[6ac7ee] | 1 | /*
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| 2 | * ellipsoid.cpp
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| 3 | *
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[042f82] | 4 | * Created on: Jan 20, 2009
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| 5 | * Author: heber
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[6ac7ee] | 6 | */
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| 7 |
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[112b09] | 8 | #include "Helpers/MemDebug.hpp"
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| 9 |
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[357fba] | 10 | #include <gsl/gsl_multimin.h>
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| 11 | #include <gsl/gsl_vector.h>
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| 12 |
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[f66195] | 13 | #include <iomanip>
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| 14 |
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| 15 | #include <set>
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| 16 |
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[357fba] | 17 | #include "boundary.hpp"
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[6ac7ee] | 18 | #include "ellipsoid.hpp"
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[f66195] | 19 | #include "linkedcell.hpp"
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[e138de] | 20 | #include "log.hpp"
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[f66195] | 21 | #include "tesselation.hpp"
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| 22 | #include "vector.hpp"
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[c94eeb] | 23 | #include "Matrix.hpp"
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[f66195] | 24 | #include "verbose.hpp"
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[6ac7ee] | 25 |
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| 26 | /** Determines squared distance for a given point \a x to surface of ellipsoid.
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| 27 | * \param x given point
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| 28 | * \param EllipsoidCenter center of ellipsoid
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| 29 | * \param EllipsoidLength[3] three lengths of half axis of ellipsoid
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| 30 | * \param EllipsoidAngle[3] three rotation angles of ellipsoid
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| 31 | * \return squared distance from point to surface
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| 32 | */
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| 33 | double SquaredDistanceToEllipsoid(Vector &x, Vector &EllipsoidCenter, double *EllipsoidLength, double *EllipsoidAngle)
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| 34 | {
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[042f82] | 35 | Vector helper, RefPoint;
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| 36 | double distance = -1.;
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[c94eeb] | 37 | Matrix Matrix;
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[042f82] | 38 | double InverseLength[3];
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| 39 | double psi,theta,phi; // euler angles in ZX'Z'' convention
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| 40 |
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[e138de] | 41 | //Log() << Verbose(3) << "Begin of SquaredDistanceToEllipsoid" << endl;
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[042f82] | 42 |
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| 43 | for(int i=0;i<3;i++)
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| 44 | InverseLength[i] = 1./EllipsoidLength[i];
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| 45 |
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| 46 | // 1. translate coordinate system so that ellipsoid center is in origin
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[273382] | 47 | RefPoint = helper = x - EllipsoidCenter;
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[e138de] | 48 | //Log() << Verbose(4) << "Translated given point is at " << RefPoint << "." << endl;
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[042f82] | 49 |
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| 50 | // 2. transform coordinate system by inverse of rotation matrix and of diagonal matrix
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| 51 | psi = EllipsoidAngle[0];
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| 52 | theta = EllipsoidAngle[1];
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| 53 | phi = EllipsoidAngle[2];
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[a679d1] | 54 | Matrix.set(0,0, cos(psi)*cos(phi) - sin(psi)*cos(theta)*sin(phi));
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| 55 | Matrix.set(1,0, -cos(psi)*sin(phi) - sin(psi)*cos(theta)*cos(phi));
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| 56 | Matrix.set(2,0, sin(psi)*sin(theta));
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| 57 | Matrix.set(0,1, sin(psi)*cos(phi) + cos(psi)*cos(theta)*sin(phi));
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| 58 | Matrix.set(1,1, cos(psi)*cos(theta)*cos(phi) - sin(psi)*sin(phi));
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| 59 | Matrix.set(2,1, -cos(psi)*sin(theta));
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| 60 | Matrix.set(0,2, sin(theta)*sin(phi));
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| 61 | Matrix.set(1,2, sin(theta)*cos(phi));
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| 62 | Matrix.set(2,2, cos(theta));
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[5108e1] | 63 | helper *= Matrix;
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[1bd79e] | 64 | helper.ScaleAll(InverseLength);
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[e138de] | 65 | //Log() << Verbose(4) << "Transformed RefPoint is at " << helper << "." << endl;
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[042f82] | 66 |
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| 67 | // 3. construct intersection point with unit sphere and ray between origin and x
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| 68 | helper.Normalize(); // is simply normalizes vector in distance direction
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[e138de] | 69 | //Log() << Verbose(4) << "Transformed intersection is at " << helper << "." << endl;
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[042f82] | 70 |
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| 71 | // 4. transform back the constructed intersection point
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| 72 | psi = -EllipsoidAngle[0];
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| 73 | theta = -EllipsoidAngle[1];
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| 74 | phi = -EllipsoidAngle[2];
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[1bd79e] | 75 | helper.ScaleAll(EllipsoidLength);
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[a679d1] | 76 | Matrix.set(0,0, cos(psi)*cos(phi) - sin(psi)*cos(theta)*sin(phi));
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| 77 | Matrix.set(1,0, -cos(psi)*sin(phi) - sin(psi)*cos(theta)*cos(phi));
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| 78 | Matrix.set(2,0, sin(psi)*sin(theta));
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| 79 | Matrix.set(0,1, sin(psi)*cos(phi) + cos(psi)*cos(theta)*sin(phi));
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| 80 | Matrix.set(1,1, cos(psi)*cos(theta)*cos(phi) - sin(psi)*sin(phi));
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| 81 | Matrix.set(2,1, -cos(psi)*sin(theta));
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| 82 | Matrix.set(0,2, sin(theta)*sin(phi));
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| 83 | Matrix.set(1,2, sin(theta)*cos(phi));
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| 84 | Matrix.set(2,2, cos(theta));
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[5108e1] | 85 | helper *= Matrix;
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[e138de] | 86 | //Log() << Verbose(4) << "Intersection is at " << helper << "." << endl;
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[042f82] | 87 |
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| 88 | // 5. determine distance between backtransformed point and x
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[273382] | 89 | distance = RefPoint.DistanceSquared(helper);
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[e138de] | 90 | //Log() << Verbose(4) << "Squared distance between intersection and RefPoint is " << distance << "." << endl;
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[042f82] | 91 |
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| 92 | return distance;
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[e138de] | 93 | //Log() << Verbose(3) << "End of SquaredDistanceToEllipsoid" << endl;
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[6ac7ee] | 94 | };
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| 95 |
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| 96 | /** structure for ellipsoid minimisation containing points to fit to.
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| 97 | */
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| 98 | struct EllipsoidMinimisation {
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[042f82] | 99 | int N; //!< dimension of vector set
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| 100 | Vector *x; //!< array of vectors
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[6ac7ee] | 101 | };
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| 102 |
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| 103 | /** Sum of squared distance to ellipsoid to be minimised.
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| 104 | * \param *x parameters for the ellipsoid
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| 105 | * \param *params EllipsoidMinimisation with set of data points to minimise distance to and dimension
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| 106 | * \return sum of squared distance, \sa SquaredDistanceToEllipsoid()
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| 107 | */
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| 108 | double SumSquaredDistance (const gsl_vector * x, void * params)
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| 109 | {
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[042f82] | 110 | Vector *set= ((struct EllipsoidMinimisation *)params)->x;
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| 111 | int N = ((struct EllipsoidMinimisation *)params)->N;
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| 112 | double SumDistance = 0.;
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| 113 | double distance;
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| 114 | Vector Center;
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| 115 | double EllipsoidLength[3], EllipsoidAngle[3];
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| 116 |
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| 117 | // put parameters into suitable ellipsoid form
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| 118 | for (int i=0;i<3;i++) {
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[0a4f7f] | 119 | Center[i] = gsl_vector_get(x, i+0);
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[042f82] | 120 | EllipsoidLength[i] = gsl_vector_get(x, i+3);
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| 121 | EllipsoidAngle[i] = gsl_vector_get(x, i+6);
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| 122 | }
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| 123 |
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| 124 | // go through all points and sum distance
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| 125 | for (int i=0;i<N;i++) {
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| 126 | distance = SquaredDistanceToEllipsoid(set[i], Center, EllipsoidLength, EllipsoidAngle);
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| 127 | if (!isnan(distance)) {
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| 128 | SumDistance += distance;
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| 129 | } else {
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| 130 | SumDistance = GSL_NAN;
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| 131 | break;
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| 132 | }
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| 133 | }
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| 134 |
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[e138de] | 135 | //Log() << Verbose(0) << "Current summed distance is " << SumDistance << "." << endl;
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[042f82] | 136 | return SumDistance;
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[6ac7ee] | 137 | };
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| 138 |
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| 139 | /** Finds best fitting ellipsoid parameter set in Least square sense for a given point set.
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| 140 | * \param *out output stream for debugging
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| 141 | * \param *set given point set
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| 142 | * \param N number of points in set
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| 143 | * \param EllipsoidParamter[3] three parameters in ellipsoid equation
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| 144 | * \return true - fit successful, false - fit impossible
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| 145 | */
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[e138de] | 146 | bool FitPointSetToEllipsoid(Vector *set, int N, Vector *EllipsoidCenter, double *EllipsoidLength, double *EllipsoidAngle)
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[6ac7ee] | 147 | {
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[042f82] | 148 | int status = GSL_SUCCESS;
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[a67d19] | 149 | DoLog(2) && (Log() << Verbose(2) << "Begin of FitPointSetToEllipsoid " << endl);
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[042f82] | 150 | if (N >= 3) { // check that enough points are given (9 d.o.f.)
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| 151 | struct EllipsoidMinimisation par;
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| 152 | const gsl_multimin_fminimizer_type *T = gsl_multimin_fminimizer_nmsimplex;
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| 153 | gsl_multimin_fminimizer *s = NULL;
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| 154 | gsl_vector *ss, *x;
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| 155 | gsl_multimin_function minex_func;
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| 156 |
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| 157 | size_t iter = 0;
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| 158 | double size;
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| 159 |
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| 160 | /* Starting point */
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| 161 | x = gsl_vector_alloc (9);
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| 162 | for (int i=0;i<3;i++) {
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[0a4f7f] | 163 | gsl_vector_set (x, i+0, EllipsoidCenter->at(i));
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[042f82] | 164 | gsl_vector_set (x, i+3, EllipsoidLength[i]);
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| 165 | gsl_vector_set (x, i+6, EllipsoidAngle[i]);
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| 166 | }
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| 167 | par.x = set;
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| 168 | par.N = N;
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| 169 |
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| 170 | /* Set initial step sizes */
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| 171 | ss = gsl_vector_alloc (9);
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| 172 | for (int i=0;i<3;i++) {
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| 173 | gsl_vector_set (ss, i+0, 0.1);
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| 174 | gsl_vector_set (ss, i+3, 1.0);
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| 175 | gsl_vector_set (ss, i+6, M_PI/20.);
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| 176 | }
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| 177 |
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| 178 | /* Initialize method and iterate */
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| 179 | minex_func.n = 9;
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| 180 | minex_func.f = &SumSquaredDistance;
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| 181 | minex_func.params = (void *)∥
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| 182 |
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| 183 | s = gsl_multimin_fminimizer_alloc (T, 9);
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| 184 | gsl_multimin_fminimizer_set (s, &minex_func, x, ss);
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| 185 |
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| 186 | do {
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| 187 | iter++;
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| 188 | status = gsl_multimin_fminimizer_iterate(s);
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| 189 |
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| 190 | if (status)
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| 191 | break;
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| 192 |
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| 193 | size = gsl_multimin_fminimizer_size (s);
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| 194 | status = gsl_multimin_test_size (size, 1e-2);
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| 195 |
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| 196 | if (status == GSL_SUCCESS) {
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| 197 | for (int i=0;i<3;i++) {
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[0a4f7f] | 198 | EllipsoidCenter->at(i) = gsl_vector_get (s->x,i+0);
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[042f82] | 199 | EllipsoidLength[i] = gsl_vector_get (s->x, i+3);
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| 200 | EllipsoidAngle[i] = gsl_vector_get (s->x, i+6);
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| 201 | }
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[a67d19] | 202 | DoLog(4) && (Log() << Verbose(4) << setprecision(3) << "Converged fit at: " << *EllipsoidCenter << ", lengths " << EllipsoidLength[0] << ", " << EllipsoidLength[1] << ", " << EllipsoidLength[2] << ", angles " << EllipsoidAngle[0] << ", " << EllipsoidAngle[1] << ", " << EllipsoidAngle[2] << " with summed distance " << s->fval << "." << endl);
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[042f82] | 203 | }
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| 204 |
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| 205 | } while (status == GSL_CONTINUE && iter < 1000);
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| 206 |
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| 207 | gsl_vector_free(x);
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| 208 | gsl_vector_free(ss);
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| 209 | gsl_multimin_fminimizer_free (s);
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| 210 |
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| 211 | } else {
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[a67d19] | 212 | DoLog(3) && (Log() << Verbose(3) << "Not enough points provided for fit to ellipsoid." << endl);
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[042f82] | 213 | return false;
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| 214 | }
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[a67d19] | 215 | DoLog(2) && (Log() << Verbose(2) << "End of FitPointSetToEllipsoid" << endl);
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[042f82] | 216 | if (status == GSL_SUCCESS)
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| 217 | return true;
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| 218 | else
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| 219 | return false;
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[6ac7ee] | 220 | };
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| 221 |
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| 222 | /** Picks a number of random points from a LC neighbourhood as a fitting set.
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| 223 | * \param *out output stream for debugging
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| 224 | * \param *T Tesselation containing boundary points
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| 225 | * \param *LC linked cell list of all atoms
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| 226 | * \param *&x random point set on return (not allocated!)
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| 227 | * \param PointsToPick number of points in set to pick
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| 228 | */
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[e138de] | 229 | void PickRandomNeighbouredPointSet(class Tesselation *T, class LinkedCell *LC, Vector *&x, size_t PointsToPick)
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[6ac7ee] | 230 | {
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[70c333f] | 231 | size_t PointsLeft = 0;
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| 232 | size_t PointsPicked = 0;
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[042f82] | 233 | int Nlower[NDIM], Nupper[NDIM];
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| 234 | set<int> PickedAtomNrs; // ordered list of picked atoms
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| 235 | set<int>::iterator current;
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| 236 | int index;
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[357fba] | 237 | TesselPoint *Candidate = NULL;
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[a67d19] | 238 | DoLog(2) && (Log() << Verbose(2) << "Begin of PickRandomPointSet" << endl);
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[042f82] | 239 |
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| 240 | // allocate array
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| 241 | if (x == NULL) {
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| 242 | x = new Vector[PointsToPick];
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| 243 | } else {
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[58ed4a] | 244 | DoeLog(2) && (eLog()<< Verbose(2) << "Given pointer to vector array seems already allocated." << endl);
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[042f82] | 245 | }
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| 246 |
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| 247 | do {
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| 248 | for(int i=0;i<NDIM;i++) // pick three random indices
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| 249 | LC->n[i] = (rand() % LC->N[i]);
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[a67d19] | 250 | DoLog(2) && (Log() << Verbose(2) << "INFO: Center cell is " << LC->n[0] << ", " << LC->n[1] << ", " << LC->n[2] << " ... ");
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[042f82] | 251 | // get random cell
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[734816] | 252 | const LinkedCell::LinkedNodes *List = LC->GetCurrentCell();
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[042f82] | 253 | if (List == NULL) { // set index to it
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| 254 | continue;
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| 255 | }
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[a67d19] | 256 | DoLog(2) && (Log() << Verbose(2) << "with No. " << LC->index << "." << endl);
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[042f82] | 257 |
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[a67d19] | 258 | DoLog(2) && (Log() << Verbose(2) << "LC Intervals:");
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[042f82] | 259 | for (int i=0;i<NDIM;i++) {
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| 260 | Nlower[i] = ((LC->n[i]-1) >= 0) ? LC->n[i]-1 : 0;
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| 261 | Nupper[i] = ((LC->n[i]+1) < LC->N[i]) ? LC->n[i]+1 : LC->N[i]-1;
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[a67d19] | 262 | DoLog(0) && (Log() << Verbose(0) << " [" << Nlower[i] << "," << Nupper[i] << "] ");
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[042f82] | 263 | }
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[a67d19] | 264 | DoLog(0) && (Log() << Verbose(0) << endl);
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[042f82] | 265 |
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| 266 | // count whether there are sufficient atoms in this cell+neighbors
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| 267 | PointsLeft=0;
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| 268 | for (LC->n[0] = Nlower[0]; LC->n[0] <= Nupper[0]; LC->n[0]++)
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| 269 | for (LC->n[1] = Nlower[1]; LC->n[1] <= Nupper[1]; LC->n[1]++)
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| 270 | for (LC->n[2] = Nlower[2]; LC->n[2] <= Nupper[2]; LC->n[2]++) {
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[734816] | 271 | const LinkedCell::LinkedNodes *List = LC->GetCurrentCell();
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[042f82] | 272 | PointsLeft += List->size();
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| 273 | }
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[a67d19] | 274 | DoLog(2) && (Log() << Verbose(2) << "There are " << PointsLeft << " atoms in this neighbourhood." << endl);
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[042f82] | 275 | if (PointsLeft < PointsToPick) { // ensure that we can pick enough points in its neighbourhood at all.
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| 276 | continue;
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| 277 | }
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| 278 |
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| 279 | // pre-pick a fixed number of atoms
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| 280 | PickedAtomNrs.clear();
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| 281 | do {
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| 282 | index = (rand() % PointsLeft);
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| 283 | current = PickedAtomNrs.find(index); // not present?
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| 284 | if (current == PickedAtomNrs.end()) {
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[e138de] | 285 | //Log() << Verbose(2) << "Picking atom nr. " << index << "." << endl;
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[042f82] | 286 | PickedAtomNrs.insert(index);
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| 287 | }
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| 288 | } while (PickedAtomNrs.size() < PointsToPick);
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| 289 |
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| 290 | index = 0; // now go through all and pick those whose from PickedAtomsNr
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| 291 | PointsPicked=0;
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| 292 | current = PickedAtomNrs.begin();
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| 293 | for (LC->n[0] = Nlower[0]; LC->n[0] <= Nupper[0]; LC->n[0]++)
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| 294 | for (LC->n[1] = Nlower[1]; LC->n[1] <= Nupper[1]; LC->n[1]++)
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| 295 | for (LC->n[2] = Nlower[2]; LC->n[2] <= Nupper[2]; LC->n[2]++) {
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[734816] | 296 | const LinkedCell::LinkedNodes *List = LC->GetCurrentCell();
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[e138de] | 297 | // Log() << Verbose(2) << "Current cell is " << LC->n[0] << ", " << LC->n[1] << ", " << LC->n[2] << " with No. " << LC->index << " containing " << List->size() << " points." << endl;
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[042f82] | 298 | if (List != NULL) {
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| 299 | // if (List->begin() != List->end())
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[e138de] | 300 | // Log() << Verbose(2) << "Going through candidates ... " << endl;
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[042f82] | 301 | // else
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[e138de] | 302 | // Log() << Verbose(2) << "Cell is empty ... " << endl;
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[734816] | 303 | for (LinkedCell::LinkedNodes::const_iterator Runner = List->begin(); Runner != List->end(); Runner++) {
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[042f82] | 304 | if ((current != PickedAtomNrs.end()) && (*current == index)) {
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| 305 | Candidate = (*Runner);
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[a67d19] | 306 | DoLog(2) && (Log() << Verbose(2) << "Current picked node is " << **Runner << " with index " << index << "." << endl);
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[8cbb97] | 307 | x[PointsPicked++] = *Candidate->node; // we have one more atom picked
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[042f82] | 308 | current++; // next pre-picked atom
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| 309 | }
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| 310 | index++; // next atom nr.
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| 311 | }
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| 312 | // } else {
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[e138de] | 313 | // Log() << Verbose(2) << "List for this index not allocated!" << endl;
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[042f82] | 314 | }
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| 315 | }
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[a67d19] | 316 | DoLog(2) && (Log() << Verbose(2) << "The following points were picked: " << endl);
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[042f82] | 317 | for (size_t i=0;i<PointsPicked;i++)
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[a67d19] | 318 | DoLog(2) && (Log() << Verbose(2) << x[i] << endl);
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[042f82] | 319 | if (PointsPicked == PointsToPick) // break out of loop if we have all
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| 320 | break;
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| 321 | } while(1);
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| 322 |
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[a67d19] | 323 | DoLog(2) && (Log() << Verbose(2) << "End of PickRandomPointSet" << endl);
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[6ac7ee] | 324 | };
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| 325 |
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| 326 | /** Picks a number of random points from a set of boundary points as a fitting set.
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| 327 | * \param *out output stream for debugging
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| 328 | * \param *T Tesselation containing boundary points
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| 329 | * \param *&x random point set on return (not allocated!)
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| 330 | * \param PointsToPick number of points in set to pick
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| 331 | */
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[e138de] | 332 | void PickRandomPointSet(class Tesselation *T, Vector *&x, size_t PointsToPick)
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[6ac7ee] | 333 | {
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[70c333f] | 334 | size_t PointsLeft = (size_t) T->PointsOnBoundaryCount;
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| 335 | size_t PointsPicked = 0;
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[042f82] | 336 | double value, threshold;
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| 337 | PointMap *List = &T->PointsOnBoundary;
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[a67d19] | 338 | DoLog(2) && (Log() << Verbose(2) << "Begin of PickRandomPointSet" << endl);
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[042f82] | 339 |
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| 340 | // allocate array
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| 341 | if (x == NULL) {
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| 342 | x = new Vector[PointsToPick];
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| 343 | } else {
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[58ed4a] | 344 | DoeLog(2) && (eLog()<< Verbose(2) << "Given pointer to vector array seems already allocated." << endl);
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[042f82] | 345 | }
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| 346 |
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| 347 | if (List != NULL)
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| 348 | for (PointMap::iterator Runner = List->begin(); Runner != List->end(); Runner++) {
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| 349 | threshold = 1. - (double)(PointsToPick - PointsPicked)/(double)PointsLeft;
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| 350 | value = (double)rand()/(double)RAND_MAX;
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[e138de] | 351 | //Log() << Verbose(3) << "Current node is " << *Runner->second->node << " with " << value << " ... " << threshold << ": ";
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[042f82] | 352 | if (value > threshold) {
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[273382] | 353 | x[PointsPicked] = (*Runner->second->node->node);
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[042f82] | 354 | PointsPicked++;
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[e138de] | 355 | //Log() << Verbose(0) << "IN." << endl;
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[042f82] | 356 | } else {
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[e138de] | 357 | //Log() << Verbose(0) << "OUT." << endl;
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[042f82] | 358 | }
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| 359 | PointsLeft--;
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| 360 | }
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[a67d19] | 361 | DoLog(2) && (Log() << Verbose(2) << "The following points were picked: " << endl);
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[042f82] | 362 | for (size_t i=0;i<PointsPicked;i++)
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[a67d19] | 363 | DoLog(3) && (Log() << Verbose(3) << x[i] << endl);
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[042f82] | 364 |
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[a67d19] | 365 | DoLog(2) && (Log() << Verbose(2) << "End of PickRandomPointSet" << endl);
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[6ac7ee] | 366 | };
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| 367 |
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| 368 | /** Finds best fitting ellipsoid parameter set in least square sense for a given point set.
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| 369 | * \param *out output stream for debugging
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| 370 | * \param *T Tesselation containing boundary points
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| 371 | * \param *LCList linked cell list of all atoms
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| 372 | * \param N number of unique points in ellipsoid fit, must be greater equal 6
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| 373 | * \param number of fits (i.e. parameter sets in output file)
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| 374 | * \param *filename name for output file
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| 375 | */
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[e138de] | 376 | void FindDistributionOfEllipsoids(class Tesselation *T, class LinkedCell *LCList, int N, int number, const char *filename)
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[6ac7ee] | 377 | {
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[042f82] | 378 | ofstream output;
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| 379 | Vector *x = NULL;
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| 380 | Vector Center;
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| 381 | Vector EllipsoidCenter;
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| 382 | double EllipsoidLength[3];
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| 383 | double EllipsoidAngle[3];
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| 384 | double distance, MaxDistance, MinDistance;
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[a67d19] | 385 | DoLog(0) && (Log() << Verbose(0) << "Begin of FindDistributionOfEllipsoids" << endl);
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[042f82] | 386 |
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| 387 | // construct center of gravity of boundary point set for initial ellipsoid center
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| 388 | Center.Zero();
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| 389 | for (PointMap::iterator Runner = T->PointsOnBoundary.begin(); Runner != T->PointsOnBoundary.end(); Runner++)
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[273382] | 390 | Center += (*Runner->second->node->node);
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[042f82] | 391 | Center.Scale(1./T->PointsOnBoundaryCount);
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[a67d19] | 392 | DoLog(1) && (Log() << Verbose(1) << "Center is at " << Center << "." << endl);
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[042f82] | 393 |
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| 394 | // Output header
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| 395 | output.open(filename, ios::trunc);
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| 396 | output << "# Nr.\tCenterX\tCenterY\tCenterZ\ta\tb\tc\tpsi\ttheta\tphi" << endl;
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| 397 |
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| 398 | // loop over desired number of parameter sets
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| 399 | for (;number >0;number--) {
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[a67d19] | 400 | DoLog(1) && (Log() << Verbose(1) << "Determining data set " << number << " ... " << endl);
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[042f82] | 401 | // pick the point set
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| 402 | x = NULL;
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[e138de] | 403 | //PickRandomPointSet(T, LCList, x, N);
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| 404 | PickRandomNeighbouredPointSet(T, LCList, x, N);
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[042f82] | 405 |
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| 406 | // calculate some sensible starting values for parameter fit
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| 407 | MaxDistance = 0.;
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[273382] | 408 | MinDistance = x[0].ScalarProduct(x[0]);
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[042f82] | 409 | for (int i=0;i<N;i++) {
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[273382] | 410 | distance = x[i].ScalarProduct(x[i]);
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[042f82] | 411 | if (distance > MaxDistance)
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| 412 | MaxDistance = distance;
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| 413 | if (distance < MinDistance)
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| 414 | MinDistance = distance;
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| 415 | }
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[e138de] | 416 | //Log() << Verbose(2) << "MinDistance " << MinDistance << ", MaxDistance " << MaxDistance << "." << endl;
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[273382] | 417 | EllipsoidCenter = Center; // use Center of Gravity as initial center of ellipsoid
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[042f82] | 418 | for (int i=0;i<3;i++)
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| 419 | EllipsoidAngle[i] = 0.;
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| 420 | EllipsoidLength[0] = sqrt(MaxDistance);
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| 421 | EllipsoidLength[1] = sqrt((MaxDistance+MinDistance)/2.);
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| 422 | EllipsoidLength[2] = sqrt(MinDistance);
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| 423 |
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| 424 | // fit the parameters
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[e138de] | 425 | if (FitPointSetToEllipsoid(x, N, &EllipsoidCenter, &EllipsoidLength[0], &EllipsoidAngle[0])) {
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[a67d19] | 426 | DoLog(1) && (Log() << Verbose(1) << "Picking succeeded!" << endl);
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[042f82] | 427 | // output obtained parameter set
|
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| 428 | output << number << "\t";
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| 429 | for (int i=0;i<3;i++)
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[0a4f7f] | 430 | output << setprecision(9) << EllipsoidCenter[i] << "\t";
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[042f82] | 431 | for (int i=0;i<3;i++)
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| 432 | output << setprecision(9) << EllipsoidLength[i] << "\t";
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| 433 | for (int i=0;i<3;i++)
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| 434 | output << setprecision(9) << EllipsoidAngle[i] << "\t";
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| 435 | output << endl;
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| 436 | } else { // increase N to pick one more
|
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[a67d19] | 437 | DoLog(1) && (Log() << Verbose(1) << "Picking failed!" << endl);
|
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[042f82] | 438 | number++;
|
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| 439 | }
|
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| 440 | delete[](x); // free allocated memory for point set
|
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| 441 | }
|
---|
| 442 | // close output and finish
|
---|
| 443 | output.close();
|
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| 444 |
|
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[a67d19] | 445 | DoLog(0) && (Log() << Verbose(0) << "End of FindDistributionOfEllipsoids" << endl);
|
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[6ac7ee] | 446 | };
|
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