| 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) 2012 University of Bonn. All rights reserved.
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| 5 | * Copyright (C) 2013 Frederik Heber. All rights reserved.
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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 | * InterfaceVMGJob.cpp
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| 26 | *
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| 27 | * Created on: 10.06.2012
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| 28 | * Author: Frederik Heber
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| 29 | */
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| 30 |
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| 31 | #ifdef HAVE_CONFIG_H
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| 32 | #include <config.h>
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| 33 | #endif
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| 34 |
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| 35 | #ifdef HAVE_MPI
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| 36 | #include "mpi.h"
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| 37 | #endif
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| 38 |
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| 39 | #include "base/vector.hpp"
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| 40 | #include "base/math.hpp"
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| 41 | #include "comm/comm.hpp"
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| 42 | #include "grid/grid.hpp"
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| 43 | #include "grid/multigrid.hpp"
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| 44 | #include "units/particle/comm_mpi_particle.hpp"
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| 45 | #include "units/particle/interpolation.hpp"
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| 46 | #include "units/particle/linked_cell_list.hpp"
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| 47 | #include "mg.hpp"
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| 48 |
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| 49 | #include "InterfaceVMGJob.hpp"
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| 50 |
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| 51 | //#include "CodePatterns/MemDebug.hpp"
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| 52 |
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| 53 | #include <cmath>
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| 54 | #include <iostream>
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| 55 | #include <limits>
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| 56 |
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| 57 | #include "CodePatterns/Log.hpp"
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| 58 |
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| 59 | #include "Fragmentation/Summation/SetValues/FragmentForces.hpp"
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| 60 | #include "Jobs/WindowGrid_converter.hpp"
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| 61 | #include "Jobs/ChargeSmearer.hpp"
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| 62 |
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| 63 | using namespace VMG;
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| 64 | using VMGInterfaces::InterfaceVMGJob;
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| 65 |
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| 66 | InterfaceVMGJob::InterfaceVMGJob(const SamplingGrid &_sampled_input,
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| 67 | VMGData &_returndata,
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| 68 | const std::vector< std::vector<double> > &_particle_positions,
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| 69 | const std::vector< double > &_particle_charges,
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| 70 | VMG::Boundary boundary,
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| 71 | int levelMin,
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| 72 | int levelMax,
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| 73 | const VMG::Vector &_box_begin,
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| 74 | vmg_float _box_end,
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| 75 | const int& near_field_cells,
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| 76 | const ImportParticles_t _ImportParticles,
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| 77 | const bool _DoPrintDebug,
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| 78 | const bool _DoSmearCharges,
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| 79 | int coarseningSteps,
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| 80 | double alpha) :
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| 81 | VMG::Interface(boundary, levelMin, levelMax,
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| 82 | _box_begin, _box_end, coarseningSteps, alpha),
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| 83 | nfc(near_field_cells),
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| 84 | meshwidth(Extent(MaxLevel()).MeshWidth().Max()),
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| 85 | spl(nfc, meshwidth),
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| 86 | sampled_input(_sampled_input),
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| 87 | returndata(_returndata),
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| 88 | level(levelMax),
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| 89 | ImportParticles(_ImportParticles),
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| 90 | DoPrintDebug(_DoPrintDebug),
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| 91 | OpenBoundaryCondition(boundary[0] == VMG::Open),
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| 92 | DoSmearCharges(_DoSmearCharges)
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| 93 | {
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| 94 | for (size_t i=0;i<3;++i) {
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| 95 | box_begin[i] = _box_begin[i];
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| 96 | box_end[i] = _box_begin[i]+_box_end;
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| 97 | }
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| 98 | std::vector< std::vector<double> >::const_iterator positer = _particle_positions.begin();
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| 99 | std::vector<double>::const_iterator chargeiter = _particle_charges.begin();
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| 100 | double pos[3];
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| 101 | for (; positer != _particle_positions.end(); ++positer, ++chargeiter) {
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| 102 | ASSERT( (*positer).size() == 3,
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| 103 | "InterfaceVMGJob::InterfaceVMGJob() - particle "
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| 104 | +toString(distance(_particle_positions.begin(), positer))+" has not exactly 3 coordinates.");
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| 105 | for (size_t i=0;i<3;++i)
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| 106 | pos[i] = (*positer)[i];
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| 107 | particles.push_back(Particle::Particle(pos, *chargeiter));
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| 108 | }
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| 109 | }
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| 110 |
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| 111 | void InterfaceVMGJob::ImportRightHandSide(Multigrid& multigrid)
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| 112 | {
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| 113 | Index i;
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| 114 | Vector pos;
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| 115 | // VMG::TempGrid *temp_grid = new VMG::TempGrid(129, 0, 0., 1.);
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| 116 |
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| 117 | Grid& grid = multigrid(multigrid.MaxLevel());
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| 118 | grid.Clear();
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| 119 | //grid.ClearBoundary(); // we don't have a boundary under periodic boundary conditions
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| 120 |
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| 121 | // print debugging info on grid size
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| 122 | LOG(1, "INFO: Mesh has extent " << grid.Extent().MeshWidth() << ".");
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| 123 | const int gridpoints = pow(2, level);
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| 124 | LOG(1, "INFO: gridpoints on finest level are " << gridpoints << ".");
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| 125 | LOG(1, "INFO: "
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| 126 | << "X in [" << grid.Local().Begin().X() << "," << grid.Local().End().X() << "],"
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| 127 | << "Y in [" << grid.Local().Begin().Y() << "," << grid.Local().End().Y() << "],"
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| 128 | << "Z in [" << grid.Local().Begin().Z() << "," << grid.Local().End().Z() << "].");
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| 129 |
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| 130 | /// 1. assign nuclei as smeared-out charges to the grid
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| 131 |
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| 132 | /*
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| 133 | * Charge assignment on the grid
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| 134 | */
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| 135 | Particle::CommMPI& comm = *dynamic_cast<Particle::CommMPI*>(MG::GetComm());
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| 136 | Grid& particle_grid = comm.GetParticleGrid();
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| 137 | particle_grid.Clear();
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| 138 |
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| 139 | // distribute particles
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| 140 | particles.clear();
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| 141 | comm.CommParticles(grid, particles);
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| 142 |
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| 143 | assert(particle_grid.Global().LocalSize().IsComponentwiseGreater(
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| 144 | VMG::MG::GetFactory().GetObjectStorageVal<int>("PARTICLE_NEAR_FIELD_CELLS")));
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| 145 |
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| 146 | if (ImportParticles == DoImportParticles) {
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| 147 | // create smeared-out particle charges on particle_grid via splines
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| 148 | LOG(1, "INFO: Creating particle grid for " << particles.size() << " particles.");
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| 149 | for (std::list<Particle::Particle>::iterator iter = particles.begin();
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| 150 | iter != particles.end(); ++iter) {
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| 151 | LOG(2, "DEBUG: Current particle is at " << (*iter).Pos()
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| 152 | << " with charge " << (*iter).Charge() << ".");
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| 153 | spl.SetSpline(particle_grid, *iter);
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| 154 | }
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| 155 | }
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| 156 |
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| 157 | // Communicate charges over halo
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| 158 | comm.CommFromGhosts(particle_grid);
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| 159 |
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| 160 | if (DoPrintDebug) {
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| 161 | // print nuclei grid to vtk
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| 162 | comm.PrintGrid(particle_grid, "Sampled Nuclei Density");
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| 163 | }
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| 164 |
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| 165 | // add sampled electron charge density onto grid
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| 166 | if (DoSmearCharges) {
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| 167 | ChargeSmearer &smearer = ChargeSmearer::getInstance();
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| 168 | smearer.initializeSplineArray(spl, nfc, meshwidth);
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| 169 | }
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| 170 | WindowGrid_converter::addWindowOntoGrid(
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| 171 | grid,
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| 172 | sampled_input,
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| 173 | 1.,
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| 174 | OpenBoundaryCondition,
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| 175 | DoSmearCharges);
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| 176 |
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| 177 | if (DoPrintDebug) {
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| 178 | // print electron grid to vtk
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| 179 | comm.PrintGrid(grid, "Sampled Electron Density");
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| 180 | }
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| 181 |
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| 182 | // add particle_grid onto grid
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| 183 | for (int i=0; i<grid.Local().Size().X(); ++i)
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| 184 | for (int j=0; j<grid.Local().Size().Y(); ++j)
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| 185 | for (int k=0; k<grid.Local().Size().Z(); ++k)
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| 186 | grid(grid.Local().Begin().X() + i,
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| 187 | grid.Local().Begin().Y() + j,
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| 188 | grid.Local().Begin().Z() + k) = 4.0 * VMG::Math::pi * (
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| 189 | grid(grid.Local().Begin().X() + i,
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| 190 | grid.Local().Begin().Y() + j,
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| 191 | grid.Local().Begin().Z() + k) +
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| 192 | particle_grid.GetVal(particle_grid.Local().Begin().X() + i,
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| 193 | particle_grid.Local().Begin().Y() + j,
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| 194 | particle_grid.Local().Begin().Z() + k));
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| 195 |
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| 196 | // calculate sum over grid times h^3 as check, should be roughly zero
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| 197 | const double element_volume = grid.Extent().MeshWidth().Product();
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| 198 | double charge_sum = 0.0;
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| 199 | for (Grid::iterator grid_iter = grid.Iterators().Local().Begin();
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| 200 | grid_iter != grid.Iterators().Local().End();
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| 201 | ++grid_iter)
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| 202 | charge_sum += grid.GetVal(*grid_iter);
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| 203 | charge_sum = element_volume * comm.GlobalSum(charge_sum);
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| 204 | comm.PrintOnce(Debug, "Grid charge integral: %e", charge_sum/(4.0 * VMG::Math::pi));
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| 205 |
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| 206 | if (DoPrintDebug) {
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| 207 | // print total grid to vtk
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| 208 | comm.PrintGrid(grid, "Total Charge Density");
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| 209 | }
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| 210 |
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| 211 | // delete temp_grid;
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| 212 | }
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| 213 |
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| 214 | void InterfaceVMGJob::ExportSolution(Grid& grid)
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| 215 | {
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| 216 | /// sample the obtained potential to evaluate with the electron charge density
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| 217 |
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| 218 | // grid now contains the sough-for potential
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| 219 | //Comm& comm = *MG::GetComm();
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| 220 | Particle::CommMPI& comm = *dynamic_cast<Particle::CommMPI*>(MG::GetComm());
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| 221 |
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| 222 |
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| 223 | if (DoPrintDebug) {
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| 224 | // print output grid to vtk
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| 225 | comm.PrintGrid(grid, "Potential Solution");
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| 226 | }
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| 227 |
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| 228 | // obtain sampled potential from grid
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| 229 | returndata.sampled_potential.setWindow(
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| 230 | box_begin,
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| 231 | box_end
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| 232 | );
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| 233 | WindowGrid_converter::addGridOntoWindow(
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| 234 | grid,
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| 235 | returndata.sampled_potential,
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| 236 | +1.,
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| 237 | OpenBoundaryCondition
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| 238 | );
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| 239 |
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| 240 | // calculate integral over potential as long-range energy contribution
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| 241 | const double element_volume =
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| 242 | grid.Extent().MeshWidth().X() * grid.Extent().MeshWidth().Y() * grid.Extent().MeshWidth().Z();
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| 243 | Grid::iterator grid_iter;
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| 244 | double potential_sum = 0.0;
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| 245 | for (grid_iter=grid.Iterators().Local().Begin(); grid_iter!=grid.Iterators().Local().End(); ++grid_iter)
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| 246 | potential_sum += grid.GetVal(*grid_iter);
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| 247 | potential_sum = element_volume * comm.GlobalSum(potential_sum);
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| 248 | comm.PrintOnce(Debug, "Grid potential sum: %e", potential_sum);
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| 249 |
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| 250 | {
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| 251 | Grid::iterator grid_iter = grid.Iterators().Local().Begin();
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| 252 | comm.PrintOnce(Debug, "Grid potential at (0,0,0): %e", grid.GetVal(*grid_iter));
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| 253 | }
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| 254 |
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| 255 | //Particle::CommMPI& comm = *dynamic_cast<Particle::CommMPI*>(MG::GetComm()); returndata.e_long = potential_sum;
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| 256 |
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| 257 | /// Calculate potential energy of nuclei
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| 258 |
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| 259 | vmg_float e = 0.0;
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| 260 | vmg_float e_long = 0.0;
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| 261 | vmg_float e_self = 0.0;
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| 262 | vmg_float e_short_peak = 0.0;
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| 263 | vmg_float e_short_spline = 0.0;
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| 264 |
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| 265 | Factory& factory = MG::GetFactory();
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| 266 |
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| 267 | /*
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| 268 | * Get parameters and arrays
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| 269 | */
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| 270 | const vmg_int& near_field_cells = factory.GetObjectStorageVal<int>("PARTICLE_NEAR_FIELD_CELLS");
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| 271 | const vmg_int& interpolation_degree = factory.GetObjectStorageVal<int>("PARTICLE_INTERPOLATION_DEGREE");
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| 272 |
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| 273 | Particle::Interpolation ip(interpolation_degree);
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| 274 |
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| 275 | const vmg_float r_cut = near_field_cells * grid.Extent().MeshWidth().Max();
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| 276 |
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| 277 | /*
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| 278 | * Copy potential values to a grid with sufficiently large halo size.
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| 279 | * This may be optimized in future.
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| 280 | * The parameters of this grid have been set in the import step.
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| 281 | */
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| 282 | Grid& particle_grid = comm.GetParticleGrid();
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| 283 |
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| 284 | {
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| 285 | Index i;
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| 286 | for (i.X()=0; i.X()<grid.Local().Size().X(); ++i.X())
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| 287 | for (i.Y()=0; i.Y()<grid.Local().Size().Y(); ++i.Y())
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| 288 | for (i.Z()=0; i.Z()<grid.Local().Size().Z(); ++i.Z())
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| 289 | particle_grid(i + particle_grid.Local().Begin()) = grid.GetVal(i + grid.Local().Begin());
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| 290 | comm.CommToGhosts(particle_grid);
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| 291 | }
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| 292 |
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| 293 | /*
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| 294 | * Compute potentials
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| 295 | */
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| 296 | Particle::LinkedCellList lc(particles, near_field_cells, grid);
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| 297 | Particle::LinkedCellList::iterator p1, p2;
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| 298 | Grid::iterator iter;
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| 299 |
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| 300 | comm.CommLCListToGhosts(lc);
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| 301 |
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| 302 | for (int i=lc.Local().Begin().X(); i<lc.Local().End().X(); ++i)
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| 303 | for (int j=lc.Local().Begin().Y(); j<lc.Local().End().Y(); ++j)
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| 304 | for (int k=lc.Local().Begin().Z(); k<lc.Local().End().Z(); ++k) {
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| 305 |
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| 306 | if (lc(i,j,k).size() > 0)
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| 307 | ip.ComputeCoefficients(particle_grid, Index(i,j,k) - lc.Local().Begin() + particle_grid.Local().Begin());
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| 308 |
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| 309 | for (p1=lc(i,j,k).begin(); p1!=lc(i,j,k).end(); ++p1) {
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| 310 |
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| 311 | // Interpolate long-range part of potential and electric field
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| 312 | ip.Evaluate(**p1);
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| 313 |
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| 314 | // Subtract self-induced potential
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| 315 | (*p1)->Pot() -= (*p1)->Charge() * spl.GetAntiDerivativeAtZero();
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| 316 |
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| 317 | e_long += 0.5 * (*p1)->Charge() * ip.EvaluatePotentialLR(**p1);
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| 318 | e_self += 0.5 * (*p1)->Charge() * (*p1)->Charge() * spl.GetAntiDerivativeAtZero();
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| 319 |
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| 320 | for (int dx=-1*near_field_cells; dx<=near_field_cells; ++dx)
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| 321 | for (int dy=-1*near_field_cells; dy<=near_field_cells; ++dy)
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| 322 | for (int dz=-1*near_field_cells; dz<=near_field_cells; ++dz) {
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| 323 |
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| 324 | for (p2=lc(i+dx,j+dy,k+dz).begin(); p2!=lc(i+dx,j+dy,k+dz).end(); ++p2)
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| 325 |
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| 326 | if (*p1 != *p2) {
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| 327 |
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| 328 | const Vector dir = (*p1)->Pos() - (*p2)->Pos();
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| 329 | const vmg_float length = dir.Length();
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| 330 |
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| 331 | if ((length < r_cut) && (length > std::numeric_limits<double>::epsilon())) {
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| 332 |
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| 333 | (*p1)->Pot() += (*p2)->Charge() / length * (1.0 + spl.EvaluatePotential(length));
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| 334 | (*p1)->Field() += (*p2)->Charge() * dir * spl.EvaluateField(length);
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| 335 |
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| 336 | e_short_peak += 0.5 * (*p1)->Charge() * (*p2)->Charge() / length;
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| 337 | e_short_spline += 0.5 * (*p1)->Charge() * (*p2)->Charge() / length * spl.EvaluatePotential(length);
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| 338 | }
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| 339 | }
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| 340 | }
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| 341 | }
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| 342 | }
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| 343 |
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| 344 | const vmg_int& num_particles_local = factory.GetObjectStorageVal<vmg_int>("PARTICLE_NUM_LOCAL");
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| 345 |
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| 346 | /* Remove average force term */
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| 347 | // if (!particles.empty()) {
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| 348 | // Vector average_force = 0.0;
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| 349 | // for (std::list<Particle::Particle>::const_iterator iter=particles.begin(); iter!=particles.end(); ++iter)
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| 350 | // average_force += iter->Charge() * iter->Field();
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| 351 | // const vmg_int num_particles_global = comm.GlobalSum(num_particles_local);
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| 352 | // average_force /= (double)num_particles_global;
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| 353 | // comm.GlobalSumArray(average_force.vec(), 3);
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| 354 | // for (std::list<Particle::Particle>::iterator iter=particles.begin(); iter!=particles.end(); ++iter)
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| 355 | // iter->Field() -= average_force / iter->Charge();
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| 356 | // comm.PrintOnce(Debug, "Average force term is: %e %e %e", average_force[0], average_force[1], average_force[2]);
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| 357 | // }
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| 358 |
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| 359 | comm.CommParticlesBack(particles);
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| 360 |
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| 361 | vmg_float* q = factory.GetObjectStorageArray<vmg_float>("PARTICLE_CHARGE_ARRAY");
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| 362 | const vmg_float* p = factory.GetObjectStorageArray<vmg_float>("PARTICLE_POTENTIAL_ARRAY");
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| 363 | const vmg_float* f = factory.GetObjectStorageArray<vmg_float>("PARTICLE_FIELD_ARRAY");
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| 364 |
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| 365 | // extract forces
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| 366 | if (!particles.empty()) {
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| 367 | size_t index = 0;
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| 368 | returndata.forces.resize(
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| 369 | num_particles_local, FragmentForces::force_t(3, 0.) );
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| 370 | for (FragmentForces::forces_t::iterator iter = returndata.forces.begin();
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| 371 | iter != returndata.forces.end(); ++iter) {
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| 372 | comm.PrintOnce(Debug, "%d force vector: %e %e %e", (index/3)+1, f[index+0], f[index+1], f[index+2]);
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| 373 | for (size_t i=0;i<3;++i)
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| 374 | (*iter)[i] = f[index++];
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| 375 | }
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| 376 | returndata.hasForces = true;
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| 377 | }
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| 378 |
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| 379 | e_long = comm.GlobalSumRoot(e_long);
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| 380 | e_short_peak = comm.GlobalSumRoot(e_short_peak);
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| 381 | e_short_spline = comm.GlobalSumRoot(e_short_spline);
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| 382 | e_self = comm.GlobalSumRoot(e_self);
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| 383 |
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| 384 | for (int j=0; j<num_particles_local; ++j)
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| 385 | e += 0.5 * p[j] * q[j];
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| 386 | e = comm.GlobalSumRoot(e);
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| 387 |
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| 388 | comm.PrintOnce(Debug, "E_long: %e", e_long);
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| 389 | comm.PrintOnce(Debug, "E_short_peak: %e", e_short_peak);
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| 390 | comm.PrintOnce(Debug, "E_short_spline: %e", e_short_spline);
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| 391 | comm.PrintOnce(Debug, "E_self: %e", e_self);
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| 392 | comm.PrintOnce(Debug, "E_total: %e", e);
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| 393 | comm.PrintOnce(Debug, "E_total*: %e", e_long + e_short_peak + e_short_spline - e_self);
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| 394 |
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| 395 | returndata.nuclei_long = e_long;
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| 396 | returndata.electron_long = e_long;
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| 397 |
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| 398 | // calculate residual
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| 399 | const vmg_float& res = factory.GetObjectStorageVal<vmg_float>("RESIDUAL");
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| 400 | const vmg_float& init_res = factory.GetObjectStorageVal<vmg_float>("INITIAL_RESIDUAL");
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| 401 | const vmg_float& precision = factory.GetObjectStorageVal<vmg_float>("PRECISION");
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| 402 | const vmg_float rel_res = (init_res != 0.) ? std::fabs(res / init_res) : 0.;
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| 403 | returndata.precision = precision;
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| 404 | returndata.residual = res;
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| 405 | returndata.relative_residual = rel_res;
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| 406 | }
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