Files
EqualizerAPO/filters/IIRFilter.cpp
T
jthedering d68b958bc8 Improved: Parametric filter calculations (command "Filter") are now fully using double precision. This yields a great improvement in signal-to-noise ratio for practically no performance penalty.
Fixed: The method BiQuad::gainAt was returning wrong values. As this method was only used for testing purposes, this change is not user-visible.
2015-08-17 20:05:25 +00:00

119 lines
3.0 KiB
C++

/*
This file is part of EqualizerAPO, a system-wide equalizer.
Copyright (C) 2014 Jonas Thedering
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program 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 General Public License for more details.
You should have received a copy of the GNU General Public License along
with this program; if not, write to the Free Software Foundation, Inc.,
51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA.
*/
#include "helpers/MemoryHelper.h"
#include "IIRFilter.h"
using namespace std;
#define IS_DENORMAL(d) (abs(d) < DBL_MIN)
IIRFilter::IIRFilter(const vector<double>& coefficients)
{
order = (unsigned)coefficients.size() / 2 - 1;
a = (double*)MemoryHelper::alloc(order * sizeof(double));
b = (double*)MemoryHelper::alloc(order * sizeof(double));
x = NULL;
y = NULL;
double a0 = coefficients[order+1];
b0 = coefficients[0] / a0;
for(unsigned i=0; i<order; i++)
{
b[i] = coefficients[i+1] / a0;
a[i] = -coefficients[i+order+2] / a0;
}
}
IIRFilter::~IIRFilter()
{
MemoryHelper::free(a);
MemoryHelper::free(b);
if(x != NULL)
MemoryHelper::free(x);
if(y != NULL)
MemoryHelper::free(y);
}
vector<wstring> IIRFilter::initialize(float sampleRate, unsigned maxFrameCount, vector<wstring> channelNames)
{
channelCount = (unsigned)channelNames.size();
if(x != NULL)
MemoryHelper::free(x);
if(y != NULL)
MemoryHelper::free(y);
x = (double*)MemoryHelper::alloc(order * channelCount * sizeof(double));
y = (double*)MemoryHelper::alloc(order * channelCount * sizeof(double));
memset(x, 0, order * channelCount * sizeof(double));
memset(y, 0, order * channelCount * sizeof(double));
return channelNames;
}
#pragma AVRT_CODE_BEGIN
void IIRFilter::process(float** output, float** input, unsigned frameCount)
{
for(unsigned i=0; i<channelCount; i++)
{
float* inputChannel = input[i];
float* outputChannel = output[i];
unsigned channelOffset = i*order;
double* xo = x+channelOffset;
double* yo = y+channelOffset;
for(unsigned j=0; j<frameCount; j++)
{
double sample = inputChannel[j];
double sum = b0 * sample;
for(unsigned k=order-1; k>0; k--)
{
sum += b[k] * xo[k];
xo[k] = xo[k-1];
}
sum += b[0] * xo[0];
for(unsigned k=order-1; k>0; k--)
{
sum += a[k] * yo[k];
yo[k] = yo[k-1];
}
sum += a[0] * yo[0];
xo[0] = sample;
yo[0] = sum;
outputChannel[j] = (float)sum;
}
}
for(unsigned i=0; i<channelCount*order; i++)
{
if(IS_DENORMAL(x[i]))
x[i] = 0.0;
if(IS_DENORMAL(y[i]))
y[i] = 0.0;
}
}
#pragma AVRT_CODE_END