179 lines
5.6 KiB
C++
179 lines
5.6 KiB
C++
/*+
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This is CosmoTool (./src/fourier/details/healpix_spectrum.hpp) -- Copyright (C) Guilhem Lavaux (2007-2013)
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guilhem.lavaux@gmail.com
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This software is a computer program whose purpose is to provide a toolbox for cosmological
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data analysis (e.g. filters, generalized Fourier transforms, power spectra, ...)
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This software is governed by the CeCILL license under French law and
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abiding by the rules of distribution of free software. You can use,
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modify and/ or redistribute the software under the terms of the CeCILL
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license as circulated by CEA, CNRS and INRIA at the following URL
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"http://www.cecill.info".
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As a counterpart to the access to the source code and rights to copy,
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modify and redistribute granted by the license, users are provided only
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with a limited warranty and the software's author, the holder of the
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economic rights, and the successive licensors have only limited
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liability.
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In this respect, the user's attention is drawn to the risks associated
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with loading, using, modifying and/or developing or reproducing the
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software by the user in light of its specific status of free software,
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that may mean that it is complicated to manipulate, and that also
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therefore means that it is reserved for developers and experienced
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professionals having in-depth computer knowledge. Users are therefore
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encouraged to load and test the software's suitability as regards their
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requirements in conditions enabling the security of their systems and/or
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data to be ensured and, more generally, to use and operate it in the
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same conditions as regards security.
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The fact that you are presently reading this means that you have had
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knowledge of the CeCILL license and that you accept its terms.
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+*/
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#ifndef __COSMOTOOL_FOURIER_HEALPIX_DETAILS_SPECTRUM_HPP
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#define __COSMOTOOL_FOURIER_HEALPIX_DETAILS_SPECTRUM_HPP
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namespace CosmoTool
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{
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template<typename T>
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class HealpixSpectrum: public SpectrumFunction<T>
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{
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protected:
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std::vector<T> cls;
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int *m_dof;
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public:
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typedef typename SpectrumFunction<T>::FourierMapType FourierMapType;
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typedef boost::shared_ptr<FourierMapType> ptr_map;
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typedef typename SpectrumFunction<T>::SpectrumFunctionPtr SpectrumFunctionPtr;
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typedef unsigned long LType;
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HealpixSpectrum(LType Lmax)
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: cls(Lmax+1), m_dof(new int[Lmax+1])
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{
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for (int l = 0; l <= Lmax; l++)
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m_dof[l] = l + 1;
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}
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T *data() { return &cls[0]; }
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const T *data() const { return &cls[0]; }
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const int *dof() const { return m_dof; }
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void set_dof(LType l, int dof) { m_dof[l] = dof; }
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LType Lmax() const { return cls.size()-1; }
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long size() const { return cls.size(); }
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void newRandomFourier(gsl_rng *rng, FourierMapType& like_map) const;
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SpectrumFunctionPtr copy() const {
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HealpixSpectrum<T> *s = new HealpixSpectrum<T>(Lmax());
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s->cls = cls;
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return SpectrumFunctionPtr(s);
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}
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void sqrt() {
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std::transform(cls.begin(), cls.end(), cls.begin(), std::ptr_fun<T,T>(std::sqrt));
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}
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void mul(FourierMapType& m) const;
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void mul_sqrt(FourierMapType& m) const;
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void mul_inv(FourierMapType& m) const;
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void mul_inv_sqrt(FourierMapType& m) const;
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};
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template<typename T>
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void HealpixSpectrum<T>::newRandomFourier(gsl_rng *rng, FourierMapType& out_map) const
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{
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HealpixFourierALM<T>& alms = dynamic_cast<HealpixFourierALM<T>&>(out_map);
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long lmaxGen = std::min(cls.size()-1, alms.Lmax());
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std::complex<T> *new_data = alms.data();
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for (LType l = 0; l <= lmaxGen; l++)
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{
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double Al = std::sqrt(cls[l]);
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new_data[alms.index(l,0)] = gsl_ran_gaussian(rng, Al);
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Al *= M_SQRT1_2;
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for (LType m = 1; m <= std::min(l,alms.Mmax()); m++)
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{
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std::complex<T>& c = new_data[alms.index(l,m)];
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c.real() = gsl_ran_gaussian(rng, Al);
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c.imag() = gsl_ran_gaussian(rng, Al);
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}
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}
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}
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template<typename T>
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void HealpixSpectrum<T>::mul(FourierMapType& like_map) const
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{
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HealpixFourierALM<T>& alms = dynamic_cast<HealpixFourierALM<T>&>(like_map);
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std::complex<T> *data = alms.data();
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for (LType l = 0; l <= alms.Lmax(); l++)
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{
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double Al = cls[l];
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for (LType m = 0; m <= std::min(l,alms.Mmax()); m++)
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{
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data[alms.index(l,m)] *= Al;
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}
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}
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}
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template<typename T>
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void HealpixSpectrum<T>::mul_sqrt(FourierMapType& like_map) const
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{
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HealpixFourierALM<T>& alms = dynamic_cast<HealpixFourierALM<T>&>(like_map);
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std::complex<T> *data = alms.data();
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for (LType l = 0; l <= alms.Lmax(); l++)
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{
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double Al = std::sqrt(cls[l]);
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for (LType m = 0; m <= std::min(l,alms.Mmax()); m++)
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{
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data[alms.index(l,m)] *= Al;
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}
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}
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}
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template<typename T>
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void HealpixSpectrum<T>::mul_inv(FourierMapType& like_map) const
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{
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HealpixFourierALM<T>& alms = dynamic_cast<HealpixFourierALM<T>&>(like_map);
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std::complex<T> *data = alms.data();
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for (LType l = 0; l <= alms.Lmax(); l++)
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{
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double Al = (cls[l] <= 0) ? 0 : (1/cls[l]);
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for (LType m = 0; m <= std::min(l,alms.Mmax()); m++)
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{
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data[alms.index(l,m)] *= Al;
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}
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}
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}
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template<typename T>
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void HealpixSpectrum<T>::mul_inv_sqrt(FourierMapType& like_map) const
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{
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HealpixFourierALM<T>& alms = dynamic_cast<HealpixFourierALM<T>&>(like_map);
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std::complex<T> *data = alms.data();
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for (LType l = 0; l <= alms.Lmax(); l++)
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{
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double Al = (cls[l] <= 0) ? 0 : std::sqrt(1/cls[l]);
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for (LType m = 0; m <= std::min(l,alms.Mmax()); m++)
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{
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data[alms.index(l,m)] *= Al;
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}
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}
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}
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};
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#endif
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