| 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)  2013 Frederik Heber. 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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| 8 |  *   This file is part of MoleCuilder.
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| 9 |  *
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| 10 |  *    MoleCuilder is free software: you can redistribute it and/or modify
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| 11 |  *    it under the terms of the GNU General Public License as published by
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| 12 |  *    the Free Software Foundation, either version 2 of the License, or
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| 13 |  *    (at your option) any later version.
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| 14 |  *
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| 15 |  *    MoleCuilder is distributed in the hope that it will be useful,
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| 16 |  *    but WITHOUT ANY WARRANTY; without even the implied warranty of
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| 17 |  *    MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
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| 18 |  *    GNU General Public License for more details.
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| 19 |  *
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| 20 |  *    You should have received a copy of the GNU General Public License
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| 21 |  *    along with MoleCuilder.  If not, see <http://www.gnu.org/licenses/>.
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| 22 |  */
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| 23 | 
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| 24 | /*
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| 25 |  * PartialNucleiChargeFitter.cpp
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| 26 |  *
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| 27 |  *  Created on: 12.05.2013
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| 28 |  *      Author: heber
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| 29 |  */
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| 30 | 
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| 31 | // include config.h
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| 32 | #ifdef HAVE_CONFIG_H
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| 33 | #include <config.h>
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| 34 | #endif
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| 35 | 
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| 36 | #include "CodePatterns/MemDebug.hpp"
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| 37 | 
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| 38 | #include "PartialNucleiChargeFitter.hpp"
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| 39 | 
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| 40 | #include <cmath>
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| 41 | #include <fstream>
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| 42 | #include <limits>
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| 43 | #include <numeric>
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| 44 | 
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| 45 | #include "LinearAlgebra/MatrixContent.hpp"
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| 46 | #include "LinearAlgebra/VectorContent.hpp"
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| 47 | 
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| 48 | #include "CodePatterns/Assert.hpp"
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| 49 | #include "CodePatterns/Log.hpp"
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| 50 | 
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| 51 | #include "Fragmentation/Summation/SetValues/SamplingGrid.hpp"
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| 52 | 
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| 53 | PartialNucleiChargeFitter::dimensions_t
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| 54 | PartialNucleiChargeFitter::getGridDimensions(const SamplingGrid &grid) const
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| 55 | {
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| 56 |   // convert sampled potential into a vector
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| 57 |   const double round_offset =
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| 58 |       (std::numeric_limits<size_t>::round_style == std::round_toward_zero) ?
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| 59 |           0.5 : 0.; // need offset to get to round_toward_nearest behavior
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| 60 |   dimensions_t total(3,0);
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| 61 |   for(size_t index=0;index<3;++index) {
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| 62 |     const double delta = grid.getDeltaPerAxis(index);
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| 63 |     // delta is conversion factor from box length to discrete length, i.e. number of points
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| 64 |     total[index] = (grid.end[index] - grid.begin[index])/delta+round_offset;
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| 65 |   }
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| 66 |   return total;
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| 67 | }
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| 68 | 
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| 69 | PartialNucleiChargeFitter::PartialNucleiChargeFitter(
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| 70 |     const SamplingGrid &grid,
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| 71 |     const positions_t &_positions,
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| 72 |     const double _threshold) :
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| 73 |       total(getGridDimensions(grid)),
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| 74 |       SampledPotential(std::accumulate(total.begin(), total.end(), 1, std::multiplies<double>())),
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| 75 |       grid_properties(static_cast<const SamplingGridProperties &>(grid)),
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| 76 |       positions(_positions),
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| 77 |       PotentialFromCharges(NULL),
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| 78 |       PartialCharges(NULL),
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| 79 |       threshold(_threshold)
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| 80 | {
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| 81 |   // we must take care of the "window", i.e. there may be less entries in sampled_grid
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| 82 |   // vector as we would expect from size of grid ((2^level)^3) as 0-entries have been
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| 83 |   // omitted.
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| 84 |   size_t pre_offset[3];
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| 85 |   size_t post_offset[3];
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| 86 |   size_t length[3];
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| 87 |   size_t total[3];
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| 88 |   grid.getDiscreteWindowCopyIndices(
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| 89 |       grid.begin, grid.end,
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| 90 |       grid.begin_window, grid.end_window,
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| 91 |       pre_offset,
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| 92 |       post_offset,
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| 93 |       length,
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| 94 |       total
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| 95 |       );
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| 96 |   const size_t calculated_size = length[0]*length[1]*length[2];
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| 97 |   ASSERT( calculated_size == grid.sampled_grid.size(),
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| 98 |       "PartialNucleiChargeFitter::PartialNucleiChargeFitter() - grid does not match size indicated by its window.");
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| 99 | 
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| 100 |   const double potential_sum = std::accumulate(grid.sampled_grid.begin(), grid.sampled_grid.end(), 0.);
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| 101 |   if ( fabs(potential_sum) > std::numeric_limits<double>::epsilon()*1e4 ) {
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| 102 |     ELOG(2, "Potential sum is not less than "
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| 103 |         << std::numeric_limits<double>::epsilon()*1e4 << " but " 
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| 104 |         << potential_sum << ".");
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| 105 |   }
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| 106 | 
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| 107 |   SamplingGrid::sampledvalues_t::const_iterator griditer = grid.sampled_grid.begin();
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| 108 |   size_t index=0;
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| 109 |   size_t N[3];
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| 110 |   Vector grid_position; // position of grid point in real domain
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| 111 |   size_t masked_points = 0;
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| 112 |   // store step length per axis
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| 113 |   double delta[3];
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| 114 |   for (size_t i=0;i<3;++i)
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| 115 |     delta[i] = grid_properties.getDeltaPerAxis(i);
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| 116 |   /// convert sampled potential into a vector
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| 117 |   grid_position[0] = grid_properties.begin[0];
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| 118 |   for(N[0]=0; N[0] < pre_offset[0]; ++N[0]) {
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| 119 |     grid_position[1] = grid_properties.begin[1];
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| 120 |     for(N[1]=0; N[1] < total[1]; ++N[1]) {
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| 121 |       grid_position[2] = grid_properties.begin[2];
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| 122 |       for(N[2]=0; N[2] < total[2]; ++N[2]) {
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| 123 |         const_cast<VectorContent &>(SampledPotential)[index++] = 0.;
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| 124 |         grid_position[2] += delta[2];
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| 125 |       }
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| 126 |       grid_position[1] += delta[1];
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| 127 |     }
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| 128 |     grid_position[0] += delta[0];
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| 129 |   }
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| 130 |   for(N[0]=0; N[0] < length[0]; ++N[0]) {
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| 131 |     grid_position[1] = grid_properties.begin[1];
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| 132 |     for(N[1]=0; N[1] < pre_offset[1]; ++N[1]) {
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| 133 |       grid_position[2] = grid_properties.begin[2];
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| 134 |       for(N[2]=0; N[2] < total[2]; ++N[2]) {
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| 135 |         const_cast<VectorContent &>(SampledPotential)[index++] = 0.;
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| 136 |         grid_position[2] += delta[2];
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| 137 |       }
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| 138 |       grid_position[1] += delta[1];
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| 139 |     }
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| 140 |     for(N[1]=0; N[1] < length[1]; ++N[1]) {
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| 141 |       grid_position[2] = grid_properties.begin[2];
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| 142 |       for(N[2]=0; N[2] < pre_offset[2]; ++N[2]) {
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| 143 |         const_cast<VectorContent &>(SampledPotential)[index++] = 0.;
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| 144 |         grid_position[2] += delta[2];
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| 145 |       }
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| 146 |       for(N[2]=0; N[2] < length[2]; ++N[2]) {
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| 147 |         if (isGridPointSettable(positions, grid_position))
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| 148 |           const_cast<VectorContent &>(SampledPotential)[index++] = *griditer++;
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| 149 |         else {
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| 150 |           // skip point
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| 151 |           ++griditer;
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| 152 |           ++masked_points;
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| 153 |           const_cast<VectorContent &>(SampledPotential)[index++] = 0.;
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| 154 |         }
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| 155 |         grid_position[2] += delta[2];
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| 156 |       }
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| 157 |       for(N[2]=0; N[2] < post_offset[2]; ++N[2]) {
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| 158 |         const_cast<VectorContent &>(SampledPotential)[index++] = 0.;
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| 159 |         grid_position[2] += delta[2];
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| 160 |       }
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| 161 |       grid_position[1] += delta[1];
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| 162 |     }
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| 163 |     for(N[1]=0; N[1] < post_offset[1]; ++N[1]) {
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| 164 |       grid_position[2] = grid_properties.begin[2];
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| 165 |       for(N[2]=0; N[2] < total[2]; ++N[2]) {
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| 166 |         const_cast<VectorContent &>(SampledPotential)[index++] = 0.;
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| 167 |         grid_position[2] += delta[2];
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| 168 |       }
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| 169 |       grid_position[1] += delta[1];
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| 170 |     }
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| 171 |     grid_position[0] += delta[0];
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| 172 |   }
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| 173 |   for(N[0]=0; N[0] < post_offset[0]; ++N[0]) {
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| 174 |     grid_position[1] = grid_properties.begin[1];
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| 175 |     for(N[1]=0; N[1] < total[1]; ++N[1]) {
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| 176 |       grid_position[2] = grid_properties.begin[2];
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| 177 |       for(N[2]=0; N[2] < total[2]; ++N[2]) {
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| 178 |         const_cast<VectorContent &>(SampledPotential)[index++] = 0.;
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| 179 |         grid_position[2] += delta[2];
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| 180 |       }
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| 181 |       grid_position[1] += delta[1];
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| 182 |     }
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| 183 |     grid_position[0] += delta[0];
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| 184 |   }
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| 185 |   // set remainder of points to zero
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| 186 |   ASSERT( index == SampledPotential.getDimension(),
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| 187 |       "PartialNucleiChargeFitter::PartialNucleiChargeFitter() - not enough or more than calculated sample points.");
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| 188 | 
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| 189 | #ifndef NDEBUG
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| 190 |   // write vector as paraview csv file file
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| 191 |   {
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| 192 |     size_t N[3];
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| 193 |     size_t index = 0;
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| 194 |     std::ofstream paraview_output("solution.csv");
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| 195 |     paraview_output << "x coord,y coord,z coord,scalar" << std::endl;
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| 196 |     for(N[0]=0; N[0] < total[0]; ++N[0]) {
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| 197 |       for(N[1]=0; N[1] < total[1]; ++N[1]) {
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| 198 |         for(N[2]=0; N[2] < total[2]; ++N[2]) {
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| 199 |           paraview_output
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| 200 |               << (double)N[0]/(double)total[0] << ","
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| 201 |               << (double)N[1]/(double)total[1] << ","
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| 202 |               << (double)N[2]/(double)total[2] << ","
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| 203 |               << SampledPotential.at(index++) << std::endl;
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| 204 |         }
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| 205 |       }
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| 206 |     }
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| 207 |     paraview_output.close();
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| 208 |   }
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| 209 | #endif
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| 210 | 
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| 211 |   LOG(1, "INFO: I masked " << masked_points << " points in right-hand-side.");
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| 212 | //  LOG(4, "DEBUG: Right-hand side vector is " << SampledPotential << ".");
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| 213 | }
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| 214 | 
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| 215 | bool PartialNucleiChargeFitter::isGridPointSettable(
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| 216 |     const positions_t &_positions,
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| 217 |     const Vector &grid_position) const
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| 218 | {
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| 219 |   bool status = true;
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| 220 |   for (positions_t::const_iterator iter = _positions.begin();
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| 221 |       iter != _positions.end(); ++iter) {
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| 222 |     status &= grid_position.DistanceSquared(*iter) > threshold*threshold;
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| 223 |   }
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| 224 |   return status;
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| 225 | }
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| 226 | 
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| 227 | PartialNucleiChargeFitter::~PartialNucleiChargeFitter()
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| 228 | {
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| 229 |   if (PartialCharges != NULL)
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| 230 |     delete PartialCharges;
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| 231 | 
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| 232 |   if (PotentialFromCharges != NULL)
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| 233 |     delete PotentialFromCharges;
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| 234 | }
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| 235 | 
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| 236 | 
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| 237 | void PartialNucleiChargeFitter::constructMatrix()
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| 238 | {
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| 239 |   const size_t rows = SampledPotential.getDimension();
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| 240 |   const size_t cols = positions.size();
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| 241 | 
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| 242 |   // allocate memory for PotentialFromCharges
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| 243 |   if (PotentialFromCharges != NULL) {
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| 244 |     delete PotentialFromCharges;
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| 245 |     PotentialFromCharges = NULL;
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| 246 |   }
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| 247 |   PotentialFromCharges = new MatrixContent( rows, cols );
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| 248 |   // store step length per axis
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| 249 |   double delta[3];
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| 250 |   for (size_t i=0;i<3;++i)
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| 251 |     delta[i] = grid_properties.getDeltaPerAxis(i);
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| 252 |   // then for each charge ...
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| 253 |   size_t masked_points = 0;
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| 254 |   for (size_t nuclei_index = 0; nuclei_index < cols; ++nuclei_index) {
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| 255 |     // ... calculate potential at each grid position,
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| 256 |     // i.e. step through grid and calculate distance to charge position
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| 257 |     Vector grid_position; // position of grid point in real domain
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| 258 |     grid_position[0] = grid_properties.begin[0];
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| 259 |     size_t N[3];      // discrete grid position
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| 260 |     size_t index = 0; // component of column vector
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| 261 |     for(N[0]=0; N[0] < total[0]; ++N[0]) {
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| 262 |       grid_position[1] = grid_properties.begin[1];
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| 263 |       for(N[1]=0; N[1] < total[1]; ++N[1]) {
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| 264 |         grid_position[2] = grid_properties.begin[2];
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| 265 |         for(N[2]=0; N[2] < total[2]; ++N[2]) {
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| 266 |           if (isGridPointSettable(positions, grid_position)) {
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| 267 |             const double distance = positions[nuclei_index].distance(grid_position);
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| 268 |             ASSERT( distance >= 0,
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| 269 |                 "PartialNucleiChargeFitter::constructMatrix() - distance is negative?");
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| 270 |             // Coulomb's constant is 1 in atomic units, see http://en.wikipedia.org/wiki/Atomic_units
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| 271 |             const double epsilon0_au = 1.; //4.*M_PI*0.007957747154594767;
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| 272 |             // ... with epsilon_0 in atom units from http://folk.uio.no/michalj/node72.html
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| 273 |             const double value = 1./(epsilon0_au*distance);
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| 274 |             PotentialFromCharges->at(index++, nuclei_index) = value;
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| 275 |           } else {
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| 276 |             ++masked_points;
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| 277 |             PotentialFromCharges->at(index++, nuclei_index) = 0.;
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| 278 |           }
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| 279 |           grid_position[2] += delta[2];
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| 280 |         }
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| 281 |         grid_position[1] += delta[1];
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| 282 |       }
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| 283 |       grid_position[0] += delta[0];
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| 284 |     }
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| 285 |     ASSERT( index == PotentialFromCharges->getRows(),
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| 286 |         "PartialNucleiChargeFitter::operator() - number of sampled positions "
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| 287 |         +toString(index)+" unequal to set rows "
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| 288 |         +toString(PotentialFromCharges->getRows())+".");
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| 289 |   }
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| 290 | 
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| 291 |   LOG(1, "INFO: I masked " << masked_points/cols << " points in matrix.");
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| 292 | }
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| 293 | 
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| 294 | double PartialNucleiChargeFitter::operator()()
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| 295 | {
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| 296 |   // prepare PartialCharges
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| 297 |   if (PartialCharges != NULL) {
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| 298 |     delete PartialCharges;
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| 299 |     PartialCharges = NULL;
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| 300 |   }
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| 301 |   PartialCharges = new VectorContent(positions.size());
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| 302 | 
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| 303 |   // set up over-determined system's problem matrix A for Ax=b
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| 304 |   // i.e. columns represent potential of a single charge at grid positions
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| 305 |   constructMatrix();
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| 306 | 
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| 307 |   // solve for x
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| 308 |   *PartialCharges =
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| 309 |       PotentialFromCharges->solveOverdeterminedLinearEquation(
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| 310 |           SampledPotential);
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| 311 | 
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| 312 | //  LOG(4, "DEBUG: Solution vector is " << (*PotentialFromCharges) * (*PartialCharges) << ".");
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| 313 | 
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| 314 |   // calculate residual vector
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| 315 |   VectorContent residuum = (*PotentialFromCharges) * (*PartialCharges) - SampledPotential;
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| 316 | 
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| 317 | #ifndef NDEBUG
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| 318 |   // write solution to file
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| 319 |   writeMatrix();
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| 320 | 
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| 321 |   // write vector as paraview csv file file
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| 322 |   {
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| 323 |     size_t N[3];
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| 324 |     size_t index = 0;
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| 325 |     std::ofstream paraview_output("residuum.csv");
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| 326 |     paraview_output << "x coord,y coord,z coord,scalar" << std::endl;
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| 327 |     for(N[0]=0; N[0] < total[0]; ++N[0]) {
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| 328 |       for(N[1]=0; N[1] < total[1]; ++N[1]) {
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| 329 |         for(N[2]=0; N[2] < total[2]; ++N[2]) {
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| 330 |           paraview_output
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| 331 |               << (double)N[0]/(double)total[0] << ","
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| 332 |               << (double)N[1]/(double)total[1] << ","
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| 333 |               << (double)N[2]/(double)total[2] << ","
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| 334 |               << residuum.at(index++) << std::endl;
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| 335 |         }
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| 336 |       }
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| 337 |     }
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| 338 |     paraview_output.close();
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| 339 |   }
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| 340 | #endif
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| 341 | 
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| 342 |   // calculate L1 and L2 errors
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| 343 |   double residuum_l1 = 0.;
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| 344 |   for (size_t i=0; i< residuum.getDimension(); ++i)
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| 345 |     if (residuum_l1 < residuum[i])
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| 346 |       residuum_l1 = residuum[i];
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| 347 |   LOG(1, "INFO: L2-Norm of residuum is " << residuum.Norm() << ".");
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| 348 |   LOG(1, "INFO: L1-Norm of residuum is " << residuum_l1 << ".");
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| 349 | 
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| 350 |   return residuum.Norm();
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| 351 | }
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| 352 | 
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| 353 | void PartialNucleiChargeFitter::writeMatrix()
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| 354 | {
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| 355 |   constructMatrix();
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| 356 | 
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| 357 |   // write matrix as paraview csv file file
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| 358 |     size_t N[3];
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| 359 |     size_t index=0;
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| 360 |     std::string filename = std::string("potential.csv");
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| 361 |     std::ofstream paraview_output(filename.c_str());
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| 362 |     paraview_output << "x coord,y coord,z coord,scalar" << std::endl;
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| 363 |     for(N[0]=0; N[0] < total[0]; ++N[0]) {
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| 364 |       for(N[1]=0; N[1] < total[1]; ++N[1]) {
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| 365 |         for(N[2]=0; N[2] < total[2]; ++N[2]) {
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| 366 |           double sum = 0.;
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| 367 |           for (size_t nuclei_index = 0; nuclei_index < positions.size(); ++nuclei_index) {
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| 368 |             sum+= PotentialFromCharges->at(index, nuclei_index)*PartialCharges->at(nuclei_index);
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| 369 |           }
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| 370 |           paraview_output
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| 371 |               << (double)N[0]/(double)total[0] << ","
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| 372 |               << (double)N[1]/(double)total[1] << ","
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| 373 |               << (double)N[2]/(double)total[2] << ","
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| 374 |               << sum << std::endl;
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| 375 |           index++;
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| 376 |         }
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| 377 |       }
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| 378 |     }
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| 379 |     paraview_output.close();
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| 380 | }
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| 381 | 
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| 382 | PartialNucleiChargeFitter::charges_t
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| 383 | PartialNucleiChargeFitter::getSolutionAsCharges_t() const
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| 384 | {
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| 385 |   ASSERT( PartialCharges != NULL,
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| 386 |       "PartialNucleiChargeFitter::getSolutionAsCharges_t() - PartialCharges requested prior to calculation.");
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| 387 |   charges_t return_charges(positions.size(), 0.);
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| 388 |   for (size_t i = 0; i < return_charges.size(); ++i)
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| 389 |     return_charges[i] = PartialCharges->at(i);
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| 390 |   return return_charges;
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| 391 | }
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