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  •  * This file is part of FFmpeg.
     *
     * FFmpeg is free software; you can redistribute it and/or
    
     * modify it under the terms of the GNU Lesser General Public
     * License as published by the Free Software Foundation; either
    
     * version 2.1 of the License, or (at your option) any later version.
    
     * FFmpeg is distributed in the hope that it will be useful,
    
     * but WITHOUT ANY WARRANTY; without even the implied warranty of
     * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
     * Lesser General Public License for more details.
     *
     * You should have received a copy of the GNU Lesser General Public
    
     * License along with FFmpeg; if not, write to the Free Software
    
     * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
     */
    
    
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    /**
    
     * @file libavcodec/fft-test.c
    
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     * FFT and MDCT tests.
     */
    
    
    #include "libavutil/lfg.h"
    
    #include "dsputil.h"
    #include <math.h>
    
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    #include <unistd.h>
    
    #include <sys/time.h>
    
    #include <stdlib.h>
    #include <string.h>
    
    /* reference fft */
    
    #define MUL16(a,b) ((a) * (b))
    
    #define CMAC(pre, pim, are, aim, bre, bim) \
    {\
       pre += (MUL16(are, bre) - MUL16(aim, bim));\
       pim += (MUL16(are, bim) + MUL16(bre, aim));\
    }
    
    FFTComplex *exptab;
    
    
    static void fft_ref_init(int nbits, int inverse)
    
    
        n = 1 << nbits;
        exptab = av_malloc((n / 2) * sizeof(FFTComplex));
    
        for(i=0;i<(n/2);i++) {
            alpha = 2 * M_PI * (float)i / (float)n;
            c1 = cos(alpha);
            s1 = sin(alpha);
            if (!inverse)
                s1 = -s1;
            exptab[i].re = c1;
            exptab[i].im = s1;
        }
    }
    
    
    static void fft_ref(FFTComplex *tabr, FFTComplex *tab, int nbits)
    
    {
        int n, i, j, k, n2;
    
        FFTComplex *q;
    
        n = 1 << nbits;
        n2 = n >> 1;
        for(i=0;i<n;i++) {
            tmp_re = 0;
            tmp_im = 0;
            q = tab;
            for(j=0;j<n;j++) {
                k = (i * j) & (n - 1);
                if (k >= n2) {
                    c = -exptab[k - n2].re;
                    s = -exptab[k - n2].im;
                } else {
                    c = exptab[k].re;
                    s = exptab[k].im;
                }
                CMAC(tmp_re, tmp_im, c, s, q->re, q->im);
                q++;
            }
            tabr[i].re = tmp_re;
            tabr[i].im = tmp_im;
        }
    }
    
    
    static void imdct_ref(float *out, float *in, int nbits)
    
        int n = 1<<nbits;
    
    
        for(i=0;i<n;i++) {
            sum = 0;
            for(k=0;k<n/2;k++) {
                a = (2 * i + 1 + (n / 2)) * (2 * k + 1);
                f = cos(M_PI * a / (double)(2 * n));
                sum += f * in[k];
            }
            out[i] = -sum;
        }
    }
    
    /* NOTE: no normalisation by 1 / N is done */
    
    static void mdct_ref(float *output, float *input, int nbits)
    
        int n = 1<<nbits;
    
    
        /* do it by hand */
        for(k=0;k<n/2;k++) {
            s = 0;
            for(i=0;i<n;i++) {
                a = (2*M_PI*(2*i+1+n/2)*(2*k+1) / (4 * n));
                s += input[i] * cos(a);
            }
            output[k] = s;
        }
    }
    
    
    
    static float frandom(AVLFG *prng)
    
        return (int16_t)av_lfg_get(prng) / 32768.0;
    
    {
        struct timeval tv;
        gettimeofday(&tv,NULL);
    
        return (int64_t)tv.tv_sec * 1000000 + tv.tv_usec;
    
    static void check_diff(float *tab1, float *tab2, int n, double scale)
    
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        double max= 0;
        double error= 0;
    
            double e= fabsf(tab1[i] - (tab2[i] / scale));
    
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            if (e >= 1e-3) {
    
                av_log(NULL, AV_LOG_ERROR, "ERROR %d: %f %f\n",
    
                       i, tab1[i], tab2[i]);
            }
    
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            error+= e*e;
            if(e>max) max= e;
    
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        av_log(NULL, AV_LOG_INFO, "max:%f e:%g\n", max, sqrt(error)/n);
    
        av_log(NULL, AV_LOG_INFO,"usage: fft-test [-h] [-s] [-i] [-n b]\n"
    
               "-h     print this help\n"
               "-s     speed test\n"
               "-m     (I)MDCT test\n"
               "-i     inverse transform test\n"
               "-n b   set the transform size to 2^b\n"
    
               "-f x   set scale factor for output data of (I)MDCT to x\n"
    
               );
        exit(1);
    }
    
    
    
    int main(int argc, char **argv)
    {
        FFTComplex *tab, *tab1, *tab_ref;
    
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        FFTSample *tab2;
    
        int it, i, c;
        int do_speed = 0;
        int do_mdct = 0;
        int do_inverse = 0;
        FFTContext s1, *s = &s1;
        MDCTContext m1, *m = &m1;
        int fft_nbits, fft_size;
    
        AVLFG prng;
        av_lfg_init(&prng, 1);
    
    
        fft_nbits = 9;
        for(;;) {
    
            c = getopt(argc, argv, "hsimn:f:");
    
            if (c == -1)
                break;
            switch(c) {
            case 'h':
                help();
                break;
            case 's':
                do_speed = 1;
                break;
            case 'i':
                do_inverse = 1;
                break;
            case 'm':
                do_mdct = 1;
                break;
            case 'n':
                fft_nbits = atoi(optarg);
                break;
    
            }
        }
    
        fft_size = 1 << fft_nbits;
        tab = av_malloc(fft_size * sizeof(FFTComplex));
        tab1 = av_malloc(fft_size * sizeof(FFTComplex));
        tab_ref = av_malloc(fft_size * sizeof(FFTComplex));
        tab2 = av_malloc(fft_size * sizeof(FFTSample));
    
        if (do_mdct) {
    
            av_log(NULL, AV_LOG_INFO,"Scale factor is set to %f\n", scale);
    
                av_log(NULL, AV_LOG_INFO,"IMDCT");
    
                av_log(NULL, AV_LOG_INFO,"MDCT");
    
            ff_mdct_init(m, fft_nbits, do_inverse, scale);
    
        } else {
            if (do_inverse)
    
                av_log(NULL, AV_LOG_INFO,"IFFT");
    
            fft_ref_init(fft_nbits, do_inverse);
        }
    
        av_log(NULL, AV_LOG_INFO," %d test\n", fft_size);
    
    
        /* generate random data */
    
        for(i=0;i<fft_size;i++) {
    
            tab1[i].re = frandom(&prng);
            tab1[i].im = frandom(&prng);
    
        av_log(NULL, AV_LOG_INFO,"Checking...\n");
    
    
        if (do_mdct) {
            if (do_inverse) {
    
                imdct_ref((float *)tab_ref, (float *)tab1, fft_nbits);
    
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                ff_imdct_calc(m, tab2, (float *)tab1);
    
                check_diff((float *)tab_ref, tab2, fft_size, scale);
    
                mdct_ref((float *)tab_ref, (float *)tab1, fft_nbits);
    
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                ff_mdct_calc(m, tab2, (float *)tab1);
    
                check_diff((float *)tab_ref, tab2, fft_size / 2, scale);
    
            }
        } else {
            memcpy(tab, tab1, fft_size * sizeof(FFTComplex));
    
            fft_ref(tab_ref, tab1, fft_nbits);
    
            check_diff((float *)tab_ref, (float *)tab, fft_size * 2, 1.0);
    
        }
    
        /* do a speed test */
    
        if (do_speed) {
    
            int64_t time_start, duration;
    
            av_log(NULL, AV_LOG_INFO,"Speed test...\n");
    
            /* we measure during about 1 seconds */
            nb_its = 1;
            for(;;) {
                time_start = gettime();
                for(it=0;it<nb_its;it++) {
                    if (do_mdct) {
                        if (do_inverse) {
    
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                            ff_imdct_calc(m, (float *)tab, (float *)tab1);
    
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                            ff_mdct_calc(m, (float *)tab, (float *)tab1);
    
                        }
                    } else {
                        memcpy(tab, tab1, fft_size * sizeof(FFTComplex));
    
                    }
                }
                duration = gettime() - time_start;
                if (duration >= 1000000)
                    break;
                nb_its *= 2;
            }
    
            av_log(NULL, AV_LOG_INFO,"time: %0.1f us/transform [total time=%0.2f s its=%d]\n",
                   (double)duration / nb_its,
    
                   (double)duration / 1000000.0,
                   nb_its);
        }
    
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            ff_mdct_end(m);