2014-05-18 16:52:39 +01:00
										 
									 
								 
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								#ifndef INCLUDE_INTERPOLATOR_H
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								#define INCLUDE_INTERPOLATOR_H
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											2016-11-07 00:42:57 +01:00
										 
									 
								 
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								#ifdef USE_SSE2
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								#include <emmintrin.h>
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								#endif
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											2014-05-18 16:52:39 +01:00
										 
									 
								 
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								#include "dsp/dsptypes.h"
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								#include "util/export.h"
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								#include <stdio.h>
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											2016-05-09 11:02:27 +02:00
										 
									 
								 
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								#ifndef __WINDOWS__
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											2014-05-18 16:52:39 +01:00
										 
									 
								 
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								#include <unistd.h>
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								#endif
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											2015-08-30 01:26:51 +02:00
										 
									 
								 
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								class SDRANGEL_API Interpolator {
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								public:
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									Interpolator();
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									~Interpolator();
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											2016-10-31 23:40:46 +01:00
										 
									 
								 
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									void create(int phaseSteps, double sampleRate, double cutoff, double nbTapsPerPhase = 4.5);
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									void free();
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											2014-11-25 08:31:44 +00:00
										 
									 
								 
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									// Original code allowed for upsampling, but was never used that way
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											2016-10-10 01:53:32 +02:00
										 
									 
								 
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									bool decimate(Real *distance, const Complex& next, Complex* result)
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									{
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										advanceFilter(next);
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										*distance -= 1.0;
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											2015-08-24 00:51:27 +02:00
										 
									 
								 
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											2014-11-25 08:31:44 +00:00
										 
									 
								 
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										if (*distance >= 1.0)
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											2015-08-24 00:51:27 +02:00
										 
									 
								 
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										{
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											2014-11-25 08:31:44 +00:00
										 
									 
								 
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											return false;
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											2015-08-24 00:51:27 +02:00
										 
									 
								 
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										}
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										doInterpolate((int) floor(*distance * (Real)m_phaseSteps), result);
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											2014-05-18 16:52:39 +01:00
										 
									 
								 
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										return true;
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									}
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											2016-10-28 03:18:24 +02:00
										 
									 
								 
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									// interpolation simplified from the generalized resampler
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									bool interpolate(Real *distance, const Complex& next, Complex* result)
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									{
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											2016-10-28 03:18:24 +02:00
										 
									 
								 
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									    bool consumed = false;
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											2016-10-10 02:08:48 +02:00
										 
									 
								 
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											2016-10-28 03:18:24 +02:00
										 
									 
								 
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								        if (*distance >= 1.0)
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											2016-10-10 02:08:48 +02:00
										 
									 
								 
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								        {
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								            advanceFilter(next);
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											2016-10-28 03:18:24 +02:00
										 
									 
								 
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								            *distance -= 1.0;
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								            consumed = true;
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								        }
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											2016-10-28 03:18:24 +02:00
										 
									 
								 
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								        doInterpolate((int)floor(*distance * (Real)m_phaseSteps), result);
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								        return consumed;
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											2016-10-10 02:08:48 +02:00
										 
									 
								 
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									}
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											2014-05-18 16:52:39 +01:00
										 
									 
								 
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											2016-10-28 03:18:24 +02:00
										 
									 
								 
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									// original interpolator which is actually an arbitrary rational resampler P/Q for any positive P, Q
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									// sampling frequency must be the highest of the two
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									bool resample(Real* distance, const Complex& next, bool* consumed, Complex* result)
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											2016-10-27 18:05:40 +02:00
										 
									 
								 
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									{
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										while(*distance >= 1.0)
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										{
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											if(!(*consumed))
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											{
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												advanceFilter(next);
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												*distance -= 1.0;
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												*consumed = true;
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											}
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											else
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											{
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												return false;
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											}
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										}
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										doInterpolate((int)floor(*distance * (Real)m_phaseSteps), result);
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										return true;
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									}
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											2014-05-18 16:52:39 +01:00
										 
									 
								 
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								private:
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									float* m_taps;
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									float* m_alignedTaps;
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									float* m_taps2;
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									float* m_alignedTaps2;
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									std::vector<Complex> m_samples;
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									int m_ptr;
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									int m_phaseSteps;
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									int m_nTaps;
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											2016-10-31 23:40:46 +01:00
										 
									 
								 
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									static void createPolyphaseLowPass(
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									    std::vector<Real>& taps,
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									    int phaseSteps,
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									    double gain,
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									    double sampleRateHz,
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									    double cutoffFreqHz,
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									    double transitionWidthHz,
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									    double oobAttenuationdB);
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								    static void createPolyphaseLowPass(
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								        std::vector<Real>& taps,
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								        int phaseSteps,
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								        double gain,
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								        double sampleRateHz,
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								        double cutoffFreqHz,
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								        double nbTapsPerPhase);
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											2014-05-18 16:52:39 +01:00
										 
									 
								 
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									void createTaps(int nTaps, double sampleRate, double cutoff, std::vector<Real>* taps);
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									void advanceFilter(const Complex& next)
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									{
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										m_ptr--;
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										if(m_ptr < 0)
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											m_ptr = m_nTaps - 1;
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										m_samples[m_ptr] = next;
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									}
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								    void advanceFilter()
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								    {
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								        m_ptr--;
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								        if(m_ptr < 0)
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								            m_ptr = m_nTaps - 1;
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								        m_samples[m_ptr].real(0.0);
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								        m_samples[m_ptr].imag(0.0);
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								    }
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											2014-05-18 16:52:39 +01:00
										 
									 
								 
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									void doInterpolate(int phase, Complex* result)
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									{
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											2014-11-25 15:24:21 +00:00
										 
									 
								 
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										if (phase < 0)
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											phase = 0;
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											2016-11-07 00:42:57 +01:00
										 
									 
								 
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								#if USE_SSE2
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											2014-05-18 16:52:39 +01:00
										 
									 
								 
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										// beware of the ringbuffer
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										if(m_ptr == 0) {
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											// only one straight block
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											const float* src = (const float*)&m_samples[0];
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											const __m128* filter = (const __m128*)&m_alignedTaps[phase * m_nTaps * 2];
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											__m128 sum = _mm_setzero_ps();
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											int todo = m_nTaps / 2;
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											for(int i = 0; i < todo; i++) {
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												sum = _mm_add_ps(sum, _mm_mul_ps(_mm_loadu_ps(src), *filter));
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							 | 
							
							
												src += 4;
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							 | 
							
							
												filter += 1;
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											}
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							 | 
							
								
							 | 
							
								
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							 | 
						
					
						
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							 | 
							
								
							 | 
							
							
											// add upper half to lower half and store
							 | 
						
					
						
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							 | 
							
								
							 | 
							
								
							 | 
							
							
											_mm_storel_pi((__m64*)result, _mm_add_ps(sum, _mm_shuffle_ps(sum, _mm_setzero_ps(), _MM_SHUFFLE(1, 0, 3, 2))));
							 | 
						
					
						
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							 | 
							
								
							 | 
							
								
							 | 
							
							
										} else {
							 | 
						
					
						
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							 | 
							
								
							 | 
							
							
											// two blocks
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											const float* src = (const float*)&m_samples[m_ptr];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											const __m128* filter = (const __m128*)&m_alignedTaps[phase * m_nTaps * 2];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											__m128 sum = _mm_setzero_ps();
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
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							 | 
							
								
							 | 
							
								
							 | 
							
							
											// first block
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											int block = m_nTaps - m_ptr;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											int todo = block / 2;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											if(block & 1)
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
												todo++;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											for(int i = 0; i < todo; i++) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
												sum = _mm_add_ps(sum, _mm_mul_ps(_mm_loadu_ps(src), *filter));
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
												src += 4;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
												filter += 1;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											}
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											if(block & 1) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
												// one sample beyond the end -> switch coefficient table
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
												filter = (const __m128*)&m_alignedTaps2[phase * m_nTaps * 2 + todo * 4 - 4];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											}
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											// second block
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											src = (const float*)&m_samples[0];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											block = m_ptr;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											todo = block / 2;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											for(int i = 0; i < todo; i++) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
												sum = _mm_add_ps(sum, _mm_mul_ps(_mm_loadu_ps(src), *filter));
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
												src += 4;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
												filter += 1;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											}
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											if(block & 1) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
												// one sample remaining
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
												sum = _mm_add_ps(sum, _mm_mul_ps(_mm_loadl_pi(_mm_setzero_ps(), (const __m64*)src), filter[0]));
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											}
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											// add upper half to lower half and store
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											_mm_storel_pi((__m64*)result, _mm_add_ps(sum, _mm_shuffle_ps(sum, _mm_setzero_ps(), _MM_SHUFFLE(1, 0, 3, 2))));
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
										}
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								#else
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
										int sample = m_ptr;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
										const Real* coeff = &m_alignedTaps[phase * m_nTaps * 2];
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
										Real rAcc = 0;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
										Real iAcc = 0;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
										for(int i = 0; i < m_nTaps; i++) {
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											rAcc += *coeff * m_samples[sample].real();
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											iAcc += *coeff * m_samples[sample].imag();
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											sample = (sample + 1) % m_nTaps;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
											coeff += 2;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
										}
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
										*result = Complex(rAcc, iAcc);
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								#endif
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
									}
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								};
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								#endif // INCLUDE_INTERPOLATOR_H
							 |