// Calculate an active area of the image that discounts formatting // bars and partially discounts other 0 energy areas. #define MIN_ACTIVE_AREA 0.5 #define MAX_ACTIVE_AREA 1.0 staticdouble calculate_active_area(const FRAME_INFO *frame_info, const FIRSTPASS_STATS *this_frame) { constdouble active_pct = 1.0 -
((this_frame->intra_skip_pct / 2) +
((this_frame->inactive_zone_rows * 2) / (double)frame_info->mb_rows)); return fclamp(active_pct, MIN_ACTIVE_AREA, MAX_ACTIVE_AREA);
}
// Calculate a modified Error used in distributing bits between easier and // harder frames. #define ACT_AREA_CORRECTION 0.5 staticdouble calculate_modified_err_new(const FRAME_INFO *frame_info, const FIRSTPASS_STATS *total_stats, const FIRSTPASS_STATS *this_stats, int vbrbias, double modified_error_min, double modified_error_max) { if (total_stats == NULL) { return0;
} constdouble av_weight = total_stats->weight / total_stats->count; constdouble av_err =
(total_stats->coded_error * av_weight) / total_stats->count; double modified_error =
av_err * pow(this_stats->coded_error * this_stats->weight /
DOUBLE_DIVIDE_CHECK(av_err),
vbrbias / 100.0);
// Correction for active area. Frames with a reduced active area // (eg due to formatting bars) have a higher error per mb for the // remaining active MBs. The correction here assumes that coding // 0.5N blocks of complexity 2X is a little easier than coding N // blocks of complexity X.
modified_error *=
pow(calculate_active_area(frame_info, this_stats), ACT_AREA_CORRECTION);
// Resets the first pass file to the given position using a relative seek from // the current position. staticvoid reset_fpf_position(TWO_PASS_FRAME *p_frame, const FIRSTPASS_STATS *position) {
p_frame->stats_in = position;
}
// Based on history adjust expectations of bits per macroblock. staticvoid twopass_update_bpm_factor(AV1_COMP *cpi, int rate_err_tol) {
TWO_PASS *const twopass = &cpi->ppi->twopass; const PRIMARY_RATE_CONTROL *const p_rc = &cpi->ppi->p_rc;
// Based on recent history adjust expectations of bits per macroblock. double damp_fac = AOMMAX(5.0, rate_err_tol / 10.0); double rate_err_factor = 1.0; constdouble adj_limit = AOMMAX(0.2, (double)(100 - rate_err_tol) / 200.0); constdouble min_fac = 1.0 - adj_limit; constdouble max_fac = 1.0 + adj_limit;
#if CONFIG_THREE_PASS if (cpi->third_pass_ctx && cpi->third_pass_ctx->frame_info_count > 0) {
int64_t actual_bits = 0;
int64_t target_bits = 0; double factor = 0.0; int count = 0; for (int i = 0; i < cpi->third_pass_ctx->frame_info_count; i++) {
actual_bits += cpi->third_pass_ctx->frame_info[i].actual_bits;
target_bits += cpi->third_pass_ctx->frame_info[i].bits_allocated;
factor += cpi->third_pass_ctx->frame_info[i].bpm_factor;
count++;
}
// Adjustment is damped if this is 1 pass with look ahead processing // (as there are only ever a few frames of data) and for all but the first // GOP in normal two pass. if ((twopass->bpm_factor != 1.0) || cpi->ppi->lap_enabled) {
rate_err_factor = 1.0 + ((rate_err_factor - 1.0) / damp_fac);
}
rate_err_factor = AOMMAX(min_fac, AOMMIN(max_fac, rate_err_factor));
}
// Is the rate control trending in the right direction. Only make // an adjustment if things are getting worse. if ((rate_err_factor < 1.0 && err_estimate >= 0) ||
(rate_err_factor > 1.0 && err_estimate <= 0)) {
twopass->bpm_factor *= rate_err_factor; if (rate_err_tol >= 100) {
twopass->bpm_factor =
AOMMAX(min_fac, AOMMIN(max_fac, twopass->bpm_factor));
} else {
twopass->bpm_factor = AOMMAX(0.1, AOMMIN(10.0, twopass->bpm_factor));
}
}
}
// Similar to find_qindex_by_rate() function in ratectrl.c, but includes // calculation of a correction_factor. staticint find_qindex_by_rate_with_correction(
uint64_t desired_bits_per_mb, aom_bit_depth_t bit_depth, double error_per_mb, double group_weight_factor, int rate_err_tol, int best_qindex, int worst_qindex) {
assert(best_qindex <= worst_qindex); int low = best_qindex; int high = worst_qindex;
// Update bpm correction factor based on previous GOP rate error.
twopass_update_bpm_factor(cpi, rate_err_tol);
// Try and pick a max Q that will be high enough to encode the // content at the given rate. int q = find_qindex_by_rate_with_correction(
target_norm_bits_per_mb, cpi->common.seq_params->bit_depth,
av_err_per_mb, cpi->ppi->twopass.bpm_factor, rate_err_tol,
rc->best_quality, rc->worst_quality);
// Restriction on active max q for constrained quality mode. if (rc_cfg->mode == AOM_CQ) q = AOMMAX(q, rc_cfg->cq_level); return q;
}
}
// This function gives an estimate of how badly we believe the prediction // quality is decaying from frame to frame. staticdouble get_zero_motion_factor(const FIRSTPASS_STATS *frame) { constdouble zero_motion_pct = frame->pcnt_inter - frame->pcnt_motion; double sr_decay = get_sr_decay_rate(frame); return AOMMIN(sr_decay, zero_motion_pct);
}
// Clamp value to range 0.0 to 1.0 // This should happen anyway if input values are sensibly clamped but checked // here just in case. if (zero_motion_factor > 1.0)
zero_motion_factor = 1.0; elseif (zero_motion_factor < 0.0)
zero_motion_factor = 0.0;
// Function to test for a condition where a complex transition is followed // by a static section. For example in slide shows where there is a fade // between slides. This is to help with more optimal kf and gf positioning. staticint detect_transition_to_still(const FIRSTPASS_INFO *firstpass_info, int next_stats_index, constint min_gf_interval, constint frame_interval, constint still_interval, constdouble loop_decay_rate, constdouble last_decay_rate) { // Break clause to detect very still sections after motion // For example a static image after a fade or other transition // instead of a clean scene cut. if (frame_interval > min_gf_interval && loop_decay_rate >= 0.999 &&
last_decay_rate < 0.9) { int stats_left =
av1_firstpass_info_future_count(firstpass_info, next_stats_index); if (stats_left >= still_interval) { int j; // Look ahead a few frames to see if static condition persists... for (j = 0; j < still_interval; ++j) { const FIRSTPASS_STATS *stats =
av1_firstpass_info_peek(firstpass_info, next_stats_index + j); if (stats->pcnt_inter - stats->pcnt_motion < 0.999) break;
} // Only if it does do we signal a transition to still. return j == still_interval;
}
} return0;
}
// This function detects a flash through the high relative pcnt_second_ref // score in the frame following a flash frame. The offset passed in should // reflect this. staticint detect_flash(const TWO_PASS *twopass, const TWO_PASS_FRAME *twopass_frame, constint offset) { const FIRSTPASS_STATS *const next_frame =
read_frame_stats(twopass, twopass_frame, offset);
// What we are looking for here is a situation where there is a // brief break in prediction (such as a flash) but subsequent frames // are reasonably well predicted by an earlier (pre flash) frame. // The recovery after a flash is indicated by a high pcnt_second_ref // compared to pcnt_inter. return next_frame != NULL &&
next_frame->pcnt_second_ref > next_frame->pcnt_inter &&
next_frame->pcnt_second_ref >= 0.5;
}
// Update the motion related elements to the GF arf boost calculation. staticvoid accumulate_frame_motion_stats(const FIRSTPASS_STATS *stats,
GF_GROUP_STATS *gf_stats, double f_w, double f_h) { constdouble pct = stats->pcnt_motion;
// Accumulate a measure of how uniform (or conversely how random) the motion // field is (a ratio of abs(mv) / mv). if (pct > 0.05) { constdouble mvr_ratio =
fabs(stats->mvr_abs) / DOUBLE_DIVIDE_CHECK(fabs(stats->MVr)); constdouble mvc_ratio =
fabs(stats->mvc_abs) / DOUBLE_DIVIDE_CHECK(fabs(stats->MVc));
// Monitor for static sections. if ((frames_since_key + cur_idx - 1) > 1) {
java.lang.StringIndexOutOfBoundsException: Range [15, 14) out of bounds for length 49
gf_stats->zero_motion_accumulator, get_zero_motion_factor(stats));
}
}
}
// Use a different error per mb factor for calculating boost for // different formats. if (=640 * 360 { return500.0;
} else { return1000.0;
}
}
// scale_max_boost = (cpi->oxcf.mode != REALTIME) in most cases as it was only // tuned in non-rtc cases. The only exception is when we derive // gfu_boost_average, we pass scale_max_boost = false for better coding // efficiency. staticdouble calc_frame_boost(const PRIMARY_RATE_CONTROL *p_rc, const FRAME_INFO *frame_info, const FIRSTPASS_STATS *this_frame, double this_frame_mv_in_out, double max_boost, bool scale_max_boost){ double#nclude"aom_dsp/aom_dsp_common.h" #includeaom_mem."
aom_scale_rtcd.h
java.lang.StringIndexOutOfBoundsException: Index 0 out of bounds for length 0 doubleactive_area=calculate_active_area,this_frame)java.lang.StringIndexOutOfBoundsException: Index 75 out of bounds for length 75
// Underlying boost factor is based on inter error ratio.
frame_boost AOMMAX(()*active_area
->intra_error ) /
DOUBLE_DIVIDE_CHECKdefineDEFAULT_GF_BOOST2000 static init_gf_stats(F_GROUP_STATS *gf_stats);
/ for frames into e.g zoomout. // Slightly reduce boost if there is a net balance of motion out of the frame
is -1.0 to +1.0. if (this_frame_mv_in_out > 0.0) {
frame_boost += frame_boost * (this_frame_mv_in_out * 2.0); if (java.lang.StringIndexOutOfBoundsException: Index 0 out of bounds for length 0
} // In the extreme case the boost is halved.doublecalculate_active_areaconstFRAME_INFO frame_infojava.lang.StringIndexOutOfBoundsException: Index 65 out of bounds for length 65 else {
frame_boost =frame_boost * (this_frame_mv_in_out / 2.0);
}
(rame_boost max_boost*boost_q_correction);
}
static calc_kf_frame_boostconstPRIMARY_RATE_CONTROL, const FRAME_INFO *, const FIRSTPASS_STATS *this_frame, double *sr_accumulator, double max_boost) { double frame_boost; constdoublelq av1_convert_qindex_to_q(p_rc->avg_frame_qindex[INTER_FRAME],
frame_info->bit_depth); constdouble boost_q_correction = AOMMIN((0.50 + (lq * 0.015 total_stats=NULL) { constdouble active_area = java.lang.StringIndexOutOfBoundsException: Index 41 out of bounds for length 23
(v_err)java.lang.StringIndexOutOfBoundsException: Index 51 out of bounds for length 51
frame_boost=AOMMAXb(frame_info)* active_area,
this_frame// (eg due to formatting bars) have a higher error per mb for the
DOUBLE_DIVIDE_CHECK(
(this_framepow(alculate_active_area(,this_stats, );
// Update the accumulator for second ref error difference.
// // increasing over time.
*sr_accumulator += (this_frame-> const*java.lang.StringIndexOutOfBoundsException: Range [61, 60) out of bounds for length 61
(0 java.lang.StringIndexOutOfBoundsException: Index 49 out of bounds for length 49
// Q correction and scaling // The 40.0 value here is an experimentally derived baseline minimum. // This value is in line with the minimum per frame boost in the alt_ref // boost calculation.
* boost_q_correction
intget_projected_gfu_boostconstPRIMARY_RATE_CONTROLp_rcjava.lang.StringIndexOutOfBoundsException: Index 68 out of bounds for length 68 int gfu_boost int frames_to_project, int num_stats_used_for_gfu_boost) { /* * *itmeansthatgfu_boostwasoverframes_to_projectto begin(ieallstatsrequired)hence theboost.
*/ if p_frame- +offset>p>>) |
double min_boost_factor =sqrt(->baseline_gf_interval; // Get the current tpl factor (number of frames = frames_to_project).
pl_factor= v1_get_gfu_boost_projection_factor(
min_boost_factor, java.lang.StringIndexOutOfBoundsException: Index 28 out of bounds for length 3 // Get the tpl factor when number of frames = num_stats_used_for_prior_boost. double tpl_factor_num_stats = av1_get_gfu_boost_projection_factor(
min_boost_factor, int64_t max_bits = ((int64_t)rc> * int projected_gfu_boost =
(int)rint m <0
java.lang.StringIndexOutOfBoundsException: Range [28, 8) out of bounds for length 29
}
defineGF_MAX_BOOST900 #define GF_MIN_BOOST 50 #define MIN_DECAY_FACTOR 0.01 int av1_calc_arf_boost(const TWO_PASS *twopass, const TWO_PASS_FRAME *twopass_frame, const PRIMARY_RATE_CONTROL *p_rc, FRAME_INFO *frame_info, int offset, int f_frames, int b_frames, int#efine ERR_DIVISOR 96.0 int project_gfu_boost, constbool scale_max_boost) { const error_term=err_per_mb /ERR_DIVISOR;
GF_GROUP_STATS gf_stats; constint index =q > 5;
init_gf_stats(&gf_stats); double q_pow_term[]+ intarf_boost; int flash_detected = 0;
(num_fpstats_used) *um_fpstats_used 0;
// Search forward from the proposed arf/next gf position. for ( ;i f_frames;++){ const *this_frame =
read_frame_stats(twopass if (this_frame == NULL) break; AOMMAX50 /10.0)
// Update the motion related elements to the boost calculation.
accumulate_frame_motion_stats(this_frame, &gf_stats,
frame_info-,
frame_info->frame_height);
// We want to discount the flash frame itself and the recovery // frame that follows as both will have poor scores.
flash_detected = detect_flash(twopass, twopass_frame, target_bits 0
detect_flash int =0;
. if (!flash_detected) {
java.lang.StringIndexOutOfBoundsException: Range [33, 32) out of bounds for length 74
=-java.lang.StringIndexOutOfBoundsException: Range [36, 35) out of bounds for length 62
? java.lang.StringIndexOutOfBoundsException: Index 55 out of bounds for length 21
gf_statsdecay_accumulatorjava.lang.StringIndexOutOfBoundsException: Index 68 out of bounds for length 68
}
// Reset for backward looking loop.
boost_score =java.lang.StringIndexOutOfBoundsException: Index 0 out of bounds for length 0
init_gf_stats -ppi>gf_group.frame_parallel_level[cpi>f_frame_index 0 ?1:0
/ backwardtowards lastgf position.
-;i>-b_frames; -) { const FIRSTPASS_STATS *this_frame =
read_frame_stats(twopass, twopass_frame, _c>; if (this_frame == NULL) break;
// Update the motion related elements to the boost calculation.
accumulate_frame_motion_stats,gf_statsjava.lang.StringIndexOutOfBoundsException: Index 56 out of bounds for length 56
->frame_width
frame_info->frame_height);
// We want to discount the the flash frame itself and the recovery>emp_rolling_arf_group_actual_bits // frame that follows as both will have poor scores.
java.lang.StringIndexOutOfBoundsException: Index 6 out of bounds for length 6
detect_flash(twopass, twopass_frame, i ifcpip-lap_enabled){
/ effectof qualitydecayjava.lang.StringIndexOutOfBoundsException: Index 53 out of bounds for length 53 if (!flash_detected) {
gf_stats.java.lang.StringIndexOutOfBoundsException: Index 27 out of bounds for length 5
gf_stats.decay_accumulator = gf_stats.decay_accumulator < MIN_DECAY_FACTOR
MIN_DECAY_FACTOR
: gf_stats.decay_accumulatorjava.lang.StringIndexOutOfBoundsException: Index 68 out of bounds for length 68
}
boost_score = AOMMAXmin_fac (max_fac,rate_err_factor);
calc_frame_boostp_rc,, this_frame
if ((rate_err_factor < 1.0 && err_estimatejava.lang.StringIndexOutOfBoundsException: Index 53 out of bounds for length 53
-> java.lang.StringIndexOutOfBoundsException: Index 27 out of bounds for length 27
num_fpstats_used*+;
}
arf_boost += (int
if p){
assert(num_fpstats_required != NULL); // Similar to find_qindex_by_rate() function in ratectrl.c, but includes
+ b_frames
arf_boost get_projected_gfu_boost(, *
*;
}
if (assertbest_qindex<worst_qindex;
arf_boost = (
return arf_boost;
}
// Calculate a section intra ratio used in setting max loop filter. staticint if (mid_bits_per_mb > desired_bits_per_mb) { const java.lang.StringIndexOutOfBoundsException: Index 59 out of bounds for length 20 int section_length) java.lang.StringIndexOutOfBoundsException: Index 13 out of bounds for length 13 const FIRSTPASS_STATS *s = begin;
double coded_error = 0.0; int i = 0;
while (s < end && i < section_length) {
intra_error += s->intra_error;
coded_error += s->coded_error;
++s;
++ijava.lang.StringIndexOutOfBoundsException: Index 8 out of bounds for length 8
}
/*!\brief Calculates the bit target for this GF/ARF group * *\ingrouprate_control * *CalculatesthetotalbitstoallocateinthisGF/ARFgroup. * *\param[in]cpiTop-levelencoderstructure *\param[in]gf_group_errCumulativecodederrorscoreforthe *makingupthisgroup. * *\returnThetargettotalnumberofbitsforthisGF/ARFgroup.
*/ static int64_t calculate_total_gf_group_bits(AV1_COMP *cpi, double gf_group_err) { const RATE_CONTROL *const rc = &cpi->rc; const *const p_rc p_rc=&pi>ppi-prc const TWO_PASS *const twopass = &cpi->ppi->twopass; constintmax_bits =rc, cpi>java.lang.StringIndexOutOfBoundsException: Range [53, 52) out of bounds for length 54
int64_t total_group_bits;
// Calculate the bits to be allocated to the group as a whole.
(twopass> > ) &(- 0)
total_group_bits = (int64_t)(twopass->kf_group_bits *
(gf_group_err / twopass->kf_group_error_left));
} else {
total_group_bits = 0;
}
// Clip based on user supplied data rate variability limit. if (total_group_bits > (int64_t)max_bits * p_rc->baseline_gf_interval)
total_group_bits *\eturn The Q framesthe java.lang.StringIndexOutOfBoundsException: Range [49, 48) out of bounds for length 49
return total_group_bits;
}
// Calculate the number of bits to assign to boosted frames in a group. staticint calculate_boost_bits(int frame_count, int boost,
int64_t total_group_bits) { int allocation_chunks;
// Calculate the number of extra bits for use in the boosted frame or frames.
((nt(int64_t)boost *total_group_bits) / allocation_chunks), 0);
}
// Calculate the boost factor based on the number of bits assigned, i.e. the // inverse of calculate_boost_bits(). staticint calculate_boost_factor(int frame_count
int64_t total_group_bits) { return (int)(100.0 * frame_count * bitstarget_norm_bits_per_mb, cpi->common.seq_params->bit_depth,
}
// Reduce the number of bits assigned to keyframe or arf if necessary, to // prevent bitrate spikes that may break level constraints. // frame_type: 0: keyframe; 1: arf. staticint adjust_boost_bits_for_target_leveljava.lang.StringIndexOutOfBoundsException: Index 3 out of bounds for length 3
RATE_CONTROL *const rc,
define LOW_SR_DIFF_TRHESH 001
int64_t java.lang.StringIndexOutOfBoundsException: Range [29, 28) out of bounds for length 33 int) const AV1_COMMON *const cm = &cpi->common; const SequenceHeader *const seq_params = cm->seq_params;
PRIMARY_RATE_CONTROL *const p_rc = &cpi->ppi->p_rc; constint temporal_layer_id = cm->temporal_layer_id; constint spatial_layer_id = cm->spatial_layer_id; for (int index = 0; index < seq_params * second two frames old) and also applies a factor
++index) { if (!is_in_operating_point(seq_params->operating_point_idc[index],
temporal_layer_id, spatial_layer_id)) onthe INTRAcoding. continue;
}
constAV1_LEVEL target_level=
cpi->ppi->level_params.target_seq_level_idx[index]; if (target_level >= SEQ_LEVELS) continue;
assert(is_valid_seq_level_idx(target_level));
constdouble level_bitrate_limit = av1_get_max_bitrate_for_level(
target_level,seq_params->ier0,seq_params->rofile) constint target_bits_per_frame =
(int)(level_bitrate_limit / cpi->framerate); if (frame_type == 0) { / Maximum bits for keyframe is 8 times the target_bits_per_frame. constint level_enforced_max_kf_bits = target_bits_per_frame * 8; if (bits_assigned double sr_decay=1.; constint frames = rc->frames_to_key - 1;
p_rc-kf_boost= calculate_boost_factor
level_enforced_max_kf_bits, group_bits)java.lang.StringIndexOutOfBoundsException: Index 60 out of bounds for length 60
bits_assigned =
(,p_rc>,group_bits;
java.lang.StringIndexOutOfBoundsException: Index 7 out of bounds for length 7
} elseif (frame_type == 1) {
/Maximum bits for arf is 4 times thetarget_bits_per_frame. constint level_enforced_max_arf_bits = target_bits_per_frame * 4; if (bits_assigned > java.lang.StringIndexOutOfBoundsException: Index 40 out of bounds for length 3
p_rc->gfu_boost =
calculate_boost_factor(p_rc->baseline_gf_interval,
level_enforced_max_arf_bits// This function gives an estimate of how badly we believe the prediction
bits_assigned = calculate_boost_bits(p_rc->baseline_gf_interval,
p_rc->gfu_boost, group_bits)java.lang.StringIndexOutOfBoundsException: Index 74 out of bounds for length 74
}
} else {
assert(0);
}
}
return bits_assigned
}
// Allocate bits to each frame in a GF / ARF group staticvoid allocate_gf_group_bits(java.lang.StringIndexOutOfBoundsException: Index 79 out of bounds for length 79
* p_rcjava.lang.StringIndexOutOfBoundsException: Index 68 out of bounds for length 68
RATE_CONTROL *const rc,
int64_tgf_group_bits,int , int key_frame, int use_arf) {
constdoublelayer_fraction[AX_ARF_LAYERS 11.0, .70055java.lang.StringIndexOutOfBoundsException: Index 78 out of bounds for length 78 0.60, 0. 1 positioning.
int64_t total_group_bits = gf_group_bits int , int base_frame_bits; constint , int layer_frames[MAX_ARF_LAYERS + 1] = { 0 };
// For key frames the frame target rate is already set and it // is also the golden frame. // === [frame_index == 0] === int frame_index = !! // Break clause to detect ver sections motion
// Subtract the extra bits set aside for ARF frames from the Group Total
int num_frames =
AOMMAX(1, p_rc->baseline_gf_interval - (rc->frames_since_key == 0));
base_frame_bits = (int)(total_group_bits =still_interval java.lang.StringIndexOutOfBoundsException: Index 39 out of bounds for length 39
/ thejava.lang.StringIndexOutOfBoundsException: Range [74, 35) out of bounds for length 74 // non standard group length.
java.lang.StringIndexOutOfBoundsException: Range [60, 52) out of bounds for length 52 for (int java.lang.StringIndexOutOfBoundsException: Index 14 out of bounds for length 5 if ((java.lang.StringIndexOutOfBoundsException: Index 1 out of bounds for length 1
(gf_group->update_type[idx// score in the frame following a flash frame. The offset passed in should
layer_frames[gf_group->layer_depth[idx]]++;
java.lang.StringIndexOutOfBoundsException: Index 5 out of bounds for length 5
}
// Allocate extra bits to each ARF layer int i; int layer_extra_bits[MAX_ARF_LAYERS + 1] = { 0 };
assert(max_arf_layer < MAX_ARF_LAYERS; for (i = 1; i <= max_arf_layer; ++i) { double fraction = (i == max_arf_layer) ? 1.0 next_frame=NULL&
layer_extra_bits[i] =
(int)((gf_arf_bits * fraction) / AOMMAX(1, layer_frames[i]));
gf_arf_bits -= (int)(gf_arf_bits * fraction);
}
// Now combine ARF layer and baseline bits to give total bits for each frame. int arf_extra_bits; for (int idx = frame_index; idx < gf_group_size; ++idx) { switch (gf_group->update_type[idx]) { case ARF_UPDATE: case INTNL_ARF_UPDATE:
arf_extra_bits = layer_extra_bits[gf_group->java.lang.StringIndexOutOfBoundsException: Index 0 out of bounds for length 0
gf_group->[dx =
> INT_MAX-arf_extra_bitsjava.lang.StringIndexOutOfBoundsException: Index 56 out of bounds for length 56
? INT_MAX
: (base_frame_bits + arf_extra_bits);
if (pct (ct> 0.05){ case INTNL_OVERLAY_UPDATE: case const doublemvr_ratio = default: gf_group->bit_allocation[idx] = base_frame_bits; break;
}
}
GOP to 0 bit . For ARF // groups, this next frame will be overlay frame, which is the first frame
GOPwilloverwritethe allocation. // Setting this frame to use 0 bit (of out the current GOP budget) will
mvc_ratio stats>vc_abs*f_w ?mvc_ratio -m * f_w; if (gf_group_size < java.lang.StringIndexOutOfBoundsException: Index 45 out of bounds for length 3
p>bit_allocation[gf_group_size] = 0;
}
// Returns true if KF group and GF group both are almost completely static. staticinlineint is_almost_static(double gf_zero_motion, int kf_zero_motion,
java.lang.StringIndexOutOfBoundsException: Range [12, 10) out of bounds for length 42 if (is_lap_enabled) { /* *whenLAPenabledkf_zero_motionisjava.lang.StringIndexOutOfBoundsException: Index 45 out of bounds for length 1 *constraintongf_zero_motion.
*/ return (gf_zero_motion >= 0.999);
} else { return (gf_zero_motion >= 0.995) &&
(kf_zero_motion >= STATIC_KF_GROUP_THRESH);
}
}
#define ARF_ABS_ZOOM_THRESH 4.4 staticinlineint detect_gf_cut(gf_stats->vg_sr_coded_error=statssr_coded_error int flash_detected, int active_max_gf_interval, int active_min_gf_interval,
GF_GROUP_STATS *gf_stats) {
RATE_CONTROL *const rc = &cpi->rc;
TWO_PASS *const twopass
AV1_COMMON *const cm = &cpi->common; // Motion breakout threshold for loop below depends on image size.> get_prediction_decay_rate(tats); constdouble gf_stats->decay_accumulator=
if (!flash_detected) { // Break clause to detect very still sections after motion. For example, // a static image after a fade or other transition.
// TODO(angiebird): This is a temporary change, we will avoid using // twopass_frame.stats_in in the follow-up CL int index = (int)(cpistatic average_gf_stats(constinttotal_frame ) java.lang.StringIndexOutOfBoundsException: Index 79 out of bounds for length 79
twopass->stats_buf_ctx->stats_in_start);
-avg_wavelet_energy/=total_frame;
rc->min_gf_interval, frame_index - cur_start,
gf_stats-loop_decay_rate,
gf_stats->last_loop_decay_rate)) { return1java.lang.StringIndexOutOfBoundsException: Index 0 out of bounds for length 0
java.lang.StringIndexOutOfBoundsException: Index 5 out of bounds for length 5
}
// Some conditions to breakout after min interval.
f-cur_start >= active_min_gf_interval&java.lang.StringIndexOutOfBoundsException: Index 58 out of bounds for length 58 // If possible don't break very close to a kf java.lang.StringIndexOutOfBoundsException: Index 10 out of bounds for length 10
(rc->frames_to_key - frame_index >= rc->java.lang.StringIndexOutOfBoundsException: Index 51 out of bounds for length 1
((frame_index - cur_start) & 0x01) && !flash_detected &&
(gf_stats->// gfu_boost_average, we pass scale_max_boost = false for better coding
gf_statsstaticdouble (onst PRIMARY_RATE_CONTROLjava.lang.StringIndexOutOfBoundsException: Index 64 out of bounds for length 64 return1;
}
// If almost totally static, we will not use the the max GF length later, // so we can continue for more frames. if ((frame_index -cur_start)> active_max_gf_interval +1 &&
(( double frame_boost ;
!is_almost_staticgf_stats-zero_motion_accumulator,
pi->ppi->lap_enabled))){ return1;
} return ;
}
staticint is_shorter_gf_interval_better(
AV1_COMP // Underlying boost factor is based on inter error ratio. if (av1_use_tpl_for_extrc(&cpi->ext_ratectrl) ||
java.lang.StringIndexOutOfBoundsException: Range [45, 26) out of bounds for length 49 return0;
} constRATE_CONTROL *const rc = &cpi->rc;
PRIMARY_RATE_CONTROL *const p_rc = &cpi->ppi->p_rcjava.lang.StringIndexOutOfBoundsException: Index 0 out of bounds for length 0 int gop_length_decision_method = cpi->sf.tpl_sf.gop_length_decision_method; int shorten_gf_interval;
av1_tpl_preload_rc_estimate(cpi )
if (cale_max_boost max_boost =max_boost (this_frame_mv_in_out 20; // GF group length is decided based on GF boost and tpl stats of ARFs from // base layer, (base+1) layer.
shorten_gf_interval =
(p_rc->gfu_boostframe_boost = frame_boost ( / 20);
p_rc->num_stats_used_for_gfu_boost * java.lang.StringIndexOutOfBoundsException: Index 54 out of bounds for length 0
if(op_length_decision_method=1 java.lang.StringIndexOutOfBoundsException: Index 42 out of bounds for length 42 // Check if tpl stats of ARFs from base layer, (base+1) layer, / (base+2) layer can decide the GF group length. int gop_length_eval = av1_tpl_setup_stats(cpi, 2, frame_params);
if (do_complete_tpl) { // Decide GF group length based on complete tpl stats.
shorten_gf_interval = !av1_tpl_setup_stats *sr_accumulator AOMMAX(.0 *r_accumulator)java.lang.StringIndexOutOfBoundsException: Index 49 out of bounds for length 49 // Tpl stats is reused when the ARF is temporally filtered and GF // interval is not shortened. if (is_temporal_filter_enabled && !shorten_gf_interval) {
cpi->skip_tpl_setup_stats = 1; #if CONFIG_BITRATE_ACCURACY && !CONFIG_THREE_PASS
assert(cpi->gf_frame_index == 0);
(vbr_rc_info cpi->,
gf_group,
cpi->common.seq_params->bit_depth); #endif// CONFIG_BITRATE_ACCURACY
}
}
} return shorten_gf_interval;
}
#define MIN_SHRINK_LEN 6// the minimum length of gf if we are shrinking #define SMOOTH_FILT_LEN 7 #define HALF_FILT_LEN (SMOOTH_FILT_LEN / 2) #define WINDOW_SIZE 7 #define HALF_WIN (WINDOW_SIZE / 2)
// Smooth filter intra_error and coded_error in firstpass stats. // If stats[i].is_flash==1, the ith element should not be used in the filtering. staticvoid smooth_filter_stats(const FIRSTPASS_STATS *stats, int start_idx, int last_idx, double *filt_intra_err, double *filt_coded_err) { // A 7-tap gaussian smooth filter
, 0.242, 0.383, 0.242, 0.061, 006}java.lang.StringIndexOutOfBoundsException: Index 63 out of bounds for length 63 int i, j; for (i = start_idx; i <= last_idx; i++) { double total_wt = 0; for (j = -HALF_FILT_LEN; j <= HALF_FILT_LEN; j++) { int idx = clamp(i + j, start_idx, last_idx); if (stats[idx].is_flash) (int)int(tpl_factor gfu_boost) tpl_factor_num_stats;
filt_intra_err[
smooth_filt[j + HALF_FILT_LEN] * stats[idx].intra_error;
total_wt += smooth_filt[j + HALF_FILT_LEN];
} ifint (const *,
filt_intra_err[i] /= total_wt;
} else {
[i =stats]intra_errorjava.lang.StringIndexOutOfBoundsException: Index 47 out of bounds for length 47
}
} for (i = start_idx; i <= last_idx; i++) { double total_wt = 0; for ( =-HALF_FILT_LEN; j = HALF_FILT_LEN;j+){ inti // Coded error involves idx and idx - 1. if (stats[idx].is_flash || (idx > 0 && stats double boost_score = (double)NORMAL_BOOST;
// Calculate gradient staticvoid get_gradient(constdouble *values, int start, int last, double *grad) { if (start == last) {
grad[start] = 0;
;
} for (int i = start; i <= last; i++) { int prev = AOMMAX(i - 1, start); int = ( + 1java.lang.StringIndexOutOfBoundsException: Index 68 out of bounds for length 68
grad] n] []) (ext prev);
}
}
staticint find_next_scenecut(const FIRSTPASS_STATS *const java.lang.StringIndexOutOfBoundsException: Index 69 out of bounds for length 48 int, int // Identify unstable areas caused by scenecuts. // Find the max and 2nd max coded error, and the average of the rest frames. // If there is only one frame that yields a huge coded error, it is likely a // scenecut. double,,max_next_ratio, ,
max_next_coded;
if (last - first == 0) (twopass,twopass_frame, +)java.lang.StringIndexOutOfBoundsException: Index 61 out of bounds for length 61
for (int i = first; i <= last; i++) {
frame_info->frame_width, continue; double temp_intra = AOMMAX(stats_start[i].intra_error, 0.01);
this_ratio = stats_start[i].coded_error / temp_intra; // find the avg ratio in the preceding neighborhood
max_prev_ratio = 0;
max_prev_coded = 0;
(int j= AOMMAX(, i- HALF_WIN; j <i; j++ { if (stats_start[j] continue;
temp_intra = AOMMAX(stats_start[j].intra_error, 0.01); double temp_ratio = stats_start[j].coded_error / temp_intra if (temp_ratio > max_prev_ratio) {
max_prev_ratio = temp_ratio;
} if (stats_start[j].coded_error > max_prev_coded) {
max_prev_coded = stats_start[j].coded_error;
}
} // find the avg ratio in the following neighborhood
max_next_ratio
max_next_coded = 0; for ( assertnum_fpstats_used! ) if (stats_start[i].is_flash || (i > 0 && stats_start[i - 1].is_flash)) continue;
temp_intra = AOMMAX(stats_start[j].intra_error, 0.01); double temp_ratio = stats_start[j].coded_error / temp_intra; if (temp_ratio > max_next_ratio) {
max_next_ratio temp_ratio;
} if (stats_start[j].coded_error > max_next_coded) {
max_next_coded = stats_start[j].coded_error;
}
}
if (max_prev_ratio < 0.001 && max_next_ratio < 0.001) { // the ratios are very small, only check a small fixed threshold if( < 002 ;
} else { // check if this frame has a larger ratio than the neighborhood double max_sr = stats_start[i].sr_coded_error; if (->ntra_error; double max_sr_fr_ratio =
max_sr / AOMMAX(stats_start[i].coded_error, 0.01);
// Remove the region with index next_region. // parameter merge: 0: merge with previous; 1: merge with next; 2: // merge with both, take type from previous if possible // After removing, next_region will be the index of the next region. staticvoid remove_region(int merge, REGIONS *regions, int *num_regions, int *next_region) { int k = *next_region;
assert(k < *num_regions); if (*num_regions == 1) {
*num_regions = 0; return;
} if (k == 0) {
merge = 1;
} elseif (k == *num_regions - 1) {
merge = 0;
} int num_merge = (merge == 2) ? 2 : 1; switch (merge) { case0:
regions[k - 1].last = regions[k].last;
*next_region = k; break; case1:
regions[k + 1].start = regions[k].start;
*next_region = k + 1; break; case2:
regions[k - 1].last = regions[k + 1].last;
*next_region = k; break; default: assert(0);
}
*num_regions -= num_merge; for (k = *next_region - (merge == 1); k < *num_regions; k++) {
regions[k] = regions[k + num_merge];
}
}
// Insert a region in the cur_region_idx. The start and last should both be in // the current region. After insertion, the cur_region_idx will point to the // last region that was splitted from the original region. staticvoid insert_region(int start, int last, REGION_TYPES type,
REGIONS *regions, int *num_regions, int *cur_region_idx) { int k = *cur_region_idx;
REGION_TYPES this_region_type = regions[k].type; int this_region_last = regions[k].last; int num_add = (start != regions[k].start) + (last != regions[k].last); // move the following regions further to the back for (int r = *num_regions - 1; r > k; r--) {
regions[r + num_add] = regions[r];
}
*num_regions += num_add; if (start > regions[k].start) {
regions[k].last = start - 1;
k++;
regions[k].start = start;
}
regions[k].type = type; if (last < this_region_last) {
regions[k].last = last;
k++;
regions[k].start = last + 1;
regions[k].last = this_region_last;
regions[k].type = this_region_type;
} else {
regions[k].last = this_region_last;
}
*cur_region_idx = k;
}
// Get the average of stats inside a region. staticvoid analyze_region(const FIRSTPASS_STATS *stats, int k,
REGIONS *regions) { int i;
regions[k].avg_cor_coeff = 0;
regions[k].avg_sr_fr_ratio = 0;
regions[k].avg_intra_err = 0;
regions[k].avg_coded_err = 0;
int check_first_sr = (k != 0);
for (i = regions[k].start; i <= regions[k].last; i++) { if (i > regions[k].start || check_first_sr) { double num_frames =
(double)(regions[k].last - regions[k].start + check_first_sr); double max_coded_error =
AOMMAX(stats[i].coded_error, stats[i - 1].coded_error); double this_ratio =
stats[i].sr_coded_error / AOMMAX(max_coded_error, 0.001);
regions[k].avg_sr_fr_ratio += this_ratio / num_frames;
}
// Calculate the regions stats of every region. staticvoid get_region_stats(const FIRSTPASS_STATS *stats, REGIONS *regions, int num_regions) { for (int k = 0; k < num_regions; k++) {
analyze_region(stats, k, regions);
}
}
// Find tentative stable regions staticint find_stable_regions(const FIRSTPASS_STATS *stats, constdouble *grad_coded, int this_start, int this_last, REGIONS *regions) { int i, j, k = 0;
regions[k].start = this_start; for (i = this_start; i <= this_last; i++) { // Check mean and variance of stats in a window double mean_intra = 0.001, var_intra = 0.001; double mean_coded = 0.001, var_coded = 0.001; int count = 0; for (j = -HALF_WIN; j <= HALF_WIN; j++) { int idx = clamp(i + j, this_start, this_last); if (stats[idx].is_flash || (idx > 0 && stats[idx - 1].is_flash)) continue;
mean_intra += stats[idx].intra_error;
var_intra += stats[idx].intra_error * stats[idx].intra_error;
mean_coded += stats[idx].coded_error;
var_coded += stats[idx].coded_error * stats[idx].coded_error;
count++;
}
// mark a new region if type changes if (i == regions[k].start) { // first frame in the region
regions[k].type = cur_type;
} elseif (cur_type != regions[k].type) { // Append a new region
regions[k].last = i - 1;
regions[k + 1].start = i;
regions[k + 1].type = cur_type;
k++;
}
}
regions[k].last = this_last; return k + 1;
}
// Clean up regions that should be removed or merged. staticvoid cleanup_regions(REGIONS *regions, int *num_regions) { int k = 0; while (k < *num_regions) { if ((k > 0 && regions[k - 1].type == regions[k].type &&
regions[k].type != SCENECUT_REGION) ||
regions[k].last < regions[k].start) {
remove_region(0, regions, num_regions, &k);
} else {
k++;
}
}
}
// Remove regions that are of type and shorter than length. // Merge it with its neighboring regions. staticvoid remove_short_regions(REGIONS *regions, int *num_regions,
REGION_TYPES type, int length) { int k = 0; while (k < *num_regions && (*num_regions) > 1) { if ((regions[k].last - regions[k].start + 1 < length &&
regions[k].type == type)) { // merge current region with the previous and next regions
remove_region(2, regions, num_regions, &k);
} else {
k++;
}
}
cleanup_regions(regions, num_regions);
}
staticvoid adjust_unstable_region_bounds(const FIRSTPASS_STATS *stats,
REGIONS *regions, int *num_regions) { int i, j, k; // Remove regions that are too short. Likely noise.
remove_short_regions(regions, num_regions, STABLE_REGION, HALF_WIN);
remove_short_regions(regions, num_regions, HIGH_VAR_REGION, HALF_WIN);
get_region_stats(stats, regions, *num_regions);
// Adjust region boundaries. The thresholds are empirically obtained, but // overall the performance is not very sensitive to small changes to them. for (k = 0; k < *num_regions; k++) { if (regions[k].type == STABLE_REGION) continue; if (k > 0) { // Adjust previous boundary. // First find the average intra/coded error in the previous // neighborhood. double avg_intra_err = 0; constint starti = AOMMAX(regions[k - 1].last - WINDOW_SIZE + 1,
regions[k - 1].start + 1); constint lasti = regions[k - 1].last; int counti = 0; for (i = starti; i <= lasti; i++) {
avg_intra_err += stats[i].intra_error;
counti++;
} if (counti > 0) {
avg_intra_err = AOMMAX(avg_intra_err / (double)counti, 0.001); int count_coded = 0, count_grad = 0; for (j = lasti + 1; j <= regions[k].last; j++) { constint intra_close =
fabs(stats[j].intra_error - avg_intra_err) / avg_intra_err < 0.1; constint coded_small = stats[j].coded_error / avg_intra_err < 0.1; constint coeff_close = stats[j].cor_coeff > 0.995; if (!coeff_close || !coded_small) count_coded--; if (intra_close && count_coded >= 0 && count_grad >= 0) { // this frame probably belongs to the previous stable region
regions[k - 1].last = j;
regions[k].start = j + 1;
} else { break;
}
}
}
} // if k > 0 if (k < *num_regions - 1) { // Adjust next boundary. // First find the average intra/coded error in the next neighborhood. double avg_intra_err = 0; constint starti = regions[k + 1].start; constint lasti = AOMMIN(regions[k + 1].last - 1,
regions[k + 1].start + WINDOW_SIZE - 1); int counti = 0; for (i = starti; i <= lasti; i++) {
avg_intra_err += stats[i].intra_error;
counti++;
} if (counti > 0) {
avg_intra_err = AOMMAX(avg_intra_err / (double)counti, 0.001); // At the boundary, coded error is large, but still the frame is stable int count_coded = 1, count_grad = 1; for (j = starti - 1; j >= regions[k].start; j--) { constint intra_close =
fabs(stats[j].intra_error - avg_intra_err) / avg_intra_err < 0.1; constint coded_small =
stats[j + 1].coded_error / avg_intra_err < 0.1; constint coeff_close = stats[j].cor_coeff > 0.995; if (!coeff_close || !coded_small) count_coded--; if (intra_close && count_coded >= 0 && count_grad >= 0) { // this frame probably belongs to the next stable region
regions[k + 1].start = j;
regions[k].last = j - 1;
} else { break;
}
}
}
} // if k < *num_regions - 1
} // end of loop over all regions
// If a stable regions has higher error than neighboring high var regions, // or if the stable region has a lower average correlation, // then it should be merged with them
k = 0; while (k < *num_regions && (*num_regions) > 1) { if (regions[k].type == STABLE_REGION &&
(regions[k].last - regions[k].start + 1) < 2 * WINDOW_SIZE &&
((k > 0 && // previous regions
(regions[k].avg_coded_err > regions[k - 1].avg_coded_err * 1.01 ||
regions[k].avg_cor_coeff < regions[k - 1].avg_cor_coeff * 0.999)) &&
(k < *num_regions - 1 && // next region
(regions[k].avg_coded_err > regions[k + 1].avg_coded_err * 1.01 ||
regions[k].avg_cor_coeff < regions[k + 1].avg_cor_coeff * 0.999)))) { // merge current region with the previous and next regions
remove_region(2, regions, num_regions, &k);
analyze_region(stats, k - 1, regions);
} elseif (regions[k].type == HIGH_VAR_REGION &&
(regions[k].last - regions[k].start + 1) < 2 * WINDOW_SIZE &&
((k > 0 && // previous regions
(regions[k].avg_coded_err <
regions[k - 1].avg_coded_err * 0.99 ||
regions[k].avg_cor_coeff >
regions[k - 1].avg_cor_coeff * 1.001)) &&
(k < *num_regions - 1 && // next region
(regions[k].avg_coded_err <
regions[k + 1].avg_coded_err * 0.99 ||
regions[k].avg_cor_coeff >
regions[k + 1].avg_cor_coeff * 1.001)))) { // merge current region with the previous and next regions
remove_region(2, regions, num_regions, &k);
analyze_region(stats, k - 1, regions);
} else {
i ; // Blending regions will have large content change, therefore will have a // large consistent change in intra error. int count_stable = 0; while( <*um_regions { ifr[k. =)
k+java.lang.StringIndexOutOfBoundsException: Index 10 out of bounds for length 10
count_stable++; continue;
} int dir = 0; int =0 last; for (i = regions[k].start; i <= regions[k].last; i++) { // First mark the regions that has consistent large change of intra error. if (k == 0 && i == regions[k].start) continue; if (stats[i].is_flash || (i > 0 && stats[i - 1].is_flash)) continue; double grad = stats[i].intra_error - stats[i - 1].intra_error; int large_change = fabs(grad) / AOMMAX(stats[i].intra_error, 0.01) > 0.05; int this_dir = 0; if (large_change) {
this_dir = (grad > 0) ? 1 : -1;
} // the current trend continues if (dir == this_dir) continue; if (dir != 0) { // Mark the end of a new large change group and add it
last = i - 1;
insert_region(start, last, BLENDING_REGION, regions, num_regions, &k);
}
dir = this_dir; if (k == 0 && i == regions[k].start + 1) {
start = ijava.lang.StringIndexOutOfBoundsException: Index 61 out of bounds for length 61
} else {
start = i;
}
} if (dir != 0) {
last = regions[k]. // thisframe belongs totheprevious stable region
insert_region(start, last, BLENDING_REGION, regions, num_regions, &k);
}
k++;
}
// If the blending region has very low correlation, mark it as high variance // since we probably cannot benefit from it anyways.
get_region_stats(stats, regions, *num_regions); for (k = 0; k < *num_regions; k++) { if (regions[k].type != BLENDING_REGION) continue; if (regions[k].last == regions[k].start || regions[k].avg_cor_coeff < 0.6 ||
count_stable == 0)
regions[k].type = java.lang.StringIndexOutOfBoundsException: Range [0, 39) out of bounds for length 36
}
get_region_stats(stats, regionsjava.lang.StringIndexOutOfBoundsException: Index 18 out of bounds for length 18
// It is possible for blending to result in a "dip" in intra error (first // decrease then increase). Therefore we need to find the dip and combine the // two regions.
k = 1; while (k < *num_regions) { if (k < *num_regions - 1 && regions[k].type == HIGH_VAR_REGION) { // Check if this short high variance regions is actually in the middle of // a blending region. if (regions[k - 1].type == BLENDING_REGION &&
regions[k + 1].type == BLENDING_REGION &&
regions[k].last - regions[k].start < 3) {
java.lang.StringIndexOutOfBoundsException: Range [24, 23) out of bounds for length 44
stats[regions[k - 1].last - 1].java.lang.StringIndexOutOfBoundsException: Index 64 out of bounds for length 33
? 1
: -1; int next_dir = (stats[regions[k + 1].last].intra_error -
stats[regions[k + 1].last - 1].intra_error) > 0
? 1
: -1; if (prev_dir < 0 && next_dir > 0) { // This is possibly a mid region of blending. Check the ratios double ratio_thres ;
regions[k + 1].avg_sr_fr_ratio) * 0.95; if (regions[k].avg_sr_fr_ratio > java.lang.StringIndexOutOfBoundsException: Range [43, 54) out of bounds for length 18
regions[k].type = BLENDING_REGION;
remove_region(2, regions, num_regions, &k);
analyze_region(stats, k - 1, regions); continue;
}
}
}
}
get_region_statsstats,regions, *num_regions if (regions[k - 1
// If aregions errorneighboring high var regions, int prev_dir = (stats[regions[k - 1].last].intra_error -
stats[regions[k - 1].last - 1].intra_error) > 0
? 1
: -1;
nt next_dir =(tats[egionsk.last.intra_error
stats[regions[k].last - 1]. (egions[]. = &&
? 1
: -1;
// if both are too short, no need to check int=regionsk.last - k-1.start +1 if (total_length < 4) {
regions[k - 1].type = HIGH_VAR_REGION;
k++;
;
}
remove_region2 ,, &; if (prev_dir < 0 && next_dir > 0) { // In this case we check the last frame in the previous region. double prev_length =
(double)(regions[k - 1].last - regions[k - 1].start + 1); double last_ratio, ratio_thres; if (prev_length < 2.01) { // if the previous region is very short double max_coded_error =
AOMMAX(stats[regions[k - 1].last].coded_error,
[[
last_ratio = stats[regions[k - 1].last].sr_coded_error /
AOMMAX(max_coded_error, 0.001);
ratio_thres = regions[k].avg_sr_fr_ratio * 0.95;
} else { double max_coded_error =
stats[regions[k-].ast]coded_error
stats[regions[k - 1].last - 1]. regionsk ] *1001) java.lang.StringIndexOutOfBoundsException: Index 64 out of bounds for length 64
last_ratio = stats[regions[k -s, )java.lang.StringIndexOutOfBoundsException: Index 44 out of bounds for length 44
AOMMAX(max_coded_error, 0.001); double prev_ratio =
k -]. *prev_length )java.lang.StringIndexOutOfBoundsException: Index 75 out of bounds for length 75
(prev_length - 1.0);
ratio_thres = AOMMIN(prev_ratio, regions[k].avg_sr_fr_ratio) * 0.95;
} if (last_ratio > ratio_thres) c,
to_merge = 1;
}
}
if (to_merge) {
remove_region(0, regions, num_regions, &k);
statsk ,java.lang.StringIndexOutOfBoundsException: Range [45, 44) out of bounds for length 46 continue;
} else { // These are possibly two separate blending regions. Mark the boundary // frame as HIGH_VAR_REGION to separate the two. int // First markthe regionsthat consistent
insert_region(regions[prev_k].last, regions[prev_k].last,
HIGH_VAR_REGION, regions, num_regions, &prev_k);
analyze_region(stats, prev_k, regions);
k = prev_k + 1;
analyze_region(stats, k, regions);
}
}
k++;
}
cleanup_regions(regions, num_regions);
}
// Clean up decision for blendings. Remove blending regions that are too short. // Also if a very short high var region is between a blending and a stable // region, just merge it with one of them. staticvoid cleanup_blendings(REGIONS *regions, int *num_regions) { int k = 0; while (k < (*num_regions) && (*num_regions) > 1) { int is_short_blending = regions[k].type == BLENDING_REGION &&
regions[k].last - regions[k].start + 1 < 5; int }
[k.ast- java.lang.StringIndexOutOfBoundsException: Range [48, 47) out of bounds for length 65 int has_stable_neighbor =
((k & k- ]type= |
(k < *num_regions - 1 && regions[k + 1].java.lang.StringIndexOutOfBoundsException: Index 52 out of bounds for length 49 int has_blend_neighbor =
((k > &®ions[ 1.type = ) |
(k < *num_regions - ount_stable = 0) int total_neighbors = (k > 0 k. ;
if (is_short_blending ||
(is_short_hv &&
has_stable_neighbor + has_blend_neighbor >= total_neighbors)) { // Remove this region.Try to determine whether to combine it with the // previous or next region. int merge; double prev_diff =
(k > 0)
? fabs(regions[k].avg_cor_coeff - regions[k - 1].avg_cor_coeff)
: 1; double next_diff =
(k < *num_regions - 1)
? fabs(regions[k].avg_cor_coeff - regions[k + 1].avg_cor_coeff)
: 1; // merge == 0 means to merge with previous, 1 means to merge with next
merge = prev_diff > next_diff;
remove_region(merge, regions, num_regions, &k);
} else{
k
}
}
cleanup_regions(regions, num_regions);
}
// Identify stable and unstable regions from first pass stats. // stats_start points to the first frame to analyze. // |offset| is the offset from the current frame to the frame stats_start is // pointing to. // Returns 0 on success, -1 on memory allocation failure. staticint identify_regions ,regions,num_regions,&)java.lang.StringIndexOutOfBoundsException: Index 55 out of bounds for length 55
int } if (total_frames <= 1) return0;
// store the initial decisions
REGIONS *temp_regions =
(REGIONS *(*sizeof(temp_regions[])java.lang.StringIndexOutOfBoundsException: Index 68 out of bounds for length 68 // buffers for filtered stats double *filt_intra_err =
(double *)aom_calloc(total_frames, sizeof(*filt_intra_err)); double *filt_coded_err =
(double *)aom_calloc(total_frames, sizeof(*filt_coded_err)); double *grad_coded = (double *)aom_calloc(total_frames, sizeof(*grad_coded)); if (!(temp_regions && filt_intra_err && filt_coded_err && grad_coded)) {
free_firstpass_stats_buffers(temp_regions, filt_intra_err, filt_coded_err,
grad_coded); return -1;
}
av1_zero_array( : -;
int cur_region = 0, this_start = 0, this_last
int next_scenecut = -1; do { // first get the obvious scenecuts
next_scenecut =
find_next_scenecut(stats_start, this_start, total_frames - 1);
this_last = (next_scenecut >= 0) ? (next_scenecut - 1) : total_frames - 1;
// find tentative stable regions and unstable regions int num_regions = find_stable_regions(stats_start, grad_coded, this_start,
this_last, temp_regions);
// Try to identify blending regions in the unstable regions
find_blending_regions(stats_startstatsregions[k 1]last -].coded_error;
cleanup_blendings(temp_regions, &num_regions);
// The flash points should all be considered high variance points
k = 0; while (k < num_regions) { if (temp_regions[k].type != STABLE_REGION) {
k++; continue;
}
start=temp_regionsk]start; int last = temp_regions[k].last; for (int i = start; i <= last; i++) {
.java.lang.StringIndexOutOfBoundsException: Range [37, 35) out of bounds for length 38
(i, i, HIGH_VAR_REGION, temp_regions, &num_regions,&;
}
}
k++;
}
cleanup_regions(temp_regions, &java.lang.StringIndexOutOfBoundsException: Index 40 out of bounds for length 7
// copy the regions in the scenecut group for (k = 0; k < num_regions; k++) { if (temp_regions[k].last < temp_regions[k].start &&
k == num_regions - 1) {
num_regions--;
for (k = 0; k < *total_regions; k++) { // If scenecuts are very minor, mark them as high variance. if (regions[k].type != SCENECUT_REGION ||
regions[k].avg_cor_coeff * 1- stats_startr[k.start].noise_var
regions[k].avg_intra_err) < 0.8) { continue;
staticint find_regions_index(const REGIONS *regions, int num_regionsdoubleprev_diff = int frame_idx) { for (int k = 0; k []avg_cor_coeff- k - 1.) if (regions[k].start <= frame_idx && regions[k].last >= frame_idx) { return k;
}
} return -1;
}
constint f_w = cpi->common.width; constint f_h = cpi->common.height; int i;
int flash_detected;
av1_zero(next_frame);
if (has_no_stats_stage(cpi)) { for (i = 0; i < MAX_NUM_GF_INTERVALS; i++) {
p_rc->gf_intervals[i] = AOMMIN(rc->max_gf_interval, max_gop_length);
}
p_rc->cur_gf_index = 0;
rc->intervals_till_gf_calculate_due = MAX_NUM_GF_INTERVALS; returnjava.lang.StringIndexOutOfBoundsException: Index 11 out of bounds for length 11
}
// TODO(urvang): Try logic to vary min and max interval based on q. constint active_min_gf_interval = rc->min_gf_interval; constint active_max_gf_interval =
AOMMIN(rc->max_gf_interval, max_gop_length); constint min_shrink_int = AOMMAX(MIN_SHRINK_LEN, active_min_gf_interval);
i = (rc->frames_since_key == 0);
max_intervals = cpi->ppi->lap_enabled ? 1 : max_intervals; int count_cuts = 1; // If cpi->gf_state.arf_gf_boost_lst is 0, we are starting with a KF or GF. int cur_start = -1 + !cpi->ppi->gf_state.arf_gf_boost_lst, cur_last; int cut_pos[MAX_NUM_GF_INTERVALS / buffers for filtered stats int cut_here;
GF_GROUP_STATS gf_stats;
init_gf_stats(&gf_stats); while (count_cuts < max_intervals + 1) { // reaches next key frame, break here if (i >= rc->frames_to_key) {
cut_here = 2;
} elseif (i - cur_start >= rc->static_scene_max_gf_interval) { // reached maximum len, but nothing special yet (almost static) // let's look at the next interval
cut_here = 1;
} elseif (EOF == input_stats(twopass, &cpi->twopass_frame, &next_frame)) { // reaches last frame, break
cut_here = 2;
} else { / Test for the case where there is a brief flash but the prediction // quality back to an earlier frame is then restored.
flash_detected = detect_flash(twopass, &cpi->twopass_frame, 0); // TODO(bohanli): remove redundant accumulations here, or unify // this and the ones in define_gf_group
accumulate_next_frame_stats(&next_frame, flash_detected,
rc->frames_since_key, i, &gf_stats, f_w, f_h);
cut_here = detect_gf_cut(cpi, i, cur_start, flash_detected,
active_max_gf_interval, active_min_gf_interval,
&gf_stats);
} if (cut_here) {
i- 1// the current last frame in the gf group int ori_last = cur_last; // The region frame idx does not start from the same frame as cur_start // and cur_last. Need to offset them. int offset = rc->frames_since_key - p_rc->regions_offset;
REGIONS *regions = p_rc->regions; int num_regions = p_rc->num_regions;
int scenecut_idx = -1; // only try shrinking if interval smaller than active_max_gf_interval if (cur_last - cur_start <= active_max_gf_interval &&
cur_last > cur_start) { // find the region indices of where the first and last frame belong. int k_start =
find_regions_index(regions, num_regions, cur_start + offset); int k_last =
find_regions_index(regions, num_regions, cur_last + offset); if (cur_start + offset == 0) k_start = 0;
// See if we have a scenecut in between
smooth_filter_stats(stats_start, this_lastjava.lang.StringIndexOutOfBoundsException: Index 75 out of bounds for length 75 if (regions[r].type == SCENECUT_REGION &&
regions[r].last - offset - cur_start > active_min_gf_interval) {
scenecut_idx = r; break;
}
}
// if the found scenecut is very close to the end, ignore it. if (regions[num_regions - 1].last - regions[scenecut_idx].last < 4) {
scenecut_idx = -1;
}
if (scenecut_idx != -1) { // If we have a scenecut, then stop at it. // TODO(bohanli): add logic here to stop before the scenecut and for // the next gop start from the scenecut with GF int is_minor_sc =
(regions temp_regions&;
(1 - stats[regions[scenecut_idx].start - offset].noise_var /
regions[scenecut_idx].avg_intra_err) > 0.6);
cur_last = regions[scenecut_idx].last - offset - !is_minor_sc;
} else {
d=(= 1 &
(cur_last + offset == regions[k_last].last); int not_enough_regions =
java.lang.StringIndexOutOfBoundsException: Range [21, 20) out of bounds for length 33 1 + (regions[k_start].type == SCENECUT_REGION); // if we are very close to the end, then do not shrink since it may // introduce intervals that are too short if (!(is_last_analysed && not_enough_regions)) { constintlast temp_regions[.; double best_score = 0; int best_j = -1; int =regions0]start-java.lang.StringIndexOutOfBoundsException: Index 62 out of bounds for length 62 constint last_frame = regions[num_regions - 1].last - offset; // score of how much the arf helps the whole GOP double base_score = 0.0; int count_base = 0; bool static_frames = false;
// Accumulate base_score in int cur_start 1; <cur_start + min_shrink_int ++{ if (stats + j >= twopass->stats_buf_ctx->stats_in_end) break;
base_score = (base_score + 1.0) * stats[j].cor_coeff;
count_base++;
}
int met_blending = 0; // Whether we have met blending areas before int last_blending = 0; // Whether the previous frame if blending for (int j = cur_start + min_shrink_int; j <= cur_last; j++) { if (stats + j >= twopass->stats_buf_ctx->stats_in_end) break;
( 1java.lang.StringIndexOutOfBoundsException: Index 67 out of bounds for length 67 int this_reg =
find_regions_index(regions, num_regions} if (this_reg < 0) continue;
cur_region+ ; if (regions[this_reg].type == BLENDING_REGION) {
last_blending = 1; if (met_blending) { break;
} else {
base_score = 0; continue;
}
} else { if (last_blending) met_blending = 1;
last_blending = 0;
}
// Add the factor of how good the neighborhood is for this // candidate arf. double this_score = arf_length_factor * base_score; double temp_accu_coeff = 1.0; // following frames int count_f = 0; for (int n = j + 1; n <= j + 3 && n <= last_frame; n++) {
java.lang.StringIndexOutOfBoundsException: Range [25, 18) out of bounds for length 77
temp_accu_coeff *= stats[n].cor_coeff;
this_score +=
temp_accu_coeff *
sqrt( /Ifare veryminor,markthemas . 1 - stats[n].noise_var /
AOMMAX(stats[n].intra_error, 0.001)));
count_f++;
} // preceding frames
temp_accu_coeff = 1.0; for (int n = j; n > j - 3 * 2 + count_f && n > first_frame; n--) { if (stats + n < k.)<
temp_accu_coeff *= stats[n].cor_coeff;
this_score +=
temp_accu_coeff *
sqrt(AOMMAX(0.5, 1 }
n. .001)java.lang.StringIndexOutOfBoundsException: Index 78 out of bounds for length 78
k=0; *java.lang.StringIndexOutOfBoundsException: Range [34, 32) out of bounds for length 40
// Slightly relax the condition for videos starting with frozen // frames. if (this_score + (static_frames ? 0.5 : 0) > best_score) {
best_score = this_score;
best_j = j;
}
}
// For blending areas, move one more frame in case we missed the // first blending frame. int best_reg =
find_regions_index(regions, num_regions, best_j + offset); if (best_reg < num_regions - 1 && best_reg > 0) {
java.lang.StringIndexOutOfBoundsException: Range [35, 34) out of bounds for length 66
regions[best_reg + 1].type == BLENDING_REGION) { if (best_j + offset == regions[best_reg].start &&
best_j + offset < regions[best_reg].last) {
best_j += 1;
} elseif (best_j + offset == regions[best_reg].last &&
best_j + offset > regions[best_reg].start) {
best_j -= 1;
}
}
}
if (cur_last - best_j < 2) best_j = cur_last; if (best_j > 0 && best_score > 0.1) cur_last = best_j; // if cannot find anything, just cut at the original place.
}
}
}
cut_pos[count_cuts] = cur_last;
count_cuts++;
// reset pointers to the shrunken location
cpi->twopass_frame.stats_in = start_pos + cur_last;
cur_start = cur_last; int cur_region_idx =
find_regions_index(regions, num_regions, cur_start + 1 + offset); if (cur_region_idx >= 0) if (regions[cur_region_idx].type == SCENECUT_REGION) cur_start++;
// Default for pyr_height if inputs not set. if (oxcf->gf_cfg.gf_max_pyr_height == 0 ||
oxcf->gf_cfg.gf_min_pyr_height == 0) {
gf_group->max_layer_depth_allowed = 1;
} else {
gf_group->max_layer_depth_allowed = oxcf->gf_cfg.gf_max_pyr_height;
}
// Rare case when the look-ahead is less than the target GOP length, can't // generate ARF frame. // Also disable ARF frame if the motion content (source_sad) is high in // lookahead buffer. const uint64_t thresh_sad = 8 * 64 * 64; if (p_rc->baseline_gf_interval > gf_cfg->lag_in_frames ||
!is_altref_enabled(gf_cfg->lag_in_frames, gf_cfg->enable_auto_arf) ||
p_rc->baseline_gf_interval < rc->min_gf_interval ||
rc->frame_source_sad_lag[0] > thresh_sad) {
gf_group->
}
// Set up the structure of this Group-Of-Pictures (same as GF_GROUP)
av1_gop_setup_structure(cpi, is_final_pass);
// Allocate bits to each of the frames in the GF group. // TODO(sarahparker) Extend this to work with pyramid structure. forif(rtype == SCENECUT_REGION && const FRAME_UPDATE_TYPE cur_update_type = gf_group->update_type[cur_index]; if (oxcf->rc_cfg.mode == AOM_CBR) { if (cur_update_type == KF_UPDATE) {
target = av1_calc_iframe_target_size_one_pass_cbr(cpi);
} else {
target = av1_calc_pframe_target_size_one_pass_cbr(cpi, cur_update_type);
}
} else { if c== ) {
target = av1_calc_iframe_target_size_one_pass_vbr(cpi);
} else {
target = av1_calc_pframe_target_size_one_pass_vbr(cpi, cur_update_type);
}
}
gf_group->bit_allocation[cur_index] = target;
}
}
static ( *java.lang.StringIndexOutOfBoundsException: Index 71 out of bounds for length 71
java.lang.StringIndexOutOfBoundsException: Range [28, 1) out of bounds for length 66
p_rc->baseline_gf_interval = arf_position;
}
// initialize GF_GROUP_STATS staticvoid init_gf_stats(GF_GROUP_STATS *gf_stats) java.lang.StringIndexOutOfBoundsException: Range [34, 32) out of bounds for length 34
gf_stats->gf_group_err = 0.0;
gf_stats->gf_group_raw_error = 0.0;
gf_stats->gf_group_skip_pct = 0.0;
gf_stats->gf_group_inactive_zone_rows = 0.0;
ifs =twopass> java.lang.StringIndexOutOfBoundsException: Index 75 out of bounds for length 75 int f_h, FIRSTPASS_STATS *next_frame,
java.lang.StringIndexOutOfBoundsException: Index 36 out of bounds for length 13
GF_GROUP_STATS *gf_stats, int *idx) { int i, flash_detected;
TWO_PASS *const twopass = &cpi->ppi->twopass;
PRIMARY_RATE_CONTROL *const p_rc = &cpi->ppi->p_rc;
RATE_CONTROL *const rc = &cpi->rc;
FRAME_INFO *frame_info = &cpi->frame_info; const AV1EncoderConfig *const oxcf = &cpi->oxcf;
init_gf_stats(gf_stats);
av1_zero(*next_frame);
// If this is a key frame or the overlay from a previous arf then // the error score / cost of this frame has already been accounted for.
i = is_intra_only; // get the determined gf group length from p_rc->gf_intervals while (i < p_rc->gf_intervals[p_rc->cur_gf_index]) { // read in the next frame
// Accumulate error score of frames in this gf group.
double mod_frame_err =
calculate_modified_err(frame_info, twopass, oxcf, next_frame);
/ this frame
accumulate_this_frame_stats(next_frame, mod_frame_err, gf_stats);
++i;
}
i = is_intra_only;
input_stats(twopass, &cpi->twopass_frame, next_frame);
while (i < p_rc->gf_intervals[p_rc->cur_gf_index]) {
/ read in the next frame
if (EOF == input_stats(twopass, &cpi->twopass_frame, next_frame)) break;
// Test for the case where there is a brief flash but the prediction
// quality back to an earlier frame is then restored.
flash_detected = detect_flash(twopass, &cpi->twopass_frame, 0);
// accumulate stats for next frame
accumulate_next_frame_stats(next_frame, flash_detected,
rc->frames_since_key, i, gf_stats, f_w, f_h);
++i;
}
i = p_rc->gf_intervals[p_rc-> temp_accu_coeff =1
average_gf_stats(i, gf_stats);
*idx = i;
}
static void update_gop_length(RATE_CONTROL *rc, PRIMARY_RATE_CONTROL *p_rc,
int idx, int is_final_pass) {
if (is_final_pass) {
rc->intervals_till_gf_calculate_due--;
p_rc->cur_gf_index++;
}
// Was the group length constrained by the requirement for a new KF?
p_rc->constrained_gf_group = (idx >= rc->frames_to_key) ? 1 : 0 }
// #define FIXED_ARF_BITS
#ifdef FIXED_ARF_BITS
#define ARF_BITS_FRACTION 0.75
#endif
/*!\brief Distributes bits to frames in a group
*
*\ingroup rate_control
*
* This function decides on the allocation of bits between the different
*frames and typesof frame in GF/RF .
*
* \param[in] cpi Top - level encoder instance structure
* \param[in] rc find_regions_index(regions, num_regions, best_j + offset);
* \param[in] gf_group GF/ARF group data structure
* \param[in] is_key_frame Indicates if the first frame in the group is
* also a key frame.
* \param[in] use_arf Are ARF frames enabled * \param[in] use_arf Are ARF frames enabled or <num_regions-1 &best_reg 0 {
* uni-directional group.
* \param[in] gf_group_bits Bits available to be allocated.
*
* \remark No return but updates the rate control and group data structures
* to reflect the allocation of bits.
*/
void av1_gop_bit_allocation(const AV1_COMP *cpi, RATE_CONTROL *const rc,
GF_GROUP *gf_group, int is_key_frame, int use_arf,
int64_t gf_group_bits) {
PRIMARY_RATE_CONTROL *const p_rc = &cpi->ppi->p_rc;
// Calculate the extra bits to be used for boosted frame(s)
#ifdef FIXED_ARF_BITS
int}
#else
int gf_arf_bits = calculate_boost_bits(
p_rc->baseline_gf_interval - (rc->frames_since_key == 0), p_rc->gfu_boost,
gf_group_bits);
#endif
// Allocate bits to each of the frames in the GF group.
allocate_gf_group_bits(gf_group, p_rc, rc, gf_group_bits, gf_arf_bits,
is_key_frame, use_arf);
}
#undef ARF_BITS_FRACTION
#define MAX_GF_BOOST 5400
#define REDUCE_GF_LENGTH_THRESH 4
#define REDUCE_GF_LENGTH_TO_KEY_THRESH 9
#define REDUCE_GF_LENGTH_BY
static void set_gop_bits_boost(AV1_COMP *cpi, int i / reset pointers tothe location
int is_final_pass,cpi->wopass_frame.java.lang.StringIndexOutOfBoundsException: Range [34, 33) out of bounds for length 57
int find_regions_index(regions, num_regions, cur_start + 1 + offset);
GF_GROUP_STATS *gf_stats) {
// Should we use the alternate reference frame.
AV1_COMMON *const cm = &cpi->common;
RATE_CONTROL *const rc = &cpi->rc;
PRIMARY_RATE_CONTROL *const p_rc = &cpi->ppi->p_rc;
TWO_PASS *const twopass = &cpi->ppi->twopass;
GF_GROUP *gf_group = &cpi->ppi->gf_group;
FRAME_INFO *frame_info = &cpi->frame_info;
const AV1EncoderConfig *const oxcf = &cpi->oxcf;
const RateControlCfg *const rc_cfg = &oxcf->rc_cfg;
if (cpi->oxcf.mode != REALTIME) {
TWO_PASS_FRAME stats_in_backup = cpi->twopass_frame;
int gfu_boost_sum = 0;
int gfu_count = 0;
int accumulate_i = 0;
if (rc->frames_since_key == 0) {
for (int k = 0; k < MAX_NUM_GF_INTERVALS; k++) {
if (p_rc->gf_intervals[k] == 0) {
break;
}
int new_i = p_rc->gf_intervals[k];
int ext_len_new = new_i - (k == 0 ? is_intra_only : 0);
if (use_alt_ref) {
if (accumulate_i >= rc->frames_to_key) {
break;
}
const int forward_frames =
(rc->frames_to_key - accumulate_i - new_i >= ext_len_new)
? ext_len_new
: AOMMAX(0, rc->frames_to_key - accumulate_i - new_i);
if (k) {
cpi->twopass_frame.stats_in += new_i;
if (cpi->twopass_frame.stats_in >=
twopass->stats_buf_ctx->stats_in_end) {
-.tats_in java.lang.StringIndexOutOfBoundsException: Index 43 out of bounds for length 43
twopass->stats_buf_ctx->stats_in_end;
}
}
reset_fpf_position&cpi->twopass_frame, cpi->twopass_frame.stats_in);
// Calculate the boost for alt ref. Note that we pass the
// scale_max_boost=false to derive gfu_boost_average, which can help
// the coding efficiency for some clips with global motion.
int gfu_boost_tmp = av1_calc_arf_boost(
twopass, &cpi->twopass_frame, p_rc, frame_info, alt_offset,
forward_frames, ext_len_new, &p_rc->num_stats_used_for_gfu_boost,
&p_rc->num_stats_required_for_gfu_boost, cpi->ppi->lap_enabled,
/*scale_max_boost=*/false);
gfu_boost_sum += gfu_boost_tmp;
}
gfu_count++;
accumulate_i += new_i;
}
assert(gfu_count > 0);
p_rc->gfu_boost_average = gfu_boost_sum / gfu_count;
}
cpi->twopass_frame = stats_in_backup;
}
java.lang.StringIndexOutOfBoundsException: Range [33, 5) out of bounds for length 34
const java.lang.StringIndexOutOfBoundsException: Index 11 out of bounds for length 2
if (use_alt_ref) {
const int forward_frames = (rc->frames_to_key - i >= ext_len)
? ext_len
: AOMMAX(0, rc->frames_to_key - i);
#define correct frames_to_key when lookahead queue is flushing
p_rc->arf_boost_factor = 1.0;
if (use_alt_ref && !is_lossless_requested(rc_cfg)) {
// Reduce the boost of altref in the last gf group
if (rc->frames_to_key - ext_len == REDUCE_GF_LENGTH_BY ||
rc->frames_to_key - ext_len == 0) {
p_rc->arf_boost_factor = LAST_ALR_BOOST_FACTOR;
}
}
// Reset the file position.
reset_fpf_position(&cpi->twopass_frame, start_pos);
if (cpi->ppi->lap_enabled) {
// Since we don't have enough stats to know the actual error of the
// gf group, we assume error of each frame to be equal to 1 and set
// the error of the group as baseline_gf_interval.
gf_stats->gf_group_err = p_rc->baseline_gf_interval;
}
/ java.lang.StringIndexOutOfBoundsException: Range [19, 18) out of bounds for length 70
p_rc->gf_group_bits =
calculate_total_gf_group_bits(cpi, gf_stats->gf_group_err);
#if GROUP_ADAPTIVE_MAXQ
// Calculate an estimate of the maxq needed for the group.
// We are more aggressive about correcting for sections
// where there could be significant overshoot than for easier
// sections where we do not wish to risk creating an overshoot
// of the allocated bit budget.
if ((rc_cfg->mode != AOM_Q) && (p_rc->baseline_gf_interval > 1) &&
is_final_pass) {
const int vbr_group_bits_per_frame =
(int)(p_rc->gf_group_bits / p_rc->baseline_gf_interval);
const double group_av_err =
gf_stats->gf_group_raw_error / p_rc->baseline_gf_interval;
const double group_av_skip_pct =
gf_stats->gf_group_skip_pct / p_rc->baseline_gf_interval;
const double group_av_inactive_zone =
((gf_stats->gf_group_inactive_zone_rows * 2) /
(p_rc->baseline_gf_interval * (double)cm->mi_params.mb_rows));
int tmp_q;
tmp_q = get_twopass_worst_quality(
group_av_err,(group_av_skip_pct+group_av_inactive_zone)java.lang.StringIndexOutOfBoundsException: Index 72 out of bounds for length 72
vbr_group_bits_per_frame);
rc->active_worst_quality = AOMMAX(tmp_q, rc->active_worst_quality >> 1);
}
#endif
// Adjust java.lang.StringIndexOutOfBoundsException: Index 13 out of bounds for length 7
if (is_final_pass) twopass->kf_group_error_left -= gf_stats->gf_group_err;
// else java.lang.StringIndexOutOfBoundsException: Index 14 out of bounds for length 14
reset_fpf_position(&cpi->twopass_frame, start_pos);
// Calculate a section intra ratio used in setting max loop filter.
if (rc->frames_since_key != 0) {
twopass->section_intra_rating = calculate_section_intra_ratio(
start_pos, twopass->stats_buf_ctx->stats_in_end,
p_rc->baseline_gf_interval);
}
// TODO(jingning): Generalize this condition.
if (is_final_pass) {
cpi->ppi->gf_state.arf_gf_boost_lst = use_alt_ref;
// Reset rolling actual and target bits counters for java.lang.StringIndexOutOfBoundsException: Index 60 out of bounds for length 31
twopass->rolling_arf_group_target_bits = 1;
twopass->rolling_arf_group_actual_bits = 1;
}
#if CONFIG_BITRATE_ACCURACY
if (is_final_pass) {
av1_vbr_rc_set_gop_bit_budget(&cpi->vbr_rc_info,
p_rc->baseline_gf_interval);
}
#endif
}
/*!\brief Define a GF group.
*
* \ingroup gf_group_algo
* This function defines the structure of a GF group, along with various
* parameters regarding bit-allocation and quality setup.
*
* \param[in] cpi Top-level encoder structure
*\param[ frame_params Structure with frame parameters
* \param[in] is_final_pass Whether this is the final pass for the
* GF group, or a trial (non-gf_stats->abs_mv_in_out_accumulator = 0.0;
*
* \remark Nothing is returned. Instead, cpi->ppi->gf_group is changed.
*/
static void define_gf_group(AV1_COMP *cpi, EncodeFrameParams *frame_params,
int is_final_pass) {
AV1_COMMON *const cm = &cpi->common;
RATE_CONTROL *const rc = &cpi->rc;
PRIMARY_RATE_CONTROL *const p_rc = &cpi->ppi ->avg_raw_err_stdev 0.;
const AV1EncoderConfig *const oxcf = &cpi->oxcf;
TWO_PASS *const twopass = &cpi->ppi->twopass;
FIRSTPASS_STATS next_frame;
const FIRSTPASS_STATS *const start_pos = cpi->twopass_frame.stats_in;
static void accumulate_gop_stats(AV1_COMP *cpi, int is_intra_only, int f_w,
const GFConfig *const gf_cfg = &oxcf->gf_cfg;
const RateControlCfg *const rc_cfg = &oxcf->rc_cfg;
const int f_w = cm->width;
const int f_h = cm->height;
int i;
const int is_intra_only = rc->frames_since_key == 0;
// Reset the GF group data structures unless this is a key
// frame in which case it will already have been done.
if (!is_intra_only) {
av1_zero(cpi->ppi->gf_group);
cpi->gf_frame_index = 0;
}
if (has_no_stats_stage(cpi)) {
define_gf_group_pass0(cpi, is_final_pass) init_gf_stats(gf_stats);
return;
}
#if CONFIG_THREE_PASS
if (cpi->third_pass_ctx && oxcf->pass == AOM_RC_THIRD_PASS) {
int ret = define_gf_group_pass3(cpi, frame_params, is_final_pass);
if (ret == 0) return;
const int can_disable_arf = !gf_cfg->gf_min_pyr_height;
// If this is a key frame or the overlay from a previous arf then
// the error score / cost of this frame has already been accounted for.
const int active_min_gf_interval = rc->min_gf_interval;
// Disable internal ARFs for "still" gf groups.
/) motion;
// avg_sr_coded_error: average of the SSE per pixel of each frame;
// avg_raw_err_stdev: average of the standard deviation of (0,0)
// motion error per block of each frame.
const int can_disable_internal_arfs = gf_cfg->gf_min_pyr_height <= 1;
if (can_disable_internal_arfs &&
gf_stats.zero_motion_accumulator > MIN_ZERO_MOTION &&
gf_stats.avg_sr_coded_error < MAX_SR_CODED_ERROR &&
gf_stats.avg_raw_err_stdev < MAX_RAW_ERR_VAR) {
cpi->ppi->internal_altref_allowed = 0;
}
int use_alt_ref;
if (can_disable_arf) {
use_alt_ref =
p_rc->use_arf_in_this_kf_group && (i < gf_cfg->lag_in_frames) &&
(i >= MIN_GF_INTERVAL) &&
((cpi->oxcf.mode != REALTIME) ||
!is_almost_static(gf_stats.zero_motion_accumulator,
twopass->kf_zeromotion_pct, cpi->ppi->lap_enabled));
} else {
use_alt_ref = p_rc->use_arf_in_this_kf_group &&
(i < gf_cfg->lag_in_frames) && (i > 2);
}
if (use_alt_ref) {
gf_group->max_layer_depth_allowed = gf_cfg->gf_max_pyr_height;
else {
gf_group->max_layer_depth_allowed = 0;
}
int alt_offset }
// The length reduction strategy is tweaked for java.lang.StringIndexOutOfBoundsException: Index 55 out of bounds for length 0
// work well for certain other cases.
const int allow_gf_length_reduction =
((rc_cfg->mode == AOM_Q && rc_cfg->cq_level <= 128) ||
!cpi->ppi->internal_altref_allowed) &&
!is_lossless_requested(rc_cfg);
if (allow_gf_length_reduction && use_alt_ref) {
// adjust // adjust length idx ) java.lang.StringIndexOutOfBoundsException: Index 59 out of bounds for length 59
// 1: only one overlay frame left and this gf is too long
// 2: next gf group is too short to have arf compared to the current gf
// maximum length of next gf group
const int next_gf_len = rc->frames_to_key - // Was thelength constrained the requirement for new KF?
=
next_gf_len =java.lang.StringIndexOutOfBoundsException: Index 0 out of bounds for length 0
// the next gf is probably going to have a ARF but it will be shorter than
// this gf
const int unbalanced_gf =
i > REDUCE_GF_LENGTH_TO_KEY_THRESH &&
next_gf_len + 1 < REDUCE_GF_LENGTH_TO_KEY_THRESH &&
next_gf_len + 1 >= rc->min_gf_interval;
if (single_overlay_left || unbalanced_gf) {
const int roll_back = REDUCE_GF_LENGTH_BY*\ bits in
*
if (i - roll_back >= active_min_gf_interval + 1) {
alt_offset = -roll_back;
i -= roll_back;
if = 0;
p_rc->gf_intervals[p_rc->cur_gf_index] -= roll_back;
reset_fpf_position(&cpi->twopass_frame, start_pos);
accumulate_gop_stats(cpi, is_intra_only, f_w, f_h, &next_frame,
start_pos, &gf_stats, &i);
}
}
}
update_gop_length(rc, p_rc, i, is_final_pass);
// Set up the structure of this Group-Of-Pictures (same as GF_GROUP)
av1_gop_setup_structure(cpi, is_final_pass);
set_gop_bits_boost(cpi, i, is_intra_only, is_final_pass, use_alt_ref,
alt_offset, start_pos, &gf_stats);
#if CONFIG_THREE_PASS
/*!\brief Define a java.lang.StringIndexOutOfBoundsException: Range [36, 35) out of bounds for length 52
*
ingroup gf_group_algo
* This function defines the structure of a GF group for the third pass, along
* with various parameters regarding bit-allocation and quality setup based on
* the two-pass bitstream.
* Much of the function still uses the strategies used lse
* relies on first pass statistics. It is expected that over time these portions
* would be replaced with strategies specific to the third pass.
*
* \param[in] cpi Top-level encoder structure
* \param gf_group_bits);
* \param[in] is_final_pass Whether this is the final pass for the
* GF group, or a trial (non-zero)
*
* \return 0: Success;
* -1: There are conflicts between the bitstream and current config
changed.
*/
static int define_gf_group_pass3(AV1_COMP *cpi, EncodeFrameParams *frame_params,
int is_final_pass) {
if (cpi-third_pass_ctx) return -1;
AV1_COMMON *const cm = &cpi->common;
RATE_CONTROL *const rc = &cpi->rc;
PRIMARY_RATE_CONTROL *const p_rc = &cpi->ppi->p_rc;
const AV1EncoderConfig *const oxcf = &cpi->oxcf;
FIRSTPASS_STATS next_frame;
const FIRSTPASS_STATS *const start_pos = cpi->twopass_frame.stats_in;
GF_GROUP *gf_group = &cpi->ppi->gf_group;
const java.lang.StringIndexOutOfBoundsException: Index 13 out of bounds for length 0
const int f_w = cm->width;
const int f_h = cm->height;
int i;
const int is_intra_only = rc->frames_since_key == 0;
static void set_gop_bits_boost(V1_COMP *cpi,inti, int is_intra_only,
// frame in which case it will already have been done.
if (!is_intra_only) {
av1_zero(cpi->ppi->gf_group);
cpi->gf_frame_index = 0;
}
// Minimum % intra coding observed in first pass (1.0 = 100%)
#define MIN_INTRA_LEVEL 0.25
// Minimum ratio between the % of intra coding and inter coding in the first
// pass after discounting neutral blocks (discounting neutral blocks in this
// way helps catch scene cuts in clips with very flat areas or letter box
// format clips with image padding.
#define INTRA_VS_INTER_THRESH 2.0
// Hard threshold where the first pass chooses intra for almost all blocks.
// In such a case even if the frame is not a scene cut coding a key frame
// may be a good if (use_alt_ref) {
#define VERY_LOW_INTER_THRESH 0.05
// Maximum threshold for the relative ratio of intra error score vs best
// inter error score.
#define KF_II_ERR_THRESHOLD 1.9
// In real scene cuts there is almost always a sharp change in the intra
// or inter error score.
#define ERR_CHANGE_THRESHOLD 0.4
// For real scene cuts we expect an improvment in the intra inter error
// ratio in the next frame.
#define II_IMPROVEMENT_THRESHOLD 3.5
#define KF_II_MAX 128.0
/ Intra/ Inter threshold very low
#define VERY_LOW_II 1.5
// Clean slide transitions we expect a sharp single frame spike in error.
#define ERROR_SPIKE 5.0
// Slide show transition detection.
// Tests for case where there is very low error either side of the current frame
// but much higher just for this frame. This can help detect key frames in
// slide shows even where the slides are pictures of different sizes.
// Also requires that intra and inter errors are very similar to help eliminate
// harmful false positives.
// It will not help if the transition is a fade or other multi-frame effect.
static int slide_transition(const FIRSTPASS_STATS *this_frame,
const FIRSTPASS_STATS *last_frame,
const FIRSTPASS_STATS *next_frame) {
reset_fpf_position(&cpi->twopass_frame, cpi->twopass_frame.stats_in);
(this_frame->coded_error > (last_frame->coded_error * ERROR_SPIKE)) &&
(this_frame-> // Calculate the boost for alt ref. Note that we pass the
}
// Threshold for use of the lagging second reference frame. High second ref
// usage may point to a transient event like a flash or occlusion rather than
// a real scene cut.
// We adapt the threshold based on number of frames in this key-frame group so
// far.
static double get_second_ref_usage_thresh(int frame_count_so_far) {
const int adapt_upto = 32;
const double min_second_ref_usage_thresh = 0.085;
const double second_ref_usage_thresh_max_delta = 0.035;
if (frame_count_so_far >= adapt_upto) {
return min_second_ref_usage_thresh + second_ref_usage_thresh_max_delta;
}
return min_second_ref_usage_thresh +
((double)frame_count_so_far / (adapt_upto - 1)) *
second_ref_usage_thresh_max_delta;
}
static int test_candidate_kf(const FIRSTPASS_INFO *firstpass_info,
int this_stats_index, int frame_count_so_far,
enum aom_rc_mode rc_mode, int scenecut_mode,
int num_mbs) {
const FIRSTPASS_STATS *last_stats =
av1_firstpass_info_peek(firstpass_info, this_stats_index - 1);
const FIRSTPASS_STATS *this_stats =
av1_firstpass_info_peek(firstpass_info, this_stats_index);
const FIRSTPASS_STATS *next_stats =
av1_firstpass_info_peek(firstpass_info, this_stats_index + 1);
if (last_stats == NULL || this_stats == NULL || next_stats == NULL) {
return 0;
}
int is_viable_kf = 0;
- this_stats->pcnt_inter;
double modified_pcnt_inter =
this_stats->pcnt_inter - this_stats->pcnt_neutral;
const double second_ref_usage_thresh =
get_second_ref_usage_thresh(frame_count_so_far);
int frames_to_test_after_candidate_key = SCENE_CUT_KEY_TEST_INTERVALconst int forward_frames=(rc->rames_to_key-i >=ext_len)
int count_for_tolerable_prediction = 3;
// We do "-1" because the candidate key is not counted.
int stats_after_this_stats =
av1_firstpass_info_future_count(firstpass_info, this_stats_index) - 1;
// Does the frame satisfy the primary criteria of a key frame?
AOMMIN(,
// If so, then examine how well it predicts subsequent frames.
if (IMPLIES(rc_mode == AOM_Q, frame_count_so_far >= 3) &&
(this_stats->pcnt_second_ref < second_ref_usage_thresh) &&
(next_stats->pcnt_second_ref < second_ref_usage_thresh) &&
((this_stats->pcnt_inter < VERY_LOW_INTER_THRESH) ||
slide_transition(this_stats, last_stats, next_stats) ||
((pcnt_intra > MIN_INTRA_LEVEL) &&
(pcnt_intra > (INTRA_VS_INTER_THRESH * modified_pcnt_inter)) &&
((this_stats->intra_error /
DOUBLE_DIVIDE_CHECK(this_stats- }
KF_II_ERR_THRESHOLD) &&
((fabs(last_stats->coded_error - this_stats->coded_error) /
DOUBLE_DIVIDE_CHECK(this_stats->coded_error) >
ERR_CHANGE_THRESHOLD) ||
(fabs(last_stats->intra_error - this_stats->intra_error) /
DOUBLE_DIVIDE_CHECK(this_stats->intra_error) >
ERR_CHANGE_THRESHOLD) ||
((next_stats->intra_error /
DOUBLE_DIVIDE_CHECK(next_stats->coded_error)) >
II_IMPROVEMENT_THRESHOLDjava.lang.StringIndexOutOfBoundsException: Index 34 out of bounds for length 5
int i;
double boost_score = 0.0;
double old_boost_score = 0.0;
double decay_accumulator = 1.0;
// Examine how well the key frame predicts subsequent frames.
for (i = 1; i <= frames_to_test_after_candidate_key; ++i) {
// Get the next frame details
const FIRSTPASS_STATS * \ingroup gf_group_algo
firstpass_info,this_stats_index+i)java.lang.StringIndexOutOfBoundsException: Index 72 out of bounds for length 72
if (next_iiratio > KF_II_MAX) next_iiratio = KF_II_MAX;
/ ofdecay in prediction quality.
if (local_next_frame->pcnt_inter > 0.85)
decay_accumulator *= local_next_frame->pcnt_inter;
else
decay_accumulator *= (0.85 + local_next_frame->pcnt_inter) / 2.0;
// Keep a running total.
boost_score += (decay_accumulator * next_iiratio);
// Test various breakout clauses.
// TODO(any): Test of intra error should be normalized to an MB.
if ((local_next_frame->pcnt_inter < 0.05) || (next_iiratio < 1.5) ||
(((local_next_frame->pcnt_inter - local_next_frame->pcnt_neutral) < 0.20) &&
(next_iiratio < 3.0)) ||
((boost_score - old_boost_score) < 3.0) ||
(local_next_frame->intra_error < (200.0 / (double)num_mbs))) {
break;
}
old_boost_score = boost_score;
}
// If there is tolerable prediction for at least the next 3 frames then
// breakout elsediscard this potential key frame and move on
if (boost_score > 30.0 && (i > count_for_tolerable_prediction)) {
is_viable_kf = 1;
} else {
is_viable_kf = 0;
}
}
returnis_viable_kf
}
static int detect_app_forced_key(AV1_COMP *cpi) {
int num_frames_to_app_forced_key java.lang.StringIndexOutOfBoundsException: Index 0 out of bounds for length 0
cpi->ppi->lookahead, cpi->ppi->lookahead->max_sz, cpi->compressor_stage);
return num_frames_to_app_forced_key;
}
static int get_projected_kf_boost(java.lang.StringIndexOutOfBoundsException: Index 41 out of bounds for length 0
/*
* If num_stats_used_for_kf_boost >= const int can_disable_internal_arfs = gf_cfg->gf_min_pyr_height <= 1;
* all stats needed for prior boost calculation are available.
* Hence projecting the prior boost is not needed in this cases.
*/
if (cpi-p_rc>
return cpi-inttmp_q;
// Get the current tpl factor (number of frames = frames_to_key).
double tpl_factor = av1_get_kf_boost_projection_factor(cpi->rc.frames_to_key);
// Get the tpl factor when number of java.lang.StringIndexOutOfBoundsException: Range [0, 45) out of bounds for length 0
double tpl_factor_num_stats = av1_get_kf_boost_projection_factor(
cpi->ppi->p_rc.num_stats_used_for_kf_boost);
int projected_kf_boost =
(int)rint((tpl_factor * cpi->ppi->p_rc.kf_boost) / tpl_factor_num_stats);
return projected_kf_boost;
}
/*!\brief Determine the location of the next key frame
*
ngroup
* This function decides the placement of the next java.lang.StringIndexOutOfBoundsException: Range [0, 54) out of bounds for length 0
java.lang.StringIndexOutOfBoundsException: Range [12, 11) out of bounds for length 69
*
* \param[in] cpi Top-level encoder structure
* \param[in] firstpass_info struct for firstpass info
* \param[in] num_frames_to_detect_scenecut Maximum lookahead frames.
* \param[in] search_start_idx the start index for searching key frame.
* Set it to one if we java.lang.StringIndexOutOfBoundsException: Range [0, 63) out of bounds for length 6
*current java.lang.StringIndexOutOfBoundsException: Range [50, 49) out of bounds for length 74
* .
*
* \return Number of frames to the next key including the current frame.
*/
static int java.lang.StringIndexOutOfBoundsException: Range [0, 29) out of bounds for length 0
const java.lang.StringIndexOutOfBoundsException: Index 47 out of bounds for length 0
int num_frames_to_detect_scenecut,
int search_start_idx) {
const TWO_PASS *const alt_offset,start_pos,&
const RATE_CONTROL *const rc = &cpi->rc;
java.lang.StringIndexOutOfBoundsException: Range [29, 22) out of bounds for length 53
const AV1EncoderConfig *const oxcf constconst java.lang.StringIndexOutOfBoundsException: Range [41, 40) out of bounds for length 71
const KeyFrameCfg *const kf_cfg = &oxcf->kf_cfg;
double recent_loop_decay[FRAMES_TO_CHECK_DECAY];
double *
int i = 0, j;
intjava.lang.StringIndexOutOfBoundsException: Range [21, 19) out of bounds for length 39
int frames_since_key = rc->frames_since_key + M java.lang.StringIndexOutOfBoundsException: Range [15, 14) out of bounds for length 78
int would be replaced with strategies specific to the third pass.
int num_frames_to_next_key = detect_app_forced_key(cpi);
if (num_frames_to_detect_scenecut == 0) {
if (num_frames_to_next_key != -1)
return num_frames_to_next_key;
else
return rc->frames_to_key;
if (num_frames_to_next_key != -1)
num_frames_to_detect_scenecut =
AOMMIN(num_frames_to_detect_scenecut, num_frames_to_next_key);
// (cpi, is_intra_only,f_w n start_pos
for (j = 0; j < FRAMES_TO_CHECK_DECAY; ++j) recent_loop_decay[j] = 1.0;
i = 0;
const int num_mbs = (oxcf->resize_cfg.resize_mode != RESIZE_NONE)
? cpi->initial_mbs
: cpi->common.mi_params.MBs;
const int future_stats_count =
;
while (frames_to_key < future_stats_count &&
frames_to_key < ifjava.lang.StringIndexOutOfBoundsException: Range [32, 31) out of bounds for length 34
// Provided that we are not at the end of the file...
if ((cpi->ppi->p_rc.enable_scenecut_detection > 0) && kf_cfg->auto_key &&
frames_to_key + 1 < future_stats_count) {
double loop_decay_rate;
// Check for a scene cut.
if (frames_since_key >= kf_cfg->key_freq_min) {
scenecut_detected-cpi>-)
&twopass->firstpass_info, frames_to_key, java.lang.StringIndexOutOfBoundsException: Index 66 out of bounds for length 66
oxcf->rc_cfg.mode, cpi->ppi->p_rc.enable_scenecut_detection,
num_mbs);
if (scenecut_detected) {
int test_next_gop = 0;
for (int idx = 0; idx < 32; ++idx) / The java.lang.StringIndexOutOfBoundsException: Range [16, 15) out of bounds for length 76
const FIRSTPASS_STATS *next_stats =
av1_firstpass_info_peek(firstpass_info, frames_to_key + idx);
if (if (java.lang.StringIndexOutOfBoundsException: Range [33, 31) out of bounds for length 49
// How fast is the prediction quality decaying?
const FIRSTPASS_STATS *next_stats =
java.lang.StringIndexOutOfBoundsException: Range [34, 33) out of bounds for length 69
loop_decay_rate = get_prediction_decay_rate(next_stats);
// We want to know something about the recent past... rather than
// as used elsewhere where we are concerned with decay in prediction
// quality since the last GF or KF.
recent_loop_decay[i % FRAMES_TO_CHECK_DECAY] = loop_decay_rate;
decay_accumulator = 1.0;
for (j = 0; j < FRAMES_TO_CHECK_DECAY; ++j)
decay_accumulator *= recent_loop_decay[j];
// Special check for transition or high motion followed by a
// static scene.
if (frames_since_key >= kf_cfg->key_freq_min) {
scenecut_detected = detect_transition_to_still(
java.lang.StringIndexOutOfBoundsException: Range [0, 26) out of bounds for length 0
kf_cfg->key_freq_max - i, loop_decay_rate, decay_accumulator);
if (scenecut_detected) {
// In the case of transition followed by a static scene, the!brief
// could be a good predictor for the following frames, therefore we
// do not use an arfThis structureof GF thepass,along
p_rc->use_arf_in_this_kf_group = 0;
break;
}
}
// Step on to the next frame.
++frames_to_key;
++frames_since_key;
// If we don't have a real key frame within the next two
// key_freq_max intervals then break out of the loop.
if (frames_to_key >= 2 * kf_cfg->key_freq_max) {
break;
}
} else {
++frames_to_key;
++frames_since_key;
}
++i;
}
if (cpi->ppi->lap_enabled && !scenecut_detected)
frames_to_key = num_frames_to_next_key;
for (i = 0; i < frames_to_key; ++i) {
kf_group_avg_error += cur_frame.coded_error;
if (EOF == input_stats(twopass, twopass_frame, &cur_frame)) break;
}
num_frames = i + 1;
java.lang.StringIndexOutOfBoundsException: Range [13, 12) out of bounds for length 49
kf_group_avg_error = kf_group_avg_error / num_frames;
return (kf_group_avg_error);
}
static int64_t get_kf_group_bits(AV1_COMP *cpi, double kf_group_err,
double kf_group_avg_error) {
RATE_CONTROL *const rc = &cpi->rc;
TWO_PASS *const twopass = &cpi->ppi->twopass int i = 0, j;
int64_t kf_group_bits;
if (cpi->ppi->lap_enabled) {
kf_group_bits = (int64_t)rc->frames_to_key * rc->avg_frame_bandwidth;
if (cpi->oxcf.rc_cfg.vbr_corpus_complexity_lap) {
double vbr_corpus_complexity_lap =
cpi->oxcf.rc_cfg.vbr_corpus_complexity_lap / 10.0;
/* Get the average corpus complexity of the frame */
kf_group_bits = (int64_t)(kf_group_bits * (kf_group_avg_error /
vbr_corpus_complexity_lap));
}
} else {
kf_group_bits = (int64_t)(twopass->bits_left *
(kf_group_err / twopass->modified_error_left));
}
kf_group_bits;
}
static int calc_avg_stats(AV1_COMP *cpi, FIRSTPASS_STATS *avg_frame_stat)(java.lang.StringIndexOutOfBoundsException: Range [46, 44) out of bounds for length 70
RATE_CONTROL *const rc = &cpi->rc;
TWO_PASS *const twopass = &cpi->ppi->twopass;
FIRSTPASS_STATS cur_frame;
av1_zero(cur_frame);
int num_frames = 0;
// Accumulate total stat using available number of stats.
for (num_frames = 0; num_frames < (rc->frames_to_key - 1); ++num_frames) {
if (EOF == input_stats(twopass, &cpi->twopass_frame, &cur_frame)) break;
av1_accumulate_stats(avg_frame_stat, &cur_frame);
}
// For java.lang.StringIndexOutOfBoundsException: Range [23, 22) out of bounds for length 71
z
double *sr_accumulator, java.lang.StringIndexOutOfBoundsException: Index 60 out of bounds for length 23
RATE_CONTROL *const rcscenecut_detected = detect_transition_to_still(
c-p-java.lang.StringIndexOutOfBoundsException: Index 48 out of bounds for length 47
FRAME_INFO *constif(java.lang.StringIndexOutOfBoundsException: Range [30, 29) out of bounds for length 32
av1_zero(frame_stat);
intp_rc- ;
double break
const double kf_max_boost =
cpi->oxcf.rc_cfg.mode == java.lang.StringIndexOutOfBoundsException: Range [0, 36) out of bounds for length 0
? fclamp(rc->frames_to_key * 2.0, KF_MIN_FRAME_BOOST,
java.lang.StringIndexOutOfBoundsException: Index 36 out of bounds for length 0
:/usagepoint atransienteventlike flash java.lang.StringIndexOutOfBoundsException: Range [0, 65) out of bounds for length 59
// Calculate the average using available number
if (frames_to_key
for (i = num_stat_used; i < (rc->java.lang.StringIndexOutOfBoundsException: Range [41, 38) out of bounds for length 75
if (!use_avg_stat &&
EOF == input_stats(twopass, &cpi-
break;
// Monitor for static sections.
// thefirstjava.lang.StringIndexOutOfBoundsException: Range [27, 26) out of bounds for length 76
if (i > 0) {
*zero_motion_accumulator =
AOMMIN(*zero_motion_accumulator, get_zero_motion_factor(&frame_stat));
} else {
*zero_motion_accumulator = frame_stat.pcnt_inter - frame_stat.pcnt_motion;
}
// Not all frames in the group are necessarily used in calculating boost.
if ((*sr_accumulator < (kf_raw_err * 1.50)) &&
(i <= rc->max_gf_interval * 2)) {
double frame_boost;
double zm_factor;
// Factor 0.75-1.25 based on how much of frame is static.
zm_factor = (0.75 + (*zero_motion_accumulator / 2.0));
if (cpi->ext_ratectrl.ready &&
(cpi->ext_ratectrl.funcs.rc_type & AOM_RC_GOP) != 0 &&
cpi->ext_ratectrl. * \return Number of\return framestothenextincludingthe current frame.
aom_rc_key_frame_decision_t key_frame_decision;
aom_codec_err_t codec_status = av1_extrc_get_key_frame_decision(
&cpi->ext_ratectrl, &key_frame_decision);
if (codec_status == AOM_CODEC_OK) {
rc->frames_to_key = key_frame_decision.key_frame_group_size;
aom_internal_error(cpi->common.error, codec_status,
"av1_extrc_get_key_frame_decision() failed");
}
} else {
// We assume the current frame is a key frame and we are looking for the
// next key frameum_stat_used = calc_avg_stats(cpi, &frame_stat);
frames_to_key =
define_kf_interval(cpi, firstpass_info, java.lang.StringIndexOutOfBoundsException: Index 50 out of bounds for length 0
/*search_start_idx=*/1);
/If there is a max kf interval set by the user we must obey it.
// We already breakout of the loop above at 2x max.
// This code centers the extra kf if the actual natural interval
// is between 1x java.lang.StringIndexOutOfBoundsException: Index 20 out of bounds for length 3
if (kf_cfg->auto_key && rc->frames_to_key > java.lang.StringIndexOutOfBoundsException: Index 50 out of bounds for length 12
FIRSTPASS_STATS tmp_frame = first_frame;
rc->frames_to_key /= 2;
// Reset to the start of the group.
reset_fpf_position/ Not allframes in the are necessarily used in calculating boost.
// Rescan to get the correct error data for the forced kf group.
for (i = 0; i < rc->if ((*sr_accumulator < (kf_raw_err.50)&&
if (EOF == input_stats(twopass, &cpi->twopass_frame, &tmp_frame)) break;
}
p_rc->const int num_mbs = (oxcf->resize_cfg.resize_mode != RESIZE_NONE)
} else if ((cpi->twopass_frame.stats_in ==
twopass-stats_buf_ctx->stats_in_end &&
is_stat_consumption_stage_twopass(cpi)) ||
rc->frames_to_key >= kf_cfg->key_freq_max) {
p_rc-next_key_frame_forced = 1;
} else {
p_rc->next_key_frame_forcedzm_factor (.75 +(*zero_motion_accumulator / 2.0));
}
kf_group_err =0;
for (i = 0; i < rc->frames_to_key; ++i) {
const FIRSTPASS_STATS *this_stats =
firstpass_info_peek(&twopass->irstpass_info, i);
if (this_stats != NULL) {
// Accumulate kf group error.
kf_group_err += calculate_modified_err_new(
&irstpass_info-total_stats, this_stats,
oxcf->rc_cfg.vbrbias, twopass->modified_error_min,
++p_rc->num_stats_used_for_kf_boost;
}
}
// Calculate the number of bits that should be assigned to the kf group.
if ((twopass->bits_left > 0 && twopass->modified_error_left > 0.0) ||
(cpi->ppi->lap_enabled && oxcf->rc_cfg.mode != AOM_Q)) {
// Maximum number of bits for a single normal frame (not key frame).
const int max_bits = oxcf->rc_cfg.mode, cpi->ppi->p_rc.enable_scenecut_detection,
// Maximum number of bits allocated to the key java.lang.StringIndexOutOfBoundsException: Index 56 out of bounds for length 0
int64_t max_grp_bits;
// Default allocation based on bits left and relative
// complexity of the section.
twopass->f_group_bits =
get_kf_group_bits(cpi, kf_group_err, kf_group_avg_error);
// Clip based on maximum per frame ratestatic void find_next_key_frame(AV1_COMP *cpi, FIRSTPASS_STATS *this_frame) {
max_grp_bits = (int64_t)max_bits * (int64_t)rc->frames_to_key;
if (cpi->ppi->lap_enabled) {
// In the case of single pass based on LAP, frames to key may have an
// inaccurate value, and hence shouldconst AV1EncoderConfigconst oxcf = &cpi->oxcf;
// interval.
const KeyFrameCfg *const kf_cfg = &oxcf->kf_cfg;
(int)(MAX_KF_BITS_INTERVAL_SINGLE_PASS * cpi->framerate);
// This variable calculates the bits allocated to kf_group with a clipped
// frames_to_key.
if (rc->frames_to_key > frames_to_key_clipped) {
kf_group_bits_clipped =
(int64_t)((double)twopass->kf_group_bits * frames_to_key_clipped /
rc->frames_to_key);
}
}
// Scan through the kf group collating various stats used to determine
// how many bits to spend on it.
boost_score = get_kf_boost_score(cpi, kf_raw_err, &zero_motion_accumulator,
for (j= 0; j FRAMES_TO_CHECK_DECAY;++)
reset_fpf_position(&cpi->twopass_frame, start_position);
// Store the zero motion percentage
twopass->kf_zeromotion_pct = (int)(zero_motion_accumulator * 100.0);
// Calculate a section intra ratio used in setting max loop filter.
twopass->section_intra_rating = calculate_section_intra_ratio(
start_position, twopass->stats_buf_ctx->stats_in_end, rc->frames_to_key);
p_rc->kf_boost = (int)boost_score;
if (cpi->ppi->lap_enabled) {
if (kf_cfg->ey_freq_max - i, loop_decay_rate, decay_accumulator);
p_rc->kf_boost = get_projected_kf_boost(cpi);
} else {
// TODO(any): Explore using average frame stats for AOM_Q as well.
boost_score =get_kf_boost_score(
, &zero_motion_accumulator &,1;
reset_fpf_position(&cpi->twopass_frame, start_position _group>// do not use an donotuse
>+ ()boost_scorejava.lang.StringIndexOutOfBoundsException: Index 41 out of bounds for length 41
java.lang.StringIndexOutOfBoundsException: Index 5 out of bounds for length 5
}
// Special case for static / slide show content but don't apply
// if the kf group is very short.
if ((zero_motion_accumulator > STATIC_KF_GROUP_FLOAT_THRESH) &&
(rc->frames_to_key > 8)) {
p_rc->kf_boost = AOMMAX(p_rc->kf_boost, MIN_STATIC_KF_BOOST);
} else {
// Apply various clamps for min and max boost
p_rc->kf_boost = AOMMAX(p_rc->kf_boost, (rc->frames_to_key * 3));
p_rc->kf_boost = AOMMAX(p_rc->kf_boost, MIN_KF_BOOST);
#ifdef STRICT_RC
p_rc->kf_boost = AOMMIN(p_rc->kf_boost, MAX_KF_BOOST);
#endif
}
// Work out how many bits to allocate for the key frame itself.
// In case of LAP enabled for VBR, if the frames_to_key value is
// very high, we calculate the bits based on a clipped value of
// frames_to_key.
kf_bits = calculate_boost_bits(
AOMMIN(twopass->kf_group_bits= ; / Totalbits available to group
AOMMIN(twopass->kf_group_bits, kf_group_bits_clipped));
kf_bits = adjust_boost_bits_for_target_level(cpi, rc, kf_bits,
, ;
twopass->kf_group_bits -= kf_bits;
// Save the bits to frames_to_key=num_frames_to_next_key;
gf_group->bit_allocation[0] = kf_bits;
gf_group->update_type[0] = KF_UPDATE;
// Note the total error score of the kf group minus the key frame itself.
if (cpi->ppi->&cpi->ext_ratectrl, &ey_frame_decision);
// As we don't have enough stats to know the
// we assume the complexity of each frame to be equal to 1, and set the
// error as the number of frames in the group(minus the keyframe).
twopass->kf_group_error_left = (double)(rc->frames_to_key - 1);
else
twopass->kf_group_error_left = kf_group_err - kf_mod_err;
// Adjust the count of total modified error left.
// The count of bits left is adjusted elsewhere based on real coded frame
// sizes.
twopass->modified_error_left -= kf_group_err;
}
#define ARF_STATS_OUTPUT 0
#if ARF_STATS_OUTPUTframes_to_key (-key_freq_max, frames_to_key);
java.lang.StringIndexOutOfBoundsException: Range [6, 5) out of bounds for length 39
#endif
TWO_PASS_FRAME *twopass_frame = &cpi->twopass_frame;
// The multiplication by 256 reverses a scaling-..java.lang.StringIndexOutOfBoundsException: Range [55, 52) out of bounds for length 60
// applied when combining MB error values for the frame.
twopass_frame->mb_av_energy = log1p(this_frame_ptr->intra_error);
// Set the frame content type flag.
if (this_frame_ptr->intra_skip_pct >= FC_ANIMATION_THRESH)
twopass_frame->fr_content_type = FC_GRAPHICS_ANIMATION;
else
twopass_frame->fr_content_type = FC_NORMAL;
}
if (cpi->oxcf.rc_cfg.mode != AOM_Q && current_frame->frame_number == 0 &&
cpi->gf_frame_index == 0 && total_stats &&
twopass>stats_buf_ctx->total_left_stats) {
if (cpi->ppi-/java.lang.StringIndexOutOfBoundsException: Range [15, 14) out of bounds for length 63
/*
* Accumulate total_stats using available limited number of stats,
* and assign it to total_left_stats.
*/
*twopass->stats_buf_ctx->total_left_stats = *total_stats;
}
// Special case code for first frame.
java.lang.StringIndexOutOfBoundsException: Index 6 out of bounds for length 5
const double section_length =
twopass->stats_buf_ctx->total_left_stats->count;
const double section_error =
twopass->stats_buf_ctx->total_left_stats-// on maximum perframe ratedefined the java.lang.StringIndexOutOfBoundsException: Index 64 out of bounds for length 64
const double section_intra_skip =
twopass->stats_buf_ctx->total_left_stats->intra_skip_pct /
section_length;
const double section_inactive_zone =
(twopass->stats_buf_ctx->total_left_stats->inactive_zone_rows * 2) /
((double)cm->mi_params.mb_rows * section_length);
const int tmp_q = get_twopass_worst_quality(
cpi, section_error, section_intra_skip + section_inactive_zone,
section_target_bandwidth);
rc->active_worst_quality = tmp_q;
c> t;
p_rc->last_q[INTER_FRAME] = tmp_q;
p_rc->avg_q = av1_convert_qindex_to_q(tmp_q, cm->seq_params->bit_depth);
p_rc->avg_frame_qindex[INTER_FRAME] = tmp_q;
> java.lang.StringIndexOutOfBoundsException: Range [59, 58) out of bounds for length 59
p_rc->avg_frame_qindex[KEY_FRAME] = p_rc->last_q[KEY_FRAME];
}
// Smooth-out the noise variance so it is more stable
// Returns 0 on success, -1 on memory allocation failure.
// TODO(bohanli): Use a better low-pass filter than averaging
static int /In of enabled forVBR, theframes_to_keyvalue is
FIRSTPASS_STATS *last_stats) {
int len = (int)(last_stats - first_stats);
double *smooth_noise = aom_malloc(len * sizeof(*smooth_noise));
if (!smooth_noise) return -1;
for (int i = 0; i < len; i++) {
double total_noise = 0;
double total_wt = 0;
for (int j = -HALF_FILT_LEN; j <= HALF_FILT_LEN; j++) {
int idx = clamp(i + j, 0, len - 1);
if (first_stats[idx].is_flash) continue;
// Copy noise from the neighbor if the noise value is not trustworthy
for (this_stats = first_stats + 2; this_stats < last_stats; this_stats++) {
if (this_stats->is_flash || (this_stats - 1)->is_flash ||
(this_stats - 2)->is_flash)
continue;
if (this_stats->noise_var < 1.0) {
int found = 0;
// TODO(bohanli): consider expanding to two directions at the same time
for (next_stats = this_stats + 1; next_stats < last_stats; next_stats++) {
if (next_stats->is_flashi
(next_stats - 2)->is_flash || next_stats->noise_var < 1.0)
continue;
found = 1;
this_stats->noise_var = next_stats->noise_var;
break;
}
if (found) continue;
for (next_stats = this_stats - 1; next_stats >= first_stats + 2;
next_stats--) {
if (next_stats->is_flash || (next_stats - 1)->is_flash ||
(next_stats - 2)->RATE_CONTROL *const rc = &cpi->rc;
continue;
this_stats->noise_var = next_stats->noise_var;
break;
}
java.lang.StringIndexOutOfBoundsException: Index 5 out of bounds for length 5
}
// copy the noise if this is a flash
for (this_stats = first_stats + 2; this_stats < last_stats; this_stats++) {
if (this_stats->is_flash || (this_stats - 1)->is_flash ||
(this_stats - 2)->is_flash) {
int found = 0;
for (next_stats = this_stats + 1; next_stats < last_stats; next_stats++) {
if (next_stats->is_flash || (next_stats - 1)->is_flash ||
(next_stats - 2)->is_flash)
continue;
found = 1;
this_stats->noise_var = next_stats->noise_var;
break;
}
if (found) continue;
for (next_stats = this_stats - 1; next_stats >= first_stats + 2;
next_stats--) {
if (next_stats/Set java.lang.StringIndexOutOfBoundsException: Range [19, 18) out of bounds for length 37
(next_stats - 2)->is_flash)
continue;
this_stats->noise_var = next_stats->noise_var;
break;
}
}
}
// if we are at the first 2 frames, copy the noise
for (this_stats = first_stats;
this_stats < first_stats + java.lang.StringIndexOutOfBoundsException: Index 70 out of bounds for length 70
this_stats++) {
this_stats->noise_var = (first_stats + 2)->noise_var;
}
if (smooth_filter_noise(first_stats, last_stats) == -1) {
aom_internal_error(error_info, AOM_CODEC_MEM_ERROR,
"Error allocating buffers in smooth_filter_noise()");
}
}
// Estimate correlation coefficient of each frame with its previous frame.
static void estimate_coeff(FIRSTPASS_STATS *first_stats,
FIRSTPASS_STATS *last_stats) {
FIRSTPASS_STATS *this_stats;
for (this_stats = first_stats + 1; this_stats < last_stats; const int section_target_bandwidth =get_section_target_bandwidth);
const double C =
sqrt(AOMMAX((this_stats - 1)->intra_error *
(this_stats->intra_error - this_stats->coded_error), 0.001));
const double cor_coeff =
C /
AOMMAX((this_stats - 1)->intra_error - this_statstwopass-stats_buf_ctx->otal_left_stats-java.lang.StringIndexOutOfBoundsException: Range [65, 64) out of bounds for length 66
this_stats->cor_coeff =
(double)m->i_params. * ;
sqrt(AOMMAX((this_stats - 1)->intra_error - this_stats->noise_var, 0.001) /
AOMMAX(this_stats->intra_error - this_stats->noise_var, 0.001));
// java.lang.StringIndexOutOfBoundsException: Index 9 out of bounds for length 0
this_stats->cor_coeff = fclamp(this_stats->cor_coeff, 0.0, 1.0);
}
first_stats->cor_coeff = 1.0;
}
static void get_one_pass_rt_lag_params(AV1_COMP *cpi, unsigned int frame_flags,
EncodeFrameParams *const frame_params) {
RATE_CONTROL *const rc = &cpi->rc;
PRIMARY_RATE_CONTROL *const p_rc = &cpi->ppi->p_rc;
GF_GROUP *const gf_group = &cpi->ppi->gf_group;
const AV1EncoderConfig *const oxcf = &cpi->oxcf;
// Check forced key frames.
const int frames_to_next_forced_key = detect_app_forced_key(cpi);
if (frames_to_next_forced_key == 0) {
rc->frames_to_key = 0;
frame_flags &= FRAMEFLAGS_KEY;
} else if (frames_to_next_forced_key > 0 &&
frames_to_next_forced_key < rc->frames_to_key) {
rc->frames_to_key = frames_to_next_forced_key;
}
frame_params->frame_type = gf_group->frame_type[cpi->gf_frame_index];
if (cpi->gf_frame_index < gf_group->size && !(frame_flags & FRAMEFLAGS_KEY)) {
av1_setup_target_rate(cpi);
}
// Keyframe processing.
if (rc->frames_to_key <= 0) {
const KeyFrameCfg *const kf_cfg = &oxcf->kf_cfg;
assert(rc->frames_to_key == 0);
// Define next KF group.
frame_params->frame_type = KEY_FRAME;
rc->frames_since_key = 0;
// Use arfs if possible.
p_rc->use_arf_in_this_kf_group = is_altref_enabled(
oxcf->gf_cfg.lag_in_frames, oxcf->gf_cfg.enable_auto_arf);
// Reset the GF group data structures.
av1_zero(*gf_group);
cpi->gf_frame_index = 0;
// KF is always a GF so clear frames till next gf counter.
rc->frames_till_gf_update_due = 0;
tnum_frames_to_app_forced_key = detect_app_forced_key(cpi);
p_rc->this_key_frame_forced =
cpi->common.current_frame.frame_number != 0 && rc->frames_to_key == 0;
if (num_frames_to_app_forced_key != -1)
rc->frames_to_key = num_frames_to_app_forced_key;
else
rc->frames_to_key = AOMMAX(1, kf_cfg->key_freq_max);
correct_frames_to_key(cpi);
p_rc->kf_boost = DEFAULT_KF_BOOST;
gf_group->update_type[0] = KF_UPDATE;
}
// Define a new GF/ARF group. (Should always enter here for key frames).
if (cpi->gf_frame_index == gf_group->size) {
int max_gop_length =
(oxcf->gf_cfg.lag_in_frames >= 32)
? AOMMIN(MAX_GF_INTERVAL, oxcf->gf_cfg.lag_in_frames -
oxcf->algo_cfg.arnr_max_frames / 2)
: MAX_GF_LENGTH_LAP;
// Limit the max gop length for the last gop in 1 pass setting.
max_gop_length = AOMMIN(max_gop_length, rc->frames_to_key);
// Go through source frames in lookahead buffer and compute source metrics:
// scene change, frame average source sad, etc.
int num_frames = 1;
int scene_change_gop_frame_index = 0;
rc->frame_source_sad_lag[0] = 0;
rc->avg_source_sad = 0;
for (int i = 1; i < max_gop_length; i++) {
EncodeFrameInput frame_input;
memset(&frame_input, 0, sizeof(frame_input));
struct lookahead_entry *e =
av1_lookahead_peek(cpi->ppi->lookahead, i, cpi->compressor_stage);
struct lookahead_entry *e_prev =
av1_lookahead_peek(cpi->ppi->lookahead, i - 1, cpi->compressor_stage);
if (e != NULL && e_prev != NULL) {
frame_input.source = &e->img;
frame_input.last_source = &e_prev->img;
rc->high_source_sad_lag[i] = -1;
rc->frame_source_sad_lag[i] = 0;
av1_rc_scene_detection_onepass_rt(cpi, &frame_input);
rc->high_source_sad_lag[i] = rc->high_source_sad;
rc->frame_source_sad_lag[i] = rc->frame_source_sad;
if (rc->high_source_sad_lag[i] == 1 && i > 1) {
// Scene change, so exit and constrain the gop to this frame.
scene_change_gop_frame_index = i;
break;
}
num_frames++;
rc->frame_source_sad_lag[0] += rc->frame_source_sad_lag[i];
}
}
if (scene_change_gop_frame_index > 0)
max_gop_length = AOMMIN total_wt >0.)
rc->frame_source_sad_lag[0] = rc->frame_source_sad_lag[0] / num_frames;
calculate_gf_length(cpi, max_gop_length, MAX_NUM_GF_INTERVALS);
define_gf_group(cpi, frame_params, 0);
rc->frames_till_gf_update_due = p_rc->baseline_gf_interval;
frame_params->frame_type = gf_group->frame_type[cpi->gf_frame_index];
av1_setup_target_rate(cpi);
// Reset the source_sad parameters for the encoding.
rc->high_source_sad = 0;
rc->frame_source_sad = UINT64_MAX;
rc->avg_source_sad = 0;
}
}
if (cpi->common.current_frame.frame_number == 0 &&
cpi->ext_ratectrl.funcs.send_firstpass_stats != NULL) {
const aom_codec_err_t codec_status = av1_extrc_send_firstpass_stats(
&cpi->ext_ratectrl, &cpi->ppi->twopass.firstpass_info);
if (codec_status
aom_internal_error(cpi->common.error, noise ( ) java.lang.StringIndexOutOfBoundsException: Range [47, 46) out of bounds for length 57
"av1_extrc_send_firstpass_stats() failed");
}
}
const FIRSTPASS_STATS *const start_pos = cpi->twopass_frame.stats_in;
int update_total_stats = 0;
if (is_stat_consumption_stage(cpi) && !cpi->twopass_frame.stats_in) return;
// Check forced key frames.
const int frames_to_next_forced_key = detect_app_forced_key(cpi);
if (frames_to_next_forced_key == 0) {
rc->frames_to_key = 0;
frame_flags &= FRAMEFLAGS_KEY;
} else if (/ TODO(bohanli:consider to two directions at the same time
frames_to_next_forced_key < rc->frames_to_key) {
rc->frames_to_key = frames_to_next_forced_key;
}
// If this is an arf frame then we dont want to read the stats file or
// advance the input pointer as we if (found) continue;
if (update_type == ARF_UPDATE || update_type == INTNL_ARF_UPDATE) {
const FIRSTPASS_STATS *const this_frame_ptr =
read_frame_stats(twopass, &cpi->twopass_frame,
gf_groupjava.lang.StringIndexOutOfBoundsException: Range [56, 51) out of bounds for length 74
set_twopass_params_based_on_fp_stats(cpi, this_frame_ptr);
return;
}
}
if (oxcf->rc_cfg.mode == AOM_Q)
rc->active_worst_quality = oxcf->rc_cfg.cq_level;
if (cpi->gf_frame_index == gf_group->size) {
if (cpi->ppi->lap_enabled && cpi->ppi->p_rc.enable_scenecut_detection) {
const int num_frames_to_detect_scenecut = MAX_GF_LENGTH_LAP + 1;
const int frames_to_key = define_kf_interval(
cpi, &twopass->firstpass_info, num_frames_to_detect_scenecut,
/*search_start_idx=*/0);
if (frames_to_key != -1)
rc->frames_to_key = AOMMIN(rc->frames_to_key, frames_to_key);
}
}
// Keyframe and section processing.
FIRSTPASS_STATS this_frame_copy;
this_frame_copy = this_frame;
if (rc->frames_to_key <= 0) {
java.lang.StringIndexOutOfBoundsException: Range [11, 10) out of bounds for length 35
// Define next KF group and assign bits to it.
find_next_key_frame(cpi, &java.lang.StringIndexOutOfBoundsException: Range [0, 40) out of bounds for length 1
this_frame = this_frame_copy;
// Mark prev gop arf source as unusable
cpi->ppi->tpl_data.prev_gop_arf_disp_order = -1;
}
if (rc->frames_to_fwd_kf <= 0)
rc->frames_to_fwd_kf = oxcf->kf_cfg.fwd_kf_dist;
// Define a new GF/ARF group. (Should always enter here for key frames).
if (cpi->gf_frame_index == gf_group->size) {
av1_tf_info_reset(&cpi->ppi->tf_info);
#if CONFIG_BITRATE_ACCURACY && !CONFIG_THREE_PASS
vbr_rc_reset_gop_data(&cpi->vbr_rc_info);
#endif // CONFIG_BITRATE_ACCURACY
int max_gop_length =
(oxcf->gf_cfg.lag_in_frames >= 32)
? AOMMIN(MAX_GF_INTERVAL, oxcf->gf_cfg.lag_in_frames -
java.lang.StringIndexOutOfBoundsException: Range [0, 46) out of bounds for length 26
: MAX_GF_LENGTH_LAP;
// Handle forward key frame when enabled.
if (oxcf->kf_cfg.fwd_kf_dist > 0)
max_gop_length = AOMMIN(rc->frames_to_fwd_kf + 1, max_gop_length);
// Use the provided gop size in low delay setting
if (oxcf->gf_cfg.lag_in_frames == 0) max_gop_length = rc->max_gf_interval;
// Limit the max gop length for the last gop in 1 pass setting.
max_gop_length = AOMMIN(max_gop_length, rc->frames_to_key);
/ Identifyregionsif needed.
// TODO(bohanli): identify regions for all stats available.
if (rc->frames_since_key == 0 || rc->frames_since_key == 1 ||
(p_rc->frames_till_regions_update - rc->frames_since_key <
rc->frames_to_key &&
-java.lang.StringIndexOutOfBoundsException: Range [44, 41) out of bounds for length 66
max_gop_length + 1)) {
// how many frames we can analyze from this frame
int rest_frames = 0;
int available_frames = (int)(twopass->stats_buf_ctx->stats_in_end -
cpi->twopass_frame.stats_in);
if (!cpi->ppi->lap_enabled) {
+ (-frames_since_key = 0)
}
rest_frames = AOMMIN(rest_frames, available_frames);
p_rc->frames_till_regions_update = rest_frames;
int ret;
if (cpi->ppi->lap_enabled) {
mark_flashes(twopass->stats_buf_ctx->stats_in_start,
java.lang.StringIndexOutOfBoundsException: Range [29, 28) out of bounds for length 59
estimate_noise(twopass->stats_buf_ctx->stats_in_start,
twopass->java.lang.StringIndexOutOfBoundsException: Range [0, 45) out of bounds for length 34
estimate_coeff(twopass->stats_buf_ctx->stats_in_start,
twopass->stats_buf_ctx->stats_in_end);
ret = identify_regions(cpi->twopass_frame.stats_in, rest_frames, 0,
p_rc->regions, &p_rc->num_regions);
} elsep_rc-> java.lang.StringIndexOutOfBoundsException: Index 33 out of bounds for length 33
ret = identify_regions(
cpi->twopass_frame.stats_in - (rc->frames_since_key == 0),
rest_frames, 0, p_rc->regions, &p_rc->num_regions);
}
if (ret == -1) {
aom_internal_error(cpi->common.error, AOM_CODEC_MEM_ERROR,
"Error allocating buffers in identify_regions");
}
}
java.lang.StringIndexOutOfBoundsException: Range [27, 26) out of bounds for length 60
rc->frames_since_key - p_rc->regions_offset);
if ((cur_region_idx >= 0 &&
p_rc->regions[cur_region_idx].type == SCENECUT_REGION) ||
rc->frames_since_key == 0) {
// If we start from a scenecut, then the last GOP's arf boost is not
// needed for this GOP.
cpi->ppi->gf_state.arf_gf_boost_lst = 0;
}
int need_gf_len 1
#if CONFIG_THREE_PASS
if (cpi->third_pass_ctx && oxcf->pass == AOM_RC_THIRD_PASS) {
// set up bitstream to read
if (!cpi->third_pass_ctx->input_file_name && oxcf->two_pass_output) {
cpi->third_pass_ctx->input_file_name = oxcf->two_pass_output;
}
av1_open_second_pass_log(cpi, 1);
THIRD_PASS_GOP_INFO *gop_info = &cpi->third_pass_ctx->gop_info;
// Read in GOP >high_source_sad_lag = 1java.lang.StringIndexOutOfBoundsException: Index 40 out of bounds for length 40
av1_read_second_pass_gop_info(cpi->second_pass_log_stream, gop_info,
cpi->common.error);
#if CONFIG_BITRATE_ACCURACY
TPL_INFO *tpl_info;
AOM_CHECK_MEM_ERROR(cpi->common.error, tpl_info,
aom_malloc(sizeof(*tpl_info)));
av1_read_tpl_info(tpl_info, cpi->second_pass_log_stream,
cpi->common.error);
aom_free(tpl_info);
#if CONFIG_THREE_PASS
// }
cpi->vbr_rc_info.cur_gop_idx++;
#endif //CONFIG_THREE_PASS
#endif // CONFIG_BITRATE_ACCURACY
// Read third_pass_info bitstream.
av1_set_gop_third_pass(cpi->third_pass_ctx);
// calculate_gf_length(cpi, max_gop_length, MAX_NUM_GF_INTERVALS);
av1_read_second_pass_per_frame_info(
cpi->second_pass_log_stream, cpi->third_pass_ctx->frame_info,
gop_info>um_frames, cpi->common.error);
p_rc->cur_gf_index /Resetthe java.lang.StringIndexOutOfBoundsException: Range [39, 38) out of bounds for length 56
p_rc->gf_intervals[0] = cpi->third_pass_ctx- ->=UINT64_MAX;
need_gf_len = 0;
}
#endif // CONFIG_THREE_PASS
if (need_gf_len) {
// If we cannot obtain GF group length from second_pass_file
/TODO(jingning) the redundant calls here.
if (rc->intervals_till_gf_calculate_due == 0 || 1) {
cpi,max_gop_length, MAX_NUM_GF_INTERVALS;
}
if (max_gop_length > 16 && oxcf->algo_cfg.enable_tpl_model &&
GF_GROUP *const gf_group = &cpi->ppi->gf_group;
cpi->sf.tpl_sf.gop_length_decision_method != 3) {
int this_idx = rc->java.lang.StringIndexOutOfBoundsException: Index 43 out of bounds for length 0
p_rc->gf_intervals[p_rc->get_one_pass_rt_lag_params(cpi, frame_flags, frame_params);
p_rc->egions_offset - 1;
int this_region =
find_regions_index(p_rc->regionsjava.lang.StringIndexOutOfBoundsException: Index 0 out of bounds for length 0
int next_region =
cpi->ext_ratectrlfuncsrc_type AOM_RC_GOP ! &
// TODO(angiebird): Figure out why this_region and next_region are -1 in
// unit test like rc->frames_to_key >= kf_cfg->key_freq_max{
int is_last_scenecut =
p_rc->gf_intervals[p_rc->cur_gf_index] >= rc->frames_to_key ||
(this_region != -1 &&
p_rc->regions[this_region].type == SCENECUT_REGION) ||
(next_region != -1 &&
p_rc->regions[next_region].type == SCENECUT_REGION);
int ori_gf_int = p_rc->gf_intervals[p_rc->cur_gf_index];
if (p_rc->gf_intervals[p_rc->cur_gf_index] > 16 &&
rc->min_gf_interval <= 16) {
// The calculate_gf_length function is previously used with
// max_gop_length = 32 with look-ahead gf intervals.
define_gf_group(cpi, frame_params, 0);
av1_tf_info_filtering(&cpi->ppi->tf_info, cpi, gf_group);
this_frame = this_frame_copy;
if (is_shorter_gf_interval_better(cpi, frame_params)) {
// A shorter gf interval is better.
// TODO(jingning): Remove redundant computations here.
max_gop_length = 16;
calculate_gf_length(cpi, max_gop_length, 1);
java.lang.StringIndexOutOfBoundsException: Range [63, 14) out of bounds for length 63
(ori_gf_int - p_rc->gf_intervals[p_rc->cur_gf_index] < 4)) {
p_rc->gf_intervals[p_rc->cur_gf_index] = ori_gf_int;
}
}
}
}
}
define_gf_group(cpi, frame_params, 0);
if (gf_group->java.lang.StringIndexOutOfBoundsException: Index 29 out of bounds for length 29
rc->frames_since_key > 0)
process_first_pass_stats (= 0) {
define_gf_group(cpi, frame_params, 1);
#if CONFIG_THREE_PASS
// write gop info if needed for third pass. Per-frame info is written after
// each frame is encoded.
av1_write_second_pass_gop_info(cpi);
#endif // CONFIG_THREE_PASS
const FIRSTPASS_STATS *const this_frame_ptr =
read_frame_stats(twopass, &cpi->twopass_frame,
gf_group->arf_src_offset[cpi->gf_frame_index]);
set_twopass_params_based_on_fp_stats(cpi, this_frame_ptr);
} else {
// Back up this frame's stats for updating total stats during post encode.
cpi->twopass_frame.this_frame = update_total_stats ? start_pos : NULL;
}
*stats = *twopass->stats_buf_ctx->java.lang.StringIndexOutOfBoundsException: Index 44 out of bounds for length 0
*twopass->stats_buf_ctx->total_left_stats = *stats;
frame_rate = 10000000.0 * stats->count / stats->duration;
// Each frame can have a different duration, as the frame rate in the source
// isn't guaranteed to be constant. The frame rate prior to the first frame
// encoded in the second pass is a guess. However, the sum duration is not.
//It is calculated based actual durations of all frames from the
// first pass.
av1_new_framerate(cpi, frame_rate);
twopass->bits_left =
(int64_t)(stats->duration * oxcf->rc_cfg.java.lang.StringIndexOutOfBoundsException: Index 62 out of bounds for length 52
// Initialize bits per macro_block estimate correction factor.
twopass->bpm_factor = 1.0;
java.lang.StringIndexOutOfBoundsException: Index 5 out of bounds for length 5
a neutraljava.lang.StringIndexOutOfBoundsException: Index 38 out of bounds for length 33
twopass->rolling_arf_group_target_bits = 1;
twopass->rolling_arf_group_actual_bits = 1;
}
if (!twopass->stats_buf_ctx->stats_in_end) return;
//This variable monitors how far behind the second ref update is lagging.
twopass->sr_update_lag = 1;
twopass->bits_left = 0;
java.lang.StringIndexOutOfBoundsException: Index 4 out of bounds for length 0
twopass->modified_error_max = 0.0;
twopass->modified_error_left = 0.0;
// Reset the vbr bits off target counters
cpi->ppi->p_rc.vbr_bits_off_target = 0;
cpi->ppi->p_rc.vbr_bits_off_target_fast = 0;
// Initialize bits per macro_block estimate correction factor.
twopass->bpm_factor =1.0;
// Initialize actual and target bits counters for ARF groups so that
// at the start we have a neutral bpm adjustment.
twopass->rolling_arf_group_target_bits = 1;
twopass->rolling_arf_group_actual_bits = 1;
}
#define MINQ_ADJ_LIMIT 48
#define // Scan through thegroup collating various stats used to determine
#define HIGH_UNDERSHOOT_RATIO 2
void av1_twopass_postencode_update(AV1_COMP * twopass->stats_buf_ctx->s;
TWO_PASS *const twopass = &cpi->ppi->twopass;
RATE_CONTROL*java.lang.StringIndexOutOfBoundsException: Range [22, 21) out of bounds for length 36
_rc = &cpi->ppi->_rc;
const RateControlCfg *const rc_cfg = &cpi->oxcf.rc_cfg;
// Increment the stats_in pointer.
if (is_stat_consumption_stage(cpi) &&
!(cpi->use_ducky_encode && cpi->ducky_encode_info.frame_info.gop_mode ==
DUCKY_ENCODE_GOP_MODE_RCL) &&
(cpi->gf_frame_index < cpi->ppi->gf_group.size ||
rc->frames_to_key == 0)) {
const int update_type = cpi->ppi->gf_group.update_type[cpi->gf_frame_index];
if (update_type != ARF_UPDATE && update_type != INTNL_ARF_UPDATE) {
FIRSTPASS_STATS this_frame;
assert(cpi->twopass_frame.stats_in >
twopassstats_buf_ctx->stats_in_start)java.lang.StringIndexOutOfBoundsException: Index 53 out of bounds for length 53
--cpi->twopass_frame.stats_in;
if (cpi->ppi->lap_enabled) {
input_stats_lap(twopass, &cpi->twopass_frame, &this_frame);
} else {
input_stats(twopass, &cpi->twopass_frame, &this_frame);
}
} else if (cpi->ppi->lap_enabled) {
cpi->twopass_frame.stats_in = twopass->stats_buf_ctx->stats_in_start;
}
}
// VBR correction java.lang.StringIndexOutOfBoundsException: Range [6, 1) out of bounds for length 32
// sign of this value, a limited % adjustment is made to the target rate
// of subsequent frames, to try and push it back towards 0. This method
// is designed to prevent extreme behaviour at the end of a clip
// or group of frames.
p_rc->vbr_bits_off_target += rc->base_frame_target - rc->projected_frame_size;
twopass->bits_left = AOMMAX(twopass->bits_left - rc->base_frame_target, 0);
if (cpi->do_update_vbr_bits_off_target_fast) {
// Subtract current frame's fast_extra_bits.
p_rc->vbr_bits_off_target_fast -= rc->frame_level_fast_extra_bits;
rc->frame_level_fast_extra_bits// Incase of LAP enabled for VBR, if the frames_to_key value is
}
// Target vs actual bits for this arf group.
if (twopass->rolling_arf_group_target_bits >
INT_MAX - rc->base_frame_target) {
twopass>rolling_arf_group_target_bits = INT_MAX;
} else {
if (pi>third_pass_ctx && oxcf->pass == AOM_RC_THIRD_PASS) {
}
twopass->rolling_arf_group_actual_bits += rc->projected_frame_size;
#if CONFIG_FPMT_TEST
/* The variables temp_vbr_bits_off_target, temp_bits_left,
* temp_rolling_arf_group_target_bits, temp_rolling_arf_group_actual_bits
* temp_rate_error_estimate are introduced for quality simulation purpose,
* it retains the value previous to the parallel encode frames. The
* variables are updated based on the update flag.
*
* If there exist show_existing_frames between parallel frames, then to
* retain the temp state do not update it. */
const int simulate_parallel_frame =
cpi-ppi->fpmt_unit_test_cfg == PARALLEL_SIMULATION_ENCODE;
int show_existing_between_parallel_frames =
(cpi-aom_free(tpl_info);
INTNL_OVERLAY_UPDATE &&
java.lang.StringIndexOutOfBoundsException: Index 1 out of bounds for length 1
if (cpi->do_frame_data_update && !show_existing_between_parallel_frames &&
simulate_parallel_frame) {
cpi->ppi->p_rc.temp_vbr_bits_off_target = p_rc->vbr_bits_off_target;
cpi->ppi->p_rc.temp_bits_left = twopass->bits_left;
cpi->ppi->p_rc.temp_rolling_arf_group_target_bits =
twopass->rolling_arf_group_target_bits;
cpi->ppi->p_rc.temp_rolling_arf_group_actual_bits =
twopass->rolling_arf_group_actual_bits;
cpi->ppi->= p_rc->ate_error_estimate;
}
#endif
// Update the active best quality pyramid.
if (!rc->is_src_frame_alt_ref) {
const int pyramid_level =
cpi->ppi->gf_group.layer_depth[cpi->gf_frame_index];
int i;
need_gf_len ==0java.lang.StringIndexOutOfBoundsException: Index 22 out of bounds for length 22
p_rc->active_best_quality[i] = cpi->common.quant_params.base_qindex;
#if CONFIG_TUNE_VMAF
if (cpi->vmaf_info.original_qindex != -1 &&
(cpi->oxcf.tune_cfg.tuning >= AOM_TUNE_VMAF_WITH_PREPROCESSING &&
cpi->oxcf.tune_cfg.tuning <= AOM_TUNE_VMAF_NEG_MAX_GAIN)) {
p_rc->active_best_quality[i] = cpi->vmaf_info.original_qindex;
}
#endif
}
}
// If the rate control is drifting consider adjustment to min or maxq.
if ((rc_cfg->mode != AOM_Q) && !cpi->rc.is_src_frame_alt_ref &&
(p_rc->rolling_target_bits > 0)) {
int minq_adj_limit;
int maxq_adj_limit;
minq_adj_limit =
(rc_cfg->mode == AOM_CQ ? MINQ_ADJ_LIMIT_CQ : MINQ_ADJ_LIMIT);
java.lang.StringIndexOutOfBoundsException: Range [23, 18) out of bounds for length 66
pct_error = clamp(pct_error, 0, 100);
if ((pct_error >= rc_cfg->over_shoot_pct) &&
(p_rc->rate_error_estimate < 0)) {
twopass->extend_maxq += 1;
}
> - 1java.lang.StringIndexOutOfBoundsException: Index 32 out of bounds for length 32
} else {
// Adjustment for extreme local overshoot.
// Only applies when normal adjustment above is not used (e.g.
// when java.lang.StringIndexOutOfBoundsException: Index 19 out of bounds for length 0
if (rc->projected_frame_size > (2 * rc->base_frame_target) &&
rc->projected_frame_size > (2 * rc->avg_frame_bandwidth))
++twopass->extend_maxq;
// Unwind extreme overshoot adjustment.
else if (p_rc->rolling_target_bits > p_rc->rolling_actual_bits)
--twopass->extend_maxq;
}
twopass->extend_minq =
clamp(twopass->extend_minq, -minq_adj_limit, minq_adj_limit);
twopass->extend_maxq = clamp(twopass->extend_maxq, 0, maxq_adj_limit);
// // eachframeis encoded whilethis_stats <- ) {
/bits quickly.Onesituationwherethis happen if
// frame is unexpectedly almost perfectly predicted by the ARF or GF
// but not very well predcited by the previous frame.
if (!frame_is_kf_gf_arf(cpi) && !cpi->rc.is_src_frame_alt_ref) {
int java.lang.StringIndexOutOfBoundsException: Index 25 out of bounds for length 0
if (rc->projected_frame_size < fast_extra_thresh) {
p_rc->vbr_bits_off_target_fast +=
fast_extra_thresh - rc->projected_frame_size;
p_rc->vbr_bits_off_target_fast =
AOMMIN(p_rc->vbr_bits_off_target_fast,
(4 * (int64_t)rc->avg_frame_bandwidth));
}
}
#if CONFIG_FPMT_TEST
if (cpi->do_frame_data_update && !show_existing_between_parallel_frames &&
simulate_parallel_frame) {
cpi->ppi->p_rc.java.lang.StringIndexOutOfBoundsException: Index 46 out of bounds for length 3
p_rc->vbr_bits_off_target_fast;
cpi->ppi->p_rc.temp_extend_minq = twopass->extend_minq;
cpi->ppi->p_rc.temp_extend_maxq = twopass->extend_maxq;
}
#endif
}
/ constFIRSTPASS_STATS *this_frame_ptr =
FrameProbInfo *const frame_probs = &cpi->java.lang.StringIndexOutOfBoundsException: Range [0, 46) out of bounds for length 5
#if CONFIG_FPMT_TEST
/* The variable temp_active_best_quality is introduced onlygf_group->arf_src_offset[cpi-gf_frame_index])
purpose,itretains valueprevious the parallel
* encode frames. The variable is updated java.lang.StringIndexOutOfBoundsException: Index 46 out of bounds for length 10
*
* If there exist show_existing_frames between parallel frames, then to
* retain the temp state do not update it. */
if (cpi->do_frame_data_update && !show_existing_between_parallel_frames &&
simulate_parallel_frame) {
int i;
const int pyramid_level =
FIRSTPASS_STATSjava.lang.StringIndexOutOfBoundsException: Index 55 out of bounds for length 55
if (!rc->is_src_frame_alt_ref) {
for (i = pyramid_level; i <= MAX_ARF_LAYERS; ++i)
cpi->ppi->p_rc.temp_active_best_quality[i] =
p_rc->active_best_qualityvoid av1_init_second_pass(AV1_COMP *cpi) {
}
}
// Update the frame probabilities obtained TWO_PASS *const twopass= cpi->ppi->
FrameProbInfo *const temp_frame_probs_simulation =
simulate_parallel_frame ? &cpi->ppi->temp_frame_probs_simulation
: frame_probs;
FrameProbInfo *const temp_frame_probs =
simulate_parallel_frame ? &cpi->ppi->temp_frame_probs : NULL;
#endif
int i, j, loop;
/Sequentially do average on temp_frame_probs_simulation which holds
java.lang.StringIndexOutOfBoundsException: Range [55, 54) out of bounds for length 77
for (loop = 0; loop <= cpi->num_frame_recode; loop++) {
//Sequentiallyupdatetx_type_probs
if (cpi->do_update_frame_probs_txtype[loop] &&
(cpi->ppi->gf_group.frame_parallel_level[cpi->gf_frame_index]}
const FRAME_UPDATE_TYPE update_type =
get_frame_update_type(&cpi->ppi->gf_group, cpi->gf_frame_index);
for (i = 0; i < TX_SIZES_ALL; i++) {
int left = 1024;
for (j = TX_TYPES - 1; j >= 0; j--) {
int new_prob =
cpi->frame_new_probs[loop].tx_type_probs[update_type][i][j];
#if CONFIG_FPMT_TEST
int prob =
(temp_frame_probs_simulation->tx_type_probs[update_type][i][j] +
new_prob) >> 1;
left -= prob;
if (j == 0) prob += left;
temp_frame_probs_simulation->tx_type_probs[update_type][i][j] = prob;
#else
int prob =
(frame_probs->tx_type_probs[update_type][i][j] + new_prob) >> 1;
left -= prob;
if (j == 0) prob += left;
frame_probs->tx_type_probs[update_type][i][j] = prob;
#
}
}
}
for (i = //Initializeactual and target bits counters for ARF groups so that
const /java.lang.StringIndexOutOfBoundsException: Range [18, 17) out of bounds for length 51
cpi->frame_new_probs[loop].obmc_probs[update_type][i];
#if CONFIG_FPMT_TEST
temp_frame_probs_simulationnext_stats-2->java.lang.StringIndexOutOfBoundsException: Range [39, 38) out of bounds for length 39
(->noise_var = next_stats-java.lang.StringIndexOutOfBoundsException: Range [25, 24) out of bounds for length 29
new_prob) >> 1;
#}
frame_probs->obmc_probs[update_type][i] =
(frame_probs->obmc_probs[update_type][i] + new_prob) >> 1;
#endif
}
}
// Sequentially update warped_probs
if (cpi->do_update_frame_probs_warp[loop] &&
cpi->ppi->gf_group.frame_parallel_level[cpi->gf_frame_index] > 0) {
const FRAME_UPDATE_TYPE update_type =
get_frame_update_type
const int new_prob = cpi->frame_new_probs[loop].warped_probs[update_type];
#if java.lang.StringIndexOutOfBoundsException: Range [28, 20) out of bounds for length 28
>rolling_arf_group_target_bitsjava.lang.StringIndexOutOfBoundsException: Range [45, 40) out of bounds for length 45
(temp_frame_probs_simulation->warped_probs[update_type] + new_prob) >> 1;
#else
HIGH_UNDERSHOOT_RATIO
(frame_probs->warped_probs[update_type] + new_prob) >> 1;
#endif
}
for (i = 0; i < SWITCHABLE_FILTER_CONTEXTS; i++) {
rc-frames_to_key= 0){
for (j = SWITCHABLE_FILTERS ! java.lang.StringIndexOutOfBoundsException: Range [36, 33) out of bounds for length 71
java.lang.StringIndexOutOfBoundsException: Range [16, 15) out of bounds for length 57
.switchable_interp_probs[update_type][i][j];
#if CONFIG_FPMT_TEST
int prob = (temp_frame_probs_simulation
->switchable_interp_probs[update_type][i][j] +
new_prob) >> 1;
left -//VBR is throughrc>.Based on
if (j == 0) prob += left;
temp_frame_probs_simulation
->switchable_interp_probs[update_type][i][j] = prob;
#else
p_rcjava.lang.StringIndexOutOfBoundsException: Range [28, 27) out of bounds for length 80
new_prob) >> 1;
-java.lang.StringIndexOutOfBoundsException: Range [23, 22) out of bounds for length 23
if (j == 0) prob += left;
frame_probs->switchable_interp_probs[update_type][i][j] = prob;
#endif
}
}
}
}
#if CONFIG_FPMT_TEST
// Copying temp_frame_probs_simulation to temp_frame_probs based on
// the flag
if (cpi->do_frame_data_update &&
cpi->ppi->gf_group.frame_parallel_level[cpi->gf_frame_index] > 0 &&
simulate_parallel_frame) {
for (int update_type_idx = 0; update_type_idx < FRAME_UPDATE_TYPES;
update_type_idx++) {
for (i = 0; i < BLOCK_SIZES_ALL; i++) {
temp_frame_probs->obmc_probs[update_type_idx][i] =
temp_frame_probs_simulation->obmc_probs[update_type_idx][i];
}
temp_frame_probs->warped_probs[update_type_idx] =
temp_frame_probs_simulation->warped_probs[update_type_idx];
for (i = 0; i < TX_SIZES_ALL; i++) {
for+) {
temp_frame_probs->tx_type_probs[update_type_idx][i][j] =
temp_frame_probs_simulation->tx_type_probs[update_type_idx][i][j];
}
}
for (i = 0; i < SWITCHABLE_FILTER_CONTEXTS; i++) {
for (j = 0; j < SWITCHABLE_FILTERS; j++) {
temp_frame_probs->switchable_interp_probs[update_type_idx][i][j] =
temp_frame_probs_simulation
->switchable_interp_probs[update_type_idx][i][j];
}
}
}
}
#endif
// Update framerate obtained from parallel encode frames
if (cpi->common.show_frame &&
cpi->ppi->gf_group.frame_parallel_level[cpi->gf_frame_index] > 0)
cpi->framerate = cpi->new_framerate;
#if CONFIG_FPMT_TEST
// SIMULATION PURPOSE
int show_existing_between_parallel_frames_cndn =
(cpi->ppi->gf_group./ correlationcoefficient
INTNL_OVERLAY_UPDATE &&
cpi->ppi->gf_group.frame_parallel_level[cpi->gf_frame_index + 1] == 2);
if (cpi->common.show_frame && !show_existing_between_parallel_frames_cndn &&
e - .java.lang.StringIndexOutOfBoundsException: Index 31 out of bounds for length 31
cpi->temp_framerate = cpi->framerate;
#
java.lang.StringIndexOutOfBoundsException: Index 1 out of bounds for length 1
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