1 | #include <math.h>
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2 | #include <vector>
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3 | #include <fftserver.h>
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4 | #include <complex>
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5 | #include "ana2fast.h"
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6 | #include "lambuilder.h"
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7 | #ifdef __MWERKS__
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8 | #include "unixmac.h"
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9 | #endif
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10 |
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11 |
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12 | /*extern "C" {
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13 | void fft_gpd_(long double* ,int& ,int& ,int& ,int& ,long double*);
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14 | }*/
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15 |
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16 | void map2a2lm(int nsmax,int nlmax,int nmmax,const vector<float>& mapq,
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17 | const vector<float>& mapu,
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18 | vector< vector< complex<double> > >& a2lme,
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19 | vector< vector< complex<double> > >& a2lmb,
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20 | double cos_theta_cut){
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21 |
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22 | // REAL*4 powspec(0:nlmax)
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23 |
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24 | // integer npmiss,npmt,id_miss(10000)
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25 |
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26 | //create the maps for which there are nice basis functions
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27 |
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28 | vector< complex<float> > mapp(mapq.size());
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29 | vector< complex<float> > mapm(mapq.size());
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30 | for (int i=0;i< (signed) mapq.size();i++){
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31 | mapp[i]=complex<float>(mapq[i],mapu[i]);
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32 | mapm[i]=complex<float>(mapq[i],-mapu[i]);
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33 | //cout <<"the maps"<< mapp[i]<<" "<<mapm[i]<<endl;
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34 | }
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35 |
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36 | vector< vector< complex<double> > > a2lmp;
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37 | vector< vector< complex<double> > > a2lmm;
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38 | a2lmp.resize(nlmax+1);
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39 | for (int i=0; i< (signed) a2lmp.size();i++){
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40 | a2lmp[i].resize(nmmax+1);
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41 | for (int j=0; j< (signed) a2lmp[i].size();j++)a2lmp[i][j]=0;
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42 | }
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43 | a2lmm.resize(nlmax+1);
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44 | for (int i=0; i< (signed) a2lmm.size();i++){
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45 | a2lmm[i].resize(nmmax+1);
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46 | for (int j=0; j< (signed) a2lmm[i].size();j++)a2lmm[i][j]=0;
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47 | }
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48 |
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49 | /*-----------------------------------------------------------------------
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50 | computes the integral in phi : phas_m(theta)
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51 | for each parallele from north to south pole
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52 | -----------------------------------------------------------------------*/
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53 |
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54 | int istart_north = 0;
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55 | int istart_south = 12*nsmax*nsmax;
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56 |
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57 | double dth1 = 1. / (3.*nsmax*nsmax);
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58 | double dth2 = 2. / (3.*nsmax);
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59 | double dst1 = 1. / (sqrt(6.) * nsmax);
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60 |
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61 | vector< complex<double> > phas_np(nmmax+1), phas_sp(nmmax+1),
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62 | phas_nm(nmmax+1),phas_sm(nmmax+1);
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63 |
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64 | for (int ith = 1; ith <= 2*nsmax;ith++){
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65 | int nph, kphi0;
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66 | double cth, sth, sth2;
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67 | //assign doesn't seem to exist in our compiler
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68 | //phas_n.assign(nmmax+1,(complex<float>) 0);
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69 | //phas_s.assign(nmmax+1,(complex<float>) 0);
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70 | for (int i=0;i< nmmax+1;i++){
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71 | phas_np[i]=0; phas_sp[i]=0;phas_nm[i]=0;phas_sm[i]=0;
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72 | }
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73 |
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74 | if (ith <= nsmax-1){ /* north polar cap */
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75 | nph = 4*ith;
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76 | kphi0 = 1;
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77 | cth = 1. - dth1*ith*ith; /* cos(theta) */
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78 | sth = sin( 2. * asin( ith * dst1 ) ) ; /* sin(theta) */
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79 | sth2 = sth*sth;
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80 | } else { /* tropical band + equat. */
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81 | nph = 4*nsmax;
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82 | kphi0 = (ith+1-nsmax) % 2;
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83 | cth = (2.*nsmax-ith) * dth2;
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84 | sth = sqrt((1.-cth)*(1.+cth)); /* ! sin(theta)*/
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85 | sth2=(1.-cth)*(1.+cth);
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86 | }
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87 |
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88 | //part of the sky out of the symetric cut
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89 | bool keep_it = (abs(cth) >= cos_theta_cut);
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90 |
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91 | //make sure that map is well defined
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92 | if (keep_it){
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93 | comp_phas2_2(nsmax,nlmax,nmmax,mapp,mapm,istart_north,nph,phas_np,
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94 | phas_nm,kphi0);
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95 | }
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96 | istart_north = istart_north + nph;
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97 |
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98 | istart_south = istart_south - nph;
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99 | if (ith < 2*nsmax && keep_it){
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100 | comp_phas2_2(nsmax,nlmax,nmmax,mapp,mapm,istart_south,nph,phas_sp,
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101 | phas_sm,kphi0);
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102 | }
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103 | /*-----------------------------------------------------------------------
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104 | computes the a_lm by integrating over theta
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105 | lambda_lm(theta) * phas_m(theta)
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106 | for each m and l
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107 | -----------------------------------------------------------------------*/
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108 | Lambda2Builder l2b(acos(cth),nlmax,nmmax);
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109 | //cout << "fft:"<<phas_np[0]<<" "<<phas_sp[0]<<" "<<phas_nm[0]<<" "<<phas_sm[0]<<endl;
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110 | for (int m = 0; m <= nmmax; m++){
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111 | cout << phas_np[m]<<" "<<phas_sp[m]<<" "<<phas_nm[m]<<" "<<phas_sm[m]<<endl;
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112 | a2lmp[m][m]+=l2b.lam2lmp(m,m)*phas_np[m]+l2b.lam2lmp(m,m,-1)*phas_sp[m];
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113 | a2lmm[m][m]+=l2b.lam2lmm(m,m)*phas_nm[m]+l2b.lam2lmm(m,m,-1)*phas_sm[m];
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114 | for (int l = m+1; l<= nlmax; l++){
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115 | a2lmp[l][m]+=
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116 | l2b.lam2lmp(l,m)*phas_np[m]+l2b.lam2lmp(l,m,-1)*phas_sp[m];
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117 | a2lmm[l][m]+=
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118 | l2b.lam2lmm(l,m)*phas_nm[m]+l2b.lam2lmm(l,m,-1)*phas_sm[m];
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119 | }
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120 | }
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121 | }
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122 | complex<double> im(0,1);
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123 | a2lme.resize(nlmax+1);
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124 | for (int i=0; i< (signed) a2lme.size();i++){
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125 | a2lme[i].resize(nmmax+1);
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126 | }
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127 | a2lmb.resize(nlmax+1);
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128 | for (int i=0; i< (signed) a2lmb.size();i++){
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129 | a2lmb[i].resize(nmmax+1);
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130 | }
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131 | float domega=(4.*M_PI)/(12.*nsmax*nsmax);
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132 | for (int m = 0; m <= nmmax; m++){
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133 | a2lme[m][m]=-(a2lmp[m][m]+a2lmm[m][m])/2.*static_cast<double>(domega);
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134 | a2lmb[m][m]=im*(a2lmp[m][m]-a2lmm[m][m])/2.*static_cast<double>(domega);
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135 | for (int l = m+1; l<= nlmax; l++){
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136 | a2lme[l][m]=-(a2lmp[l][m]+a2lmm[l][m])/2.*static_cast<double>(domega);
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137 | a2lmb[l][m]=im*(a2lmp[l][m]-a2lmm[l][m])/2.*static_cast<double>(domega);
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138 | }
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139 | }
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140 | //for (int l = 2; l<= nlmax; l++){
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141 | //cout << "calc almp,m"<<a2lmp[l][0]<<" "<<a2lmm[l][0]<<endl;}
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142 | }
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143 |
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144 | void comp_phas2_2(int nsmax,int nlmax,int nmmax,
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145 | const vector< complex<float> >& datain,
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146 | const vector< complex<float> >& datain2,
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147 | int start,int nph,vector< complex<double> >& dataout,
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148 | vector< complex<double> >& dataout2, int kphi0){
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149 | /*=======================================================================
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150 | integrates (data * phi-dependence-of-Ylm) over phi
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151 | --> function of m can be computed by FFT
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152 | with 0<= m <= npoints/2 (: Nyquist)
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153 | because the data is real the negative m are the conjugate of the
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154 | positive ones
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155 |
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156 | arguments d'appels : GLM
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157 | =======================================================================*/
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158 |
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159 | int ksign = -1;
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160 | double phi0 = kphi0*M_PI/nph;
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161 |
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162 | complex<double>* data= new complex<double>[4*nsmax];
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163 | complex<double>* data2= new complex<double>[4*nsmax];
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164 | for (int i = 0; i< nph;i++){
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165 | data[i] = datain[i+start];
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166 | data2[i] = datain2[i+start];
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167 | }
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168 | for (int i = nph; i< 4*nsmax;i++){
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169 | data[i] = 0;
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170 | data2[i] = 0;
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171 | }
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172 |
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173 | FFTServer fft;
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174 | fft.fftb(nph,data);
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175 | fft.fftb(nph,data2);
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176 |
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177 | //in the output the frequencies are respectively 0,1,2,..,nph/2,-nph/2+1,..,-2,-1
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178 | // only the first nph/2+1 (positive freq.) are interesting
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179 | int im_max = min(nph/2,nmmax);
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180 | dataout.resize(nmmax+1);
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181 | dataout2.resize(nmmax+1);
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182 | for (int i = 1;i <= im_max + 1;i++){
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183 | int m = ksign*(i-1);
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184 | complex<double> fuck(cos(m*phi0),sin(m*phi0));
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185 | dataout[i-1]=data[i-1]*fuck;
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186 | dataout2[i-1]=data2[i-1]*fuck;
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187 | }
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188 | for (int i = im_max + 2;i <= nmmax + 1;i++){
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189 | dataout[i-1] = 0; dataout2[i-1]=0;
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190 | }
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191 | delete[] data;
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192 | delete[] data2;
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193 | }
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