/* Simple resampler based on bsnes's ruby audio library */
#ifndef __HERMITE_RESAMPLER_H
#define __HERMITE_RESAMPLER_H
#include <cmath>
#include "resampler.h"
class HermiteResampler : public Resampler
{
protected:
double r_step;
double r_frac;
int r_left[4], r_right[4];
template<typename T1, typename T2> static T1 CLAMP(T1 x, T2 low, T2 high) { return x > high ? high : (x < low ? low : x); }
template<typename T> static short SHORT_CLAMP(T n) { return static_cast<short>(CLAMP(n, -32768, 32767)); }
double hermite(double mu1, double a, double b, double c, double d)
{
static const double tension = 0.0; //-1 = low, 0 = normal, 1 = high
static const double bias = 0.0; //-1 = left, 0 = even, 1 = right
double mu2, mu3, m0, m1, a0, a1, a2, a3;
mu2 = mu1 * mu1;
mu3 = mu2 * mu1;
m0 = (b - a) * (1 + bias) * (1 - tension) / 2;
m0 += (c - b) * (1 - bias) * (1 - tension) / 2;
m1 = (c - b) * (1 + bias) * (1 - tension) / 2;
m1 += (d - c) * (1 - bias) * (1 - tension) / 2;
a0 = 2 * mu3 - 3 * mu2 + 1;
a1 = mu3 - 2 * mu2 + mu1;
a2 = mu3 - mu2;
a3 = -2 * mu3 + 3 * mu2;
return (a0 * b) + (a1 * m0) + (a2 * m1) + (a3 * c);
}
public:
HermiteResampler(int num_samples) : Resampler(num_samples)
{
this->clear();
}
void time_ratio(double ratio)
{
this->r_step = ratio;
this->clear();
}
void clear()
{
ring_buffer::clear();
this->r_frac = 1.0;
this->r_left[0] = this->r_left[1] = this->r_left[2] = this->r_left[3] = 0;
this->r_right[0] = this->r_right[1] = this->r_right[2] = this->r_right[3] = 0;
}
void read(short *data, int num_samples)
{
int i_position = this->start >> 1;
short *internal_buffer = reinterpret_cast<short *>(this->buffer);
int o_position = 0;
int consumed = 0;
while (o_position < num_samples && consumed < this->buffer_size)
{
int s_left = internal_buffer[i_position];
int s_right = internal_buffer[i_position + 1];
int max_samples = this->buffer_size >> 1;
static const double margin_of_error = 1.0e-10;
if (std::abs(this->r_step - 1.0) < margin_of_error)
{
data[o_position] = static_cast<short>(s_left);
data[o_position + 1] = static_cast<short>(s_right);
o_position += 2;
i_position += 2;
if (i_position >= max_samples)
i_position -= max_samples;
consumed += 2;
continue;
}
while (this->r_frac <= 1.0 && o_position < num_samples)
{
data[o_position] = SHORT_CLAMP(hermite(this->r_frac, this->r_left[0], this->r_left[1], this->r_left[2], this->r_left[3]));
data[o_position + 1] = SHORT_CLAMP(hermite(this->r_frac, this->r_right[0], this->r_right[1], this->r_right[2], this->r_right[3]));
o_position += 2;
this->r_frac += this->r_step;
}
if (this->r_frac > 1.0)
{
this->r_left[0] = this->r_left[1];
this->r_left[1] = this->r_left[2];
this->r_left[2] = this->r_left[3];
this->r_left[3] = s_left;
this->r_right[0] = this->r_right[1];
this->r_right[1] = this->r_right[2];
this->r_right[2] = this->r_right[3];
this->r_right[3] = s_right;
this->r_frac -= 1.0;
i_position += 2;
if (i_position >= max_samples)
i_position -= max_samples;
consumed += 2;
}
}
this->size -= consumed << 1;
this->start += consumed << 1;
if (this->start >= this->buffer_size)
this->start -= this->buffer_size;
}
int avail()
{
return static_cast<int>(std::floor(((this->size >> 2) - this->r_frac) / this->r_step) * 2);
}
};
#endif /* __HERMITE_RESAMPLER_H */