source: src/Jobs/InterfaceVMGJob.cpp@ 9ec4b8

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Last change on this file since 9ec4b8 was b47f9c, checked in by Frederik Heber <heber@…>, 11 years ago

FIX: WindowGrid_converter::addWindowOntoGrid() never used OpenBoundaryConditions branch.

  • We did not use the parameter, it always fell back to default (false).
  • open boundary conditions use one extra grid point right-hand-side layer to account Dirichlet boundary conditions. This has to be skipped when filling the grid.
  • density looks sensible in both cases, in open boundary case neither electron nor nuclei longrange show any (significant) box size dependency.
  • Property mode set to 100644
File size: 12.7 KB
Line 
1/*
2 * Project: MoleCuilder
3 * Description: creates and alters molecular systems
4 * Copyright (C) 2012 University of Bonn. All rights reserved.
5 * Copyright (C) 2013 Frederik Heber. All rights reserved.
6 *
7 *
8 * This file is part of MoleCuilder.
9 *
10 * MoleCuilder is free software: you can redistribute it and/or modify
11 * it under the terms of the GNU General Public License as published by
12 * the Free Software Foundation, either version 2 of the License, or
13 * (at your option) any later version.
14 *
15 * MoleCuilder is distributed in the hope that it will be useful,
16 * but WITHOUT ANY WARRANTY; without even the implied warranty of
17 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
18 * GNU General Public License for more details.
19 *
20 * You should have received a copy of the GNU General Public License
21 * along with MoleCuilder. If not, see <http://www.gnu.org/licenses/>.
22 */
23
24/*
25 * InterfaceVMGJob.cpp
26 *
27 * Created on: 10.06.2012
28 * Author: Frederik Heber
29 */
30
31#ifdef HAVE_CONFIG_H
32#include <config.h>
33#endif
34
35#ifdef HAVE_MPI
36#include "mpi.h"
37#endif
38
39#include "base/vector.hpp"
40#include "base/math.hpp"
41#include "comm/comm.hpp"
42#include "grid/grid.hpp"
43#include "grid/multigrid.hpp"
44#include "units/particle/comm_mpi_particle.hpp"
45#include "units/particle/interpolation.hpp"
46#include "units/particle/linked_cell_list.hpp"
47#include "mg.hpp"
48
49#include "InterfaceVMGJob.hpp"
50
51#include "CodePatterns/MemDebug.hpp"
52
53#include <cmath>
54#include <iostream>
55#include <limits>
56
57#include "CodePatterns/Log.hpp"
58
59#include "Jobs/WindowGrid_converter.hpp"
60
61using namespace VMG;
62using VMGInterfaces::InterfaceVMGJob;
63
64InterfaceVMGJob::InterfaceVMGJob(const SamplingGrid &_sampled_input,
65 VMGData &_returndata,
66 const std::vector< std::vector<double> > &_particle_positions,
67 const std::vector< double > &_particle_charges,
68 VMG::Boundary boundary,
69 int levelMin,
70 int levelMax,
71 const VMG::Vector &_box_begin,
72 vmg_float _box_end,
73 const int& near_field_cells,
74 const ImportParticles_t _ImportParticles,
75 const bool _DoPrintDebug,
76 int coarseningSteps,
77 double alpha) :
78 VMG::Interface(boundary, levelMin, levelMax,
79 _box_begin, _box_end, coarseningSteps, alpha),
80 spl(near_field_cells, Extent(MaxLevel()).MeshWidth().Max()),
81 sampled_input(_sampled_input),
82 returndata(_returndata),
83 level(levelMax),
84 ImportParticles(_ImportParticles),
85 DoPrintDebug(_DoPrintDebug),
86 OpenBoundaryCondition(boundary[0] == VMG::Open)
87{
88 for (size_t i=0;i<3;++i) {
89 box_begin[i] = _box_begin[i];
90 box_end[i] = _box_end;
91 }
92 std::vector< std::vector<double> >::const_iterator positer = _particle_positions.begin();
93 std::vector<double>::const_iterator chargeiter = _particle_charges.begin();
94 double pos[3];
95 for (; positer != _particle_positions.end(); ++positer, ++chargeiter) {
96 ASSERT( (*positer).size() == 3,
97 "InterfaceVMGJob::InterfaceVMGJob() - particle "
98 +toString(distance(_particle_positions.begin(), positer))+" has not exactly 3 coordinates.");
99 for (size_t i=0;i<3;++i)
100 pos[i] = (*positer)[i];
101 particles.push_back(Particle::Particle(pos, *chargeiter));
102 }
103}
104
105void InterfaceVMGJob::ImportRightHandSide(Multigrid& multigrid)
106{
107 Index i;
108 Vector pos;
109 // VMG::TempGrid *temp_grid = new VMG::TempGrid(129, 0, 0., 1.);
110
111 Grid& grid = multigrid(multigrid.MaxLevel());
112 grid.Clear();
113 //grid.ClearBoundary(); // we don't have a boundary under periodic boundary conditions
114
115 // print debugging info on grid size
116 LOG(1, "INFO: Mesh has extent " << grid.Extent().MeshWidth() << ".");
117 const int gridpoints = pow(2, level);
118 LOG(1, "INFO: gridpoints on finest level are " << gridpoints << ".");
119 LOG(1, "INFO: "
120 << "X in [" << grid.Local().Begin().X() << "," << grid.Local().End().X() << "],"
121 << "Y in [" << grid.Local().Begin().Y() << "," << grid.Local().End().Y() << "],"
122 << "Z in [" << grid.Local().Begin().Z() << "," << grid.Local().End().Z() << "].");
123
124 /// 1. assign nuclei as smeared-out charges to the grid
125
126 /*
127 * Charge assignment on the grid
128 */
129 Particle::CommMPI& comm = *dynamic_cast<Particle::CommMPI*>(MG::GetComm());
130 Grid& particle_grid = comm.GetParticleGrid();
131 particle_grid.Clear();
132
133 // distribute particles
134 particles.clear();
135 comm.CommParticles(grid, particles);
136
137 assert(particle_grid.Global().LocalSize().IsComponentwiseGreater(
138 VMG::MG::GetFactory().GetObjectStorageVal<int>("PARTICLE_NEAR_FIELD_CELLS")));
139
140 if (ImportParticles == DoImportParticles) {
141 // create smeared-out particle charges on particle_grid via splines
142 LOG(1, "INFO: Creating particle grid for " << particles.size() << " particles.");
143 for (std::list<Particle::Particle>::iterator iter = particles.begin();
144 iter != particles.end(); ++iter) {
145 LOG(2, "DEBUG: Current particle is at " << (*iter).Pos()
146 << " with charge " << (*iter).Charge() << ".");
147 spl.SetSpline(particle_grid, *iter);
148 }
149 }
150
151 // Communicate charges over halo
152 comm.CommFromGhosts(particle_grid);
153
154 if (DoPrintDebug) {
155 // print nuclei grid to vtk
156 comm.PrintGrid(particle_grid, "Sampled Nuclei Density");
157 }
158
159 // add sampled electron charge density onto grid
160 WindowGrid_converter::addWindowOntoGrid(
161 grid,
162 sampled_input,
163 1.,
164 OpenBoundaryCondition);
165
166 if (DoPrintDebug) {
167 // print electron grid to vtk
168 comm.PrintGrid(grid, "Sampled Electron Density");
169 }
170
171 // add particle_grid onto grid
172 for (int i=0; i<grid.Local().Size().X(); ++i)
173 for (int j=0; j<grid.Local().Size().Y(); ++j)
174 for (int k=0; k<grid.Local().Size().Z(); ++k)
175 grid(grid.Local().Begin().X() + i,
176 grid.Local().Begin().Y() + j,
177 grid.Local().Begin().Z() + k) = 4.0 * VMG::Math::pi * (
178 grid(grid.Local().Begin().X() + i,
179 grid.Local().Begin().Y() + j,
180 grid.Local().Begin().Z() + k) +
181 particle_grid.GetVal(particle_grid.Local().Begin().X() + i,
182 particle_grid.Local().Begin().Y() + j,
183 particle_grid.Local().Begin().Z() + k));
184
185 // calculate sum over grid times h^3 as check, should be roughly zero
186 const double element_volume = grid.Extent().MeshWidth().Product();
187 double charge_sum = 0.0;
188 for (Grid::iterator grid_iter = grid.Iterators().Local().Begin();
189 grid_iter != grid.Iterators().Local().End();
190 ++grid_iter)
191 charge_sum += grid.GetVal(*grid_iter);
192 charge_sum = element_volume * comm.GlobalSum(charge_sum);
193 comm.PrintOnce(Debug, "Grid charge integral: %e", charge_sum/(4.0 * VMG::Math::pi));
194
195 if (DoPrintDebug) {
196 // print total grid to vtk
197 comm.PrintGrid(grid, "Total Charge Density");
198 }
199
200// delete temp_grid;
201}
202
203void InterfaceVMGJob::ExportSolution(Grid& grid)
204{
205 /// sample the obtained potential to evaluate with the electron charge density
206
207 // grid now contains the sough-for potential
208 //Comm& comm = *MG::GetComm();
209 Particle::CommMPI& comm = *dynamic_cast<Particle::CommMPI*>(MG::GetComm());
210
211
212 if (DoPrintDebug) {
213 // print output grid to vtk
214 comm.PrintGrid(grid, "Potential Solution");
215 }
216
217 // obtain sampled potential from grid
218 returndata.sampled_potential.setWindow(
219 box_begin,
220 box_end
221 );
222 WindowGrid_converter::addGridOntoWindow(
223 grid,
224 returndata.sampled_potential,
225 +1.,
226 OpenBoundaryCondition
227 );
228
229 // calculate integral over potential as long-range energy contribution
230 const double element_volume =
231 grid.Extent().MeshWidth().X() * grid.Extent().MeshWidth().Y() * grid.Extent().MeshWidth().Z();
232 Grid::iterator grid_iter;
233 double potential_sum = 0.0;
234 for (grid_iter=grid.Iterators().Local().Begin(); grid_iter!=grid.Iterators().Local().End(); ++grid_iter)
235 potential_sum += grid.GetVal(*grid_iter);
236 potential_sum = element_volume * comm.GlobalSum(potential_sum);
237 comm.PrintOnce(Debug, "Grid potential sum: %e", potential_sum);
238
239 {
240 Grid::iterator grid_iter = grid.Iterators().Local().Begin();
241 comm.PrintOnce(Debug, "Grid potential at (0,0,0): %e", grid.GetVal(*grid_iter));
242 }
243
244 //Particle::CommMPI& comm = *dynamic_cast<Particle::CommMPI*>(MG::GetComm()); returndata.e_long = potential_sum;
245
246 /// Calculate potential energy of nuclei
247
248 vmg_float e = 0.0;
249 vmg_float e_long = 0.0;
250 vmg_float e_self = 0.0;
251 vmg_float e_short_peak = 0.0;
252 vmg_float e_short_spline = 0.0;
253
254 Factory& factory = MG::GetFactory();
255
256 /*
257 * Get parameters and arrays
258 */
259 const vmg_int& near_field_cells = factory.GetObjectStorageVal<int>("PARTICLE_NEAR_FIELD_CELLS");
260 const vmg_int& interpolation_degree = factory.GetObjectStorageVal<int>("PARTICLE_INTERPOLATION_DEGREE");
261
262 Particle::Interpolation ip(interpolation_degree);
263
264 const vmg_float r_cut = near_field_cells * grid.Extent().MeshWidth().Max();
265
266 /*
267 * Copy potential values to a grid with sufficiently large halo size.
268 * This may be optimized in future.
269 * The parameters of this grid have been set in the import step.
270 */
271 Grid& particle_grid = comm.GetParticleGrid();
272
273 {
274 Index i;
275 for (i.X()=0; i.X()<grid.Local().Size().X(); ++i.X())
276 for (i.Y()=0; i.Y()<grid.Local().Size().Y(); ++i.Y())
277 for (i.Z()=0; i.Z()<grid.Local().Size().Z(); ++i.Z())
278 particle_grid(i + particle_grid.Local().Begin()) = grid.GetVal(i + grid.Local().Begin());
279 comm.CommToGhosts(particle_grid);
280 }
281
282 /*
283 * Compute potentials
284 */
285 Particle::LinkedCellList lc(particles, near_field_cells, grid);
286 Particle::LinkedCellList::iterator p1, p2;
287 Grid::iterator iter;
288
289 comm.CommLCListToGhosts(lc);
290
291 for (int i=lc.Local().Begin().X(); i<lc.Local().End().X(); ++i)
292 for (int j=lc.Local().Begin().Y(); j<lc.Local().End().Y(); ++j)
293 for (int k=lc.Local().Begin().Z(); k<lc.Local().End().Z(); ++k) {
294
295 if (lc(i,j,k).size() > 0)
296 ip.ComputeCoefficients(particle_grid, Index(i,j,k) - lc.Local().Begin() + particle_grid.Local().Begin());
297
298 for (p1=lc(i,j,k).begin(); p1!=lc(i,j,k).end(); ++p1) {
299
300 // Interpolate long-range part of potential and electric field
301 ip.Evaluate(**p1);
302
303 // Subtract self-induced potential
304 (*p1)->Pot() -= (*p1)->Charge() * spl.GetAntiDerivativeAtZero();
305
306 e_long += 0.5 * (*p1)->Charge() * ip.EvaluatePotentialLR(**p1);
307 e_self += 0.5 * (*p1)->Charge() * (*p1)->Charge() * spl.GetAntiDerivativeAtZero();
308
309 for (int dx=-1*near_field_cells; dx<=near_field_cells; ++dx)
310 for (int dy=-1*near_field_cells; dy<=near_field_cells; ++dy)
311 for (int dz=-1*near_field_cells; dz<=near_field_cells; ++dz) {
312
313 for (p2=lc(i+dx,j+dy,k+dz).begin(); p2!=lc(i+dx,j+dy,k+dz).end(); ++p2)
314
315 if (*p1 != *p2) {
316
317 const Vector dir = (*p1)->Pos() - (*p2)->Pos();
318 const vmg_float length = dir.Length();
319
320 if (length < r_cut) {
321
322 (*p1)->Pot() += (*p2)->Charge() / length * (1.0 + spl.EvaluatePotential(length));
323 (*p1)->Field() += (*p2)->Charge() * dir * spl.EvaluateField(length);
324
325 e_short_peak += 0.5 * (*p1)->Charge() * (*p2)->Charge() / length;
326 e_short_spline += 0.5 * (*p1)->Charge() * (*p2)->Charge() / length * spl.EvaluatePotential(length);
327 }
328 }
329 }
330 }
331 }
332
333 /* Remove average force term */
334 if (!particles.empty()) {
335 Vector average_force = 0.0;
336 for (std::list<Particle::Particle>::const_iterator iter=particles.begin(); iter!=particles.end(); ++iter)
337 average_force += iter->Charge() * iter->Field();
338 const vmg_int& npl = MG::GetFactory().GetObjectStorageVal<vmg_int>("PARTICLE_NUM_LOCAL");
339 const vmg_int num_particles_global = comm.GlobalSum(npl);
340 average_force /= num_particles_global;
341 comm.GlobalSumArray(average_force.vec(), 3);
342 for (std::list<Particle::Particle>::iterator iter=particles.begin(); iter!=particles.end(); ++iter)
343 iter->Field() -= average_force / iter->Charge();
344 }
345
346 comm.CommParticlesBack(particles);
347
348 vmg_float* q = factory.GetObjectStorageArray<vmg_float>("PARTICLE_CHARGE_ARRAY");
349 const vmg_int& num_particles_local = factory.GetObjectStorageVal<vmg_int>("PARTICLE_NUM_LOCAL");
350 const vmg_float* p = factory.GetObjectStorageArray<vmg_float>("PARTICLE_POTENTIAL_ARRAY");
351// const vmg_float* f = factory.GetObjectStorageArray<vmg_float>("PARTICLE_FIELD_ARRAY");
352
353
354 e_long = comm.GlobalSumRoot(e_long);
355 e_short_peak = comm.GlobalSumRoot(e_short_peak);
356 e_short_spline = comm.GlobalSumRoot(e_short_spline);
357 e_self = comm.GlobalSumRoot(e_self);
358
359 for (int j=0; j<num_particles_local; ++j)
360 e += 0.5 * p[j] * q[j];
361 e = comm.GlobalSumRoot(e);
362
363 comm.PrintOnce(Debug, "E_long: %e", e_long);
364 comm.PrintOnce(Debug, "E_short_peak: %e", e_short_peak);
365 comm.PrintOnce(Debug, "E_short_spline: %e", e_short_spline);
366 comm.PrintOnce(Debug, "E_self: %e", e_self);
367 comm.PrintOnce(Debug, "E_total: %e", e);
368 comm.PrintOnce(Debug, "E_total*: %e", e_long + e_short_peak + e_short_spline - e_self);
369
370 returndata.nuclei_long = e_long;
371 returndata.electron_long = e_long;
372}
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