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/*
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* Copyright (c) 1999 Chris Bagwell
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* Copyright (c) 1999 Nick Bailey
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* Copyright (c) 2007 Rob Sykes <[email protected]>
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* Copyright (c) 2013 Paul B Mahol
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* Copyright (c) 2014 Andrew Kelley
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*
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* This file is part of FFmpeg.
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*
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* FFmpeg is free software; you can redistribute it and/or
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* modify it under the terms of the GNU Lesser General Public
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* License as published by the Free Software Foundation; either
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* version 2.1 of the License, or (at your option) any later version.
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*
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* FFmpeg is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
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* Lesser General Public License for more details.
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*
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* You should have received a copy of the GNU Lesser General Public
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* License along with FFmpeg; if not, write to the Free Software
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* Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
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*/
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/**
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* @file
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* audio compand filter
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*/
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#include "libavutil/avassert.h"
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#include "libavutil/avstring.h"
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#include "libavutil/opt.h"
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#include "libavutil/samplefmt.h"
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#include "audio.h"
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#include "avfilter.h"
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#include "internal.h"
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typedef struct ChanParam {
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double attack;
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double decay;
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double volume;
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} ChanParam;
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typedef struct CompandSegment {
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double x, y;
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double a, b;
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} CompandSegment;
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typedef struct CompandContext {
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const AVClass *class;
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int nb_segments;
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char *attacks, *decays, *points;
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CompandSegment *segments;
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ChanParam *channels;
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double in_min_lin;
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double out_min_lin;
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double curve_dB;
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double gain_dB;
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double initial_volume;
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double delay;
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AVFrame *delay_frame;
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int delay_samples;
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int delay_count;
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int delay_index;
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int64_t pts;
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int (*compand)(AVFilterContext *ctx, AVFrame *frame);
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} CompandContext;
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#define OFFSET(x) offsetof(CompandContext, x)
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#define A AV_OPT_FLAG_AUDIO_PARAM|AV_OPT_FLAG_FILTERING_PARAM
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static const AVOption compand_options[] = {
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{ "attacks", "set time over which increase of volume is determined", OFFSET(attacks), AV_OPT_TYPE_STRING, { .str = "0.3" }, 0, 0, A },
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{ "decays", "set time over which decrease of volume is determined", OFFSET(decays), AV_OPT_TYPE_STRING, { .str = "0.8" }, 0, 0, A },
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{ "points", "set points of transfer function", OFFSET(points), AV_OPT_TYPE_STRING, { .str = "-70/-70|-60/-20" }, 0, 0, A },
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{ "soft-knee", "set soft-knee", OFFSET(curve_dB), AV_OPT_TYPE_DOUBLE, { .dbl = 0.01 }, 0.01, 900, A },
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{ "gain", "set output gain", OFFSET(gain_dB), AV_OPT_TYPE_DOUBLE, { .dbl = 0 }, -900, 900, A },
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{ "volume", "set initial volume", OFFSET(initial_volume), AV_OPT_TYPE_DOUBLE, { .dbl = 0 }, -900, 0, A },
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{ "delay", "set delay for samples before sending them to volume adjuster", OFFSET(delay), AV_OPT_TYPE_DOUBLE, { .dbl = 0 }, 0, 20, A },
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{ NULL }
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};
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AVFILTER_DEFINE_CLASS(compand);
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static av_cold int init(AVFilterContext *ctx)
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{
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CompandContext *s = ctx->priv;
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s->pts = AV_NOPTS_VALUE;
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return 0;
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}
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static av_cold void uninit(AVFilterContext *ctx)
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{
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CompandContext *s = ctx->priv;
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av_freep(&s->channels);
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av_freep(&s->segments);
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av_frame_free(&s->delay_frame);
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}
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static int query_formats(AVFilterContext *ctx)
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{
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AVFilterChannelLayouts *layouts;
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AVFilterFormats *formats;
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static const enum AVSampleFormat sample_fmts[] = {
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AV_SAMPLE_FMT_DBLP,
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AV_SAMPLE_FMT_NONE
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};
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int ret;
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layouts = ff_all_channel_counts();
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if (!layouts)
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return AVERROR(ENOMEM);
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ret = ff_set_common_channel_layouts(ctx, layouts);
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if (ret < 0)
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return ret;
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119
formats = ff_make_format_list(sample_fmts);
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if (!formats)
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return AVERROR(ENOMEM);
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ret = ff_set_common_formats(ctx, formats);
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if (ret < 0)
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return ret;
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formats = ff_all_samplerates();
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if (!formats)
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return AVERROR(ENOMEM);
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return ff_set_common_samplerates(ctx, formats);
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}
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static void count_items(char *item_str, int *nb_items)
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{
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char *p;
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*nb_items = 1;
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for (p = item_str; *p; p++) {
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if (*p == ' ' || *p == '|')
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(*nb_items)++;
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}
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}
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static void update_volume(ChanParam *cp, double in)
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{
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double delta = in - cp->volume;
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if (delta > 0.0)
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cp->volume += delta * cp->attack;
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else
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cp->volume += delta * cp->decay;
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}
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153
static double get_volume(CompandContext *s, double in_lin)
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{
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CompandSegment *cs;
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double in_log, out_log;
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int i;
158
159
if (in_lin < s->in_min_lin)
160
return s->out_min_lin;
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162
in_log = log(in_lin);
163
164
for (i = 1; i < s->nb_segments; i++)
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if (in_log <= s->segments[i].x)
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break;
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cs = &s->segments[i - 1];
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in_log -= cs->x;
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out_log = cs->y + in_log * (cs->a * in_log + cs->b);
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return exp(out_log);
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}
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static int compand_nodelay(AVFilterContext *ctx, AVFrame *frame)
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{
176
CompandContext *s = ctx->priv;
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AVFilterLink *inlink = ctx->inputs[0];
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const int channels = inlink->channels;
179
const int nb_samples = frame->nb_samples;
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AVFrame *out_frame;
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int chan, i;
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int err;
183
184
if (av_frame_is_writable(frame)) {
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out_frame = frame;
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} else {
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out_frame = ff_get_audio_buffer(inlink, nb_samples);
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if (!out_frame) {
189
av_frame_free(&frame);
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return AVERROR(ENOMEM);
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}
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err = av_frame_copy_props(out_frame, frame);
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if (err < 0) {
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av_frame_free(&out_frame);
195
av_frame_free(&frame);
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return err;
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}
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}
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200
for (chan = 0; chan < channels; chan++) {
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const double *src = (double *)frame->extended_data[chan];
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double *dst = (double *)out_frame->extended_data[chan];
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ChanParam *cp = &s->channels[chan];
204
205
for (i = 0; i < nb_samples; i++) {
206
update_volume(cp, fabs(src[i]));
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208
dst[i] = src[i] * get_volume(s, cp->volume);
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}
210
}
211
212
if (frame != out_frame)
213
av_frame_free(&frame);
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return ff_filter_frame(ctx->outputs[0], out_frame);
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}
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#define MOD(a, b) (((a) >= (b)) ? (a) - (b) : (a))
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220
static int compand_delay(AVFilterContext *ctx, AVFrame *frame)
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{
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CompandContext *s = ctx->priv;
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AVFilterLink *inlink = ctx->inputs[0];
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const int channels = inlink->channels;
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const int nb_samples = frame->nb_samples;
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int chan, i, av_uninit(dindex), oindex, av_uninit(count);
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AVFrame *out_frame = NULL;
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int err;
229
230
if (s->pts == AV_NOPTS_VALUE) {
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s->pts = (frame->pts == AV_NOPTS_VALUE) ? 0 : frame->pts;
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}
233
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av_assert1(channels > 0); /* would corrupt delay_count and delay_index */
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for (chan = 0; chan < channels; chan++) {
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AVFrame *delay_frame = s->delay_frame;
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const double *src = (double *)frame->extended_data[chan];
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double *dbuf = (double *)delay_frame->extended_data[chan];
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ChanParam *cp = &s->channels[chan];
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double *dst;
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count = s->delay_count;
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dindex = s->delay_index;
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for (i = 0, oindex = 0; i < nb_samples; i++) {
246
const double in = src[i];
247
update_volume(cp, fabs(in));
248
249
if (count >= s->delay_samples) {
250
if (!out_frame) {
251
out_frame = ff_get_audio_buffer(inlink, nb_samples - i);
252
if (!out_frame) {
253
av_frame_free(&frame);
254
return AVERROR(ENOMEM);
255
}
256
err = av_frame_copy_props(out_frame, frame);
257
if (err < 0) {
258
av_frame_free(&out_frame);
259
av_frame_free(&frame);
260
return err;
261
}
262
out_frame->pts = s->pts;
263
s->pts += av_rescale_q(nb_samples - i,
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(AVRational){ 1, inlink->sample_rate },
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inlink->time_base);
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}
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dst = (double *)out_frame->extended_data[chan];
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dst[oindex++] = dbuf[dindex] * get_volume(s, cp->volume);
270
} else {
271
count++;
272
}
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dbuf[dindex] = in;
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dindex = MOD(dindex + 1, s->delay_samples);
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}
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}
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279
s->delay_count = count;
280
s->delay_index = dindex;
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282
av_frame_free(&frame);
283
284
if (out_frame) {
285
err = ff_filter_frame(ctx->outputs[0], out_frame);
286
return err;
287
}
288
289
return 0;
290
}
291
292
static int compand_drain(AVFilterLink *outlink)
293
{
294
AVFilterContext *ctx = outlink->src;
295
CompandContext *s = ctx->priv;
296
const int channels = outlink->channels;
297
AVFrame *frame = NULL;
298
int chan, i, dindex;
299
300
/* 2048 is to limit output frame size during drain */
301
frame = ff_get_audio_buffer(outlink, FFMIN(2048, s->delay_count));
302
if (!frame)
303
return AVERROR(ENOMEM);
304
frame->pts = s->pts;
305
s->pts += av_rescale_q(frame->nb_samples,
306
(AVRational){ 1, outlink->sample_rate }, outlink->time_base);
307
308
av_assert0(channels > 0);
309
for (chan = 0; chan < channels; chan++) {
310
AVFrame *delay_frame = s->delay_frame;
311
double *dbuf = (double *)delay_frame->extended_data[chan];
312
double *dst = (double *)frame->extended_data[chan];
313
ChanParam *cp = &s->channels[chan];
314
315
dindex = s->delay_index;
316
for (i = 0; i < frame->nb_samples; i++) {
317
dst[i] = dbuf[dindex] * get_volume(s, cp->volume);
318
dindex = MOD(dindex + 1, s->delay_samples);
319
}
320
}
321
s->delay_count -= frame->nb_samples;
322
s->delay_index = dindex;
323
324
return ff_filter_frame(outlink, frame);
325
}
326
327
static int config_output(AVFilterLink *outlink)
328
{
329
AVFilterContext *ctx = outlink->src;
330
CompandContext *s = ctx->priv;
331
const int sample_rate = outlink->sample_rate;
332
double radius = s->curve_dB * M_LN10 / 20.0;
333
char *p, *saveptr = NULL;
334
const int channels = outlink->channels;
335
int nb_attacks, nb_decays, nb_points;
336
int new_nb_items, num;
337
int i;
338
int err;
339
340
341
count_items(s->attacks, &nb_attacks);
342
count_items(s->decays, &nb_decays);
343
count_items(s->points, &nb_points);
344
345
if (channels <= 0) {
346
av_log(ctx, AV_LOG_ERROR, "Invalid number of channels: %d\n", channels);
347
return AVERROR(EINVAL);
348
}
349
350
if (nb_attacks > channels || nb_decays > channels) {
351
av_log(ctx, AV_LOG_ERROR,
352
"Number of attacks/decays bigger than number of channels.\n");
353
return AVERROR(EINVAL);
354
}
355
356
uninit(ctx);
357
358
s->channels = av_mallocz_array(channels, sizeof(*s->channels));
359
s->nb_segments = (nb_points + 4) * 2;
360
s->segments = av_mallocz_array(s->nb_segments, sizeof(*s->segments));
361
362
if (!s->channels || !s->segments) {
363
uninit(ctx);
364
return AVERROR(ENOMEM);
365
}
366
367
p = s->attacks;
368
for (i = 0, new_nb_items = 0; i < nb_attacks; i++) {
369
char *tstr = av_strtok(p, " |", &saveptr);
370
p = NULL;
371
new_nb_items += sscanf(tstr, "%lf", &s->channels[i].attack) == 1;
372
if (s->channels[i].attack < 0) {
373
uninit(ctx);
374
return AVERROR(EINVAL);
375
}
376
}
377
nb_attacks = new_nb_items;
378
379
p = s->decays;
380
for (i = 0, new_nb_items = 0; i < nb_decays; i++) {
381
char *tstr = av_strtok(p, " |", &saveptr);
382
p = NULL;
383
new_nb_items += sscanf(tstr, "%lf", &s->channels[i].decay) == 1;
384
if (s->channels[i].decay < 0) {
385
uninit(ctx);
386
return AVERROR(EINVAL);
387
}
388
}
389
nb_decays = new_nb_items;
390
391
if (nb_attacks != nb_decays) {
392
av_log(ctx, AV_LOG_ERROR,
393
"Number of attacks %d differs from number of decays %d.\n",
394
nb_attacks, nb_decays);
395
uninit(ctx);
396
return AVERROR(EINVAL);
397
}
398
399
for (i = nb_decays; i < channels; i++) {
400
s->channels[i].attack = s->channels[nb_decays - 1].attack;
401
s->channels[i].decay = s->channels[nb_decays - 1].decay;
402
}
403
404
#define S(x) s->segments[2 * ((x) + 1)]
405
p = s->points;
406
for (i = 0, new_nb_items = 0; i < nb_points; i++) {
407
char *tstr = av_strtok(p, " |", &saveptr);
408
p = NULL;
409
if (sscanf(tstr, "%lf/%lf", &S(i).x, &S(i).y) != 2) {
410
av_log(ctx, AV_LOG_ERROR,
411
"Invalid and/or missing input/output value.\n");
412
uninit(ctx);
413
return AVERROR(EINVAL);
414
}
415
if (i && S(i - 1).x > S(i).x) {
416
av_log(ctx, AV_LOG_ERROR,
417
"Transfer function input values must be increasing.\n");
418
uninit(ctx);
419
return AVERROR(EINVAL);
420
}
421
S(i).y -= S(i).x;
422
av_log(ctx, AV_LOG_DEBUG, "%d: x=%f y=%f\n", i, S(i).x, S(i).y);
423
new_nb_items++;
424
}
425
num = new_nb_items;
426
427
/* Add 0,0 if necessary */
428
if (num == 0 || S(num - 1).x)
429
num++;
430
431
#undef S
432
#define S(x) s->segments[2 * (x)]
433
/* Add a tail off segment at the start */
434
S(0).x = S(1).x - 2 * s->curve_dB;
435
S(0).y = S(1).y;
436
num++;
437
438
/* Join adjacent colinear segments */
439
for (i = 2; i < num; i++) {
440
double g1 = (S(i - 1).y - S(i - 2).y) * (S(i - 0).x - S(i - 1).x);
441
double g2 = (S(i - 0).y - S(i - 1).y) * (S(i - 1).x - S(i - 2).x);
442
int j;
443
444
if (fabs(g1 - g2))
445
continue;
446
num--;
447
for (j = --i; j < num; j++)
448
S(j) = S(j + 1);
449
}
450
451
for (i = 0; i < s->nb_segments; i += 2) {
452
s->segments[i].y += s->gain_dB;
453
s->segments[i].x *= M_LN10 / 20;
454
s->segments[i].y *= M_LN10 / 20;
455
}
456
457
#define L(x) s->segments[i - (x)]
458
for (i = 4; i < s->nb_segments; i += 2) {
459
double x, y, cx, cy, in1, in2, out1, out2, theta, len, r;
460
461
L(4).a = 0;
462
L(4).b = (L(2).y - L(4).y) / (L(2).x - L(4).x);
463
464
L(2).a = 0;
465
L(2).b = (L(0).y - L(2).y) / (L(0).x - L(2).x);
466
467
theta = atan2(L(2).y - L(4).y, L(2).x - L(4).x);
468
len = hypot(L(2).x - L(4).x, L(2).y - L(4).y);
469
r = FFMIN(radius, len);
470
L(3).x = L(2).x - r * cos(theta);
471
L(3).y = L(2).y - r * sin(theta);
472
473
theta = atan2(L(0).y - L(2).y, L(0).x - L(2).x);
474
len = hypot(L(0).x - L(2).x, L(0).y - L(2).y);
475
r = FFMIN(radius, len / 2);
476
x = L(2).x + r * cos(theta);
477
y = L(2).y + r * sin(theta);
478
479
cx = (L(3).x + L(2).x + x) / 3;
480
cy = (L(3).y + L(2).y + y) / 3;
481
482
L(2).x = x;
483
L(2).y = y;
484
485
in1 = cx - L(3).x;
486
out1 = cy - L(3).y;
487
in2 = L(2).x - L(3).x;
488
out2 = L(2).y - L(3).y;
489
L(3).a = (out2 / in2 - out1 / in1) / (in2 - in1);
490
L(3).b = out1 / in1 - L(3).a * in1;
491
}
492
L(3).x = 0;
493
L(3).y = L(2).y;
494
495
s->in_min_lin = exp(s->segments[1].x);
496
s->out_min_lin = exp(s->segments[1].y);
497
498
for (i = 0; i < channels; i++) {
499
ChanParam *cp = &s->channels[i];
500
501
if (cp->attack > 1.0 / sample_rate)
502
cp->attack = 1.0 - exp(-1.0 / (sample_rate * cp->attack));
503
else
504
cp->attack = 1.0;
505
if (cp->decay > 1.0 / sample_rate)
506
cp->decay = 1.0 - exp(-1.0 / (sample_rate * cp->decay));
507
else
508
cp->decay = 1.0;
509
cp->volume = ff_exp10(s->initial_volume / 20);
510
}
511
512
s->delay_samples = s->delay * sample_rate;
513
if (s->delay_samples <= 0) {
514
s->compand = compand_nodelay;
515
return 0;
516
}
517
518
s->delay_frame = av_frame_alloc();
519
if (!s->delay_frame) {
520
uninit(ctx);
521
return AVERROR(ENOMEM);
522
}
523
524
s->delay_frame->format = outlink->format;
525
s->delay_frame->nb_samples = s->delay_samples;
526
s->delay_frame->channel_layout = outlink->channel_layout;
527
528
err = av_frame_get_buffer(s->delay_frame, 32);
529
if (err)
530
return err;
531
532
s->compand = compand_delay;
533
return 0;
534
}
535
536
static int filter_frame(AVFilterLink *inlink, AVFrame *frame)
537
{
538
AVFilterContext *ctx = inlink->dst;
539
CompandContext *s = ctx->priv;
540
541
return s->compand(ctx, frame);
542
}
543
544
static int request_frame(AVFilterLink *outlink)
545
{
546
AVFilterContext *ctx = outlink->src;
547
CompandContext *s = ctx->priv;
548
int ret = 0;
549
550
ret = ff_request_frame(ctx->inputs[0]);
551
552
if (ret == AVERROR_EOF && !ctx->is_disabled && s->delay_count)
553
ret = compand_drain(outlink);
554
555
return ret;
556
}
557
558
static const AVFilterPad compand_inputs[] = {
559
{
560
.name = "default",
561
.type = AVMEDIA_TYPE_AUDIO,
562
.filter_frame = filter_frame,
563
},
564
{ NULL }
565
};
566
567
static const AVFilterPad compand_outputs[] = {
568
{
569
.name = "default",
570
.request_frame = request_frame,
571
.config_props = config_output,
572
.type = AVMEDIA_TYPE_AUDIO,
573
},
574
{ NULL }
575
};
576
577
578
AVFilter ff_af_compand = {
579
.name = "compand",
580
.description = NULL_IF_CONFIG_SMALL(
581
"Compress or expand audio dynamic range."),
582
.query_formats = query_formats,
583
.priv_size = sizeof(CompandContext),
584
.priv_class = &compand_class,
585
.init = init,
586
.uninit = uninit,
587
.inputs = compand_inputs,
588
.outputs = compand_outputs,
589
};
590
591