| 1 | // utilitaires de pixelisation HEALPix
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| 2 | #include "HEALPixUtils.h"
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| 3 | #include <iostream.h>
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| 4 | #include <math.h>
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| 5 | //#include <complex>
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| 6 | #include "tvector.h"
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| 7 | #include "smathconst.h"
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| 8 | extern "C" 
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| 9 | {
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| 10 | #include <stdio.h>
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| 11 | #include <stdlib.h>
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| 12 | #include <unistd.h>
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| 13 | }
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| 14 | 
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| 15 | using namespace SOPHYA;
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| 16 | 
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| 17 | //////////////////////////////////////////////////////////////////////////
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| 18 | //
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| 19 | // ------------- Classe PIXELS_XY -----------------------
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| 20 | //
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| 21 | class PIXELS_XY
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| 22 | {
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| 23 | 
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| 24 | public :
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| 25 | 
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| 26 | static PIXELS_XY& instance();
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| 27 | 
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| 28 | NDataBlock<int_4> pix2x_;
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| 29 | NDataBlock<int_4> pix2y_;
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| 30 | NDataBlock<int_4> x2pix_;
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| 31 | NDataBlock<int_4> y2pix_;
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| 32 | 
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| 33 | private :
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| 34 | 
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| 35 | PIXELS_XY();
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| 36 | void mk_pix2xy();
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| 37 | void mk_xy2pix();
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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 | //*******************************************************************
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| 43 | // Class PIXELS_XY 
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| 44 | // Construction des tableaux necessaires a la traduction des indices RING en 
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| 45 | // indices NESTED (ou l'inverse)
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| 46 | //*******************************************************************
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| 47 | 
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| 48 | PIXELS_XY::PIXELS_XY()
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| 49 | {
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| 50 |   pix2x_.ReSize(1024);
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| 51 |   pix2x_.Reset();
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| 52 |   pix2y_.ReSize(1024);
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| 53 |   pix2y_.Reset();
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| 54 |   x2pix_.ReSize(128);
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| 55 |   x2pix_.Reset();
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| 56 |   y2pix_.ReSize(128);
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| 57 |   y2pix_.Reset();
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| 58 |   mk_pix2xy(); 
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| 59 |   mk_xy2pix(); 
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| 60 | }
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| 61 | 
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| 62 | // Instance unique de la classe PIXELS_XY 
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| 63 | static PIXELS_XY * _singleton = NULL;
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| 64 | 
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| 65 | PIXELS_XY& PIXELS_XY::instance()
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| 66 | {
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| 67 |   if (_singleton == NULL) _singleton = new PIXELS_XY ;
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| 68 |   return (*_singleton);
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| 69 | }
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| 70 | 
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| 71 | void PIXELS_XY::mk_pix2xy() 
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| 72 | {
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| 73 |   /*
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| 74 |     ==================================================
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| 75 |     subroutine mk_pix2xy
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| 76 |     ==================================================
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| 77 |     c     constructs the array giving x and y in the face from pixel number
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| 78 |     c     for the nested (quad-cube like) ordering of pixels
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| 79 |     c
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| 80 |     c     the bits corresponding to x and y are interleaved in the pixel number
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| 81 |     c     one breaks up the pixel number by even and odd bits
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| 82 |     ==================================================
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| 83 |   */
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| 84 |   // tranlated from FORTRAN (Gorski) to C, by B. Revenu, revised Guy Le Meur
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| 85 |   //  (16/12/98)
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| 86 | 
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| 87 |   int kpix, jpix, IX, IY, IP, ID;
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| 88 |   
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| 89 |   for(kpix = 0; kpix < 1024; kpix++) 
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| 90 |     {
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| 91 |       jpix = kpix;
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| 92 |       IX = 0;
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| 93 |       IY = 0;
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| 94 |       IP = 1 ;//  ! bit position (in x and y)
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| 95 |       while( jpix!=0 )
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| 96 |         { // ! go through all the bits
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| 97 |           ID=jpix%2;//  ! bit value (in kpix), goes in ix
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| 98 |           jpix = jpix/2;
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| 99 |           IX = ID*IP+IX;
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| 100 |       
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| 101 |           ID=jpix%2;//  ! bit value (in kpix), goes in iy
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| 102 |           jpix = jpix/2;
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| 103 |           IY = ID*IP+IY;
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| 104 |      
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| 105 |           IP = 2*IP;//        ! next bit (in x and y)
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| 106 |         }
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| 107 |       pix2x_(kpix) = IX;//     ! in 0,31
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| 108 |       pix2y_(kpix) = IY;//     ! in 0,31
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| 109 |     }
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| 110 | }
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| 111 | 
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| 112 | void PIXELS_XY::mk_xy2pix() 
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| 113 | {
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| 114 |   /*
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| 115 |     =================================================
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| 116 |     subroutine mk_xy2pix
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| 117 |     =================================================
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| 118 |     c     sets the array giving the number of the pixel lying in (x,y)
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| 119 |     c     x and y are in {1,128}
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| 120 |     c     the pixel number is in {0,128**2-1}
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| 121 |     c
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| 122 |     c     if  i-1 = sum_p=0  b_p * 2^p
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| 123 |     c     then ix = sum_p=0  b_p * 4^p
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| 124 |     c          iy = 2*ix
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| 125 |     c     ix + iy in {0, 128**2 -1}
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| 126 |     =================================================
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| 127 |   */
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| 128 |   // tranlated from FORTRAN (Gorski) to C, by B. Revenu, revised Guy Le Meur
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| 129 |   //  (16/12/98)
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| 130 | 
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| 131 |   int K,IP,I,J,ID;
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| 132 |   for(I = 1; I <= 128; I++) 
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| 133 |     {
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| 134 |       J  = I-1;//            !pixel numbers
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| 135 |       K  = 0;//
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| 136 |       IP = 1;//
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| 137 |       truc : if( J==0 ) 
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| 138 |         {
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| 139 |           x2pix_(I-1) = K;
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| 140 |           y2pix_(I-1) = 2*K;
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| 141 |         }
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| 142 |       else 
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| 143 |         {
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| 144 |           ID = (int)fmod(J,2);
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| 145 |           J  = J/2;
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| 146 |           K  = IP*ID+K;
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| 147 |           IP = IP*4;
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| 148 |           goto truc;
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| 149 |         }
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| 150 |     }     
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| 151 | }
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| 152 | 
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| 153 | 
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| 154 | 
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| 155 | int_4 HEALPix::nest2ring(int_4 nside, int_4 ipnest) 
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| 156 | {
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| 157 |   /*
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| 158 |     ====================================================
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| 159 |     subroutine nest2ring(nside, ipnest, ipring)
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| 160 |     ====================================================
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| 161 |     c     conversion from NESTED to RING pixel number
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| 162 |     ====================================================
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| 163 |   */
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| 164 |   // tranlated from FORTRAN (Gorski) to C, by B. Revenu, revised Guy Le Meur
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| 165 |   //  (16/12/98)
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| 166 |   
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| 167 |     const PIXELS_XY& PXY= PIXELS_XY::instance();
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| 168 | 
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| 169 |   int npix, npface, face_num, ncap, n_before;
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| 170 |   int ipf, ip_low, ip_trunc, ip_med, ip_hi;
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| 171 |   int ix, iy, jrt, jr, nr, jpt, jp, kshift, nl4;
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| 172 |   int ns_max=8192;
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| 173 |   int jrll[12]={2, 2, 2, 2, 3, 3, 3, 3, 4, 4, 4, 4};
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| 174 |   int jpll[12]={1, 3, 5, 7, 0, 2, 4, 6, 1, 3, 5, 7};
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| 175 |   
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| 176 |   if(  nside<1 ||  nside>ns_max ) {
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| 177 |     cout << "nside out of range" << endl;
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| 178 |     exit(0);
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| 179 |   }
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| 180 |   npix = 12 *  nside* nside;
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| 181 |   if( ipnest<0 || ipnest>npix-1 ) {
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| 182 |     cout << "ipnest out of range" << endl;
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| 183 |     exit(0);
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| 184 |   }
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| 185 | 
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| 186 |   ncap  = 2* nside*( nside-1);// ! number of points in the North Polar cap
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| 187 |   nl4   = 4* nside;
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| 188 |   
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| 189 |   //c     finds the face, and the number in the face
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| 190 |   npface =  nside* nside;
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| 191 |   //cccccc      ip = ipnest - 1         ! in {0,npix-1}
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| 192 |   
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| 193 |   face_num = ipnest/npface;//  ! face number in {0,11}
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| 194 |   ipf =ipnest%npface;//  ! pixel number in the face {0,npface-1}
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| 195 |   //c     finds the x,y on the face (starting from the lowest corner)
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| 196 |   //c     from the pixel number
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| 197 |   ip_low=ipf%1024;                //   ! content of the last 10 bits
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| 198 |   ip_trunc =   ipf/1024;         //    ! truncation of the last 10 bits
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| 199 |   ip_med=ip_trunc%1024;         //     ! content of the next 10 bits
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| 200 |   ip_hi  =     ip_trunc/1024;//   ! content of the high weight 10 bits
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| 201 |   
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| 202 |   ix = 1024*PXY.pix2x_(ip_hi)+32*PXY.pix2x_(ip_med)+PXY.pix2x_(ip_low);
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| 203 |   iy = 1024*PXY.pix2y_(ip_hi)+32*PXY.pix2y_(ip_med)+PXY.pix2y_(ip_low);
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| 204 |   
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| 205 |   //c     transforms this in (horizontal, vertical) coordinates
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| 206 |   jrt = ix + iy;//  ! 'vertical' in {0,2*(nside-1)}
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| 207 |   jpt = ix - iy;//  ! 'horizontal' in {-nside+1,nside-1}
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| 208 |   
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| 209 |   //c     computes the z coordinate on the sphere
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| 210 |   //      jr =  jrll[face_num+1]*nside - jrt - 1;//   ! ring number in {1,4*nside-1}
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| 211 |   jr =  jrll[face_num]*nside - jrt - 1;
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| 212 |   nr = nside;//                  ! equatorial region (the most frequent)
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| 213 |   n_before = ncap + nl4 * (jr - nside);
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| 214 |   kshift=(jr - nside)%2;
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| 215 |   if( jr<nside ) {//then     ! north pole region
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| 216 |     nr = jr;
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| 217 |     n_before = 2 * nr * (nr - 1);
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| 218 |     kshift = 0;
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| 219 |   }
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| 220 |   else if( jr>3*nside ) {//then ! south pole region
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| 221 |     nr = nl4 - jr;
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| 222 |     n_before = npix - 2 * (nr + 1) * nr;
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| 223 |     kshift = 0;
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| 224 |   }
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| 225 |   
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| 226 |   //c     computes the phi coordinate on the sphere, in [0,2Pi]
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| 227 |   jp = (jpll[face_num]*nr + jpt + 1 + kshift)/2;//  ! 'phi' number in the ring in {1,4*nr}
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| 228 |   
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| 229 |   if( jp>nl4 ) jp = jp - nl4;
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| 230 |   if( jp<1 )   jp = jp + nl4;
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| 231 |   
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| 232 |   int aux=n_before + jp - 1;
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| 233 |   return (n_before + jp - 1);// ! in {0, npix-1}
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| 234 | }
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| 235 | 
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| 236 | 
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| 237 | int_4 HEALPix::ring2nest(int_4 nside, int_4 ipring)  
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| 238 | {
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| 239 |   /*
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| 240 |     ==================================================
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| 241 |     subroutine ring2nest(nside, ipring, ipnest)
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| 242 |     ==================================================
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| 243 |     c     conversion from RING to NESTED pixel number
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| 244 |     ==================================================
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| 245 |   */
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| 246 |   // tranlated from FORTRAN (Gorski) to C, by B. Revenu, revised Guy Le Meur
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| 247 |   //  (16/12/98)
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| 248 | 
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| 249 |     const PIXELS_XY& PXY= PIXELS_XY::instance();
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| 250 | 
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| 251 |   double fihip, hip;
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| 252 |   int npix, nl2, nl4, ncap, ip, iphi, ipt, ipring1;
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| 253 |   int     kshift, face_num, nr;
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| 254 |   int irn, ire, irm, irs, irt, ifm , ifp;
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| 255 |   int ix, iy, ix_low, ix_hi, iy_low, iy_hi, ipf;
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| 256 |   int ns_max(8192);
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| 257 |   
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| 258 |   // coordinate of the lowest corner of each face
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| 259 |   int jrll[12]={2, 2, 2, 2, 3, 3, 3, 3, 4, 4, 4, 4};// ! in unit of nside
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| 260 |   int jpll[12]={1, 3, 5, 7, 0, 2, 4, 6, 1, 3, 5, 7};//! in unit of nside/2
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| 261 |   
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| 262 |   if( nside<1 || nside>ns_max ) {
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| 263 |     cout << "nside out of range" << endl;
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| 264 |     exit(0);
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| 265 |   }
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| 266 |   npix = 12 * nside*nside;
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| 267 |   if( ipring<0 || ipring>npix-1 ) {
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| 268 |     cout << "ipring out of range" << endl;
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| 269 |     exit(0);
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| 270 |   }
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| 271 |   
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| 272 |   nl2 = 2*nside;
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| 273 |   nl4 = 4*nside;
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| 274 |   npix = 12*nside*nside;//      ! total number of points
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| 275 |   ncap = 2*nside*(nside-1);// ! points in each polar cap, =0 for nside =1
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| 276 |   ipring1 = ipring + 1;
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| 277 |   
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| 278 |   //c     finds the ring number, the position of the ring and the face number
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| 279 |   if( ipring1<=ncap ) {//then
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| 280 |     
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| 281 |     hip   = ipring1/2.;
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| 282 |     fihip = floor ( hip );
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| 283 |     irn   = (int)floor( sqrt( hip - sqrt(fihip) ) ) + 1;// ! counted from North pole
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| 284 |     iphi  = ipring1 - 2*irn*(irn - 1);
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| 285 |     
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| 286 |     kshift = 0;
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| 287 |     nr = irn   ;//               ! 1/4 of the number of points on the current ring
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| 288 |     face_num = (iphi-1) / irn;// ! in {0,3}
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| 289 |   }
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| 290 |   else if( ipring1<=nl2*(5*nside+1) ) {//then
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| 291 |     
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| 292 |     ip    = ipring1 - ncap - 1;
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| 293 |     irn   = (int)floor( ip / nl4 ) + nside;//               ! counted from North pole
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| 294 |     iphi  = (int)fmod(ip,nl4) + 1;
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| 295 |     
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| 296 |     kshift  = (int)fmod(irn+nside,2);//  ! 1 if irn+nside is odd, 0 otherwise
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| 297 |     nr = nside;
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| 298 |     ire =  irn - nside + 1;// ! in {1, 2*nside +1}
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| 299 |     irm =  nl2 + 2 - ire;
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| 300 |     ifm = (iphi - ire/2 + nside -1) / nside;// ! face boundary
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| 301 |     ifp = (iphi - irm/2 + nside -1) / nside;
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| 302 |     if( ifp==ifm ) {//then          ! faces 4 to 7
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| 303 |       face_num = (int)fmod(ifp,4) + 4;
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| 304 |     }
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| 305 |     else if( ifp + 1==ifm ) {//then ! (half-)faces 0 to 3
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| 306 |       face_num = ifp;
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| 307 |     }
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| 308 |     else if( ifp - 1==ifm ) {//then ! (half-)faces 8 to 11
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| 309 |       face_num = ifp + 7;
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| 310 |     }
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| 311 |   }
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| 312 |   else {
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| 313 |     
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| 314 |     ip    = npix - ipring1 + 1;
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| 315 |     hip   = ip/2.;
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| 316 |     fihip = floor ( hip );
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| 317 |     irs   = (int)floor( sqrt( hip - sqrt(fihip) ) ) + 1;//  ! counted from South pole
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| 318 |     iphi  = 4*irs + 1 - (ip - 2*irs*(irs-1));
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| 319 |     
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| 320 |     kshift = 0;
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| 321 |     nr = irs;
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| 322 |     irn   = nl4 - irs;
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| 323 |     face_num = (iphi-1) / irs + 8;// ! in {8,11}
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| 324 |   }
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| 325 |   
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| 326 |   //c     finds the (x,y) on the face
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| 327 |   irt =   irn  - jrll[face_num]*nside + 1;//       ! in {-nside+1,0}
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| 328 |   ipt = 2*iphi - jpll[face_num]*nr - kshift - 1;// ! in {-nside+1,nside-1}
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| 329 | 
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| 330 | 
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| 331 |   if( ipt>=nl2 ) ipt = ipt - 8*nside;// ! for the face #4
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| 332 |   
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| 333 |   ix =  (ipt - irt ) / 2;
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| 334 |   iy = -(ipt + irt ) / 2;
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| 335 |   
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| 336 |   ix_low = (int)fmod(ix,128);
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| 337 |   ix_hi  = ix/128;
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| 338 |   iy_low = (int)fmod(iy,128);
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| 339 |   iy_hi  = iy/128;
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| 340 |   ipf=(PXY.x2pix_(ix_hi)+PXY.y2pix_(iy_hi))*(128*128)+(PXY.x2pix_(ix_low)+PXY.y2pix_(iy_low));
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| 341 | 
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| 342 |   return (ipf + face_num* nside *nside);//   ! in {0, 12*nside**2 - 1}
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| 343 | }
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| 344 | 
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| 345 | int_4 HEALPix::ang2pix_ring(int_4 nside, double theta, double phi)  
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| 346 | {
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| 347 |   /*
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| 348 |     ==================================================
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| 349 |     c     gives the pixel number ipix (RING) 
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| 350 |     c     corresponding to angles theta and phi
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| 351 |     c==================================================
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| 352 |   */
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| 353 |   // tranlated from FORTRAN (Gorski) to C, by B. Revenu, revised Guy Le Meur
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| 354 |   //  (16/12/98)
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| 355 | 
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| 356 |   int nl2, nl4, ncap, npix, jp, jm, ipix1;
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| 357 |   double  z, za, tt, tp, tmp;
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| 358 |   int ir, ip, kshift;
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| 359 | 
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| 360 |   double piover2(Pi/2.);
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| 361 |   double twopi(2.*Pi);
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| 362 |   double z0(2./3.);
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| 363 |   int ns_max(8192);
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| 364 | 
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| 365 |   if( nside<1 || nside>ns_max ) {
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| 366 |     cout << "nside out of range" << endl;
 | 
|---|
| 367 |     exit(0);
 | 
|---|
| 368 |   }
 | 
|---|
| 369 | 
 | 
|---|
| 370 |   if( theta<0. || theta>Pi) {
 | 
|---|
| 371 |     cout << "theta out of range" << endl;
 | 
|---|
| 372 |     exit(0);
 | 
|---|
| 373 |   }
 | 
|---|
| 374 | 
 | 
|---|
| 375 |   z = cos(theta);
 | 
|---|
| 376 |   za = fabs(z);
 | 
|---|
| 377 |   if( phi >= twopi)  phi = phi - twopi;
 | 
|---|
| 378 |   if (phi < 0.)     phi = phi + twopi;
 | 
|---|
| 379 |   tt = phi / piover2;//  ! in [0,4)
 | 
|---|
| 380 | 
 | 
|---|
| 381 |   nl2 = 2*nside;
 | 
|---|
| 382 |   nl4 = 4*nside;
 | 
|---|
| 383 |   ncap  = nl2*(nside-1);// ! number of pixels in the north polar cap
 | 
|---|
| 384 |   npix  = 12*nside*nside;
 | 
|---|
| 385 | 
 | 
|---|
| 386 |   if( za <= z0 ) {
 | 
|---|
| 387 |     
 | 
|---|
| 388 |     jp = (int)floor(nside*(0.5 + tt - z*0.75));// ! index of  ascending edge line 
 | 
|---|
| 389 |     jm = (int)floor(nside*(0.5 + tt + z*0.75));// ! index of descending edge line
 | 
|---|
| 390 | 
 | 
|---|
| 391 |     ir = nside + 1 + jp - jm;// ! in {1,2n+1} (ring number counted from z=2/3)
 | 
|---|
| 392 |     kshift = 0;
 | 
|---|
| 393 |     if (fmod(ir,2)==0.) kshift = 1;// ! kshift=1 if ir even, 0 otherwise
 | 
|---|
| 394 |     
 | 
|---|
| 395 |     ip = (int)floor( ( jp+jm - nside + kshift + 1 ) / 2 ) + 1;// ! in {1,4n}
 | 
|---|
| 396 |     if( ip>nl4 ) ip = ip - nl4;
 | 
|---|
| 397 |     
 | 
|---|
| 398 |     ipix1 = ncap + nl4*(ir-1) + ip ;
 | 
|---|
| 399 |   }
 | 
|---|
| 400 |   else {
 | 
|---|
| 401 | 
 | 
|---|
| 402 |     tp = tt - floor(tt);//      !MOD(tt,1.d0)
 | 
|---|
| 403 |     tmp = sqrt( 3.*(1. - za) );
 | 
|---|
| 404 | 
 | 
|---|
| 405 |     jp = (int)floor( nside * tp * tmp );// ! increasing edge line index
 | 
|---|
| 406 |     jm = (int)floor( nside * (1. - tp) * tmp );// ! decreasing edge line index
 | 
|---|
| 407 | 
 | 
|---|
| 408 |     ir = jp + jm + 1;//        ! ring number counted from the closest pole
 | 
|---|
| 409 |     ip = (int)floor( tt * ir ) + 1;// ! in {1,4*ir}
 | 
|---|
| 410 |     if( ip>4*ir ) ip = ip - 4*ir;
 | 
|---|
| 411 |       
 | 
|---|
| 412 |     ipix1 = 2*ir*(ir-1) + ip;
 | 
|---|
| 413 |       if( z<=0. ) {
 | 
|---|
| 414 |         ipix1 = npix - 2*ir*(ir+1) + ip;
 | 
|---|
| 415 |       }
 | 
|---|
| 416 |   }
 | 
|---|
| 417 |     return (ipix1 - 1);// ! in {0, npix-1}
 | 
|---|
| 418 | }
 | 
|---|
| 419 | 
 | 
|---|
| 420 | int_4 HEALPix::ang2pix_nest(int_4 nside, double theta, double phi) 
 | 
|---|
| 421 | {
 | 
|---|
| 422 |   /*
 | 
|---|
| 423 |     ==================================================
 | 
|---|
| 424 |     subroutine ang2pix_nest(nside, theta, phi, ipix)
 | 
|---|
| 425 |     ==================================================
 | 
|---|
| 426 |     c     gives the pixel number ipix (NESTED) 
 | 
|---|
| 427 |     c     corresponding to angles theta and phi
 | 
|---|
| 428 |     c
 | 
|---|
| 429 |     c     the computation is made to the highest resolution available (nside=8192)
 | 
|---|
| 430 |     c     and then degraded to that required (by integer division)
 | 
|---|
| 431 |     c     this doesn't cost more, and it makes sure 
 | 
|---|
| 432 |     c     that the treatement of round-off will be consistent 
 | 
|---|
| 433 |     c     for every resolution
 | 
|---|
| 434 |     ==================================================
 | 
|---|
| 435 |   */
 | 
|---|
| 436 |   // tranlated from FORTRAN (Gorski) to C, by B. Revenu, revised Guy Le Meur
 | 
|---|
| 437 |   //  (16/12/98)
 | 
|---|
| 438 |   
 | 
|---|
| 439 |     const PIXELS_XY& PXY= PIXELS_XY::instance();
 | 
|---|
| 440 | 
 | 
|---|
| 441 |   double    z, za, z0, tt, tp, tmp;
 | 
|---|
| 442 |   int face_num,jp,jm;
 | 
|---|
| 443 |   int ifp, ifm;
 | 
|---|
| 444 |   int  ix, iy, ix_low, ix_hi, iy_low, iy_hi, ipf, ntt;
 | 
|---|
| 445 |   double piover2(Pi/2.), twopi(2.*Pi);
 | 
|---|
| 446 |   int ns_max(8192);
 | 
|---|
| 447 |   
 | 
|---|
| 448 |   if( nside<1 || nside>ns_max ) {
 | 
|---|
| 449 |     cout << "nside out of range" << endl;
 | 
|---|
| 450 |     exit(0);
 | 
|---|
| 451 |   }
 | 
|---|
| 452 |   if( theta<0 || theta>Pi ) {
 | 
|---|
| 453 |     cout << "theta out of range" << endl;
 | 
|---|
| 454 |     exit(0);
 | 
|---|
| 455 |   }
 | 
|---|
| 456 |   z  = cos(theta);
 | 
|---|
| 457 |   za = fabs(z);
 | 
|---|
| 458 |   z0 = 2./3.;
 | 
|---|
| 459 |   if( phi>=twopi ) phi = phi - twopi;
 | 
|---|
| 460 |   if( phi<0. )    phi = phi + twopi;
 | 
|---|
| 461 |   tt = phi / piover2;// ! in [0,4[
 | 
|---|
| 462 |   if( za<=z0 ) { // then ! equatorial region
 | 
|---|
| 463 |     
 | 
|---|
| 464 |     //(the index of edge lines increase when the longitude=phi goes up)
 | 
|---|
| 465 |     jp = (int)floor(ns_max*(0.5 + tt - z*0.75));// !  ascending edge line index
 | 
|---|
| 466 |     jm = (int)floor(ns_max*(0.5 + tt + z*0.75));// ! descending edge line index
 | 
|---|
| 467 |     
 | 
|---|
| 468 |     //c        finds the face
 | 
|---|
| 469 |     ifp = jp / ns_max;//  ! in {0,4}
 | 
|---|
| 470 |     ifm = jm / ns_max;
 | 
|---|
| 471 |     if( ifp==ifm ) face_num = (int)fmod(ifp,4) + 4; //then  ! faces 4 to 7
 | 
|---|
| 472 |     else if( ifp<ifm ) face_num = (int)fmod(ifp,4); // (half-)faces 0 to 3
 | 
|---|
| 473 |     else face_num = (int)fmod(ifm,4) + 8;//! (half-)faces 8 to 11
 | 
|---|
| 474 |     
 | 
|---|
| 475 |     ix = (int)fmod(jm, ns_max);
 | 
|---|
| 476 |     iy = ns_max - (int)fmod(jp, ns_max) - 1;
 | 
|---|
| 477 |   }
 | 
|---|
| 478 |   else { //! polar region, za > 2/3
 | 
|---|
| 479 |     
 | 
|---|
| 480 |     ntt = (int)floor(tt);
 | 
|---|
| 481 |     if( ntt>=4 ) ntt = 3;
 | 
|---|
| 482 |     tp = tt - ntt;
 | 
|---|
| 483 |     tmp = sqrt( 3.*(1. - za) );//  ! in ]0,1]
 | 
|---|
| 484 |     
 | 
|---|
| 485 |     //(the index of edge lines increase when distance from the closest pole goes up)
 | 
|---|
| 486 |     jp = (int)floor(ns_max*tp*tmp); // ! line going toward the pole as phi increases
 | 
|---|
| 487 |     jm = (int)floor(ns_max*(1.-tp)*tmp); // ! that one goes away of the closest pole
 | 
|---|
| 488 |     jp = (int)min(ns_max-1, jp);// ! for points too close to the boundary
 | 
|---|
| 489 |     jm = (int)min(ns_max-1, jm);
 | 
|---|
| 490 |     
 | 
|---|
| 491 |     // finds the face and pixel's (x,y)
 | 
|---|
| 492 |     if( z>=0 ) {
 | 
|---|
| 493 |       face_num = ntt;//  ! in {0,3}
 | 
|---|
| 494 |       ix = ns_max - jm - 1;
 | 
|---|
| 495 |       iy = ns_max - jp - 1;
 | 
|---|
| 496 |     }
 | 
|---|
| 497 |     else {
 | 
|---|
| 498 |       face_num = ntt + 8;// ! in {8,11}
 | 
|---|
| 499 |       ix =  jp;
 | 
|---|
| 500 |       iy =  jm;
 | 
|---|
| 501 |     }
 | 
|---|
| 502 |   }
 | 
|---|
| 503 |   
 | 
|---|
| 504 |   ix_low = (int)fmod(ix,128);
 | 
|---|
| 505 |   ix_hi  =     ix/128;
 | 
|---|
| 506 |   iy_low = (int)fmod(iy,128);
 | 
|---|
| 507 |   iy_hi  =     iy/128;
 | 
|---|
| 508 |   ipf= (PXY.x2pix_(ix_hi)+PXY.y2pix_(iy_hi))*(128*128)+(PXY.x2pix_(ix_low)+PXY.y2pix_(iy_low));
 | 
|---|
| 509 |   //  ipf = ipf / pow(ns_max/nside,2.);//  ! in {0, nside**2 - 1}
 | 
|---|
| 510 |   //  return ( ipf + face_num*pow(nside,2));//    ! in {0, 12*nside**2 - 1}
 | 
|---|
| 511 |   // $CHECK$  Reza 25/10/99 , pow remplace par *
 | 
|---|
| 512 |   ipf = ipf / ((ns_max/nside)*(ns_max/nside));
 | 
|---|
| 513 |   return (ipf + face_num*nside*nside);
 | 
|---|
| 514 | }
 | 
|---|
| 515 | 
 | 
|---|
| 516 | void HEALPix::pix2ang_ring(int_4 nside,int_4 ipix,double& theta,double& phi)  
 | 
|---|
| 517 | {
 | 
|---|
| 518 |   /*
 | 
|---|
| 519 |     ===================================================
 | 
|---|
| 520 |     c     gives theta and phi corresponding to pixel ipix (RING) 
 | 
|---|
| 521 |     c     for a parameter nside
 | 
|---|
| 522 |     ===================================================
 | 
|---|
| 523 |   */
 | 
|---|
| 524 |   // tranlated from FORTRAN (Gorski) to C, by B. Revenu, revised Guy Le Meur
 | 
|---|
| 525 |   //  (16/12/98)
 | 
|---|
| 526 |   
 | 
|---|
| 527 |   int nl2, nl4, npix, ncap, iring, iphi, ip, ipix1;
 | 
|---|
| 528 |   double  fact1, fact2, fodd, hip, fihip;
 | 
|---|
| 529 |   
 | 
|---|
| 530 |   int ns_max(8192);
 | 
|---|
| 531 |   
 | 
|---|
| 532 |   if( nside<1 || nside>ns_max ) {
 | 
|---|
| 533 |     cout << "nside out of range" << endl;
 | 
|---|
| 534 |     exit(0);
 | 
|---|
| 535 |   }
 | 
|---|
| 536 |   npix = 12*nside*nside;      // ! total number of points
 | 
|---|
| 537 |   if( ipix<0 || ipix>npix-1 ) {
 | 
|---|
| 538 |     cout << "ipix out of range" << endl;
 | 
|---|
| 539 |     exit(0);
 | 
|---|
| 540 |   }
 | 
|---|
| 541 |   
 | 
|---|
| 542 |   ipix1 = ipix + 1; // in {1, npix}
 | 
|---|
| 543 |   nl2 = 2*nside;
 | 
|---|
| 544 |   nl4 = 4*nside;
 | 
|---|
| 545 |   ncap = 2*nside*(nside-1);// ! points in each polar cap, =0 for nside =1
 | 
|---|
| 546 |   fact1 = 1.5*nside;
 | 
|---|
| 547 |   fact2 = 3.0*nside*nside;
 | 
|---|
| 548 |   
 | 
|---|
| 549 |   if( ipix1 <= ncap ) {  //! North Polar cap -------------
 | 
|---|
| 550 |     
 | 
|---|
| 551 |     hip   = ipix1/2.;
 | 
|---|
| 552 |     fihip = floor(hip);
 | 
|---|
| 553 |     iring = (int)floor( sqrt( hip - sqrt(fihip) ) ) + 1;// ! counted from North pole
 | 
|---|
| 554 |     iphi  = ipix1 - 2*iring*(iring - 1);
 | 
|---|
| 555 |     
 | 
|---|
| 556 |     theta = acos( 1. - iring*iring / fact2 );
 | 
|---|
| 557 |     phi   = ((double)iphi - 0.5) * Pi/(2.*iring);
 | 
|---|
| 558 |     //    cout << theta << " " << phi << endl;
 | 
|---|
| 559 |   }
 | 
|---|
| 560 |   else if( ipix1 <= nl2*(5*nside+1) ) {//then ! Equatorial region ------
 | 
|---|
| 561 |     
 | 
|---|
| 562 |     ip    = ipix1 - ncap - 1;
 | 
|---|
| 563 |     iring = (int)floor( ip / nl4 ) + nside;// ! counted from North pole
 | 
|---|
| 564 |     iphi  = ip%nl4 + 1;
 | 
|---|
| 565 |     
 | 
|---|
| 566 |     fodd  = 0.5 * (1 + (iring+nside)%2 );//  ! 1 if iring+nside is odd, 1/2 otherwise
 | 
|---|
| 567 |     theta = acos( (nl2 - iring) / fact1 );
 | 
|---|
| 568 |     phi   = ((double)iphi - fodd) * Pi /(2.*nside);
 | 
|---|
| 569 |   }
 | 
|---|
| 570 |   else {//! South Polar cap -----------------------------------
 | 
|---|
| 571 |     
 | 
|---|
| 572 |     ip    = npix - ipix1 + 1;
 | 
|---|
| 573 |     hip   = ip/2.;
 | 
|---|
| 574 |     fihip = floor(hip);
 | 
|---|
| 575 |     iring = (int)floor( sqrt( hip - sqrt(fihip) ) ) + 1;//     ! counted from South pole
 | 
|---|
| 576 |     iphi  = (int)(4.*iring + 1 - (ip - 2.*iring*(iring-1)));
 | 
|---|
| 577 |     
 | 
|---|
| 578 |     theta = acos( -1. + iring*iring / fact2 );
 | 
|---|
| 579 |     phi   = ((double)iphi - 0.5) * Pi/(2.*iring);
 | 
|---|
| 580 |     //    cout << theta << " " << phi << endl;
 | 
|---|
| 581 |   }
 | 
|---|
| 582 | }
 | 
|---|
| 583 | 
 | 
|---|
| 584 | void HEALPix::pix2ang_nest(int_4 nside,int_4 ipix,double& theta,double& phi)  
 | 
|---|
| 585 | {
 | 
|---|
| 586 |   /*
 | 
|---|
| 587 |     ==================================================
 | 
|---|
| 588 |     subroutine pix2ang_nest(nside, ipix, theta, phi)
 | 
|---|
| 589 |     ==================================================
 | 
|---|
| 590 |     c     gives theta and phi corresponding to pixel ipix (NESTED) 
 | 
|---|
| 591 |     c     for a parameter nside
 | 
|---|
| 592 |     ==================================================
 | 
|---|
| 593 |   */
 | 
|---|
| 594 |   // tranlated from FORTRAN (Gorski) to C, by B. Revenu, revised Guy Le Meur
 | 
|---|
| 595 |   //  (16/12/98)
 | 
|---|
| 596 | 
 | 
|---|
| 597 |     const PIXELS_XY& PXY= PIXELS_XY::instance();
 | 
|---|
| 598 |     
 | 
|---|
| 599 |   int npix, npface, face_num;
 | 
|---|
| 600 |   int ipf, ip_low, ip_trunc, ip_med, ip_hi;
 | 
|---|
| 601 |   int ix, iy, jrt, jr, nr, jpt, jp, kshift, nl4;
 | 
|---|
| 602 |   double z, fn, fact1, fact2;
 | 
|---|
| 603 |   double piover2(Pi/2.);
 | 
|---|
| 604 |   int ns_max(8192);
 | 
|---|
| 605 |           
 | 
|---|
| 606 |   // ! coordinate of the lowest corner of each face
 | 
|---|
| 607 |   int jrll[12]={2, 2, 2, 2, 3, 3, 3, 3, 4, 4, 4, 4};//! in unit of nside
 | 
|---|
| 608 |   int jpll[12]={1, 3, 5, 7, 0, 2, 4, 6, 1, 3, 5, 7};// ! in unit of nside/2
 | 
|---|
| 609 |   
 | 
|---|
| 610 |   if( nside<1 || nside>ns_max ) {
 | 
|---|
| 611 |     cout << "nside out of range" << endl;
 | 
|---|
| 612 |     exit(0);
 | 
|---|
| 613 |   }
 | 
|---|
| 614 |   npix = 12 * nside*nside;
 | 
|---|
| 615 |   if( ipix<0 || ipix>npix-1 ) {
 | 
|---|
| 616 |     cout << "ipix out of range" << endl;
 | 
|---|
| 617 |     exit(0);
 | 
|---|
| 618 |   }
 | 
|---|
| 619 |   
 | 
|---|
| 620 |   fn = 1.*nside;
 | 
|---|
| 621 |   fact1 = 1./(3.*fn*fn);
 | 
|---|
| 622 |   fact2 = 2./(3.*fn);
 | 
|---|
| 623 |   nl4   = 4*nside;
 | 
|---|
| 624 | 
 | 
|---|
| 625 |   //c     finds the face, and the number in the face
 | 
|---|
| 626 |   npface = nside*nside;
 | 
|---|
| 627 |   
 | 
|---|
| 628 |   face_num = ipix/npface;//  ! face number in {0,11}
 | 
|---|
| 629 |   ipf = (int)fmod(ipix,npface);//  ! pixel number in the face {0,npface-1}
 | 
|---|
| 630 |   
 | 
|---|
| 631 |   //c     finds the x,y on the face (starting from the lowest corner)
 | 
|---|
| 632 |   //c     from the pixel number
 | 
|---|
| 633 |   ip_low = (int)fmod(ipf,1024);//       ! content of the last 10 bits
 | 
|---|
| 634 |   ip_trunc =   ipf/1024 ;//       ! truncation of the last 10 bits
 | 
|---|
| 635 |   ip_med = (int)fmod(ip_trunc,1024);//  ! content of the next 10 bits
 | 
|---|
| 636 |   ip_hi  =     ip_trunc/1024   ;//! content of the high weight 10 bits
 | 
|---|
| 637 |   
 | 
|---|
| 638 |   ix = 1024*PXY.pix2x_(ip_hi)+32*PXY.pix2x_(ip_med)+PXY.pix2x_(ip_low);
 | 
|---|
| 639 |   iy = 1024*PXY.pix2y_(ip_hi)+32*PXY.pix2y_(ip_med)+PXY.pix2y_(ip_low);
 | 
|---|
| 640 |   
 | 
|---|
| 641 |   //c     transforms this in (horizontal, vertical) coordinates
 | 
|---|
| 642 |   jrt = ix + iy;//  ! 'vertical' in {0,2*(nside-1)}
 | 
|---|
| 643 |   jpt = ix - iy;//  ! 'horizontal' in {-nside+1,nside-1}
 | 
|---|
| 644 |   
 | 
|---|
| 645 |   //c     computes the z coordinate on the sphere
 | 
|---|
| 646 |   //      jr =  jrll[face_num+1]*nside - jrt - 1;//   ! ring number in {1,4*nside-1}
 | 
|---|
| 647 |   jr =  jrll[face_num]*nside - jrt - 1;
 | 
|---|
| 648 |   nr = nside;//                  ! equatorial region (the most frequent)
 | 
|---|
| 649 |   z  = (2*nside-jr)*fact2;
 | 
|---|
| 650 |   kshift = (int)fmod(jr - nside, 2);
 | 
|---|
| 651 |   if( jr<nside ) { //then     ! north pole region
 | 
|---|
| 652 |     nr = jr;
 | 
|---|
| 653 |     z = 1. - nr*nr*fact1;
 | 
|---|
| 654 |     kshift = 0;
 | 
|---|
| 655 |   }
 | 
|---|
| 656 |   else {
 | 
|---|
| 657 |     if( jr>3*nside ) {// then ! south pole region
 | 
|---|
| 658 |       nr = nl4 - jr;
 | 
|---|
| 659 |       z = - 1. + nr*nr*fact1;
 | 
|---|
| 660 |       kshift = 0;
 | 
|---|
| 661 |     }
 | 
|---|
| 662 |   }
 | 
|---|
| 663 |   theta = acos(z);
 | 
|---|
| 664 |   
 | 
|---|
| 665 |   //c     computes the phi coordinate on the sphere, in [0,2Pi]
 | 
|---|
| 666 |   //      jp = (jpll[face_num+1]*nr + jpt + 1 + kshift)/2;//  ! 'phi' number in the ring in {1,4*nr}
 | 
|---|
| 667 |   jp = (jpll[face_num]*nr + jpt + 1 + kshift)/2;
 | 
|---|
| 668 |   if( jp>nl4 ) jp = jp - nl4;
 | 
|---|
| 669 |   if( jp<1 )   jp = jp + nl4;
 | 
|---|
| 670 |   phi = (jp - (kshift+1)*0.5) * (piover2 / nr);
 | 
|---|
| 671 | }
 | 
|---|
| 672 | 
 | 
|---|
| 673 |  
 | 
|---|