1 /*
2 * Copyright (c) 2019, Alliance for Open Media. All rights reserved
3 *
4 * This source code is subject to the terms of the BSD 2 Clause License and
5 * the Alliance for Open Media Patent License 1.0. If the BSD 2 Clause License
6 * was not distributed with this source code in the LICENSE file, you can
7 * obtain it at www.aomedia.org/license/software. If the Alliance for Open
8 * Media Patent License 1.0 was not distributed with this source code in the
9 * PATENTS file, you can obtain it at www.aomedia.org/license/patent.
10 */
11
12 #include <stdint.h>
13
14 #include "av1/common/blockd.h"
15 #include "config/aom_config.h"
16 #include "config/aom_scale_rtcd.h"
17
18 #include "aom/aom_codec.h"
19 #include "aom/aom_encoder.h"
20
21 #if CONFIG_MISMATCH_DEBUG
22 #include "aom_util/debug_util.h"
23 #endif // CONFIG_MISMATCH_DEBUG
24
25 #include "av1/common/av1_common_int.h"
26 #include "av1/common/reconinter.h"
27
28 #include "av1/encoder/encoder.h"
29 #include "av1/encoder/encode_strategy.h"
30 #include "av1/encoder/encodeframe.h"
31 #include "av1/encoder/encoder_alloc.h"
32 #include "av1/encoder/firstpass.h"
33 #include "av1/encoder/gop_structure.h"
34 #include "av1/encoder/pass2_strategy.h"
35 #include "av1/encoder/temporal_filter.h"
36 #if CONFIG_THREE_PASS
37 #include "av1/encoder/thirdpass.h"
38 #endif // CONFIG_THREE_PASS
39 #include "av1/encoder/tpl_model.h"
40
41 #if CONFIG_TUNE_VMAF
42 #include "av1/encoder/tune_vmaf.h"
43 #endif
44
45 #define TEMPORAL_FILTER_KEY_FRAME (CONFIG_REALTIME_ONLY ? 0 : 1)
46
set_refresh_frame_flags(RefreshFrameInfo * const refresh_frame,bool refresh_gf,bool refresh_bwdref,bool refresh_arf)47 static INLINE void set_refresh_frame_flags(
48 RefreshFrameInfo *const refresh_frame, bool refresh_gf, bool refresh_bwdref,
49 bool refresh_arf) {
50 refresh_frame->golden_frame = refresh_gf;
51 refresh_frame->bwd_ref_frame = refresh_bwdref;
52 refresh_frame->alt_ref_frame = refresh_arf;
53 }
54
av1_configure_buffer_updates(AV1_COMP * const cpi,RefreshFrameInfo * const refresh_frame,const FRAME_UPDATE_TYPE type,const REFBUF_STATE refbuf_state,int force_refresh_all)55 void av1_configure_buffer_updates(AV1_COMP *const cpi,
56 RefreshFrameInfo *const refresh_frame,
57 const FRAME_UPDATE_TYPE type,
58 const REFBUF_STATE refbuf_state,
59 int force_refresh_all) {
60 // NOTE(weitinglin): Should we define another function to take care of
61 // cpi->rc.is_$Source_Type to make this function as it is in the comment?
62 const ExtRefreshFrameFlagsInfo *const ext_refresh_frame_flags =
63 &cpi->ext_flags.refresh_frame;
64 cpi->rc.is_src_frame_alt_ref = 0;
65
66 switch (type) {
67 case KF_UPDATE:
68 set_refresh_frame_flags(refresh_frame, true, true, true);
69 break;
70
71 case LF_UPDATE:
72 set_refresh_frame_flags(refresh_frame, false, false, false);
73 break;
74
75 case GF_UPDATE:
76 set_refresh_frame_flags(refresh_frame, true, false, false);
77 break;
78
79 case OVERLAY_UPDATE:
80 if (refbuf_state == REFBUF_RESET)
81 set_refresh_frame_flags(refresh_frame, true, true, true);
82 else
83 set_refresh_frame_flags(refresh_frame, true, false, false);
84
85 cpi->rc.is_src_frame_alt_ref = 1;
86 break;
87
88 case ARF_UPDATE:
89 // NOTE: BWDREF does not get updated along with ALTREF_FRAME.
90 if (refbuf_state == REFBUF_RESET)
91 set_refresh_frame_flags(refresh_frame, true, true, true);
92 else
93 set_refresh_frame_flags(refresh_frame, false, false, true);
94
95 break;
96
97 case INTNL_OVERLAY_UPDATE:
98 set_refresh_frame_flags(refresh_frame, false, false, false);
99 cpi->rc.is_src_frame_alt_ref = 1;
100 break;
101
102 case INTNL_ARF_UPDATE:
103 set_refresh_frame_flags(refresh_frame, false, true, false);
104 break;
105
106 default: assert(0); break;
107 }
108
109 if (ext_refresh_frame_flags->update_pending &&
110 (!is_stat_generation_stage(cpi))) {
111 set_refresh_frame_flags(refresh_frame,
112 ext_refresh_frame_flags->golden_frame,
113 ext_refresh_frame_flags->bwd_ref_frame,
114 ext_refresh_frame_flags->alt_ref_frame);
115 GF_GROUP *gf_group = &cpi->ppi->gf_group;
116 if (ext_refresh_frame_flags->golden_frame)
117 gf_group->update_type[cpi->gf_frame_index] = GF_UPDATE;
118 if (ext_refresh_frame_flags->alt_ref_frame)
119 gf_group->update_type[cpi->gf_frame_index] = ARF_UPDATE;
120 if (ext_refresh_frame_flags->bwd_ref_frame)
121 gf_group->update_type[cpi->gf_frame_index] = INTNL_ARF_UPDATE;
122 }
123
124 if (force_refresh_all)
125 set_refresh_frame_flags(refresh_frame, true, true, true);
126 }
127
set_additional_frame_flags(const AV1_COMMON * const cm,unsigned int * const frame_flags)128 static void set_additional_frame_flags(const AV1_COMMON *const cm,
129 unsigned int *const frame_flags) {
130 if (frame_is_intra_only(cm)) {
131 *frame_flags |= FRAMEFLAGS_INTRAONLY;
132 }
133 if (frame_is_sframe(cm)) {
134 *frame_flags |= FRAMEFLAGS_SWITCH;
135 }
136 if (cm->features.error_resilient_mode) {
137 *frame_flags |= FRAMEFLAGS_ERROR_RESILIENT;
138 }
139 }
140
set_ext_overrides(AV1_COMMON * const cm,EncodeFrameParams * const frame_params,ExternalFlags * const ext_flags)141 static void set_ext_overrides(AV1_COMMON *const cm,
142 EncodeFrameParams *const frame_params,
143 ExternalFlags *const ext_flags) {
144 // Overrides the defaults with the externally supplied values with
145 // av1_update_reference() and av1_update_entropy() calls
146 // Note: The overrides are valid only for the next frame passed
147 // to av1_encode_lowlevel()
148
149 if (ext_flags->use_s_frame) {
150 frame_params->frame_type = S_FRAME;
151 }
152
153 if (ext_flags->refresh_frame_context_pending) {
154 cm->features.refresh_frame_context = ext_flags->refresh_frame_context;
155 ext_flags->refresh_frame_context_pending = 0;
156 }
157 cm->features.allow_ref_frame_mvs = ext_flags->use_ref_frame_mvs;
158
159 frame_params->error_resilient_mode = ext_flags->use_error_resilient;
160 // A keyframe is already error resilient and keyframes with
161 // error_resilient_mode interferes with the use of show_existing_frame
162 // when forward reference keyframes are enabled.
163 frame_params->error_resilient_mode &= frame_params->frame_type != KEY_FRAME;
164 // For bitstream conformance, s-frames must be error-resilient
165 frame_params->error_resilient_mode |= frame_params->frame_type == S_FRAME;
166 }
167
choose_primary_ref_frame(AV1_COMP * const cpi,const EncodeFrameParams * const frame_params)168 static int choose_primary_ref_frame(
169 AV1_COMP *const cpi, const EncodeFrameParams *const frame_params) {
170 const AV1_COMMON *const cm = &cpi->common;
171
172 const int intra_only = frame_params->frame_type == KEY_FRAME ||
173 frame_params->frame_type == INTRA_ONLY_FRAME;
174 if (intra_only || frame_params->error_resilient_mode ||
175 cpi->ext_flags.use_primary_ref_none) {
176 return PRIMARY_REF_NONE;
177 }
178
179 #if !CONFIG_REALTIME_ONLY
180 if (cpi->use_ducky_encode) {
181 int wanted_fb = cpi->ppi->gf_group.primary_ref_idx[cpi->gf_frame_index];
182 for (int ref_frame = LAST_FRAME; ref_frame <= ALTREF_FRAME; ref_frame++) {
183 if (get_ref_frame_map_idx(cm, ref_frame) == wanted_fb)
184 return ref_frame - LAST_FRAME;
185 }
186
187 return PRIMARY_REF_NONE;
188 }
189 #endif // !CONFIG_REALTIME_ONLY
190
191 // In large scale case, always use Last frame's frame contexts.
192 // Note(yunqing): In other cases, primary_ref_frame is chosen based on
193 // cpi->ppi->gf_group.layer_depth[cpi->gf_frame_index], which also controls
194 // frame bit allocation.
195 if (cm->tiles.large_scale) return (LAST_FRAME - LAST_FRAME);
196
197 if (cpi->ppi->use_svc || cpi->ppi->rtc_ref.set_ref_frame_config)
198 return av1_svc_primary_ref_frame(cpi);
199
200 // Find the most recent reference frame with the same reference type as the
201 // current frame
202 const int current_ref_type = get_current_frame_ref_type(cpi);
203 int wanted_fb = cpi->ppi->fb_of_context_type[current_ref_type];
204 #if CONFIG_FPMT_TEST
205 if (cpi->ppi->fpmt_unit_test_cfg == PARALLEL_SIMULATION_ENCODE) {
206 GF_GROUP *const gf_group = &cpi->ppi->gf_group;
207 if (gf_group->update_type[cpi->gf_frame_index] == INTNL_ARF_UPDATE) {
208 int frame_level = gf_group->frame_parallel_level[cpi->gf_frame_index];
209 // Book keep wanted_fb of frame_parallel_level 1 frame in an FP2 set.
210 if (frame_level == 1) {
211 cpi->wanted_fb = wanted_fb;
212 }
213 // Use the wanted_fb of level 1 frame in an FP2 for a level 2 frame in the
214 // set.
215 if (frame_level == 2 &&
216 gf_group->update_type[cpi->gf_frame_index - 1] == INTNL_ARF_UPDATE) {
217 assert(gf_group->frame_parallel_level[cpi->gf_frame_index - 1] == 1);
218 wanted_fb = cpi->wanted_fb;
219 }
220 }
221 }
222 #endif // CONFIG_FPMT_TEST
223 int primary_ref_frame = PRIMARY_REF_NONE;
224 for (int ref_frame = LAST_FRAME; ref_frame <= ALTREF_FRAME; ref_frame++) {
225 if (get_ref_frame_map_idx(cm, ref_frame) == wanted_fb) {
226 primary_ref_frame = ref_frame - LAST_FRAME;
227 }
228 }
229
230 return primary_ref_frame;
231 }
232
adjust_frame_rate(AV1_COMP * cpi,int64_t ts_start,int64_t ts_end)233 static void adjust_frame_rate(AV1_COMP *cpi, int64_t ts_start, int64_t ts_end) {
234 TimeStamps *time_stamps = &cpi->time_stamps;
235 int64_t this_duration;
236 int step = 0;
237
238 // Clear down mmx registers
239
240 if (cpi->ppi->use_svc && cpi->ppi->rtc_ref.set_ref_frame_config &&
241 cpi->svc.number_spatial_layers > 1) {
242 // ts_start is the timestamp for the current frame and ts_end is the
243 // expected next timestamp given the duration passed into codec_encode().
244 // See the setting in encoder_encode() in av1_cx_iface.c:
245 // ts_start = timebase_units_to_ticks(cpi_data.timestamp_ratio, ptsvol),
246 // ts_end = timebase_units_to_ticks(cpi_data.timestamp_ratio, ptsvol +
247 // duration). So the difference ts_end - ts_start is the duration passed
248 // in by the user. For spatial layers SVC set the framerate based directly
249 // on the duration, and bypass the adjustments below.
250 this_duration = ts_end - ts_start;
251 if (this_duration > 0) {
252 cpi->new_framerate = 10000000.0 / this_duration;
253 av1_new_framerate(cpi, cpi->new_framerate);
254 time_stamps->prev_ts_start = ts_start;
255 time_stamps->prev_ts_end = ts_end;
256 return;
257 }
258 }
259
260 if (ts_start == time_stamps->first_ts_start) {
261 this_duration = ts_end - ts_start;
262 step = 1;
263 } else {
264 int64_t last_duration =
265 time_stamps->prev_ts_end - time_stamps->prev_ts_start;
266
267 this_duration = ts_end - time_stamps->prev_ts_end;
268
269 // do a step update if the duration changes by 10%
270 if (last_duration)
271 step = (int)((this_duration - last_duration) * 10 / last_duration);
272 }
273
274 if (this_duration) {
275 if (step) {
276 cpi->new_framerate = 10000000.0 / this_duration;
277 av1_new_framerate(cpi, cpi->new_framerate);
278 } else {
279 // Average this frame's rate into the last second's average
280 // frame rate. If we haven't seen 1 second yet, then average
281 // over the whole interval seen.
282 const double interval =
283 AOMMIN((double)(ts_end - time_stamps->first_ts_start), 10000000.0);
284 double avg_duration = 10000000.0 / cpi->framerate;
285 avg_duration *= (interval - avg_duration + this_duration);
286 avg_duration /= interval;
287 cpi->new_framerate = (10000000.0 / avg_duration);
288 // For parallel frames update cpi->framerate with new_framerate
289 // during av1_post_encode_updates()
290 double framerate =
291 (cpi->ppi->gf_group.frame_parallel_level[cpi->gf_frame_index] > 0)
292 ? cpi->framerate
293 : cpi->new_framerate;
294 av1_new_framerate(cpi, framerate);
295 }
296 }
297
298 time_stamps->prev_ts_start = ts_start;
299 time_stamps->prev_ts_end = ts_end;
300 }
301
302 // Determine whether there is a forced keyframe pending in the lookahead buffer
is_forced_keyframe_pending(struct lookahead_ctx * lookahead,const int up_to_index,const COMPRESSOR_STAGE compressor_stage)303 int is_forced_keyframe_pending(struct lookahead_ctx *lookahead,
304 const int up_to_index,
305 const COMPRESSOR_STAGE compressor_stage) {
306 for (int i = 0; i <= up_to_index; i++) {
307 const struct lookahead_entry *e =
308 av1_lookahead_peek(lookahead, i, compressor_stage);
309 if (e == NULL) {
310 // We have reached the end of the lookahead buffer and not early-returned
311 // so there isn't a forced key-frame pending.
312 return -1;
313 } else if (e->flags == AOM_EFLAG_FORCE_KF) {
314 return i;
315 } else {
316 continue;
317 }
318 }
319 return -1; // Never reached
320 }
321
322 // Check if we should encode an ARF or internal ARF. If not, try a LAST
323 // Do some setup associated with the chosen source
324 // temporal_filtered, flush, and frame_update_type are outputs.
325 // Return the frame source, or NULL if we couldn't find one
choose_frame_source(AV1_COMP * const cpi,int * const flush,int * pop_lookahead,struct lookahead_entry ** last_source,int * const show_frame)326 static struct lookahead_entry *choose_frame_source(
327 AV1_COMP *const cpi, int *const flush, int *pop_lookahead,
328 struct lookahead_entry **last_source, int *const show_frame) {
329 AV1_COMMON *const cm = &cpi->common;
330 const GF_GROUP *const gf_group = &cpi->ppi->gf_group;
331 struct lookahead_entry *source = NULL;
332
333 // Source index in lookahead buffer.
334 int src_index = gf_group->arf_src_offset[cpi->gf_frame_index];
335
336 // TODO(Aasaipriya): Forced key frames need to be fixed when rc_mode != AOM_Q
337 if (src_index &&
338 (is_forced_keyframe_pending(cpi->ppi->lookahead, src_index,
339 cpi->compressor_stage) != -1) &&
340 cpi->oxcf.rc_cfg.mode != AOM_Q && !is_stat_generation_stage(cpi)) {
341 src_index = 0;
342 *flush = 1;
343 }
344
345 // If the current frame is arf, then we should not pop from the lookahead
346 // buffer. If the current frame is not arf, then pop it. This assumes the
347 // first frame in the GF group is not arf. May need to change if it is not
348 // true.
349 *pop_lookahead = (src_index == 0);
350 // If this is a key frame and keyframe filtering is enabled with overlay,
351 // then do not pop.
352 if (*pop_lookahead && cpi->oxcf.kf_cfg.enable_keyframe_filtering > 1 &&
353 gf_group->update_type[cpi->gf_frame_index] == ARF_UPDATE &&
354 !is_stat_generation_stage(cpi) && cpi->ppi->lookahead) {
355 if (cpi->ppi->lookahead->read_ctxs[cpi->compressor_stage].sz &&
356 (*flush ||
357 cpi->ppi->lookahead->read_ctxs[cpi->compressor_stage].sz ==
358 cpi->ppi->lookahead->read_ctxs[cpi->compressor_stage].pop_sz)) {
359 *pop_lookahead = 0;
360 }
361 }
362
363 // LAP stage does not have ARFs or forward key-frames,
364 // hence, always pop_lookahead here.
365 if (is_stat_generation_stage(cpi)) {
366 *pop_lookahead = 1;
367 src_index = 0;
368 }
369
370 *show_frame = *pop_lookahead;
371
372 #if CONFIG_FPMT_TEST
373 if (cpi->ppi->fpmt_unit_test_cfg == PARALLEL_ENCODE) {
374 #else
375 {
376 #endif // CONFIG_FPMT_TEST
377 // Future frame in parallel encode set
378 if (gf_group->src_offset[cpi->gf_frame_index] != 0 &&
379 !is_stat_generation_stage(cpi))
380 src_index = gf_group->src_offset[cpi->gf_frame_index];
381 }
382 if (*show_frame) {
383 // show frame, pop from buffer
384 // Get last frame source.
385 if (cm->current_frame.frame_number > 0) {
386 *last_source = av1_lookahead_peek(cpi->ppi->lookahead, src_index - 1,
387 cpi->compressor_stage);
388 }
389 // Read in the source frame.
390 source = av1_lookahead_peek(cpi->ppi->lookahead, src_index,
391 cpi->compressor_stage);
392 } else {
393 // no show frames are arf frames
394 source = av1_lookahead_peek(cpi->ppi->lookahead, src_index,
395 cpi->compressor_stage);
396 if (source != NULL) {
397 cm->showable_frame = 1;
398 }
399 }
400 return source;
401 }
402
403 // Don't allow a show_existing_frame to coincide with an error resilient or
404 // S-Frame. An exception can be made in the case of a keyframe, since it does
405 // not depend on any previous frames.
406 static int allow_show_existing(const AV1_COMP *const cpi,
407 unsigned int frame_flags) {
408 if (cpi->common.current_frame.frame_number == 0) return 0;
409
410 const struct lookahead_entry *lookahead_src =
411 av1_lookahead_peek(cpi->ppi->lookahead, 0, cpi->compressor_stage);
412 if (lookahead_src == NULL) return 1;
413
414 const int is_error_resilient =
415 cpi->oxcf.tool_cfg.error_resilient_mode ||
416 (lookahead_src->flags & AOM_EFLAG_ERROR_RESILIENT);
417 const int is_s_frame = cpi->oxcf.kf_cfg.enable_sframe ||
418 (lookahead_src->flags & AOM_EFLAG_SET_S_FRAME);
419 const int is_key_frame =
420 (cpi->rc.frames_to_key == 0) || (frame_flags & FRAMEFLAGS_KEY);
421 return !(is_error_resilient || is_s_frame) || is_key_frame;
422 }
423
424 // Update frame_flags to tell the encoder's caller what sort of frame was
425 // encoded.
426 static void update_frame_flags(const AV1_COMMON *const cm,
427 const RefreshFrameInfo *const refresh_frame,
428 unsigned int *frame_flags) {
429 if (encode_show_existing_frame(cm)) {
430 *frame_flags &= ~(uint32_t)FRAMEFLAGS_GOLDEN;
431 *frame_flags &= ~(uint32_t)FRAMEFLAGS_BWDREF;
432 *frame_flags &= ~(uint32_t)FRAMEFLAGS_ALTREF;
433 *frame_flags &= ~(uint32_t)FRAMEFLAGS_KEY;
434 return;
435 }
436
437 if (refresh_frame->golden_frame) {
438 *frame_flags |= FRAMEFLAGS_GOLDEN;
439 } else {
440 *frame_flags &= ~(uint32_t)FRAMEFLAGS_GOLDEN;
441 }
442
443 if (refresh_frame->alt_ref_frame) {
444 *frame_flags |= FRAMEFLAGS_ALTREF;
445 } else {
446 *frame_flags &= ~(uint32_t)FRAMEFLAGS_ALTREF;
447 }
448
449 if (refresh_frame->bwd_ref_frame) {
450 *frame_flags |= FRAMEFLAGS_BWDREF;
451 } else {
452 *frame_flags &= ~(uint32_t)FRAMEFLAGS_BWDREF;
453 }
454
455 if (cm->current_frame.frame_type == KEY_FRAME) {
456 *frame_flags |= FRAMEFLAGS_KEY;
457 } else {
458 *frame_flags &= ~(uint32_t)FRAMEFLAGS_KEY;
459 }
460 }
461
462 #define DUMP_REF_FRAME_IMAGES 0
463
464 #if DUMP_REF_FRAME_IMAGES == 1
465 static int dump_one_image(AV1_COMMON *cm,
466 const YV12_BUFFER_CONFIG *const ref_buf,
467 char *file_name) {
468 int h;
469 FILE *f_ref = NULL;
470
471 if (ref_buf == NULL) {
472 printf("Frame data buffer is NULL.\n");
473 return AOM_CODEC_MEM_ERROR;
474 }
475
476 if ((f_ref = fopen(file_name, "wb")) == NULL) {
477 printf("Unable to open file %s to write.\n", file_name);
478 return AOM_CODEC_MEM_ERROR;
479 }
480
481 // --- Y ---
482 for (h = 0; h < cm->height; ++h) {
483 fwrite(&ref_buf->y_buffer[h * ref_buf->y_stride], 1, cm->width, f_ref);
484 }
485 // --- U ---
486 for (h = 0; h < (cm->height >> 1); ++h) {
487 fwrite(&ref_buf->u_buffer[h * ref_buf->uv_stride], 1, (cm->width >> 1),
488 f_ref);
489 }
490 // --- V ---
491 for (h = 0; h < (cm->height >> 1); ++h) {
492 fwrite(&ref_buf->v_buffer[h * ref_buf->uv_stride], 1, (cm->width >> 1),
493 f_ref);
494 }
495
496 fclose(f_ref);
497
498 return AOM_CODEC_OK;
499 }
500
501 static void dump_ref_frame_images(AV1_COMP *cpi) {
502 AV1_COMMON *const cm = &cpi->common;
503 MV_REFERENCE_FRAME ref_frame;
504
505 for (ref_frame = LAST_FRAME; ref_frame <= ALTREF_FRAME; ++ref_frame) {
506 char file_name[256] = "";
507 snprintf(file_name, sizeof(file_name), "/tmp/enc_F%d_ref_%d.yuv",
508 cm->current_frame.frame_number, ref_frame);
509 dump_one_image(cm, get_ref_frame_yv12_buf(cpi, ref_frame), file_name);
510 }
511 }
512 #endif // DUMP_REF_FRAME_IMAGES == 1
513
514 int av1_get_refresh_ref_frame_map(int refresh_frame_flags) {
515 int ref_map_index;
516
517 for (ref_map_index = 0; ref_map_index < REF_FRAMES; ++ref_map_index)
518 if ((refresh_frame_flags >> ref_map_index) & 1) break;
519
520 if (ref_map_index == REF_FRAMES) ref_map_index = INVALID_IDX;
521 return ref_map_index;
522 }
523
524 static int get_free_ref_map_index(RefFrameMapPair ref_map_pairs[REF_FRAMES]) {
525 for (int idx = 0; idx < REF_FRAMES; ++idx)
526 if (ref_map_pairs[idx].disp_order == -1) return idx;
527 return INVALID_IDX;
528 }
529
530 static int get_refresh_idx(RefFrameMapPair ref_frame_map_pairs[REF_FRAMES],
531 int update_arf, GF_GROUP *gf_group, int gf_index,
532 int enable_refresh_skip, int cur_frame_disp) {
533 int arf_count = 0;
534 int oldest_arf_order = INT32_MAX;
535 int oldest_arf_idx = -1;
536
537 int oldest_frame_order = INT32_MAX;
538 int oldest_idx = -1;
539
540 for (int map_idx = 0; map_idx < REF_FRAMES; map_idx++) {
541 RefFrameMapPair ref_pair = ref_frame_map_pairs[map_idx];
542 if (ref_pair.disp_order == -1) continue;
543 const int frame_order = ref_pair.disp_order;
544 const int reference_frame_level = ref_pair.pyr_level;
545 // Keep future frames and three closest previous frames in output order.
546 if (frame_order > cur_frame_disp - 3) continue;
547
548 if (enable_refresh_skip) {
549 int skip_frame = 0;
550 // Prevent refreshing a frame in gf_group->skip_frame_refresh.
551 for (int i = 0; i < REF_FRAMES; i++) {
552 int frame_to_skip = gf_group->skip_frame_refresh[gf_index][i];
553 if (frame_to_skip == INVALID_IDX) break;
554 if (frame_order == frame_to_skip) {
555 skip_frame = 1;
556 break;
557 }
558 }
559 if (skip_frame) continue;
560 }
561
562 // Keep track of the oldest level 1 frame if the current frame is also level
563 // 1.
564 if (reference_frame_level == 1) {
565 // If there are more than 2 level 1 frames in the reference list,
566 // discard the oldest.
567 if (frame_order < oldest_arf_order) {
568 oldest_arf_order = frame_order;
569 oldest_arf_idx = map_idx;
570 }
571 arf_count++;
572 continue;
573 }
574
575 // Update the overall oldest reference frame.
576 if (frame_order < oldest_frame_order) {
577 oldest_frame_order = frame_order;
578 oldest_idx = map_idx;
579 }
580 }
581 if (update_arf && arf_count > 2) return oldest_arf_idx;
582 if (oldest_idx >= 0) return oldest_idx;
583 if (oldest_arf_idx >= 0) return oldest_arf_idx;
584 if (oldest_idx == -1) {
585 assert(arf_count > 2 && enable_refresh_skip);
586 return oldest_arf_idx;
587 }
588 assert(0 && "No valid refresh index found");
589 return -1;
590 }
591
592 // Computes the reference refresh index for INTNL_ARF_UPDATE frame.
593 int av1_calc_refresh_idx_for_intnl_arf(
594 AV1_COMP *cpi, RefFrameMapPair ref_frame_map_pairs[REF_FRAMES],
595 int gf_index) {
596 GF_GROUP *const gf_group = &cpi->ppi->gf_group;
597
598 // Search for the open slot to store the current frame.
599 int free_fb_index = get_free_ref_map_index(ref_frame_map_pairs);
600
601 // Use a free slot if available.
602 if (free_fb_index != INVALID_IDX) {
603 return free_fb_index;
604 } else {
605 int enable_refresh_skip = !is_one_pass_rt_params(cpi);
606 int refresh_idx =
607 get_refresh_idx(ref_frame_map_pairs, 0, gf_group, gf_index,
608 enable_refresh_skip, gf_group->display_idx[gf_index]);
609 return refresh_idx;
610 }
611 }
612
613 int av1_get_refresh_frame_flags(
614 const AV1_COMP *const cpi, const EncodeFrameParams *const frame_params,
615 FRAME_UPDATE_TYPE frame_update_type, int gf_index, int cur_disp_order,
616 RefFrameMapPair ref_frame_map_pairs[REF_FRAMES]) {
617 const AV1_COMMON *const cm = &cpi->common;
618 const ExtRefreshFrameFlagsInfo *const ext_refresh_frame_flags =
619 &cpi->ext_flags.refresh_frame;
620
621 GF_GROUP *gf_group = &cpi->ppi->gf_group;
622 if (gf_group->refbuf_state[gf_index] == REFBUF_RESET)
623 return SELECT_ALL_BUF_SLOTS;
624
625 // TODO(jingning): Deprecate the following operations.
626 // Switch frames and shown key-frames overwrite all reference slots
627 if (frame_params->frame_type == S_FRAME) return SELECT_ALL_BUF_SLOTS;
628
629 // show_existing_frames don't actually send refresh_frame_flags so set the
630 // flags to 0 to keep things consistent.
631 if (frame_params->show_existing_frame) return 0;
632
633 const RTC_REF *const rtc_ref = &cpi->ppi->rtc_ref;
634 if (is_frame_droppable(rtc_ref, ext_refresh_frame_flags)) return 0;
635
636 #if !CONFIG_REALTIME_ONLY
637 if (cpi->use_ducky_encode &&
638 cpi->ducky_encode_info.frame_info.gop_mode == DUCKY_ENCODE_GOP_MODE_RCL) {
639 int new_fb_map_idx = cpi->ppi->gf_group.update_ref_idx[gf_index];
640 if (new_fb_map_idx == INVALID_IDX) return 0;
641 return 1 << new_fb_map_idx;
642 }
643 #endif // !CONFIG_REALTIME_ONLY
644
645 int refresh_mask = 0;
646 if (ext_refresh_frame_flags->update_pending) {
647 if (rtc_ref->set_ref_frame_config ||
648 use_rtc_reference_structure_one_layer(cpi)) {
649 for (unsigned int i = 0; i < INTER_REFS_PER_FRAME; i++) {
650 int ref_frame_map_idx = rtc_ref->ref_idx[i];
651 refresh_mask |= rtc_ref->refresh[ref_frame_map_idx]
652 << ref_frame_map_idx;
653 }
654 return refresh_mask;
655 }
656 // Unfortunately the encoder interface reflects the old refresh_*_frame
657 // flags so we have to replicate the old refresh_frame_flags logic here in
658 // order to preserve the behaviour of the flag overrides.
659 int ref_frame_map_idx = get_ref_frame_map_idx(cm, LAST_FRAME);
660 if (ref_frame_map_idx != INVALID_IDX)
661 refresh_mask |= ext_refresh_frame_flags->last_frame << ref_frame_map_idx;
662
663 ref_frame_map_idx = get_ref_frame_map_idx(cm, EXTREF_FRAME);
664 if (ref_frame_map_idx != INVALID_IDX)
665 refresh_mask |= ext_refresh_frame_flags->bwd_ref_frame
666 << ref_frame_map_idx;
667
668 ref_frame_map_idx = get_ref_frame_map_idx(cm, ALTREF2_FRAME);
669 if (ref_frame_map_idx != INVALID_IDX)
670 refresh_mask |= ext_refresh_frame_flags->alt2_ref_frame
671 << ref_frame_map_idx;
672
673 if (frame_update_type == OVERLAY_UPDATE) {
674 ref_frame_map_idx = get_ref_frame_map_idx(cm, ALTREF_FRAME);
675 if (ref_frame_map_idx != INVALID_IDX)
676 refresh_mask |= ext_refresh_frame_flags->golden_frame
677 << ref_frame_map_idx;
678 } else {
679 ref_frame_map_idx = get_ref_frame_map_idx(cm, GOLDEN_FRAME);
680 if (ref_frame_map_idx != INVALID_IDX)
681 refresh_mask |= ext_refresh_frame_flags->golden_frame
682 << ref_frame_map_idx;
683
684 ref_frame_map_idx = get_ref_frame_map_idx(cm, ALTREF_FRAME);
685 if (ref_frame_map_idx != INVALID_IDX)
686 refresh_mask |= ext_refresh_frame_flags->alt_ref_frame
687 << ref_frame_map_idx;
688 }
689 return refresh_mask;
690 }
691
692 // Search for the open slot to store the current frame.
693 int free_fb_index = get_free_ref_map_index(ref_frame_map_pairs);
694
695 // No refresh necessary for these frame types.
696 if (frame_update_type == OVERLAY_UPDATE ||
697 frame_update_type == INTNL_OVERLAY_UPDATE)
698 return refresh_mask;
699
700 // If there is an open slot, refresh that one instead of replacing a
701 // reference.
702 if (free_fb_index != INVALID_IDX) {
703 refresh_mask = 1 << free_fb_index;
704 return refresh_mask;
705 }
706 const int enable_refresh_skip = !is_one_pass_rt_params(cpi);
707 const int update_arf = frame_update_type == ARF_UPDATE;
708 const int refresh_idx =
709 get_refresh_idx(ref_frame_map_pairs, update_arf, &cpi->ppi->gf_group,
710 gf_index, enable_refresh_skip, cur_disp_order);
711 return 1 << refresh_idx;
712 }
713
714 #if !CONFIG_REALTIME_ONLY
715 void setup_mi(AV1_COMP *const cpi, YV12_BUFFER_CONFIG *src) {
716 AV1_COMMON *const cm = &cpi->common;
717 const int num_planes = av1_num_planes(cm);
718 MACROBLOCK *const x = &cpi->td.mb;
719 MACROBLOCKD *const xd = &x->e_mbd;
720
721 av1_setup_src_planes(x, src, 0, 0, num_planes, cm->seq_params->sb_size);
722
723 av1_setup_block_planes(xd, cm->seq_params->subsampling_x,
724 cm->seq_params->subsampling_y, num_planes);
725
726 set_mi_offsets(&cm->mi_params, xd, 0, 0);
727 }
728
729 // Apply temporal filtering to source frames and encode the filtered frame.
730 // If the current frame does not require filtering, this function is identical
731 // to av1_encode() except that tpl is not performed.
732 static int denoise_and_encode(AV1_COMP *const cpi, uint8_t *const dest,
733 EncodeFrameInput *const frame_input,
734 const EncodeFrameParams *const frame_params,
735 EncodeFrameResults *const frame_results) {
736 #if CONFIG_COLLECT_COMPONENT_TIMING
737 if (cpi->oxcf.pass == 2) start_timing(cpi, denoise_and_encode_time);
738 #endif
739 const AV1EncoderConfig *const oxcf = &cpi->oxcf;
740 AV1_COMMON *const cm = &cpi->common;
741
742 GF_GROUP *const gf_group = &cpi->ppi->gf_group;
743 FRAME_UPDATE_TYPE update_type =
744 get_frame_update_type(&cpi->ppi->gf_group, cpi->gf_frame_index);
745 const int is_second_arf =
746 av1_gop_is_second_arf(gf_group, cpi->gf_frame_index);
747
748 // Decide whether to apply temporal filtering to the source frame.
749 int apply_filtering =
750 av1_is_temporal_filter_on(oxcf) && !is_stat_generation_stage(cpi);
751 if (update_type != KF_UPDATE && update_type != ARF_UPDATE && !is_second_arf) {
752 apply_filtering = 0;
753 }
754 if (apply_filtering) {
755 if (frame_params->frame_type == KEY_FRAME) {
756 // TODO(angiebird): Move the noise level check to av1_tf_info_filtering.
757 // Decide whether it is allowed to perform key frame filtering
758 int allow_kf_filtering = oxcf->kf_cfg.enable_keyframe_filtering &&
759 !frame_params->show_existing_frame &&
760 !is_lossless_requested(&oxcf->rc_cfg);
761 if (allow_kf_filtering) {
762 double y_noise_level = 0.0;
763 av1_estimate_noise_level(
764 frame_input->source, &y_noise_level, AOM_PLANE_Y, AOM_PLANE_Y,
765 cm->seq_params->bit_depth, NOISE_ESTIMATION_EDGE_THRESHOLD);
766 apply_filtering = y_noise_level > 0;
767 } else {
768 apply_filtering = 0;
769 }
770 // If we are doing kf filtering, set up a few things.
771 if (apply_filtering) {
772 av1_setup_past_independence(cm);
773 }
774 } else if (is_second_arf) {
775 apply_filtering = cpi->sf.hl_sf.second_alt_ref_filtering;
776 }
777 }
778
779 #if CONFIG_COLLECT_COMPONENT_TIMING
780 if (cpi->oxcf.pass == 2) start_timing(cpi, apply_filtering_time);
781 #endif
782 // Save the pointer to the original source image.
783 YV12_BUFFER_CONFIG *source_buffer = frame_input->source;
784 // apply filtering to frame
785 if (apply_filtering) {
786 int show_existing_alt_ref = 0;
787 FRAME_DIFF frame_diff;
788 int top_index = 0;
789 int bottom_index = 0;
790 const int q_index = av1_rc_pick_q_and_bounds(
791 cpi, cpi->oxcf.frm_dim_cfg.width, cpi->oxcf.frm_dim_cfg.height,
792 cpi->gf_frame_index, &bottom_index, &top_index);
793
794 // TODO(bohanli): figure out why we need frame_type in cm here.
795 cm->current_frame.frame_type = frame_params->frame_type;
796 if (update_type == KF_UPDATE || update_type == ARF_UPDATE) {
797 YV12_BUFFER_CONFIG *tf_buf = av1_tf_info_get_filtered_buf(
798 &cpi->ppi->tf_info, cpi->gf_frame_index, &frame_diff);
799 if (tf_buf != NULL) {
800 frame_input->source = tf_buf;
801 show_existing_alt_ref = av1_check_show_filtered_frame(
802 tf_buf, &frame_diff, q_index, cm->seq_params->bit_depth);
803 if (show_existing_alt_ref) {
804 cpi->common.showable_frame |= 1;
805 } else {
806 cpi->common.showable_frame = 0;
807 }
808 }
809 if (gf_group->frame_type[cpi->gf_frame_index] != KEY_FRAME) {
810 cpi->ppi->show_existing_alt_ref = show_existing_alt_ref;
811 }
812 }
813
814 if (is_second_arf) {
815 // Allocate the memory for tf_buf_second_arf buffer, only when it is
816 // required.
817 int ret = aom_realloc_frame_buffer(
818 &cpi->ppi->tf_info.tf_buf_second_arf, oxcf->frm_dim_cfg.width,
819 oxcf->frm_dim_cfg.height, cm->seq_params->subsampling_x,
820 cm->seq_params->subsampling_y, cm->seq_params->use_highbitdepth,
821 cpi->oxcf.border_in_pixels, cm->features.byte_alignment, NULL, NULL,
822 NULL, cpi->alloc_pyramid, 0);
823 if (ret)
824 aom_internal_error(cm->error, AOM_CODEC_MEM_ERROR,
825 "Failed to allocate tf_buf_second_arf");
826
827 YV12_BUFFER_CONFIG *tf_buf_second_arf =
828 &cpi->ppi->tf_info.tf_buf_second_arf;
829 // We didn't apply temporal filtering for second arf ahead in
830 // av1_tf_info_filtering().
831 const int arf_src_index = gf_group->arf_src_offset[cpi->gf_frame_index];
832 // Right now, we are still using tf_buf_second_arf due to
833 // implementation complexity.
834 // TODO(angiebird): Reuse tf_info->tf_buf here.
835 av1_temporal_filter(cpi, arf_src_index, cpi->gf_frame_index, &frame_diff,
836 tf_buf_second_arf);
837 show_existing_alt_ref = av1_check_show_filtered_frame(
838 tf_buf_second_arf, &frame_diff, q_index, cm->seq_params->bit_depth);
839 if (show_existing_alt_ref) {
840 aom_extend_frame_borders(tf_buf_second_arf, av1_num_planes(cm));
841 frame_input->source = tf_buf_second_arf;
842 }
843 // Currently INTNL_ARF_UPDATE only do show_existing.
844 cpi->common.showable_frame |= 1;
845 }
846
847 // Copy source metadata to the temporal filtered frame
848 if (source_buffer->metadata &&
849 aom_copy_metadata_to_frame_buffer(frame_input->source,
850 source_buffer->metadata)) {
851 aom_internal_error(
852 cm->error, AOM_CODEC_MEM_ERROR,
853 "Failed to copy source metadata to the temporal filtered frame");
854 }
855 }
856 #if CONFIG_COLLECT_COMPONENT_TIMING
857 if (cpi->oxcf.pass == 2) end_timing(cpi, apply_filtering_time);
858 #endif
859
860 int set_mv_params = frame_params->frame_type == KEY_FRAME ||
861 update_type == ARF_UPDATE || update_type == GF_UPDATE;
862 cm->show_frame = frame_params->show_frame;
863 cm->current_frame.frame_type = frame_params->frame_type;
864 // TODO(bohanli): Why is this? what part of it is necessary?
865 av1_set_frame_size(cpi, cm->width, cm->height);
866 if (set_mv_params) av1_set_mv_search_params(cpi);
867
868 #if CONFIG_RD_COMMAND
869 if (frame_params->frame_type == KEY_FRAME) {
870 char filepath[] = "rd_command.txt";
871 av1_read_rd_command(filepath, &cpi->rd_command);
872 }
873 #endif // CONFIG_RD_COMMAND
874 if (cpi->gf_frame_index == 0 && !is_stat_generation_stage(cpi)) {
875 // perform tpl after filtering
876 int allow_tpl =
877 oxcf->gf_cfg.lag_in_frames > 1 && oxcf->algo_cfg.enable_tpl_model;
878 if (gf_group->size > MAX_LENGTH_TPL_FRAME_STATS) {
879 allow_tpl = 0;
880 }
881 if (frame_params->frame_type != KEY_FRAME) {
882 // In rare case, it's possible to have non ARF/GF update_type here.
883 // We should set allow_tpl to zero in the situation
884 allow_tpl =
885 allow_tpl && (update_type == ARF_UPDATE || update_type == GF_UPDATE ||
886 (cpi->use_ducky_encode &&
887 cpi->ducky_encode_info.frame_info.gop_mode ==
888 DUCKY_ENCODE_GOP_MODE_RCL));
889 }
890
891 if (allow_tpl) {
892 if (!cpi->skip_tpl_setup_stats) {
893 av1_tpl_preload_rc_estimate(cpi, frame_params);
894 av1_tpl_setup_stats(cpi, 0, frame_params);
895 #if CONFIG_BITRATE_ACCURACY && !CONFIG_THREE_PASS
896 assert(cpi->gf_frame_index == 0);
897 av1_vbr_rc_update_q_index_list(&cpi->vbr_rc_info, &cpi->ppi->tpl_data,
898 gf_group, cm->seq_params->bit_depth);
899 #endif
900 }
901 } else {
902 av1_init_tpl_stats(&cpi->ppi->tpl_data);
903 }
904 #if CONFIG_BITRATE_ACCURACY && CONFIG_THREE_PASS
905 if (cpi->oxcf.pass == AOM_RC_SECOND_PASS &&
906 cpi->second_pass_log_stream != NULL) {
907 TPL_INFO *tpl_info;
908 AOM_CHECK_MEM_ERROR(cm->error, tpl_info, aom_malloc(sizeof(*tpl_info)));
909 av1_pack_tpl_info(tpl_info, gf_group, &cpi->ppi->tpl_data);
910 av1_write_tpl_info(tpl_info, cpi->second_pass_log_stream,
911 cpi->common.error);
912 aom_free(tpl_info);
913 }
914 #endif // CONFIG_BITRATE_ACCURACY && CONFIG_THREE_PASS
915 }
916
917 if (av1_encode(cpi, dest, frame_input, frame_params, frame_results) !=
918 AOM_CODEC_OK) {
919 return AOM_CODEC_ERROR;
920 }
921
922 // Set frame_input source to true source for psnr calculation.
923 if (apply_filtering && is_psnr_calc_enabled(cpi)) {
924 cpi->source = av1_realloc_and_scale_if_required(
925 cm, source_buffer, &cpi->scaled_source, cm->features.interp_filter, 0,
926 false, true, cpi->oxcf.border_in_pixels, cpi->alloc_pyramid);
927 cpi->unscaled_source = source_buffer;
928 }
929 #if CONFIG_COLLECT_COMPONENT_TIMING
930 if (cpi->oxcf.pass == 2) end_timing(cpi, denoise_and_encode_time);
931 #endif
932 return AOM_CODEC_OK;
933 }
934 #endif // !CONFIG_REALTIME_ONLY
935
936 /*!\cond */
937 // Struct to keep track of relevant reference frame data.
938 typedef struct {
939 int map_idx;
940 int disp_order;
941 int pyr_level;
942 int used;
943 } RefBufMapData;
944 /*!\endcond */
945
946 // Comparison function to sort reference frames in ascending display order.
947 static int compare_map_idx_pair_asc(const void *a, const void *b) {
948 if (((RefBufMapData *)a)->disp_order == ((RefBufMapData *)b)->disp_order) {
949 return 0;
950 } else if (((const RefBufMapData *)a)->disp_order >
951 ((const RefBufMapData *)b)->disp_order) {
952 return 1;
953 } else {
954 return -1;
955 }
956 }
957
958 // Checks to see if a particular reference frame is already in the reference
959 // frame map.
960 static int is_in_ref_map(RefBufMapData *map, int disp_order, int n_frames) {
961 for (int i = 0; i < n_frames; i++) {
962 if (disp_order == map[i].disp_order) return 1;
963 }
964 return 0;
965 }
966
967 // Add a reference buffer index to a named reference slot.
968 static void add_ref_to_slot(RefBufMapData *ref, int *const remapped_ref_idx,
969 int frame) {
970 remapped_ref_idx[frame - LAST_FRAME] = ref->map_idx;
971 ref->used = 1;
972 }
973
974 // Threshold dictating when we are allowed to start considering
975 // leaving lowest level frames unmapped.
976 #define LOW_LEVEL_FRAMES_TR 5
977
978 // Find which reference buffer should be left out of the named mapping.
979 // This is because there are 8 reference buffers and only 7 named slots.
980 static void set_unmapped_ref(RefBufMapData *buffer_map, int n_bufs,
981 int n_min_level_refs, int min_level,
982 int cur_frame_disp) {
983 int max_dist = 0;
984 int unmapped_idx = -1;
985 if (n_bufs <= ALTREF_FRAME) return;
986 for (int i = 0; i < n_bufs; i++) {
987 if (buffer_map[i].used) continue;
988 if (buffer_map[i].pyr_level != min_level ||
989 n_min_level_refs >= LOW_LEVEL_FRAMES_TR) {
990 int dist = abs(cur_frame_disp - buffer_map[i].disp_order);
991 if (dist > max_dist) {
992 max_dist = dist;
993 unmapped_idx = i;
994 }
995 }
996 }
997 assert(unmapped_idx >= 0 && "Unmapped reference not found");
998 buffer_map[unmapped_idx].used = 1;
999 }
1000
1001 void av1_get_ref_frames(RefFrameMapPair ref_frame_map_pairs[REF_FRAMES],
1002 int cur_frame_disp, const AV1_COMP *cpi, int gf_index,
1003 int is_parallel_encode,
1004 int remapped_ref_idx[REF_FRAMES]) {
1005 int buf_map_idx = 0;
1006
1007 // Initialize reference frame mappings.
1008 for (int i = 0; i < REF_FRAMES; ++i) remapped_ref_idx[i] = INVALID_IDX;
1009
1010 #if !CONFIG_REALTIME_ONLY
1011 if (cpi->use_ducky_encode &&
1012 cpi->ducky_encode_info.frame_info.gop_mode == DUCKY_ENCODE_GOP_MODE_RCL) {
1013 for (int rf = LAST_FRAME; rf < REF_FRAMES; ++rf) {
1014 if (cpi->ppi->gf_group.ref_frame_list[gf_index][rf] != INVALID_IDX) {
1015 remapped_ref_idx[rf - LAST_FRAME] =
1016 cpi->ppi->gf_group.ref_frame_list[gf_index][rf];
1017 }
1018 }
1019
1020 int valid_rf_idx = 0;
1021 static const int ref_frame_type_order[REF_FRAMES - LAST_FRAME] = {
1022 GOLDEN_FRAME, ALTREF_FRAME, LAST_FRAME, BWDREF_FRAME,
1023 ALTREF2_FRAME, LAST2_FRAME, LAST3_FRAME
1024 };
1025 for (int i = 0; i < REF_FRAMES - LAST_FRAME; i++) {
1026 int rf = ref_frame_type_order[i];
1027 if (remapped_ref_idx[rf - LAST_FRAME] != INVALID_IDX) {
1028 valid_rf_idx = remapped_ref_idx[rf - LAST_FRAME];
1029 break;
1030 }
1031 }
1032
1033 for (int i = 0; i < REF_FRAMES; ++i) {
1034 if (remapped_ref_idx[i] == INVALID_IDX) {
1035 remapped_ref_idx[i] = valid_rf_idx;
1036 }
1037 }
1038
1039 return;
1040 }
1041 #endif // !CONFIG_REALTIME_ONLY
1042
1043 RefBufMapData buffer_map[REF_FRAMES];
1044 int n_bufs = 0;
1045 memset(buffer_map, 0, REF_FRAMES * sizeof(buffer_map[0]));
1046 int min_level = MAX_ARF_LAYERS;
1047 int max_level = 0;
1048 GF_GROUP *gf_group = &cpi->ppi->gf_group;
1049 int skip_ref_unmapping = 0;
1050 int is_one_pass_rt = is_one_pass_rt_params(cpi);
1051
1052 // Go through current reference buffers and store display order, pyr level,
1053 // and map index.
1054 for (int map_idx = 0; map_idx < REF_FRAMES; map_idx++) {
1055 // Get reference frame buffer.
1056 RefFrameMapPair ref_pair = ref_frame_map_pairs[map_idx];
1057 if (ref_pair.disp_order == -1) continue;
1058 const int frame_order = ref_pair.disp_order;
1059 // Avoid duplicates.
1060 if (is_in_ref_map(buffer_map, frame_order, n_bufs)) continue;
1061 const int reference_frame_level = ref_pair.pyr_level;
1062
1063 // Keep track of the lowest and highest levels that currently exist.
1064 if (reference_frame_level < min_level) min_level = reference_frame_level;
1065 if (reference_frame_level > max_level) max_level = reference_frame_level;
1066
1067 buffer_map[n_bufs].map_idx = map_idx;
1068 buffer_map[n_bufs].disp_order = frame_order;
1069 buffer_map[n_bufs].pyr_level = reference_frame_level;
1070 buffer_map[n_bufs].used = 0;
1071 n_bufs++;
1072 }
1073
1074 // Sort frames in ascending display order.
1075 qsort(buffer_map, n_bufs, sizeof(buffer_map[0]), compare_map_idx_pair_asc);
1076
1077 int n_min_level_refs = 0;
1078 int closest_past_ref = -1;
1079 int golden_idx = -1;
1080 int altref_idx = -1;
1081
1082 // Find the GOLDEN_FRAME and BWDREF_FRAME.
1083 // Also collect various stats about the reference frames for the remaining
1084 // mappings.
1085 for (int i = n_bufs - 1; i >= 0; i--) {
1086 if (buffer_map[i].pyr_level == min_level) {
1087 // Keep track of the number of lowest level frames.
1088 n_min_level_refs++;
1089 if (buffer_map[i].disp_order < cur_frame_disp && golden_idx == -1 &&
1090 remapped_ref_idx[GOLDEN_FRAME - LAST_FRAME] == INVALID_IDX) {
1091 // Save index for GOLDEN.
1092 golden_idx = i;
1093 } else if (buffer_map[i].disp_order > cur_frame_disp &&
1094 altref_idx == -1 &&
1095 remapped_ref_idx[ALTREF_FRAME - LAST_FRAME] == INVALID_IDX) {
1096 // Save index for ALTREF.
1097 altref_idx = i;
1098 }
1099 } else if (buffer_map[i].disp_order == cur_frame_disp) {
1100 // Map the BWDREF_FRAME if this is the show_existing_frame.
1101 add_ref_to_slot(&buffer_map[i], remapped_ref_idx, BWDREF_FRAME);
1102 }
1103
1104 // During parallel encodes of lower layer frames, exclude the first frame
1105 // (frame_parallel_level 1) from being used for the reference assignment of
1106 // the second frame (frame_parallel_level 2).
1107 if (!is_one_pass_rt && gf_group->frame_parallel_level[gf_index] == 2 &&
1108 gf_group->frame_parallel_level[gf_index - 1] == 1 &&
1109 gf_group->update_type[gf_index - 1] == INTNL_ARF_UPDATE) {
1110 assert(gf_group->update_type[gf_index] == INTNL_ARF_UPDATE);
1111 #if CONFIG_FPMT_TEST
1112 is_parallel_encode = (cpi->ppi->fpmt_unit_test_cfg == PARALLEL_ENCODE)
1113 ? is_parallel_encode
1114 : 0;
1115 #endif // CONFIG_FPMT_TEST
1116 // If parallel cpis are active, use ref_idx_to_skip, else, use display
1117 // index.
1118 assert(IMPLIES(is_parallel_encode, cpi->ref_idx_to_skip != INVALID_IDX));
1119 assert(IMPLIES(!is_parallel_encode,
1120 gf_group->skip_frame_as_ref[gf_index] != INVALID_IDX));
1121 buffer_map[i].used = is_parallel_encode
1122 ? (buffer_map[i].map_idx == cpi->ref_idx_to_skip)
1123 : (buffer_map[i].disp_order ==
1124 gf_group->skip_frame_as_ref[gf_index]);
1125 // In case a ref frame is excluded from being used during assignment,
1126 // skip the call to set_unmapped_ref(). Applicable in steady state.
1127 if (buffer_map[i].used) skip_ref_unmapping = 1;
1128 }
1129
1130 // Keep track of where the frames change from being past frames to future
1131 // frames.
1132 if (buffer_map[i].disp_order < cur_frame_disp && closest_past_ref < 0)
1133 closest_past_ref = i;
1134 }
1135
1136 // Do not map GOLDEN and ALTREF based on their pyramid level if all reference
1137 // frames have the same level.
1138 if (n_min_level_refs <= n_bufs) {
1139 // Map the GOLDEN_FRAME.
1140 if (golden_idx > -1)
1141 add_ref_to_slot(&buffer_map[golden_idx], remapped_ref_idx, GOLDEN_FRAME);
1142 // Map the ALTREF_FRAME.
1143 if (altref_idx > -1)
1144 add_ref_to_slot(&buffer_map[altref_idx], remapped_ref_idx, ALTREF_FRAME);
1145 }
1146
1147 // Find the buffer to be excluded from the mapping.
1148 if (!skip_ref_unmapping)
1149 set_unmapped_ref(buffer_map, n_bufs, n_min_level_refs, min_level,
1150 cur_frame_disp);
1151
1152 // Place past frames in LAST_FRAME, LAST2_FRAME, and LAST3_FRAME.
1153 for (int frame = LAST_FRAME; frame < GOLDEN_FRAME; frame++) {
1154 // Continue if the current ref slot is already full.
1155 if (remapped_ref_idx[frame - LAST_FRAME] != INVALID_IDX) continue;
1156 // Find the next unmapped reference buffer
1157 // in decreasing ouptut order relative to current picture.
1158 int next_buf_max = 0;
1159 int next_disp_order = INT_MIN;
1160 for (buf_map_idx = n_bufs - 1; buf_map_idx >= 0; buf_map_idx--) {
1161 if (!buffer_map[buf_map_idx].used &&
1162 buffer_map[buf_map_idx].disp_order < cur_frame_disp &&
1163 buffer_map[buf_map_idx].disp_order > next_disp_order) {
1164 next_disp_order = buffer_map[buf_map_idx].disp_order;
1165 next_buf_max = buf_map_idx;
1166 }
1167 }
1168 buf_map_idx = next_buf_max;
1169 if (buf_map_idx < 0) break;
1170 if (buffer_map[buf_map_idx].used) break;
1171 add_ref_to_slot(&buffer_map[buf_map_idx], remapped_ref_idx, frame);
1172 }
1173
1174 // Place future frames (if there are any) in BWDREF_FRAME and ALTREF2_FRAME.
1175 for (int frame = BWDREF_FRAME; frame < REF_FRAMES; frame++) {
1176 // Continue if the current ref slot is already full.
1177 if (remapped_ref_idx[frame - LAST_FRAME] != INVALID_IDX) continue;
1178 // Find the next unmapped reference buffer
1179 // in increasing ouptut order relative to current picture.
1180 int next_buf_max = 0;
1181 int next_disp_order = INT_MAX;
1182 for (buf_map_idx = n_bufs - 1; buf_map_idx >= 0; buf_map_idx--) {
1183 if (!buffer_map[buf_map_idx].used &&
1184 buffer_map[buf_map_idx].disp_order > cur_frame_disp &&
1185 buffer_map[buf_map_idx].disp_order < next_disp_order) {
1186 next_disp_order = buffer_map[buf_map_idx].disp_order;
1187 next_buf_max = buf_map_idx;
1188 }
1189 }
1190 buf_map_idx = next_buf_max;
1191 if (buf_map_idx < 0) break;
1192 if (buffer_map[buf_map_idx].used) break;
1193 add_ref_to_slot(&buffer_map[buf_map_idx], remapped_ref_idx, frame);
1194 }
1195
1196 // Place remaining past frames.
1197 buf_map_idx = closest_past_ref;
1198 for (int frame = LAST_FRAME; frame < REF_FRAMES; frame++) {
1199 // Continue if the current ref slot is already full.
1200 if (remapped_ref_idx[frame - LAST_FRAME] != INVALID_IDX) continue;
1201 // Find the next unmapped reference buffer.
1202 for (; buf_map_idx >= 0; buf_map_idx--) {
1203 if (!buffer_map[buf_map_idx].used) break;
1204 }
1205 if (buf_map_idx < 0) break;
1206 if (buffer_map[buf_map_idx].used) break;
1207 add_ref_to_slot(&buffer_map[buf_map_idx], remapped_ref_idx, frame);
1208 }
1209
1210 // Place remaining future frames.
1211 buf_map_idx = n_bufs - 1;
1212 for (int frame = ALTREF_FRAME; frame >= LAST_FRAME; frame--) {
1213 // Continue if the current ref slot is already full.
1214 if (remapped_ref_idx[frame - LAST_FRAME] != INVALID_IDX) continue;
1215 // Find the next unmapped reference buffer.
1216 for (; buf_map_idx > closest_past_ref; buf_map_idx--) {
1217 if (!buffer_map[buf_map_idx].used) break;
1218 }
1219 if (buf_map_idx < 0) break;
1220 if (buffer_map[buf_map_idx].used) break;
1221 add_ref_to_slot(&buffer_map[buf_map_idx], remapped_ref_idx, frame);
1222 }
1223
1224 // Fill any slots that are empty (should only happen for the first 7 frames).
1225 for (int i = 0; i < REF_FRAMES; ++i)
1226 if (remapped_ref_idx[i] == INVALID_IDX) remapped_ref_idx[i] = 0;
1227 }
1228
1229 int av1_encode_strategy(AV1_COMP *const cpi, size_t *const size,
1230 uint8_t *const dest, unsigned int *frame_flags,
1231 int64_t *const time_stamp, int64_t *const time_end,
1232 const aom_rational64_t *const timestamp_ratio,
1233 int *const pop_lookahead, int flush) {
1234 AV1EncoderConfig *const oxcf = &cpi->oxcf;
1235 AV1_COMMON *const cm = &cpi->common;
1236 GF_GROUP *gf_group = &cpi->ppi->gf_group;
1237 ExternalFlags *const ext_flags = &cpi->ext_flags;
1238 GFConfig *const gf_cfg = &oxcf->gf_cfg;
1239
1240 EncodeFrameInput frame_input;
1241 EncodeFrameParams frame_params;
1242 EncodeFrameResults frame_results;
1243 memset(&frame_input, 0, sizeof(frame_input));
1244 memset(&frame_params, 0, sizeof(frame_params));
1245 memset(&frame_results, 0, sizeof(frame_results));
1246
1247 #if CONFIG_BITRATE_ACCURACY && CONFIG_THREE_PASS
1248 VBR_RATECTRL_INFO *vbr_rc_info = &cpi->vbr_rc_info;
1249 if (oxcf->pass == AOM_RC_THIRD_PASS && vbr_rc_info->ready == 0) {
1250 THIRD_PASS_FRAME_INFO frame_info[MAX_THIRD_PASS_BUF];
1251 av1_open_second_pass_log(cpi, 1);
1252 FILE *second_pass_log_stream = cpi->second_pass_log_stream;
1253 fseek(second_pass_log_stream, 0, SEEK_END);
1254 size_t file_size = ftell(second_pass_log_stream);
1255 rewind(second_pass_log_stream);
1256 size_t read_size = 0;
1257 while (read_size < file_size) {
1258 THIRD_PASS_GOP_INFO gop_info;
1259 struct aom_internal_error_info *error = cpi->common.error;
1260 // Read in GOP information from the second pass file.
1261 av1_read_second_pass_gop_info(second_pass_log_stream, &gop_info, error);
1262 TPL_INFO *tpl_info;
1263 AOM_CHECK_MEM_ERROR(cm->error, tpl_info, aom_malloc(sizeof(*tpl_info)));
1264 av1_read_tpl_info(tpl_info, second_pass_log_stream, error);
1265 // Read in per-frame info from second-pass encoding
1266 av1_read_second_pass_per_frame_info(second_pass_log_stream, frame_info,
1267 gop_info.num_frames, error);
1268 av1_vbr_rc_append_tpl_info(vbr_rc_info, tpl_info);
1269 read_size = ftell(second_pass_log_stream);
1270 aom_free(tpl_info);
1271 }
1272 av1_close_second_pass_log(cpi);
1273 if (cpi->oxcf.rc_cfg.mode == AOM_Q) {
1274 vbr_rc_info->base_q_index = cpi->oxcf.rc_cfg.cq_level;
1275 av1_vbr_rc_compute_q_indices(
1276 vbr_rc_info->base_q_index, vbr_rc_info->total_frame_count,
1277 vbr_rc_info->qstep_ratio_list, cm->seq_params->bit_depth,
1278 vbr_rc_info->q_index_list);
1279 } else {
1280 vbr_rc_info->base_q_index = av1_vbr_rc_info_estimate_base_q(
1281 vbr_rc_info->total_bit_budget, cm->seq_params->bit_depth,
1282 vbr_rc_info->scale_factors, vbr_rc_info->total_frame_count,
1283 vbr_rc_info->update_type_list, vbr_rc_info->qstep_ratio_list,
1284 vbr_rc_info->txfm_stats_list, vbr_rc_info->q_index_list, NULL);
1285 }
1286 vbr_rc_info->ready = 1;
1287 #if CONFIG_RATECTRL_LOG
1288 rc_log_record_chunk_info(&cpi->rc_log, vbr_rc_info->base_q_index,
1289 vbr_rc_info->total_frame_count);
1290 #endif // CONFIG_RATECTRL_LOG
1291 }
1292 #endif // CONFIG_BITRATE_ACCURACY && CONFIG_THREE_PASS
1293
1294 // Check if we need to stuff more src frames
1295 if (flush == 0) {
1296 int srcbuf_size =
1297 av1_lookahead_depth(cpi->ppi->lookahead, cpi->compressor_stage);
1298 int pop_size =
1299 av1_lookahead_pop_sz(cpi->ppi->lookahead, cpi->compressor_stage);
1300
1301 // Continue buffering look ahead buffer.
1302 if (srcbuf_size < pop_size) return -1;
1303 }
1304
1305 if (!av1_lookahead_peek(cpi->ppi->lookahead, 0, cpi->compressor_stage)) {
1306 #if !CONFIG_REALTIME_ONLY
1307 if (flush && oxcf->pass == AOM_RC_FIRST_PASS &&
1308 !cpi->ppi->twopass.first_pass_done) {
1309 av1_end_first_pass(cpi); /* get last stats packet */
1310 cpi->ppi->twopass.first_pass_done = 1;
1311 }
1312 #endif
1313 return -1;
1314 }
1315
1316 // TODO(sarahparker) finish bit allocation for one pass pyramid
1317 if (has_no_stats_stage(cpi)) {
1318 gf_cfg->gf_max_pyr_height =
1319 AOMMIN(gf_cfg->gf_max_pyr_height, USE_ALTREF_FOR_ONE_PASS);
1320 gf_cfg->gf_min_pyr_height =
1321 AOMMIN(gf_cfg->gf_min_pyr_height, gf_cfg->gf_max_pyr_height);
1322 }
1323
1324 // Allocation of mi buffers.
1325 alloc_mb_mode_info_buffers(cpi);
1326
1327 cpi->skip_tpl_setup_stats = 0;
1328 #if !CONFIG_REALTIME_ONLY
1329 if (oxcf->pass != AOM_RC_FIRST_PASS) {
1330 TplParams *const tpl_data = &cpi->ppi->tpl_data;
1331 if (tpl_data->tpl_stats_pool[0] == NULL) {
1332 av1_setup_tpl_buffers(cpi->ppi, &cm->mi_params, oxcf->frm_dim_cfg.width,
1333 oxcf->frm_dim_cfg.height, 0,
1334 oxcf->gf_cfg.lag_in_frames);
1335 }
1336 }
1337 cpi->twopass_frame.this_frame = NULL;
1338 const int use_one_pass_rt_params = is_one_pass_rt_params(cpi);
1339 if (!use_one_pass_rt_params && !is_stat_generation_stage(cpi)) {
1340 #if CONFIG_COLLECT_COMPONENT_TIMING
1341 start_timing(cpi, av1_get_second_pass_params_time);
1342 #endif
1343
1344 // Initialise frame_level_rate_correction_factors with value previous
1345 // to the parallel frames.
1346 if (cpi->ppi->gf_group.frame_parallel_level[cpi->gf_frame_index] > 0) {
1347 for (int i = 0; i < RATE_FACTOR_LEVELS; i++) {
1348 cpi->rc.frame_level_rate_correction_factors[i] =
1349 #if CONFIG_FPMT_TEST
1350 (cpi->ppi->fpmt_unit_test_cfg == PARALLEL_SIMULATION_ENCODE)
1351 ? cpi->ppi->p_rc.temp_rate_correction_factors[i]
1352 :
1353 #endif // CONFIG_FPMT_TEST
1354 cpi->ppi->p_rc.rate_correction_factors[i];
1355 }
1356 }
1357
1358 // copy mv_stats from ppi to frame_level cpi.
1359 cpi->mv_stats = cpi->ppi->mv_stats;
1360 av1_get_second_pass_params(cpi, &frame_params, *frame_flags);
1361 #if CONFIG_COLLECT_COMPONENT_TIMING
1362 end_timing(cpi, av1_get_second_pass_params_time);
1363 #endif
1364 }
1365 #endif
1366
1367 if (!is_stat_generation_stage(cpi)) {
1368 // TODO(jingning): fwd key frame always uses show existing frame?
1369 if (gf_group->update_type[cpi->gf_frame_index] == OVERLAY_UPDATE &&
1370 gf_group->refbuf_state[cpi->gf_frame_index] == REFBUF_RESET) {
1371 frame_params.show_existing_frame = 1;
1372 } else {
1373 frame_params.show_existing_frame =
1374 (cpi->ppi->show_existing_alt_ref &&
1375 gf_group->update_type[cpi->gf_frame_index] == OVERLAY_UPDATE) ||
1376 gf_group->update_type[cpi->gf_frame_index] == INTNL_OVERLAY_UPDATE;
1377 }
1378 frame_params.show_existing_frame &= allow_show_existing(cpi, *frame_flags);
1379
1380 // Special handling to reset 'show_existing_frame' in case of dropped
1381 // frames.
1382 if (oxcf->rc_cfg.drop_frames_water_mark &&
1383 (gf_group->update_type[cpi->gf_frame_index] == OVERLAY_UPDATE ||
1384 gf_group->update_type[cpi->gf_frame_index] == INTNL_OVERLAY_UPDATE)) {
1385 // During the encode of an OVERLAY_UPDATE/INTNL_OVERLAY_UPDATE frame, loop
1386 // over the gf group to check if the corresponding
1387 // ARF_UPDATE/INTNL_ARF_UPDATE frame was dropped.
1388 int cur_disp_idx = gf_group->display_idx[cpi->gf_frame_index];
1389 for (int idx = 0; idx < cpi->gf_frame_index; idx++) {
1390 if (cur_disp_idx == gf_group->display_idx[idx]) {
1391 assert(IMPLIES(
1392 gf_group->update_type[cpi->gf_frame_index] == OVERLAY_UPDATE,
1393 gf_group->update_type[idx] == ARF_UPDATE));
1394 assert(IMPLIES(gf_group->update_type[cpi->gf_frame_index] ==
1395 INTNL_OVERLAY_UPDATE,
1396 gf_group->update_type[idx] == INTNL_ARF_UPDATE));
1397 // Reset show_existing_frame and set cpi->is_dropped_frame to true if
1398 // the frame was dropped during its first encode.
1399 if (gf_group->is_frame_dropped[idx]) {
1400 frame_params.show_existing_frame = 0;
1401 assert(!cpi->is_dropped_frame);
1402 cpi->is_dropped_frame = true;
1403 }
1404 break;
1405 }
1406 }
1407 }
1408
1409 // Reset show_existing_alt_ref decision to 0 after it is used.
1410 if (gf_group->update_type[cpi->gf_frame_index] == OVERLAY_UPDATE) {
1411 cpi->ppi->show_existing_alt_ref = 0;
1412 }
1413 } else {
1414 frame_params.show_existing_frame = 0;
1415 }
1416
1417 struct lookahead_entry *source = NULL;
1418 struct lookahead_entry *last_source = NULL;
1419 if (frame_params.show_existing_frame) {
1420 source = av1_lookahead_peek(cpi->ppi->lookahead, 0, cpi->compressor_stage);
1421 *pop_lookahead = 1;
1422 frame_params.show_frame = 1;
1423 } else {
1424 source = choose_frame_source(cpi, &flush, pop_lookahead, &last_source,
1425 &frame_params.show_frame);
1426 }
1427
1428 if (source == NULL) { // If no source was found, we can't encode a frame.
1429 #if !CONFIG_REALTIME_ONLY
1430 if (flush && oxcf->pass == AOM_RC_FIRST_PASS &&
1431 !cpi->ppi->twopass.first_pass_done) {
1432 av1_end_first_pass(cpi); /* get last stats packet */
1433 cpi->ppi->twopass.first_pass_done = 1;
1434 }
1435 #endif
1436 return -1;
1437 }
1438
1439 // reset src_offset to allow actual encode call for this frame to get its
1440 // source.
1441 gf_group->src_offset[cpi->gf_frame_index] = 0;
1442
1443 // Source may be changed if temporal filtered later.
1444 frame_input.source = &source->img;
1445 if ((cpi->ppi->use_svc || cpi->rc.prev_frame_is_dropped) &&
1446 last_source != NULL)
1447 av1_svc_set_last_source(cpi, &frame_input, &last_source->img);
1448 else
1449 frame_input.last_source = last_source != NULL ? &last_source->img : NULL;
1450 frame_input.ts_duration = source->ts_end - source->ts_start;
1451 // Save unfiltered source. It is used in av1_get_second_pass_params().
1452 cpi->unfiltered_source = frame_input.source;
1453
1454 *time_stamp = source->ts_start;
1455 *time_end = source->ts_end;
1456 if (source->ts_start < cpi->time_stamps.first_ts_start) {
1457 cpi->time_stamps.first_ts_start = source->ts_start;
1458 cpi->time_stamps.prev_ts_end = source->ts_start;
1459 }
1460
1461 av1_apply_encoding_flags(cpi, source->flags);
1462 *frame_flags = (source->flags & AOM_EFLAG_FORCE_KF) ? FRAMEFLAGS_KEY : 0;
1463
1464 #if CONFIG_FPMT_TEST
1465 if (cpi->ppi->fpmt_unit_test_cfg == PARALLEL_SIMULATION_ENCODE) {
1466 if (cpi->ppi->gf_group.frame_parallel_level[cpi->gf_frame_index] > 0) {
1467 cpi->framerate = cpi->temp_framerate;
1468 }
1469 }
1470 #endif // CONFIG_FPMT_TEST
1471
1472 // Shown frames and arf-overlay frames need frame-rate considering
1473 if (frame_params.show_frame)
1474 adjust_frame_rate(cpi, source->ts_start, source->ts_end);
1475
1476 if (!frame_params.show_existing_frame) {
1477 if (cpi->film_grain_table) {
1478 cm->cur_frame->film_grain_params_present = aom_film_grain_table_lookup(
1479 cpi->film_grain_table, *time_stamp, *time_end, 0 /* =erase */,
1480 &cm->film_grain_params);
1481 } else {
1482 cm->cur_frame->film_grain_params_present =
1483 cm->seq_params->film_grain_params_present;
1484 }
1485 // only one operating point supported now
1486 const int64_t pts64 = ticks_to_timebase_units(timestamp_ratio, *time_stamp);
1487 if (pts64 < 0 || pts64 > UINT32_MAX) return AOM_CODEC_ERROR;
1488
1489 cm->frame_presentation_time = (uint32_t)pts64;
1490 }
1491
1492 #if CONFIG_COLLECT_COMPONENT_TIMING
1493 start_timing(cpi, av1_get_one_pass_rt_params_time);
1494 #endif
1495 #if CONFIG_REALTIME_ONLY
1496 av1_get_one_pass_rt_params(cpi, &frame_params.frame_type, &frame_input,
1497 *frame_flags);
1498 if (use_rtc_reference_structure_one_layer(cpi))
1499 av1_set_rtc_reference_structure_one_layer(cpi, cpi->gf_frame_index == 0);
1500 #else
1501 if (use_one_pass_rt_params) {
1502 av1_get_one_pass_rt_params(cpi, &frame_params.frame_type, &frame_input,
1503 *frame_flags);
1504 if (use_rtc_reference_structure_one_layer(cpi))
1505 av1_set_rtc_reference_structure_one_layer(cpi, cpi->gf_frame_index == 0);
1506 }
1507 #endif
1508 #if CONFIG_COLLECT_COMPONENT_TIMING
1509 end_timing(cpi, av1_get_one_pass_rt_params_time);
1510 #endif
1511
1512 FRAME_UPDATE_TYPE frame_update_type =
1513 get_frame_update_type(gf_group, cpi->gf_frame_index);
1514
1515 if (frame_params.show_existing_frame &&
1516 frame_params.frame_type != KEY_FRAME) {
1517 // Force show-existing frames to be INTER, except forward keyframes
1518 frame_params.frame_type = INTER_FRAME;
1519 }
1520
1521 // Per-frame encode speed. In theory this can vary, but things may have
1522 // been written assuming speed-level will not change within a sequence, so
1523 // this parameter should be used with caution.
1524 frame_params.speed = oxcf->speed;
1525
1526 #if !CONFIG_REALTIME_ONLY
1527 // Set forced key frames when necessary. For two-pass encoding / lap mode,
1528 // this is already handled by av1_get_second_pass_params. However when no
1529 // stats are available, we still need to check if the new frame is a keyframe.
1530 // For one pass rt, this is already checked in av1_get_one_pass_rt_params.
1531 if (!use_one_pass_rt_params &&
1532 (is_stat_generation_stage(cpi) || has_no_stats_stage(cpi))) {
1533 // Current frame is coded as a key-frame for any of the following cases:
1534 // 1) First frame of a video
1535 // 2) For all-intra frame encoding
1536 // 3) When a key-frame is forced
1537 const int kf_requested =
1538 (cm->current_frame.frame_number == 0 ||
1539 oxcf->kf_cfg.key_freq_max == 0 || (*frame_flags & FRAMEFLAGS_KEY));
1540 if (kf_requested && frame_update_type != OVERLAY_UPDATE &&
1541 frame_update_type != INTNL_OVERLAY_UPDATE) {
1542 frame_params.frame_type = KEY_FRAME;
1543 } else if (is_stat_generation_stage(cpi)) {
1544 // For stats generation, set the frame type to inter here.
1545 frame_params.frame_type = INTER_FRAME;
1546 }
1547 }
1548 #endif
1549
1550 // Work out some encoding parameters specific to the pass:
1551 if (has_no_stats_stage(cpi) && oxcf->q_cfg.aq_mode == CYCLIC_REFRESH_AQ) {
1552 av1_cyclic_refresh_update_parameters(cpi);
1553 } else if (is_stat_generation_stage(cpi)) {
1554 cpi->td.mb.e_mbd.lossless[0] = is_lossless_requested(&oxcf->rc_cfg);
1555 } else if (is_stat_consumption_stage(cpi)) {
1556 #if CONFIG_MISMATCH_DEBUG
1557 mismatch_move_frame_idx_w();
1558 #endif
1559 #if TXCOEFF_COST_TIMER
1560 cm->txcoeff_cost_timer = 0;
1561 cm->txcoeff_cost_count = 0;
1562 #endif
1563 }
1564
1565 if (!is_stat_generation_stage(cpi))
1566 set_ext_overrides(cm, &frame_params, ext_flags);
1567
1568 // Shown keyframes and S frames refresh all reference buffers
1569 const int force_refresh_all =
1570 ((frame_params.frame_type == KEY_FRAME && frame_params.show_frame) ||
1571 frame_params.frame_type == S_FRAME) &&
1572 !frame_params.show_existing_frame;
1573
1574 av1_configure_buffer_updates(
1575 cpi, &frame_params.refresh_frame, frame_update_type,
1576 gf_group->refbuf_state[cpi->gf_frame_index], force_refresh_all);
1577
1578 if (!is_stat_generation_stage(cpi)) {
1579 const YV12_BUFFER_CONFIG *ref_frame_buf[INTER_REFS_PER_FRAME];
1580
1581 RefFrameMapPair ref_frame_map_pairs[REF_FRAMES];
1582 init_ref_map_pair(cpi, ref_frame_map_pairs);
1583 const int order_offset = gf_group->arf_src_offset[cpi->gf_frame_index];
1584 const int cur_frame_disp =
1585 cpi->common.current_frame.frame_number + order_offset;
1586
1587 int get_ref_frames = 0;
1588 #if CONFIG_FPMT_TEST
1589 get_ref_frames =
1590 (cpi->ppi->fpmt_unit_test_cfg == PARALLEL_SIMULATION_ENCODE) ? 1 : 0;
1591 #endif // CONFIG_FPMT_TEST
1592 if (get_ref_frames ||
1593 gf_group->frame_parallel_level[cpi->gf_frame_index] == 0) {
1594 if (!ext_flags->refresh_frame.update_pending) {
1595 av1_get_ref_frames(ref_frame_map_pairs, cur_frame_disp, cpi,
1596 cpi->gf_frame_index, 1, cm->remapped_ref_idx);
1597 } else if (cpi->ppi->rtc_ref.set_ref_frame_config ||
1598 use_rtc_reference_structure_one_layer(cpi)) {
1599 for (unsigned int i = 0; i < INTER_REFS_PER_FRAME; i++)
1600 cm->remapped_ref_idx[i] = cpi->ppi->rtc_ref.ref_idx[i];
1601 }
1602 }
1603
1604 // Get the reference frames
1605 bool has_ref_frames = false;
1606 for (int i = 0; i < INTER_REFS_PER_FRAME; ++i) {
1607 const RefCntBuffer *ref_frame =
1608 get_ref_frame_buf(cm, ref_frame_priority_order[i]);
1609 ref_frame_buf[i] = ref_frame != NULL ? &ref_frame->buf : NULL;
1610 if (ref_frame != NULL) has_ref_frames = true;
1611 }
1612 if (!has_ref_frames && (frame_params.frame_type == INTER_FRAME ||
1613 frame_params.frame_type == S_FRAME)) {
1614 return AOM_CODEC_ERROR;
1615 }
1616
1617 // Work out which reference frame slots may be used.
1618 frame_params.ref_frame_flags =
1619 get_ref_frame_flags(&cpi->sf, is_one_pass_rt_params(cpi), ref_frame_buf,
1620 ext_flags->ref_frame_flags);
1621
1622 // Set primary_ref_frame of non-reference frames as PRIMARY_REF_NONE.
1623 if (cpi->ppi->gf_group.is_frame_non_ref[cpi->gf_frame_index]) {
1624 frame_params.primary_ref_frame = PRIMARY_REF_NONE;
1625 } else {
1626 frame_params.primary_ref_frame =
1627 choose_primary_ref_frame(cpi, &frame_params);
1628 }
1629
1630 frame_params.order_offset = gf_group->arf_src_offset[cpi->gf_frame_index];
1631
1632 // Call av1_get_refresh_frame_flags() if refresh index not available.
1633 if (!cpi->refresh_idx_available) {
1634 frame_params.refresh_frame_flags = av1_get_refresh_frame_flags(
1635 cpi, &frame_params, frame_update_type, cpi->gf_frame_index,
1636 cur_frame_disp, ref_frame_map_pairs);
1637 } else {
1638 assert(cpi->ref_refresh_index != INVALID_IDX);
1639 frame_params.refresh_frame_flags = (1 << cpi->ref_refresh_index);
1640 }
1641
1642 // Make the frames marked as is_frame_non_ref to non-reference frames.
1643 if (gf_group->is_frame_non_ref[cpi->gf_frame_index])
1644 frame_params.refresh_frame_flags = 0;
1645
1646 frame_params.existing_fb_idx_to_show = INVALID_IDX;
1647 // Find the frame buffer to show based on display order.
1648 if (frame_params.show_existing_frame) {
1649 for (int frame = 0; frame < REF_FRAMES; frame++) {
1650 const RefCntBuffer *const buf = cm->ref_frame_map[frame];
1651 if (buf == NULL) continue;
1652 const int frame_order = (int)buf->display_order_hint;
1653 if (frame_order == cur_frame_disp)
1654 frame_params.existing_fb_idx_to_show = frame;
1655 }
1656 }
1657 }
1658
1659 // The way frame_params->remapped_ref_idx is setup is a placeholder.
1660 // Currently, reference buffer assignment is done by update_ref_frame_map()
1661 // which is called by high-level strategy AFTER encoding a frame. It
1662 // modifies cm->remapped_ref_idx. If you want to use an alternative method
1663 // to determine reference buffer assignment, just put your assignments into
1664 // frame_params->remapped_ref_idx here and they will be used when encoding
1665 // this frame. If frame_params->remapped_ref_idx is setup independently of
1666 // cm->remapped_ref_idx then update_ref_frame_map() will have no effect.
1667 memcpy(frame_params.remapped_ref_idx, cm->remapped_ref_idx,
1668 REF_FRAMES * sizeof(*cm->remapped_ref_idx));
1669
1670 cpi->td.mb.rdmult_delta_qindex = cpi->td.mb.delta_qindex = 0;
1671
1672 if (!frame_params.show_existing_frame) {
1673 cm->quant_params.using_qmatrix = oxcf->q_cfg.using_qm;
1674 }
1675
1676 const int is_intra_frame = frame_params.frame_type == KEY_FRAME ||
1677 frame_params.frame_type == INTRA_ONLY_FRAME;
1678 FeatureFlags *const features = &cm->features;
1679 if (!is_stat_generation_stage(cpi) &&
1680 (oxcf->pass == AOM_RC_ONE_PASS || oxcf->pass >= AOM_RC_SECOND_PASS) &&
1681 is_intra_frame) {
1682 av1_set_screen_content_options(cpi, features);
1683 }
1684
1685 #if CONFIG_REALTIME_ONLY
1686 if (av1_encode(cpi, dest, &frame_input, &frame_params, &frame_results) !=
1687 AOM_CODEC_OK) {
1688 return AOM_CODEC_ERROR;
1689 }
1690 #else
1691 if (has_no_stats_stage(cpi) && oxcf->mode == REALTIME &&
1692 gf_cfg->lag_in_frames == 0) {
1693 if (av1_encode(cpi, dest, &frame_input, &frame_params, &frame_results) !=
1694 AOM_CODEC_OK) {
1695 return AOM_CODEC_ERROR;
1696 }
1697 } else if (denoise_and_encode(cpi, dest, &frame_input, &frame_params,
1698 &frame_results) != AOM_CODEC_OK) {
1699 return AOM_CODEC_ERROR;
1700 }
1701 #endif // CONFIG_REALTIME_ONLY
1702
1703 // This is used in rtc temporal filter case. Use true source in the PSNR
1704 // calculation.
1705 if (is_psnr_calc_enabled(cpi) && cpi->sf.rt_sf.use_rtc_tf) {
1706 assert(cpi->orig_source.buffer_alloc_sz > 0);
1707 cpi->source = &cpi->orig_source;
1708 }
1709
1710 if (!is_stat_generation_stage(cpi)) {
1711 // First pass doesn't modify reference buffer assignment or produce frame
1712 // flags
1713 update_frame_flags(&cpi->common, &cpi->refresh_frame, frame_flags);
1714 set_additional_frame_flags(cm, frame_flags);
1715 }
1716
1717 #if !CONFIG_REALTIME_ONLY
1718 #if TXCOEFF_COST_TIMER
1719 if (!is_stat_generation_stage(cpi)) {
1720 cm->cum_txcoeff_cost_timer += cm->txcoeff_cost_timer;
1721 fprintf(stderr,
1722 "\ntxb coeff cost block number: %ld, frame time: %ld, cum time %ld "
1723 "in us\n",
1724 cm->txcoeff_cost_count, cm->txcoeff_cost_timer,
1725 cm->cum_txcoeff_cost_timer);
1726 }
1727 #endif
1728 #endif // !CONFIG_REALTIME_ONLY
1729
1730 #if CONFIG_TUNE_VMAF
1731 if (!is_stat_generation_stage(cpi) &&
1732 (oxcf->tune_cfg.tuning >= AOM_TUNE_VMAF_WITH_PREPROCESSING &&
1733 oxcf->tune_cfg.tuning <= AOM_TUNE_VMAF_NEG_MAX_GAIN)) {
1734 av1_update_vmaf_curve(cpi);
1735 }
1736 #endif
1737
1738 // Unpack frame_results:
1739 *size = frame_results.size;
1740
1741 // Leave a signal for a higher level caller about if this frame is droppable
1742 if (*size > 0) {
1743 cpi->droppable =
1744 is_frame_droppable(&cpi->ppi->rtc_ref, &ext_flags->refresh_frame);
1745 }
1746
1747 // For SVC, or when frame-dropper is enabled:
1748 // keep track of the (unscaled) source corresponding to the refresh of LAST
1749 // reference (base temporal layer - TL0). Copy only for the
1750 // top spatial enhancement layer so all spatial layers of the next
1751 // superframe have last_source to be aligned with previous TL0 superframe.
1752 // Avoid cases where resolution changes for unscaled source (top spatial
1753 // layer). Only needs to be done for frame that are encoded (size > 0).
1754 if (*size > 0 &&
1755 (cpi->ppi->use_svc || cpi->oxcf.rc_cfg.drop_frames_water_mark > 0) &&
1756 cpi->svc.spatial_layer_id == cpi->svc.number_spatial_layers - 1 &&
1757 cpi->svc.temporal_layer_id == 0 &&
1758 cpi->unscaled_source->y_width == cpi->svc.source_last_TL0.y_width &&
1759 cpi->unscaled_source->y_height == cpi->svc.source_last_TL0.y_height) {
1760 aom_yv12_copy_y(cpi->unscaled_source, &cpi->svc.source_last_TL0, 1);
1761 aom_yv12_copy_u(cpi->unscaled_source, &cpi->svc.source_last_TL0, 1);
1762 aom_yv12_copy_v(cpi->unscaled_source, &cpi->svc.source_last_TL0, 1);
1763 }
1764
1765 return AOM_CODEC_OK;
1766 }
1767