[2615] | 1 | #include "sopnamsp.h"
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[729] | 2 | #include "alm.h"
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[3510] | 3 |
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| 4 |
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| 5 | /*!
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| 6 | \class Alm
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| 7 | \ingroup Samba
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| 8 | Class for manipulating the coefficients \f$a_{lm}\f$ of the development
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| 9 | in spherical harmonics of a function efined on a sphere.
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| 10 | */
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| 11 |
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| 12 | /*!
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| 13 | fwhm specifies the gaussian beam half witdh in arc.minutes
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| 14 | */
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[729] | 15 | template <class T>
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| 16 | Alm<T>::Alm(const TVector<T>& clin, const r_8 fwhm)
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| 17 |
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| 18 | {
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[3510] | 19 | int_4 nlmax= clin.NElts()-1;
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[729] | 20 |
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[3510] | 21 | //alm.ReSize(nlmax);
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| 22 | this->ReSizeRow(nlmax+1);
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| 23 | RandomGenerator rg(1, false);
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| 24 | GenFromCl(clin, fwhm, rg);
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| 25 | }
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[729] | 26 |
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[3510] | 27 | /*!
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| 28 | fwhm specifies the gaussian beam half witdh in arc.minutes
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| 29 | */
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| 30 | template <class T>
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| 31 | Alm<T>::Alm(const TVector<T>& clin, const r_8 fwhm, RandomGenerator & rg)
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| 32 | {
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| 33 | int_4 nlmax= clin.NElts()-1;
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| 34 |
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| 35 | //alm.ReSize(nlmax);
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| 36 | this->ReSizeRow(nlmax+1);
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| 37 | GenFromCl(clin, fwhm, rg);
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| 38 | }
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| 39 |
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| 40 |
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| 41 |
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| 42 | template <class T>
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| 43 | void Alm<T>::GenFromCl(const TVector<T> & clin, const r_8 fwhm, RandomGenerator & rg)
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| 44 | {
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[729] | 45 | /*=======================================================================
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| 46 | creates the a_lm from the power spectrum,
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| 47 | assuming they are gaussian and complex
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| 48 | with a variance given by C(l)
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| 49 |
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| 50 | the input file should contain : l and C(l) with *consecutive* l's
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| 51 | (missing C(l) are put to 0.)
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| 52 |
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| 53 | because the map is real we have : a_l-m = (-)^m conjug(a_lm)
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| 54 | so we actually compute them only for m >= 0
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| 55 |
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| 56 | =======================================================================*/
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| 57 | int_4 nlmax= clin.NElts()-1;
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| 58 |
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| 59 | r_8 sig_smooth = fwhm/sqrt(8.*log(2.))/(60.*180.)* M_PI;
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| 60 | int_4 n_l = nlmax+1;
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| 61 |
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| 62 |
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| 63 | // --- smoothes the initial power spectrum ---
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[3510] | 64 | TVector<T> cl(clin, false);
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[833] | 65 | int l;
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| 66 | for (l=0;l<n_l;l++)
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[729] | 67 | {
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| 68 | r_8 gauss=exp(-l*(l+1.)*sig_smooth*sig_smooth);
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| 69 | cl(l)*=(T)gauss;
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| 70 | }
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| 71 |
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| 72 |
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| 73 | // --- generates randomly the alm according to their power spectrum ---
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| 74 | r_8 hsqrt2 = 1.0 / Rac2;
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| 75 |
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[833] | 76 | for (l=0;l<n_l;l++)
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[729] | 77 | {
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| 78 | T rms=sqrt(cl(l));
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| 79 | // ------ m = 0 ------
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[3510] | 80 | complex<T> zeta1((T)rg.Gaussian() );
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[729] | 81 | (*this)(l,0) = zeta1 * rms;
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| 82 |
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| 83 | //------ m > 0 ------
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| 84 | for (int m=1;m<=l;m++)
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| 85 | {
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| 86 | complex<T> aux1(hsqrt2);
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[3510] | 87 | complex<T> aux2((T)rg.Gaussian() , (T)rg.Gaussian() );
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[729] | 88 | zeta1=aux1*aux2;
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| 89 | (*this)(l,m)=rms*zeta1;
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| 90 | }
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| 91 | }
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| 92 | }
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| 93 |
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| 94 |
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| 95 | template <class T>
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| 96 | TVector<T> Alm<T>::powerSpectrum() const
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| 97 | {
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| 98 | int_4 nlmax=Lmax();
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| 99 |
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[1621] | 100 | TVector<T> powsp(nlmax+1);
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[729] | 101 |
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| 102 | for (int l=0; l<=nlmax;l++)
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| 103 | {
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[1621] | 104 | powsp(l)=( (*this)(l,0) ).real()*( (*this)(l,0) ).real();
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[729] | 105 | for (int m=1; m<=l; m++)
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| 106 | {
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[1621] | 107 | powsp(l)+=2.*( (*this)(l,m).real()*(*this)(l,m).real()+
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[865] | 108 | (*this)(l,m).imag()*(*this)(l,m).imag() );
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[729] | 109 | }
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[1621] | 110 | powsp(l)/=(2.*l+1.);
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[729] | 111 | }
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[1621] | 112 | return powsp;
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[729] | 113 | }
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[3510] | 114 |
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| 115 | /*!
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| 116 | \class Bm
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| 117 | \ingroup Samba
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| 118 | Class for a vector with an index running from \f$-m_{max}\f$ to \f$+m_{max}\f$
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| 119 | (then the size of the vector will be actually \f$2m_{max}+1)\f$.
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| 120 | This class is used by the spherical harmonics transform server
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| 121 | */
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| 122 |
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[1683] | 123 |
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[729] | 124 | #ifdef __CXX_PRAGMA_TEMPLATES__
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| 125 | #pragma define_template Alm<r_8>
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| 126 | #pragma define_template Alm<r_4>
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| 127 | #endif
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| 128 | #if defined(ANSI_TEMPLATES) || defined(GNU_TEMPLATES)
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[2872] | 129 | template class SOPHYA::Alm<r_8>;
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| 130 | template class SOPHYA::Alm<r_4>;
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[729] | 131 | #endif
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