP * const cpi)710 static void set_flags_and_fb_idx_bypass_via_set_ref_frame_config(
711 VP9_COMP *const cpi) {
712 SVC *const svc = &cpi->svc;
713 int sl = svc->spatial_layer_id = svc->spatial_layer_to_encode;
714 cpi->svc.temporal_layer_id = cpi->svc.temporal_layer_id_per_spatial[sl];
715 cpi->ext_refresh_frame_flags_pending = 1;
716 cpi->lst_fb_idx = svc->lst_fb_idx[sl];
717 cpi->gld_fb_idx = svc->gld_fb_idx[sl];
718 cpi->alt_fb_idx = svc->alt_fb_idx[sl];
719 cpi->ext_refresh_last_frame = 0;
720 cpi->ext_refresh_golden_frame = 0;
721 cpi->ext_refresh_alt_ref_frame = 0;
722 cpi->ref_frame_flags = 0;
723 if (svc->reference_last[sl]) cpi->ref_frame_flags |= VP9_LAST_FLAG;
724 if (svc->reference_golden[sl]) cpi->ref_frame_flags |= VP9_GOLD_FLAG;
725 if (svc->reference_altref[sl]) cpi->ref_frame_flags |= VP9_ALT_FLAG;
726 }
727
vp9_copy_flags_ref_update_idx(VP9_COMP * const cpi)728 void vp9_copy_flags_ref_update_idx(VP9_COMP *const cpi) {
729 SVC *const svc = &cpi->svc;
730 int sl = svc->spatial_layer_id;
731 svc->lst_fb_idx[sl] = cpi->lst_fb_idx;
732 svc->gld_fb_idx[sl] = cpi->gld_fb_idx;
733 svc->alt_fb_idx[sl] = cpi->alt_fb_idx;
734 // For the fixed SVC mode: pass the refresh_lst/gld/alt_frame flags to the
735 // update_buffer_slot, this is needed for the GET_SVC_REF_FRAME_CONFIG api.
736 if (svc->temporal_layering_mode != VP9E_TEMPORAL_LAYERING_MODE_BYPASS) {
737 int ref;
738 for (ref = 0; ref < REF_FRAMES; ++ref) {
739 svc->update_buffer_slot[sl] &= ~(1 << ref);
740 if ((ref == svc->lst_fb_idx[sl] && cpi->refresh_last_frame) ||
741 (ref == svc->gld_fb_idx[sl] && cpi->refresh_golden_frame) ||
742 (ref == svc->alt_fb_idx[sl] && cpi->refresh_alt_ref_frame))
743 svc->update_buffer_slot[sl] |= (1 << ref);
744 }
745 }
746
747 // TODO(jianj): Remove these 3, deprecated.
748 svc->update_last[sl] = (uint8_t)cpi->refresh_last_frame;
749 svc->update_golden[sl] = (uint8_t)cpi->refresh_golden_frame;
750 svc->update_altref[sl] = (uint8_t)cpi->refresh_alt_ref_frame;
751
752 svc->reference_last[sl] = (uint8_t)(cpi->ref_frame_flags & VP9_LAST_FLAG);
753 svc->reference_golden[sl] = (uint8_t)(cpi->ref_frame_flags & VP9_GOLD_FLAG);
754 svc->reference_altref[sl] = (uint8_t)(cpi->ref_frame_flags & VP9_ALT_FLAG);
755 }
756
vp9_one_pass_svc_start_layer(VP9_COMP * const cpi)757 int vp9_one_pass_svc_start_layer(VP9_COMP *const cpi) {
758 int width = 0, height = 0;
759 SVC *const svc = &cpi->svc;
760 LAYER_CONTEXT *lc = NULL;
761 int scaling_factor_num = 1;
762 int scaling_factor_den = 1;
763 svc->skip_enhancement_layer = 0;
764
765 if (svc->disable_inter_layer_pred == INTER_LAYER_PRED_OFF &&
766 svc->number_spatial_layers > 1 && svc->number_spatial_layers <= 3 &&
767 svc->number_temporal_layers <= 3)
768 svc->simulcast_mode = 1;
769 else
770 svc->simulcast_mode = 0;
771
772 if (svc->number_spatial_layers > 1) {
773 svc->use_base_mv = 1;
774 svc->use_partition_reuse = 1;
775 }
776 svc->force_zero_mode_spatial_ref = 1;
777 svc->mi_stride[svc->spatial_layer_id] = cpi->common.mi_stride;
778 svc->mi_rows[svc->spatial_layer_id] = cpi->common.mi_rows;
779 svc->mi_cols[svc->spatial_layer_id] = cpi->common.mi_cols;
780
781 // For constrained_from_above drop mode: before encoding superframe (i.e.,
782 // at SL0 frame) check all spatial layers (starting from top) for possible
783 // drop, and if so, set a flag to force drop of that layer and all its lower
784 // layers.
785 if (svc->spatial_layer_to_encode == svc->first_spatial_layer_to_encode) {
786 int sl;
787 for (sl = 0; sl < svc->number_spatial_layers; sl++)
788 svc->force_drop_constrained_from_above[sl] = 0;
789 if (svc->framedrop_mode == CONSTRAINED_FROM_ABOVE_DROP) {
790 for (sl = svc->number_spatial_layers - 1;
791 sl >= svc->first_spatial_layer_to_encode; sl--) {
792 int layer = sl * svc->number_temporal_layers + svc->temporal_layer_id;
793 LAYER_CONTEXT *const lc = &svc->layer_context[layer];
794 cpi->rc = lc->rc;
795 cpi->oxcf.target_bandwidth = lc->target_bandwidth;
796 if (vp9_test_drop(cpi)) {
797 int sl2;
798 // Set flag to force drop in encoding for this mode.
799 for (sl2 = sl; sl2 >= svc->first_spatial_layer_to_encode; sl2--)
800 svc->force_drop_constrained_from_above[sl2] = 1;
801 break;
802 }
803 }
804 }
805 }
806
807 if (svc->temporal_layering_mode == VP9E_TEMPORAL_LAYERING_MODE_0212) {
808 set_flags_and_fb_idx_for_temporal_mode3(cpi);
809 } else if (svc->temporal_layering_mode ==
810 VP9E_TEMPORAL_LAYERING_MODE_NOLAYERING) {
811 set_flags_and_fb_idx_for_temporal_mode_noLayering(cpi);
812 } else if (svc->temporal_layering_mode == VP9E_TEMPORAL_LAYERING_MODE_0101) {
813 set_flags_and_fb_idx_for_temporal_mode2(cpi);
814 } else if (svc->temporal_layering_mode ==
815 VP9E_TEMPORAL_LAYERING_MODE_BYPASS &&
816 svc->use_set_ref_frame_config) {
817 set_flags_and_fb_idx_bypass_via_set_ref_frame_config(cpi);
818 }
819
820 if (cpi->lst_fb_idx == svc->buffer_gf_temporal_ref[0].idx ||
821 cpi->gld_fb_idx == svc->buffer_gf_temporal_ref[0].idx ||
822 cpi->alt_fb_idx == svc->buffer_gf_temporal_ref[0].idx)
823 svc->buffer_gf_temporal_ref[0].is_used = 1;
824 if (cpi->lst_fb_idx == svc->buffer_gf_temporal_ref[1].idx ||
825 cpi->gld_fb_idx == svc->buffer_gf_temporal_ref[1].idx ||
826 cpi->alt_fb_idx == svc->buffer_gf_temporal_ref[1].idx)
827 svc->buffer_gf_temporal_ref[1].is_used = 1;
828
829 // For the fixed (non-flexible/bypass) SVC mode:
830 // If long term temporal reference is enabled at the sequence level
831 // (use_gf_temporal_ref == 1), and inter_layer is disabled (on inter-frames),
832 // we can use golden as a second temporal reference
833 // (since the spatial/inter-layer reference is disabled).
834 // We check that the fb_idx for this reference (buffer_gf_temporal_ref.idx) is
835 // unused (slot 7 and 6 should be available for 3-3 layer system).
836 // For now usage of this second temporal reference will only be used for
837 // highest and next to highest spatial layer (i.e., top and middle layer for
838 // 3 spatial layers).
839 svc->use_gf_temporal_ref_current_layer = 0;
840 if (svc->use_gf_temporal_ref && !svc->buffer_gf_temporal_ref[0].is_used &&
841 !svc->buffer_gf_temporal_ref[1].is_used &&
842 svc->temporal_layering_mode != VP9E_TEMPORAL_LAYERING_MODE_BYPASS &&
843 svc->disable_inter_layer_pred != INTER_LAYER_PRED_ON &&
844 svc->number_spatial_layers <= 3 && svc->number_temporal_layers <= 3 &&
845 svc->spatial_layer_id >= svc->number_spatial_layers - 2) {
846 // Enable the second (long-term) temporal reference at the frame-level.
847 svc->use_gf_temporal_ref_current_layer = 1;
848 }
849
850 // Check if current superframe has any layer sync, only check once on
851 // base layer.
852 if (svc->spatial_layer_id == 0) {
853 int sl = 0;
854 // Default is no sync.
855 svc->superframe_has_layer_sync = 0;
856 for (sl = 0; sl < svc->number_spatial_layers; ++sl) {
857 if (cpi->svc.spatial_layer_sync[sl]) svc->superframe_has_layer_sync = 1;
858 }
859 }
860
861 // Reset the drop flags for all spatial layers, on the
862 // first_spatial_layer_to_encode.
863 if (svc->spatial_layer_id == svc->first_spatial_layer_to_encode) {
864 vp9_zero(svc->drop_spatial_layer);
865 // TODO(jianj/marpan): Investigate why setting svc->lst/gld/alt_fb_idx
866 // causes an issue with frame dropping and temporal layers, when the frame
867 // flags are passed via the encode call (bypass mode). Issue is that we're
868 // resetting ext_refresh_frame_flags_pending to 0 on frame drops.
869 if (svc->temporal_layering_mode != VP9E_TEMPORAL_LAYERING_MODE_BYPASS) {
870 memset(&svc->lst_fb_idx, -1, sizeof(svc->lst_fb_idx));
871 memset(&svc->gld_fb_idx, -1, sizeof(svc->lst_fb_idx));
872 memset(&svc->alt_fb_idx, -1, sizeof(svc->lst_fb_idx));
873 // These are set by API before the superframe is encoded and they are
874 // passed to encoder layer by layer. Don't reset them on layer 0 in bypass
875 // mode.
876 vp9_zero(svc->update_buffer_slot);
877 vp9_zero(svc->reference_last);
878 vp9_zero(svc->reference_golden);
879 vp9_zero(svc->reference_altref);
880 // TODO(jianj): Remove these 3, deprecated.
881 vp9_zero(svc->update_last);
882 vp9_zero(svc->update_golden);
883 vp9_zero(svc->update_altref);
884 }
885 }
886
887 lc = &svc->layer_context[svc->spatial_layer_id * svc->number_temporal_layers +
888 svc->temporal_layer_id];
889
890 // Setting the worst/best_quality via the encoder control: SET_SVC_PARAMETERS,
891 // only for non-BYPASS mode for now.
892 if (svc->temporal_layering_mode != VP9E_TEMPORAL_LAYERING_MODE_BYPASS ||
893 svc->use_set_ref_frame_config) {
894 RATE_CONTROL *const lrc = &lc->rc;
895 lrc->worst_quality = vp9_quantizer_to_qindex(lc->max_q);
896 lrc->best_quality = vp9_quantizer_to_qindex(lc->min_q);
897 if (cpi->fixed_qp_onepass) {
898 lrc->worst_quality = cpi->rc.worst_quality;
899 lrc->best_quality = cpi->rc.best_quality;
900 }
901 }
902
903 if (cpi->oxcf.resize_mode == RESIZE_DYNAMIC && svc->single_layer_svc == 1 &&
904 svc->spatial_layer_id == svc->first_spatial_layer_to_encode &&
905 cpi->resize_state != ORIG) {
906 scaling_factor_num = lc->scaling_factor_num_resize;
907 scaling_factor_den = lc->scaling_factor_den_resize;
908 } else {
909 scaling_factor_num = lc->scaling_factor_num;
910 scaling_factor_den = lc->scaling_factor_den;
911 }
912
913 get_layer_resolution(cpi->oxcf.width, cpi->oxcf.height, scaling_factor_num,
914 scaling_factor_den, &width, &height);
915
916 // Use Eightap_smooth for low resolutions.
917 if (width * height <= 320 * 240)
918 svc->downsample_filter_type[svc->spatial_layer_id] = EIGHTTAP_SMOOTH;
919 // For scale factors > 0.75, set the phase to 0 (aligns decimated pixel
920 // to source pixel).
921 if (scaling_factor_num > (3 * scaling_factor_den) >> 2)
922 svc->downsample_filter_phase[svc->spatial_layer_id] = 0;
923
924 // The usage of use_base_mv or partition_reuse assumes down-scale of 2x2.
925 // For now, turn off use of base motion vectors and partition reuse if the
926 // spatial scale factors for any layers are not 2,
927 // keep the case of 3 spatial layers with scale factor of 4x4 for base layer.
928 // TODO(marpan): Fix this to allow for use_base_mv for scale factors != 2.
929 if (svc->number_spatial_layers > 1) {
930 int sl;
931 for (sl = 0; sl < svc->number_spatial_layers - 1; ++sl) {
932 lc = &svc->layer_context[sl * svc->number_temporal_layers +
933 svc->temporal_layer_id];
934 if ((lc->scaling_factor_num != lc->scaling_factor_den >> 1) &&
935 !(lc->scaling_factor_num == lc->scaling_factor_den >> 2 && sl == 0 &&
936 svc->number_spatial_layers == 3)) {
937 svc->use_base_mv = 0;
938 svc->use_partition_reuse = 0;
939 break;
940 }
941 }
942 // For non-zero spatial layers: if the previous spatial layer was dropped
943 // disable the base_mv and partition_reuse features.
944 if (svc->spatial_layer_id > 0 &&
945 svc->drop_spatial_layer[svc->spatial_layer_id - 1]) {
946 svc->use_base_mv = 0;
947 svc->use_partition_reuse = 0;
948 }
949 }
950
951 svc->non_reference_frame = 0;
952 if (cpi->common.frame_type != KEY_FRAME && !cpi->ext_refresh_last_frame &&
953 !cpi->ext_refresh_golden_frame && !cpi->ext_refresh_alt_ref_frame)
954 svc->non_reference_frame = 1;
955 // For flexible mode, where update_buffer_slot is used, need to check if
956 // all buffer slots are not refreshed.
957 if (svc->temporal_layering_mode == VP9E_TEMPORAL_LAYERING_MODE_BYPASS) {
958 if (svc->update_buffer_slot[svc->spatial_layer_id] != 0)
959 svc->non_reference_frame = 0;
960 }
961
962 if (svc->spatial_layer_id == 0) {
963 svc->high_source_sad_superframe = 0;
964 svc->high_num_blocks_with_motion = 0;
965 }
966
967 if (svc->temporal_layering_mode != VP9E_TEMPORAL_LAYERING_MODE_BYPASS &&
968 svc->last_layer_dropped[svc->spatial_layer_id] &&
969 svc->fb_idx_upd_tl0[svc->spatial_layer_id] != -1 &&
970 !svc->layer_context[svc->temporal_layer_id].is_key_frame) {
971 // For fixed/non-flexible mode, if the previous frame (same spatial layer
972 // from previous superframe) was dropped, make sure the lst_fb_idx
973 // for this frame corresponds to the buffer index updated on (last) encoded
974 // TL0 frame (with same spatial layer).
975 cpi->lst_fb_idx = svc->fb_idx_upd_tl0[svc->spatial_layer_id];
976 }
977
978 if (vp9_set_size_literal(cpi, width, height) != 0)
979 return VPX_CODEC_INVALID_PARAM;
980
981 return 0;
982 }
983
vp9_svc_lookahead_pop(VP9_COMP * const cpi,struct lookahead_ctx * ctx,int drain)984 struct lookahead_entry *vp9_svc_lookahead_pop(VP9_COMP *const cpi,
985 struct lookahead_ctx *ctx,
986 int drain) {
987 struct lookahead_entry *buf = NULL;
988 if (ctx->sz && (drain || ctx->sz == ctx->max_sz - MAX_PRE_FRAMES)) {
989 buf = vp9_lookahead_peek(ctx, 0);
990 if (buf != NULL) {
991 // Only remove the buffer when pop the highest layer.
992 if (cpi->svc.spatial_layer_id == cpi->svc.number_spatial_layers - 1) {
993 vp9_lookahead_pop(ctx, drain);
994 }
995 }
996 }
997 return buf;
998 }
999
vp9_free_svc_cyclic_refresh(VP9_COMP * const cpi)1000 void vp9_free_svc_cyclic_refresh(VP9_COMP *const cpi) {
1001 int sl, tl;
1002 SVC *const svc = &cpi->svc;
1003 const VP9EncoderConfig *const oxcf = &cpi->oxcf;
1004 for (sl = 0; sl < oxcf->ss_number_layers; ++sl) {
1005 for (tl = 0; tl < oxcf->ts_number_layers; ++tl) {
1006 int layer = LAYER_IDS_TO_IDX(sl, tl, oxcf->ts_number_layers);
1007 LAYER_CONTEXT *const lc = &svc->layer_context[layer];
1008 if (lc->map) vpx_free(lc->map);
1009 if (lc->last_coded_q_map) vpx_free(lc->last_coded_q_map);
1010 if (lc->consec_zero_mv) vpx_free(lc->consec_zero_mv);
1011 }
1012 }
1013 }
1014
1015 // Reset on key frame: reset counters, references and buffer updates.
vp9_svc_reset_temporal_layers(VP9_COMP * const cpi,int is_key)1016 void vp9_svc_reset_temporal_layers(VP9_COMP *const cpi, int is_key) {
1017 int sl, tl;
1018 SVC *const svc = &cpi->svc;
1019 LAYER_CONTEXT *lc = NULL;
1020 for (sl = 0; sl < svc->number_spatial_layers; ++sl) {
1021 for (tl = 0; tl < svc->number_temporal_layers; ++tl) {
1022 lc = &cpi->svc.layer_context[sl * svc->number_temporal_layers + tl];
1023 lc->current_video_frame_in_layer = 0;
1024 if (is_key) lc->frames_from_key_frame = 0;
1025 }
1026 }
1027 if (svc->temporal_layering_mode == VP9E_TEMPORAL_LAYERING_MODE_0212) {
1028 set_flags_and_fb_idx_for_temporal_mode3(cpi);
1029 } else if (svc->temporal_layering_mode ==
1030 VP9E_TEMPORAL_LAYERING_MODE_NOLAYERING) {
1031 set_flags_and_fb_idx_for_temporal_mode_noLayering(cpi);
1032 } else if (svc->temporal_layering_mode == VP9E_TEMPORAL_LAYERING_MODE_0101) {
1033 set_flags_and_fb_idx_for_temporal_mode2(cpi);
1034 }
1035 vp9_update_temporal_layer_framerate(cpi);
1036 vp9_restore_layer_context(cpi);
1037 }
1038
vp9_svc_check_reset_layer_rc_flag(VP9_COMP * const cpi)1039 void vp9_svc_check_reset_layer_rc_flag(VP9_COMP *const cpi) {
1040 SVC *svc = &cpi->svc;
1041 int sl, tl;
1042 for (sl = 0; sl < svc->number_spatial_layers; ++sl) {
1043 // Check for reset based on avg_frame_bandwidth for spatial layer sl.
1044 int layer = LAYER_IDS_TO_IDX(sl, svc->number_temporal_layers - 1,
1045 svc->number_temporal_layers);
1046 LAYER_CONTEXT *lc = &svc->layer_context[layer];
1047 RATE_CONTROL *lrc = &lc->rc;
1048 if (lrc->avg_frame_bandwidth > (3 * lrc->last_avg_frame_bandwidth >> 1) ||
1049 lrc->avg_frame_bandwidth < (lrc->last_avg_frame_bandwidth >> 1)) {
1050 // Reset for all temporal layers with spatial layer sl.
1051 for (tl = 0; tl < svc->number_temporal_layers; ++tl) {
1052 int layer = LAYER_IDS_TO_IDX(sl, tl, svc->number_temporal_layers);
1053 LAYER_CONTEXT *lc = &svc->layer_context[layer];
1054 RATE_CONTROL *lrc = &lc->rc;
1055 lrc->rc_1_frame = 0;
1056 lrc->rc_2_frame = 0;
1057 lrc->bits_off_target = lrc->optimal_buffer_level;
1058 lrc->buffer_level = lrc->optimal_buffer_level;
1059 }
1060 }
1061 }
1062 }
1063
vp9_svc_constrain_inter_layer_pred(VP9_COMP * const cpi)1064 void vp9_svc_constrain_inter_layer_pred(VP9_COMP *const cpi) {
1065 VP9_COMMON *const cm = &cpi->common;
1066 SVC *const svc = &cpi->svc;
1067 const int sl = svc->spatial_layer_id;
1068 // Check for disabling inter-layer (spatial) prediction, if
1069 // svc.disable_inter_layer_pred is set. If the previous spatial layer was
1070 // dropped then disable the prediction from this (scaled) reference.
1071 // For INTER_LAYER_PRED_OFF_NONKEY: inter-layer prediction is disabled
1072 // on key frames or if any spatial layer is a sync layer.
1073 if ((svc->disable_inter_layer_pred == INTER_LAYER_PRED_OFF_NONKEY &&
1074 !svc->layer_context[svc->temporal_layer_id].is_key_frame &&
1075 !svc->superframe_has_layer_sync) ||
1076 svc->disable_inter_layer_pred == INTER_LAYER_PRED_OFF ||
1077 svc->drop_spatial_layer[sl - 1]) {
1078 MV_REFERENCE_FRAME ref_frame;
1079 for (ref_frame = LAST_FRAME; ref_frame <= ALTREF_FRAME; ++ref_frame) {
1080 const YV12_BUFFER_CONFIG *yv12 = get_ref_frame_buffer(cpi, ref_frame);
1081 if (yv12 != NULL &&
1082 (cpi->ref_frame_flags & ref_frame_to_flag(ref_frame))) {
1083 const struct scale_factors *const scale_fac =
1084 &cm->frame_refs[ref_frame - 1].sf;
1085 if (vp9_is_scaled(scale_fac)) {
1086 cpi->ref_frame_flags &= (~ref_frame_to_flag(ref_frame));
1087 // Point golden/altref frame buffer index to last.
1088 if (!svc->simulcast_mode) {
1089 if (ref_frame == GOLDEN_FRAME)
1090 cpi->gld_fb_idx = cpi->lst_fb_idx;
1091 else if (ref_frame == ALTREF_FRAME)
1092 cpi->alt_fb_idx = cpi->lst_fb_idx;
1093 }
1094 }
1095 }
1096 }
1097 }
1098 // For fixed/non-flexible SVC: check for disabling inter-layer prediction.
1099 // If the reference for inter-layer prediction (the reference that is scaled)
1100 // is not the previous spatial layer from the same superframe, then we disable
1101 // inter-layer prediction. Only need to check when inter_layer prediction is
1102 // not set to OFF mode.
1103 if (svc->temporal_layering_mode != VP9E_TEMPORAL_LAYERING_MODE_BYPASS &&
1104 svc->disable_inter_layer_pred != INTER_LAYER_PRED_OFF) {
1105 // We only use LAST and GOLDEN for prediction in real-time mode, so we
1106 // check both here.
1107 MV_REFERENCE_FRAME ref_frame;
1108 for (ref_frame = LAST_FRAME; ref_frame <= GOLDEN_FRAME; ref_frame++) {
1109 struct scale_factors *scale_fac = &cm->frame_refs[ref_frame - 1].sf;
1110 if (vp9_is_scaled(scale_fac)) {
1111 // If this reference was updated on the previous spatial layer of the
1112 // current superframe, then we keep this reference (don't disable).
1113 // Otherwise we disable the inter-layer prediction.
1114 // This condition is verified by checking if the current frame buffer
1115 // index is equal to any of the slots for the previous spatial layer,
1116 // and if so, check if that slot was updated/refreshed. If that is the
1117 // case, then this reference is valid for inter-layer prediction under
1118 // the mode INTER_LAYER_PRED_ON_CONSTRAINED.
1119 int fb_idx =
1120 ref_frame == LAST_FRAME ? cpi->lst_fb_idx : cpi->gld_fb_idx;
1121 int ref_flag = ref_frame == LAST_FRAME ? VP9_LAST_FLAG : VP9_GOLD_FLAG;
1122 int disable = 1;
1123 if (fb_idx < 0) continue;
1124 if ((fb_idx == svc->lst_fb_idx[sl - 1] &&
1125 (svc->update_buffer_slot[sl - 1] & (1 << fb_idx))) ||
1126 (fb_idx == svc->gld_fb_idx[sl - 1] &&
1127 (svc->update_buffer_slot[sl - 1] & (1 << fb_idx))) ||
1128 (fb_idx == svc->alt_fb_idx[sl - 1] &&
1129 (svc->update_buffer_slot[sl - 1] & (1 << fb_idx))))
1130 disable = 0;
1131 if (disable) cpi->ref_frame_flags &= (~ref_flag);
1132 }
1133 }
1134 }
1135 }
1136
vp9_svc_assert_constraints_pattern(VP9_COMP * const cpi)1137 void vp9_svc_assert_constraints_pattern(VP9_COMP *const cpi) {
1138 SVC *const svc = &cpi->svc;
1139 // For fixed/non-flexible mode, the following constraint are expected,
1140 // when inter-layer prediciton is on (default).
1141 if (svc->temporal_layering_mode != VP9E_TEMPORAL_LAYERING_MODE_BYPASS &&
1142 svc->disable_inter_layer_pred == INTER_LAYER_PRED_ON &&
1143 svc->framedrop_mode != LAYER_DROP) {
1144 if (!svc->layer_context[svc->temporal_layer_id].is_key_frame) {
1145 // On non-key frames: LAST is always temporal reference, GOLDEN is
1146 // spatial reference.
1147 if (svc->temporal_layer_id == 0)
1148 // Base temporal only predicts from base temporal.
1149 assert(svc->fb_idx_temporal_layer_id[cpi->lst_fb_idx] == 0);
1150 else
1151 // Non-base temporal only predicts from lower temporal layer.
1152 assert(svc->fb_idx_temporal_layer_id[cpi->lst_fb_idx] <
1153 svc->temporal_layer_id);
1154 if (svc->spatial_layer_id > 0 && cpi->ref_frame_flags & VP9_GOLD_FLAG &&
1155 svc->spatial_layer_id > svc->first_spatial_layer_to_encode) {
1156 // Non-base spatial only predicts from lower spatial layer with same
1157 // temporal_id.
1158 assert(svc->fb_idx_spatial_layer_id[cpi->gld_fb_idx] ==
1159 svc->spatial_layer_id - 1);
1160 assert(svc->fb_idx_temporal_layer_id[cpi->gld_fb_idx] ==
1161 svc->temporal_layer_id);
1162 }
1163 } else if (svc->spatial_layer_id > 0 &&
1164 svc->spatial_layer_id > svc->first_spatial_layer_to_encode) {
1165 // Only 1 reference for frame whose base is key; reference may be LAST
1166 // or GOLDEN, so we check both.
1167 if (cpi->ref_frame_flags & VP9_LAST_FLAG) {
1168 assert(svc->fb_idx_spatial_layer_id[cpi->lst_fb_idx] ==
1169 svc->spatial_layer_id - 1);
1170 assert(svc->fb_idx_temporal_layer_id[cpi->lst_fb_idx] ==
1171 svc->temporal_layer_id);
1172 } else if (cpi->ref_frame_flags & VP9_GOLD_FLAG) {
1173 assert(svc->fb_idx_spatial_layer_id[cpi->gld_fb_idx] ==
1174 svc->spatial_layer_id - 1);
1175 assert(svc->fb_idx_temporal_layer_id[cpi->gld_fb_idx] ==
1176 svc->temporal_layer_id);
1177 }
1178 }
1179 } else if (svc->use_gf_temporal_ref_current_layer &&
1180 !svc->layer_context[svc->temporal_layer_id].is_key_frame) {
1181 // For the usage of golden as second long term reference: the
1182 // temporal_layer_id of that reference must be base temporal layer 0, and
1183 // spatial_layer_id of that reference must be same as current
1184 // spatial_layer_id. If not, disable feature.
1185 // TODO(marpan): Investigate when this can happen, and maybe put this check
1186 // and reset in a different place.
1187 if (svc->fb_idx_spatial_layer_id[cpi->gld_fb_idx] !=
1188 svc->spatial_layer_id ||
1189 svc->fb_idx_temporal_layer_id[cpi->gld_fb_idx] != 0)
1190 svc->use_gf_temporal_ref_current_layer = 0;
1191 }
1192 }
1193
1194 #if CONFIG_VP9_TEMPORAL_DENOISING
vp9_denoise_svc_non_key(VP9_COMP * const cpi)1195 int vp9_denoise_svc_non_key(VP9_COMP *const cpi) {
1196 int layer =
1197 LAYER_IDS_TO_IDX(cpi->svc.spatial_layer_id, cpi->svc.temporal_layer_id,
1198 cpi->svc.number_temporal_layers);
1199 LAYER_CONTEXT *lc = &cpi->svc.layer_context[layer];
1200 return denoise_svc(cpi) && !lc->is_key_frame;
1201 }
1202 #endif
1203
vp9_svc_check_spatial_layer_sync(VP9_COMP * const cpi)1204 void vp9_svc_check_spatial_layer_sync(VP9_COMP *const cpi) {
1205 SVC *const svc = &cpi->svc;
1206 // Only for superframes whose base is not key, as those are
1207 // already sync frames.
1208 if (!svc->layer_context[svc->temporal_layer_id].is_key_frame) {
1209 if (svc->spatial_layer_id == 0) {
1210 // On base spatial layer: if the current superframe has a layer sync then
1211 // reset the pattern counters and reset to base temporal layer.
1212 if (svc->superframe_has_layer_sync)
1213 vp9_svc_reset_temporal_layers(cpi, cpi->common.frame_type == KEY_FRAME);
1214 }
1215 // If the layer sync is set for this current spatial layer then
1216 // disable the temporal reference.
1217 if (svc->spatial_layer_id > 0 &&
1218 svc->spatial_layer_sync[svc->spatial_layer_id]) {
1219 cpi->ref_frame_flags &= (~VP9_LAST_FLAG);
1220 if (svc->use_gf_temporal_ref_current_layer) {
1221 int index = svc->spatial_layer_id;
1222 // If golden is used as second reference: need to remove it from
1223 // prediction, reset refresh period to 0, and update the reference.
1224 svc->use_gf_temporal_ref_current_layer = 0;
1225 cpi->rc.baseline_gf_interval = 0;
1226 cpi->rc.frames_till_gf_update_due = 0;
1227 // On layer sync frame we must update the buffer index used for long
1228 // term reference. Use the alt_ref since it is not used or updated on
1229 // sync frames.
1230 if (svc->number_spatial_layers == 3) index = svc->spatial_layer_id - 1;
1231 assert(index >= 0);
1232 cpi->alt_fb_idx = svc->buffer_gf_temporal_ref[index].idx;
1233 cpi->ext_refresh_alt_ref_frame = 1;
1234 }
1235 }
1236 }
1237 }
1238
vp9_svc_update_ref_frame_buffer_idx(VP9_COMP * const cpi)1239 void vp9_svc_update_ref_frame_buffer_idx(VP9_COMP *const cpi) {
1240 SVC *const svc = &cpi->svc;
1241 int i = 0;
1242 // Update the usage of frame buffer index for base spatial layers.
1243 if (svc->spatial_layer_id == 0) {
1244 if ((cpi->ref_frame_flags & VP9_LAST_FLAG) || cpi->refresh_last_frame)
1245 svc->fb_idx_base[cpi->lst_fb_idx] = 1;
1246 if ((cpi->ref_frame_flags & VP9_GOLD_FLAG) || cpi->refresh_golden_frame)
1247 svc->fb_idx_base[cpi->gld_fb_idx] = 1;
1248 if ((cpi->ref_frame_flags & VP9_ALT_FLAG) || cpi->refresh_alt_ref_frame)
1249 svc->fb_idx_base[cpi->alt_fb_idx] = 1;
1250 // For bypass/flexible mode: check for refresh slots.
1251 if (svc->temporal_layering_mode == VP9E_TEMPORAL_LAYERING_MODE_BYPASS) {
1252 for (i = 0; i < REF_FRAMES; ++i)
1253 if (svc->update_buffer_slot[0] & (1 << i)) svc->fb_idx_base[i] = 1;
1254 }
1255 }
1256 }
1257
vp9_svc_update_ref_frame_bypass_mode(VP9_COMP * const cpi)1258 static void vp9_svc_update_ref_frame_bypass_mode(VP9_COMP *const cpi) {
1259 // For non-flexible/bypass SVC mode: check for refreshing other buffer
1260 // slots.
1261 SVC *const svc = &cpi->svc;
1262 VP9_COMMON *const cm = &cpi->common;
1263 BufferPool *const pool = cm->buffer_pool;
1264 int i;
1265 for (i = 0; i < REF_FRAMES; i++) {
1266 if ((cm->frame_type == KEY_FRAME && !svc->simulcast_mode) ||
1267 svc->update_buffer_slot[svc->spatial_layer_id] & (1 << i)) {
1268 ref_cnt_fb(pool->frame_bufs, &cm->ref_frame_map[i], cm->new_fb_idx);
1269 svc->fb_idx_spatial_layer_id[i] = svc->spatial_layer_id;
1270 svc->fb_idx_temporal_layer_id[i] = svc->temporal_layer_id;
1271 }
1272 }
1273 }
1274
vp9_svc_update_ref_frame(VP9_COMP * const cpi)1275 void vp9_svc_update_ref_frame(VP9_COMP *const cpi) {
1276 VP9_COMMON *const cm = &cpi->common;
1277 SVC *const svc = &cpi->svc;
1278 BufferPool *const pool = cm->buffer_pool;
1279
1280 if (svc->temporal_layering_mode == VP9E_TEMPORAL_LAYERING_MODE_BYPASS &&
1281 svc->use_set_ref_frame_config) {
1282 vp9_svc_update_ref_frame_bypass_mode(cpi);
1283 } else if (cm->frame_type == KEY_FRAME && !svc->simulcast_mode) {
1284 // Keep track of frame index for each reference frame.
1285 int i;
1286 // On key frame update all reference frame slots.
1287 for (i = 0; i < REF_FRAMES; i++) {
1288 svc->fb_idx_spatial_layer_id[i] = svc->spatial_layer_id;
1289 svc->fb_idx_temporal_layer_id[i] = svc->temporal_layer_id;
1290 // LAST/GOLDEN/ALTREF is already updated above.
1291 if (i != cpi->lst_fb_idx && i != cpi->gld_fb_idx && i != cpi->alt_fb_idx)
1292 ref_cnt_fb(pool->frame_bufs, &cm->ref_frame_map[i], cm->new_fb_idx);
1293 }
1294 } else {
1295 if (cpi->refresh_last_frame) {
1296 svc->fb_idx_spatial_layer_id[cpi->lst_fb_idx] = svc->spatial_layer_id;
1297 svc->fb_idx_temporal_layer_id[cpi->lst_fb_idx] = svc->temporal_layer_id;
1298 }
1299 if (cpi->refresh_golden_frame) {
1300 svc->fb_idx_spatial_layer_id[cpi->gld_fb_idx] = svc->spatial_layer_id;
1301 svc->fb_idx_temporal_layer_id[cpi->gld_fb_idx] = svc->temporal_layer_id;
1302 }
1303 if (cpi->refresh_alt_ref_frame) {
1304 svc->fb_idx_spatial_layer_id[cpi->alt_fb_idx] = svc->spatial_layer_id;
1305 svc->fb_idx_temporal_layer_id[cpi->alt_fb_idx] = svc->temporal_layer_id;
1306 }
1307 }
1308 // Copy flags from encoder to SVC struct.
1309 vp9_copy_flags_ref_update_idx(cpi);
1310 vp9_svc_update_ref_frame_buffer_idx(cpi);
1311 }
1312
vp9_svc_adjust_frame_rate(VP9_COMP * const cpi)1313 void vp9_svc_adjust_frame_rate(VP9_COMP *const cpi) {
1314 int64_t this_duration =
1315 cpi->svc.timebase_fac * cpi->svc.duration[cpi->svc.spatial_layer_id];
1316 vp9_new_framerate(cpi, 10000000.0 / this_duration);
1317 }
1318
vp9_svc_adjust_avg_frame_qindex(VP9_COMP * const cpi)1319 void vp9_svc_adjust_avg_frame_qindex(VP9_COMP *const cpi) {
1320 VP9_COMMON *const cm = &cpi->common;
1321 SVC *const svc = &cpi->svc;
1322 RATE_CONTROL *const rc = &cpi->rc;
1323 // On key frames in CBR mode: reset the avg_frame_index for base layer
1324 // (to level closer to worst_quality) if the overshoot is significant.
1325 // Reset it for all temporal layers on base spatial layer.
1326 if (cm->frame_type == KEY_FRAME && cpi->oxcf.rc_mode == VPX_CBR &&
1327 !svc->simulcast_mode &&
1328 rc->projected_frame_size > 3 * rc->avg_frame_bandwidth) {
1329 int tl;
1330 rc->avg_frame_qindex[INTER_FRAME] =
1331 VPXMAX(rc->avg_frame_qindex[INTER_FRAME],
1332 (cm->base_qindex + rc->worst_quality) >> 1);
1333 for (tl = 0; tl < svc->number_temporal_layers; ++tl) {
1334 const int layer = LAYER_IDS_TO_IDX(0, tl, svc->number_temporal_layers);
1335 LAYER_CONTEXT *lc = &svc->layer_context[layer];
1336 RATE_CONTROL *lrc = &lc->rc;
1337 lrc->avg_frame_qindex[INTER_FRAME] = rc->avg_frame_qindex[INTER_FRAME];
1338 }
1339 }
1340 }
1341