source: src/Parser/PcpParser.cpp@ 50e4e5

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Last change on this file since 50e4e5 was 42127c, checked in by Frederik Heber <heber@…>, 13 years ago

Extracted definition of MoleculeListClass and put into own header module.

  • Property mode set to 100644
File size: 36.2 KB
Line 
1/*
2 * Project: MoleCuilder
3 * Description: creates and alters molecular systems
4 * Copyright (C) 2010 University of Bonn. All rights reserved.
5 * Please see the LICENSE file or "Copyright notice" in builder.cpp for details.
6 */
7
8/*
9 * PcpParser.cpp
10 *
11 * Created on: 12.06.2010
12 * Author: heber
13 */
14
15// include config.h
16#ifdef HAVE_CONFIG_H
17#include <config.h>
18#endif
19
20#include "CodePatterns/MemDebug.hpp"
21
22#include <iostream>
23#include <iomanip>
24
25//#include "Actions/FragmentationAction/SubgraphDissectionAction.hpp"
26#include "atom.hpp"
27#include "config.hpp"
28#include "ConfigFileBuffer.hpp"
29#include "Element/element.hpp"
30#include "CodePatterns/Assert.hpp"
31#include "CodePatterns/Log.hpp"
32#include "CodePatterns/Verbose.hpp"
33#include "LinearAlgebra/RealSpaceMatrix.hpp"
34#include "molecule.hpp"
35#include "MoleculeListClass.hpp"
36#include "PcpParser.hpp"
37#include "Element/periodentafel.hpp"
38#include "ThermoStatContainer.hpp"
39#include "World.hpp"
40#include "Box.hpp"
41
42
43// declare specialized static variables
44const std::string FormatParserTrait<pcp>::name = "pcp";
45const std::string FormatParserTrait<pcp>::suffix = "conf";
46const ParserTypes FormatParserTrait<pcp>::type = pcp;
47
48FormatParser< pcp >::StructParallelization::StructParallelization() :
49 ProcPEGamma(8),
50 ProcPEPsi(1)
51{}
52
53FormatParser< pcp >::StructParallelization::~StructParallelization()
54{}
55
56FormatParser< pcp >::StructPaths::StructPaths() :
57 databasepath(NULL),
58 configname(NULL),
59 mainname(NULL),
60 defaultpath(NULL),
61 pseudopotpath(NULL)
62{}
63
64FormatParser< pcp >::StructPaths::~StructPaths()
65{}
66
67FormatParser< pcp >::StructSwitches::StructSwitches() :
68 DoConstrainedMD(0),
69 DoOutVis(0),
70 DoOutMes(1),
71 DoOutNICS(0),
72 DoOutOrbitals(0),
73 DoOutCurrent(0),
74 DoFullCurrent(0),
75 DoPerturbation(0),
76 DoWannier(0)
77{}
78
79FormatParser< pcp >::StructSwitches::~StructSwitches()
80{}
81
82FormatParser< pcp >::StructLocalizedOrbitals::StructLocalizedOrbitals() :
83 CommonWannier(0),
84 SawtoothStart(0.01),
85 VectorPlane(0),
86 VectorCut(0),
87 UseAddGramSch(1),
88 Seed(1),
89 EpsWannier(1e-7)
90{}
91
92FormatParser< pcp >::StructLocalizedOrbitals::~StructLocalizedOrbitals()
93{}
94
95FormatParser< pcp >::StructStepCounts::StructStepCounts() :
96 MaxMinStopStep(1),
97 InitMaxMinStopStep(1),
98 OutVisStep(10),
99 OutSrcStep(5),
100 MaxPsiStep(0),
101 MaxOuterStep(0),
102 MaxMinStep(100),
103 RelEpsTotalEnergy(1e-07),
104 RelEpsKineticEnergy(1e-05),
105 MaxMinGapStopStep(0),
106 MaxInitMinStep(100),
107 InitRelEpsTotalEnergy(1e-05),
108 InitRelEpsKineticEnergy(0.0001),
109 InitMaxMinGapStopStep(0)
110{}
111
112FormatParser< pcp >::StructStepCounts::~StructStepCounts()
113{}
114
115FormatParser< pcp >::StructPlaneWaveSpecifics::StructPlaneWaveSpecifics() :
116 PsiType(0),
117 MaxPsiDouble(0),
118 PsiMaxNoUp(0),
119 PsiMaxNoDown(0),
120 ECut(128),
121 MaxLevel(5),
122 RiemannTensor(0),
123 LevRFactor(0),
124 RiemannLevel(0),
125 Lev0Factor(2),
126 RTActualUse(0),
127 AddPsis(0),
128 RCut(20)
129{}
130
131FormatParser< pcp >::StructPlaneWaveSpecifics::~StructPlaneWaveSpecifics()
132{}
133
134/** Constructor of PcpParser.
135 *
136 */
137FormatParser< pcp >::FormatParser() :
138 FormatParser_common(NULL),
139 FastParsing(false),
140 Deltat(0.01),
141 IsAngstroem(1),
142 RelativeCoord(0),
143 StructOpt(0),
144 MaxTypes(0)
145{}
146
147/** Destructor of PcpParser.
148 *
149 */
150FormatParser< pcp >::~FormatParser()
151{}
152
153void FormatParser< pcp >::load(std::istream* file)
154{
155 if (file->fail()) {
156 DoeLog(1) && (eLog()<< Verbose(1) << "could not access given file" << endl);
157 return;
158 }
159
160 // ParseParameterFile
161 class ConfigFileBuffer *FileBuffer = new ConfigFileBuffer();
162 FileBuffer->InitFileBuffer(file);
163
164 /* Oeffne Hauptparameterdatei */
165 int di = 0;
166 double BoxLength[9];
167 string zeile;
168 string dummy;
169 int verbose = 0;
170
171 ParseThermostats(FileBuffer);
172
173 /* Namen einlesen */
174
175 // 1. parse in options
176 if (!ParseForParameter(verbose,FileBuffer, "mainname", 0, 1, 1, string_type, (Paths.mainname), 1, critical)) {
177 DoeLog(1) && (eLog()<< Verbose(1) << "mainname is missing, is file empty?" << endl);
178 } else {
179 ParseForParameter(verbose,FileBuffer, "defaultpath", 0, 1, 1, string_type, (Paths.defaultpath), 1, critical);
180 ParseForParameter(verbose,FileBuffer, "pseudopotpath", 0, 1, 1, string_type, (Paths.pseudopotpath), 1, critical);
181 ParseForParameter(verbose,FileBuffer,"ProcPEGamma", 0, 1, 1, int_type, &(Parallelization.ProcPEGamma), 1, critical);
182 ParseForParameter(verbose,FileBuffer,"ProcPEPsi", 0, 1, 1, int_type, &(Parallelization.ProcPEPsi), 1, critical);
183
184 if (!ParseForParameter(verbose,FileBuffer,"Seed", 0, 1, 1, int_type, &(LocalizedOrbitals.Seed), 1, optional))
185 LocalizedOrbitals.Seed = 1;
186
187 if(!ParseForParameter(verbose,FileBuffer,"DoOutOrbitals", 0, 1, 1, int_type, &(Switches.DoOutOrbitals), 1, optional)) {
188 Switches.DoOutOrbitals = 0;
189 } else {
190 if (Switches.DoOutOrbitals < 0) Switches.DoOutOrbitals = 0;
191 if (Switches.DoOutOrbitals > 1) Switches.DoOutOrbitals = 1;
192 }
193 ParseForParameter(verbose,FileBuffer,"DoOutVis", 0, 1, 1, int_type, &(Switches.DoOutVis), 1, critical);
194 if (Switches.DoOutVis < 0) Switches.DoOutVis = 0;
195 if (Switches.DoOutVis > 1) Switches.DoOutVis = 1;
196 if (!ParseForParameter(verbose,FileBuffer,"VectorPlane", 0, 1, 1, int_type, &(LocalizedOrbitals.VectorPlane), 1, optional))
197 LocalizedOrbitals.VectorPlane = -1;
198 if (!ParseForParameter(verbose,FileBuffer,"VectorCut", 0, 1, 1, double_type, &(LocalizedOrbitals.VectorCut), 1, optional))
199 LocalizedOrbitals.VectorCut = 0.;
200 ParseForParameter(verbose,FileBuffer,"DoOutMes", 0, 1, 1, int_type, &(Switches.DoOutMes), 1, critical);
201 if (Switches.DoOutMes < 0) Switches.DoOutMes = 0;
202 if (Switches.DoOutMes > 1) Switches.DoOutMes = 1;
203 if (!ParseForParameter(verbose,FileBuffer,"DoOutCurr", 0, 1, 1, int_type, &(Switches.DoOutCurrent), 1, optional))
204 Switches.DoOutCurrent = 0;
205 if (Switches.DoOutCurrent < 0) Switches.DoOutCurrent = 0;
206 if (Switches.DoOutCurrent > 1) Switches.DoOutCurrent = 1;
207 ParseForParameter(verbose,FileBuffer,"AddGramSch", 0, 1, 1, int_type, &(LocalizedOrbitals.UseAddGramSch), 1, critical);
208 if (LocalizedOrbitals.UseAddGramSch < 0) LocalizedOrbitals.UseAddGramSch = 0;
209 if (LocalizedOrbitals.UseAddGramSch > 2) LocalizedOrbitals.UseAddGramSch = 2;
210 if(!ParseForParameter(verbose,FileBuffer,"DoWannier", 0, 1, 1, int_type, &(Switches.DoWannier), 1, optional)) {
211 Switches.DoWannier = 0;
212 } else {
213 if (Switches.DoWannier < 0) Switches.DoWannier = 0;
214 if (Switches.DoWannier > 1) Switches.DoWannier = 1;
215 }
216 if(!ParseForParameter(verbose,FileBuffer,"CommonWannier", 0, 1, 1, int_type, &(LocalizedOrbitals.CommonWannier), 1, optional)) {
217 LocalizedOrbitals.CommonWannier = 0;
218 } else {
219 if (LocalizedOrbitals.CommonWannier < 0) LocalizedOrbitals.CommonWannier = 0;
220 if (LocalizedOrbitals.CommonWannier > 4) LocalizedOrbitals.CommonWannier = 4;
221 }
222 if(!ParseForParameter(verbose,FileBuffer,"SawtoothStart", 0, 1, 1, double_type, &(LocalizedOrbitals.SawtoothStart), 1, optional)) {
223 LocalizedOrbitals.SawtoothStart = 0.01;
224 } else {
225 if (LocalizedOrbitals.SawtoothStart < 0.) LocalizedOrbitals.SawtoothStart = 0.;
226 if (LocalizedOrbitals.SawtoothStart > 1.) LocalizedOrbitals.SawtoothStart = 1.;
227 }
228
229 if (ParseForParameter(verbose,FileBuffer,"DoConstrainedMD", 0, 1, 1, int_type, &(Switches.DoConstrainedMD), 1, optional))
230 if (Switches.DoConstrainedMD < 0)
231 Switches.DoConstrainedMD = 0;
232 ParseForParameter(verbose,FileBuffer,"MaxOuterStep", 0, 1, 1, int_type, &(StepCounts.MaxOuterStep), 1, critical);
233 if (!ParseForParameter(verbose,FileBuffer,"Deltat", 0, 1, 1, double_type, &(Deltat), 1, optional))
234 Deltat = 1;
235 ParseForParameter(verbose,FileBuffer,"OutVisStep", 0, 1, 1, int_type, &(StepCounts.OutVisStep), 1, optional);
236 ParseForParameter(verbose,FileBuffer,"OutSrcStep", 0, 1, 1, int_type, &(StepCounts.OutSrcStep), 1, optional);
237 ParseForParameter(verbose,FileBuffer,"TargetTemp", 0, 1, 1, double_type, &(World::getInstance().getThermostats()->TargetTemp), 1, optional);
238 //ParseForParameter(verbose,FileBuffer,"Thermostat", 0, 1, 1, int_type, &(ScaleTempStep), 1, optional);
239 if (!ParseForParameter(verbose,FileBuffer,"EpsWannier", 0, 1, 1, double_type, &(LocalizedOrbitals.EpsWannier), 1, optional))
240 LocalizedOrbitals.EpsWannier = 1e-8;
241
242 // stop conditions
243 //if (MaxOuterStep <= 0) MaxOuterStep = 1;
244 ParseForParameter(verbose,FileBuffer,"MaxPsiStep", 0, 1, 1, int_type, &(StepCounts.MaxPsiStep), 1, critical);
245 if (StepCounts.MaxPsiStep <= 0) StepCounts.MaxPsiStep = 3;
246
247 ParseForParameter(verbose,FileBuffer,"MaxMinStep", 0, 1, 1, int_type, &(StepCounts.MaxMinStep), 1, critical);
248 ParseForParameter(verbose,FileBuffer,"RelEpsTotalE", 0, 1, 1, double_type, &(StepCounts.RelEpsTotalEnergy), 1, critical);
249 ParseForParameter(verbose,FileBuffer,"RelEpsKineticE", 0, 1, 1, double_type, &(StepCounts.RelEpsKineticEnergy), 1, critical);
250 ParseForParameter(verbose,FileBuffer,"MaxMinStopStep", 0, 1, 1, int_type, &(StepCounts.MaxMinStopStep), 1, critical);
251 ParseForParameter(verbose,FileBuffer,"MaxMinGapStopStep", 0, 1, 1, int_type, &(StepCounts.MaxMinGapStopStep), 1, critical);
252 if (StepCounts.MaxMinStep <= 0) StepCounts.MaxMinStep = StepCounts.MaxPsiStep;
253 if (StepCounts.MaxMinStopStep < 1) StepCounts.MaxMinStopStep = 1;
254 if (StepCounts.MaxMinGapStopStep < 1) StepCounts.MaxMinGapStopStep = 1;
255
256 ParseForParameter(verbose,FileBuffer,"MaxInitMinStep", 0, 1, 1, int_type, &(StepCounts.MaxInitMinStep), 1, critical);
257 ParseForParameter(verbose,FileBuffer,"InitRelEpsTotalE", 0, 1, 1, double_type, &(StepCounts.InitRelEpsTotalEnergy), 1, critical);
258 ParseForParameter(verbose,FileBuffer,"InitRelEpsKineticE", 0, 1, 1, double_type, &(StepCounts.InitRelEpsKineticEnergy), 1, critical);
259 ParseForParameter(verbose,FileBuffer,"InitMaxMinStopStep", 0, 1, 1, int_type, &(StepCounts.InitMaxMinStopStep), 1, critical);
260 ParseForParameter(verbose,FileBuffer,"InitMaxMinGapStopStep", 0, 1, 1, int_type, &(StepCounts.InitMaxMinGapStopStep), 1, critical);
261 if (StepCounts.MaxInitMinStep <= 0) StepCounts.MaxInitMinStep = StepCounts.MaxPsiStep;
262 if (StepCounts.InitMaxMinStopStep < 1) StepCounts.InitMaxMinStopStep = 1;
263 if (StepCounts.InitMaxMinGapStopStep < 1) StepCounts.InitMaxMinGapStopStep = 1;
264
265 // Unit cell and magnetic field
266 ParseForParameter(verbose,FileBuffer, "BoxLength", 0, 3, 3, lower_trigrid, BoxLength, 1, critical); /* Lattice->RealBasis */
267 double *cell_size = new double[6];
268 cell_size[0] = BoxLength[0];
269 cell_size[1] = BoxLength[3];
270 cell_size[2] = BoxLength[4];
271 cell_size[3] = BoxLength[6];
272 cell_size[4] = BoxLength[7];
273 cell_size[5] = BoxLength[8];
274 World::getInstance().setDomain(cell_size);
275 delete[] cell_size;
276 //if (1) fprintf(stderr,"\n");
277
278 ParseForParameter(verbose,FileBuffer,"DoPerturbation", 0, 1, 1, int_type, &(Switches.DoPerturbation), 1, optional);
279 ParseForParameter(verbose,FileBuffer,"DoOutNICS", 0, 1, 1, int_type, &(Switches.DoOutNICS), 1, optional);
280 if (!ParseForParameter(verbose,FileBuffer,"DoFullCurrent", 0, 1, 1, int_type, &(Switches.DoFullCurrent), 1, optional))
281 Switches.DoFullCurrent = 0;
282 if (Switches.DoFullCurrent < 0) Switches.DoFullCurrent = 0;
283 if (Switches.DoFullCurrent > 2) Switches.DoFullCurrent = 2;
284 if (Switches.DoOutNICS < 0) Switches.DoOutNICS = 0;
285 if (Switches.DoOutNICS > 2) Switches.DoOutNICS = 2;
286 if (Switches.DoPerturbation == 0) {
287 Switches.DoFullCurrent = 0;
288 Switches.DoOutNICS = 0;
289 }
290
291 ParseForParameter(verbose,FileBuffer,"ECut", 0, 1, 1, double_type, &(PlaneWaveSpecifics.ECut), 1, critical);
292 ParseForParameter(verbose,FileBuffer,"MaxLevel", 0, 1, 1, int_type, &(PlaneWaveSpecifics.MaxLevel), 1, critical);
293 ParseForParameter(verbose,FileBuffer,"Level0Factor", 0, 1, 1, int_type, &(PlaneWaveSpecifics.Lev0Factor), 1, critical);
294 if (PlaneWaveSpecifics.Lev0Factor < 2) {
295 PlaneWaveSpecifics.Lev0Factor = 2;
296 }
297 ParseForParameter(verbose,FileBuffer,"RiemannTensor", 0, 1, 1, int_type, &di, 1, critical);
298 if (di >= 0 && di < 2) {
299 PlaneWaveSpecifics.RiemannTensor = di;
300 } else {
301 cerr << "0 <= RiemanTensor < 2: 0 UseNotRT, 1 UseRT" << endl;
302 exit(1);
303 }
304 switch (PlaneWaveSpecifics.RiemannTensor) {
305 case 0: //UseNoRT
306 if (PlaneWaveSpecifics.MaxLevel < 2) {
307 PlaneWaveSpecifics.MaxLevel = 2;
308 }
309 PlaneWaveSpecifics.LevRFactor = 2;
310 PlaneWaveSpecifics.RTActualUse = 0;
311 break;
312 case 1: // UseRT
313 if (PlaneWaveSpecifics.MaxLevel < 3) {
314 PlaneWaveSpecifics.MaxLevel = 3;
315 }
316 ParseForParameter(verbose,FileBuffer,"RiemannLevel", 0, 1, 1, int_type, &(PlaneWaveSpecifics.RiemannLevel), 1, critical);
317 if (PlaneWaveSpecifics.RiemannLevel < 2) {
318 PlaneWaveSpecifics.RiemannLevel = 2;
319 }
320 if (PlaneWaveSpecifics.RiemannLevel > PlaneWaveSpecifics.MaxLevel-1) {
321 PlaneWaveSpecifics.RiemannLevel = PlaneWaveSpecifics.MaxLevel-1;
322 }
323 ParseForParameter(verbose,FileBuffer,"LevRFactor", 0, 1, 1, int_type, &(PlaneWaveSpecifics.LevRFactor), 1, critical);
324 if (PlaneWaveSpecifics.LevRFactor < 2) {
325 PlaneWaveSpecifics.LevRFactor = 2;
326 }
327 PlaneWaveSpecifics.Lev0Factor = 2;
328 PlaneWaveSpecifics.RTActualUse = 2;
329 break;
330 }
331 ParseForParameter(verbose,FileBuffer,"PsiType", 0, 1, 1, int_type, &di, 1, critical);
332 if (di >= 0 && di < 2) {
333 PlaneWaveSpecifics.PsiType = di;
334 } else {
335 cerr << "0 <= PsiType < 2: 0 UseSpinDouble, 1 UseSpinUpDown" << endl;
336 exit(1);
337 }
338 switch (PlaneWaveSpecifics.PsiType) {
339 case 0: // SpinDouble
340 ParseForParameter(verbose,FileBuffer,"MaxPsiDouble", 0, 1, 1, int_type, &(PlaneWaveSpecifics.MaxPsiDouble), 1, critical);
341 ParseForParameter(verbose,FileBuffer,"PsiMaxNoUp", 0, 1, 1, int_type, &(PlaneWaveSpecifics.PsiMaxNoUp), 1, optional);
342 ParseForParameter(verbose,FileBuffer,"PsiMaxNoDown", 0, 1, 1, int_type, &(PlaneWaveSpecifics.PsiMaxNoDown), 1, optional);
343 ParseForParameter(verbose,FileBuffer,"AddPsis", 0, 1, 1, int_type, &(PlaneWaveSpecifics.AddPsis), 1, optional);
344 break;
345 case 1: // SpinUpDown
346 if (Parallelization.ProcPEGamma % 2) Parallelization.ProcPEGamma*=2;
347 ParseForParameter(verbose,FileBuffer,"MaxPsiDouble", 0, 1, 1, int_type, &(PlaneWaveSpecifics.MaxPsiDouble), 1, optional);
348 ParseForParameter(verbose,FileBuffer,"PsiMaxNoUp", 0, 1, 1, int_type, &(PlaneWaveSpecifics.PsiMaxNoUp), 1, critical);
349 ParseForParameter(verbose,FileBuffer,"PsiMaxNoDown", 0, 1, 1, int_type, &(PlaneWaveSpecifics.PsiMaxNoDown), 1, critical);
350 ParseForParameter(verbose,FileBuffer,"AddPsis", 0, 1, 1, int_type, &(PlaneWaveSpecifics.AddPsis), 1, optional);
351 break;
352 }
353
354 // IonsInitRead
355
356 ParseForParameter(verbose,FileBuffer,"RCut", 0, 1, 1, double_type, &(PlaneWaveSpecifics.RCut), 1, critical);
357 ParseForParameter(verbose,FileBuffer,"IsAngstroem", 0, 1, 1, int_type, &(IsAngstroem), 1, critical);
358 ParseForParameter(verbose,FileBuffer,"MaxTypes", 0, 1, 1, int_type, &(MaxTypes), 1, critical);
359 if (!ParseForParameter(verbose,FileBuffer,"RelativeCoord", 0, 1, 1, int_type, &(RelativeCoord) , 1, optional))
360 RelativeCoord = 0;
361 if (!ParseForParameter(verbose,FileBuffer,"StructOpt", 0, 1, 1, int_type, &(StructOpt), 1, optional))
362 StructOpt = 0;
363 }
364
365 // 3. parse the molecule in
366 molecule *mol = World::getInstance().createMolecule();
367 mol->ActiveFlag = true;
368 // TODO: Remove the insertion into molecule when saving does not depend on them anymore. Also, remove molecule.hpp include
369 World::getInstance().getMolecules()->insert(mol);
370 LoadMolecule(mol, FileBuffer, World::getInstance().getPeriode(), FastParsing);
371
372 // refresh atom::nr and atom::name
373 mol->getAtomCount();
374
375 // 4. dissect the molecule into connected subgraphs
376 // don't do this here ...
377 //FragmentationSubgraphDissection();
378 //delete(mol);
379
380 delete(FileBuffer);
381}
382
383/**
384 * Saves the \a atoms into as a PCP file.
385 *
386 * \param file where to save the state
387 * \param atoms atoms to store
388 */
389void FormatParser< pcp >::save(std::ostream* file, const std::vector<atom *> &atoms)
390{
391 DoLog(0) && (Log() << Verbose(0) << "Saving changes to pcp." << std::endl);
392
393 const RealSpaceMatrix &domain = World::getInstance().getDomain().getM();
394 ThermoStatContainer *Thermostats = World::getInstance().getThermostats();
395 if (!file->fail()) {
396 // calculate number of Psis
397 CalculateOrbitals(atoms);
398 *file << "# ParallelCarParinello - main configuration file - created with molecuilder" << endl;
399 *file << endl;
400 if (Paths.mainname != NULL)
401 *file << "mainname\t" << Paths.mainname << "\t# programm name (for runtime files)" << endl;
402 else
403 *file << "mainname\tpcp\t# programm name (for runtime files)" << endl;
404 if (Paths.defaultpath != NULL)
405 *file << "defaultpath\t" << Paths.defaultpath << "\t# where to put files during runtime" << endl;
406 else
407 *file << "defaultpath\tnot specified\t# where to put files during runtime" << endl;
408 if (Paths.pseudopotpath != NULL)
409 *file << "pseudopotpath\t" << Paths.pseudopotpath << "\t# where to find pseudopotentials" << endl;
410 else
411 *file << "pseudopotpath\tnot specified\t# where to find pseudopotentials" << endl;
412 *file << endl;
413 *file << "ProcPEGamma\t" << Parallelization.ProcPEGamma << "\t# for parallel computing: share constants" << endl;
414 *file << "ProcPEPsi\t" << Parallelization.ProcPEPsi << "\t# for parallel computing: share wave functions" << endl;
415 *file << "DoOutVis\t" << Switches.DoOutVis << "\t# Output data for OpenDX" << endl;
416 *file << "DoOutMes\t" << Switches.DoOutMes << "\t# Output data for measurements" << endl;
417 *file << "DoOutOrbitals\t" << Switches.DoOutOrbitals << "\t# Output all Orbitals" << endl;
418 *file << "DoOutCurr\t" << Switches.DoOutCurrent << "\t# Ouput current density for OpenDx" << endl;
419 *file << "DoOutNICS\t" << Switches.DoOutNICS << "\t# Output Nucleus independent current shieldings" << endl;
420 *file << "DoPerturbation\t" << Switches.DoPerturbation << "\t# Do perturbation calculate and determine susceptibility and shielding" << endl;
421 *file << "DoFullCurrent\t" << Switches.DoFullCurrent << "\t# Do full perturbation" << endl;
422 *file << "DoConstrainedMD\t" << Switches.DoConstrainedMD << "\t# Do perform a constrained (>0, relating to current MD step) instead of unconstrained (0) MD" << endl;
423 ASSERT(Thermostats != NULL, "FormatParser< pcp >::save() - Thermostats not initialized!");
424 *file << "Thermostat\t" << Thermostats->activeThermostat->name() << "\t";
425 *file << Thermostats->activeThermostat->writeParams();
426 *file << "\t# Which Thermostat and its parameters to use in MD case." << endl;
427 *file << "CommonWannier\t" << LocalizedOrbitals.CommonWannier << "\t# Put virtual centers at indivual orbits, all common, merged by variance, to grid point, to cell center" << endl;
428 *file << "SawtoothStart\t" << LocalizedOrbitals.SawtoothStart << "\t# Absolute value for smooth transition at cell border " << endl;
429 *file << "VectorPlane\t" << LocalizedOrbitals.VectorPlane << "\t# Cut plane axis (x, y or z: 0,1,2) for two-dim current vector plot" << endl;
430 *file << "VectorCut\t" << LocalizedOrbitals.VectorCut << "\t# Cut plane axis value" << endl;
431 *file << "AddGramSch\t" << LocalizedOrbitals.UseAddGramSch << "\t# Additional GramSchmidtOrtogonalization to be safe" << endl;
432 *file << "Seed\t\t" << LocalizedOrbitals.Seed << "\t# initial value for random seed for Psi coefficients" << endl;
433 *file << endl;
434 *file << "MaxOuterStep\t" << StepCounts.MaxOuterStep << "\t# number of MolecularDynamics/Structure optimization steps" << endl;
435 *file << "Deltat\t" << Deltat << "\t# time per MD step" << endl;
436 *file << "OutVisStep\t" << StepCounts.OutVisStep << "\t# Output visual data every ...th step" << endl;
437 *file << "OutSrcStep\t" << StepCounts.OutSrcStep << "\t# Output \"restart\" data every ..th step" << endl;
438 *file << "TargetTemp\t" << Thermostats->TargetTemp << "\t# Target temperature" << endl;
439 *file << "MaxPsiStep\t" << StepCounts.MaxPsiStep << "\t# number of Minimisation steps per state (0 - default)" << endl;
440 *file << "EpsWannier\t" << LocalizedOrbitals.EpsWannier << "\t# tolerance value for spread minimisation of orbitals" << endl;
441 *file << endl;
442 *file << "# Values specifying when to stop" << endl;
443 *file << "MaxMinStep\t" << StepCounts.MaxMinStep << "\t# Maximum number of steps" << endl;
444 *file << "RelEpsTotalE\t" << StepCounts.RelEpsTotalEnergy << "\t# relative change in total energy" << endl;
445 *file << "RelEpsKineticE\t" << StepCounts.RelEpsKineticEnergy << "\t# relative change in kinetic energy" << endl;
446 *file << "MaxMinStopStep\t" << StepCounts.MaxMinStopStep << "\t# check every ..th steps" << endl;
447 *file << "MaxMinGapStopStep\t" << StepCounts.MaxMinGapStopStep << "\t# check every ..th steps" << endl;
448 *file << endl;
449 *file << "# Values specifying when to stop for INIT, otherwise same as above" << endl;
450 *file << "MaxInitMinStep\t" << StepCounts.MaxInitMinStep << "\t# Maximum number of steps" << endl;
451 *file << "InitRelEpsTotalE\t" << StepCounts.InitRelEpsTotalEnergy << "\t# relative change in total energy" << endl;
452 *file << "InitRelEpsKineticE\t" << StepCounts.InitRelEpsKineticEnergy << "\t# relative change in kinetic energy" << endl;
453 *file << "InitMaxMinStopStep\t" << StepCounts.InitMaxMinStopStep << "\t# check every ..th steps" << endl;
454 *file << "InitMaxMinGapStopStep\t" << StepCounts.InitMaxMinGapStopStep << "\t# check every ..th steps" << endl;
455 *file << endl;
456 *file << "BoxLength\t\t\t# (Length of a unit cell)" << endl;
457 *file << domain.at(0,0) << "\t" << endl;
458 *file << domain.at(1,0) << "\t" << domain.at(1,1) << "\t" << endl;
459 *file << domain.at(2,0) << "\t" << domain.at(2,1) << "\t" << domain.at(2,2) << "\t" << endl;
460 // FIXME
461 *file << endl;
462 *file << "ECut\t\t" << PlaneWaveSpecifics.ECut << "\t# energy cutoff for discretization in Hartrees" << endl;
463 *file << "MaxLevel\t" << PlaneWaveSpecifics.MaxLevel << "\t# number of different levels in the code, >=2" << endl;
464 *file << "Level0Factor\t" << PlaneWaveSpecifics.Lev0Factor << "\t# factor by which node number increases from S to 0 level" << endl;
465 *file << "RiemannTensor\t" << PlaneWaveSpecifics.RiemannTensor << "\t# (Use metric)" << endl;
466 switch (PlaneWaveSpecifics.RiemannTensor) {
467 case 0: //UseNoRT
468 break;
469 case 1: // UseRT
470 *file << "RiemannLevel\t" << PlaneWaveSpecifics.RiemannLevel << "\t# Number of Riemann Levels" << endl;
471 *file << "LevRFactor\t" << PlaneWaveSpecifics.LevRFactor << "\t# factor by which node number increases from 0 to R level from" << endl;
472 break;
473 }
474 *file << "PsiType\t\t" << PlaneWaveSpecifics.PsiType << "\t# 0 - doubly occupied, 1 - SpinUp,SpinDown" << endl;
475 *file << "MaxPsiDouble\t" << PlaneWaveSpecifics.MaxPsiDouble << "\t# here: specifying both maximum number of SpinUp- and -Down-states" << endl;
476 *file << "PsiMaxNoUp\t" << PlaneWaveSpecifics.PsiMaxNoUp << "\t# here: specifying maximum number of SpinUp-states" << endl;
477 *file << "PsiMaxNoDown\t" << PlaneWaveSpecifics.PsiMaxNoDown << "\t# here: specifying maximum number of SpinDown-states" << endl;
478 *file << "AddPsis\t\t" << PlaneWaveSpecifics.AddPsis << "\t# Additional unoccupied Psis for bandgap determination" << endl;
479 *file << endl;
480 *file << "RCut\t\t" << PlaneWaveSpecifics.RCut << "\t# R-cut for the ewald summation" << endl;
481 *file << "StructOpt\t" << StructOpt << "\t# Do structure optimization beforehand" << endl;
482 *file << "IsAngstroem\t" << IsAngstroem << "\t# 0 - Bohr, 1 - Angstroem" << endl;
483 *file << "RelativeCoord\t" << RelativeCoord << "\t# whether ion coordinates are relative (1) or absolute (0)" << endl;
484 map<int, int> ZtoIndexMap;
485 OutputElements(file, atoms, ZtoIndexMap);
486 OutputAtoms(file, atoms, ZtoIndexMap);
487 } else {
488 DoeLog(1) && (eLog()<< Verbose(1) << "Cannot open output file." << endl);
489 }
490}
491
492
493/** Counts necessary number of valence electrons and returns number and SpinType.
494 * \param &allatoms all atoms to store away
495 */
496void FormatParser< pcp >::CalculateOrbitals(const std::vector<atom *> &allatoms)
497{
498 PlaneWaveSpecifics.MaxPsiDouble = PlaneWaveSpecifics.PsiMaxNoDown = PlaneWaveSpecifics.PsiMaxNoUp = PlaneWaveSpecifics.PsiType = 0;
499 for (vector<atom *>::const_iterator runner = allatoms.begin(); runner != allatoms.end(); ++runner) {
500 PlaneWaveSpecifics.MaxPsiDouble += (*runner)->getType()->getNoValenceOrbitals();
501 }
502 cout << PlaneWaveSpecifics.MaxPsiDouble << endl;
503 PlaneWaveSpecifics.PsiMaxNoDown = PlaneWaveSpecifics.MaxPsiDouble/2 + (PlaneWaveSpecifics.MaxPsiDouble % 2);
504 PlaneWaveSpecifics.PsiMaxNoUp = PlaneWaveSpecifics.MaxPsiDouble/2;
505 PlaneWaveSpecifics.MaxPsiDouble /= 2;
506 PlaneWaveSpecifics.PsiType = (PlaneWaveSpecifics.PsiMaxNoDown == PlaneWaveSpecifics.PsiMaxNoUp) ? 0 : 1;
507 if ((PlaneWaveSpecifics.PsiType == 1) && (Parallelization.ProcPEPsi < 2) && ((PlaneWaveSpecifics.PsiMaxNoDown != 1) || (PlaneWaveSpecifics.PsiMaxNoUp != 0))) {
508 Parallelization.ProcPEGamma /= 2;
509 Parallelization.ProcPEPsi *= 2;
510 } else {
511 Parallelization.ProcPEGamma *= Parallelization.ProcPEPsi;
512 Parallelization.ProcPEPsi = 1;
513 }
514 cout << PlaneWaveSpecifics.PsiMaxNoDown << ">" << PlaneWaveSpecifics.PsiMaxNoUp << endl;
515 if (PlaneWaveSpecifics.PsiMaxNoDown > PlaneWaveSpecifics.PsiMaxNoUp) {
516 StepCounts.InitMaxMinStopStep = StepCounts.MaxMinStopStep = PlaneWaveSpecifics.PsiMaxNoDown;
517 cout << PlaneWaveSpecifics.PsiMaxNoDown << " " << StepCounts.InitMaxMinStopStep << endl;
518 } else {
519 StepCounts.InitMaxMinStopStep = StepCounts.MaxMinStopStep = PlaneWaveSpecifics.PsiMaxNoUp;
520 cout << PlaneWaveSpecifics.PsiMaxNoUp << " " << StepCounts.InitMaxMinStopStep << endl;
521 }
522};
523
524/** Prints MaxTypes and list of elements to strea,
525 * \param *file output stream
526 * \param &allatoms vector of all atoms in the system, such as by World::getAllAtoms()
527 * \param &ZtoIndexMap map of which atoms belong to which ion number
528 */
529void FormatParser< pcp >::OutputElements(ostream *file, const std::vector<atom *> &allatoms, map<int, int> &ZtoIndexMap)
530{
531 map<int, int> PresentElements;
532 pair < map<int, int>::iterator, bool > Inserter;
533 // insert all found elements into the map
534 for (vector<atom *>::const_iterator AtomRunner = allatoms.begin();AtomRunner != allatoms.end();++AtomRunner) {
535 Inserter = PresentElements.insert(pair<int, int>((*AtomRunner)->getType()->getAtomicNumber(), 1));
536 if (!Inserter.second) // increase if present
537 Inserter.first->second += 1;
538 }
539 // print total element count
540 *file << "MaxTypes\t" << PresentElements.size() << "\t# maximum number of different ion types" << endl;
541 *file << endl;
542 // print element list
543 *file << "# Ion type data (PP = PseudoPotential, Z = atomic number)" << endl;
544 *file << "#Ion_TypeNr.\tAmount\tZ\tRGauss\tL_Max(PP)L_Loc(PP)IonMass\t# chemical name, symbol" << endl;
545 // elements are due to map sorted by Z value automatically, hence just count through them
546 int counter = 1;
547 for(map<int, int>::const_iterator iter=PresentElements.begin(); iter!=PresentElements.end();++iter) {
548 const element * const elemental = World::getInstance().getPeriode()->FindElement(iter->first);
549 ZtoIndexMap.insert( pair<int,int> (iter->first, counter) );
550 *file << "Ion_Type" << counter++ << "\t" << iter->second << "\t" << elemental->getAtomicNumber() << "\t1.0\t3\t3\t" << fixed << setprecision(11) << showpoint << elemental->getMass() << "\t" << elemental->getName() << "\t" << elemental->getSymbol() <<endl;
551 }
552}
553
554/** Output all atoms one per line.
555 * \param *file output stream
556 * \param &allatoms vector of all atoms in the system, such as by World::getAllAtoms()
557 * \param &ZtoIndexMap map of which atoms belong to which ion number
558 */
559void FormatParser< pcp >::OutputAtoms(ostream *file, const std::vector<atom *> &allatoms, map<int, int> &ZtoIndexMap)
560{
561 *file << "#Ion_TypeNr._Nr.R[0] R[1] R[2] MoveType (0 MoveIon, 1 FixedIon)" << endl;
562 map<int, int> ZtoCountMap;
563 map<atom *, int> AtomtoCountMap;
564 pair < map<int, int>::iterator, bool > Inserter;
565 bool ContinueStatus = true;
566 bool AddNewLine = false;
567 size_t step = 0;
568 do {
569 int nr = 0;
570 ContinueStatus = false;
571 for (vector<atom *>::const_iterator AtomRunner = allatoms.begin();AtomRunner != allatoms.end();++AtomRunner) {
572 if ((*AtomRunner)->getTrajectorySize() > step) {
573 if (step == 0) { // fill list only on first step
574 Inserter = ZtoCountMap.insert( pair<int, int>((*AtomRunner)->getType()->getAtomicNumber(), 1) );
575 if (!Inserter.second)
576 Inserter.first->second += 1;
577 AtomtoCountMap.insert( make_pair((*AtomRunner), Inserter.first->second) );
578 }
579 if (AddNewLine) {
580 AddNewLine = false;
581 *file << endl;
582 }
583 const int Z = (*AtomRunner)->getType()->getAtomicNumber();
584 *file << "Ion_Type" << ZtoIndexMap[Z] << "_" << AtomtoCountMap[(*AtomRunner)] << "\t" << fixed << setprecision(9) << showpoint;
585 *file << (*AtomRunner)->atStep(0, step)
586 << "\t" << (*AtomRunner)->atStep(1,step)
587 << "\t" << (*AtomRunner)->atStep(2,step);
588 *file << "\t" << (int)((*AtomRunner)->getFixedIon());
589 if ((*AtomRunner)->getAtomicVelocityAtStep(step).Norm() > MYEPSILON)
590 *file << "\t" << scientific << setprecision(6)
591 << (*AtomRunner)->getAtomicVelocityAtStep(step)[0] << "\t"
592 << (*AtomRunner)->getAtomicVelocityAtStep(step)[1] << "\t"
593 << (*AtomRunner)->getAtomicVelocityAtStep(step)[2] << "\t";
594 *file << " # molecule nr " << nr++ << endl;
595 ContinueStatus = true; // as long as a single atom still has trajectory points, continue
596 }
597 }
598 ++step;
599 if (ContinueStatus)
600 AddNewLine = true;
601 } while (ContinueStatus);
602}
603
604/** Reading of Thermostat related values from parameter file.
605 * \param *fb file buffer containing the config file
606 */
607void FormatParser< pcp >::ParseThermostats(class ConfigFileBuffer * const fb)
608{
609 char * const thermo = new char[12];
610 const int verbose = 0;
611 class ThermoStatContainer *Thermostats = World::getInstance().getThermostats();
612
613 // read desired Thermostat from file along with needed additional parameters
614 if (ParseForParameter(verbose,fb,"Thermostat", 0, 1, 1, string_type, thermo, 1, optional)) {
615 Thermostats->makeActive(thermo,fb);
616 } else {
617 if ((Thermostats->TargetTemp != 0))
618 DoLog(2) && (Log() << Verbose(2) << "No thermostat chosen despite finite temperature MD, falling back to None." << endl);
619 Thermostats->chooseNone();
620 }
621 delete[](thermo);
622};
623
624bool FormatParser< pcp >::operator==(const FormatParser< pcp >& b) const
625{
626 ASSERT(Parallelization.ProcPEGamma == b.Parallelization.ProcPEGamma, "PcpParser ==: ProcPEGamma not");
627 ASSERT(Parallelization.ProcPEPsi == b.Parallelization.ProcPEPsi, "PcpParser ==: ProcPEPsi not");
628
629 if ((Paths.databasepath != NULL) && (b.Paths.databasepath != NULL))
630 ASSERT(strcmp(Paths.databasepath, b.Paths.databasepath), "PcpParser ==: databasepath not");
631 if ((Paths.configname != NULL) && (b.Paths.configname != NULL))
632 ASSERT(strcmp(Paths.configname, b.Paths.configname), "PcpParser ==: configname not");
633 if ((Paths.mainname != NULL) && (b.Paths.mainname != NULL))
634 ASSERT(strcmp(Paths.mainname, b.Paths.mainname), "PcpParser ==: mainname not");
635 if ((Paths.defaultpath != NULL) && (b.Paths.defaultpath != NULL))
636 ASSERT(strcmp(Paths.defaultpath, b.Paths.defaultpath), "PcpParser ==: defaultpath not");
637 if ((Paths.pseudopotpath != NULL) && (b.Paths.pseudopotpath != NULL))
638 ASSERT(strcmp(Paths.pseudopotpath, b.Paths.pseudopotpath), "PcpParser ==: pseudopotpath not");
639
640 ASSERT(Switches.DoConstrainedMD == b.Switches.DoConstrainedMD, "PcpParser ==: DoConstrainedMD not");
641 ASSERT(Switches.DoOutVis == b.Switches.DoOutVis, "PcpParser ==: DoOutVis not");
642 ASSERT(Switches.DoOutMes == b.Switches.DoOutMes, "PcpParser ==: DoOutMes not");
643 ASSERT(Switches.DoOutNICS == b.Switches.DoOutNICS, "PcpParser ==: DoOutNICS not");
644 ASSERT(Switches.DoOutOrbitals == b.Switches.DoOutOrbitals, "PcpParser ==: DoOutOrbitals not");
645 ASSERT(Switches.DoOutCurrent == b.Switches.DoOutCurrent, "PcpParser ==: DoOutCurrent not");
646 ASSERT(Switches.DoFullCurrent == b.Switches.DoFullCurrent, "PcpParser ==: DoFullCurrent not");
647 ASSERT(Switches.DoPerturbation == b.Switches.DoPerturbation, "PcpParser ==: DoPerturbation not");
648 ASSERT(Switches.DoWannier == b.Switches.DoWannier, "PcpParser ==: DoWannier not");
649
650 ASSERT(LocalizedOrbitals.CommonWannier == b.LocalizedOrbitals.CommonWannier, "PcpParser ==: CommonWannier not");
651 ASSERT(LocalizedOrbitals.SawtoothStart == b.LocalizedOrbitals.SawtoothStart, "PcpParser ==: SawtoothStart not");
652 ASSERT(LocalizedOrbitals.VectorPlane == b.LocalizedOrbitals.VectorPlane, "PcpParser ==: VectorPlane not");
653 ASSERT(LocalizedOrbitals.VectorCut == b.LocalizedOrbitals.VectorCut, "PcpParser ==: VectorCut not");
654 ASSERT(LocalizedOrbitals.UseAddGramSch == b.LocalizedOrbitals.UseAddGramSch, "PcpParser ==: UseAddGramSch not");
655 ASSERT(LocalizedOrbitals.Seed == b.LocalizedOrbitals.Seed, "PcpParser ==: Seed not");
656 ASSERT(LocalizedOrbitals.EpsWannier == b.LocalizedOrbitals.EpsWannier, "PcpParser ==: EpsWannier not");
657
658 ASSERT(StepCounts.MaxMinStopStep == b.StepCounts.MaxMinStopStep, "PcpParser ==: MaxMinStopStep not");
659 ASSERT(StepCounts.InitMaxMinStopStep == b.StepCounts.InitMaxMinStopStep, "PcpParser ==: InitMaxMinStopStep not");
660 ASSERT(StepCounts.OutVisStep == b.StepCounts.OutVisStep, "PcpParser ==: OutVisStep not");
661 ASSERT(StepCounts.OutSrcStep == b.StepCounts.OutSrcStep, "PcpParser ==: OutSrcStep not");
662 ASSERT(StepCounts.MaxPsiStep == b.StepCounts.MaxPsiStep, "PcpParser ==: MaxPsiStep not");
663 ASSERT(StepCounts.MaxOuterStep == b.StepCounts.MaxOuterStep, "PcpParser ==: MaxOuterStep not");
664 ASSERT(StepCounts.MaxMinStep == b.StepCounts.MaxMinStep, "PcpParser ==: MaxMinStep not");
665 ASSERT(StepCounts.RelEpsTotalEnergy == b.StepCounts.RelEpsTotalEnergy, "PcpParser ==: RelEpsTotalEnergy not");
666 ASSERT(StepCounts.MaxMinGapStopStep == b.StepCounts.MaxMinGapStopStep, "PcpParser ==: MaxMinGapStopStep not");
667 ASSERT(StepCounts.MaxInitMinStep == b.StepCounts.MaxInitMinStep, "PcpParser ==: MaxInitMinStep not");
668 ASSERT(StepCounts.InitRelEpsTotalEnergy == b.StepCounts.InitRelEpsTotalEnergy, "PcpParser ==: InitRelEpsTotalEnergy not");
669 ASSERT(StepCounts.InitRelEpsKineticEnergy == b.StepCounts.InitRelEpsKineticEnergy, "PcpParser ==: InitRelEpsKineticEnergy not");
670 ASSERT(StepCounts.InitMaxMinGapStopStep == b.StepCounts.InitMaxMinGapStopStep, "PcpParser ==: InitMaxMinGapStopStep not");
671
672 ASSERT(PlaneWaveSpecifics.PsiType == b.PlaneWaveSpecifics.PsiType, "PcpParser ==: PsiType not");
673 ASSERT(PlaneWaveSpecifics.MaxPsiDouble == b.PlaneWaveSpecifics.MaxPsiDouble, "PcpParser ==: MaxPsiDouble not");
674 ASSERT(PlaneWaveSpecifics.PsiMaxNoUp == b.PlaneWaveSpecifics.PsiMaxNoUp, "PcpParser ==: PsiMaxNoUp not");
675 ASSERT(PlaneWaveSpecifics.PsiMaxNoDown == b.PlaneWaveSpecifics.PsiMaxNoDown, "PcpParser ==: PsiMaxNoDown not");
676 ASSERT(PlaneWaveSpecifics.ECut == b.PlaneWaveSpecifics.ECut, "PcpParser ==: ECut not");
677 ASSERT(PlaneWaveSpecifics.MaxLevel == b.PlaneWaveSpecifics.MaxLevel, "PcpParser ==: MaxLevel not");
678 ASSERT(PlaneWaveSpecifics.RiemannTensor == b.PlaneWaveSpecifics.RiemannTensor, "PcpParser ==: RiemannTensor not");
679 ASSERT(PlaneWaveSpecifics.LevRFactor == b.PlaneWaveSpecifics.LevRFactor, "PcpParser ==: LevRFactor not");
680 ASSERT(PlaneWaveSpecifics.RiemannLevel == b.PlaneWaveSpecifics.RiemannLevel, "PcpParser ==: RiemannLevel not");
681 ASSERT(PlaneWaveSpecifics.Lev0Factor == b.PlaneWaveSpecifics.Lev0Factor, "PcpParser ==: Lev0Factor not");
682 ASSERT(PlaneWaveSpecifics.RTActualUse == b.PlaneWaveSpecifics.RTActualUse, "PcpParser ==: RTActualUse not");
683 ASSERT(PlaneWaveSpecifics.AddPsis == b.PlaneWaveSpecifics.AddPsis, "PcpParser ==: AddPsis not");
684 ASSERT(PlaneWaveSpecifics.AddPsis == b.PlaneWaveSpecifics.AddPsis, "PcpParser ==: AddPsis not");
685 ASSERT(PlaneWaveSpecifics.RCut == b.PlaneWaveSpecifics.RCut, "PcpParser ==: RCut not");
686
687 ASSERT(FastParsing == b.FastParsing, "PcpParser ==: FastParsing not");
688
689 ASSERT(Deltat == b.Deltat, "PcpParser ==: Deltat not");
690 ASSERT(IsAngstroem == b.IsAngstroem, "PcpParser ==: IsAngstroem not");
691 ASSERT(RelativeCoord == b.RelativeCoord, "PcpParser ==: RelativeCoord not");
692 ASSERT(StructOpt == b.StructOpt, "PcpParser ==: StructOpt not");
693 ASSERT(MaxTypes == b.MaxTypes, "PcpParser ==: MaxTypes not");
694 ASSERT(basis == b.basis, "PcpParser ==: basis not");
695
696 return true;
697}
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