1 | #include "sopnamsp.h"
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2 | #include "lambdaBuilder.h"
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3 | #include "nbconst.h"
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4 |
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5 |
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6 | /*!
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7 | \class SOPHYA::Legendre
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8 | generate Legendre polynomials : use in two steps :
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9 |
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10 | a) instanciate Legendre(\f$x\f$, \f$lmax\f$) ; \f$x\f$ is the value for wich Legendre polynomials will be required (usually equal to \f$\cos \theta\f$) and \f$lmax\f$ is the MAXIMUM value of the order of polynomials wich will be required in the following code (all polynomials, from \f$l=0 to lmax\f$, are computed once for all by an iterative formula).
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11 |
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12 | b) get the value of Legendre polynomial for a particular value of \f$l\f$ by calling the method getPl.
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13 |
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14 | */
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15 |
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16 |
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17 | Legendre::Legendre(r_8 x, int_4 lmax)
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18 | {
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19 | if (fabs(x) > 1. )
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20 | {
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21 | throw RangeCheckError("variable for Legendre polynomials must have modules inferior to 1" );
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22 | }
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23 | x_ = x;
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24 | array_init(lmax);
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25 | }
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26 |
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27 | /*! \fn void SOPHYA::Legendre::array_init(int_4 lmax)
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28 |
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29 | compute all \f$P_l(x,l_{max})\f$ for \f$l=1,l_{max}\f$
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30 | */
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31 | void Legendre::array_init(int_4 lmax)
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32 | {
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33 | lmax_ = lmax;
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34 | Pl_.ReSize(lmax_+1);
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35 | Pl_(0)=1.;
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36 | if (lmax>0) Pl_(1)=x_;
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37 | for (int k=2; k<Pl_.NElts(); k++)
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38 | {
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39 | Pl_(k) = ( (2.*k-1)*x_*Pl_(k-1)-(k-1)*Pl_(k-2) )/k;
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40 | }
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41 | }
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42 |
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43 | TriangularMatrix<r_8> LambdaLMBuilder::a_recurrence_ = TriangularMatrix<r_8>();
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44 | TriangularMatrix<r_8> LambdaLMBuilder::lam_fact_ = TriangularMatrix<r_8>();
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45 | TVector<r_8>* LambdaLMBuilder::normal_l_ = NULL;
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46 |
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47 |
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48 |
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49 | /*! \class SOPHYA::LambdaLMBuilder
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50 |
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51 |
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52 | This class generate the coefficients :
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53 | \f[
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54 | \lambda_l^m=\sqrt{\frac{2l+1}{4\pi}\frac{(l-m)!}{(l+m)!}}
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55 | P_l^m(\cos{\theta})
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56 | \f]
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57 | where \f$P_l^m\f$ are the associated Legendre polynomials. The above coefficients contain the theta-dependance of spheric harmonics :
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58 | \f[
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59 | Y_{lm}(\cos{\theta})=\lambda_l^m(\cos{\theta}) e^{im\phi}.
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60 | \f]
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61 |
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62 | Each object has a fixed theta (radians), and maximum l and m to be calculated
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63 | (lmax and mmax).
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64 | use the class in two steps :
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65 | a) instanciate LambdaLMBuilder(\f$\theta\f$, \f$lmax\f$, \f$mmax\f$) ; \f$lmax\f$ and \f$mmax\f$ are MAXIMUM values for which \f$\lambda_l^m\f$ will be required in the following code (all coefficients, from \f$l=0 to lmax\f$, are computed once for all by an iterative formula).
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66 | b) get the values of coefficients for particular values of \f$l\f$ and \f$m\f$ by calling the method lamlm.
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67 | */
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68 |
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69 |
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70 | LambdaLMBuilder::LambdaLMBuilder(r_8 theta,int_4 lmax, int_4 mmax)
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71 | {
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72 | cth_=cos(theta);
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73 | sth_=sin(theta);
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74 | array_init(lmax, mmax);
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75 | }
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76 | LambdaLMBuilder::LambdaLMBuilder(r_8 costet, r_8 sintet,int_4 lmax, int_4 mmax)
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77 | {
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78 | cth_=costet;
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79 | sth_=sintet;
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80 | array_init(lmax, mmax);
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81 | }
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82 | void LambdaLMBuilder::array_init(int lmax, int mmax)
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83 | {
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84 | updateArrayRecurrence(lmax);
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85 |
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86 | lmax_=lmax;
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87 | mmax_=mmax;
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88 | r_8 bignorm2 = 1.e268; // = 1e-20*1.d288
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89 |
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90 | lambda_.ReSizeRow(lmax_+1);
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91 |
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92 | r_8 lam_mm = 1. / sqrt(4.*Pi) *bignorm2;
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93 |
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94 | for (int m=0; m<=mmax_;m++)
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95 | {
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96 |
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97 |
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98 | lambda_(m,m)= lam_mm / bignorm2;
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99 |
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100 | r_8 lam_0=0.;
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101 | r_8 lam_1=1. /bignorm2 ;
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102 | // r_8 a_rec = LWK->a_recurr(m,m);
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103 | r_8 a_rec = a_recurrence_(m,m);
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104 | r_8 b_rec = 0.;
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105 | for (int l=m+1; l<=lmax_; l++)
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106 | {
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107 | r_8 lam_2 = (cth_*lam_1-b_rec*lam_0)*a_rec;
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108 | lambda_(l,m) = lam_2*lam_mm;
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109 | b_rec=1./a_rec;
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110 | // a_rec= LWK->a_recurr(l,m);
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111 | a_rec= a_recurrence_(l,m);
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112 | lam_0 = lam_1;
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113 | lam_1 = lam_2;
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114 | }
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115 |
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116 | lam_mm = -lam_mm*sth_* sqrt( (2.*m+3.)/ (2.*m+2.) );
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117 |
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118 | }
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119 | }
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120 |
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121 | /*!
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122 | \brief : Specialized/optimized static function for fast spherical harmonic transform.
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123 | Computes bm(m) = Sum_l>=m [ lambda(l,m) * alm(l,m) ]
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124 | See SphericalTransformServer<T>::GenerateFromAlm(map, pixsize, alm)
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125 | */
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126 | void LambdaLMBuilder::ComputeBmFrAlm(r_8 theta,int_4 lmax, int_4 mmax,
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127 | const Alm<r_8>& alm, Bm< complex<r_8> >& bm)
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128 | {
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129 | updateArrayRecurrence(lmax);
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130 | r_8 cth = cos(theta);
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131 | r_8 sth = sin(theta);
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132 |
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133 | r_8 bignorm2 = 1.e268; // = 1e-20*1.d288
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134 |
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135 | r_8 lam_mm = 1. / sqrt(4.*Pi) *bignorm2;
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136 | register r_8 lam_0, lam_1, lam_2;
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137 |
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138 | int_4 l, m, k;
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139 |
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140 | for (m=0; m<=mmax;m++) {
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141 | const complex<r_8>* almp = alm.columnData(m);
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142 | complex<r_8>* bmp = &(bm(m));
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143 | r_8* arecp = a_recurrence_.columnData(m);
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144 | *bmp = (lam_mm / bignorm2)*almp[0]; almp++;
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145 |
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146 | lam_0=0.;
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147 | lam_1=1. /bignorm2 ;
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148 |
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149 | // for (l=m+1; l<=lmax; l++) {
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150 | for (k=0; k<lmax-m; k++) {
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151 | lam_2 = (cth*lam_1-lam_0)*arecp[k];
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152 | lam_0 = lam_1/arecp[k];
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153 | lam_1 = lam_2;
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154 |
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155 | *bmp += (lam_2*lam_mm)*almp[k];
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156 | }
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157 | lam_mm = -lam_mm*sth* sqrt( (2.*m+3.)/ (2.*m+2.) );
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158 | }
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159 | }
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160 |
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161 | /*!
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162 | \brief : Specialized/optimized static function for fast spherical harmonic transform.
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163 | */
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164 | void LambdaLMBuilder::ComputeBmFrAlm(r_8 theta,int_4 lmax, int_4 mmax,
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165 | const Alm<r_4>& alm, Bm< complex<r_4> >& bm)
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166 | {
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167 | Alm<r_8> alm8(alm.Lmax());
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168 | for(sa_size_t k=0; k<alm8.Size(); k++)
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169 | alm8(k) = complex<r_8>((r_8)alm(k).real() , (r_8)alm(k).imag());
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170 | Bm< complex<r_8> > bm8(bm.Mmax());
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171 | ComputeBmFrAlm(theta, lmax, mmax, alm8, bm8);
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172 | for(sa_size_t kk=-bm.Mmax(); kk<=bm.Mmax(); kk++)
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173 | bm(kk)= complex<r_4>((r_4)bm8(kk).real() , (r_4)bm8(kk).imag());
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174 | return;
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175 | }
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176 |
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177 |
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178 | /*!
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179 | \brief : Specialized/optimized static function for fast spherical harmonic transform.
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180 | Computes alm(l,m) = Sum_l>=m [ lambda(l,m) * phase(l,m) ]
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181 | See SphericalTransformServer<T>::carteVersAlm(SphericalMap<T>& map, nlmax, ctcut, alm)
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182 | */
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183 | void LambdaLMBuilder::ComputeAlmFrPhase(r_8 theta,int_4 lmax, int_4 mmax,
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184 | TVector< complex<r_8> >& phase, Alm<r_8> & alm)
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185 | {
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186 | updateArrayRecurrence(lmax);
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187 | r_8 cth = cos(theta);
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188 | r_8 sth = sin(theta);
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189 |
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190 | r_8 bignorm2 = 1.e268; // = 1e-20*1.d288
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191 |
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192 | r_8 lam_mm = 1. / sqrt(4.*Pi) *bignorm2;
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193 | register r_8 lam_0, lam_1, lam_2;
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194 |
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195 | int_4 l, m, k;
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196 |
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197 | for (m=0; m<=mmax;m++) {
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198 | complex<r_8>* almp = alm.columnData(m);
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199 | complex<r_8> phi = phase(m);
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200 |
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201 | *almp += (lam_mm / bignorm2)*phi; almp++;
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202 |
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203 | lam_0=0.;
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204 | lam_1=1. /bignorm2 ;
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205 |
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206 | r_8* arecp = a_recurrence_.columnData(m);
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207 | // for (l=m+1; l<=lmax; l++) {
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208 | for (k=0; k<lmax-m; k++) {
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209 | lam_2 = (cth*lam_1-lam_0)*arecp[k];
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210 | lam_0 = lam_1/arecp[k];
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211 | lam_1 = lam_2;
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212 |
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213 | almp[k] += (lam_2*lam_mm) * phi;
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214 | }
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215 | lam_mm = -lam_mm*sth* sqrt( (2.*m+3.)/ (2.*m+2.) );
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216 | }
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217 | }
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218 |
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219 | /*!
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220 | \brief : Specialized/optimized static function for fast spherical harmonic transform.
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221 | Computes alm(l,m) = Sum_l>=m [ lambda(l,m) * phase(l,m) ]
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222 | See SphericalTransformServer<T>::carteVersAlm(SphericalMap<T>& map, nlmax, ctcut, alm)
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223 | */
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224 | void LambdaLMBuilder::ComputeAlmFrPhase(r_8 theta,int_4 lmax, int_4 mmax,
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225 | TVector< complex<r_4> >& phase, Alm<r_4> & alm)
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226 | {
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227 | updateArrayRecurrence(lmax);
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228 | r_8 cth = cos(theta);
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229 | r_8 sth = sin(theta);
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230 |
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231 | r_8 bignorm2 = 1.e268; // = 1e-20*1.d288
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232 |
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233 | r_8 lam_mm = 1. / sqrt(4.*Pi) *bignorm2;
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234 | register r_8 lam_0, lam_1, lam_2;
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235 |
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236 | int_4 l, m, k;
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237 |
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238 | for (m=0; m<=mmax;m++) {
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239 | complex<r_4>* almp = alm.columnData(m);
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240 | complex<r_4> phi = phase(m);
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241 |
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242 | *almp += ((r_4)(lam_mm / bignorm2))*phi; almp++;
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243 |
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244 | lam_0=0.;
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245 | lam_1=1. /bignorm2 ;
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246 |
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247 | r_8* arecp = a_recurrence_.columnData(m);
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248 | // for (l=m+1; l<=lmax; l++) {
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249 | for (k=0; k<lmax-m; k++) {
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250 | lam_2 = (cth*lam_1-lam_0)*arecp[k];
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251 | lam_0 = lam_1/arecp[k];
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252 | lam_1 = lam_2;
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253 |
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254 | almp[k] += ((r_4)(lam_2*lam_mm)) * phi;
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255 | }
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256 | lam_mm = -lam_mm*sth* sqrt( (2.*m+3.)/ (2.*m+2.) );
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257 | }
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258 |
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259 | }
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260 |
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261 |
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262 |
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263 | /*! \fn void SOPHYA::LambdaLMBuilder::updateArrayRecurrence(int_4 lmax)
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264 |
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265 | compute a static array of coefficients independant from theta (common to all instances of the LambdaBuilder Class
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266 | */
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267 |
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268 | void LambdaLMBuilder::updateArrayRecurrence(int_4 lmax)
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269 | {
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270 | if ( (a_recurrence_.Size() > 0) && (lmax < a_recurrence_.rowNumber()) )
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271 | return; // Pas besoin de recalculer le tableau de recurrence
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272 | if (a_recurrence_.Size() > 0) {
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273 | cout << " WARNING : The classes LambdaXXBuilder will be more efficient "
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274 | << "if instanciated with parameter lmax = maximum value of l index "
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275 | << "which will be needed in the whole application (arrays not "
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276 | << "recomputed) " << endl;
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277 | cout << " lmax= " << lmax << " previous instanciation with lmax= "
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278 | << a_recurrence_.rowNumber()-1 << endl;
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279 | }
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280 |
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281 | a_recurrence_.ReSizeRow(lmax+1);
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282 | for (int m=0; m<=lmax;m++)
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283 | {
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284 | a_recurrence_(m,m) = sqrt( 2.*m +3.);
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285 | for (int l=m+1; l<=lmax; l++)
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286 | {
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287 | r_8 fl2 = (l+1.)*(l+1.);
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288 | a_recurrence_(l,m)=sqrt( (4.*fl2-1.)/(fl2-m*m) );
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289 | }
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290 | }
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291 | }
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292 |
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293 | /*! \fn void SOPHYA::LambdaLMBuilder::updateArrayLamNorm()
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294 |
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295 | compute static arrays of coefficients independant from theta (common to all instances of the derived classes
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296 | */
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297 | void LambdaLMBuilder::updateArrayLamNorm()
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298 | {
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299 | lam_fact_.ReSizeRow(lmax_+1);
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300 | for(int m = 0;m<= lmax_; m++)
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301 | {
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302 | for (int l=m; l<=lmax_; l++)
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303 | {
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304 | lam_fact_(l,m) =2.*(r_8)sqrt( (2.*l+1)*(l+m)*(l-m)/(2.*l-1) );
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305 | }
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306 | }
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307 | (*normal_l_).ReSize(lmax_+1);
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308 | (*normal_l_)(0)=0.;
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309 | (*normal_l_)(1)=0.;
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310 | for (int l=2; l< (*normal_l_).NElts(); l++)
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311 | {
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312 | (*normal_l_)(l) =(r_8)sqrt( 2./( (l+2)*(l+1)*l*(l-1) ) );
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313 | }
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314 | }
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315 |
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316 |
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317 | /*! \class SOPHYA::LambdaWXBuilder
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318 |
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319 | This class generates the coefficients :
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320 | \f[
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321 | _{w}\lambda_l^m=-2\sqrt{\frac{2(l-2)!}{(l+2)!}\frac{(2l+1)}{4\pi}\frac{(l-m)!}{(l+m)!}} G^+_{lm}
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322 | \f]
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323 | \f[
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324 | _{x}\lambda_l^m=-2\sqrt{\frac{2(l-2)!}{(l+2)!}\frac{(2l+1)}{4\pi}\frac{(l-m)!}{(l+m)!}}G^-_{lm}
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325 | \f]
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326 | where
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327 | \f[G^+_{lm}(\cos{\theta})=-\left( \frac{l-m^2}{\sin^2{\theta}}+\frac{1}{2}l\left(l-1\right)\right)P_l^m(\cos{\theta})+\left(l+m\right)\frac{\cos{\theta}}{\sin^2{\theta}}P^m_{l-1}(\cos{\theta})
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328 | \f]
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329 | and
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330 | \f[G^-_{lm}(\cos{\theta})=\frac{m}{\sin^2{\theta}}\left(\left(l-1\right)\cos{\theta}P^m_l(\cos{\theta})-\left(l+m\right)P^m_{l-1}(\cos{\theta})\right)
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331 | \f]
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332 | \f$P_l^m\f$ are the associated Legendre polynomials.
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333 |
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334 | The coefficients express the theta-dependance of the \f$W_{lm}(\cos{\theta})\f$ and \f$X_{lm}(\cos{\theta})\f$ functions :
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335 | \f[W_{lm}(\cos{\theta}) = \sqrt{\frac{(l+2)!}{2(l-2)!}}_w\lambda_l^m(\cos{\theta})e^{im\phi}
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336 | \f]
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337 | \f[X_{lm}(\cos{\theta}) = -i\sqrt{\frac{(l+2)!}{2(l-2)!}}_x\lambda_l^m(\cos{\theta})e^{im\phi}
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338 | \f]
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339 | where \f$W_{lm}(\cos{\theta})\f$ and \f$X_{lm}(\cos{\theta})\f$ are defined as :
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340 |
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341 | \f[
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342 | W_{lm}(\cos{\theta})=-\frac{1}{2}\sqrt{\frac{(l+2)!}{(l-2)!}}\left(
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343 | _{+2}Y_l^m(\cos{\theta})+_{-2}Y_l^m(\cos{\theta})\right)
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344 | \f]
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345 | \f[X_{lm}(\cos{\theta})=-\frac{i}{2}\sqrt{\frac{(l+2)!}{(l-2)!}}\left(
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346 | _{+2}Y_l^m(\cos{\theta})-_{-2}Y_l^m(\cos{\theta})\right)
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347 | \f]
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348 |
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349 | */
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350 |
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351 |
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352 | LambdaWXBuilder::LambdaWXBuilder(r_8 theta, int_4 lmax, int_4 mmax) : LambdaLMBuilder(theta, lmax, mmax)
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353 | {
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354 | array_init();
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355 | }
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356 |
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357 |
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358 | void LambdaWXBuilder::array_init()
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359 | {
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360 | if (lam_fact_.Size() < 1 || normal_l_ == NULL)
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361 | {
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362 | // lam_fact_ = new TriangularMatrix<r_8>;
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363 | normal_l_ = new TVector<r_8>;
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364 | updateArrayLamNorm();
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365 | }
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366 | else
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367 | if ( lmax_ > lam_fact_.rowNumber()-1 || lmax_ > (*normal_l_).NElts()-1 )
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368 | {
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369 | updateArrayLamNorm();
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370 | }
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371 |
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372 | r_8 one_on_s2 = 1. / (sth_*sth_) ; // 1/sin^2
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373 | r_8 c_on_s2 = cth_*one_on_s2;
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374 | lamWlm_.ReSizeRow(lmax_+1);
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375 | lamXlm_.ReSizeRow(lmax_+1);
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376 |
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377 | // calcul des lambda
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378 | for(int m = 0;m<= mmax_; m++)
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379 | {
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380 | for (int l=m; l<=lmax_; l++)
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381 | {
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382 | lamWlm_(l,m) = 0.;
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383 | lamXlm_(l,m) = 0.;
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384 | }
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385 | }
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386 | for(int l = 2;l<= lmax_; l++)
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387 | {
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388 | r_8 normal_l = (*normal_l_)(l);
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389 | for (int m=0; m<=l; m++)
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390 | {
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391 | r_8 lam_lm1m = LambdaLMBuilder::lamlm(l-1,m);
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392 | r_8 lam_lm = LambdaLMBuilder::lamlm(l,m);
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393 | r_8 lam_fact_l_m = lam_fact_(l,m);
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394 | r_8 a_w = 2. * (l - m*m) * one_on_s2 + l*(l-1.);
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395 | r_8 b_w = c_on_s2 * lam_fact_l_m;
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396 | r_8 a_x = 2. * cth_ * (l-1.);
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397 | lamWlm_(l,m) = normal_l * ( a_w * lam_lm - b_w * lam_lm1m );
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398 | lamXlm_(l,m) = - normal_l * m* one_on_s2* ( a_x * lam_lm - lam_fact_l_m * lam_lm1m );
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399 | }
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400 | }
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401 |
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402 | }
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403 |
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404 | /*! \class SOPHYA::LambdaPMBuilder
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405 |
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406 | This class generates the coefficients
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407 | \f[
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408 | _{\pm}\lambda_l^m=2\sqrt{\frac{(l-2)!}{(l+2)!}\frac{(2l+1)}{4\pi}\frac{(l-m)!}{(l+m)!}}\left( G^+_{lm} \mp G^-_{lm}\right)
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409 | \f]
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410 | where
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411 | \f[G^+_{lm}(\cos{\theta})=-\left( \frac{l-m^2}{\sin^2{\theta}}+\frac{1}{2}l\left(l-1\right)\right)P_l^m(\cos{\theta})+\left(l+m\right)\frac{\cos{\theta}}{\sin^2{\theta}}P^m_{l-1}(\cos{\theta})
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412 | \f]
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413 | and
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414 | \f[G^-_{lm}(\cos{\theta})=\frac{m}{\sin^2{\theta}}\left(\left(l-1\right)\cos{\theta}P^m_l(\cos{\theta})-\left(l+m\right)P^m_{l-1}(\cos{\theta})\right)
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415 | \f]
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416 | and \f$P_l^m\f$ are the associated Legendre polynomials.
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417 | The coefficients express the theta-dependance of the spin-2 spherical harmonics :
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418 | \f[_{\pm2}Y_l^m(\cos{\theta})=_\pm\lambda_l^m(\cos{\theta})e^{im\phi}
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419 | \f]
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420 | */
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421 |
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422 | LambdaPMBuilder::LambdaPMBuilder(r_8 theta, int_4 lmax, int_4 mmax) : LambdaLMBuilder(theta, lmax, mmax)
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423 | {
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424 | array_init();
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425 | }
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426 |
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427 |
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428 | void LambdaPMBuilder::array_init()
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429 | {
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430 | if (lam_fact_.Size() < 1 || normal_l_ == NULL)
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431 | {
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432 | // lam_fact_ = new TriangularMatrix<r_8>;
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433 | normal_l_ = new TVector<r_8>;
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434 | updateArrayLamNorm();
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435 | }
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436 | else
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437 | if ( lmax_ > lam_fact_.rowNumber()-1 || lmax_ > (*normal_l_).NElts()-1 )
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438 | {
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439 | updateArrayLamNorm();
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440 | }
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441 |
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442 | r_8 one_on_s2 = 1. / (sth_*sth_) ;
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443 | r_8 c_on_s2 = cth_*one_on_s2;
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444 | lamPlm_.ReSizeRow(lmax_+1);
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445 | lamMlm_.ReSizeRow(lmax_+1);
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446 |
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447 | // calcul des lambda
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448 | for(int m = 0;m<= mmax_; m++)
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449 | {
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450 | for (int l=m; l<=lmax_; l++)
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451 | {
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452 | lamPlm_(l,m) = 0.;
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453 | lamMlm_(l,m) = 0.;
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454 | }
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455 | }
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456 |
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457 | for(int l = 2;l<= lmax_; l++)
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458 | {
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459 | r_8 normal_l = (*normal_l_)(l);
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460 | for (int m=0; m<=l; m++)
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461 | {
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462 | r_8 lam_lm1m = LambdaLMBuilder::lamlm(l-1,m);
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463 | r_8 lam_lm = LambdaLMBuilder::lamlm(l,m);
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464 | r_8 lam_fact_l_m = lam_fact_(l,m);
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465 | r_8 a_w = 2. * (l - m*m) * one_on_s2 + l*(l-1.);
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466 | r_8 f_w = lam_fact_l_m/(sth_*sth_);
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467 | r_8 c_w = 2*m*(l-1.) * c_on_s2;
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468 |
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469 | lamPlm_(l,m) = normal_l * ( -(a_w+c_w) * lam_lm + f_w*( cth_ + m) * lam_lm1m )/Rac2;
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470 | lamMlm_(l,m) = normal_l * ( -(a_w-c_w) * lam_lm + f_w*( cth_ - m) * lam_lm1m )/Rac2;
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471 | }
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472 | }
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473 |
|
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474 | }
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475 |
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476 |
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