// This file is part of Eigen, a lightweight C++ template library // for linear algebra. Eigen itself is part of the KDE project. // // Copyright (C) 2009 Mark Borgerding mark a borgerding net // // Eigen 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 3 of the License, or (at your option) any later version. // // Alternatively, 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. // // Eigen 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 or the // GNU General Public License for more details. // // You should have received a copy of the GNU Lesser General Public // License and a copy of the GNU General Public License along with // Eigen. If not, see . #include "main.h" #include using namespace std; template < typename T> complex promote(complex x) { return complex(x.real(),x.imag()); } complex promote(float x) { return complex( x); } complex promote(double x) { return complex( x); } complex promote(long double x) { return complex( x); } template long double fft_rmse( const vector & fftbuf,const vector & timebuf) { long double totalpower=0; long double difpower=0; for (size_t k0=0;k0 acc = 0; long double phinc = -2.*k0* M_PIl / timebuf.size(); for (size_t k1=0;k1(0,k1*phinc) ); } totalpower += norm(acc); complex x = promote(fftbuf[k0]); complex dif = acc - x; difpower += norm(dif); cerr << k0 << ":" << acc << " " << x << endl; } cerr << "rmse:" << sqrt(difpower/totalpower) << endl; return sqrt(difpower/totalpower); } template long double dif_rmse( const vector buf1,const vector buf2) { long double totalpower=0; long double difpower=0; size_t n = min( buf1.size(),buf2.size() ); for (size_t k=0;k void test_scalar(int nfft) { typedef typename Eigen::FFT::Complex Complex; typedef typename Eigen::FFT::Scalar Scalar; FFT fft; vector inbuf(nfft); vector outbuf; for (int k=0;k void test_complex(int nfft) { typedef typename Eigen::FFT::Complex Complex; FFT fft; vector inbuf(nfft); vector outbuf; vector buf3; for (int k=0;k(32) ); CALL_SUBTEST( test_complex(32) ); CALL_SUBTEST( test_complex(32) ); CALL_SUBTEST( test_complex(1024) ); CALL_SUBTEST( test_complex(1024) ); CALL_SUBTEST( test_complex(1024) ); CALL_SUBTEST( test_complex(3*8) ); CALL_SUBTEST( test_complex(3*8) ); CALL_SUBTEST( test_complex(3*8) ); CALL_SUBTEST( test_complex(5*32) ); CALL_SUBTEST( test_complex(5*32) ); CALL_SUBTEST( test_complex(5*32) ); CALL_SUBTEST( test_complex(2*3*4) ); CALL_SUBTEST( test_complex(2*3*4) ); CALL_SUBTEST( test_complex(2*3*4) ); CALL_SUBTEST( test_complex(2*3*4*5) ); CALL_SUBTEST( test_complex(2*3*4*5) ); CALL_SUBTEST( test_complex(2*3*4*5) ); CALL_SUBTEST( test_complex(2*3*4*5*7) ); CALL_SUBTEST( test_complex(2*3*4*5*7) ); CALL_SUBTEST( test_complex(2*3*4*5*7) ); CALL_SUBTEST( test_scalar(32) ); CALL_SUBTEST( test_scalar(32) ); CALL_SUBTEST( test_scalar(32) ); CALL_SUBTEST( test_scalar(1024) ); CALL_SUBTEST( test_scalar(1024) ); CALL_SUBTEST( test_scalar(1024) ); CALL_SUBTEST( test_scalar(2*3*4*5*7) ); CALL_SUBTEST( test_scalar(2*3*4*5*7) ); CALL_SUBTEST( test_scalar(2*3*4*5*7) ); }