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	77d4dfbec6
	
	
	
		
			
			simply by substracting pts to compensate delay also handle AV_NOPTS_VALUE Signed-off-by: Muhammad Faiz <mfcc64@gmail.com>
		
			
				
	
	
		
			600 lines
		
	
	
		
			20 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			600 lines
		
	
	
		
			20 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
| /*
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|  * Copyright (c) 2016 Muhammad Faiz <mfcc64@gmail.com>
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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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| #include "libavutil/opt.h"
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| #include "libavutil/eval.h"
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| #include "libavutil/avassert.h"
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| #include "libavcodec/avfft.h"
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| #include "avfilter.h"
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| #include "internal.h"
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| #include "audio.h"
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| 
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| #define RDFT_BITS_MIN 4
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| #define RDFT_BITS_MAX 16
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| 
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| enum WindowFunc {
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|     WFUNC_MIN,
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|     WFUNC_RECTANGULAR = WFUNC_MIN,
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|     WFUNC_HANN,
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|     WFUNC_HAMMING,
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|     WFUNC_BLACKMAN,
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|     WFUNC_NUTTALL3,
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|     WFUNC_MNUTTALL3,
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|     WFUNC_NUTTALL,
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|     WFUNC_BNUTTALL,
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|     WFUNC_BHARRIS,
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|     WFUNC_MAX = WFUNC_BHARRIS
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| };
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| 
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| #define NB_GAIN_ENTRY_MAX 4096
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| typedef struct {
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|     double  freq;
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|     double  gain;
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| } GainEntry;
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| 
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| typedef struct {
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|     int buf_idx;
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|     int overlap_idx;
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| } OverlapIndex;
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| 
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| typedef struct {
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|     const AVClass *class;
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| 
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|     RDFTContext   *analysis_irdft;
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|     RDFTContext   *rdft;
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|     RDFTContext   *irdft;
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|     int           analysis_rdft_len;
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|     int           rdft_len;
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| 
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|     float         *analysis_buf;
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|     float         *kernel_tmp_buf;
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|     float         *kernel_buf;
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|     float         *conv_buf;
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|     OverlapIndex  *conv_idx;
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|     int           fir_len;
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|     int           nsamples_max;
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|     int64_t       next_pts;
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|     int           frame_nsamples_max;
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|     int           remaining;
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| 
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|     char          *gain_cmd;
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|     char          *gain_entry_cmd;
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|     const char    *gain;
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|     const char    *gain_entry;
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|     double        delay;
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|     double        accuracy;
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|     int           wfunc;
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|     int           fixed;
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|     int           multi;
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|     int           zero_phase;
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| 
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|     int           nb_gain_entry;
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|     int           gain_entry_err;
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|     GainEntry     gain_entry_tbl[NB_GAIN_ENTRY_MAX];
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| } FIREqualizerContext;
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| 
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| #define OFFSET(x) offsetof(FIREqualizerContext, x)
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| #define FLAGS AV_OPT_FLAG_AUDIO_PARAM|AV_OPT_FLAG_FILTERING_PARAM
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| 
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| static const AVOption firequalizer_options[] = {
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|     { "gain", "set gain curve", OFFSET(gain), AV_OPT_TYPE_STRING, { .str = "gain_interpolate(f)" }, 0, 0, FLAGS },
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|     { "gain_entry", "set gain entry", OFFSET(gain_entry), AV_OPT_TYPE_STRING, { .str = NULL }, 0, 0, FLAGS },
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|     { "delay", "set delay", OFFSET(delay), AV_OPT_TYPE_DOUBLE, { .dbl = 0.01 }, 0.0, 1e10, FLAGS },
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|     { "accuracy", "set accuracy", OFFSET(accuracy), AV_OPT_TYPE_DOUBLE, { .dbl = 5.0 }, 0.0, 1e10, FLAGS },
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|     { "wfunc", "set window function", OFFSET(wfunc), AV_OPT_TYPE_INT, { .i64 = WFUNC_HANN }, WFUNC_MIN, WFUNC_MAX, FLAGS, "wfunc" },
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|         { "rectangular", "rectangular window", 0, AV_OPT_TYPE_CONST, { .i64 = WFUNC_RECTANGULAR }, 0, 0, FLAGS, "wfunc" },
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|         { "hann", "hann window", 0, AV_OPT_TYPE_CONST, { .i64 = WFUNC_HANN }, 0, 0, FLAGS, "wfunc" },
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|         { "hamming", "hamming window", 0, AV_OPT_TYPE_CONST, { .i64 = WFUNC_HAMMING }, 0, 0, FLAGS, "wfunc" },
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|         { "blackman", "blackman window", 0, AV_OPT_TYPE_CONST, { .i64 = WFUNC_BLACKMAN }, 0, 0, FLAGS, "wfunc" },
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|         { "nuttall3", "3-term nuttall window", 0, AV_OPT_TYPE_CONST, { .i64 = WFUNC_NUTTALL3 }, 0, 0, FLAGS, "wfunc" },
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|         { "mnuttall3", "minimum 3-term nuttall window", 0, AV_OPT_TYPE_CONST, { .i64 = WFUNC_MNUTTALL3 }, 0, 0, FLAGS, "wfunc" },
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|         { "nuttall", "nuttall window", 0, AV_OPT_TYPE_CONST, { .i64 = WFUNC_NUTTALL }, 0, 0, FLAGS, "wfunc" },
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|         { "bnuttall", "blackman-nuttall window", 0, AV_OPT_TYPE_CONST, { .i64 = WFUNC_BNUTTALL }, 0, 0, FLAGS, "wfunc" },
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|         { "bharris", "blackman-harris window", 0, AV_OPT_TYPE_CONST, { .i64 = WFUNC_BHARRIS }, 0, 0, FLAGS, "wfunc" },
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|     { "fixed", "set fixed frame samples", OFFSET(fixed), AV_OPT_TYPE_BOOL, { .i64 = 0 }, 0, 1, FLAGS },
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|     { "multi", "set multi channels mode", OFFSET(multi), AV_OPT_TYPE_BOOL, { .i64 = 0 }, 0, 1, FLAGS },
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|     { "zero_phase", "set zero phase mode", OFFSET(zero_phase), AV_OPT_TYPE_BOOL, { .i64 = 0 }, 0, 1, FLAGS },
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|     { NULL }
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| };
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| 
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| AVFILTER_DEFINE_CLASS(firequalizer);
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| 
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| static void common_uninit(FIREqualizerContext *s)
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| {
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|     av_rdft_end(s->analysis_irdft);
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|     av_rdft_end(s->rdft);
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|     av_rdft_end(s->irdft);
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|     s->analysis_irdft = s->rdft = s->irdft = NULL;
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| 
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|     av_freep(&s->analysis_buf);
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|     av_freep(&s->kernel_tmp_buf);
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|     av_freep(&s->kernel_buf);
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|     av_freep(&s->conv_buf);
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|     av_freep(&s->conv_idx);
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| }
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| 
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| static av_cold void uninit(AVFilterContext *ctx)
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| {
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|     FIREqualizerContext *s = ctx->priv;
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| 
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|     common_uninit(s);
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|     av_freep(&s->gain_cmd);
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|     av_freep(&s->gain_entry_cmd);
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| }
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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_FLTP,
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|         AV_SAMPLE_FMT_NONE
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|     };
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|     int ret;
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| 
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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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| 
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|     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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| 
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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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| 
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| static void fast_convolute(FIREqualizerContext *s, const float *kernel_buf, float *conv_buf,
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|                            OverlapIndex *idx, float *data, int nsamples)
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| {
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|     if (nsamples <= s->nsamples_max) {
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|         float *buf = conv_buf + idx->buf_idx * s->rdft_len;
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|         float *obuf = conv_buf + !idx->buf_idx * s->rdft_len + idx->overlap_idx;
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|         int k;
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| 
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|         memcpy(buf, data, nsamples * sizeof(*data));
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|         memset(buf + nsamples, 0, (s->rdft_len - nsamples) * sizeof(*data));
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|         av_rdft_calc(s->rdft, buf);
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| 
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|         buf[0] *= kernel_buf[0];
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|         buf[1] *= kernel_buf[1];
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|         for (k = 2; k < s->rdft_len; k += 2) {
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|             float re, im;
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|             re = buf[k] * kernel_buf[k] - buf[k+1] * kernel_buf[k+1];
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|             im = buf[k] * kernel_buf[k+1] + buf[k+1] * kernel_buf[k];
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|             buf[k] = re;
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|             buf[k+1] = im;
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|         }
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| 
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|         av_rdft_calc(s->irdft, buf);
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|         for (k = 0; k < s->rdft_len - idx->overlap_idx; k++)
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|             buf[k] += obuf[k];
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|         memcpy(data, buf, nsamples * sizeof(*data));
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|         idx->buf_idx = !idx->buf_idx;
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|         idx->overlap_idx = nsamples;
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|     } else {
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|         while (nsamples > s->nsamples_max * 2) {
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|             fast_convolute(s, kernel_buf, conv_buf, idx, data, s->nsamples_max);
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|             data += s->nsamples_max;
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|             nsamples -= s->nsamples_max;
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|         }
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|         fast_convolute(s, kernel_buf, conv_buf, idx, data, nsamples/2);
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|         fast_convolute(s, kernel_buf, conv_buf, idx, data + nsamples/2, nsamples - nsamples/2);
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|     }
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| }
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| 
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| static double entry_func(void *p, double freq, double gain)
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| {
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|     AVFilterContext *ctx = p;
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|     FIREqualizerContext *s = ctx->priv;
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| 
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|     if (s->nb_gain_entry >= NB_GAIN_ENTRY_MAX) {
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|         av_log(ctx, AV_LOG_ERROR, "entry table overflow.\n");
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|         s->gain_entry_err = AVERROR(EINVAL);
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|         return 0;
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|     }
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| 
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|     if (isnan(freq)) {
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|         av_log(ctx, AV_LOG_ERROR, "nan frequency (%g, %g).\n", freq, gain);
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|         s->gain_entry_err = AVERROR(EINVAL);
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|         return 0;
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|     }
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| 
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|     if (s->nb_gain_entry > 0 && freq <= s->gain_entry_tbl[s->nb_gain_entry - 1].freq) {
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|         av_log(ctx, AV_LOG_ERROR, "unsorted frequency (%g, %g).\n", freq, gain);
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|         s->gain_entry_err = AVERROR(EINVAL);
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|         return 0;
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|     }
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| 
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|     s->gain_entry_tbl[s->nb_gain_entry].freq = freq;
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|     s->gain_entry_tbl[s->nb_gain_entry].gain = gain;
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|     s->nb_gain_entry++;
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|     return 0;
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| }
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| 
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| static int gain_entry_compare(const void *key, const void *memb)
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| {
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|     const double *freq = key;
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|     const GainEntry *entry = memb;
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| 
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|     if (*freq < entry[0].freq)
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|         return -1;
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|     if (*freq > entry[1].freq)
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|         return 1;
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|     return 0;
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| }
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| 
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| static double gain_interpolate_func(void *p, double freq)
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| {
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|     AVFilterContext *ctx = p;
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|     FIREqualizerContext *s = ctx->priv;
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|     GainEntry *res;
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|     double d0, d1, d;
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| 
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|     if (isnan(freq))
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|         return freq;
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| 
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|     if (!s->nb_gain_entry)
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|         return 0;
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| 
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|     if (freq <= s->gain_entry_tbl[0].freq)
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|         return s->gain_entry_tbl[0].gain;
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| 
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|     if (freq >= s->gain_entry_tbl[s->nb_gain_entry-1].freq)
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|         return s->gain_entry_tbl[s->nb_gain_entry-1].gain;
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| 
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|     res = bsearch(&freq, &s->gain_entry_tbl, s->nb_gain_entry - 1, sizeof(*res), gain_entry_compare);
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|     av_assert0(res);
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| 
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|     d  = res[1].freq - res[0].freq;
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|     d0 = freq - res[0].freq;
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|     d1 = res[1].freq - freq;
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| 
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|     if (d0 && d1)
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|         return (d0 * res[1].gain + d1 * res[0].gain) / d;
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| 
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|     if (d0)
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|         return res[1].gain;
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| 
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|     return res[0].gain;
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| }
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| 
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| static const char *const var_names[] = {
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|     "f",
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|     "sr",
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|     "ch",
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|     "chid",
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|     "chs",
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|     "chlayout",
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|     NULL
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| };
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| 
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| enum VarOffset {
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|     VAR_F,
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|     VAR_SR,
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|     VAR_CH,
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|     VAR_CHID,
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|     VAR_CHS,
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|     VAR_CHLAYOUT,
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|     VAR_NB
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| };
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| 
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| static int generate_kernel(AVFilterContext *ctx, const char *gain, const char *gain_entry)
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| {
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|     FIREqualizerContext *s = ctx->priv;
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|     AVFilterLink *inlink = ctx->inputs[0];
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|     const char *gain_entry_func_names[] = { "entry", NULL };
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|     const char *gain_func_names[] = { "gain_interpolate", NULL };
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|     double (*gain_entry_funcs[])(void *, double, double) = { entry_func, NULL };
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|     double (*gain_funcs[])(void *, double) = { gain_interpolate_func, NULL };
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|     double vars[VAR_NB];
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|     AVExpr *gain_expr;
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|     int ret, k, center, ch;
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| 
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|     s->nb_gain_entry = 0;
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|     s->gain_entry_err = 0;
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|     if (gain_entry) {
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|         double result = 0.0;
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|         ret = av_expr_parse_and_eval(&result, gain_entry, NULL, NULL, NULL, NULL,
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|                                      gain_entry_func_names, gain_entry_funcs, ctx, 0, ctx);
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|         if (ret < 0)
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|             return ret;
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|         if (s->gain_entry_err < 0)
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|             return s->gain_entry_err;
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|     }
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| 
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|     av_log(ctx, AV_LOG_DEBUG, "nb_gain_entry = %d.\n", s->nb_gain_entry);
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| 
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|     ret = av_expr_parse(&gain_expr, gain, var_names,
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|                         gain_func_names, gain_funcs, NULL, NULL, 0, ctx);
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|     if (ret < 0)
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|         return ret;
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| 
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|     vars[VAR_CHS] = inlink->channels;
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|     vars[VAR_CHLAYOUT] = inlink->channel_layout;
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|     vars[VAR_SR] = inlink->sample_rate;
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|     for (ch = 0; ch < inlink->channels; ch++) {
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|         vars[VAR_CH] = ch;
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|         vars[VAR_CHID] = av_channel_layout_extract_channel(inlink->channel_layout, ch);
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|         vars[VAR_F] = 0.0;
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|         s->analysis_buf[0] = pow(10.0, 0.05 * av_expr_eval(gain_expr, vars, ctx));
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|         vars[VAR_F] = 0.5 * inlink->sample_rate;
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|         s->analysis_buf[1] = pow(10.0, 0.05 * av_expr_eval(gain_expr, vars, ctx));
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| 
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|         for (k = 1; k < s->analysis_rdft_len/2; k++) {
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|             vars[VAR_F] = k * ((double)inlink->sample_rate /(double)s->analysis_rdft_len);
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|             s->analysis_buf[2*k] = pow(10.0, 0.05 * av_expr_eval(gain_expr, vars, ctx));
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|             s->analysis_buf[2*k+1] = 0.0;
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|         }
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| 
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|         av_rdft_calc(s->analysis_irdft, s->analysis_buf);
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|         center = s->fir_len / 2;
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| 
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|         for (k = 0; k <= center; k++) {
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|             double u = k * (M_PI/center);
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|             double win;
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|             switch (s->wfunc) {
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|             case WFUNC_RECTANGULAR:
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|                 win = 1.0;
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|                 break;
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|             case WFUNC_HANN:
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|                 win = 0.5 + 0.5 * cos(u);
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|                 break;
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|             case WFUNC_HAMMING:
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|                 win = 0.53836 + 0.46164 * cos(u);
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|                 break;
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|             case WFUNC_BLACKMAN:
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|                 win = 0.48 + 0.5 * cos(u) + 0.02 * cos(2*u);
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|                 break;
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|             case WFUNC_NUTTALL3:
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|                 win = 0.40897 + 0.5 * cos(u) + 0.09103 * cos(2*u);
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|                 break;
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|             case WFUNC_MNUTTALL3:
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|                 win = 0.4243801 + 0.4973406 * cos(u) + 0.0782793 * cos(2*u);
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|                 break;
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|             case WFUNC_NUTTALL:
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|                 win = 0.355768 + 0.487396 * cos(u) + 0.144232 * cos(2*u) + 0.012604 * cos(3*u);
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|                 break;
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|             case WFUNC_BNUTTALL:
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|                 win = 0.3635819 + 0.4891775 * cos(u) + 0.1365995 * cos(2*u) + 0.0106411 * cos(3*u);
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|                 break;
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|             case WFUNC_BHARRIS:
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|                 win = 0.35875 + 0.48829 * cos(u) + 0.14128 * cos(2*u) + 0.01168 * cos(3*u);
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|                 break;
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|             default:
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|                 av_assert0(0);
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|             }
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|             s->analysis_buf[k] *= (2.0/s->analysis_rdft_len) * (2.0/s->rdft_len) * win;
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|         }
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| 
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|         for (k = 0; k < center - k; k++) {
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|             float tmp = s->analysis_buf[k];
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|             s->analysis_buf[k] = s->analysis_buf[center - k];
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|             s->analysis_buf[center - k] = tmp;
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|         }
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| 
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|         for (k = 1; k <= center; k++)
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|             s->analysis_buf[center + k] = s->analysis_buf[center - k];
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| 
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|         memset(s->analysis_buf + s->fir_len, 0, (s->rdft_len - s->fir_len) * sizeof(*s->analysis_buf));
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|         av_rdft_calc(s->rdft, s->analysis_buf);
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| 
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|         for (k = 0; k < s->rdft_len; k++) {
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|             if (isnan(s->analysis_buf[k]) || isinf(s->analysis_buf[k])) {
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|                 av_log(ctx, AV_LOG_ERROR, "filter kernel contains nan or infinity.\n");
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|                 av_expr_free(gain_expr);
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|                 return AVERROR(EINVAL);
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|             }
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|         }
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| 
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|         memcpy(s->kernel_tmp_buf + ch * s->rdft_len, s->analysis_buf, s->rdft_len * sizeof(*s->analysis_buf));
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|         if (!s->multi)
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|             break;
 | |
|     }
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| 
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|     memcpy(s->kernel_buf, s->kernel_tmp_buf, (s->multi ? inlink->channels : 1) * s->rdft_len * sizeof(*s->kernel_buf));
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|     av_expr_free(gain_expr);
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|     return 0;
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| }
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| 
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| static int config_input(AVFilterLink *inlink)
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| {
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|     AVFilterContext *ctx = inlink->dst;
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|     FIREqualizerContext *s = ctx->priv;
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|     int rdft_bits;
 | |
| 
 | |
|     common_uninit(s);
 | |
| 
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|     s->next_pts = 0;
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|     s->frame_nsamples_max = 0;
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| 
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|     s->fir_len = FFMAX(2 * (int)(inlink->sample_rate * s->delay) + 1, 3);
 | |
|     s->remaining = s->fir_len - 1;
 | |
| 
 | |
|     for (rdft_bits = RDFT_BITS_MIN; rdft_bits <= RDFT_BITS_MAX; rdft_bits++) {
 | |
|         s->rdft_len = 1 << rdft_bits;
 | |
|         s->nsamples_max = s->rdft_len - s->fir_len + 1;
 | |
|         if (s->nsamples_max * 2 >= s->fir_len)
 | |
|             break;
 | |
|     }
 | |
| 
 | |
|     if (rdft_bits > RDFT_BITS_MAX) {
 | |
|         av_log(ctx, AV_LOG_ERROR, "too large delay, please decrease it.\n");
 | |
|         return AVERROR(EINVAL);
 | |
|     }
 | |
| 
 | |
|     if (!(s->rdft = av_rdft_init(rdft_bits, DFT_R2C)) || !(s->irdft = av_rdft_init(rdft_bits, IDFT_C2R)))
 | |
|         return AVERROR(ENOMEM);
 | |
| 
 | |
|     for ( ; rdft_bits <= RDFT_BITS_MAX; rdft_bits++) {
 | |
|         s->analysis_rdft_len = 1 << rdft_bits;
 | |
|         if (inlink->sample_rate <= s->accuracy * s->analysis_rdft_len)
 | |
|             break;
 | |
|     }
 | |
| 
 | |
|     if (rdft_bits > RDFT_BITS_MAX) {
 | |
|         av_log(ctx, AV_LOG_ERROR, "too small accuracy, please increase it.\n");
 | |
|         return AVERROR(EINVAL);
 | |
|     }
 | |
| 
 | |
|     if (!(s->analysis_irdft = av_rdft_init(rdft_bits, IDFT_C2R)))
 | |
|         return AVERROR(ENOMEM);
 | |
| 
 | |
|     s->analysis_buf = av_malloc_array(s->analysis_rdft_len, sizeof(*s->analysis_buf));
 | |
|     s->kernel_tmp_buf = av_malloc_array(s->rdft_len * (s->multi ? inlink->channels : 1), sizeof(*s->kernel_tmp_buf));
 | |
|     s->kernel_buf = av_malloc_array(s->rdft_len * (s->multi ? inlink->channels : 1), sizeof(*s->kernel_buf));
 | |
|     s->conv_buf   = av_calloc(2 * s->rdft_len * inlink->channels, sizeof(*s->conv_buf));
 | |
|     s->conv_idx   = av_calloc(inlink->channels, sizeof(*s->conv_idx));
 | |
|     if (!s->analysis_buf || !s->kernel_tmp_buf || !s->kernel_buf || !s->conv_buf || !s->conv_idx)
 | |
|         return AVERROR(ENOMEM);
 | |
| 
 | |
|     av_log(ctx, AV_LOG_DEBUG, "sample_rate = %d, channels = %d, analysis_rdft_len = %d, rdft_len = %d, fir_len = %d, nsamples_max = %d.\n",
 | |
|            inlink->sample_rate, inlink->channels, s->analysis_rdft_len, s->rdft_len, s->fir_len, s->nsamples_max);
 | |
| 
 | |
|     if (s->fixed)
 | |
|         inlink->min_samples = inlink->max_samples = inlink->partial_buf_size = s->nsamples_max;
 | |
| 
 | |
|     return generate_kernel(ctx, s->gain_cmd ? s->gain_cmd : s->gain,
 | |
|                            s->gain_entry_cmd ? s->gain_entry_cmd : s->gain_entry);
 | |
| }
 | |
| 
 | |
| static int filter_frame(AVFilterLink *inlink, AVFrame *frame)
 | |
| {
 | |
|     AVFilterContext *ctx = inlink->dst;
 | |
|     FIREqualizerContext *s = ctx->priv;
 | |
|     int ch;
 | |
| 
 | |
|     for (ch = 0; ch < inlink->channels; ch++) {
 | |
|         fast_convolute(s, s->kernel_buf + (s->multi ? ch * s->rdft_len : 0),
 | |
|                        s->conv_buf + 2 * ch * s->rdft_len, s->conv_idx + ch,
 | |
|                        (float *) frame->extended_data[ch], frame->nb_samples);
 | |
|     }
 | |
| 
 | |
|     s->next_pts = AV_NOPTS_VALUE;
 | |
|     if (frame->pts != AV_NOPTS_VALUE) {
 | |
|         s->next_pts = frame->pts + av_rescale_q(frame->nb_samples, av_make_q(1, inlink->sample_rate), inlink->time_base);
 | |
|         if (s->zero_phase)
 | |
|             frame->pts -= av_rescale_q(s->fir_len/2, av_make_q(1, inlink->sample_rate), inlink->time_base);
 | |
|     }
 | |
|     s->frame_nsamples_max = FFMAX(s->frame_nsamples_max, frame->nb_samples);
 | |
|     return ff_filter_frame(ctx->outputs[0], frame);
 | |
| }
 | |
| 
 | |
| static int request_frame(AVFilterLink *outlink)
 | |
| {
 | |
|     AVFilterContext *ctx = outlink->src;
 | |
|     FIREqualizerContext *s= ctx->priv;
 | |
|     int ret;
 | |
| 
 | |
|     ret = ff_request_frame(ctx->inputs[0]);
 | |
|     if (ret == AVERROR_EOF && s->remaining > 0 && s->frame_nsamples_max > 0) {
 | |
|         AVFrame *frame = ff_get_audio_buffer(outlink, FFMIN(s->remaining, s->frame_nsamples_max));
 | |
| 
 | |
|         if (!frame)
 | |
|             return AVERROR(ENOMEM);
 | |
| 
 | |
|         av_samples_set_silence(frame->extended_data, 0, frame->nb_samples, outlink->channels, frame->format);
 | |
|         frame->pts = s->next_pts;
 | |
|         s->remaining -= frame->nb_samples;
 | |
|         ret = filter_frame(ctx->inputs[0], frame);
 | |
|     }
 | |
| 
 | |
|     return ret;
 | |
| }
 | |
| 
 | |
| static int process_command(AVFilterContext *ctx, const char *cmd, const char *args,
 | |
|                            char *res, int res_len, int flags)
 | |
| {
 | |
|     FIREqualizerContext *s = ctx->priv;
 | |
|     int ret = AVERROR(ENOSYS);
 | |
| 
 | |
|     if (!strcmp(cmd, "gain")) {
 | |
|         char *gain_cmd;
 | |
| 
 | |
|         gain_cmd = av_strdup(args);
 | |
|         if (!gain_cmd)
 | |
|             return AVERROR(ENOMEM);
 | |
| 
 | |
|         ret = generate_kernel(ctx, gain_cmd, s->gain_entry_cmd ? s->gain_entry_cmd : s->gain_entry);
 | |
|         if (ret >= 0) {
 | |
|             av_freep(&s->gain_cmd);
 | |
|             s->gain_cmd = gain_cmd;
 | |
|         } else {
 | |
|             av_freep(&gain_cmd);
 | |
|         }
 | |
|     } else if (!strcmp(cmd, "gain_entry")) {
 | |
|         char *gain_entry_cmd;
 | |
| 
 | |
|         gain_entry_cmd = av_strdup(args);
 | |
|         if (!gain_entry_cmd)
 | |
|             return AVERROR(ENOMEM);
 | |
| 
 | |
|         ret = generate_kernel(ctx, s->gain_cmd ? s->gain_cmd : s->gain, gain_entry_cmd);
 | |
|         if (ret >= 0) {
 | |
|             av_freep(&s->gain_entry_cmd);
 | |
|             s->gain_entry_cmd = gain_entry_cmd;
 | |
|         } else {
 | |
|             av_freep(&gain_entry_cmd);
 | |
|         }
 | |
|     }
 | |
| 
 | |
|     return ret;
 | |
| }
 | |
| 
 | |
| static const AVFilterPad firequalizer_inputs[] = {
 | |
|     {
 | |
|         .name           = "default",
 | |
|         .config_props   = config_input,
 | |
|         .filter_frame   = filter_frame,
 | |
|         .type           = AVMEDIA_TYPE_AUDIO,
 | |
|         .needs_writable = 1,
 | |
|     },
 | |
|     { NULL }
 | |
| };
 | |
| 
 | |
| static const AVFilterPad firequalizer_outputs[] = {
 | |
|     {
 | |
|         .name           = "default",
 | |
|         .request_frame  = request_frame,
 | |
|         .type           = AVMEDIA_TYPE_AUDIO,
 | |
|     },
 | |
|     { NULL }
 | |
| };
 | |
| 
 | |
| AVFilter ff_af_firequalizer = {
 | |
|     .name               = "firequalizer",
 | |
|     .description        = NULL_IF_CONFIG_SMALL("Finite Impulse Response Equalizer."),
 | |
|     .uninit             = uninit,
 | |
|     .query_formats      = query_formats,
 | |
|     .process_command    = process_command,
 | |
|     .priv_size          = sizeof(FIREqualizerContext),
 | |
|     .inputs             = firequalizer_inputs,
 | |
|     .outputs            = firequalizer_outputs,
 | |
|     .priv_class         = &firequalizer_class,
 | |
| };
 |