| 1 | //=//////////////////////////////////////////////////////////////////////
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| 2 | //=
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| 3 | //= moments
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| 4 | //=
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| 5 | //= @file moments.cxx
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| 6 | //= @desc Calculation of image parameters
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| 7 | //= @author J C Gonzalez
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| 8 | //= @email gonzalez@mppmu.mpg.de
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| 9 | //= @date Thu May 7 16:24:22 1998
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| 10 | //=
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| 11 | //=----------------------------------------------------------------------
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| 12 | //=
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| 13 | //= Created: Thu May 7 16:24:22 1998
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| 14 | //= Author: Jose Carlos Gonzalez
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| 15 | //= Purpose: Program for reflector simulation
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| 16 | //= Notes: See files README for details
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| 17 | //=
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| 18 | //=----------------------------------------------------------------------
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| 19 | //=
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| 20 | //= $RCSfile: moments.cxx,v $
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| 21 | //= $Revision: 1.1.1.1 $
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| 22 | //= $Author: harald $
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| 23 | //= $Date: 1999-11-05 11:59:33 $
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| 24 | //=
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| 25 | //=//////////////////////////////////////////////////////////////////////
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| 26 |
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| 27 | // @T \newpage
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| 28 |
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| 29 | //!@section Source code of |moments.cxx|.
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| 30 |
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| 31 | /*!@{
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| 32 |
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| 33 | This section describes briefly the source code for the file
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| 34 | |moments.cxx|. All the defines it uses are located in the file
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| 35 | |moments.h|.
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| 36 |
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| 37 | @"*/
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| 38 |
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| 39 | //!@subsection Includes and Global variables definition.
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| 40 |
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| 41 | /*!@"
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| 42 |
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| 43 | All the defines are located in the file |moments.h|.
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| 44 |
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| 45 | @"*/
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| 46 |
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| 47 | //!@{
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| 48 |
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| 49 | #include "moments.h"
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| 50 |
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| 51 | //!@}
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| 52 |
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| 53 | //!@subsection Definition of global variables.
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| 54 |
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| 55 | //!@{
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| 56 |
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| 57 | static int npix; //@< number of pixels
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| 58 | static float *q; //@< charges in the pixels
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| 59 | static float xm, ym; //@< centroid (used in moments and lenwid)
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| 60 |
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| 61 | //@: structure with information about the image
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| 62 | static Moments_Info m;
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| 63 |
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| 64 | //@: structure with information about islands
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| 65 | static Islands_Info is;
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| 66 |
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| 67 | //@: structure with information about lenwid
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| 68 | static LenWid_Info lw;
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| 69 |
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| 70 | //!@}
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| 71 |
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| 72 | //!@subsection The function |moments()|.
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| 73 |
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| 74 | //!-----------------------------------------------------------
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| 75 | // @name moments
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| 76 | //
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| 77 | // @desc calculate moments on the image
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| 78 | //
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| 79 | // @var n Number of pixels
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| 80 | // @var *image Vector of ph.e.s in pixels
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| 81 | // @var **pix Array with information about the pixels
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| 82 | // @var plateScale Plate scale for the CT in use
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| 83 | // @var flag 1: initialize; other: normal
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| 84 | //
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| 85 | // @return Pointer to structure Moments_Info
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| 86 | //
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| 87 | // @date Mon Sep 14 15:22:44 MET DST 1998
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| 88 | //------------------------------------------------------------
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| 89 | // @function
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| 90 |
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| 91 | //!@{
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| 92 | Moments_Info *
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| 93 | moments( int n, float *image, float **pix,
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| 94 | float plateScale, int flag )
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| 95 | {
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| 96 | register int i, k;
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| 97 |
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| 98 | float x, y;
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| 99 | float x2m, xym, y2m;
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| 100 | float x3m, x2ym, xy2m, y3m;
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| 101 | float zz, zd, zu, zv;
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| 102 | float ax, ay, unitx, unity, sigmaax;
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| 103 | float sx2, sxy, sy2;
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| 104 | float sx3, sx2y, sxy2, sy3;
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| 105 |
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| 106 | if ( flag == 1 ) {
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| 107 | q = new float[n];
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| 108 | is.fi = new float[n];
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| 109 | is.vislands = new float[n];
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| 110 | is.islands = new int[n];
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| 111 | is.isl = new int[n];
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| 112 | for (i=1; i<n; ++i) {
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| 113 | q[i] = is.fi[i] = is.vislands[i] = 0.0;
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| 114 | is.islands[i] = is.isl[i] = 0;
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| 115 | }
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| 116 | return &m;
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| 117 | } else {
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| 118 | memcpy( q, image, sizeof(float) * n );
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| 119 | /*
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| 120 | for (i=1; i<n; ++i)
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| 121 | cout << q[i] << '\n';
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| 122 | cout << endl << flush;
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| 123 | */
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| 124 | }
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| 125 |
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| 126 | // save number of pixels
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| 127 | npix = n;
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| 128 |
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| 129 | // calculate sum of values
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| 130 | xm = ym = 0.0;
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| 131 | x2m = xym = y2m = 0.0;
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| 132 | x3m = x2ym = xy2m = y3m = 0.0;
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| 133 | m.charge = 0.0;
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| 134 |
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| 135 | for (i=0; i<npix; ++i)
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| 136 | if ( q[i] > 0.0 ) {
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| 137 | x = pix[i][0];
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| 138 | y = pix[i][1];
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| 139 | xm += x * q[i];
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| 140 | ym += y * q[i];
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| 141 | x2m += x * x * q[i];
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| 142 | xym += x * y * q[i];
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| 143 | y2m += y * y * q[i];
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| 144 | x3m += x * x * x * q[i];
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| 145 | x2ym += x * x * y * q[i];
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| 146 | xy2m += x * y * y * q[i];
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| 147 | y3m += y * y * y * q[i];
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| 148 | m.charge += q[i];
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| 149 | }
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| 150 |
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| 151 | xm *= plateScale;
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| 152 | ym *= plateScale;
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| 153 | x2m *= plateScale * plateScale;
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| 154 | xym *= plateScale * plateScale;
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| 155 | y2m *= plateScale * plateScale;
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| 156 | x3m *= plateScale * plateScale * plateScale;
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| 157 | x2ym *= plateScale * plateScale * plateScale;
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| 158 | xy2m *= plateScale * plateScale * plateScale;
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| 159 | y3m *= plateScale * plateScale * plateScale;
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| 160 |
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| 161 | //++++++++++++++++++++++++++++++++++++++++++++++++++
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| 162 | // extremes and charges
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| 163 | //--------------------------------------------------
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| 164 |
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| 165 | for (i=0; i<10; ++i)
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| 166 | m.maxs[i] = 0.0;
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| 167 |
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| 168 | for (i=0; i<npix; ++i) {
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| 169 | if ( q[i] > m.maxs[0] ) {
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| 170 | for (k=9; k>0; --k)
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| 171 | m.maxs[k] = m.maxs[k-1];
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| 172 | for (k=9; k>0; --k)
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| 173 | m.nmaxs[k] = m.nmaxs[k-1];
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| 174 | m.maxs[0] = q[i];
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| 175 | m.nmaxs[0] = i;
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| 176 | }
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| 177 | }
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| 178 |
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| 179 | // calculates weighted position of the maximum (6 pixels)
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| 180 |
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| 181 | m.xmax = m.ymax = m.smax = 0.0;
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| 182 |
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| 183 | for (i=0; i<6; ++i) {
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| 184 | m.xmax += pix[m.nmaxs[i]][0] * q[m.nmaxs[i]];
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| 185 | m.ymax += pix[m.nmaxs[i]][1] * q[m.nmaxs[i]];
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| 186 | m.smax += q[m.nmaxs[i]];
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| 187 | }
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| 188 |
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| 189 | if (m.smax==0.) m.smax=1.;
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| 190 | if (m.charge==0.) m.charge=1.;
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| 191 |
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| 192 | m.xmax = m.xmax * plateScale / m.smax;
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| 193 | m.ymax = m.ymax * plateScale / m.smax;
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| 194 |
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| 195 | // calculate concentrations with 2,3,4...10 pixels
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| 196 |
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| 197 | m.conc[0] = q[ m.nmaxs[0] ] + q[ m.nmaxs[1] ];
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| 198 |
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| 199 | for (i=2; i<10; ++i)
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| 200 | m.conc[i-1] = m.conc[i-2] + q[ m.nmaxs[i] ];
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| 201 |
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| 202 | for (i=0; i<9; ++i)
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| 203 | m.conc[i] /= m.charge;
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| 204 |
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| 205 | //++++++++++++++++++++++++++++++++++++++++++++++++++
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| 206 | // 1st moments
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| 207 | //--------------------------------------------------
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| 208 |
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| 209 | xm /= m.charge;
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| 210 | ym /= m.charge;
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| 211 |
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| 212 | m.m1x = xm;
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| 213 | m.m1y = ym;
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| 214 |
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| 215 | //++++++++++++++++++++++++++++++++++++++++++++++++++
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| 216 | // 2nd moments
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| 217 | //--------------------------------------------------
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| 218 |
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| 219 | x2m /= m.charge;
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| 220 | xym /= m.charge;
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| 221 | y2m /= m.charge;
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| 222 |
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| 223 | // around the origin
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| 224 | m.m2xx = x2m;
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| 225 | m.m2xy = xym;
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| 226 | m.m2yy = y2m;
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| 227 |
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| 228 | // around the mean
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| 229 | sx2 = x2m - SQR(xm);
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| 230 | sxy = xym - xm * ym;
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| 231 | sy2 = y2m - SQR(ym);
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| 232 |
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| 233 | m.m2cxx = sx2;
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| 234 | m.m2cxy = sxy;
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| 235 | m.m2cyy = sy2;
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| 236 |
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| 237 | //++++++++++++++++++++++++++++++++++++++++++++++++++
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| 238 | // 3rd moments
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| 239 | //--------------------------------------------------
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| 240 |
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| 241 | x3m /= m.charge;
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| 242 | x2ym /= m.charge;
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| 243 | xy2m /= m.charge;
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| 244 | y3m /= m.charge;
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| 245 |
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| 246 | // around the origin
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| 247 | m.m3xxx = x3m;
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| 248 | m.m3xxy = x2ym;
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| 249 | m.m3xyy = xy2m;
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| 250 | m.m3yyy = y3m;
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| 251 |
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| 252 | // around the mean
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| 253 | sx3 = x3m - 3 * x2m * xm + 2 * xm * xm * xm;
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| 254 | sx2y = x2ym - 2 * xym * xm + 2 * xm * xm * ym - x2m * ym;
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| 255 | sxy2 = xy2m - 2 * xym * ym + 2 * xm * ym * ym - y2m * xm;
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| 256 | sy3 = y3m - 3 * y2m * ym + 2 * ym * ym * ym;
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| 257 |
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| 258 | m.m3cxxx = x3m;
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| 259 | m.m3cxxy = x2ym;
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| 260 | m.m3cxyy = xy2m;
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| 261 | m.m3cyyy = y3m;
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| 262 |
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| 263 | //++++++++++++++++++++++++++++++++++++++++++++++++++
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| 264 | // hillas' parameters
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| 265 | //--------------------------------------------------
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| 266 |
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| 267 | zd = sy2 - sx2;
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| 268 | zz = sqrt( SQR(zd) + 4.*SQR( sxy ));;
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| 269 | if ( (zz < 1.e-6) || (sxy == 0.) ) {
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| 270 | m.dist = -1.;
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| 271 | return &m;
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| 272 | }
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| 273 | zu = 1.0 + zd / zz;
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| 274 | zv = 2.0 - zu;
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| 275 |
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| 276 | /*
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| 277 | a = (zd + zz) / (2 * sxy);
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| 278 | b = ym - a * xm;
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| 279 |
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| 280 | m.length = sqrt( fabs( sx2 + 2 * a * sxy + a * a * sy2 ) / (1+a*a) );
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| 281 | m.width = sqrt( fabs( sx2 - 2 * a * sxy + a * a * sy2 ) / (1+a*a) );
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| 282 | m.dist = sqrt( SQR(xm) + SQR(ym) );
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| 283 | m.xdist = sqrt( SQR( m.xmax ) + SQR( m.ymax ) );
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| 284 | m.azw = sqrt( fabs( SQR(xm)* y2m - 2.* xm * ym * xym + x2m*SQR(ym) ) );
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| 285 | m.miss = fabs( b / sqrt(1+a*a) );
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| 286 | m.alpha = DEG( asin( m.miss / m.dist ) );
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| 287 | */
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| 288 |
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| 289 | m.length = sqrt( fabs(sx2 + sy2 + zz) / 2. );
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| 290 | m.width = sqrt( fabs(sx2 + sy2 - zz) / 2. );
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| 291 | m.dist = sqrt( SQR(xm) + SQR(ym) );
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| 292 | m.xdist = sqrt( SQR(m.xmax) + SQR(m.ymax) );
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| 293 | m.azw = sqrt( fabs( SQR(xm)*y2m - 2.*xm*ym*xym + x2m*SQR(ym) ) ) / m.dist;
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| 294 | m.miss = sqrt( fabs( (SQR(xm)*zu + SQR(ym)*zv)/2. - (2.*sxy*xm*ym/zz) ) );
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| 295 | m.alpha = DEG( asin( m.miss/m.dist ) );
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| 296 |
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| 297 |
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| 298 | /*
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| 299 | length = sqrt( fabs(sx2 + sy2 + zz) /2. );
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| 300 | width = sqrt( fabs(sx2 + sy2 - zz) / 2. );
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| 301 | dist = sqrt( SQR(xm) + SQR(ym) );
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| 302 | xdist = sqrt( SQR(m.xmax) + SQR(m.ymax) );
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| 303 | azw = sqrt( fabs( SQR(xm)*y2m - 2.*xm*ym*xym + x2m*SQR(ym) ) );
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| 304 | miss = sqrt( fabs( (SQR(xm)*zu + SQR(ym)*zv)/2. - (2.*sxy*xm*ym/zz) ) );
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| 305 | alpha = DEG( asin(miss/dist) );
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| 306 | */
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| 307 |
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| 308 | //++++++++++++++++++++++++++++++++++++++++++++++++++
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| 309 | // asymetry
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| 310 | //--------------------------------------------------
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| 311 |
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| 312 | unitx = sqrt(0.5*zv);
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| 313 | unity = SGN( sxy )*sqrt(0.5*zu);
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| 314 |
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| 315 | if ( m.xdist > 0.0 ) {
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| 316 |
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| 317 | m.phi = acos((unitx*m.xmax + unity*m.ymax )/m.xdist);
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| 318 |
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| 319 | sigmaax = sx3*CUB(cos(m.phi)) + 3.0*sx2y*SQR(cos(m.phi))*sin(m.phi) +
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| 320 | 3.0*sxy2*cos(m.phi)*SQR(sin(m.phi)) + sy3*CUB(sin(m.phi));
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| 321 | sigmaax = pow(fabs(sigmaax),0.3333333)*SGN(sigmaax);
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| 322 |
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| 323 | ax = sigmaax*unitx;
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| 324 | ay = sigmaax*unity;
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| 325 | m.asymx = (ax*m.xmax + ay*m.ymax)/(m.xdist*m.length*cos(m.phi));
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| 326 | m.asymy = 0.0;
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| 327 |
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| 328 | } else {
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| 329 |
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| 330 | m.phi=-1000.0;
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| 331 | m.asymx = -1000.0;
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| 332 | m.asymy = -1000.0;
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| 333 |
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| 334 | }
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| 335 |
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| 336 | /*
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| 337 | cout
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| 338 | << "length "<< length << endl
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| 339 | << "width "<< width << endl
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| 340 | << "dist "<< dist << endl
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| 341 | << "xdist "<< xdist << endl
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| 342 | << "azw "<< azw << endl
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| 343 | << "miss "<< miss << endl
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| 344 | << "alpha "<< alpha << endl << flush;
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| 345 | */
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| 346 |
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| 347 | return &m;
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| 348 | }
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| 349 | //!@}
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| 350 |
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| 351 | // @T \newpage
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| 352 |
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| 353 | //!@subsection The function |islands()|.
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| 354 |
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| 355 | //!-----------------------------------------------------------
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| 356 | // @name islands
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| 357 | //
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| 358 | // @desc implementation of the "islands" algorithm
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| 359 | //
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| 360 | // @var n Number of pixels
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| 361 | // @var f Vector with the image (ph.e.s in pixels)
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| 362 | // @var **pixneig Array with indices of neighbour pixels
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| 363 | // @var *npixneig Vector with number of neighbours per pixel
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| 364 | // @var cleanning TRUE: remove spurious islands
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| 365 | // @var ipixcut Islands number cut
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| 366 | //
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| 367 | // @return Pointer to structure Islands_Info
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| 368 | //
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| 369 | // @date Mon Sep 14 15:22:44 MET DST 1998
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| 370 | //------------------------------------------------------------
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| 371 | // @function
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| 372 |
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| 373 | //!@{
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| 374 | Islands_Info *
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| 375 | islands( int n, float *f, int **pixneig, int *npixneig,
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| 376 | int cleanning, int ipixcut)
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| 377 | {
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| 378 | register int i;
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| 379 | int j, k;
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| 380 | int haschanged;
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| 381 |
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| 382 | is.numisl = 0;
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| 383 |
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| 384 | memcpy( is.fi, f, sizeof(float) * n );
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| 385 |
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| 386 | // be aware: here we use the side effect of ++
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| 387 | // there are two possibilities of using the operator ++:
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| 388 | // 1) a = ++i => is.first increments i, then evaluates expresion
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| 389 | // 2) a = i++ => is.first evaluates expresion, then increments i
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| 390 | // we INTENTIONALLY use the second form
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| 391 |
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| 392 | // algorithm to isolate/detect is.islands
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| 393 | j=1;
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| 394 | for (i=0; i<n; ++i)
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| 395 | if ( is.fi[i]>0.0 ) {
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| 396 | is.isl[i] = j;
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| 397 | ++j;
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| 398 | } else {
|
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| 399 | is.isl[i] = 0;
|
|---|
| 400 | }
|
|---|
| 401 |
|
|---|
| 402 | haschanged = TRUE;
|
|---|
| 403 | while ( haschanged ) {
|
|---|
| 404 | haschanged = FALSE;
|
|---|
| 405 | for (i=0; i<n; ++i)
|
|---|
| 406 | if ( is.isl[i] > 0 )
|
|---|
| 407 | for (j=0; (j<npixneig[i]) && (pixneig[i][j]>-1); ++j)
|
|---|
| 408 | if ( (k=is.isl[pixneig[i][j]]) > 0 )
|
|---|
| 409 | if ( is.isl[i] > is.isl[k] ) {
|
|---|
| 410 | is.isl[i] = is.isl[k];
|
|---|
| 411 | haschanged=TRUE;
|
|---|
| 412 | }
|
|---|
| 413 | }
|
|---|
| 414 |
|
|---|
| 415 | // count is.islands
|
|---|
| 416 |
|
|---|
| 417 | for (i=0;i<n;++i)
|
|---|
| 418 | is.islands[i] = 0;
|
|---|
| 419 |
|
|---|
| 420 | for (i=0;i<n;++i)
|
|---|
| 421 | is.vislands[i] = 0.0;
|
|---|
| 422 |
|
|---|
| 423 | for (i=0;i<n;++i)
|
|---|
| 424 | if (is.isl[i]>0) {
|
|---|
| 425 | is.islands[is.isl[i]]++;
|
|---|
| 426 | is.vislands[is.isl[i]] += is.fi[i];
|
|---|
| 427 | }
|
|---|
| 428 |
|
|---|
| 429 | for (i=0,j=0,is.numisl=0; i<n; ++i) {
|
|---|
| 430 |
|
|---|
| 431 | if (is.islands[i]>0) {
|
|---|
| 432 | j++;
|
|---|
| 433 | //cout << '#' << j << ':' << is.islands[i] << " q=" << is.vislands[i]
|
|---|
| 434 | // << endl;
|
|---|
| 435 |
|
|---|
| 436 | if (is.islands[i] > ipixcut)
|
|---|
| 437 | is.numisl++;
|
|---|
| 438 | }
|
|---|
| 439 |
|
|---|
| 440 | }
|
|---|
| 441 |
|
|---|
| 442 | cout << j << '[' << is.numisl << "] is.islands\n" << flush;
|
|---|
| 443 |
|
|---|
| 444 | if ( cleanning ) {
|
|---|
| 445 |
|
|---|
| 446 | // cleanning image: pixcut = 3 (any is.island with <= 3 pixels is removed
|
|---|
| 447 | for (i=0;i<n;++i)
|
|---|
| 448 | if (is.islands[is.isl[i]] <= ipixcut)
|
|---|
| 449 | f[i] = 0.0;
|
|---|
| 450 | }
|
|---|
| 451 |
|
|---|
| 452 | return &is;
|
|---|
| 453 | }
|
|---|
| 454 | //!@}
|
|---|
| 455 |
|
|---|
| 456 |
|
|---|
| 457 | //!@subsection The function |lenwid()|.
|
|---|
| 458 |
|
|---|
| 459 | //!-----------------------------------------------------------
|
|---|
| 460 | // @name lenwid
|
|---|
| 461 | //
|
|---|
| 462 | // @desc calculation of extended length and width params.
|
|---|
| 463 | //
|
|---|
| 464 | // @var n Number of pixels
|
|---|
| 465 | // @var *image Vector of ph.e.s in pixels
|
|---|
| 466 | // @var **pix Array with information about the pixels
|
|---|
| 467 | // @var plateScale Plate scale for the CT in use
|
|---|
| 468 | // @var flag 1: initialize; other: normal
|
|---|
| 469 | //
|
|---|
| 470 | // @return Pointer to structure LenWid_Info
|
|---|
| 471 | //
|
|---|
| 472 | // @date Mon Sep 14 15:22:44 MET DST 1998
|
|---|
| 473 | //------------------------------------------------------------
|
|---|
| 474 | // @function
|
|---|
| 475 |
|
|---|
| 476 | //!@{
|
|---|
| 477 | LenWid_Info *
|
|---|
| 478 | lenwid( int n, float *image, float **pix,
|
|---|
| 479 | float plateScale,
|
|---|
| 480 | float max_distance)
|
|---|
| 481 | {
|
|---|
| 482 | register int i, j, k;
|
|---|
| 483 | float chi, phi;
|
|---|
| 484 | float cp, sp;
|
|---|
| 485 | float px1[2], px2[2], py1[2], py2[2];
|
|---|
| 486 | float x1, x2, y1, y2;
|
|---|
| 487 | int sign_of_semiplane;
|
|---|
| 488 | float a, b, c;
|
|---|
| 489 | float dist_to_axis;
|
|---|
| 490 | float x, y;
|
|---|
| 491 | float wsum[4];
|
|---|
| 492 | float sum[4];
|
|---|
| 493 | float weight;
|
|---|
| 494 | float alpha;
|
|---|
| 495 | float radius, radius2;
|
|---|
| 496 |
|
|---|
| 497 | // calculate the radius of a circle with the same area of a pixel
|
|---|
| 498 |
|
|---|
| 499 | radius2 = max_distance*max_distance*cos(DEG30)*3.0 / M_PI;
|
|---|
| 500 | radius = sqrt(radius2);
|
|---|
| 501 |
|
|---|
| 502 | /* @comment
|
|---|
| 503 | We have now an image in the camera. In this image we have
|
|---|
| 504 | defined two axes, Xe and Ye. Given the definition of alpha,
|
|---|
| 505 | we define phi, which is the angle of the rotation that should
|
|---|
| 506 | be applied to the original axis X and Y to get, together with
|
|---|
| 507 | a translation to the point (xm, ym), the new axes Xe and Ye.
|
|---|
| 508 | @endcomment */
|
|---|
| 509 |
|
|---|
| 510 | chi = atan2(ym,xm);
|
|---|
| 511 | phi = m.alpha + chi;
|
|---|
| 512 |
|
|---|
| 513 | /* If the angle is phi, the rotation will be:
|
|---|
| 514 | * / cos(phi) sin(phi)\
|
|---|
| 515 | * R(phi) = | |
|
|---|
| 516 | * \-sin(phi) cos(phi)/
|
|---|
| 517 | */
|
|---|
| 518 |
|
|---|
| 519 | cp=cos(phi);
|
|---|
| 520 | sp=sin(phi);
|
|---|
| 521 |
|
|---|
| 522 | /* The reference points for each axis will be px1,px2 and py1,py2
|
|---|
| 523 | We obtain these points by rotation and translation of the
|
|---|
| 524 | points [+-1000,0] and [0,+-1000] */
|
|---|
| 525 |
|
|---|
| 526 | /* Note! The rotation has to be R(-phi) */
|
|---|
| 527 |
|
|---|
| 528 | px1[0] = cp*1000 + xm;
|
|---|
| 529 | px1[1] = sp*1000 + ym;
|
|---|
| 530 |
|
|---|
| 531 | px2[0] = -cp*1000 + xm;
|
|---|
| 532 | px2[1] = -sp*1000 + ym;
|
|---|
| 533 |
|
|---|
| 534 | py1[0] = -sp*1000 + xm;
|
|---|
| 535 | py1[1] = cp*1000 + ym;
|
|---|
| 536 |
|
|---|
| 537 | py2[0] = sp*1000 + xm;
|
|---|
| 538 | py2[1] = -cp*1000 + ym;
|
|---|
| 539 |
|
|---|
| 540 | /* Now we have finally two points for each of the axes.
|
|---|
| 541 | We can now do, for each axis, and for each semi-plane
|
|---|
| 542 | it defines, the loop over the pixels */
|
|---|
| 543 |
|
|---|
| 544 | // Note that the possible values for sign_of_semiplane in the
|
|---|
| 545 | // next loops are precisely -1 and +1
|
|---|
| 546 |
|
|---|
| 547 | for (i=0; i<4; ++i) {
|
|---|
| 548 | wsum[i] = sum[i] = 0.;
|
|---|
| 549 | }
|
|---|
| 550 |
|
|---|
| 551 | // first with the X, then with the Y
|
|---|
| 552 |
|
|---|
| 553 | for (k=1; k<=2; ++k) {
|
|---|
| 554 |
|
|---|
| 555 | if ( k == 1) {
|
|---|
| 556 | x1 = px1[0];
|
|---|
| 557 | y1 = px1[1];
|
|---|
| 558 | x2 = px2[0];
|
|---|
| 559 | y2 = px2[1];
|
|---|
| 560 | } else {
|
|---|
| 561 | x1 = py1[0];
|
|---|
| 562 | y1 = py1[1];
|
|---|
| 563 | x2 = py2[0];
|
|---|
| 564 | y2 = py2[1];
|
|---|
| 565 | }
|
|---|
| 566 |
|
|---|
| 567 | for ( sign_of_semiplane = -1;
|
|---|
| 568 | sign_of_semiplane < 2;
|
|---|
| 569 | sign_of_semiplane += 2 ) {
|
|---|
| 570 |
|
|---|
| 571 | // loop on pixels
|
|---|
| 572 | for ( i=0; i<n; ++i ) {
|
|---|
| 573 |
|
|---|
| 574 | // let's calculate the distance between the point and the axis
|
|---|
| 575 |
|
|---|
| 576 | x = pix[i][0];
|
|---|
| 577 | y = pix[i][1];
|
|---|
| 578 |
|
|---|
| 579 | a = (y2 - y1);
|
|---|
| 580 | b = (x1 - x2);
|
|---|
| 581 | c = (x1 * (y1-y2) + y1 * (x2 - x1));
|
|---|
| 582 |
|
|---|
| 583 | dist_to_axis = (a*x + b*y + c) / sqrt(a*a+b*b);
|
|---|
| 584 |
|
|---|
| 585 | // we have THREE cases:
|
|---|
| 586 |
|
|---|
| 587 | // (A)
|
|---|
| 588 |
|
|---|
| 589 | // if distance to the axis if larger than pixel diameter,
|
|---|
| 590 | // AND
|
|---|
| 591 | // the semiplane is the WRONG one -> forget that pixel
|
|---|
| 592 |
|
|---|
| 593 | if ( (fabs(dist_to_axis) > max_distance) &&
|
|---|
| 594 | (SGN(dist_to_axis) != sign_of_semiplane) )
|
|---|
| 595 | continue;
|
|---|
| 596 |
|
|---|
| 597 | // (B)
|
|---|
| 598 |
|
|---|
| 599 | // if distance to the axis if larger than pixel diameter,
|
|---|
| 600 | // AND
|
|---|
| 601 | // the semiplane is the GOOD one -> add this pixel
|
|---|
| 602 |
|
|---|
| 603 | if ( (fabs(dist_to_axis) > max_distance) &&
|
|---|
| 604 | (SGN(dist_to_axis) == sign_of_semiplane) ) {
|
|---|
| 605 |
|
|---|
| 606 | // here the sum
|
|---|
| 607 |
|
|---|
| 608 | weight = image[i];
|
|---|
| 609 | j = k+sign_of_semiplane;
|
|---|
| 610 | wsum[j] += weight * dist_to_axis * dist_to_axis;
|
|---|
| 611 | sum[j] += weight;
|
|---|
| 612 |
|
|---|
| 613 | continue;
|
|---|
| 614 | }
|
|---|
| 615 |
|
|---|
| 616 | // (C)
|
|---|
| 617 | // if we reach this point, that means that the center
|
|---|
| 618 | // of our pixel is too close to the axis, and we have
|
|---|
| 619 | // to feed it into the routine to check if the pixel
|
|---|
| 620 | // crosses the axis
|
|---|
| 621 |
|
|---|
| 622 | // ** NOTE ** NOTE ** NOTE ** NOTE ** NOTE ** NOTE ** NOTE
|
|---|
| 623 | // simplified algorithm
|
|---|
| 624 | // assume the pixels are circular, and takes
|
|---|
| 625 | // the fraction of the surface lying on the semiplane
|
|---|
| 626 | // ** NOTE ** NOTE ** NOTE ** NOTE ** NOTE ** NOTE ** NOTE
|
|---|
| 627 |
|
|---|
| 628 | // alpha
|
|---|
| 629 | alpha = 2*asin(sqrt(2*(radius-dist_to_axis)*radius -
|
|---|
| 630 | radius2) / radius);
|
|---|
| 631 |
|
|---|
| 632 | // here the sum
|
|---|
| 633 | // the fraction is the fraction of the area inside the semiplane
|
|---|
| 634 | weight = image[i] * ( (alpha * radius2 / 2.0) / (M_PI * radius2));
|
|---|
| 635 | j = k+sign_of_semiplane;
|
|---|
| 636 | wsum[j] += weight * dist_to_axis * dist_to_axis;
|
|---|
| 637 | sum[j] += weight;
|
|---|
| 638 |
|
|---|
| 639 | } // foreach pixel pixels
|
|---|
| 640 |
|
|---|
| 641 | } // foreach semiplane
|
|---|
| 642 |
|
|---|
| 643 | } // foreach axis
|
|---|
| 644 |
|
|---|
| 645 | lw.length1 = (sum[0] > 0.) ? sqrt(wsum[0] / sum[0]) : -1;
|
|---|
| 646 | lw.width1 = (sum[1] > 0.) ? sqrt(wsum[1] / sum[1]) : -1;
|
|---|
| 647 | lw.length2 = (sum[2] > 0.) ? sqrt(wsum[2] / sum[2]) : -1;
|
|---|
| 648 | lw.width2 = (sum[3] > 0.) ? sqrt(wsum[3] / sum[3]) : -1;
|
|---|
| 649 |
|
|---|
| 650 | lw.length1 *= plateScale;
|
|---|
| 651 | lw.width1 *= plateScale;
|
|---|
| 652 | lw.length2 *= plateScale;
|
|---|
| 653 | lw.width2 *= plateScale;
|
|---|
| 654 |
|
|---|
| 655 | return &lw;
|
|---|
| 656 | }
|
|---|
| 657 | //!@}
|
|---|
| 658 |
|
|---|
| 659 |
|
|---|
| 660 | //!@subsection Auxiliary functions.
|
|---|
| 661 |
|
|---|
| 662 | //!-----------------------------------------------------------
|
|---|
| 663 | // @name crosspt
|
|---|
| 664 | //
|
|---|
| 665 | // @desc calculate cross point of segments AB and CD
|
|---|
| 666 | //
|
|---|
| 667 | // @var ax Coor. X of point A
|
|---|
| 668 | // @var ay Coor. Y of point A
|
|---|
| 669 | // @var bx Coor. X of point A
|
|---|
| 670 | // @var by Coor. Y of point A
|
|---|
| 671 | // @var cx Coor. X of point A
|
|---|
| 672 | // @var cy Coor. Y of point A
|
|---|
| 673 | // @var dx Coor. X of point A
|
|---|
| 674 | // @var dy Coor. Y of point A
|
|---|
| 675 | // @var *pcrossx Coor. X of cross point
|
|---|
| 676 | // @var *pcrossy Coor. Y of cross point
|
|---|
| 677 | //
|
|---|
| 678 | // @date Mon Mar 8 13:35:54 MET 1999
|
|---|
| 679 | //------------------------------------------------------------
|
|---|
| 680 | // @function
|
|---|
| 681 |
|
|---|
| 682 | //!@{
|
|---|
| 683 | void
|
|---|
| 684 | crosspt( float ax, float ay,
|
|---|
| 685 | float bx, float by,
|
|---|
| 686 | float cx, float cy,
|
|---|
| 687 | float dx, float dy,
|
|---|
| 688 | float * pcrossx, float * pcrossy)
|
|---|
| 689 | {
|
|---|
| 690 | float w, r;
|
|---|
| 691 |
|
|---|
| 692 | // the points A and B, and C and D define two segments (AB and CD)
|
|---|
| 693 | // the coordinates of these points are
|
|---|
| 694 | // A(ax,ay), B(bx,by), C(cx,cy), D(dx,dy)
|
|---|
| 695 |
|
|---|
| 696 | w=(bx-ax)*(dy-cy)-(by-ay)*(dx-cx);
|
|---|
| 697 | r=(ay-cy)*(dx-cx)-(ax-cx)*(dy-cy);
|
|---|
| 698 |
|
|---|
| 699 | *pcrossx = ax + r*(bx-ax)/w;
|
|---|
| 700 | *pcrossy = ay + r*(by-ay)/w;
|
|---|
| 701 |
|
|---|
| 702 | }
|
|---|
| 703 | //!@}
|
|---|
| 704 |
|
|---|
| 705 | //=------------------------------------------------------------
|
|---|
| 706 | //!@subsection Log of this file.
|
|---|
| 707 |
|
|---|
| 708 | //!@{
|
|---|
| 709 | //
|
|---|
| 710 | // $Log: not supported by cvs2svn $
|
|---|
| 711 | // Revision 1.2 1999/10/22 15:01:29 petry
|
|---|
| 712 | // version sent to H.K. and N.M. on Fri Oct 22 1999
|
|---|
| 713 | //
|
|---|
| 714 | // Revision 1.1.1.1 1999/10/21 16:35:10 petry
|
|---|
| 715 | // first synthesised version
|
|---|
| 716 | //
|
|---|
| 717 | // Revision 1.1 1999/03/08 10:04:06 gonzalez
|
|---|
| 718 | // *** empty log message ***
|
|---|
| 719 | //
|
|---|
| 720 | // Revision 1.4 1999/03/02 09:56:14 gonzalez
|
|---|
| 721 | // *** empty log message ***
|
|---|
| 722 | //
|
|---|
| 723 | // Revision 1.5 1999/03/15 14:59:10 gonzalez
|
|---|
| 724 | // camera-1_1
|
|---|
| 725 | //
|
|---|
| 726 | //!@}
|
|---|
| 727 |
|
|---|
| 728 | //=EOF
|
|---|