| [bcf653] | 1 | /* | 
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|  | 2 | * Project: MoleCuilder | 
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|  | 3 | * Description: creates and alters molecular systems | 
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|  | 4 | * Copyright (C)  2010 University of Bonn. All rights reserved. | 
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|  | 5 | * Please see the LICENSE file or "Copyright notice" in builder.cpp for details. | 
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|  | 6 | */ | 
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|  | 7 |  | 
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| [6ac7ee] | 8 | /** \file vector.cpp | 
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|  | 9 | * | 
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|  | 10 | * Function implementations for the class vector. | 
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|  | 11 | * | 
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|  | 12 | */ | 
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|  | 13 |  | 
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| [bf3817] | 14 | // include config.h | 
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|  | 15 | #ifdef HAVE_CONFIG_H | 
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|  | 16 | #include <config.h> | 
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|  | 17 | #endif | 
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|  | 18 |  | 
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| [112b09] | 19 | #include "Helpers/MemDebug.hpp" | 
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| [edb93c] | 20 |  | 
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| [57f243] | 21 | #include "LinearAlgebra/Vector.hpp" | 
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| [ce3d2b] | 22 | #include "VectorContent.hpp" | 
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| [952f38] | 23 | #include "Helpers/Verbose.hpp" | 
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| [b34306] | 24 | #include "World.hpp" | 
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| [0a4f7f] | 25 | #include "Helpers/Assert.hpp" | 
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| [753f02] | 26 | #include "Helpers/fast_functions.hpp" | 
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| [325390] | 27 | #include "Exceptions/MathException.hpp" | 
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| [6ac7ee] | 28 |  | 
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| [1bd79e] | 29 | #include <iostream> | 
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| [923b6c] | 30 | #include <gsl/gsl_blas.h> | 
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| [a439e5] | 31 | #include <gsl/gsl_vector.h> | 
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| [923b6c] | 32 |  | 
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| [1bd79e] | 33 |  | 
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|  | 34 | using namespace std; | 
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| [6ac7ee] | 35 |  | 
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| [97498a] | 36 |  | 
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| [6ac7ee] | 37 | /************************************ Functions for class vector ************************************/ | 
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|  | 38 |  | 
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|  | 39 | /** Constructor of class vector. | 
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|  | 40 | */ | 
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| [753f02] | 41 | Vector::Vector() | 
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|  | 42 | { | 
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| [ce3d2b] | 43 | content = new VectorContent(); | 
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| [753f02] | 44 | }; | 
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| [6ac7ee] | 45 |  | 
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| [753f02] | 46 | /** | 
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|  | 47 | * Copy constructor | 
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| [821907] | 48 | */ | 
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| [1bd79e] | 49 |  | 
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| [753f02] | 50 | Vector::Vector(const Vector& src) | 
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| [821907] | 51 | { | 
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| [ce3d2b] | 52 | content = new VectorContent(); | 
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|  | 53 | gsl_vector_memcpy(content->content, src.content->content); | 
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| [1bd79e] | 54 | } | 
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| [821907] | 55 |  | 
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|  | 56 | /** Constructor of class vector. | 
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|  | 57 | */ | 
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| [753f02] | 58 | Vector::Vector(const double x1, const double x2, const double x3) | 
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| [821907] | 59 | { | 
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| [ce3d2b] | 60 | content = new VectorContent(); | 
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|  | 61 | gsl_vector_set(content->content,0,x1); | 
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|  | 62 | gsl_vector_set(content->content,1,x2); | 
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|  | 63 | gsl_vector_set(content->content,2,x3); | 
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| [821907] | 64 | }; | 
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|  | 65 |  | 
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| [d74077] | 66 | /** Constructor of class vector. | 
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|  | 67 | */ | 
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|  | 68 | Vector::Vector(const double x[3]) | 
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|  | 69 | { | 
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|  | 70 | content = new VectorContent(); | 
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|  | 71 | gsl_vector_set(content->content,0,x[0]); | 
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|  | 72 | gsl_vector_set(content->content,1,x[1]); | 
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|  | 73 | gsl_vector_set(content->content,2,x[2]); | 
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|  | 74 | }; | 
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|  | 75 |  | 
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| [ce3d2b] | 76 | Vector::Vector(VectorContent *_content) : | 
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| [325390] | 77 | content(_content) | 
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|  | 78 | {} | 
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|  | 79 |  | 
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| [0a4f7f] | 80 | /** | 
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|  | 81 | * Assignment operator | 
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| [6ac7ee] | 82 | */ | 
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| [0a4f7f] | 83 | Vector& Vector::operator=(const Vector& src){ | 
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|  | 84 | // check for self assignment | 
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|  | 85 | if(&src!=this){ | 
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| [ce3d2b] | 86 | gsl_vector_memcpy(content->content, src.content->content); | 
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| [0a4f7f] | 87 | } | 
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|  | 88 | return *this; | 
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|  | 89 | } | 
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| [6ac7ee] | 90 |  | 
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|  | 91 | /** Desctructor of class vector. | 
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|  | 92 | */ | 
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| [d466f0] | 93 | Vector::~Vector() { | 
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| [ce3d2b] | 94 | delete content; | 
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| [d466f0] | 95 | }; | 
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| [6ac7ee] | 96 |  | 
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|  | 97 | /** Calculates square of distance between this and another vector. | 
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|  | 98 | * \param *y array to second vector | 
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|  | 99 | * \return \f$| x - y |^2\f$ | 
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|  | 100 | */ | 
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| [273382] | 101 | double Vector::DistanceSquared(const Vector &y) const | 
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| [6ac7ee] | 102 | { | 
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| [042f82] | 103 | double res = 0.; | 
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|  | 104 | for (int i=NDIM;i--;) | 
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| [d466f0] | 105 | res += (at(i)-y[i])*(at(i)-y[i]); | 
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| [042f82] | 106 | return (res); | 
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| [6ac7ee] | 107 | }; | 
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|  | 108 |  | 
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|  | 109 | /** Calculates distance between this and another vector. | 
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|  | 110 | * \param *y array to second vector | 
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|  | 111 | * \return \f$| x - y |\f$ | 
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|  | 112 | */ | 
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| [1513a74] | 113 | double Vector::distance(const Vector &y) const | 
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| [6ac7ee] | 114 | { | 
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| [273382] | 115 | return (sqrt(DistanceSquared(y))); | 
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| [6ac7ee] | 116 | }; | 
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|  | 117 |  | 
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| [a439e5] | 118 | size_t Vector::GreatestComponent() const | 
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|  | 119 | { | 
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|  | 120 | int greatest = 0; | 
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|  | 121 | for (int i=1;i<NDIM;i++) { | 
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|  | 122 | if (at(i) > at(greatest)) | 
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|  | 123 | greatest = i; | 
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|  | 124 | } | 
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|  | 125 | return greatest; | 
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|  | 126 | } | 
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|  | 127 |  | 
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|  | 128 | size_t Vector::SmallestComponent() const | 
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|  | 129 | { | 
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|  | 130 | int smallest = 0; | 
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|  | 131 | for (int i=1;i<NDIM;i++) { | 
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|  | 132 | if (at(i) < at(smallest)) | 
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|  | 133 | smallest = i; | 
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|  | 134 | } | 
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|  | 135 | return smallest; | 
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|  | 136 | } | 
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|  | 137 |  | 
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|  | 138 |  | 
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| [1513a74] | 139 | Vector Vector::getClosestPoint(const Vector &point) const{ | 
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|  | 140 | // the closest point to a single point space is always the single point itself | 
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|  | 141 | return *this; | 
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|  | 142 | } | 
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|  | 143 |  | 
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| [6ac7ee] | 144 | /** Calculates scalar product between this and another vector. | 
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|  | 145 | * \param *y array to second vector | 
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|  | 146 | * \return \f$\langle x, y \rangle\f$ | 
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|  | 147 | */ | 
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| [273382] | 148 | double Vector::ScalarProduct(const Vector &y) const | 
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| [6ac7ee] | 149 | { | 
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| [042f82] | 150 | double res = 0.; | 
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| [ce3d2b] | 151 | gsl_blas_ddot(content->content, y.content->content, &res); | 
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| [042f82] | 152 | return (res); | 
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| [6ac7ee] | 153 | }; | 
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|  | 154 |  | 
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|  | 155 |  | 
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|  | 156 | /** Calculates VectorProduct between this and another vector. | 
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| [042f82] | 157 | *  -# returns the Product in place of vector from which it was initiated | 
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|  | 158 | *  -# ATTENTION: Only three dim. | 
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|  | 159 | *  \param *y array to vector with which to calculate crossproduct | 
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|  | 160 | *  \return \f$ x \times y \f& | 
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| [6ac7ee] | 161 | */ | 
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| [273382] | 162 | void Vector::VectorProduct(const Vector &y) | 
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| [6ac7ee] | 163 | { | 
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| [042f82] | 164 | Vector tmp; | 
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| [d466f0] | 165 | for(int i=NDIM;i--;) | 
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|  | 166 | tmp[i] = at((i+1)%NDIM)*y[(i+2)%NDIM] - at((i+2)%NDIM)*y[(i+1)%NDIM]; | 
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| [753f02] | 167 | (*this) = tmp; | 
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| [6ac7ee] | 168 | }; | 
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|  | 169 |  | 
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|  | 170 |  | 
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|  | 171 | /** projects this vector onto plane defined by \a *y. | 
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|  | 172 | * \param *y normal vector of plane | 
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|  | 173 | * \return \f$\langle x, y \rangle\f$ | 
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|  | 174 | */ | 
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| [273382] | 175 | void Vector::ProjectOntoPlane(const Vector &y) | 
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| [6ac7ee] | 176 | { | 
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| [042f82] | 177 | Vector tmp; | 
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| [753f02] | 178 | tmp = y; | 
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| [042f82] | 179 | tmp.Normalize(); | 
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| [753f02] | 180 | tmp.Scale(ScalarProduct(tmp)); | 
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|  | 181 | *this -= tmp; | 
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| [2319ed] | 182 | }; | 
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|  | 183 |  | 
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| [821907] | 184 | /** Calculates the minimum distance of this vector to the plane. | 
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|  | 185 | * \sa Vector::GetDistanceVectorToPlane() | 
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|  | 186 | * \param *out output stream for debugging | 
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|  | 187 | * \param *PlaneNormal normal of plane | 
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|  | 188 | * \param *PlaneOffset offset of plane | 
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|  | 189 | * \return distance to plane | 
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|  | 190 | */ | 
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| [d4c9ae] | 191 | double Vector::DistanceToSpace(const Space &space) const | 
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| [821907] | 192 | { | 
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| [d4c9ae] | 193 | return space.distance(*this); | 
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| [c4d4df] | 194 | }; | 
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|  | 195 |  | 
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| [6ac7ee] | 196 | /** Calculates the projection of a vector onto another \a *y. | 
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|  | 197 | * \param *y array to second vector | 
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|  | 198 | */ | 
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| [273382] | 199 | void Vector::ProjectIt(const Vector &y) | 
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| [6ac7ee] | 200 | { | 
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| [753f02] | 201 | (*this) += (-ScalarProduct(y))*y; | 
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| [ef9df36] | 202 | }; | 
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|  | 203 |  | 
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|  | 204 | /** Calculates the projection of a vector onto another \a *y. | 
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|  | 205 | * \param *y array to second vector | 
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|  | 206 | * \return Vector | 
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|  | 207 | */ | 
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| [273382] | 208 | Vector Vector::Projection(const Vector &y) const | 
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| [ef9df36] | 209 | { | 
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| [753f02] | 210 | Vector helper = y; | 
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|  | 211 | helper.Scale((ScalarProduct(y)/y.NormSquared())); | 
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| [ef9df36] | 212 |  | 
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|  | 213 | return helper; | 
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| [6ac7ee] | 214 | }; | 
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|  | 215 |  | 
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|  | 216 | /** Calculates norm of this vector. | 
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|  | 217 | * \return \f$|x|\f$ | 
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|  | 218 | */ | 
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|  | 219 | double Vector::Norm() const | 
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|  | 220 | { | 
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| [273382] | 221 | return (sqrt(NormSquared())); | 
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| [6ac7ee] | 222 | }; | 
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|  | 223 |  | 
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| [d4d0dd] | 224 | /** Calculates squared norm of this vector. | 
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|  | 225 | * \return \f$|x|^2\f$ | 
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|  | 226 | */ | 
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|  | 227 | double Vector::NormSquared() const | 
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|  | 228 | { | 
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| [273382] | 229 | return (ScalarProduct(*this)); | 
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| [d4d0dd] | 230 | }; | 
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|  | 231 |  | 
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| [6ac7ee] | 232 | /** Normalizes this vector. | 
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|  | 233 | */ | 
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|  | 234 | void Vector::Normalize() | 
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|  | 235 | { | 
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| [1bd79e] | 236 | double factor = Norm(); | 
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|  | 237 | (*this) *= 1/factor; | 
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| [6ac7ee] | 238 | }; | 
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|  | 239 |  | 
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|  | 240 | /** Zeros all components of this vector. | 
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|  | 241 | */ | 
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|  | 242 | void Vector::Zero() | 
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|  | 243 | { | 
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| [753f02] | 244 | at(0)=at(1)=at(2)=0; | 
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| [6ac7ee] | 245 | }; | 
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|  | 246 |  | 
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|  | 247 | /** Zeros all components of this vector. | 
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|  | 248 | */ | 
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| [776b64] | 249 | void Vector::One(const double one) | 
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| [6ac7ee] | 250 | { | 
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| [753f02] | 251 | at(0)=at(1)=at(2)=one; | 
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| [6ac7ee] | 252 | }; | 
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|  | 253 |  | 
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| [9c20aa] | 254 | /** Checks whether vector has all components zero. | 
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|  | 255 | * @return true - vector is zero, false - vector is not | 
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|  | 256 | */ | 
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| [54a746] | 257 | bool Vector::IsZero() const | 
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| [9c20aa] | 258 | { | 
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| [d466f0] | 259 | return (fabs(at(0))+fabs(at(1))+fabs(at(2)) < MYEPSILON); | 
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| [54a746] | 260 | }; | 
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|  | 261 |  | 
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|  | 262 | /** Checks whether vector has length of 1. | 
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|  | 263 | * @return true - vector is normalized, false - vector is not | 
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|  | 264 | */ | 
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|  | 265 | bool Vector::IsOne() const | 
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|  | 266 | { | 
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|  | 267 | return (fabs(Norm() - 1.) < MYEPSILON); | 
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| [9c20aa] | 268 | }; | 
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|  | 269 |  | 
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| [ef9df36] | 270 | /** Checks whether vector is normal to \a *normal. | 
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|  | 271 | * @return true - vector is normalized, false - vector is not | 
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|  | 272 | */ | 
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| [273382] | 273 | bool Vector::IsNormalTo(const Vector &normal) const | 
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| [ef9df36] | 274 | { | 
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|  | 275 | if (ScalarProduct(normal) < MYEPSILON) | 
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|  | 276 | return true; | 
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|  | 277 | else | 
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|  | 278 | return false; | 
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|  | 279 | }; | 
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|  | 280 |  | 
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| [b998c3] | 281 | /** Checks whether vector is normal to \a *normal. | 
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|  | 282 | * @return true - vector is normalized, false - vector is not | 
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|  | 283 | */ | 
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| [273382] | 284 | bool Vector::IsEqualTo(const Vector &a) const | 
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| [b998c3] | 285 | { | 
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|  | 286 | bool status = true; | 
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|  | 287 | for (int i=0;i<NDIM;i++) { | 
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| [d466f0] | 288 | if (fabs(at(i) - a[i]) > MYEPSILON) | 
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| [b998c3] | 289 | status = false; | 
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|  | 290 | } | 
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|  | 291 | return status; | 
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|  | 292 | }; | 
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|  | 293 |  | 
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| [6ac7ee] | 294 | /** Calculates the angle between this and another vector. | 
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|  | 295 | * \param *y array to second vector | 
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|  | 296 | * \return \f$\acos\bigl(frac{\langle x, y \rangle}{|x||y|}\bigr)\f$ | 
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|  | 297 | */ | 
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| [273382] | 298 | double Vector::Angle(const Vector &y) const | 
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| [6ac7ee] | 299 | { | 
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| [753f02] | 300 | double norm1 = Norm(), norm2 = y.Norm(); | 
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| [ef9df36] | 301 | double angle = -1; | 
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| [d4d0dd] | 302 | if ((fabs(norm1) > MYEPSILON) && (fabs(norm2) > MYEPSILON)) | 
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|  | 303 | angle = this->ScalarProduct(y)/norm1/norm2; | 
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| [02da9e] | 304 | // -1-MYEPSILON occured due to numerical imprecision, catch ... | 
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| [e138de] | 305 | //Log() << Verbose(2) << "INFO: acos(-1) = " << acos(-1) << ", acos(-1+MYEPSILON) = " << acos(-1+MYEPSILON) << ", acos(-1-MYEPSILON) = " << acos(-1-MYEPSILON) << "." << endl; | 
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| [02da9e] | 306 | if (angle < -1) | 
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|  | 307 | angle = -1; | 
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|  | 308 | if (angle > 1) | 
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|  | 309 | angle = 1; | 
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| [042f82] | 310 | return acos(angle); | 
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| [6ac7ee] | 311 | }; | 
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|  | 312 |  | 
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| [0a4f7f] | 313 |  | 
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|  | 314 | double& Vector::operator[](size_t i){ | 
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| [753f02] | 315 | ASSERT(i<=NDIM && i>=0,"Vector Index out of Range"); | 
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| [ce3d2b] | 316 | return *gsl_vector_ptr (content->content, i); | 
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| [0a4f7f] | 317 | } | 
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|  | 318 |  | 
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|  | 319 | const double& Vector::operator[](size_t i) const{ | 
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| [753f02] | 320 | ASSERT(i<=NDIM && i>=0,"Vector Index out of Range"); | 
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| [ce3d2b] | 321 | return *gsl_vector_ptr (content->content, i); | 
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| [0a4f7f] | 322 | } | 
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|  | 323 |  | 
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|  | 324 | double& Vector::at(size_t i){ | 
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|  | 325 | return (*this)[i]; | 
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|  | 326 | } | 
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|  | 327 |  | 
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|  | 328 | const double& Vector::at(size_t i) const{ | 
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|  | 329 | return (*this)[i]; | 
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|  | 330 | } | 
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|  | 331 |  | 
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| [ce3d2b] | 332 | VectorContent* Vector::get(){ | 
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| [0c7ed8] | 333 | return content; | 
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| [0a4f7f] | 334 | } | 
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| [6ac7ee] | 335 |  | 
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| [ef9df36] | 336 | /** Compares vector \a to vector \a b component-wise. | 
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|  | 337 | * \param a base vector | 
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|  | 338 | * \param b vector components to add | 
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|  | 339 | * \return a == b | 
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|  | 340 | */ | 
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| [72e7fa] | 341 | bool Vector::operator==(const Vector& b) const | 
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| [ef9df36] | 342 | { | 
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| [1bd79e] | 343 | return IsEqualTo(b); | 
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| [ef9df36] | 344 | }; | 
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|  | 345 |  | 
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| [fa5a6a] | 346 | bool Vector::operator!=(const Vector& b) const | 
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|  | 347 | { | 
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|  | 348 | return !IsEqualTo(b); | 
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|  | 349 | } | 
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|  | 350 |  | 
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| [6ac7ee] | 351 | /** Sums vector \a to this lhs component-wise. | 
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|  | 352 | * \param a base vector | 
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|  | 353 | * \param b vector components to add | 
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|  | 354 | * \return lhs + a | 
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|  | 355 | */ | 
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| [72e7fa] | 356 | const Vector& Vector::operator+=(const Vector& b) | 
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| [6ac7ee] | 357 | { | 
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| [273382] | 358 | this->AddVector(b); | 
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| [72e7fa] | 359 | return *this; | 
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| [6ac7ee] | 360 | }; | 
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| [54a746] | 361 |  | 
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|  | 362 | /** Subtracts vector \a from this lhs component-wise. | 
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|  | 363 | * \param a base vector | 
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|  | 364 | * \param b vector components to add | 
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|  | 365 | * \return lhs - a | 
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|  | 366 | */ | 
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| [72e7fa] | 367 | const Vector& Vector::operator-=(const Vector& b) | 
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| [54a746] | 368 | { | 
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| [273382] | 369 | this->SubtractVector(b); | 
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| [72e7fa] | 370 | return *this; | 
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| [54a746] | 371 | }; | 
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|  | 372 |  | 
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| [6ac7ee] | 373 | /** factor each component of \a a times a double \a m. | 
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|  | 374 | * \param a base vector | 
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|  | 375 | * \param m factor | 
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|  | 376 | * \return lhs.x[i] * m | 
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|  | 377 | */ | 
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| [b84d5d] | 378 | const Vector& operator*=(Vector& a, const double m) | 
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| [6ac7ee] | 379 | { | 
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| [042f82] | 380 | a.Scale(m); | 
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|  | 381 | return a; | 
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| [6ac7ee] | 382 | }; | 
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|  | 383 |  | 
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| [042f82] | 384 | /** Sums two vectors \a  and \b component-wise. | 
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| [6ac7ee] | 385 | * \param a first vector | 
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|  | 386 | * \param b second vector | 
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|  | 387 | * \return a + b | 
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|  | 388 | */ | 
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| [72e7fa] | 389 | Vector const Vector::operator+(const Vector& b) const | 
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| [6ac7ee] | 390 | { | 
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| [72e7fa] | 391 | Vector x = *this; | 
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| [273382] | 392 | x.AddVector(b); | 
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| [b84d5d] | 393 | return x; | 
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| [6ac7ee] | 394 | }; | 
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|  | 395 |  | 
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| [54a746] | 396 | /** Subtracts vector \a from \b component-wise. | 
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|  | 397 | * \param a first vector | 
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|  | 398 | * \param b second vector | 
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|  | 399 | * \return a - b | 
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|  | 400 | */ | 
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| [72e7fa] | 401 | Vector const Vector::operator-(const Vector& b) const | 
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| [54a746] | 402 | { | 
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| [72e7fa] | 403 | Vector x = *this; | 
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| [273382] | 404 | x.SubtractVector(b); | 
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| [b84d5d] | 405 | return x; | 
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| [54a746] | 406 | }; | 
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|  | 407 |  | 
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| [6ac7ee] | 408 | /** Factors given vector \a a times \a m. | 
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|  | 409 | * \param a vector | 
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|  | 410 | * \param m factor | 
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| [54a746] | 411 | * \return m * a | 
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| [6ac7ee] | 412 | */ | 
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| [b84d5d] | 413 | Vector const operator*(const Vector& a, const double m) | 
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| [6ac7ee] | 414 | { | 
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| [b84d5d] | 415 | Vector x(a); | 
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|  | 416 | x.Scale(m); | 
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|  | 417 | return x; | 
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| [6ac7ee] | 418 | }; | 
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|  | 419 |  | 
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| [54a746] | 420 | /** Factors given vector \a a times \a m. | 
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|  | 421 | * \param m factor | 
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|  | 422 | * \param a vector | 
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|  | 423 | * \return m * a | 
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|  | 424 | */ | 
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| [b84d5d] | 425 | Vector const operator*(const double m, const Vector& a ) | 
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| [54a746] | 426 | { | 
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| [b84d5d] | 427 | Vector x(a); | 
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|  | 428 | x.Scale(m); | 
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|  | 429 | return x; | 
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| [54a746] | 430 | }; | 
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|  | 431 |  | 
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| [9c20aa] | 432 | ostream& operator<<(ostream& ost, const Vector& m) | 
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| [6ac7ee] | 433 | { | 
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| [042f82] | 434 | ost << "("; | 
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|  | 435 | for (int i=0;i<NDIM;i++) { | 
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| [0a4f7f] | 436 | ost << m[i]; | 
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| [042f82] | 437 | if (i != 2) | 
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|  | 438 | ost << ","; | 
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|  | 439 | } | 
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|  | 440 | ost << ")"; | 
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|  | 441 | return ost; | 
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| [6ac7ee] | 442 | }; | 
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|  | 443 |  | 
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|  | 444 |  | 
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| [1bd79e] | 445 | void Vector::ScaleAll(const double *factor) | 
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| [6ac7ee] | 446 | { | 
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| [042f82] | 447 | for (int i=NDIM;i--;) | 
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| [d466f0] | 448 | at(i) *= factor[i]; | 
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| [6ac7ee] | 449 | }; | 
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|  | 450 |  | 
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| [b5bf84] | 451 | void Vector::ScaleAll(const Vector &factor){ | 
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| [ce3d2b] | 452 | gsl_vector_mul(content->content, factor.content->content); | 
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| [b5bf84] | 453 | } | 
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| [6ac7ee] | 454 |  | 
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| [1bd79e] | 455 |  | 
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| [776b64] | 456 | void Vector::Scale(const double factor) | 
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| [6ac7ee] | 457 | { | 
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| [ce3d2b] | 458 | gsl_vector_scale(content->content,factor); | 
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| [6ac7ee] | 459 | }; | 
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|  | 460 |  | 
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| [45ef76] | 461 | std::pair<Vector,Vector> Vector::partition(const Vector &rhs) const{ | 
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|  | 462 | double factor = ScalarProduct(rhs)/rhs.NormSquared(); | 
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|  | 463 | Vector res= factor * rhs; | 
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|  | 464 | return make_pair(res,(*this)-res); | 
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|  | 465 | } | 
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|  | 466 |  | 
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|  | 467 | std::pair<pointset,Vector> Vector::partition(const pointset &points) const{ | 
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|  | 468 | Vector helper = *this; | 
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|  | 469 | pointset res; | 
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|  | 470 | for(pointset::const_iterator iter=points.begin();iter!=points.end();++iter){ | 
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|  | 471 | pair<Vector,Vector> currPart = helper.partition(*iter); | 
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|  | 472 | res.push_back(currPart.first); | 
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|  | 473 | helper = currPart.second; | 
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|  | 474 | } | 
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|  | 475 | return make_pair(res,helper); | 
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|  | 476 | } | 
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|  | 477 |  | 
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| [6ac7ee] | 478 | /** Creates this vector as the b y *factors' components scaled linear combination of the given three. | 
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|  | 479 | * this vector = x1*factors[0] + x2* factors[1] + x3*factors[2] | 
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|  | 480 | * \param *x1 first vector | 
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|  | 481 | * \param *x2 second vector | 
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|  | 482 | * \param *x3 third vector | 
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|  | 483 | * \param *factors three-component vector with the factor for each given vector | 
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|  | 484 | */ | 
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| [273382] | 485 | void Vector::LinearCombinationOfVectors(const Vector &x1, const Vector &x2, const Vector &x3, const double * const factors) | 
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| [6ac7ee] | 486 | { | 
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| [273382] | 487 | (*this) = (factors[0]*x1) + | 
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|  | 488 | (factors[1]*x2) + | 
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|  | 489 | (factors[2]*x3); | 
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| [6ac7ee] | 490 | }; | 
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|  | 491 |  | 
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|  | 492 | /** Calculates orthonormal vector to one given vectors. | 
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|  | 493 | * Just subtracts the projection onto the given vector from this vector. | 
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| [ef9df36] | 494 | * The removed part of the vector is Vector::Projection() | 
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| [6ac7ee] | 495 | * \param *x1 vector | 
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|  | 496 | * \return true - success, false - vector is zero | 
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|  | 497 | */ | 
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| [0a4f7f] | 498 | bool Vector::MakeNormalTo(const Vector &y1) | 
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| [6ac7ee] | 499 | { | 
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| [042f82] | 500 | bool result = false; | 
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| [753f02] | 501 | double factor = y1.ScalarProduct(*this)/y1.NormSquared(); | 
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| [45ef76] | 502 | Vector x1 = factor * y1; | 
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| [753f02] | 503 | SubtractVector(x1); | 
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| [042f82] | 504 | for (int i=NDIM;i--;) | 
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| [d466f0] | 505 | result = result || (fabs(at(i)) > MYEPSILON); | 
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| [6ac7ee] | 506 |  | 
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| [042f82] | 507 | return result; | 
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| [6ac7ee] | 508 | }; | 
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|  | 509 |  | 
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|  | 510 | /** Creates this vector as one of the possible orthonormal ones to the given one. | 
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|  | 511 | * Just scan how many components of given *vector are unequal to zero and | 
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|  | 512 | * try to get the skp of both to be zero accordingly. | 
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|  | 513 | * \param *vector given vector | 
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|  | 514 | * \return true - success, false - failure (null vector given) | 
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|  | 515 | */ | 
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| [273382] | 516 | bool Vector::GetOneNormalVector(const Vector &GivenVector) | 
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| [6ac7ee] | 517 | { | 
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| [042f82] | 518 | int Components[NDIM]; // contains indices of non-zero components | 
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|  | 519 | int Last = 0;   // count the number of non-zero entries in vector | 
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|  | 520 | int j;  // loop variables | 
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|  | 521 | double norm; | 
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|  | 522 |  | 
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|  | 523 | for (j=NDIM;j--;) | 
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|  | 524 | Components[j] = -1; | 
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| [1829c4] | 525 |  | 
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|  | 526 | // in two component-systems we need to find the one position that is zero | 
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|  | 527 | int zeroPos = -1; | 
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| [042f82] | 528 | // find two components != 0 | 
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| [1829c4] | 529 | for (j=0;j<NDIM;j++){ | 
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| [753f02] | 530 | if (fabs(GivenVector[j]) > MYEPSILON) | 
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| [042f82] | 531 | Components[Last++] = j; | 
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| [1829c4] | 532 | else | 
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|  | 533 | // this our zero Position | 
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|  | 534 | zeroPos = j; | 
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|  | 535 | } | 
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| [042f82] | 536 |  | 
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|  | 537 | switch(Last) { | 
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|  | 538 | case 3:  // threecomponent system | 
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| [1829c4] | 539 | // the position of the zero is arbitrary in three component systems | 
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|  | 540 | zeroPos = Components[2]; | 
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| [042f82] | 541 | case 2:  // two component system | 
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| [753f02] | 542 | norm = sqrt(1./(GivenVector[Components[1]]*GivenVector[Components[1]]) + 1./(GivenVector[Components[0]]*GivenVector[Components[0]])); | 
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| [1829c4] | 543 | at(zeroPos) = 0.; | 
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| [042f82] | 544 | // in skp both remaining parts shall become zero but with opposite sign and third is zero | 
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| [1829c4] | 545 | at(Components[1]) = -1./GivenVector[Components[1]] / norm; | 
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|  | 546 | at(Components[0]) = 1./GivenVector[Components[0]] / norm; | 
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| [042f82] | 547 | return true; | 
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|  | 548 | break; | 
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|  | 549 | case 1: // one component system | 
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|  | 550 | // set sole non-zero component to 0, and one of the other zero component pendants to 1 | 
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| [1829c4] | 551 | at((Components[0]+2)%NDIM) = 0.; | 
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|  | 552 | at((Components[0]+1)%NDIM) = 1.; | 
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|  | 553 | at(Components[0]) = 0.; | 
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| [042f82] | 554 | return true; | 
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|  | 555 | break; | 
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|  | 556 | default: | 
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|  | 557 | return false; | 
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|  | 558 | } | 
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| [6ac7ee] | 559 | }; | 
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|  | 560 |  | 
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|  | 561 | /** Adds vector \a *y componentwise. | 
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|  | 562 | * \param *y vector | 
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|  | 563 | */ | 
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| [273382] | 564 | void Vector::AddVector(const Vector &y) | 
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| [6ac7ee] | 565 | { | 
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| [ce3d2b] | 566 | gsl_vector_add(content->content, y.content->content); | 
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| [6ac7ee] | 567 | } | 
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|  | 568 |  | 
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|  | 569 | /** Adds vector \a *y componentwise. | 
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|  | 570 | * \param *y vector | 
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|  | 571 | */ | 
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| [273382] | 572 | void Vector::SubtractVector(const Vector &y) | 
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| [6ac7ee] | 573 | { | 
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| [ce3d2b] | 574 | gsl_vector_sub(content->content, y.content->content); | 
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| [ef9df36] | 575 | } | 
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|  | 576 |  | 
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| [005e18] | 577 |  | 
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|  | 578 | // some comonly used vectors | 
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|  | 579 | const Vector zeroVec(0,0,0); | 
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|  | 580 | const Vector e1(1,0,0); | 
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|  | 581 | const Vector e2(0,1,0); | 
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|  | 582 | const Vector e3(0,0,1); | 
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