| 1 | /*
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| 2 |  * gslmatrix.cpp
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| 3 |  *
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| 4 |  *  Created on: Jan 8, 2010
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| 5 |  *      Author: heber
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| 6 |  */
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| 7 | 
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| 8 | #include "Helpers/MemDebug.hpp"
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| 9 | 
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| 10 | using namespace std;
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| 11 | 
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| 12 | #include "gslmatrix.hpp"
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| 13 | #include "helpers.hpp"
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| 14 | #include "Helpers/fast_functions.hpp"
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| 15 | 
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| 16 | #include <cassert>
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| 17 | #include <gsl/gsl_linalg.h>
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| 18 | 
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| 19 | /** Constructor of class GSLMatrix.
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| 20 |  * Allocates GSL structures
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| 21 |  * \param m dimension of matrix
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| 22 |  */
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| 23 | GSLMatrix::GSLMatrix(size_t m, size_t n) : rows(m), columns(n)
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| 24 | {
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| 25 |   matrix = gsl_matrix_calloc(rows, columns);
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| 26 | };
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| 27 | 
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| 28 | /** Copy constructor of class GSLMatrix.
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| 29 |  * Allocates GSL structures and copies components from \a *src.
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| 30 |  * \param *src source matrix
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| 31 |  */
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| 32 | GSLMatrix::GSLMatrix(const GSLMatrix * const src) : rows(src->rows), columns(src->columns)
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| 33 | {
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| 34 |   matrix = gsl_matrix_alloc(rows, columns);
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| 35 |   gsl_matrix_memcpy (matrix, src->matrix);
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| 36 | };
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| 37 | 
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| 38 | /** Destructor of class GSLMatrix.
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| 39 |  * Frees GSL structures
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| 40 |  */
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| 41 | GSLMatrix::~GSLMatrix()
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| 42 | {
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| 43 |   gsl_matrix_free(matrix);
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| 44 |   rows = 0;
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| 45 |   columns = 0;
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| 46 | };
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| 47 | 
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| 48 | /** Assignment operator.
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| 49 |  * \param &rhs right hand side
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| 50 |  * \return object itself
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| 51 |  */
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| 52 | GSLMatrix& GSLMatrix::operator=(const GSLMatrix& rhs)
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| 53 | {
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| 54 |   if (this == &rhs)   // not necessary here, but identity assignment check is generally a good idea
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| 55 |     return *this;
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| 56 |   assert(rows == rhs.rows && columns == rhs.columns && "Number of rows and columns do not match!");
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| 57 | 
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| 58 |   gsl_matrix_memcpy (matrix, rhs.matrix);
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| 59 | 
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| 60 |   return *this;
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| 61 | };
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| 62 | 
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| 63 | /* ============================ Accessing =============================== */
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| 64 | /** This function sets the matrix from a double array.
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| 65 |  * Creates a matrix view of the array and performs a memcopy.
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| 66 |  * \param *x array of values (no dimension check is performed)
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| 67 |  */
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| 68 | void GSLMatrix::SetFromDoubleArray(double * x)
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| 69 | {
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| 70 |   gsl_matrix_view m = gsl_matrix_view_array (x, rows, columns);
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| 71 |   gsl_matrix_memcpy (matrix, &m.matrix);
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| 72 | };
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| 73 | 
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| 74 | /** This function returns the i-th element of a matrix.
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| 75 |  * If \a m or \a n lies outside the allowed range of 0 to GSLMatrix::dimension-1 then the error handler is invoked and 0 is returned.
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| 76 |  * \param m row index
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| 77 |  * \param n colum index
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| 78 |  * \return (m,n)-th element of matrix
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| 79 |  */
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| 80 | double GSLMatrix::Get(size_t m, size_t n)
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| 81 | {
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| 82 |   return gsl_matrix_get (matrix, m, n);
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| 83 | };
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| 84 | 
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| 85 | /** This function sets the value of the \a m -th element of a matrix to \a x.
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| 86 |  *  If \a m or \a n lies outside the allowed range of 0 to GSLMatrix::dimension-1 then the error handler is invoked.
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| 87 |  * \param m row index
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| 88 |  * \param m column index
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| 89 |  * \param x value to set element (m,n) to
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| 90 |  */
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| 91 | void GSLMatrix::Set(size_t m, size_t n, double x)
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| 92 | {
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| 93 |   gsl_matrix_set (matrix, m, n, x);
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| 94 | };
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| 95 | 
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| 96 | /** These functions return a pointer to the \a m-th element of a matrix.
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| 97 |  *  If \a m or \a n lies outside the allowed range of 0 to GSLMatrix::dimension-1 then the error handler is invoked and a null pointer is returned.
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| 98 |  * \param m index
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| 99 |  * \return pointer to \a m-th element
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| 100 |  */
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| 101 | double *GSLMatrix::Pointer(size_t m, size_t n)
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| 102 | {
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| 103 |   return gsl_matrix_ptr (matrix, m, n);
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| 104 | };
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| 105 | 
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| 106 | /** These functions return a constant pointer to the \a m-th element of a matrix.
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| 107 |  *  If \a m or \a n lies outside the allowed range of 0 to GSLMatrix::dimension-1 then the error handler is invoked and a null pointer is returned.
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| 108 |  * \param m index
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| 109 |  * \return const pointer to \a m-th element
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| 110 |  */
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| 111 | const double *GSLMatrix::const_Pointer(size_t m, size_t n)
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| 112 | {
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| 113 |   return gsl_matrix_const_ptr (matrix, m, n);
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| 114 | };
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| 115 | 
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| 116 | /* ========================== Initializing =============================== */
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| 117 | /** This function sets all the elements of the matrix to the value \a x.
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| 118 |  * \param *x
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| 119 |  */
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| 120 | void GSLMatrix::SetAll(double x)
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| 121 | {
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| 122 |   gsl_matrix_set_all (matrix, x);
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| 123 | };
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| 124 | 
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| 125 | /** This function sets all the elements of the matrix to zero.
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| 126 |  */
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| 127 | void GSLMatrix::SetZero()
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| 128 | {
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| 129 |   gsl_matrix_set_zero (matrix);
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| 130 | };
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| 131 | 
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| 132 | /** This function sets the elements of the matrix to the corresponding elements of the identity matrix, \f$m(i,j) = \delta(i,j)\f$, i.e. a unit diagonal with all off-diagonal elements zero.
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| 133 |  * This applies to both square and rectangular matrices.
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| 134 |  */
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| 135 | void GSLMatrix::SetIdentity()
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| 136 | {
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| 137 |   gsl_matrix_set_identity (matrix);
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| 138 | };
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| 139 | 
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| 140 | /* ====================== Exchanging elements ============================ */
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| 141 | /** This function exchanges the \a i-th and \a j-th row of the matrix in-place.
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| 142 |  * \param i i-th row to swap with ...
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| 143 |  * \param j ... j-th row to swap against
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| 144 |  */
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| 145 | bool GSLMatrix::SwapRows(size_t i, size_t j)
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| 146 | {
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| 147 |   return (gsl_matrix_swap_rows (matrix, i, j) == GSL_SUCCESS);
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| 148 | };
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| 149 | 
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| 150 | /** This function exchanges the \a i-th and \a j-th column of the matrix in-place.
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| 151 |  * \param i i-th column to swap with ...
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| 152 |  * \param j ... j-th column to swap against
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| 153 |  */
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| 154 | bool GSLMatrix::SwapColumns(size_t i, size_t j)
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| 155 | {
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| 156 |   return (gsl_matrix_swap_columns (matrix, i, j) == GSL_SUCCESS);
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| 157 | };
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| 158 | 
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| 159 | /** This function exchanges the \a i-th row and \a j-th column of the matrix in-place.
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| 160 |  * The matrix must be square for this operation to be possible.
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| 161 |  * \param i i-th row to swap with ...
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| 162 |  * \param j ... j-th column to swap against
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| 163 |  */
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| 164 | bool GSLMatrix::SwapRowColumn(size_t i, size_t j)
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| 165 | {
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| 166 |   assert (rows == columns && "The matrix must be square for swapping row against column to be possible.");
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| 167 |   return (gsl_matrix_swap_rowcol (matrix, i, j) == GSL_SUCCESS);
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| 168 | };
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| 169 | 
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| 170 | /** This function transposes the matrix.
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| 171 |  * Note that the function is extended to the non-square case, where the matrix is re-allocated and copied.
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| 172 |  */
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| 173 | bool GSLMatrix::Transpose()
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| 174 | {
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| 175 |   if (rows == columns)// if square, use GSL
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| 176 |     return (gsl_matrix_transpose (matrix) == GSL_SUCCESS);
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| 177 |   else { // otherwise we have to copy a bit
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| 178 |     gsl_matrix *dest = gsl_matrix_alloc(columns, rows);
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| 179 |     for (size_t i=0;i<rows; i++)
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| 180 |       for (size_t j=0;j<columns;j++) {
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| 181 |         gsl_matrix_set(dest, j,i, gsl_matrix_get(matrix, i,j) );
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| 182 |       }
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| 183 |     gsl_matrix_free(matrix);
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| 184 |     matrix = dest;
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| 185 |     flip(rows, columns);
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| 186 |     return true;
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| 187 |   }
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| 188 | };
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| 189 | 
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| 190 | /* ============================ Properties ============================== */
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| 191 | /** Checks whether matrix' elements are strictly null.
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| 192 |  * \return true - is null, false - else
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| 193 |  */
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| 194 | bool GSLMatrix::IsNull()
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| 195 | {
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| 196 |   return gsl_matrix_isnull (matrix);
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| 197 | };
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| 198 | 
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| 199 | /** Checks whether matrix' elements are strictly positive.
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| 200 |  * \return true - is positive, false - else
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| 201 |  */
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| 202 | bool GSLMatrix::IsPositive()
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| 203 | {
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| 204 |   return gsl_matrix_ispos (matrix);
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| 205 | };
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| 206 | 
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| 207 | /** Checks whether matrix' elements are strictly negative.
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| 208 |  * \return true - is negative, false - else
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| 209 |  */
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| 210 | bool GSLMatrix::IsNegative()
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| 211 | {
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| 212 |   return gsl_matrix_isneg (matrix);
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| 213 | };
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| 214 | 
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| 215 | /** Checks whether matrix' elements are strictly non-negative.
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| 216 |  * \return true - is non-negative, false - else
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| 217 |  */
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| 218 | bool GSLMatrix::IsNonNegative()
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| 219 | {
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| 220 |   return gsl_matrix_isnonneg (matrix);
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| 221 | };
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| 222 | 
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| 223 | /** This function performs a Cholesky decomposition to determine whether matrix is positive definite.
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| 224 |  * We check whether GSL returns GSL_EDOM as error, indicating that decomposition failed due to matrix not being positive-definite.
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| 225 |  * \return true - matrix is positive-definite, false - else
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| 226 |  */
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| 227 | bool GSLMatrix::IsPositiveDefinite()
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| 228 | {
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| 229 |   if (rows != columns)  // only possible for square matrices.
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| 230 |     return false;
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| 231 |   else
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| 232 |     return (gsl_linalg_cholesky_decomp (matrix) != GSL_EDOM);
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| 233 | };
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| 234 | 
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| 235 | 
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| 236 | /** Calculates the determinant of the matrix.
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| 237 |  * if matrix is square, uses LU decomposition.
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| 238 |  */
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| 239 | double GSLMatrix::Determinant()
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| 240 | {
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| 241 |   int signum = 0;
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| 242 |   assert (rows == columns && "Determinant can only be calculated for square matrices.");
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| 243 |   gsl_permutation *p = gsl_permutation_alloc(rows);
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| 244 |   gsl_linalg_LU_decomp(matrix, p, &signum);
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| 245 |   gsl_permutation_free(p);
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| 246 |   return gsl_linalg_LU_det(matrix, signum); 
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| 247 | };
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| 248 | 
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