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root/OpenMD/branches/development/src/brains/SimCreator.cpp
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trunk/src/brains/SimCreator.cpp (file contents), Revision 381 by tim, Tue Mar 1 14:45:45 2005 UTC vs.
branches/development/src/brains/SimCreator.cpp (file contents), Revision 1825 by gezelter, Wed Jan 9 19:27:52 2013 UTC

# Line 1 | Line 1
1 < /*
2 < * Copyright (c) 2005 The University of Notre Dame. All Rights Reserved.
3 < *
4 < * The University of Notre Dame grants you ("Licensee") a
5 < * non-exclusive, royalty free, license to use, modify and
6 < * redistribute this software in source and binary code form, provided
7 < * that the following conditions are met:
8 < *
9 < * 1. Acknowledgement of the program authors must be made in any
10 < *    publication of scientific results based in part on use of the
11 < *    program.  An acceptable form of acknowledgement is citation of
12 < *    the article in which the program was described (Matthew
13 < *    A. Meineke, Charles F. Vardeman II, Teng Lin, Christopher
14 < *    J. Fennell and J. Daniel Gezelter, "OOPSE: An Object-Oriented
15 < *    Parallel Simulation Engine for Molecular Dynamics,"
16 < *    J. Comput. Chem. 26, pp. 252-271 (2005))
17 < *
18 < * 2. Redistributions of source code must retain the above copyright
19 < *    notice, this list of conditions and the following disclaimer.
20 < *
21 < * 3. Redistributions in binary form must reproduce the above copyright
22 < *    notice, this list of conditions and the following disclaimer in the
23 < *    documentation and/or other materials provided with the
24 < *    distribution.
25 < *
26 < * This software is provided "AS IS," without a warranty of any
27 < * kind. All express or implied conditions, representations and
28 < * warranties, including any implied warranty of merchantability,
29 < * fitness for a particular purpose or non-infringement, are hereby
30 < * excluded.  The University of Notre Dame and its licensors shall not
31 < * be liable for any damages suffered by licensee as a result of
32 < * using, modifying or distributing the software or its
33 < * derivatives. In no event will the University of Notre Dame or its
34 < * licensors be liable for any lost revenue, profit or data, or for
35 < * direct, indirect, special, consequential, incidental or punitive
36 < * damages, however caused and regardless of the theory of liability,
37 < * arising out of the use of or inability to use software, even if the
38 < * University of Notre Dame has been advised of the possibility of
39 < * such damages.
40 < */
41 <
42 < /**
43 < * @file SimCreator.cpp
44 < * @author tlin
45 < * @date 11/03/2004
46 < * @time 13:51am
47 < * @version 1.0
48 < */
49 <
50 < #include <sprng.h>
51 <
52 < #include "brains/MoleculeCreator.hpp"
53 < #include "brains/SimCreator.hpp"
54 < #include "brains/SimSnapshotManager.hpp"
55 < #include "io/DumpReader.hpp"
56 < #include "io/parse_me.h"
57 < #include "UseTheForce/ForceFieldFactory.hpp"
58 < #include "utils/simError.h"
59 < #include "utils/StringUtils.hpp"
60 < #ifdef IS_MPI
61 < #include "io/mpiBASS.h"
62 < #include "math/randomSPRNG.hpp"
63 < #endif
64 <
65 < namespace oopse {
66 <
67 < void SimCreator::parseFile(const std::string mdFileName,  MakeStamps* stamps, Globals* simParams){
68 <
69 < #ifdef IS_MPI
70 <
71 <    if (worldRank == 0) {
72 < #endif // is_mpi
73 <
74 <        simParams->initalize();
75 <        set_interface_stamps(stamps, simParams);
76 <
77 < #ifdef IS_MPI
78 <
79 <        mpiEventInit();
80 <
81 < #endif
82 <
83 <        yacc_BASS(mdFileName.c_str());
84 <
85 < #ifdef IS_MPI
86 <
87 <        throwMPIEvent(NULL);
88 <    } else {
89 <        set_interface_stamps(stamps, simParams);
90 <        mpiEventInit();
91 <        MPIcheckPoint();
92 <        mpiEventLoop();
93 <    }
94 <
95 < #endif
96 <
97 < }
98 <
99 < SimInfo*  SimCreator::createSim(const std::string & mdFileName, bool loadInitCoords) {
100 <    
101 <    MakeStamps * stamps = new MakeStamps();
102 <
103 <    Globals * simParams = new Globals();
104 <
105 <    //parse meta-data file
106 <    parseFile(mdFileName, stamps, simParams);
107 <
108 <    //create the force field
109 <    ForceField * ff = ForceFieldFactory::getInstance()->createForceField(
110 <                          simParams->getForceField());
111 <    
112 <    if (ff == NULL) {
113 <        sprintf(painCave.errMsg, "ForceField Factory can not create %s force field\n",
114 <                simParams->getForceField());
115 <        painCave.isFatal = 1;
116 <        simError();
117 <    }
118 <
119 <    if (simParams->haveForceFieldFileName()) {
120 <        ff->setForceFieldFileName(simParams->getForceFieldFileName());
121 <    }
122 <    
123 <    std::string forcefieldFileName;
124 <    forcefieldFileName = ff->getForceFieldFileName();
125 <
126 <    if (simParams->haveForceFieldVariant()) {
127 <        //If the force field has variant, the variant force field name will be
128 <        //Base.variant.frc. For exampel EAM.u6.frc
129 <        
130 <        std::string variant = simParams->getForceFieldVariant();
131 <
132 <        std::string::size_type pos = forcefieldFileName.rfind(".frc");
133 <        variant = "." + variant;
134 <        if (pos != std::string::npos) {
135 <            forcefieldFileName.insert(pos, variant);
136 <        } else {
137 <            //If the default force field file name does not containt .frc suffix, just append the .variant
138 <            forcefieldFileName.append(variant);
139 <        }
140 <    }
141 <    
142 <    ff->parse(forcefieldFileName);
143 <    
144 <    //extract the molecule stamps
145 <    std::vector < std::pair<MoleculeStamp *, int> > moleculeStampPairs;
146 <    compList(stamps, simParams, moleculeStampPairs);
147 <
148 <    //create SimInfo
149 <    SimInfo * info = new SimInfo(moleculeStampPairs, ff, simParams);
150 <
151 <    //gather parameters (SimCreator only retrieves part of the parameters)
152 <    gatherParameters(info, mdFileName);
153 <
154 <    //divide the molecules and determine the global index of molecules
155 < #ifdef IS_MPI
156 <    divideMolecules(info);
157 < #endif
158 <
159 <    //create the molecules
160 <    createMolecules(info);
161 <
162 <
163 <    //allocate memory for DataStorage(circular reference, need to break it)
164 <    info->setSnapshotManager(new SimSnapshotManager(info));
165 <    
166 <    //set the global index of atoms, rigidbodies and cutoffgroups (only need to be set once, the
167 <    //global index will never change again). Local indices of atoms and rigidbodies are already set by
168 <    //MoleculeCreator class which actually delegates the responsibility to LocalIndexManager.
169 <    setGlobalIndex(info);
170 <
171 <    //Alought addExculdePairs is called inside SimInfo's addMolecule method, at that point
172 <    //atoms don't have the global index yet  (their global index are all initialized to -1).
173 <    //Therefore we have to call addExcludePairs explicitly here. A way to work around is that
174 <    //we can determine the beginning global indices of atoms before they get created.
175 <    SimInfo::MoleculeIterator mi;
176 <    Molecule* mol;
177 <    for (mol= info->beginMolecule(mi); mol != NULL; mol = info->nextMolecule(mi)) {
178 <        info->addExcludePairs(mol);
179 <    }
180 <    
181 <
182 <    //load initial coordinates, some extra information are pushed into SimInfo's property map ( such as
183 <    //eta, chi for NPT integrator)
184 <    if (loadInitCoords)
185 <        loadCoordinates(info);    
186 <    
187 <    return info;
188 < }
189 <
190 < void SimCreator::gatherParameters(SimInfo *info, const std::string& mdfile) {
191 <
192 <    //setup seed for random number generator
193 <    int seedValue;
194 <    Globals * simParams = info->getSimParams();
195 <
196 <    if (simParams->haveSeed()) {
197 <        seedValue = simParams->getSeed();
198 <
199 <        if (seedValue < 100000000 ) {
200 <            sprintf(painCave.errMsg,
201 <                    "Seed for sprng library should contain at least 9 digits\n"
202 <                        "OOPSE will generate a seed for user\n");
203 <
204 <            painCave.isFatal = 0;
205 <            simError();
206 <
207 <            //using seed generated by system instead of invalid seed set by user
208 <
209 < #ifndef IS_MPI
210 <
211 <            seedValue = make_sprng_seed();
212 <
213 < #else
214 <
215 <            if (worldRank == 0) {
216 <                seedValue = make_sprng_seed();
217 <            }
218 <
219 <            MPI_Bcast(&seedValue, 1, MPI_INT, 0, MPI_COMM_WORLD);
220 <
221 < #endif
222 <
223 <        } //end if (seedValue /1000000000 == 0)
224 <    } else {
225 <
226 < #ifndef IS_MPI
227 <
228 <        seedValue = make_sprng_seed();
229 <
230 < #else
231 <
232 <        if (worldRank == 0) {
233 <            seedValue = make_sprng_seed();
234 <        }
235 <
236 <        MPI_Bcast(&seedValue, 1, MPI_INT, 0, MPI_COMM_WORLD);
237 <
238 < #endif
239 <
240 <    } //end of simParams->haveSeed()
241 <
242 <    info->setSeed(seedValue);
243 <
244 <
245 <    //figure out the ouput file names
246 <    std::string prefix;
247 <
248 < #ifdef IS_MPI
249 <
250 <    if (worldRank == 0) {
251 < #endif // is_mpi
252 <
253 <        if (simParams->haveFinalConfig()) {
254 <            prefix = getPrefix(simParams->getFinalConfig());
255 <        } else {
256 <            prefix = getPrefix(mdfile);
257 <        }
258 <
259 <        info->setFinalConfigFileName(prefix + ".eor");
260 <        info->setDumpFileName(prefix + ".dump");
261 <        info->setStatFileName(prefix + ".stat");
262 <
263 < #ifdef IS_MPI
264 <
265 <    }
266 <
267 < #endif
268 <
269 < }
270 <
271 < #ifdef IS_MPI
272 < void SimCreator::divideMolecules(SimInfo *info) {
273 <    double numerator;
274 <    double denominator;
275 <    double precast;
276 <    double x;
277 <    double y;
278 <    double a;
279 <    int old_atoms;
280 <    int add_atoms;
281 <    int new_atoms;
282 <    int nTarget;
283 <    int done;
284 <    int i;
285 <    int j;
286 <    int loops;
287 <    int which_proc;
288 <    int nProcessors;
289 <    std::vector<int> atomsPerProc;
290 <    int nGlobalMols = info->getNGlobalMolecules();
291 <    std::vector<int> molToProcMap(nGlobalMols, -1); // default to an error condition:
292 <    
293 <    MPI_Comm_size(MPI_COMM_WORLD, &nProcessors);
294 <
295 <    if (nProcessors > nGlobalMols) {
296 <        sprintf(painCave.errMsg,
297 <                "nProcessors (%d) > nMol (%d)\n"
298 <                    "\tThe number of processors is larger than\n"
299 <                    "\tthe number of molecules.  This will not result in a \n"
300 <                    "\tusable division of atoms for force decomposition.\n"
301 <                    "\tEither try a smaller number of processors, or run the\n"
302 <                    "\tsingle-processor version of OOPSE.\n", nProcessors, nGlobalMols);
303 <
304 <        painCave.isFatal = 1;
305 <        simError();
306 <    }
307 <
308 <    MTRand myRandom(info->getSeed(), nProcessors, worldRank);
309 <
310 <
311 <    a = 3.0 * nGlobalMols / info->getNGlobalAtoms();
312 <
313 <    //initialize atomsPerProc
314 <    atomsPerProc.insert(atomsPerProc.end(), nProcessors, 0);
315 <
316 <    if (worldRank == 0) {
317 <        numerator = info->getNGlobalAtoms();
318 <        denominator = nProcessors;
319 <        precast = numerator / denominator;
320 <        nTarget = (int)(precast + 0.5);
321 <
322 <        for(i = 0; i < nGlobalMols; i++) {
323 <            done = 0;
324 <            loops = 0;
325 <
326 <            while (!done) {
327 <                loops++;
328 <
329 <                // Pick a processor at random
330 <
331 <                which_proc = (int) (myRandom.rand() * nProcessors);
332 <
333 <                //get the molecule stamp first
334 <                int stampId = info->getMoleculeStampId(i);
335 <                MoleculeStamp * moleculeStamp = info->getMoleculeStamp(stampId);
336 <
337 <                // How many atoms does this processor have so far?
338 <                old_atoms = atomsPerProc[which_proc];
339 <                add_atoms = moleculeStamp->getNAtoms();
340 <                new_atoms = old_atoms + add_atoms;
341 <
342 <                // If we've been through this loop too many times, we need
343 <                // to just give up and assign the molecule to this processor
344 <                // and be done with it.
345 <
346 <                if (loops > 100) {
347 <                    sprintf(painCave.errMsg,
348 <                            "I've tried 100 times to assign molecule %d to a "
349 <                                " processor, but can't find a good spot.\n"
350 <                                "I'm assigning it at random to processor %d.\n",
351 <                            i, which_proc);
352 <
353 <                    painCave.isFatal = 0;
354 <                    simError();
355 <
356 <                    molToProcMap[i] = which_proc;
357 <                    atomsPerProc[which_proc] += add_atoms;
358 <
359 <                    done = 1;
360 <                    continue;
361 <                }
362 <
363 <                // If we can add this molecule to this processor without sending
364 <                // it above nTarget, then go ahead and do it:
365 <
366 <                if (new_atoms <= nTarget) {
367 <                    molToProcMap[i] = which_proc;
368 <                    atomsPerProc[which_proc] += add_atoms;
369 <
370 <                    done = 1;
371 <                    continue;
372 <                }
373 <
374 <                // The only situation left is when new_atoms > nTarget.  We
375 <                // want to accept this with some probability that dies off the
376 <                // farther we are from nTarget
377 <
378 <                // roughly:  x = new_atoms - nTarget
379 <                //           Pacc(x) = exp(- a * x)
380 <                // where a = penalty / (average atoms per molecule)
381 <
382 <                x = (double)(new_atoms - nTarget);
383 <                y = myRandom.getRandom();
384 <
385 <                if (y < exp(- a * x)) {
386 <                    molToProcMap[i] = which_proc;
387 <                    atomsPerProc[which_proc] += add_atoms;
388 <
389 <                    done = 1;
390 <                    continue;
391 <                } else {
392 <                    continue;
393 <                }
394 <            }
395 <        }
396 <
397 <        // Spray out this nonsense to all other processors:
398 <
399 <        MPI_Bcast(&molToProcMap[0], nGlobalMols, MPI_INT, 0, MPI_COMM_WORLD);
400 <    } else {
401 <
402 <        // Listen to your marching orders from processor 0:
403 <
404 <        MPI_Bcast(&molToProcMap[0], nGlobalMols, MPI_INT, 0, MPI_COMM_WORLD);
405 <    }
406 <
407 <    info->setMolToProcMap(molToProcMap);
408 <    sprintf(checkPointMsg,
409 <            "Successfully divided the molecules among the processors.\n");
410 <    MPIcheckPoint();
411 < }
412 <
413 < #endif
414 <
415 < void SimCreator::createMolecules(SimInfo *info) {
416 <    MoleculeCreator molCreator;
417 <    int stampId;
418 <
419 <    for(int i = 0; i < info->getNGlobalMolecules(); i++) {
420 <
421 < #ifdef IS_MPI
422 <
423 <        if (info->getMolToProc(i) == worldRank) {
424 < #endif
425 <
426 <            stampId = info->getMoleculeStampId(i);
427 <            Molecule * mol = molCreator.createMolecule(info->getForceField(), info->getMoleculeStamp(stampId),
428 <                                                                                    stampId, i, info->getLocalIndexManager());
429 <
430 <            info->addMolecule(mol);
431 <
432 < #ifdef IS_MPI
433 <
434 <        }
435 <
436 < #endif
437 <
438 <    } //end for(int i=0)  
439 < }
440 <
441 < void SimCreator::compList(MakeStamps *stamps, Globals* simParams,
442 <                        std::vector < std::pair<MoleculeStamp *, int> > &moleculeStampPairs) {
443 <    int i;
444 <    char * id;
445 <    MoleculeStamp * currentStamp;
446 <    Component** the_components = simParams->getComponents();
447 <    int n_components = simParams->getNComponents();
448 <
449 <    if (!simParams->haveNMol()) {
450 <        // we don't have the total number of molecules, so we assume it is
451 <        // given in each component
452 <
453 <        for(i = 0; i < n_components; i++) {
454 <            if (!the_components[i]->haveNMol()) {
455 <                // we have a problem
456 <                sprintf(painCave.errMsg,
457 <                        "SimCreator Error. No global NMol or component NMol given.\n"
458 <                            "\tCannot calculate the number of atoms.\n");
459 <
460 <                painCave.isFatal = 1;
461 <                simError();
462 <            }
463 <
464 <            id = the_components[i]->getType();
465 <            currentStamp = (stamps->extractMolStamp(id))->getStamp();
466 <
467 <            if (currentStamp == NULL) {
468 <                sprintf(painCave.errMsg,
469 <                        "SimCreator error: Component \"%s\" was not found in the "
470 <                            "list of declared molecules\n", id);
471 <
472 <                painCave.isFatal = 1;
473 <                simError();
474 <            }
475 <
476 <            moleculeStampPairs.push_back(
477 <                std::make_pair(currentStamp, the_components[i]->getNMol()));
478 <        } //end for (i = 0; i < n_components; i++)
479 <    } else {
480 <        sprintf(painCave.errMsg, "SimSetup error.\n"
481 <                                     "\tSorry, the ability to specify total"
482 <                                     " nMols and then give molfractions in the components\n"
483 <                                     "\tis not currently supported."
484 <                                     " Please give nMol in the components.\n");
485 <
486 <        painCave.isFatal = 1;
487 <        simError();
488 <    }
489 <
490 < #ifdef IS_MPI
491 <
492 <    strcpy(checkPointMsg, "Component stamps successfully extracted\n");
493 <    MPIcheckPoint();
494 <
495 < #endif // is_mpi
496 <
497 < }
498 <
499 < void SimCreator::setGlobalIndex(SimInfo *info) {
500 <    SimInfo::MoleculeIterator mi;
501 <    Molecule::AtomIterator ai;
502 <    Molecule::RigidBodyIterator ri;
503 <    Molecule::CutoffGroupIterator ci;
504 <    Molecule * mol;
505 <    Atom * atom;
506 <    RigidBody * rb;
507 <    CutoffGroup * cg;
508 <    int beginAtomIndex;
509 <    int beginRigidBodyIndex;
510 <    int beginCutoffGroupIndex;
511 <    int nGlobalAtoms = info->getNGlobalAtoms();
512 <    
513 < #ifndef IS_MPI
514 <
515 <    beginAtomIndex = 0;
516 <    beginRigidBodyIndex = 0;
517 <    beginCutoffGroupIndex = 0;
518 <
519 < #else
520 <
521 <    int nproc;
522 <    int myNode;
523 <
524 <    myNode = worldRank;
525 <    MPI_Comm_size(MPI_COMM_WORLD, &nproc);
526 <
527 <    std::vector < int > tmpAtomsInProc(nproc, 0);
528 <    std::vector < int > tmpRigidBodiesInProc(nproc, 0);
529 <    std::vector < int > tmpCutoffGroupsInProc(nproc, 0);
530 <    std::vector < int > NumAtomsInProc(nproc, 0);
531 <    std::vector < int > NumRigidBodiesInProc(nproc, 0);
532 <    std::vector < int > NumCutoffGroupsInProc(nproc, 0);
533 <
534 <    tmpAtomsInProc[myNode] = info->getNAtoms();
535 <    tmpRigidBodiesInProc[myNode] = info->getNRigidBodies();
536 <    tmpCutoffGroupsInProc[myNode] = info->getNCutoffGroups();
537 <
538 <    //do MPI_ALLREDUCE to exchange the total number of atoms, rigidbodies and cutoff groups
539 <    MPI_Allreduce(&tmpAtomsInProc[0], &NumAtomsInProc[0], nproc, MPI_INT,
540 <                  MPI_SUM, MPI_COMM_WORLD);
541 <    MPI_Allreduce(&tmpRigidBodiesInProc[0], &NumRigidBodiesInProc[0], nproc,
542 <                  MPI_INT, MPI_SUM, MPI_COMM_WORLD);
543 <    MPI_Allreduce(&tmpCutoffGroupsInProc[0], &NumCutoffGroupsInProc[0], nproc,
544 <                  MPI_INT, MPI_SUM, MPI_COMM_WORLD);
545 <
546 <    beginAtomIndex = 0;
547 <    beginRigidBodyIndex = 0;
548 <    beginCutoffGroupIndex = 0;
549 <
550 <    for(int i = 0; i < myNode; i++) {
551 <        beginAtomIndex += NumAtomsInProc[i];
552 <        beginRigidBodyIndex += NumRigidBodiesInProc[i];
553 <        beginCutoffGroupIndex += NumCutoffGroupsInProc[i];
554 <    }
555 <
556 < #endif
557 <
558 <    //rigidbody's index begins right after atom's
559 <    beginRigidBodyIndex += info->getNGlobalAtoms();
560 <
561 <    for(mol = info->beginMolecule(mi); mol != NULL;
562 <        mol = info->nextMolecule(mi)) {
563 <
564 <        //local index(index in DataStorge) of atom is important
565 <        for(atom = mol->beginAtom(ai); atom != NULL; atom = mol->nextAtom(ai)) {
566 <            atom->setGlobalIndex(beginAtomIndex++);
567 <        }
568 <
569 <        for(rb = mol->beginRigidBody(ri); rb != NULL;
570 <            rb = mol->nextRigidBody(ri)) {
571 <            rb->setGlobalIndex(beginRigidBodyIndex++);
572 <        }
573 <
574 <        //local index of cutoff group is trivial, it only depends on the order of travesing
575 <        for(cg = mol->beginCutoffGroup(ci); cg != NULL;
576 <            cg = mol->nextCutoffGroup(ci)) {
577 <            cg->setGlobalIndex(beginCutoffGroupIndex++);
578 <        }
579 <    }
580 <
581 <    //fill globalGroupMembership
582 <    std::vector<int> globalGroupMembership(info->getNGlobalAtoms(), 0);
583 <    for(mol = info->beginMolecule(mi); mol != NULL; mol = info->nextMolecule(mi)) {        
584 <        for (cg = mol->beginCutoffGroup(ci); cg != NULL; cg = mol->nextCutoffGroup(ci)) {
585 <
586 <            for(atom = cg->beginAtom(ai); atom != NULL; atom = cg->nextAtom(ai)) {
587 <                globalGroupMembership[atom->getGlobalIndex()] = cg->getGlobalIndex();
588 <            }
589 <
590 <        }      
591 <    }
592 <
593 < #ifdef IS_MPI    
594 <    // Since the globalGroupMembership has been zero filled and we've only
595 <    // poked values into the atoms we know, we can do an Allreduce
596 <    // to get the full globalGroupMembership array (We think).
597 <    // This would be prettier if we could use MPI_IN_PLACE like the MPI-2
598 <    // docs said we could.
599 <    std::vector<int> tmpGroupMembership(nGlobalAtoms, 0);
600 <    MPI_Allreduce(&globalGroupMembership[0], &tmpGroupMembership[0], nGlobalAtoms,
601 <                  MPI_INT, MPI_SUM, MPI_COMM_WORLD);
602 <     info->setGlobalGroupMembership(tmpGroupMembership);
603 < #else
604 <    info->setGlobalGroupMembership(globalGroupMembership);
605 < #endif
606 <
607 <    //fill molMembership
608 <    std::vector<int> globalMolMembership(info->getNGlobalAtoms(), 0);
609 <    
610 <    for(mol = info->beginMolecule(mi); mol != NULL; mol = info->nextMolecule(mi)) {
611 <
612 <        for(atom = mol->beginAtom(ai); atom != NULL; atom = mol->nextAtom(ai)) {
613 <            globalMolMembership[atom->getGlobalIndex()] = mol->getGlobalIndex();
614 <        }
615 <    }
616 <
617 < #ifdef IS_MPI
618 <    std::vector<int> tmpMolMembership(nGlobalAtoms, 0);
619 <
620 <    MPI_Allreduce(&globalMolMembership[0], &tmpMolMembership[0], nGlobalAtoms,
621 <                  MPI_INT, MPI_SUM, MPI_COMM_WORLD);
622 <    
623 <    info->setGlobalMolMembership(tmpMolMembership);
624 < #else
625 <    info->setGlobalMolMembership(globalMolMembership);
626 < #endif
627 <
628 < }
629 <
630 < void SimCreator::loadCoordinates(SimInfo* info) {
631 <    Globals* simParams;
632 <    simParams = info->getSimParams();
633 <    
634 <    if (!simParams->haveInitialConfig()) {
635 <        sprintf(painCave.errMsg,
636 <                "Cannot intialize a simulation without an initial configuration file.\n");
637 <        painCave.isFatal = 1;;
638 <        simError();
639 <    }
640 <        
641 <    DumpReader reader(info, simParams->getInitialConfig());
642 <    int nframes = reader.getNFrames();
643 <
644 <    if (nframes > 0) {
645 <        reader.readFrame(nframes - 1);
646 <    } else {
647 <        //invalid initial coordinate file
648 <        sprintf(painCave.errMsg, "Initial configuration file %s should at least contain one frame\n",
649 <                simParams->getInitialConfig());
650 <        painCave.isFatal = 1;
651 <        simError();
652 <    }
653 <
654 <    //copy the current snapshot to previous snapshot
655 <    info->getSnapshotManager()->advance();
656 < }
657 <
658 < } //end namespace oopse
659 <
660 <
1 > /*
2 > * Copyright (c) 2005 The University of Notre Dame. All Rights Reserved.
3 > *
4 > * The University of Notre Dame grants you ("Licensee") a
5 > * non-exclusive, royalty free, license to use, modify and
6 > * redistribute this software in source and binary code form, provided
7 > * that the following conditions are met:
8 > *
9 > * 1. Redistributions of source code must retain the above copyright
10 > *    notice, this list of conditions and the following disclaimer.
11 > *
12 > * 2. Redistributions in binary form must reproduce the above copyright
13 > *    notice, this list of conditions and the following disclaimer in the
14 > *    documentation and/or other materials provided with the
15 > *    distribution.
16 > *
17 > * This software is provided "AS IS," without a warranty of any
18 > * kind. All express or implied conditions, representations and
19 > * warranties, including any implied warranty of merchantability,
20 > * fitness for a particular purpose or non-infringement, are hereby
21 > * excluded.  The University of Notre Dame and its licensors shall not
22 > * be liable for any damages suffered by licensee as a result of
23 > * using, modifying or distributing the software or its
24 > * derivatives. In no event will the University of Notre Dame or its
25 > * licensors be liable for any lost revenue, profit or data, or for
26 > * direct, indirect, special, consequential, incidental or punitive
27 > * damages, however caused and regardless of the theory of liability,
28 > * arising out of the use of or inability to use software, even if the
29 > * University of Notre Dame has been advised of the possibility of
30 > * such damages.
31 > *
32 > * SUPPORT OPEN SCIENCE!  If you use OpenMD or its source code in your
33 > * research, please cite the appropriate papers when you publish your
34 > * work.  Good starting points are:
35 > *                                                                      
36 > * [1]  Meineke, et al., J. Comp. Chem. 26, 252-271 (2005).            
37 > * [2]  Fennell & Gezelter, J. Chem. Phys. 124, 234104 (2006).          
38 > * [3]  Sun, Lin & Gezelter, J. Chem. Phys. 128, 24107 (2008).          
39 > * [4]  Kuang & Gezelter,  J. Chem. Phys. 133, 164101 (2010).
40 > * [5]  Vardeman, Stocker & Gezelter, J. Chem. Theory Comput. 7, 834 (2011).
41 > */
42 >
43 > /**
44 > * @file SimCreator.cpp
45 > * @author tlin
46 > * @date 11/03/2004
47 > * @version 1.0
48 > */
49 > #include <exception>
50 > #include <iostream>
51 > #include <sstream>
52 > #include <string>
53 >
54 > #include "brains/MoleculeCreator.hpp"
55 > #include "brains/SimCreator.hpp"
56 > #include "brains/SimSnapshotManager.hpp"
57 > #include "io/DumpReader.hpp"
58 > #include "brains/ForceField.hpp"
59 > #include "utils/simError.h"
60 > #include "utils/StringUtils.hpp"
61 > #include "math/SeqRandNumGen.hpp"
62 > #include "mdParser/MDLexer.hpp"
63 > #include "mdParser/MDParser.hpp"
64 > #include "mdParser/MDTreeParser.hpp"
65 > #include "mdParser/SimplePreprocessor.hpp"
66 > #include "antlr/ANTLRException.hpp"
67 > #include "antlr/TokenStreamRecognitionException.hpp"
68 > #include "antlr/TokenStreamIOException.hpp"
69 > #include "antlr/TokenStreamException.hpp"
70 > #include "antlr/RecognitionException.hpp"
71 > #include "antlr/CharStreamException.hpp"
72 >
73 > #include "antlr/MismatchedCharException.hpp"
74 > #include "antlr/MismatchedTokenException.hpp"
75 > #include "antlr/NoViableAltForCharException.hpp"
76 > #include "antlr/NoViableAltException.hpp"
77 >
78 > #include "types/DirectionalAdapter.hpp"
79 > #include "types/MultipoleAdapter.hpp"
80 > #include "types/EAMAdapter.hpp"
81 > #include "types/SuttonChenAdapter.hpp"
82 > #include "types/PolarizableAdapter.hpp"
83 > #include "types/FixedChargeAdapter.hpp"
84 > #include "types/FluctuatingChargeAdapter.hpp"
85 >
86 > #ifdef IS_MPI
87 > #include "mpi.h"
88 > #include "math/ParallelRandNumGen.hpp"
89 > #endif
90 >
91 > namespace OpenMD {
92 >  
93 >  Globals* SimCreator::parseFile(std::istream& rawMetaDataStream, const std::string& filename, int mdFileVersion, int startOfMetaDataBlock ){
94 >    Globals* simParams = NULL;
95 >    try {
96 >
97 >      // Create a preprocessor that preprocesses md file into an ostringstream
98 >      std::stringstream ppStream;
99 > #ifdef IS_MPI            
100 >      int streamSize;
101 >      const int masterNode = 0;
102 >      int commStatus;
103 >      if (worldRank == masterNode) {
104 >        commStatus = MPI_Bcast(&mdFileVersion, 1, MPI_INT, masterNode, MPI_COMM_WORLD);
105 > #endif                
106 >        SimplePreprocessor preprocessor;
107 >        preprocessor.preprocess(rawMetaDataStream, filename, startOfMetaDataBlock, ppStream);
108 >                
109 > #ifdef IS_MPI            
110 >        //brocasting the stream size
111 >        streamSize = ppStream.str().size() +1;
112 >        commStatus = MPI_Bcast(&streamSize, 1, MPI_LONG, masterNode, MPI_COMM_WORLD);                  
113 >
114 >        commStatus = MPI_Bcast(static_cast<void*>(const_cast<char*>(ppStream.str().c_str())), streamSize, MPI_CHAR, masterNode, MPI_COMM_WORLD);
115 >            
116 >                
117 >      } else {
118 >
119 >        commStatus = MPI_Bcast(&mdFileVersion, 1, MPI_INT, masterNode, MPI_COMM_WORLD);
120 >
121 >        //get stream size
122 >        commStatus = MPI_Bcast(&streamSize, 1, MPI_LONG, masterNode, MPI_COMM_WORLD);  
123 >
124 >        char* buf = new char[streamSize];
125 >        assert(buf);
126 >                
127 >        //receive file content
128 >        commStatus = MPI_Bcast(buf, streamSize, MPI_CHAR, masterNode, MPI_COMM_WORLD);
129 >                
130 >        ppStream.str(buf);
131 >        delete [] buf;
132 >
133 >      }
134 > #endif            
135 >      // Create a scanner that reads from the input stream
136 >      MDLexer lexer(ppStream);
137 >      lexer.setFilename(filename);
138 >      lexer.initDeferredLineCount();
139 >    
140 >      // Create a parser that reads from the scanner
141 >      MDParser parser(lexer);
142 >      parser.setFilename(filename);
143 >
144 >      // Create an observer that synchorizes file name change
145 >      FilenameObserver observer;
146 >      observer.setLexer(&lexer);
147 >      observer.setParser(&parser);
148 >      lexer.setObserver(&observer);
149 >    
150 >      antlr::ASTFactory factory;
151 >      parser.initializeASTFactory(factory);
152 >      parser.setASTFactory(&factory);
153 >      parser.mdfile();
154 >
155 >      // Create a tree parser that reads information into Globals
156 >      MDTreeParser treeParser;
157 >      treeParser.initializeASTFactory(factory);
158 >      treeParser.setASTFactory(&factory);
159 >      simParams = treeParser.walkTree(parser.getAST());
160 >    }
161 >
162 >      
163 >    catch(antlr::MismatchedCharException& e) {
164 >      sprintf(painCave.errMsg,
165 >              "parser exception: %s %s:%d:%d\n",
166 >              e.getMessage().c_str(),e.getFilename().c_str(), e.getLine(), e.getColumn());
167 >      painCave.isFatal = 1;
168 >      simError();          
169 >    }
170 >    catch(antlr::MismatchedTokenException &e) {
171 >      sprintf(painCave.errMsg,
172 >              "parser exception: %s %s:%d:%d\n",
173 >              e.getMessage().c_str(),e.getFilename().c_str(), e.getLine(), e.getColumn());
174 >      painCave.isFatal = 1;
175 >      simError();  
176 >    }
177 >    catch(antlr::NoViableAltForCharException &e) {
178 >      sprintf(painCave.errMsg,
179 >              "parser exception: %s %s:%d:%d\n",
180 >              e.getMessage().c_str(),e.getFilename().c_str(), e.getLine(), e.getColumn());
181 >      painCave.isFatal = 1;
182 >      simError();  
183 >    }
184 >    catch(antlr::NoViableAltException &e) {
185 >      sprintf(painCave.errMsg,
186 >              "parser exception: %s %s:%d:%d\n",
187 >              e.getMessage().c_str(),e.getFilename().c_str(), e.getLine(), e.getColumn());
188 >      painCave.isFatal = 1;
189 >      simError();  
190 >    }
191 >      
192 >    catch(antlr::TokenStreamRecognitionException& e) {
193 >      sprintf(painCave.errMsg,
194 >              "parser exception: %s %s:%d:%d\n",
195 >              e.getMessage().c_str(),e.getFilename().c_str(), e.getLine(), e.getColumn());
196 >      painCave.isFatal = 1;
197 >      simError();  
198 >    }
199 >        
200 >    catch(antlr::TokenStreamIOException& e) {
201 >      sprintf(painCave.errMsg,
202 >              "parser exception: %s\n",
203 >              e.getMessage().c_str());
204 >      painCave.isFatal = 1;
205 >      simError();
206 >    }
207 >        
208 >    catch(antlr::TokenStreamException& e) {
209 >      sprintf(painCave.errMsg,
210 >              "parser exception: %s\n",
211 >              e.getMessage().c_str());
212 >      painCave.isFatal = 1;
213 >      simError();
214 >    }        
215 >    catch (antlr::RecognitionException& e) {
216 >      sprintf(painCave.errMsg,
217 >              "parser exception: %s %s:%d:%d\n",
218 >              e.getMessage().c_str(),e.getFilename().c_str(), e.getLine(), e.getColumn());
219 >      painCave.isFatal = 1;
220 >      simError();          
221 >    }
222 >    catch (antlr::CharStreamException& e) {
223 >      sprintf(painCave.errMsg,
224 >              "parser exception: %s\n",
225 >              e.getMessage().c_str());
226 >      painCave.isFatal = 1;
227 >      simError();        
228 >    }
229 >    catch (OpenMDException& e) {
230 >      sprintf(painCave.errMsg,
231 >              "%s\n",
232 >              e.getMessage().c_str());
233 >      painCave.isFatal = 1;
234 >      simError();
235 >    }
236 >    catch (std::exception& e) {
237 >      sprintf(painCave.errMsg,
238 >              "parser exception: %s\n",
239 >              e.what());
240 >      painCave.isFatal = 1;
241 >      simError();
242 >    }
243 >
244 >    simParams->setMDfileVersion(mdFileVersion);
245 >    return simParams;
246 >  }
247 >  
248 >  SimInfo*  SimCreator::createSim(const std::string & mdFileName,
249 >                                  bool loadInitCoords) {
250 >    
251 >    const int bufferSize = 65535;
252 >    char buffer[bufferSize];
253 >    int lineNo = 0;
254 >    std::string mdRawData;
255 >    int metaDataBlockStart = -1;
256 >    int metaDataBlockEnd = -1;
257 >    int i, j;
258 >    streamoff mdOffset;
259 >    int mdFileVersion;
260 >
261 >    // Create a string for embedding the version information in the MetaData
262 >    std::string version;
263 >    version.assign("## Last run using OpenMD Version: ");
264 >    version.append(OPENMD_VERSION_MAJOR);
265 >    version.append(".");
266 >    version.append(OPENMD_VERSION_MINOR);
267 >
268 >    std::string svnrev;
269 >    //convert a macro from compiler to a string in c++
270 >    STR_DEFINE(svnrev, SVN_REV );
271 >    version.append(" Revision: ");
272 >    // If there's no SVN revision, just call this the RELEASE revision.
273 >    if (!svnrev.empty()) {
274 >      version.append(svnrev);
275 >    } else {
276 >      version.append("RELEASE");
277 >    }
278 >  
279 > #ifdef IS_MPI            
280 >    const int masterNode = 0;
281 >    if (worldRank == masterNode) {
282 > #endif
283 >
284 >      std::ifstream mdFile_;
285 >      mdFile_.open(mdFileName.c_str(), ifstream::in | ifstream::binary);
286 >      
287 >      if (mdFile_.fail()) {
288 >        sprintf(painCave.errMsg,
289 >                "SimCreator: Cannot open file: %s\n",
290 >                mdFileName.c_str());
291 >        painCave.isFatal = 1;
292 >        simError();
293 >      }
294 >
295 >      mdFile_.getline(buffer, bufferSize);
296 >      ++lineNo;
297 >      std::string line = trimLeftCopy(buffer);
298 >      i = CaseInsensitiveFind(line, "<OpenMD");
299 >      if (static_cast<size_t>(i) == string::npos) {
300 >        // try the older file strings to see if that works:
301 >        i = CaseInsensitiveFind(line, "<OOPSE");
302 >      }
303 >      
304 >      if (static_cast<size_t>(i) == string::npos) {
305 >        // still no luck!
306 >        sprintf(painCave.errMsg,
307 >                "SimCreator: File: %s is not a valid OpenMD file!\n",
308 >                mdFileName.c_str());
309 >        painCave.isFatal = 1;
310 >        simError();
311 >      }
312 >      
313 >      // found the correct opening string, now try to get the file
314 >      // format version number.
315 >
316 >      StringTokenizer tokenizer(line, "=<> \t\n\r");
317 >      std::string fileType = tokenizer.nextToken();
318 >      toUpper(fileType);
319 >
320 >      mdFileVersion = 0;
321 >
322 >      if (fileType == "OPENMD") {
323 >        while (tokenizer.hasMoreTokens()) {
324 >          std::string token(tokenizer.nextToken());
325 >          toUpper(token);
326 >          if (token == "VERSION") {
327 >            mdFileVersion = tokenizer.nextTokenAsInt();
328 >            break;
329 >          }
330 >        }
331 >      }
332 >            
333 >      //scan through the input stream and find MetaData tag        
334 >      while(mdFile_.getline(buffer, bufferSize)) {
335 >        ++lineNo;
336 >        
337 >        std::string line = trimLeftCopy(buffer);
338 >        if (metaDataBlockStart == -1) {
339 >          i = CaseInsensitiveFind(line, "<MetaData>");
340 >          if (i != string::npos) {
341 >            metaDataBlockStart = lineNo;
342 >            mdOffset = mdFile_.tellg();
343 >          }
344 >        } else {
345 >          i = CaseInsensitiveFind(line, "</MetaData>");
346 >          if (i != string::npos) {
347 >            metaDataBlockEnd = lineNo;
348 >          }
349 >        }
350 >      }
351 >
352 >      if (metaDataBlockStart == -1) {
353 >        sprintf(painCave.errMsg,
354 >                "SimCreator: File: %s did not contain a <MetaData> tag!\n",
355 >                mdFileName.c_str());
356 >        painCave.isFatal = 1;
357 >        simError();
358 >      }
359 >      if (metaDataBlockEnd == -1) {
360 >        sprintf(painCave.errMsg,
361 >                "SimCreator: File: %s did not contain a closed MetaData block!\n",
362 >                mdFileName.c_str());
363 >        painCave.isFatal = 1;
364 >        simError();
365 >      }
366 >        
367 >      mdFile_.clear();
368 >      mdFile_.seekg(0);
369 >      mdFile_.seekg(mdOffset);
370 >
371 >      mdRawData.clear();
372 >
373 >      bool foundVersion = false;
374 >
375 >      for (int i = 0; i < metaDataBlockEnd - metaDataBlockStart - 1; ++i) {
376 >        mdFile_.getline(buffer, bufferSize);
377 >        std::string line = trimLeftCopy(buffer);
378 >        j = CaseInsensitiveFind(line, "## Last run using OpenMD Version");
379 >        if (static_cast<size_t>(j) != string::npos) {
380 >          foundVersion = true;
381 >          mdRawData += version;
382 >        } else {
383 >          mdRawData += buffer;
384 >        }
385 >        mdRawData += "\n";
386 >      }
387 >      
388 >      if (!foundVersion) mdRawData += version + "\n";
389 >      
390 >      mdFile_.close();
391 >
392 > #ifdef IS_MPI
393 >    }
394 > #endif
395 >
396 >    std::stringstream rawMetaDataStream(mdRawData);
397 >
398 >    //parse meta-data file
399 >    Globals* simParams = parseFile(rawMetaDataStream, mdFileName, mdFileVersion,
400 >                                   metaDataBlockStart + 1);
401 >    
402 >    //create the force field
403 >    ForceField * ff = new ForceField(simParams->getForceField());
404 >
405 >    if (ff == NULL) {
406 >      sprintf(painCave.errMsg,
407 >              "ForceField Factory can not create %s force field\n",
408 >              simParams->getForceField().c_str());
409 >      painCave.isFatal = 1;
410 >      simError();
411 >    }
412 >    
413 >    if (simParams->haveForceFieldFileName()) {
414 >      ff->setForceFieldFileName(simParams->getForceFieldFileName());
415 >    }
416 >    
417 >    std::string forcefieldFileName;
418 >    forcefieldFileName = ff->getForceFieldFileName();
419 >    
420 >    if (simParams->haveForceFieldVariant()) {
421 >      //If the force field has variant, the variant force field name will be
422 >      //Base.variant.frc. For exampel EAM.u6.frc
423 >      
424 >      std::string variant = simParams->getForceFieldVariant();
425 >      
426 >      std::string::size_type pos = forcefieldFileName.rfind(".frc");
427 >      variant = "." + variant;
428 >      if (pos != std::string::npos) {
429 >        forcefieldFileName.insert(pos, variant);
430 >      } else {
431 >        //If the default force field file name does not containt .frc suffix, just append the .variant
432 >        forcefieldFileName.append(variant);
433 >      }
434 >    }
435 >    
436 >    ff->parse(forcefieldFileName);
437 >    //create SimInfo
438 >    SimInfo * info = new SimInfo(ff, simParams);
439 >
440 >    info->setRawMetaData(mdRawData);
441 >    
442 >    //gather parameters (SimCreator only retrieves part of the
443 >    //parameters)
444 >    gatherParameters(info, mdFileName);
445 >    
446 >    //divide the molecules and determine the global index of molecules
447 > #ifdef IS_MPI
448 >    divideMolecules(info);
449 > #endif
450 >    
451 >    //create the molecules
452 >    createMolecules(info);
453 >    
454 >    //find the storage layout
455 >
456 >    int storageLayout = computeStorageLayout(info);
457 >
458 >    //allocate memory for DataStorage(circular reference, need to
459 >    //break it)
460 >    info->setSnapshotManager(new SimSnapshotManager(info, storageLayout));
461 >    
462 >    //set the global index of atoms, rigidbodies and cutoffgroups
463 >    //(only need to be set once, the global index will never change
464 >    //again). Local indices of atoms and rigidbodies are already set
465 >    //by MoleculeCreator class which actually delegates the
466 >    //responsibility to LocalIndexManager.
467 >    setGlobalIndex(info);
468 >    
469 >    //Although addInteractionPairs is called inside SimInfo's addMolecule
470 >    //method, at that point atoms don't have the global index yet
471 >    //(their global index are all initialized to -1).  Therefore we
472 >    //have to call addInteractionPairs explicitly here. A way to work
473 >    //around is that we can determine the beginning global indices of
474 >    //atoms before they get created.
475 >    SimInfo::MoleculeIterator mi;
476 >    Molecule* mol;
477 >    for (mol= info->beginMolecule(mi); mol != NULL; mol = info->nextMolecule(mi)) {
478 >      info->addInteractionPairs(mol);
479 >    }
480 >    
481 >    if (loadInitCoords)
482 >      loadCoordinates(info, mdFileName);    
483 >    return info;
484 >  }
485 >  
486 >  void SimCreator::gatherParameters(SimInfo *info, const std::string& mdfile) {
487 >    
488 >    //figure out the output file names
489 >    std::string prefix;
490 >    
491 > #ifdef IS_MPI
492 >    
493 >    if (worldRank == 0) {
494 > #endif // is_mpi
495 >      Globals * simParams = info->getSimParams();
496 >      if (simParams->haveFinalConfig()) {
497 >        prefix = getPrefix(simParams->getFinalConfig());
498 >      } else {
499 >        prefix = getPrefix(mdfile);
500 >      }
501 >      
502 >      info->setFinalConfigFileName(prefix + ".eor");
503 >      info->setDumpFileName(prefix + ".dump");
504 >      info->setStatFileName(prefix + ".stat");
505 >      info->setRestFileName(prefix + ".zang");
506 >      
507 > #ifdef IS_MPI
508 >      
509 >    }
510 >    
511 > #endif
512 >    
513 >  }
514 >  
515 > #ifdef IS_MPI
516 >  void SimCreator::divideMolecules(SimInfo *info) {
517 >    RealType numerator;
518 >    RealType denominator;
519 >    RealType precast;
520 >    RealType x;
521 >    RealType y;
522 >    RealType a;
523 >    int old_atoms;
524 >    int add_atoms;
525 >    int new_atoms;
526 >    int nTarget;
527 >    int done;
528 >    int i;
529 >    int j;
530 >    int loops;
531 >    int which_proc;
532 >    int nProcessors;
533 >    std::vector<int> atomsPerProc;
534 >    int nGlobalMols = info->getNGlobalMolecules();
535 >    std::vector<int> molToProcMap(nGlobalMols, -1); // default to an error condition:
536 >    
537 >    nProcessors = MPI::COMM_WORLD.Get_size();
538 >    
539 >    if (nProcessors > nGlobalMols) {
540 >      sprintf(painCave.errMsg,
541 >              "nProcessors (%d) > nMol (%d)\n"
542 >              "\tThe number of processors is larger than\n"
543 >              "\tthe number of molecules.  This will not result in a \n"
544 >              "\tusable division of atoms for force decomposition.\n"
545 >              "\tEither try a smaller number of processors, or run the\n"
546 >              "\tsingle-processor version of OpenMD.\n", nProcessors, nGlobalMols);
547 >      
548 >      painCave.isFatal = 1;
549 >      simError();
550 >    }
551 >    
552 >    int seedValue;
553 >    Globals * simParams = info->getSimParams();
554 >    SeqRandNumGen* myRandom; //divide labor does not need Parallel random number generator
555 >    if (simParams->haveSeed()) {
556 >      seedValue = simParams->getSeed();
557 >      myRandom = new SeqRandNumGen(seedValue);
558 >    }else {
559 >      myRandom = new SeqRandNumGen();
560 >    }  
561 >    
562 >    
563 >    a = 3.0 * nGlobalMols / info->getNGlobalAtoms();
564 >    
565 >    //initialize atomsPerProc
566 >    atomsPerProc.insert(atomsPerProc.end(), nProcessors, 0);
567 >    
568 >    if (worldRank == 0) {
569 >      numerator = info->getNGlobalAtoms();
570 >      denominator = nProcessors;
571 >      precast = numerator / denominator;
572 >      nTarget = (int)(precast + 0.5);
573 >      
574 >      for(i = 0; i < nGlobalMols; i++) {
575 >
576 >        done = 0;
577 >        loops = 0;
578 >        
579 >        while (!done) {
580 >          loops++;
581 >          
582 >          // Pick a processor at random
583 >          
584 >          which_proc = (int) (myRandom->rand() * nProcessors);
585 >          
586 >          //get the molecule stamp first
587 >          int stampId = info->getMoleculeStampId(i);
588 >          MoleculeStamp * moleculeStamp = info->getMoleculeStamp(stampId);
589 >          
590 >          // How many atoms does this processor have so far?
591 >          old_atoms = atomsPerProc[which_proc];
592 >          add_atoms = moleculeStamp->getNAtoms();
593 >          new_atoms = old_atoms + add_atoms;
594 >          
595 >          // If we've been through this loop too many times, we need
596 >          // to just give up and assign the molecule to this processor
597 >          // and be done with it.
598 >          
599 >          if (loops > 100) {
600 >
601 >            sprintf(painCave.errMsg,
602 >                    "There have been 100 attempts to assign molecule %d to an\n"
603 >                    "\tunderworked processor, but there's no good place to\n"
604 >                    "\tleave it.  OpenMD is assigning it at random to processor %d.\n",
605 >                    i, which_proc);
606 >          
607 >            painCave.isFatal = 0;
608 >            painCave.severity = OPENMD_INFO;
609 >            simError();
610 >            
611 >            molToProcMap[i] = which_proc;
612 >            atomsPerProc[which_proc] += add_atoms;
613 >            
614 >            done = 1;
615 >            continue;
616 >          }
617 >          
618 >          // If we can add this molecule to this processor without sending
619 >          // it above nTarget, then go ahead and do it:
620 >          
621 >          if (new_atoms <= nTarget) {
622 >            molToProcMap[i] = which_proc;
623 >            atomsPerProc[which_proc] += add_atoms;
624 >            
625 >            done = 1;
626 >            continue;
627 >          }
628 >          
629 >          // The only situation left is when new_atoms > nTarget.  We
630 >          // want to accept this with some probability that dies off the
631 >          // farther we are from nTarget
632 >          
633 >          // roughly:  x = new_atoms - nTarget
634 >          //           Pacc(x) = exp(- a * x)
635 >          // where a = penalty / (average atoms per molecule)
636 >          
637 >          x = (RealType)(new_atoms - nTarget);
638 >          y = myRandom->rand();
639 >          
640 >          if (y < exp(- a * x)) {
641 >            molToProcMap[i] = which_proc;
642 >            atomsPerProc[which_proc] += add_atoms;
643 >            
644 >            done = 1;
645 >            continue;
646 >          } else {
647 >            continue;
648 >          }
649 >        }
650 >      }
651 >      
652 >      delete myRandom;
653 >
654 >      // Spray out this nonsense to all other processors:
655 >      MPI::COMM_WORLD.Bcast(&molToProcMap[0], nGlobalMols, MPI::INT, 0);
656 >    } else {
657 >      
658 >      // Listen to your marching orders from processor 0:
659 >      MPI::COMM_WORLD.Bcast(&molToProcMap[0], nGlobalMols, MPI::INT, 0);
660 >
661 >    }
662 >    
663 >    info->setMolToProcMap(molToProcMap);
664 >    sprintf(checkPointMsg,
665 >            "Successfully divided the molecules among the processors.\n");
666 >    errorCheckPoint();
667 >  }
668 >  
669 > #endif
670 >  
671 >  void SimCreator::createMolecules(SimInfo *info) {
672 >    MoleculeCreator molCreator;
673 >    int stampId;
674 >    
675 >    for(int i = 0; i < info->getNGlobalMolecules(); i++) {
676 >      
677 > #ifdef IS_MPI
678 >      
679 >      if (info->getMolToProc(i) == worldRank) {
680 > #endif
681 >        
682 >        stampId = info->getMoleculeStampId(i);
683 >        Molecule * mol = molCreator.createMolecule(info->getForceField(),
684 >                                                   info->getMoleculeStamp(stampId),
685 >                                                   stampId, i,
686 >                                                   info->getLocalIndexManager());
687 >        
688 >        info->addMolecule(mol);
689 >        
690 > #ifdef IS_MPI
691 >        
692 >      }
693 >      
694 > #endif
695 >      
696 >    } //end for(int i=0)  
697 >  }
698 >    
699 >  int SimCreator::computeStorageLayout(SimInfo* info) {
700 >
701 >    Globals* simParams = info->getSimParams();
702 >    int nRigidBodies = info->getNGlobalRigidBodies();
703 >    set<AtomType*> atomTypes = info->getSimulatedAtomTypes();
704 >    set<AtomType*>::iterator i;
705 >    bool hasDirectionalAtoms = false;
706 >    bool hasFixedCharge = false;
707 >    bool hasDipoles = false;    
708 >    bool hasQuadrupoles = false;    
709 >    bool hasPolarizable = false;    
710 >    bool hasFluctuatingCharge = false;    
711 >    bool hasMetallic = false;
712 >    int storageLayout = 0;
713 >    storageLayout |= DataStorage::dslPosition;
714 >    storageLayout |= DataStorage::dslVelocity;
715 >    storageLayout |= DataStorage::dslForce;
716 >
717 >    for (i = atomTypes.begin(); i != atomTypes.end(); ++i) {
718 >
719 >      DirectionalAdapter da = DirectionalAdapter( (*i) );
720 >      MultipoleAdapter ma = MultipoleAdapter( (*i) );
721 >      EAMAdapter ea = EAMAdapter( (*i) );
722 >      SuttonChenAdapter sca = SuttonChenAdapter( (*i) );
723 >      PolarizableAdapter pa = PolarizableAdapter( (*i) );
724 >      FixedChargeAdapter fca = FixedChargeAdapter( (*i) );
725 >      FluctuatingChargeAdapter fqa = FluctuatingChargeAdapter( (*i) );
726 >
727 >      if (da.isDirectional()){
728 >        hasDirectionalAtoms = true;
729 >      }
730 >      if (ma.isDipole()){
731 >        hasDipoles = true;
732 >      }
733 >      if (ma.isQuadrupole()){
734 >        hasQuadrupoles = true;
735 >      }
736 >      if (ea.isEAM() || sca.isSuttonChen()){
737 >        hasMetallic = true;
738 >      }
739 >      if ( fca.isFixedCharge() ){
740 >        hasFixedCharge = true;
741 >      }
742 >      if ( fqa.isFluctuatingCharge() ){
743 >        hasFluctuatingCharge = true;
744 >      }
745 >      if ( pa.isPolarizable() ){
746 >        hasPolarizable = true;
747 >      }
748 >    }
749 >    
750 >    if (nRigidBodies > 0 || hasDirectionalAtoms) {
751 >      storageLayout |= DataStorage::dslAmat;
752 >      if(storageLayout & DataStorage::dslVelocity) {
753 >        storageLayout |= DataStorage::dslAngularMomentum;
754 >      }
755 >      if (storageLayout & DataStorage::dslForce) {
756 >        storageLayout |= DataStorage::dslTorque;
757 >      }
758 >    }
759 >    if (hasDipoles) {
760 >      storageLayout |= DataStorage::dslDipole;
761 >    }
762 >    if (hasQuadrupoles) {
763 >      storageLayout |= DataStorage::dslQuadrupole;
764 >    }
765 >    if (hasFixedCharge || hasFluctuatingCharge) {
766 >      storageLayout |= DataStorage::dslSkippedCharge;
767 >    }
768 >    if (hasMetallic) {
769 >      storageLayout |= DataStorage::dslDensity;
770 >      storageLayout |= DataStorage::dslFunctional;
771 >      storageLayout |= DataStorage::dslFunctionalDerivative;
772 >    }
773 >    if (hasPolarizable) {
774 >      storageLayout |= DataStorage::dslElectricField;
775 >    }
776 >    if (hasFluctuatingCharge){
777 >      storageLayout |= DataStorage::dslFlucQPosition;
778 >      if(storageLayout & DataStorage::dslVelocity) {
779 >        storageLayout |= DataStorage::dslFlucQVelocity;
780 >      }
781 >      if (storageLayout & DataStorage::dslForce) {
782 >        storageLayout |= DataStorage::dslFlucQForce;
783 >      }
784 >    }
785 >    
786 >    // if the user has asked for them, make sure we've got the memory for the
787 >    // objects defined.
788 >
789 >    if (simParams->getOutputParticlePotential()) {
790 >      storageLayout |= DataStorage::dslParticlePot;
791 >    }
792 >
793 >    if (simParams->havePrintHeatFlux()) {
794 >      if (simParams->getPrintHeatFlux()) {
795 >        storageLayout |= DataStorage::dslParticlePot;
796 >      }
797 >    }
798 >
799 >    if (simParams->getOutputElectricField()) {
800 >      storageLayout |= DataStorage::dslElectricField;
801 >    }
802 >
803 >    if (simParams->getOutputFluctuatingCharges()) {
804 >      storageLayout |= DataStorage::dslFlucQPosition;
805 >      storageLayout |= DataStorage::dslFlucQVelocity;
806 >      storageLayout |= DataStorage::dslFlucQForce;
807 >    }
808 >
809 >    return storageLayout;
810 >  }
811 >
812 >  void SimCreator::setGlobalIndex(SimInfo *info) {
813 >    SimInfo::MoleculeIterator mi;
814 >    Molecule::AtomIterator ai;
815 >    Molecule::RigidBodyIterator ri;
816 >    Molecule::CutoffGroupIterator ci;
817 >    Molecule::IntegrableObjectIterator  ioi;
818 >    Molecule * mol;
819 >    Atom * atom;
820 >    RigidBody * rb;
821 >    CutoffGroup * cg;
822 >    int beginAtomIndex;
823 >    int beginRigidBodyIndex;
824 >    int beginCutoffGroupIndex;
825 >    int nGlobalAtoms = info->getNGlobalAtoms();
826 >    int nGlobalRigidBodies = info->getNGlobalRigidBodies();
827 >    
828 >    beginAtomIndex = 0;
829 >    //rigidbody's index begins right after atom's
830 >    beginRigidBodyIndex = info->getNGlobalAtoms();
831 >    beginCutoffGroupIndex = 0;
832 >
833 >    for(int i = 0; i < info->getNGlobalMolecules(); i++) {
834 >      
835 > #ifdef IS_MPI      
836 >      if (info->getMolToProc(i) == worldRank) {
837 > #endif        
838 >        // stuff to do if I own this molecule
839 >        mol = info->getMoleculeByGlobalIndex(i);
840 >
841 >        //local index(index in DataStorge) of atom is important
842 >        for(atom = mol->beginAtom(ai); atom != NULL; atom = mol->nextAtom(ai)) {
843 >          atom->setGlobalIndex(beginAtomIndex++);
844 >        }
845 >        
846 >        for(rb = mol->beginRigidBody(ri); rb != NULL;
847 >            rb = mol->nextRigidBody(ri)) {
848 >          rb->setGlobalIndex(beginRigidBodyIndex++);
849 >        }
850 >        
851 >        //local index of cutoff group is trivial, it only depends on
852 >        //the order of travesing
853 >        for(cg = mol->beginCutoffGroup(ci); cg != NULL;
854 >            cg = mol->nextCutoffGroup(ci)) {
855 >          cg->setGlobalIndex(beginCutoffGroupIndex++);
856 >        }        
857 >        
858 > #ifdef IS_MPI        
859 >      }  else {
860 >
861 >        // stuff to do if I don't own this molecule
862 >        
863 >        int stampId = info->getMoleculeStampId(i);
864 >        MoleculeStamp* stamp = info->getMoleculeStamp(stampId);
865 >
866 >        beginAtomIndex += stamp->getNAtoms();
867 >        beginRigidBodyIndex += stamp->getNRigidBodies();
868 >        beginCutoffGroupIndex += stamp->getNCutoffGroups() + stamp->getNFreeAtoms();
869 >      }
870 > #endif          
871 >
872 >    } //end for(int i=0)  
873 >
874 >    //fill globalGroupMembership
875 >    std::vector<int> globalGroupMembership(info->getNGlobalAtoms(), 0);
876 >    for(mol = info->beginMolecule(mi); mol != NULL; mol = info->nextMolecule(mi)) {        
877 >      for (cg = mol->beginCutoffGroup(ci); cg != NULL; cg = mol->nextCutoffGroup(ci)) {
878 >        
879 >        for(atom = cg->beginAtom(ai); atom != NULL; atom = cg->nextAtom(ai)) {
880 >          globalGroupMembership[atom->getGlobalIndex()] = cg->getGlobalIndex();
881 >        }
882 >        
883 >      }      
884 >    }
885 >  
886 > #ifdef IS_MPI    
887 >    // Since the globalGroupMembership has been zero filled and we've only
888 >    // poked values into the atoms we know, we can do an Allreduce
889 >    // to get the full globalGroupMembership array (We think).
890 >    // This would be prettier if we could use MPI_IN_PLACE like the MPI-2
891 >    // docs said we could.
892 >    std::vector<int> tmpGroupMembership(info->getNGlobalAtoms(), 0);
893 >    MPI::COMM_WORLD.Allreduce(&globalGroupMembership[0],
894 >                              &tmpGroupMembership[0], nGlobalAtoms,
895 >                              MPI::INT, MPI::SUM);
896 >    info->setGlobalGroupMembership(tmpGroupMembership);
897 > #else
898 >    info->setGlobalGroupMembership(globalGroupMembership);
899 > #endif
900 >    
901 >    //fill molMembership
902 >    std::vector<int> globalMolMembership(info->getNGlobalAtoms() +
903 >                                         info->getNGlobalRigidBodies(), 0);
904 >    
905 >    for(mol = info->beginMolecule(mi); mol != NULL;
906 >        mol = info->nextMolecule(mi)) {
907 >      for(atom = mol->beginAtom(ai); atom != NULL; atom = mol->nextAtom(ai)) {
908 >        globalMolMembership[atom->getGlobalIndex()] = mol->getGlobalIndex();
909 >      }
910 >      for (rb = mol->beginRigidBody(ri); rb != NULL;
911 >           rb = mol->nextRigidBody(ri)) {
912 >        globalMolMembership[rb->getGlobalIndex()] = mol->getGlobalIndex();
913 >      }
914 >    }
915 >    
916 > #ifdef IS_MPI
917 >    std::vector<int> tmpMolMembership(info->getNGlobalAtoms() +
918 >                                      info->getNGlobalRigidBodies(), 0);
919 >    MPI::COMM_WORLD.Allreduce(&globalMolMembership[0], &tmpMolMembership[0],
920 >                              nGlobalAtoms + nGlobalRigidBodies,
921 >                              MPI::INT, MPI::SUM);
922 >    
923 >    info->setGlobalMolMembership(tmpMolMembership);
924 > #else
925 >    info->setGlobalMolMembership(globalMolMembership);
926 > #endif
927 >
928 >    // nIOPerMol holds the number of integrable objects per molecule
929 >    // here the molecules are listed by their global indices.
930 >
931 >    std::vector<int> nIOPerMol(info->getNGlobalMolecules(), 0);
932 >    for (mol = info->beginMolecule(mi); mol != NULL;
933 >         mol = info->nextMolecule(mi)) {
934 >      nIOPerMol[mol->getGlobalIndex()] = mol->getNIntegrableObjects();      
935 >    }
936 >    
937 > #ifdef IS_MPI
938 >    std::vector<int> numIntegrableObjectsPerMol(info->getNGlobalMolecules(), 0);
939 >    MPI::COMM_WORLD.Allreduce(&nIOPerMol[0], &numIntegrableObjectsPerMol[0],
940 >                              info->getNGlobalMolecules(), MPI::INT, MPI::SUM);
941 > #else
942 >    std::vector<int> numIntegrableObjectsPerMol = nIOPerMol;
943 > #endif    
944 >
945 >    std::vector<int> startingIOIndexForMol(info->getNGlobalMolecules());
946 >    
947 >    int startingIndex = 0;
948 >    for (int i = 0; i < info->getNGlobalMolecules(); i++) {
949 >      startingIOIndexForMol[i] = startingIndex;
950 >      startingIndex += numIntegrableObjectsPerMol[i];
951 >    }
952 >    
953 >    std::vector<StuntDouble*> IOIndexToIntegrableObject(info->getNGlobalIntegrableObjects(), (StuntDouble*)NULL);
954 >    for (mol = info->beginMolecule(mi); mol != NULL;
955 >         mol = info->nextMolecule(mi)) {
956 >      int myGlobalIndex = mol->getGlobalIndex();
957 >      int globalIO = startingIOIndexForMol[myGlobalIndex];
958 >      for (StuntDouble* sd = mol->beginIntegrableObject(ioi); sd != NULL;
959 >           sd = mol->nextIntegrableObject(ioi)) {
960 >        sd->setGlobalIntegrableObjectIndex(globalIO);
961 >        IOIndexToIntegrableObject[globalIO] = sd;
962 >        globalIO++;
963 >      }
964 >    }
965 >      
966 >    info->setIOIndexToIntegrableObject(IOIndexToIntegrableObject);
967 >    
968 >  }
969 >  
970 >  void SimCreator::loadCoordinates(SimInfo* info, const std::string& mdFileName) {
971 >    
972 >    DumpReader reader(info, mdFileName);
973 >    int nframes = reader.getNFrames();
974 >    
975 >    if (nframes > 0) {
976 >      reader.readFrame(nframes - 1);
977 >    } else {
978 >      //invalid initial coordinate file
979 >      sprintf(painCave.errMsg,
980 >              "Initial configuration file %s should at least contain one frame\n",
981 >              mdFileName.c_str());
982 >      painCave.isFatal = 1;
983 >      simError();
984 >    }
985 >    //copy the current snapshot to previous snapshot
986 >    info->getSnapshotManager()->advance();
987 >  }
988 >  
989 > } //end namespace OpenMD
990 >
991 >

Comparing:
trunk/src/brains/SimCreator.cpp (property svn:keywords), Revision 381 by tim, Tue Mar 1 14:45:45 2005 UTC vs.
branches/development/src/brains/SimCreator.cpp (property svn:keywords), Revision 1825 by gezelter, Wed Jan 9 19:27:52 2013 UTC

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