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https://github.com/f4exb/sdrangel.git
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250 lines
6.7 KiB
C++
250 lines
6.7 KiB
C++
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/* fmmod.c
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This file is part of a program that implements a Software-Defined Radio.
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Copyright (C) 2013, 2016, 2023 Warren Pratt, NR0V
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Copyright (C) 2024 Edouard Griffiths, F4EXB Adapted to SDRangel
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This program is free software; you can redistribute it and/or
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modify it under the terms of the GNU General Public License
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as published by the Free Software Foundation; either version 2
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of the License, or (at your option) any later version.
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This program 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
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License
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along with this program; 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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The author can be reached by email at
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warren@wpratt.com
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*/
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#include "comm.hpp"
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#include "firmin.hpp"
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#include "fir.hpp"
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#include "fmmod.hpp"
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#include "TXA.hpp"
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namespace WDSP {
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void FMMOD::calc_fmmod (FMMOD *a)
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{
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// ctcss gen
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a->tscale = 1.0 / (1.0 + a->ctcss_level);
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a->tphase = 0.0;
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a->tdelta = TWOPI * a->ctcss_freq / a->samplerate;
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// mod
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a->sphase = 0.0;
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a->sdelta = TWOPI * a->deviation / a->samplerate;
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// bandpass
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a->bp_fc = a->deviation + a->f_high;
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}
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FMMOD* FMMOD::create_fmmod (
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int run,
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int size,
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double* in,
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double* out,
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int rate,
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double dev,
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double f_low,
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double f_high,
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int ctcss_run,
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double ctcss_level,
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double ctcss_freq,
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int bp_run,
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int nc,
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int mp
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)
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{
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FMMOD *a = new FMMOD;
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double* impulse;
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a->run = run;
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a->size = size;
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a->in = in;
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a->out = out;
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a->samplerate = (double)rate;
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a->deviation = dev;
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a->f_low = f_low;
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a->f_high = f_high;
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a->ctcss_run = ctcss_run;
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a->ctcss_level = ctcss_level;
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a->ctcss_freq = ctcss_freq;
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a->bp_run = bp_run;
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a->nc = nc;
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a->mp = mp;
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calc_fmmod (a);
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impulse = FIR::fir_bandpass(a->nc, -a->bp_fc, +a->bp_fc, a->samplerate, 0, 1, 1.0 / (2 * a->size));
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a->p = FIRCORE::create_fircore (a->size, a->out, a->out, a->nc, a->mp, impulse);
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delete[] (impulse);
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return a;
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}
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void FMMOD::destroy_fmmod (FMMOD *a)
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{
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FIRCORE::destroy_fircore (a->p);
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delete (a);
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}
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void FMMOD::flush_fmmod (FMMOD *a)
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{
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a->tphase = 0.0;
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a->sphase = 0.0;
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}
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void FMMOD::xfmmod (FMMOD *a)
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{
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int i;
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double dp, magdp, peak;
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if (a->run)
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{
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peak = 0.0;
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for (i = 0; i < a->size; i++)
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{
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if (a->ctcss_run)
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{
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a->tphase += a->tdelta;
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if (a->tphase >= TWOPI) a->tphase -= TWOPI;
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a->out[2 * i + 0] = a->tscale * (a->in[2 * i + 0] + a->ctcss_level * cos (a->tphase));
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}
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dp = a->out[2 * i + 0] * a->sdelta;
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a->sphase += dp;
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if (a->sphase >= TWOPI) a->sphase -= TWOPI;
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if (a->sphase < 0.0 ) a->sphase += TWOPI;
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a->out[2 * i + 0] = 0.7071 * cos (a->sphase);
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a->out[2 * i + 1] = 0.7071 * sin (a->sphase);
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if ((magdp = dp) < 0.0) magdp = - magdp;
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if (magdp > peak) peak = magdp;
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}
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//print_deviation ("peakdev.txt", peak, a->samplerate);
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if (a->bp_run)
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FIRCORE::xfircore (a->p);
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}
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else if (a->in != a->out)
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memcpy (a->out, a->in, a->size * sizeof (dcomplex));
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}
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void FMMOD::setBuffers_fmmod (FMMOD *a, double* in, double* out)
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{
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a->in = in;
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a->out = out;
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calc_fmmod (a);
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FIRCORE::setBuffers_fircore (a->p, a->out, a->out);
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}
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void FMMOD::setSamplerate_fmmod (FMMOD *a, int rate)
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{
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double* impulse;
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a->samplerate = rate;
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calc_fmmod (a);
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impulse = FIR::fir_bandpass(a->nc, -a->bp_fc, +a->bp_fc, a->samplerate, 0, 1, 1.0 / (2 * a->size));
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FIRCORE::setImpulse_fircore (a->p, impulse, 1);
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delete[] (impulse);
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}
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void FMMOD::setSize_fmmod (FMMOD *a, int size)
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{
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double* impulse;
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a->size = size;
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calc_fmmod (a);
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FIRCORE::setSize_fircore (a->p, a->size);
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impulse = FIR::fir_bandpass(a->nc, -a->bp_fc, +a->bp_fc, a->samplerate, 0, 1, 1.0 / (2 * a->size));
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FIRCORE::setImpulse_fircore (a->p, impulse, 1);
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delete[] (impulse);
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}
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/********************************************************************************************************
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* *
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* TXA Properties *
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* *
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********************************************************************************************************/
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void FMMOD::SetFMDeviation (TXA& txa, double deviation)
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{
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FMMOD *a = txa.fmmod.p;
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double bp_fc = a->f_high + deviation;
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double* impulse = FIR::fir_bandpass (a->nc, -bp_fc, +bp_fc, a->samplerate, 0, 1, 1.0 / (2 * a->size));
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FIRCORE::setImpulse_fircore (a->p, impulse, 0);
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delete[] (impulse);
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txa.csDSP.lock();
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a->deviation = deviation;
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// mod
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a->sphase = 0.0;
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a->sdelta = TWOPI * a->deviation / a->samplerate;
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// bandpass
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a->bp_fc = bp_fc;
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FIRCORE::setUpdate_fircore (a->p);
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txa.csDSP.unlock();
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}
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void FMMOD::SetCTCSSFreq (TXA& txa, double freq)
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{
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FMMOD *a;
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txa.csDSP.lock();
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a = txa.fmmod.p;
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a->ctcss_freq = freq;
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a->tphase = 0.0;
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a->tdelta = TWOPI * a->ctcss_freq / a->samplerate;
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txa.csDSP.unlock();
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}
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void FMMOD::SetCTCSSRun (TXA& txa, int run)
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{
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txa.csDSP.lock();
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txa.fmmod.p->ctcss_run = run;
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txa.csDSP.unlock();
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}
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void FMMOD::SetFMNC (TXA& txa, int nc)
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{
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FMMOD *a;
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double* impulse;
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txa.csDSP.lock();
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a = txa.fmmod.p;
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if (a->nc != nc)
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{
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a->nc = nc;
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impulse = FIR::fir_bandpass (a->nc, -a->bp_fc, +a->bp_fc, a->samplerate, 0, 1, 1.0 / (2 * a->size));
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FIRCORE::setNc_fircore (a->p, a->nc, impulse);
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delete[] (impulse);
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}
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txa.csDSP.unlock();
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}
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void FMMOD::SetFMMP (TXA& txa, int mp)
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{
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FMMOD *a;
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a = txa.fmmod.p;
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if (a->mp != mp)
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{
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a->mp = mp;
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FIRCORE::setMp_fircore (a->p, a->mp);
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}
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}
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void FMMOD::SetFMAFFreqs (TXA& txa, double low, double high)
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{
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FMMOD *a;
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double* impulse;
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txa.csDSP.lock();
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a = txa.fmmod.p;
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if (a->f_low != low || a->f_high != high)
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{
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a->f_low = low;
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a->f_high = high;
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a->bp_fc = a->deviation + a->f_high;
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impulse = FIR::fir_bandpass (a->nc, -a->bp_fc, +a->bp_fc, a->samplerate, 0, 1, 1.0 / (2 * a->size));
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FIRCORE::setImpulse_fircore (a->p, impulse, 1);
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delete[] (impulse);
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}
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txa.csDSP.unlock();
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}
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} // namespace WDSP
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