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root/group/trunk/OOPSE/libmdtools/SimSetup.cpp
Revision: 983
Committed: Mon Jan 26 21:45:03 2004 UTC (20 years, 5 months ago) by gezelter
File size: 45921 byte(s)
Log Message:
Changed default orientation in BASS to use Euler angles in the
following order: phi, theta, psi
Removed the ability to set orientation using a unit vector

File Contents

# User Rev Content
1 tim 658 #include <algorithm>
2 gezelter 829 #include <stdlib.h>
3 mmeineke 377 #include <iostream>
4 gezelter 829 #include <math.h>
5 tim 658 #include <string>
6 tim 722 #include <sprng.h>
7 mmeineke 377 #include "SimSetup.hpp"
8 tim 689 #include "ReadWrite.hpp"
9 mmeineke 377 #include "parse_me.h"
10     #include "Integrator.hpp"
11     #include "simError.h"
12    
13     #ifdef IS_MPI
14     #include "mpiBASS.h"
15     #include "mpiSimulation.hpp"
16     #endif
17    
18 mmeineke 557 // some defines for ensemble and Forcefield cases
19    
20 tim 660 #define NVE_ENS 0
21     #define NVT_ENS 1
22     #define NPTi_ENS 2
23     #define NPTf_ENS 3
24 mmeineke 812 #define NPTxyz_ENS 4
25 mmeineke 557
26 mmeineke 812
27 mmeineke 557 #define FF_DUFF 0
28     #define FF_LJ 1
29 chuckv 653 #define FF_EAM 2
30 mmeineke 557
31 tim 658 using namespace std;
32    
33 tim 962 /**
34     * Check whether dividend is divisble by divisor or not
35     */
36     bool isDivisible(double dividend, double divisor){
37     double tolerance = 0.000001;
38     double quotient;
39     double diff;
40     int intQuotient;
41    
42     quotient = dividend / divisor;
43    
44     if (quotient < 0)
45     quotient = -quotient;
46    
47     intQuotient = int (quotient + tolerance);
48    
49     diff = fabs(fabs(dividend) - intQuotient * fabs(divisor));
50    
51     if (diff <= tolerance)
52     return true;
53     else
54     return false;
55     }
56    
57 mmeineke 377 SimSetup::SimSetup(){
58 mmeineke 823
59     initSuspend = false;
60 mmeineke 656 isInfoArray = 0;
61     nInfo = 1;
62 tim 722
63 mmeineke 377 stamps = new MakeStamps();
64     globals = new Globals();
65 tim 722
66    
67 mmeineke 377 #ifdef IS_MPI
68 tim 722 strcpy(checkPointMsg, "SimSetup creation successful");
69 mmeineke 377 MPIcheckPoint();
70     #endif // IS_MPI
71     }
72    
73     SimSetup::~SimSetup(){
74     delete stamps;
75     delete globals;
76     }
77    
78 tim 722 void SimSetup::setSimInfo(SimInfo* the_info, int theNinfo){
79     info = the_info;
80     nInfo = theNinfo;
81     isInfoArray = 1;
82 mmeineke 823 initSuspend = true;
83 mmeineke 670 }
84 mmeineke 656
85    
86 tim 722 void SimSetup::parseFile(char* fileName){
87 mmeineke 377 #ifdef IS_MPI
88 tim 722 if (worldRank == 0){
89 mmeineke 377 #endif // is_mpi
90 tim 722
91 mmeineke 377 inFileName = fileName;
92 tim 722 set_interface_stamps(stamps, globals);
93    
94 mmeineke 377 #ifdef IS_MPI
95     mpiEventInit();
96     #endif
97    
98 tim 722 yacc_BASS(fileName);
99 mmeineke 377
100     #ifdef IS_MPI
101     throwMPIEvent(NULL);
102     }
103 tim 722 else{
104     receiveParse();
105     }
106 mmeineke 377 #endif
107    
108     }
109    
110     #ifdef IS_MPI
111     void SimSetup::receiveParse(void){
112 tim 722 set_interface_stamps(stamps, globals);
113     mpiEventInit();
114     MPIcheckPoint();
115     mpiEventLoop();
116 mmeineke 377 }
117    
118     #endif // is_mpi
119    
120 mmeineke 670 void SimSetup::createSim(void){
121 mmeineke 377
122 mmeineke 614 // gather all of the information from the Bass file
123 tim 689
124 mmeineke 614 gatherInfo();
125 mmeineke 377
126 mmeineke 614 // creation of complex system objects
127 mmeineke 377
128 mmeineke 614 sysObjectsCreation();
129 mmeineke 377
130 mmeineke 859 // check on the post processing info
131    
132     finalInfoCheck();
133    
134 mmeineke 614 // initialize the system coordinates
135 mmeineke 377
136 mmeineke 823 if ( !initSuspend ){
137 tim 722 initSystemCoords();
138 mmeineke 811
139     if( !(globals->getUseInitTime()) )
140     info[0].currentTime = 0.0;
141 tim 722 }
142 mmeineke 377
143 mmeineke 614 // make the output filenames
144 mmeineke 377
145 mmeineke 614 makeOutNames();
146 tim 722
147 mmeineke 555 // make the integrator
148 tim 722
149 mmeineke 616 makeIntegrator();
150 tim 722
151 chuckv 432 #ifdef IS_MPI
152     mpiSim->mpiRefresh();
153     #endif
154 mmeineke 377
155 chuckv 432 // initialize the Fortran
156 mmeineke 377
157 mmeineke 616 initFortran();
158 mmeineke 377 }
159    
160 mmeineke 407
161 tim 722 void SimSetup::makeMolecules(void){
162 mmeineke 787 int k;
163 mmeineke 412 int i, j, exI, exJ, tempEx, stampID, atomOffset, excludeOffset;
164 mmeineke 616 molInit molInfo;
165 mmeineke 407 DirectionalAtom* dAtom;
166 mmeineke 412 LinkedAssign* extras;
167     LinkedAssign* current_extra;
168 mmeineke 407 AtomStamp* currentAtom;
169     BondStamp* currentBond;
170     BendStamp* currentBend;
171     TorsionStamp* currentTorsion;
172 mmeineke 427
173     bond_pair* theBonds;
174     bend_set* theBends;
175     torsion_set* theTorsions;
176    
177 mmeineke 407 //init the forceField paramters
178    
179     the_ff->readParams();
180    
181 tim 722
182 mmeineke 427 // init the atoms
183 mmeineke 407
184 gezelter 983 double phi, theta, psi;
185     double sux, suy, suz;
186     double Axx, Axy, Axz, Ayx, Ayy, Ayz, Azx, Azy, Azz;
187 mmeineke 427 double ux, uy, uz, u, uSqr;
188 mmeineke 407
189 tim 722 for (k = 0; k < nInfo; k++){
190     the_ff->setSimInfo(&(info[k]));
191    
192 mmeineke 670 atomOffset = 0;
193     excludeOffset = 0;
194 tim 722 for (i = 0; i < info[k].n_mol; i++){
195 mmeineke 670 stampID = info[k].molecules[i].getStampID();
196 mmeineke 412
197 tim 722 molInfo.nAtoms = comp_stamps[stampID]->getNAtoms();
198     molInfo.nBonds = comp_stamps[stampID]->getNBonds();
199     molInfo.nBends = comp_stamps[stampID]->getNBends();
200 mmeineke 670 molInfo.nTorsions = comp_stamps[stampID]->getNTorsions();
201     molInfo.nExcludes = molInfo.nBonds + molInfo.nBends + molInfo.nTorsions;
202 tim 722
203 mmeineke 670 molInfo.myAtoms = &(info[k].atoms[atomOffset]);
204     molInfo.myExcludes = &(info[k].excludes[excludeOffset]);
205 tim 722 molInfo.myBonds = new Bond * [molInfo.nBonds];
206     molInfo.myBends = new Bend * [molInfo.nBends];
207     molInfo.myTorsions = new Torsion * [molInfo.nTorsions];
208 mmeineke 407
209 mmeineke 670 theBonds = new bond_pair[molInfo.nBonds];
210     theBends = new bend_set[molInfo.nBends];
211     theTorsions = new torsion_set[molInfo.nTorsions];
212 tim 722
213 mmeineke 670 // make the Atoms
214 tim 722
215     for (j = 0; j < molInfo.nAtoms; j++){
216     currentAtom = comp_stamps[stampID]->getAtom(j);
217     if (currentAtom->haveOrientation()){
218     dAtom = new DirectionalAtom((j + atomOffset),
219     info[k].getConfiguration());
220     info[k].n_oriented++;
221     molInfo.myAtoms[j] = dAtom;
222    
223 gezelter 983 // Directional Atoms have standard unit vectors which are oriented
224     // in space using the three Euler angles. We assume the standard
225     // unit vector was originally along the z axis below.
226 tim 722
227 gezelter 983 phi = currentAtom->getEulerPhi();
228     theta = currentAtom->getEulerTheta();
229     psi = currentAtom->getEulerPsi();
230    
231     Axx = (cos(phi) * cos(psi)) - (sin(phi) * cos(theta) * sin(psi));
232     Axy = (sin(phi) * cos(psi)) + (cos(phi) * cos(theta) * sin(psi));
233     Axz = sin(theta) * sin(psi);
234    
235     Ayx = -(cos(phi) * sin(psi)) - (sin(phi) * cos(theta) * cos(psi));
236     Ayy = -(sin(phi) * sin(psi)) + (cos(phi) * cos(theta) * cos(psi));
237     Ayz = sin(theta) * cos(psi);
238    
239     Azx = sin(phi) * sin(theta);
240     Azy = -cos(phi) * sin(theta);
241     Azz = cos(theta);
242    
243     sux = 0.0;
244     suy = 0.0;
245     suz = 1.0;
246    
247     ux = (Axx * sux) + (Ayx * suy) + (Azx * suz);
248     uy = (Axy * sux) + (Ayy * suy) + (Azy * suz);
249     uz = (Axz * sux) + (Ayz * suy) + (Azz * suz);
250    
251 tim 722 uSqr = (ux * ux) + (uy * uy) + (uz * uz);
252    
253     u = sqrt(uSqr);
254     ux = ux / u;
255     uy = uy / u;
256     uz = uz / u;
257    
258     dAtom->setSUx(ux);
259     dAtom->setSUy(uy);
260     dAtom->setSUz(uz);
261     }
262     else{
263     molInfo.myAtoms[j] = new GeneralAtom((j + atomOffset),
264     info[k].getConfiguration());
265     }
266     molInfo.myAtoms[j]->setType(currentAtom->getType());
267    
268 mmeineke 407 #ifdef IS_MPI
269 tim 722
270     molInfo.myAtoms[j]->setGlobalIndex(globalIndex[j + atomOffset]);
271    
272 mmeineke 407 #endif // is_mpi
273 mmeineke 670 }
274 tim 722
275     // make the bonds
276     for (j = 0; j < molInfo.nBonds; j++){
277     currentBond = comp_stamps[stampID]->getBond(j);
278     theBonds[j].a = currentBond->getA() + atomOffset;
279     theBonds[j].b = currentBond->getB() + atomOffset;
280    
281     exI = theBonds[j].a;
282     exJ = theBonds[j].b;
283    
284     // exclude_I must always be the smaller of the pair
285     if (exI > exJ){
286     tempEx = exI;
287     exI = exJ;
288     exJ = tempEx;
289     }
290 mmeineke 670 #ifdef IS_MPI
291 tim 722 tempEx = exI;
292     exI = info[k].atoms[tempEx]->getGlobalIndex() + 1;
293     tempEx = exJ;
294     exJ = info[k].atoms[tempEx]->getGlobalIndex() + 1;
295    
296     info[k].excludes[j + excludeOffset]->setPair(exI, exJ);
297 mmeineke 412 #else // isn't MPI
298 tim 722
299     info[k].excludes[j + excludeOffset]->setPair((exI + 1), (exJ + 1));
300 mmeineke 412 #endif //is_mpi
301 mmeineke 670 }
302     excludeOffset += molInfo.nBonds;
303 tim 722
304 mmeineke 670 //make the bends
305 tim 722 for (j = 0; j < molInfo.nBends; j++){
306     currentBend = comp_stamps[stampID]->getBend(j);
307     theBends[j].a = currentBend->getA() + atomOffset;
308     theBends[j].b = currentBend->getB() + atomOffset;
309     theBends[j].c = currentBend->getC() + atomOffset;
310    
311     if (currentBend->haveExtras()){
312     extras = currentBend->getExtras();
313     current_extra = extras;
314    
315     while (current_extra != NULL){
316     if (!strcmp(current_extra->getlhs(), "ghostVectorSource")){
317     switch (current_extra->getType()){
318     case 0:
319     theBends[j].ghost = current_extra->getInt() + atomOffset;
320     theBends[j].isGhost = 1;
321     break;
322    
323     case 1:
324     theBends[j].ghost = (int) current_extra->getDouble() +
325     atomOffset;
326     theBends[j].isGhost = 1;
327     break;
328    
329     default:
330     sprintf(painCave.errMsg,
331     "SimSetup Error: ghostVectorSource was neither a "
332     "double nor an int.\n"
333     "-->Bend[%d] in %s\n",
334     j, comp_stamps[stampID]->getID());
335     painCave.isFatal = 1;
336     simError();
337     }
338     }
339     else{
340     sprintf(painCave.errMsg,
341     "SimSetup Error: unhandled bend assignment:\n"
342     " -->%s in Bend[%d] in %s\n",
343     current_extra->getlhs(), j, comp_stamps[stampID]->getID());
344     painCave.isFatal = 1;
345     simError();
346     }
347    
348     current_extra = current_extra->getNext();
349     }
350 tim 701 }
351 tim 722
352     if (!theBends[j].isGhost){
353     exI = theBends[j].a;
354     exJ = theBends[j].c;
355     }
356     else{
357     exI = theBends[j].a;
358     exJ = theBends[j].b;
359     }
360    
361     // exclude_I must always be the smaller of the pair
362     if (exI > exJ){
363     tempEx = exI;
364     exI = exJ;
365     exJ = tempEx;
366     }
367 mmeineke 670 #ifdef IS_MPI
368 tim 722 tempEx = exI;
369     exI = info[k].atoms[tempEx]->getGlobalIndex() + 1;
370     tempEx = exJ;
371     exJ = info[k].atoms[tempEx]->getGlobalIndex() + 1;
372    
373     info[k].excludes[j + excludeOffset]->setPair(exI, exJ);
374 mmeineke 670 #else // isn't MPI
375 tim 722 info[k].excludes[j + excludeOffset]->setPair((exI + 1), (exJ + 1));
376 mmeineke 670 #endif //is_mpi
377 mmeineke 412 }
378 mmeineke 670 excludeOffset += molInfo.nBends;
379 tim 722
380     for (j = 0; j < molInfo.nTorsions; j++){
381     currentTorsion = comp_stamps[stampID]->getTorsion(j);
382     theTorsions[j].a = currentTorsion->getA() + atomOffset;
383     theTorsions[j].b = currentTorsion->getB() + atomOffset;
384     theTorsions[j].c = currentTorsion->getC() + atomOffset;
385     theTorsions[j].d = currentTorsion->getD() + atomOffset;
386    
387     exI = theTorsions[j].a;
388     exJ = theTorsions[j].d;
389    
390     // exclude_I must always be the smaller of the pair
391     if (exI > exJ){
392     tempEx = exI;
393     exI = exJ;
394     exJ = tempEx;
395     }
396 mmeineke 670 #ifdef IS_MPI
397 tim 722 tempEx = exI;
398     exI = info[k].atoms[tempEx]->getGlobalIndex() + 1;
399     tempEx = exJ;
400     exJ = info[k].atoms[tempEx]->getGlobalIndex() + 1;
401    
402     info[k].excludes[j + excludeOffset]->setPair(exI, exJ);
403 mmeineke 407 #else // isn't MPI
404 tim 722 info[k].excludes[j + excludeOffset]->setPair((exI + 1), (exJ + 1));
405 mmeineke 412 #endif //is_mpi
406 mmeineke 670 }
407     excludeOffset += molInfo.nTorsions;
408 tim 722
409    
410 mmeineke 670 // send the arrays off to the forceField for init.
411 mmeineke 407
412 tim 722 the_ff->initializeAtoms(molInfo.nAtoms, molInfo.myAtoms);
413     the_ff->initializeBonds(molInfo.nBonds, molInfo.myBonds, theBonds);
414     the_ff->initializeBends(molInfo.nBends, molInfo.myBends, theBends);
415     the_ff->initializeTorsions(molInfo.nTorsions, molInfo.myTorsions,
416     theTorsions);
417    
418    
419     info[k].molecules[i].initialize(molInfo);
420    
421    
422 mmeineke 670 atomOffset += molInfo.nAtoms;
423     delete[] theBonds;
424     delete[] theBends;
425     delete[] theTorsions;
426 mmeineke 412 }
427 mmeineke 414 }
428 tim 722
429 chuckv 434 #ifdef IS_MPI
430 tim 722 sprintf(checkPointMsg, "all molecules initialized succesfully");
431 chuckv 434 MPIcheckPoint();
432     #endif // is_mpi
433 tim 722
434 mmeineke 670 // clean up the forcefield
435 chuckv 434
436 mmeineke 420 the_ff->calcRcut();
437 mmeineke 414 the_ff->cleanMe();
438     }
439 mmeineke 407
440 tim 722 void SimSetup::initFromBass(void){
441 mmeineke 377 int i, j, k;
442     int n_cells;
443     double cellx, celly, cellz;
444     double temp1, temp2, temp3;
445     int n_per_extra;
446     int n_extra;
447     int have_extra, done;
448    
449 mmeineke 670 double vel[3];
450     vel[0] = 0.0;
451     vel[1] = 0.0;
452     vel[2] = 0.0;
453    
454 tim 722 temp1 = (double) tot_nmol / 4.0;
455     temp2 = pow(temp1, (1.0 / 3.0));
456     temp3 = ceil(temp2);
457 mmeineke 377
458 tim 722 have_extra = 0;
459     if (temp2 < temp3){
460     // we have a non-complete lattice
461     have_extra = 1;
462 mmeineke 377
463 tim 722 n_cells = (int) temp3 - 1;
464 mmeineke 670 cellx = info[0].boxL[0] / temp3;
465     celly = info[0].boxL[1] / temp3;
466     cellz = info[0].boxL[2] / temp3;
467 tim 722 n_extra = tot_nmol - (4 * n_cells * n_cells * n_cells);
468     temp1 = ((double) n_extra) / (pow(temp3, 3.0) - pow(n_cells, 3.0));
469     n_per_extra = (int) ceil(temp1);
470 mmeineke 377
471 tim 722 if (n_per_extra > 4){
472     sprintf(painCave.errMsg,
473     "SimSetup error. There has been an error in constructing"
474     " the non-complete lattice.\n");
475 mmeineke 377 painCave.isFatal = 1;
476     simError();
477     }
478     }
479     else{
480 tim 722 n_cells = (int) temp3;
481 mmeineke 670 cellx = info[0].boxL[0] / temp3;
482     celly = info[0].boxL[1] / temp3;
483     cellz = info[0].boxL[2] / temp3;
484 mmeineke 377 }
485    
486     current_mol = 0;
487     current_comp_mol = 0;
488     current_comp = 0;
489     current_atom_ndx = 0;
490    
491 tim 722 for (i = 0; i < n_cells ; i++){
492     for (j = 0; j < n_cells; j++){
493     for (k = 0; k < n_cells; k++){
494     makeElement(i * cellx, j * celly, k * cellz);
495 mmeineke 377
496 tim 722 makeElement(i * cellx + 0.5 * cellx, j * celly + 0.5 * celly, k * cellz);
497 mmeineke 377
498 tim 722 makeElement(i * cellx, j * celly + 0.5 * celly, k * cellz + 0.5 * cellz);
499 mmeineke 377
500 tim 722 makeElement(i * cellx + 0.5 * cellx, j * celly, k * cellz + 0.5 * cellz);
501 mmeineke 377 }
502     }
503     }
504    
505 tim 722 if (have_extra){
506 mmeineke 377 done = 0;
507    
508     int start_ndx;
509 tim 722 for (i = 0; i < (n_cells + 1) && !done; i++){
510     for (j = 0; j < (n_cells + 1) && !done; j++){
511     if (i < n_cells){
512     if (j < n_cells){
513     start_ndx = n_cells;
514     }
515     else
516     start_ndx = 0;
517     }
518     else
519     start_ndx = 0;
520 mmeineke 377
521 tim 722 for (k = start_ndx; k < (n_cells + 1) && !done; k++){
522     makeElement(i * cellx, j * celly, k * cellz);
523     done = (current_mol >= tot_nmol);
524 mmeineke 377
525 tim 722 if (!done && n_per_extra > 1){
526     makeElement(i * cellx + 0.5 * cellx, j * celly + 0.5 * celly,
527     k * cellz);
528     done = (current_mol >= tot_nmol);
529     }
530 mmeineke 377
531 tim 722 if (!done && n_per_extra > 2){
532     makeElement(i * cellx, j * celly + 0.5 * celly,
533     k * cellz + 0.5 * cellz);
534     done = (current_mol >= tot_nmol);
535     }
536 mmeineke 377
537 tim 722 if (!done && n_per_extra > 3){
538     makeElement(i * cellx + 0.5 * cellx, j * celly,
539     k * cellz + 0.5 * cellz);
540     done = (current_mol >= tot_nmol);
541     }
542     }
543 mmeineke 377 }
544     }
545     }
546    
547 tim 722 for (i = 0; i < info[0].n_atoms; i++){
548     info[0].atoms[i]->setVel(vel);
549 mmeineke 377 }
550     }
551    
552 tim 722 void SimSetup::makeElement(double x, double y, double z){
553 mmeineke 377 int k;
554     AtomStamp* current_atom;
555     DirectionalAtom* dAtom;
556     double rotMat[3][3];
557 mmeineke 670 double pos[3];
558 mmeineke 377
559 tim 722 for (k = 0; k < comp_stamps[current_comp]->getNAtoms(); k++){
560     current_atom = comp_stamps[current_comp]->getAtom(k);
561     if (!current_atom->havePosition()){
562     sprintf(painCave.errMsg,
563     "SimSetup:initFromBass error.\n"
564     "\tComponent %s, atom %s does not have a position specified.\n"
565     "\tThe initialization routine is unable to give a start"
566     " position.\n",
567     comp_stamps[current_comp]->getID(), current_atom->getType());
568 mmeineke 377 painCave.isFatal = 1;
569     simError();
570     }
571 tim 722
572 mmeineke 670 pos[0] = x + current_atom->getPosX();
573     pos[1] = y + current_atom->getPosY();
574     pos[2] = z + current_atom->getPosZ();
575 mmeineke 377
576 tim 722 info[0].atoms[current_atom_ndx]->setPos(pos);
577 mmeineke 377
578 tim 722 if (info[0].atoms[current_atom_ndx]->isDirectional()){
579     dAtom = (DirectionalAtom *) info[0].atoms[current_atom_ndx];
580 mmeineke 377
581     rotMat[0][0] = 1.0;
582     rotMat[0][1] = 0.0;
583     rotMat[0][2] = 0.0;
584    
585     rotMat[1][0] = 0.0;
586     rotMat[1][1] = 1.0;
587     rotMat[1][2] = 0.0;
588    
589     rotMat[2][0] = 0.0;
590     rotMat[2][1] = 0.0;
591     rotMat[2][2] = 1.0;
592    
593 tim 722 dAtom->setA(rotMat);
594 mmeineke 377 }
595    
596     current_atom_ndx++;
597     }
598    
599     current_mol++;
600     current_comp_mol++;
601    
602 tim 722 if (current_comp_mol >= components_nmol[current_comp]){
603 mmeineke 377 current_comp_mol = 0;
604     current_comp++;
605     }
606     }
607 mmeineke 614
608    
609 tim 722 void SimSetup::gatherInfo(void){
610 mmeineke 787 int i;
611 mmeineke 614
612     ensembleCase = -1;
613     ffCase = -1;
614    
615 mmeineke 670 // set the easy ones first
616 mmeineke 614
617 tim 722 for (i = 0; i < nInfo; i++){
618 mmeineke 670 info[i].target_temp = globals->getTargetTemp();
619     info[i].dt = globals->getDt();
620     info[i].run_time = globals->getRunTime();
621     }
622 mmeineke 616 n_components = globals->getNComponents();
623 mmeineke 614
624    
625     // get the forceField
626    
627 tim 722 strcpy(force_field, globals->getForceField());
628 mmeineke 614
629 tim 722 if (!strcasecmp(force_field, "DUFF")){
630     ffCase = FF_DUFF;
631     }
632     else if (!strcasecmp(force_field, "LJ")){
633     ffCase = FF_LJ;
634     }
635     else if (!strcasecmp(force_field, "EAM")){
636     ffCase = FF_EAM;
637     }
638 mmeineke 614 else{
639 tim 722 sprintf(painCave.errMsg, "SimSetup Error. Unrecognized force field -> %s\n",
640     force_field);
641     painCave.isFatal = 1;
642     simError();
643 mmeineke 614 }
644    
645 tim 722 // get the ensemble
646 mmeineke 614
647 tim 722 strcpy(ensemble, globals->getEnsemble());
648 mmeineke 614
649 tim 722 if (!strcasecmp(ensemble, "NVE")){
650     ensembleCase = NVE_ENS;
651     }
652     else if (!strcasecmp(ensemble, "NVT")){
653     ensembleCase = NVT_ENS;
654     }
655     else if (!strcasecmp(ensemble, "NPTi") || !strcasecmp(ensemble, "NPT")){
656 mmeineke 614 ensembleCase = NPTi_ENS;
657 tim 722 }
658     else if (!strcasecmp(ensemble, "NPTf")){
659     ensembleCase = NPTf_ENS;
660     }
661 mmeineke 812 else if (!strcasecmp(ensemble, "NPTxyz")){
662     ensembleCase = NPTxyz_ENS;
663     }
664 mmeineke 614 else{
665 tim 722 sprintf(painCave.errMsg,
666 gezelter 965 "SimSetup Warning. Unrecognized Ensemble -> %s \n"
667     "\treverting to NVE for this simulation.\n",
668 tim 722 ensemble);
669     painCave.isFatal = 0;
670     simError();
671     strcpy(ensemble, "NVE");
672     ensembleCase = NVE_ENS;
673 mmeineke 614 }
674    
675 tim 722 for (i = 0; i < nInfo; i++){
676     strcpy(info[i].ensemble, ensemble);
677    
678 mmeineke 670 // get the mixing rule
679 mmeineke 614
680 tim 722 strcpy(info[i].mixingRule, globals->getMixingRule());
681 mmeineke 670 info[i].usePBC = globals->getPBC();
682     }
683 tim 722
684 mmeineke 614 // get the components and calculate the tot_nMol and indvidual n_mol
685 tim 722
686 mmeineke 616 the_components = globals->getComponents();
687 mmeineke 614 components_nmol = new int[n_components];
688    
689    
690 tim 722 if (!globals->haveNMol()){
691 mmeineke 614 // we don't have the total number of molecules, so we assume it is
692     // given in each component
693    
694     tot_nmol = 0;
695 tim 722 for (i = 0; i < n_components; i++){
696     if (!the_components[i]->haveNMol()){
697     // we have a problem
698     sprintf(painCave.errMsg,
699 gezelter 965 "SimSetup Error. No global NMol or component NMol given.\n"
700     "\tCannot calculate the number of atoms.\n");
701 tim 722 painCave.isFatal = 1;
702     simError();
703 mmeineke 614 }
704    
705     tot_nmol += the_components[i]->getNMol();
706     components_nmol[i] = the_components[i]->getNMol();
707     }
708     }
709     else{
710 tim 722 sprintf(painCave.errMsg,
711     "SimSetup error.\n"
712     "\tSorry, the ability to specify total"
713     " nMols and then give molfractions in the components\n"
714     "\tis not currently supported."
715     " Please give nMol in the components.\n");
716 mmeineke 614 painCave.isFatal = 1;
717     simError();
718     }
719    
720 tim 962 //check whether sample time, status time, thermal time and reset time are divisble by dt
721     if (!isDivisible(globals->getSampleTime(), globals->getDt())){
722     sprintf(painCave.errMsg,
723 gezelter 965 "Sample time is not divisible by dt.\n"
724     "\tThis will result in samples that are not uniformly\n"
725     "\tdistributed in time. If this is a problem, change\n"
726     "\tyour sampleTime variable.\n");
727 tim 962 painCave.isFatal = 0;
728     simError();
729     }
730    
731     if (globals->haveStatusTime() && !isDivisible(globals->getSampleTime(), globals->getDt())){
732     sprintf(painCave.errMsg,
733 gezelter 965 "Status time is not divisible by dt.\n"
734     "\tThis will result in status reports that are not uniformly\n"
735     "\tdistributed in time. If this is a problem, change \n"
736     "\tyour statusTime variable.\n");
737 tim 962 painCave.isFatal = 0;
738     simError();
739     }
740    
741     if (globals->haveThermalTime() && !isDivisible(globals->getThermalTime(), globals->getDt())){
742     sprintf(painCave.errMsg,
743 gezelter 965 "Thermal time is not divisible by dt.\n"
744     "\tThis will result in thermalizations that are not uniformly\n"
745     "\tdistributed in time. If this is a problem, change \n"
746     "\tyour thermalTime variable.\n");
747 tim 962 painCave.isFatal = 0;
748     simError();
749     }
750    
751     if (globals->haveResetTime() && !isDivisible(globals->getResetTime(), globals->getDt())){
752     sprintf(painCave.errMsg,
753 gezelter 965 "Reset time is not divisible by dt.\n"
754     "\tThis will result in integrator resets that are not uniformly\n"
755     "\tdistributed in time. If this is a problem, change\n"
756     "\tyour resetTime variable.\n");
757 tim 962 painCave.isFatal = 0;
758     simError();
759     }
760    
761 mmeineke 614 // set the status, sample, and thermal kick times
762    
763 tim 722 for (i = 0; i < nInfo; i++){
764     if (globals->haveSampleTime()){
765 mmeineke 670 info[i].sampleTime = globals->getSampleTime();
766     info[i].statusTime = info[i].sampleTime;
767     info[i].thermalTime = info[i].sampleTime;
768     }
769     else{
770     info[i].sampleTime = globals->getRunTime();
771     info[i].statusTime = info[i].sampleTime;
772     info[i].thermalTime = info[i].sampleTime;
773     }
774 tim 722
775     if (globals->haveStatusTime()){
776 mmeineke 670 info[i].statusTime = globals->getStatusTime();
777     }
778 tim 722
779     if (globals->haveThermalTime()){
780 mmeineke 670 info[i].thermalTime = globals->getThermalTime();
781     }
782 mmeineke 614
783 mmeineke 746 info[i].resetIntegrator = 0;
784     if( globals->haveResetTime() ){
785     info[i].resetTime = globals->getResetTime();
786     info[i].resetIntegrator = 1;
787     }
788    
789 mmeineke 670 // check for the temperature set flag
790 mmeineke 841
791 tim 722 if (globals->haveTempSet())
792     info[i].setTemp = globals->getTempSet();
793 mmeineke 855
794     // check for the extended State init
795    
796     info[i].useInitXSstate = globals->getUseInitXSstate();
797     info[i].orthoTolerance = globals->getOrthoBoxTolerance();
798 mmeineke 841
799 tim 708 }
800 mmeineke 841
801 tim 722 //setup seed for random number generator
802 tim 708 int seedValue;
803    
804 tim 722 if (globals->haveSeed()){
805 tim 708 seedValue = globals->getSeed();
806 tim 722
807     if(seedValue / 1E9 == 0){
808     sprintf(painCave.errMsg,
809     "Seed for sprng library should contain at least 9 digits\n"
810     "OOPSE will generate a seed for user\n");
811     painCave.isFatal = 0;
812     simError();
813    
814     //using seed generated by system instead of invalid seed set by user
815     #ifndef IS_MPI
816     seedValue = make_sprng_seed();
817     #else
818     if (worldRank == 0){
819     seedValue = make_sprng_seed();
820     }
821     MPI_Bcast(&seedValue, 1, MPI_INT, 0, MPI_COMM_WORLD);
822     #endif
823     }
824     }//end of if branch of globals->haveSeed()
825 tim 708 else{
826 tim 722
827 tim 708 #ifndef IS_MPI
828 tim 722 seedValue = make_sprng_seed();
829 tim 708 #else
830 tim 722 if (worldRank == 0){
831     seedValue = make_sprng_seed();
832 tim 708 }
833 tim 722 MPI_Bcast(&seedValue, 1, MPI_INT, 0, MPI_COMM_WORLD);
834 tim 708 #endif
835 tim 722 }//end of globals->haveSeed()
836 tim 708
837 tim 722 for (int i = 0; i < nInfo; i++){
838 tim 708 info[i].setSeed(seedValue);
839     }
840    
841 mmeineke 614 #ifdef IS_MPI
842 tim 722 strcpy(checkPointMsg, "Succesfully gathered all information from Bass\n");
843 mmeineke 614 MPIcheckPoint();
844     #endif // is_mpi
845     }
846    
847    
848 tim 722 void SimSetup::finalInfoCheck(void){
849 mmeineke 614 int index;
850     int usesDipoles;
851 mmeineke 670 int i;
852 mmeineke 614
853 tim 722 for (i = 0; i < nInfo; i++){
854 mmeineke 670 // check electrostatic parameters
855 tim 722
856 mmeineke 670 index = 0;
857     usesDipoles = 0;
858 tim 722 while ((index < info[i].n_atoms) && !usesDipoles){
859 mmeineke 670 usesDipoles = (info[i].atoms[index])->hasDipole();
860     index++;
861     }
862 tim 722
863 mmeineke 614 #ifdef IS_MPI
864 mmeineke 670 int myUse = usesDipoles;
865 tim 722 MPI_Allreduce(&myUse, &usesDipoles, 1, MPI_INT, MPI_LOR, MPI_COMM_WORLD);
866 mmeineke 614 #endif //is_mpi
867 tim 722
868 mmeineke 670 double theEcr, theEst;
869 tim 722
870     if (globals->getUseRF()){
871 mmeineke 670 info[i].useReactionField = 1;
872 tim 722
873     if (!globals->haveECR()){
874     sprintf(painCave.errMsg,
875 gezelter 965 "SimSetup Warning: No value was set for electrostaticCutoffRadius.\n"
876     "\tOOPSE will use a default value of 15.0 angstroms"
877     "\tfor the electrostaticCutoffRadius.\n");
878 tim 722 painCave.isFatal = 0;
879     simError();
880 mmeineke 859 theEcr = 15.0;
881 mmeineke 614 }
882 tim 722 else{
883     theEcr = globals->getECR();
884 mmeineke 614 }
885 tim 722
886     if (!globals->haveEST()){
887     sprintf(painCave.errMsg,
888 gezelter 965 "SimSetup Warning: No value was set for electrostaticSkinThickness.\n"
889     "\tOOPSE will use a default value of\n"
890     "\t0.05 * electrostaticCutoffRadius\n"
891     "\tfor the electrostaticSkinThickness\n");
892 tim 722 painCave.isFatal = 0;
893     simError();
894     theEst = 0.05 * theEcr;
895 mmeineke 670 }
896 tim 722 else{
897     theEst = globals->getEST();
898 mmeineke 670 }
899 tim 722
900 mmeineke 841 info[i].setDefaultEcr(theEcr, theEst);
901 tim 722
902     if (!globals->haveDielectric()){
903     sprintf(painCave.errMsg,
904 gezelter 965 "SimSetup Error: No Dielectric constant was set.\n"
905     "\tYou are trying to use Reaction Field without"
906     "\tsetting a dielectric constant!\n");
907 tim 722 painCave.isFatal = 1;
908     simError();
909     }
910     info[i].dielectric = globals->getDielectric();
911     }
912     else{
913     if (usesDipoles){
914     if (!globals->haveECR()){
915     sprintf(painCave.errMsg,
916 gezelter 965 "SimSetup Warning: No value was set for electrostaticCutoffRadius.\n"
917     "\tOOPSE will use a default value of 15.0 angstroms"
918     "\tfor the electrostaticCutoffRadius.\n");
919 mmeineke 859 painCave.isFatal = 0;
920     simError();
921     theEcr = 15.0;
922 tim 722 }
923     else{
924     theEcr = globals->getECR();
925     }
926 mmeineke 859
927 tim 722 if (!globals->haveEST()){
928     sprintf(painCave.errMsg,
929 gezelter 965 "SimSetup Warning: No value was set for electrostaticSkinThickness.\n"
930     "\tOOPSE will use a default value of\n"
931     "\t0.05 * electrostaticCutoffRadius\n"
932     "\tfor the electrostaticSkinThickness\n");
933 tim 722 painCave.isFatal = 0;
934     simError();
935     theEst = 0.05 * theEcr;
936     }
937     else{
938     theEst = globals->getEST();
939     }
940 mmeineke 859
941 mmeineke 841 info[i].setDefaultEcr(theEcr, theEst);
942 tim 722 }
943     }
944 mmeineke 670 }
945 mmeineke 614 #ifdef IS_MPI
946 tim 722 strcpy(checkPointMsg, "post processing checks out");
947 mmeineke 614 MPIcheckPoint();
948     #endif // is_mpi
949     }
950 mmeineke 859
951 tim 722 void SimSetup::initSystemCoords(void){
952 mmeineke 670 int i;
953 tim 722
954 tim 689 char* inName;
955    
956 tim 722 (info[0].getConfiguration())->createArrays(info[0].n_atoms);
957 mmeineke 614
958 tim 722 for (i = 0; i < info[0].n_atoms; i++)
959     info[0].atoms[i]->setCoords();
960    
961     if (globals->haveInitialConfig()){
962 mmeineke 670 InitializeFromFile* fileInit;
963 mmeineke 614 #ifdef IS_MPI // is_mpi
964 tim 722 if (worldRank == 0){
965 mmeineke 614 #endif //is_mpi
966 tim 689 inName = globals->getInitialConfig();
967 tim 722 fileInit = new InitializeFromFile(inName);
968 mmeineke 614 #ifdef IS_MPI
969 tim 722 }
970     else
971     fileInit = new InitializeFromFile(NULL);
972 mmeineke 614 #endif
973 tim 722 fileInit->readInit(info); // default velocities on
974    
975 mmeineke 670 delete fileInit;
976     }
977     else{
978 mmeineke 859
979 mmeineke 670 // no init from bass
980 mmeineke 859
981 tim 722 sprintf(painCave.errMsg,
982 mmeineke 859 "Cannot intialize a simulation without an initial configuration file.\n");
983 mmeineke 787 painCave.isFatal = 1;;
984 mmeineke 670 simError();
985 mmeineke 859
986 mmeineke 670 }
987 tim 722
988 mmeineke 614 #ifdef IS_MPI
989 tim 722 strcpy(checkPointMsg, "Successfully read in the initial configuration");
990 mmeineke 614 MPIcheckPoint();
991     #endif // is_mpi
992     }
993    
994    
995 tim 722 void SimSetup::makeOutNames(void){
996 mmeineke 670 int k;
997 mmeineke 614
998 mmeineke 670
999 tim 722 for (k = 0; k < nInfo; k++){
1000 mmeineke 614 #ifdef IS_MPI
1001 tim 722 if (worldRank == 0){
1002 mmeineke 614 #endif // is_mpi
1003 tim 722
1004     if (globals->haveFinalConfig()){
1005     strcpy(info[k].finalName, globals->getFinalConfig());
1006 mmeineke 614 }
1007     else{
1008 tim 722 strcpy(info[k].finalName, inFileName);
1009     char* endTest;
1010     int nameLength = strlen(info[k].finalName);
1011     endTest = &(info[k].finalName[nameLength - 5]);
1012     if (!strcmp(endTest, ".bass")){
1013     strcpy(endTest, ".eor");
1014     }
1015     else if (!strcmp(endTest, ".BASS")){
1016     strcpy(endTest, ".eor");
1017     }
1018     else{
1019     endTest = &(info[k].finalName[nameLength - 4]);
1020     if (!strcmp(endTest, ".bss")){
1021     strcpy(endTest, ".eor");
1022     }
1023     else if (!strcmp(endTest, ".mdl")){
1024     strcpy(endTest, ".eor");
1025     }
1026     else{
1027     strcat(info[k].finalName, ".eor");
1028     }
1029     }
1030 mmeineke 614 }
1031 tim 722
1032 mmeineke 670 // make the sample and status out names
1033 tim 722
1034     strcpy(info[k].sampleName, inFileName);
1035 mmeineke 670 char* endTest;
1036 tim 722 int nameLength = strlen(info[k].sampleName);
1037 mmeineke 670 endTest = &(info[k].sampleName[nameLength - 5]);
1038 tim 722 if (!strcmp(endTest, ".bass")){
1039     strcpy(endTest, ".dump");
1040 mmeineke 614 }
1041 tim 722 else if (!strcmp(endTest, ".BASS")){
1042     strcpy(endTest, ".dump");
1043 mmeineke 614 }
1044     else{
1045 tim 722 endTest = &(info[k].sampleName[nameLength - 4]);
1046     if (!strcmp(endTest, ".bss")){
1047     strcpy(endTest, ".dump");
1048     }
1049     else if (!strcmp(endTest, ".mdl")){
1050     strcpy(endTest, ".dump");
1051     }
1052     else{
1053     strcat(info[k].sampleName, ".dump");
1054     }
1055 mmeineke 614 }
1056 tim 722
1057     strcpy(info[k].statusName, inFileName);
1058     nameLength = strlen(info[k].statusName);
1059 mmeineke 670 endTest = &(info[k].statusName[nameLength - 5]);
1060 tim 722 if (!strcmp(endTest, ".bass")){
1061     strcpy(endTest, ".stat");
1062 mmeineke 614 }
1063 tim 722 else if (!strcmp(endTest, ".BASS")){
1064     strcpy(endTest, ".stat");
1065 mmeineke 614 }
1066     else{
1067 tim 722 endTest = &(info[k].statusName[nameLength - 4]);
1068     if (!strcmp(endTest, ".bss")){
1069     strcpy(endTest, ".stat");
1070     }
1071     else if (!strcmp(endTest, ".mdl")){
1072     strcpy(endTest, ".stat");
1073     }
1074     else{
1075     strcat(info[k].statusName, ".stat");
1076     }
1077 mmeineke 614 }
1078 tim 722
1079 mmeineke 670 #ifdef IS_MPI
1080 tim 722
1081 mmeineke 614 }
1082 mmeineke 670 #endif // is_mpi
1083 mmeineke 614 }
1084     }
1085    
1086    
1087 tim 722 void SimSetup::sysObjectsCreation(void){
1088     int i, k;
1089    
1090 mmeineke 614 // create the forceField
1091 tim 689
1092 mmeineke 614 createFF();
1093    
1094     // extract componentList
1095    
1096     compList();
1097    
1098     // calc the number of atoms, bond, bends, and torsions
1099    
1100     calcSysValues();
1101    
1102     #ifdef IS_MPI
1103     // divide the molecules among the processors
1104 tim 722
1105 mmeineke 614 mpiMolDivide();
1106     #endif //is_mpi
1107 tim 722
1108 mmeineke 614 // create the atom and SRI arrays. Also initialize Molecule Stamp ID's
1109 tim 722
1110 mmeineke 614 makeSysArrays();
1111    
1112 mmeineke 616 // make and initialize the molecules (all but atomic coordinates)
1113 tim 722
1114 mmeineke 616 makeMolecules();
1115 tim 722
1116     for (k = 0; k < nInfo; k++){
1117 mmeineke 670 info[k].identArray = new int[info[k].n_atoms];
1118 tim 722 for (i = 0; i < info[k].n_atoms; i++){
1119 mmeineke 670 info[k].identArray[i] = info[k].atoms[i]->getIdent();
1120     }
1121 mmeineke 616 }
1122 mmeineke 614 }
1123    
1124    
1125 tim 722 void SimSetup::createFF(void){
1126     switch (ffCase){
1127     case FF_DUFF:
1128     the_ff = new DUFF();
1129     break;
1130 mmeineke 614
1131 tim 722 case FF_LJ:
1132     the_ff = new LJFF();
1133     break;
1134 mmeineke 614
1135 tim 722 case FF_EAM:
1136     the_ff = new EAM_FF();
1137     break;
1138 mmeineke 614
1139 tim 722 default:
1140     sprintf(painCave.errMsg,
1141     "SimSetup Error. Unrecognized force field in case statement.\n");
1142     painCave.isFatal = 1;
1143     simError();
1144 mmeineke 614 }
1145    
1146     #ifdef IS_MPI
1147 tim 722 strcpy(checkPointMsg, "ForceField creation successful");
1148 mmeineke 614 MPIcheckPoint();
1149     #endif // is_mpi
1150     }
1151    
1152    
1153 tim 722 void SimSetup::compList(void){
1154 mmeineke 616 int i;
1155 mmeineke 670 char* id;
1156     LinkedMolStamp* headStamp = new LinkedMolStamp();
1157     LinkedMolStamp* currentStamp = NULL;
1158 tim 722 comp_stamps = new MoleculeStamp * [n_components];
1159    
1160 mmeineke 614 // make an array of molecule stamps that match the components used.
1161     // also extract the used stamps out into a separate linked list
1162 tim 722
1163     for (i = 0; i < nInfo; i++){
1164 mmeineke 670 info[i].nComponents = n_components;
1165     info[i].componentsNmol = components_nmol;
1166     info[i].compStamps = comp_stamps;
1167     info[i].headStamp = headStamp;
1168     }
1169 mmeineke 614
1170    
1171 tim 722 for (i = 0; i < n_components; i++){
1172 mmeineke 614 id = the_components[i]->getType();
1173     comp_stamps[i] = NULL;
1174 tim 722
1175 mmeineke 614 // check to make sure the component isn't already in the list
1176    
1177 tim 722 comp_stamps[i] = headStamp->match(id);
1178     if (comp_stamps[i] == NULL){
1179 mmeineke 614 // extract the component from the list;
1180 tim 722
1181     currentStamp = stamps->extractMolStamp(id);
1182     if (currentStamp == NULL){
1183     sprintf(painCave.errMsg,
1184     "SimSetup error: Component \"%s\" was not found in the "
1185     "list of declared molecules\n",
1186     id);
1187     painCave.isFatal = 1;
1188     simError();
1189 mmeineke 614 }
1190 tim 722
1191     headStamp->add(currentStamp);
1192     comp_stamps[i] = headStamp->match(id);
1193 mmeineke 614 }
1194     }
1195    
1196     #ifdef IS_MPI
1197 tim 722 strcpy(checkPointMsg, "Component stamps successfully extracted\n");
1198 mmeineke 614 MPIcheckPoint();
1199     #endif // is_mpi
1200 tim 722 }
1201 mmeineke 614
1202 tim 722 void SimSetup::calcSysValues(void){
1203 mmeineke 787 int i;
1204 mmeineke 614
1205 tim 722 int* molMembershipArray;
1206 mmeineke 614
1207     tot_atoms = 0;
1208     tot_bonds = 0;
1209     tot_bends = 0;
1210     tot_torsions = 0;
1211 tim 722 for (i = 0; i < n_components; i++){
1212     tot_atoms += components_nmol[i] * comp_stamps[i]->getNAtoms();
1213     tot_bonds += components_nmol[i] * comp_stamps[i]->getNBonds();
1214     tot_bends += components_nmol[i] * comp_stamps[i]->getNBends();
1215 mmeineke 614 tot_torsions += components_nmol[i] * comp_stamps[i]->getNTorsions();
1216     }
1217 tim 722
1218 mmeineke 614 tot_SRI = tot_bonds + tot_bends + tot_torsions;
1219 mmeineke 670 molMembershipArray = new int[tot_atoms];
1220 tim 722
1221     for (i = 0; i < nInfo; i++){
1222 mmeineke 670 info[i].n_atoms = tot_atoms;
1223     info[i].n_bonds = tot_bonds;
1224     info[i].n_bends = tot_bends;
1225     info[i].n_torsions = tot_torsions;
1226     info[i].n_SRI = tot_SRI;
1227     info[i].n_mol = tot_nmol;
1228 tim 722
1229 mmeineke 670 info[i].molMembershipArray = molMembershipArray;
1230 tim 722 }
1231 mmeineke 614 }
1232    
1233     #ifdef IS_MPI
1234    
1235 tim 722 void SimSetup::mpiMolDivide(void){
1236 mmeineke 616 int i, j, k;
1237 mmeineke 614 int localMol, allMol;
1238     int local_atoms, local_bonds, local_bends, local_torsions, local_SRI;
1239    
1240 tim 722 mpiSim = new mpiSimulation(info);
1241    
1242 mmeineke 614 globalIndex = mpiSim->divideLabor();
1243    
1244     // set up the local variables
1245 tim 722
1246 mmeineke 614 mol2proc = mpiSim->getMolToProcMap();
1247     molCompType = mpiSim->getMolComponentType();
1248 tim 722
1249 mmeineke 614 allMol = 0;
1250     localMol = 0;
1251     local_atoms = 0;
1252     local_bonds = 0;
1253     local_bends = 0;
1254     local_torsions = 0;
1255     globalAtomIndex = 0;
1256    
1257    
1258 tim 722 for (i = 0; i < n_components; i++){
1259     for (j = 0; j < components_nmol[i]; j++){
1260     if (mol2proc[allMol] == worldRank){
1261     local_atoms += comp_stamps[i]->getNAtoms();
1262     local_bonds += comp_stamps[i]->getNBonds();
1263     local_bends += comp_stamps[i]->getNBends();
1264     local_torsions += comp_stamps[i]->getNTorsions();
1265     localMol++;
1266 mmeineke 614 }
1267 tim 722 for (k = 0; k < comp_stamps[i]->getNAtoms(); k++){
1268 mmeineke 670 info[0].molMembershipArray[globalAtomIndex] = allMol;
1269 mmeineke 614 globalAtomIndex++;
1270     }
1271    
1272 tim 722 allMol++;
1273 mmeineke 614 }
1274     }
1275     local_SRI = local_bonds + local_bends + local_torsions;
1276 tim 722
1277 mmeineke 670 info[0].n_atoms = mpiSim->getMyNlocal();
1278 tim 722
1279     if (local_atoms != info[0].n_atoms){
1280     sprintf(painCave.errMsg,
1281 gezelter 965 "SimSetup error: mpiSim's localAtom (%d) and SimSetup's\n"
1282     "\tlocalAtom (%d) are not equal.\n",
1283 tim 722 info[0].n_atoms, local_atoms);
1284 mmeineke 614 painCave.isFatal = 1;
1285     simError();
1286     }
1287    
1288 mmeineke 670 info[0].n_bonds = local_bonds;
1289     info[0].n_bends = local_bends;
1290     info[0].n_torsions = local_torsions;
1291     info[0].n_SRI = local_SRI;
1292     info[0].n_mol = localMol;
1293 mmeineke 614
1294 tim 722 strcpy(checkPointMsg, "Passed nlocal consistency check.");
1295 mmeineke 614 MPIcheckPoint();
1296     }
1297 tim 722
1298 mmeineke 614 #endif // is_mpi
1299    
1300    
1301 tim 722 void SimSetup::makeSysArrays(void){
1302 mmeineke 787
1303     #ifndef IS_MPI
1304     int k, j;
1305     #endif // is_mpi
1306     int i, l;
1307 mmeineke 614
1308 mmeineke 670 Atom** the_atoms;
1309     Molecule* the_molecules;
1310     Exclude** the_excludes;
1311 mmeineke 616
1312 tim 722
1313     for (l = 0; l < nInfo; l++){
1314 mmeineke 670 // create the atom and short range interaction arrays
1315 tim 722
1316     the_atoms = new Atom * [info[l].n_atoms];
1317 mmeineke 670 the_molecules = new Molecule[info[l].n_mol];
1318     int molIndex;
1319 mmeineke 614
1320 mmeineke 670 // initialize the molecule's stampID's
1321 tim 722
1322 mmeineke 670 #ifdef IS_MPI
1323 tim 722
1324    
1325 mmeineke 670 molIndex = 0;
1326 tim 722 for (i = 0; i < mpiSim->getTotNmol(); i++){
1327     if (mol2proc[i] == worldRank){
1328     the_molecules[molIndex].setStampID(molCompType[i]);
1329     the_molecules[molIndex].setMyIndex(molIndex);
1330     the_molecules[molIndex].setGlobalIndex(i);
1331     molIndex++;
1332 mmeineke 670 }
1333 mmeineke 614 }
1334 tim 722
1335 mmeineke 614 #else // is_mpi
1336 tim 722
1337 mmeineke 670 molIndex = 0;
1338     globalAtomIndex = 0;
1339 tim 722 for (i = 0; i < n_components; i++){
1340     for (j = 0; j < components_nmol[i]; j++){
1341     the_molecules[molIndex].setStampID(i);
1342     the_molecules[molIndex].setMyIndex(molIndex);
1343     the_molecules[molIndex].setGlobalIndex(molIndex);
1344     for (k = 0; k < comp_stamps[i]->getNAtoms(); k++){
1345     info[l].molMembershipArray[globalAtomIndex] = molIndex;
1346     globalAtomIndex++;
1347     }
1348     molIndex++;
1349 mmeineke 614 }
1350     }
1351 tim 722
1352    
1353 mmeineke 614 #endif // is_mpi
1354    
1355    
1356 tim 722 if (info[l].n_SRI){
1357 mmeineke 670 Exclude::createArray(info[l].n_SRI);
1358 tim 722 the_excludes = new Exclude * [info[l].n_SRI];
1359     for (int ex = 0; ex < info[l].n_SRI; ex++){
1360     the_excludes[ex] = new Exclude(ex);
1361 mmeineke 670 }
1362     info[l].globalExcludes = new int;
1363     info[l].n_exclude = info[l].n_SRI;
1364     }
1365     else{
1366 tim 722 Exclude::createArray(1);
1367     the_excludes = new Exclude * ;
1368 mmeineke 670 the_excludes[0] = new Exclude(0);
1369 tim 722 the_excludes[0]->setPair(0, 0);
1370 mmeineke 670 info[l].globalExcludes = new int;
1371     info[l].globalExcludes[0] = 0;
1372     info[l].n_exclude = 0;
1373     }
1374 mmeineke 614
1375 mmeineke 670 // set the arrays into the SimInfo object
1376 mmeineke 614
1377 mmeineke 670 info[l].atoms = the_atoms;
1378     info[l].molecules = the_molecules;
1379     info[l].nGlobalExcludes = 0;
1380     info[l].excludes = the_excludes;
1381 mmeineke 614
1382 tim 722 the_ff->setSimInfo(info);
1383 mmeineke 670 }
1384 mmeineke 614 }
1385 mmeineke 616
1386 tim 722 void SimSetup::makeIntegrator(void){
1387 mmeineke 670 int k;
1388    
1389 mmeineke 782 NVE<RealIntegrator>* myNVE = NULL;
1390 tim 722 NVT<RealIntegrator>* myNVT = NULL;
1391 mmeineke 778 NPTi<NPT<RealIntegrator> >* myNPTi = NULL;
1392 mmeineke 780 NPTf<NPT<RealIntegrator> >* myNPTf = NULL;
1393 mmeineke 812 NPTxyz<NPT<RealIntegrator> >* myNPTxyz = NULL;
1394 tim 733
1395 tim 722 for (k = 0; k < nInfo; k++){
1396     switch (ensembleCase){
1397     case NVE_ENS:
1398     if (globals->haveZconstraints()){
1399     setupZConstraint(info[k]);
1400 mmeineke 782 myNVE = new ZConstraint<NVE<RealIntegrator> >(&(info[k]), the_ff);
1401 tim 722 }
1402 mmeineke 782 else{
1403     myNVE = new NVE<RealIntegrator>(&(info[k]), the_ff);
1404     }
1405    
1406     info->the_integrator = myNVE;
1407 tim 722 break;
1408 tim 676
1409 tim 722 case NVT_ENS:
1410     if (globals->haveZconstraints()){
1411     setupZConstraint(info[k]);
1412     myNVT = new ZConstraint<NVT<RealIntegrator> >(&(info[k]), the_ff);
1413     }
1414     else
1415     myNVT = new NVT<RealIntegrator>(&(info[k]), the_ff);
1416    
1417 tim 701 myNVT->setTargetTemp(globals->getTargetTemp());
1418 tim 722
1419     if (globals->haveTauThermostat())
1420 tim 701 myNVT->setTauThermostat(globals->getTauThermostat());
1421 tim 722 else{
1422     sprintf(painCave.errMsg,
1423     "SimSetup error: If you use the NVT\n"
1424 gezelter 965 "\tensemble, you must set tauThermostat.\n");
1425 tim 701 painCave.isFatal = 1;
1426     simError();
1427     }
1428 mmeineke 782
1429     info->the_integrator = myNVT;
1430 tim 701 break;
1431 tim 676
1432 tim 722 case NPTi_ENS:
1433     if (globals->haveZconstraints()){
1434     setupZConstraint(info[k]);
1435 mmeineke 778 myNPTi = new ZConstraint<NPTi<NPT <RealIntegrator> > >(&(info[k]), the_ff);
1436 tim 722 }
1437     else
1438 mmeineke 778 myNPTi = new NPTi<NPT<RealIntegrator> >(&(info[k]), the_ff);
1439 tim 722
1440     myNPTi->setTargetTemp(globals->getTargetTemp());
1441    
1442     if (globals->haveTargetPressure())
1443     myNPTi->setTargetPressure(globals->getTargetPressure());
1444     else{
1445     sprintf(painCave.errMsg,
1446     "SimSetup error: If you use a constant pressure\n"
1447 gezelter 965 "\tensemble, you must set targetPressure in the BASS file.\n");
1448 tim 722 painCave.isFatal = 1;
1449     simError();
1450     }
1451    
1452     if (globals->haveTauThermostat())
1453     myNPTi->setTauThermostat(globals->getTauThermostat());
1454     else{
1455     sprintf(painCave.errMsg,
1456     "SimSetup error: If you use an NPT\n"
1457 gezelter 965 "\tensemble, you must set tauThermostat.\n");
1458 tim 722 painCave.isFatal = 1;
1459     simError();
1460     }
1461    
1462     if (globals->haveTauBarostat())
1463     myNPTi->setTauBarostat(globals->getTauBarostat());
1464     else{
1465     sprintf(painCave.errMsg,
1466 tim 701 "SimSetup error: If you use an NPT\n"
1467 gezelter 965 "\tensemble, you must set tauBarostat.\n");
1468 tim 722 painCave.isFatal = 1;
1469     simError();
1470     }
1471 mmeineke 782
1472     info->the_integrator = myNPTi;
1473 tim 722 break;
1474 tim 676
1475 tim 722 case NPTf_ENS:
1476     if (globals->haveZconstraints()){
1477     setupZConstraint(info[k]);
1478 mmeineke 780 myNPTf = new ZConstraint<NPTf<NPT <RealIntegrator> > >(&(info[k]), the_ff);
1479 tim 722 }
1480     else
1481 mmeineke 780 myNPTf = new NPTf<NPT <RealIntegrator> >(&(info[k]), the_ff);
1482 tim 722
1483     myNPTf->setTargetTemp(globals->getTargetTemp());
1484    
1485     if (globals->haveTargetPressure())
1486     myNPTf->setTargetPressure(globals->getTargetPressure());
1487     else{
1488     sprintf(painCave.errMsg,
1489 tim 701 "SimSetup error: If you use a constant pressure\n"
1490 gezelter 965 "\tensemble, you must set targetPressure in the BASS file.\n");
1491 tim 722 painCave.isFatal = 1;
1492     simError();
1493     }
1494    
1495     if (globals->haveTauThermostat())
1496     myNPTf->setTauThermostat(globals->getTauThermostat());
1497 mmeineke 843
1498 tim 722 else{
1499     sprintf(painCave.errMsg,
1500 tim 701 "SimSetup error: If you use an NPT\n"
1501 gezelter 965 "\tensemble, you must set tauThermostat.\n");
1502 tim 722 painCave.isFatal = 1;
1503     simError();
1504     }
1505    
1506     if (globals->haveTauBarostat())
1507     myNPTf->setTauBarostat(globals->getTauBarostat());
1508 mmeineke 843
1509 tim 722 else{
1510     sprintf(painCave.errMsg,
1511     "SimSetup error: If you use an NPT\n"
1512 gezelter 965 "\tensemble, you must set tauBarostat.\n");
1513 tim 722 painCave.isFatal = 1;
1514     simError();
1515     }
1516 mmeineke 782
1517     info->the_integrator = myNPTf;
1518 tim 722 break;
1519 tim 676
1520 mmeineke 812 case NPTxyz_ENS:
1521     if (globals->haveZconstraints()){
1522     setupZConstraint(info[k]);
1523     myNPTxyz = new ZConstraint<NPTxyz<NPT <RealIntegrator> > >(&(info[k]), the_ff);
1524     }
1525     else
1526     myNPTxyz = new NPTxyz<NPT <RealIntegrator> >(&(info[k]), the_ff);
1527    
1528     myNPTxyz->setTargetTemp(globals->getTargetTemp());
1529    
1530     if (globals->haveTargetPressure())
1531     myNPTxyz->setTargetPressure(globals->getTargetPressure());
1532     else{
1533     sprintf(painCave.errMsg,
1534     "SimSetup error: If you use a constant pressure\n"
1535 gezelter 965 "\tensemble, you must set targetPressure in the BASS file.\n");
1536 mmeineke 812 painCave.isFatal = 1;
1537     simError();
1538     }
1539    
1540     if (globals->haveTauThermostat())
1541     myNPTxyz->setTauThermostat(globals->getTauThermostat());
1542     else{
1543     sprintf(painCave.errMsg,
1544     "SimSetup error: If you use an NPT\n"
1545 gezelter 965 "\tensemble, you must set tauThermostat.\n");
1546 mmeineke 812 painCave.isFatal = 1;
1547     simError();
1548     }
1549    
1550     if (globals->haveTauBarostat())
1551     myNPTxyz->setTauBarostat(globals->getTauBarostat());
1552     else{
1553     sprintf(painCave.errMsg,
1554     "SimSetup error: If you use an NPT\n"
1555 gezelter 965 "\tensemble, you must set tauBarostat.\n");
1556 mmeineke 812 painCave.isFatal = 1;
1557     simError();
1558     }
1559    
1560     info->the_integrator = myNPTxyz;
1561     break;
1562    
1563 tim 722 default:
1564     sprintf(painCave.errMsg,
1565     "SimSetup Error. Unrecognized ensemble in case statement.\n");
1566 tim 701 painCave.isFatal = 1;
1567     simError();
1568 tim 660 }
1569 mmeineke 616 }
1570     }
1571    
1572 tim 722 void SimSetup::initFortran(void){
1573     info[0].refreshSim();
1574 mmeineke 616
1575 tim 722 if (!strcmp(info[0].mixingRule, "standard")){
1576     the_ff->initForceField(LB_MIXING_RULE);
1577 mmeineke 616 }
1578 tim 722 else if (!strcmp(info[0].mixingRule, "explicit")){
1579     the_ff->initForceField(EXPLICIT_MIXING_RULE);
1580 mmeineke 616 }
1581     else{
1582 tim 722 sprintf(painCave.errMsg, "SimSetup Error: unknown mixing rule -> \"%s\"\n",
1583     info[0].mixingRule);
1584 mmeineke 616 painCave.isFatal = 1;
1585     simError();
1586     }
1587    
1588    
1589     #ifdef IS_MPI
1590 tim 722 strcpy(checkPointMsg, "Successfully intialized the mixingRule for Fortran.");
1591 mmeineke 616 MPIcheckPoint();
1592     #endif // is_mpi
1593     }
1594 tim 660
1595 tim 722 void SimSetup::setupZConstraint(SimInfo& theInfo){
1596 tim 701 int nZConstraints;
1597     ZconStamp** zconStamp;
1598 tim 682
1599 tim 722 if (globals->haveZconstraintTime()){
1600 tim 701 //add sample time of z-constraint into SimInfo's property list
1601     DoubleData* zconsTimeProp = new DoubleData();
1602     zconsTimeProp->setID(ZCONSTIME_ID);
1603     zconsTimeProp->setData(globals->getZconsTime());
1604     theInfo.addProperty(zconsTimeProp);
1605     }
1606     else{
1607 tim 722 sprintf(painCave.errMsg,
1608 gezelter 965 "ZConstraint error: If you use a ZConstraint,\n"
1609     "\tyou must set zconsTime.\n");
1610 tim 701 painCave.isFatal = 1;
1611 tim 722 simError();
1612 tim 701 }
1613 tim 682
1614 tim 701 //push zconsTol into siminfo, if user does not specify
1615     //value for zconsTol, a default value will be used
1616     DoubleData* zconsTol = new DoubleData();
1617     zconsTol->setID(ZCONSTOL_ID);
1618 tim 722 if (globals->haveZconsTol()){
1619 tim 701 zconsTol->setData(globals->getZconsTol());
1620     }
1621     else{
1622 tim 722 double defaultZConsTol = 0.01;
1623     sprintf(painCave.errMsg,
1624 gezelter 965 "ZConstraint Warning: Tolerance for z-constraint method is not specified.\n"
1625     "\tOOPSE will use a default value of %f.\n"
1626     "\tTo set the tolerance, use the zconsTol variable.\n",
1627 tim 722 defaultZConsTol);
1628 tim 701 painCave.isFatal = 0;
1629     simError();
1630 tim 699
1631 tim 701 zconsTol->setData(defaultZConsTol);
1632     }
1633     theInfo.addProperty(zconsTol);
1634 tim 699
1635 tim 738 //set Force Subtraction Policy
1636 tim 722 StringData* zconsForcePolicy = new StringData();
1637 tim 701 zconsForcePolicy->setID(ZCONSFORCEPOLICY_ID);
1638 tim 722
1639     if (globals->haveZconsForcePolicy()){
1640 tim 701 zconsForcePolicy->setData(globals->getZconsForcePolicy());
1641 tim 722 }
1642 tim 701 else{
1643 tim 722 sprintf(painCave.errMsg,
1644 gezelter 965 "ZConstraint Warning: No force subtraction policy was set.\n"
1645     "\tOOPSE will use PolicyByMass.\n"
1646     "\tTo set the policy, use the zconsForcePolicy variable.\n");
1647 tim 722 painCave.isFatal = 0;
1648     simError();
1649 tim 736 zconsForcePolicy->setData("BYMASS");
1650 tim 701 }
1651 tim 722
1652     theInfo.addProperty(zconsForcePolicy);
1653    
1654 tim 701 //Determine the name of ouput file and add it into SimInfo's property list
1655     //Be careful, do not use inFileName, since it is a pointer which
1656     //point to a string at master node, and slave nodes do not contain that string
1657 tim 722
1658 tim 701 string zconsOutput(theInfo.finalName);
1659 tim 722
1660 tim 701 zconsOutput = zconsOutput.substr(0, zconsOutput.rfind(".")) + ".fz";
1661 tim 722
1662 tim 701 StringData* zconsFilename = new StringData();
1663     zconsFilename->setID(ZCONSFILENAME_ID);
1664     zconsFilename->setData(zconsOutput);
1665 tim 722
1666 tim 701 theInfo.addProperty(zconsFilename);
1667 tim 722
1668 tim 701 //setup index, pos and other parameters of z-constraint molecules
1669     nZConstraints = globals->getNzConstraints();
1670     theInfo.nZconstraints = nZConstraints;
1671    
1672     zconStamp = globals->getZconStamp();
1673     ZConsParaItem tempParaItem;
1674    
1675     ZConsParaData* zconsParaData = new ZConsParaData();
1676     zconsParaData->setID(ZCONSPARADATA_ID);
1677 tim 722
1678     for (int i = 0; i < nZConstraints; i++){
1679 tim 699 tempParaItem.havingZPos = zconStamp[i]->haveZpos();
1680     tempParaItem.zPos = zconStamp[i]->getZpos();
1681     tempParaItem.zconsIndex = zconStamp[i]->getMolIndex();
1682     tempParaItem.kRatio = zconStamp[i]->getKratio();
1683    
1684     zconsParaData->addItem(tempParaItem);
1685 tim 701 }
1686 tim 699
1687 tim 736 //check the uniqueness of index
1688     if(!zconsParaData->isIndexUnique()){
1689     sprintf(painCave.errMsg,
1690 gezelter 965 "ZConstraint Error: molIndex is not unique!\n");
1691 tim 736 painCave.isFatal = 1;
1692     simError();
1693     }
1694    
1695 tim 701 //sort the parameters by index of molecules
1696     zconsParaData->sortByIndex();
1697 tim 736
1698 tim 701 //push data into siminfo, therefore, we can retrieve later
1699     theInfo.addProperty(zconsParaData);
1700 tim 660 }