Merge release-4-6 into master
[alexxy/gromacs.git] / src / gromacs / mdlib / mdebin.c
1 /* -*- mode: c; tab-width: 4; indent-tabs-mode: nil; c-basic-offset: 4; c-file-style: "stroustrup"; -*-
2  *
3  *
4  *                This source code is part of
5  *
6  *                 G   R   O   M   A   C   S
7  *
8  *          GROningen MAchine for Chemical Simulations
9  *
10  *                        VERSION 3.2.0
11  * Written by David van der Spoel, Erik Lindahl, Berk Hess, and others.
12  * Copyright (c) 1991-2000, University of Groningen, The Netherlands.
13  * Copyright (c) 2001-2004, The GROMACS development team,
14  * check out http://www.gromacs.org for more information.
15
16  * This program is free software; you can redistribute it and/or
17  * modify it under the terms of the GNU General Public License
18  * as published by the Free Software Foundation; either version 2
19  * of the License, or (at your option) any later version.
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26  * files - if they are missing, get the official version at www.gromacs.org.
27  *
28  * To help us fund GROMACS development, we humbly ask that you cite
29  * the papers on the package - you can find them in the top README file.
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35  */
36 #ifdef HAVE_CONFIG_H
37 #include <config.h>
38 #endif
39
40 #include <string.h>
41 #include <float.h>
42 #include "typedefs.h"
43 #include "string2.h"
44 #include "mdebin.h"
45 #include "smalloc.h"
46 #include "physics.h"
47 #include "enxio.h"
48 #include "vec.h"
49 #include "disre.h"
50 #include "main.h"
51 #include "network.h"
52 #include "names.h"
53 #include "orires.h"
54 #include "constr.h"
55 #include "mtop_util.h"
56 #include "xvgr.h"
57 #include "gmxfio.h"
58 #include "macros.h"
59 #include "mdrun.h"
60 #include "mdebin_bar.h"
61
62
63 static const char *conrmsd_nm[] = { "Constr. rmsd", "Constr.2 rmsd" };
64
65 static const char *boxs_nm[] = { "Box-X", "Box-Y", "Box-Z" };
66
67 static const char *tricl_boxs_nm[] = {
68     "Box-XX", "Box-YY", "Box-ZZ",
69     "Box-YX", "Box-ZX", "Box-ZY"
70 };
71
72 static const char *vol_nm[] = { "Volume" };
73
74 static const char *dens_nm[] = {"Density" };
75
76 static const char *pv_nm[] = {"pV" };
77
78 static const char *enthalpy_nm[] = {"Enthalpy" };
79
80 static const char *boxvel_nm[] = {
81     "Box-Vel-XX", "Box-Vel-YY", "Box-Vel-ZZ",
82     "Box-Vel-YX", "Box-Vel-ZX", "Box-Vel-ZY"
83 };
84
85 #define NBOXS asize(boxs_nm)
86 #define NTRICLBOXS asize(tricl_boxs_nm)
87
88 t_mdebin *init_mdebin(ener_file_t fp_ene,
89                       const gmx_mtop_t *mtop,
90                       const t_inputrec *ir,
91                       FILE *fp_dhdl)
92 {
93     const char *ener_nm[F_NRE];
94     static const char *vir_nm[] = {
95         "Vir-XX", "Vir-XY", "Vir-XZ",
96         "Vir-YX", "Vir-YY", "Vir-YZ",
97         "Vir-ZX", "Vir-ZY", "Vir-ZZ"
98     };
99     static const char *sv_nm[] = {
100         "ShakeVir-XX", "ShakeVir-XY", "ShakeVir-XZ",
101         "ShakeVir-YX", "ShakeVir-YY", "ShakeVir-YZ",
102         "ShakeVir-ZX", "ShakeVir-ZY", "ShakeVir-ZZ"
103     };
104     static const char *fv_nm[] = {
105         "ForceVir-XX", "ForceVir-XY", "ForceVir-XZ",
106         "ForceVir-YX", "ForceVir-YY", "ForceVir-YZ",
107         "ForceVir-ZX", "ForceVir-ZY", "ForceVir-ZZ"
108     };
109     static const char *pres_nm[] = {
110         "Pres-XX","Pres-XY","Pres-XZ",
111         "Pres-YX","Pres-YY","Pres-YZ",
112         "Pres-ZX","Pres-ZY","Pres-ZZ"
113     };
114     static const char *surft_nm[] = {
115         "#Surf*SurfTen"
116     };
117     static const char *mu_nm[] = {
118         "Mu-X", "Mu-Y", "Mu-Z"
119     };
120     static const char *vcos_nm[] = {
121         "2CosZ*Vel-X"
122     };
123     static const char *visc_nm[] = {
124         "1/Viscosity"
125     };
126     static const char *baro_nm[] = {
127         "Barostat"
128     };
129
130     char     **grpnms;
131     const gmx_groups_t *groups;
132     char     **gnm;
133     char     buf[256];
134     const char     *bufi;
135     t_mdebin *md;
136     int      i,j,ni,nj,n,nh,k,kk,ncon,nset;
137     gmx_bool     bBHAM,bNoseHoover,b14;
138
139     snew(md,1);
140
141     md->bVir=TRUE;
142     md->bPress=TRUE;
143     md->bSurft=TRUE;
144     md->bMu=TRUE;
145
146     if (EI_DYNAMICS(ir->eI))
147     {
148         md->delta_t = ir->delta_t;
149     }
150     else
151     {
152         md->delta_t = 0;
153     }
154
155     groups = &mtop->groups;
156
157     bBHAM = (mtop->ffparams.functype[0] == F_BHAM);
158     b14   = (gmx_mtop_ftype_count(mtop,F_LJ14) > 0 ||
159              gmx_mtop_ftype_count(mtop,F_LJC14_Q) > 0);
160
161     ncon = gmx_mtop_ftype_count(mtop,F_CONSTR);
162     nset = gmx_mtop_ftype_count(mtop,F_SETTLE);
163     md->bConstr    = (ncon > 0 || nset > 0);
164     md->bConstrVir = FALSE;
165     if (md->bConstr) {
166         if (ncon > 0 && ir->eConstrAlg == econtLINCS) {
167             if (ir->eI == eiSD2)
168                 md->nCrmsd = 2;
169             else
170                 md->nCrmsd = 1;
171         }
172         md->bConstrVir = (getenv("GMX_CONSTRAINTVIR") != NULL);
173     } else {
174         md->nCrmsd = 0;
175     }
176
177     /* Energy monitoring */
178     for(i=0;i<egNR;i++)
179     {
180         md->bEInd[i]=FALSE;
181     }
182
183 #ifndef GMX_OPENMM
184     for(i=0; i<F_NRE; i++)
185     {
186         md->bEner[i] = FALSE;
187         if (i == F_LJ)
188             md->bEner[i] = !bBHAM;
189         else if (i == F_BHAM)
190             md->bEner[i] = bBHAM;
191         else if (i == F_EQM)
192             md->bEner[i] = ir->bQMMM;
193         else if (i == F_COUL_LR)
194             md->bEner[i] = (ir->rcoulomb > ir->rlist);
195         else if (i == F_LJ_LR)
196             md->bEner[i] = (!bBHAM && ir->rvdw > ir->rlist);
197         else if (i == F_BHAM_LR)
198             md->bEner[i] = (bBHAM && ir->rvdw > ir->rlist);
199         else if (i == F_RF_EXCL)
200             md->bEner[i] = (EEL_RF(ir->coulombtype) && ir->coulombtype != eelRF_NEC);
201         else if (i == F_COUL_RECIP)
202             md->bEner[i] = EEL_FULL(ir->coulombtype);
203         else if (i == F_LJ14)
204             md->bEner[i] = b14;
205         else if (i == F_COUL14)
206             md->bEner[i] = b14;
207         else if (i == F_LJC14_Q || i == F_LJC_PAIRS_NB)
208             md->bEner[i] = FALSE;
209         else if ((i == F_DVDL_COUL && ir->fepvals->separate_dvdl[efptCOUL]) ||
210                  (i == F_DVDL_VDW  && ir->fepvals->separate_dvdl[efptVDW]) ||
211                  (i == F_DVDL_BONDED && ir->fepvals->separate_dvdl[efptBONDED]) ||
212                  (i == F_DVDL_RESTRAINT && ir->fepvals->separate_dvdl[efptRESTRAINT]) ||
213                  (i == F_DKDL && ir->fepvals->separate_dvdl[efptMASS]) ||
214                  (i == F_DVDL && ir->fepvals->separate_dvdl[efptFEP]))
215             md->bEner[i] = (ir->efep != efepNO);
216         else if ((interaction_function[i].flags & IF_VSITE) ||
217                  (i == F_CONSTR) || (i == F_CONSTRNC) || (i == F_SETTLE))
218             md->bEner[i] = FALSE;
219         else if ((i == F_COUL_SR) || (i == F_EPOT) || (i == F_PRES)  || (i==F_EQM))
220             md->bEner[i] = TRUE;
221         else if ((i == F_GBPOL) && ir->implicit_solvent==eisGBSA)
222             md->bEner[i] = TRUE;
223         else if ((i == F_NPSOLVATION) && ir->implicit_solvent==eisGBSA && (ir->sa_algorithm != esaNO))
224             md->bEner[i] = TRUE;
225         else if ((i == F_GB12) || (i == F_GB13) || (i == F_GB14))
226             md->bEner[i] = FALSE;
227         else if ((i == F_ETOT) || (i == F_EKIN) || (i == F_TEMP))
228             md->bEner[i] = EI_DYNAMICS(ir->eI);
229         else if (i==F_VTEMP)
230             md->bEner[i] =  (EI_DYNAMICS(ir->eI) && getenv("GMX_VIRIAL_TEMPERATURE"));
231         else if (i == F_DISPCORR || i == F_PDISPCORR)
232             md->bEner[i] = (ir->eDispCorr != edispcNO);
233         else if (i == F_DISRESVIOL)
234             md->bEner[i] = (gmx_mtop_ftype_count(mtop,F_DISRES) > 0);
235         else if (i == F_ORIRESDEV)
236             md->bEner[i] = (gmx_mtop_ftype_count(mtop,F_ORIRES) > 0);
237         else if (i == F_CONNBONDS)
238             md->bEner[i] = FALSE;
239         else if (i == F_COM_PULL)
240             md->bEner[i] = (ir->ePull == epullUMBRELLA || ir->ePull == epullCONST_F || ir->bRot);
241         else if (i == F_ECONSERVED)
242             md->bEner[i] = ((ir->etc == etcNOSEHOOVER || ir->etc == etcVRESCALE) &&
243                             (ir->epc == epcNO || ir->epc==epcMTTK));
244         else
245             md->bEner[i] = (gmx_mtop_ftype_count(mtop,i) > 0);
246     }
247 #else
248     /* OpenMM always produces only the following 4 energy terms */
249     md->bEner[F_EPOT] = TRUE;
250     md->bEner[F_EKIN] = TRUE;
251     md->bEner[F_ETOT] = TRUE;
252     md->bEner[F_TEMP] = TRUE;
253 #endif
254
255     /* for adress simulations, most energy terms are not meaningfull, and thus disabled*/
256     if (ir->bAdress && !debug) {
257         for (i = 0; i < F_NRE; i++) {
258             md->bEner[i] = FALSE;
259             if(i == F_EKIN){ md->bEner[i] = TRUE;}
260             if(i == F_TEMP){ md->bEner[i] = TRUE;}
261         }
262         md->bVir=FALSE;
263         md->bPress=FALSE;
264         md->bSurft=FALSE;
265         md->bMu=FALSE;
266     }
267
268     md->f_nre=0;
269     for(i=0; i<F_NRE; i++)
270     {
271         if (md->bEner[i])
272         {
273             /* FIXME: The constness should not be cast away */
274             /*ener_nm[f_nre]=(char *)interaction_function[i].longname;*/
275             ener_nm[md->f_nre]=interaction_function[i].longname;
276             md->f_nre++;
277         }
278     }
279
280     md->epc = ir->epc;
281     md->bDiagPres = !TRICLINIC(ir->ref_p);
282     md->ref_p = (ir->ref_p[XX][XX]+ir->ref_p[YY][YY]+ir->ref_p[ZZ][ZZ])/DIM;
283     md->bTricl = TRICLINIC(ir->compress) || TRICLINIC(ir->deform);
284     md->bDynBox = DYNAMIC_BOX(*ir);
285     md->etc = ir->etc;
286     md->bNHC_trotter = IR_NVT_TROTTER(ir);
287     md->bPrintNHChains = ir-> bPrintNHChains;
288     md->bMTTK = (IR_NPT_TROTTER(ir) || IR_NPH_TROTTER(ir));
289
290     md->ebin  = mk_ebin();
291     /* Pass NULL for unit to let get_ebin_space determine the units
292      * for interaction_function[i].longname
293      */
294     md->ie    = get_ebin_space(md->ebin,md->f_nre,ener_nm,NULL);
295     if (md->nCrmsd)
296     {
297         /* This should be called directly after the call for md->ie,
298          * such that md->iconrmsd follows directly in the list.
299          */
300         md->iconrmsd = get_ebin_space(md->ebin,md->nCrmsd,conrmsd_nm,"");
301     }
302     if (md->bDynBox)
303     {
304         md->ib    = get_ebin_space(md->ebin,
305                                    md->bTricl ? NTRICLBOXS : NBOXS,
306                                    md->bTricl ? tricl_boxs_nm : boxs_nm,
307                                    unit_length);
308         md->ivol  = get_ebin_space(md->ebin, 1, vol_nm,  unit_volume);
309         md->idens = get_ebin_space(md->ebin, 1, dens_nm, unit_density_SI);
310         if (md->bDiagPres)
311         {
312             md->ipv   = get_ebin_space(md->ebin, 1, pv_nm,   unit_energy);
313             md->ienthalpy = get_ebin_space(md->ebin, 1, enthalpy_nm,   unit_energy);
314         }
315     }
316     if (md->bConstrVir)
317     {
318         md->isvir = get_ebin_space(md->ebin,asize(sv_nm),sv_nm,unit_energy);
319         md->ifvir = get_ebin_space(md->ebin,asize(fv_nm),fv_nm,unit_energy);
320     }
321     if (md->bVir)
322         md->ivir   = get_ebin_space(md->ebin,asize(vir_nm),vir_nm,unit_energy);
323     if (md->bPress)
324         md->ipres  = get_ebin_space(md->ebin,asize(pres_nm),pres_nm,unit_pres_bar);
325     if (md->bSurft)
326         md->isurft = get_ebin_space(md->ebin,asize(surft_nm),surft_nm,
327                                 unit_surft_bar);
328     if (md->epc == epcPARRINELLORAHMAN || md->epc == epcMTTK)
329     {
330         md->ipc = get_ebin_space(md->ebin,md->bTricl ? 6 : 3,
331                                  boxvel_nm,unit_vel);
332     }
333     if (md->bMu)
334         md->imu    = get_ebin_space(md->ebin,asize(mu_nm),mu_nm,unit_dipole_D);
335     if (ir->cos_accel != 0)
336     {
337         md->ivcos = get_ebin_space(md->ebin,asize(vcos_nm),vcos_nm,unit_vel);
338         md->ivisc = get_ebin_space(md->ebin,asize(visc_nm),visc_nm,
339                                    unit_invvisc_SI);
340     }
341
342     /* Energy monitoring */
343     for(i=0;i<egNR;i++)
344     {
345         md->bEInd[i] = FALSE;
346     }
347     md->bEInd[egCOULSR] = TRUE;
348     md->bEInd[egLJSR  ] = TRUE;
349
350     if (ir->rcoulomb > ir->rlist)
351     {
352         md->bEInd[egCOULLR] = TRUE;
353     }
354     if (!bBHAM)
355     {
356         if (ir->rvdw > ir->rlist)
357         {
358             md->bEInd[egLJLR]   = TRUE;
359         }
360     }
361     else
362     {
363         md->bEInd[egLJSR]   = FALSE;
364         md->bEInd[egBHAMSR] = TRUE;
365         if (ir->rvdw > ir->rlist)
366         {
367             md->bEInd[egBHAMLR]   = TRUE;
368         }
369     }
370     if (b14)
371     {
372         md->bEInd[egLJ14] = TRUE;
373         md->bEInd[egCOUL14] = TRUE;
374     }
375     md->nEc=0;
376     for(i=0; (i<egNR); i++)
377     {
378         if (md->bEInd[i])
379         {
380             md->nEc++;
381         }
382     }
383
384     n=groups->grps[egcENER].nr;
385     /* for adress simulations, most energy terms are not meaningfull, and thus disabled*/
386     if (!ir->bAdress){
387         /*standard simulation*/
388         md->nEg=n;
389         md->nE=(n*(n+1))/2;
390     }
391     else if (!debug) {
392         /*AdResS simulation*/
393        md->nU=0;
394        md->nEg=0;
395        md->nE=0;
396        md->nEc=0;
397        md->isvir=FALSE;
398     }
399     snew(md->igrp,md->nE);
400     if (md->nE > 1)
401     {
402         n=0;
403         snew(gnm,md->nEc);
404         for(k=0; (k<md->nEc); k++)
405         {
406             snew(gnm[k],STRLEN);
407         }
408         for(i=0; (i<groups->grps[egcENER].nr); i++)
409         {
410             ni=groups->grps[egcENER].nm_ind[i];
411             for(j=i; (j<groups->grps[egcENER].nr); j++)
412             {
413                 nj=groups->grps[egcENER].nm_ind[j];
414                 for(k=kk=0; (k<egNR); k++)
415                 {
416                     if (md->bEInd[k])
417                     {
418                         sprintf(gnm[kk],"%s:%s-%s",egrp_nm[k],
419                                 *(groups->grpname[ni]),*(groups->grpname[nj]));
420                         kk++;
421                     }
422                 }
423                 md->igrp[n]=get_ebin_space(md->ebin,md->nEc,
424                                            (const char **)gnm,unit_energy);
425                 n++;
426             }
427         }
428         for(k=0; (k<md->nEc); k++)
429         {
430             sfree(gnm[k]);
431         }
432         sfree(gnm);
433
434         if (n != md->nE)
435         {
436             gmx_incons("Number of energy terms wrong");
437         }
438     }
439
440     md->nTC=groups->grps[egcTC].nr;
441     md->nNHC = ir->opts.nhchainlength; /* shorthand for number of NH chains */
442     if (md->bMTTK)
443     {
444         md->nTCP = 1;  /* assume only one possible coupling system for barostat
445                           for now */
446     }
447     else
448     {
449         md->nTCP = 0;
450     }
451     if (md->etc == etcNOSEHOOVER)
452     {
453         if (md->bNHC_trotter)
454         {
455             md->mde_n = 2*md->nNHC*md->nTC;
456         }
457         else
458         {
459             md->mde_n = 2*md->nTC;
460         }
461         if (md->epc == epcMTTK)
462         {
463             md->mdeb_n = 2*md->nNHC*md->nTCP;
464         }
465     } else {
466         md->mde_n = md->nTC;
467         md->mdeb_n = 0;
468     }
469
470     snew(md->tmp_r,md->mde_n);
471     snew(md->tmp_v,md->mde_n);
472     snew(md->grpnms,md->mde_n);
473     grpnms = md->grpnms;
474
475     for(i=0; (i<md->nTC); i++)
476     {
477         ni=groups->grps[egcTC].nm_ind[i];
478         sprintf(buf,"T-%s",*(groups->grpname[ni]));
479         grpnms[i]=strdup(buf);
480     }
481     md->itemp=get_ebin_space(md->ebin,md->nTC,(const char **)grpnms,
482                              unit_temp_K);
483
484     if (md->etc == etcNOSEHOOVER)
485     {
486         if (md->bPrintNHChains)
487         {
488             if (md->bNHC_trotter)
489             {
490                 for(i=0; (i<md->nTC); i++)
491                 {
492                     ni=groups->grps[egcTC].nm_ind[i];
493                     bufi = *(groups->grpname[ni]);
494                     for(j=0; (j<md->nNHC); j++)
495                     {
496                         sprintf(buf,"Xi-%d-%s",j,bufi);
497                         grpnms[2*(i*md->nNHC+j)]=strdup(buf);
498                         sprintf(buf,"vXi-%d-%s",j,bufi);
499                         grpnms[2*(i*md->nNHC+j)+1]=strdup(buf);
500                     }
501                 }
502                 md->itc=get_ebin_space(md->ebin,md->mde_n,
503                                        (const char **)grpnms,unit_invtime);
504                 if (md->bMTTK)
505                 {
506                     for(i=0; (i<md->nTCP); i++)
507                     {
508                         bufi = baro_nm[0];  /* All barostat DOF's together for now. */
509                         for(j=0; (j<md->nNHC); j++)
510                         {
511                             sprintf(buf,"Xi-%d-%s",j,bufi);
512                             grpnms[2*(i*md->nNHC+j)]=strdup(buf);
513                             sprintf(buf,"vXi-%d-%s",j,bufi);
514                             grpnms[2*(i*md->nNHC+j)+1]=strdup(buf);
515                         }
516                     }
517                     md->itcb=get_ebin_space(md->ebin,md->mdeb_n,
518                                             (const char **)grpnms,unit_invtime);
519                 }
520             }
521             else
522             {
523                 for(i=0; (i<md->nTC); i++)
524                 {
525                     ni=groups->grps[egcTC].nm_ind[i];
526                     bufi = *(groups->grpname[ni]);
527                     sprintf(buf,"Xi-%s",bufi);
528                     grpnms[2*i]=strdup(buf);
529                     sprintf(buf,"vXi-%s",bufi);
530                     grpnms[2*i+1]=strdup(buf);
531                 }
532                 md->itc=get_ebin_space(md->ebin,md->mde_n,
533                                        (const char **)grpnms,unit_invtime);
534             }
535         }
536     }
537     else if (md->etc == etcBERENDSEN || md->etc == etcYES ||
538              md->etc == etcVRESCALE)
539     {
540         for(i=0; (i<md->nTC); i++)
541         {
542             ni=groups->grps[egcTC].nm_ind[i];
543             sprintf(buf,"Lamb-%s",*(groups->grpname[ni]));
544             grpnms[i]=strdup(buf);
545         }
546         md->itc=get_ebin_space(md->ebin,md->mde_n,(const char **)grpnms,"");
547     }
548
549     sfree(grpnms);
550
551
552     md->nU=groups->grps[egcACC].nr;
553     if (md->nU > 1)
554     {
555         snew(grpnms,3*md->nU);
556         for(i=0; (i<md->nU); i++)
557         {
558             ni=groups->grps[egcACC].nm_ind[i];
559             sprintf(buf,"Ux-%s",*(groups->grpname[ni]));
560             grpnms[3*i+XX]=strdup(buf);
561             sprintf(buf,"Uy-%s",*(groups->grpname[ni]));
562             grpnms[3*i+YY]=strdup(buf);
563             sprintf(buf,"Uz-%s",*(groups->grpname[ni]));
564             grpnms[3*i+ZZ]=strdup(buf);
565         }
566         md->iu=get_ebin_space(md->ebin,3*md->nU,(const char **)grpnms,unit_vel);
567         sfree(grpnms);
568     }
569
570     if ( fp_ene )
571     {
572         do_enxnms(fp_ene,&md->ebin->nener,&md->ebin->enm);
573     }
574
575     md->print_grpnms=NULL;
576
577     /* check whether we're going to write dh histograms */
578     md->dhc=NULL;
579     if (ir->fepvals->separate_dhdl_file == esepdhdlfileNO )
580     {
581         /* Currently dh histograms are only written with dynamics */
582         if (EI_DYNAMICS(ir->eI))
583         {
584             snew(md->dhc, 1);
585
586             mde_delta_h_coll_init(md->dhc, ir);
587         }
588         md->fp_dhdl = NULL;
589     }
590     else
591     {
592         md->fp_dhdl = fp_dhdl;
593     }
594     if (ir->bSimTemp) {
595         int i;
596         snew(md->temperatures,ir->fepvals->n_lambda);
597         for (i=0;i<ir->fepvals->n_lambda;i++)
598         {
599             md->temperatures[i] = ir->simtempvals->temperatures[i];
600         }
601     }
602     return md;
603 }
604
605 extern FILE *open_dhdl(const char *filename,const t_inputrec *ir,
606                        const output_env_t oenv)
607 {
608     FILE *fp;
609     const char *dhdl="dH/d\\lambda",*deltag="\\DeltaH",*lambda="\\lambda",
610         *lambdastate="\\lambda state",*remain="remaining";
611     char title[STRLEN],label_x[STRLEN],label_y[STRLEN];
612     int  i,np,nps,nsets,nsets_de,nsetsbegin;
613     t_lambda *fep;
614     char **setname;
615     char buf[STRLEN];
616     int bufplace=0;
617
618     int nsets_dhdl = 0;
619     int s = 0;
620     int nsetsextend;
621
622     /* for simplicity */
623     fep = ir->fepvals;
624
625     if (fep->n_lambda == 0)
626     {
627         sprintf(title,"%s",dhdl);
628         sprintf(label_x,"Time (ps)");
629         sprintf(label_y,"%s (%s %s)",
630                 dhdl,unit_energy,"[\\lambda]\\S-1\\N");
631     }
632     else
633     {
634         sprintf(title,"%s and %s",dhdl,deltag);
635         sprintf(label_x,"Time (ps)");
636         sprintf(label_y,"%s and %s (%s %s)",
637                 dhdl,deltag,unit_energy,"[\\8l\\4]\\S-1\\N");
638     }
639     fp = gmx_fio_fopen(filename,"w+");
640     xvgr_header(fp,title,label_x,label_y,exvggtXNY,oenv);
641
642     if (!(ir->bSimTemp))
643     {
644         bufplace = sprintf(buf,"T = %g (K) ",
645                 ir->opts.ref_t[0]);
646     }
647     if (ir->efep != efepSLOWGROWTH)
648     {
649         if (fep->n_lambda == 0)
650         {
651             sprintf(&(buf[bufplace]),"%s = %g",
652                     lambda,fep->init_lambda);
653         }
654         else
655         {
656             sprintf(&(buf[bufplace]),"%s = %d",
657                     lambdastate,fep->init_fep_state);
658         }
659     }
660     xvgr_subtitle(fp,buf,oenv);
661
662     for (i=0;i<efptNR;i++)
663     {
664         if (fep->separate_dvdl[i]) {nsets_dhdl++;}
665     }
666
667     /* count the number of delta_g states */
668     nsets_de = fep->n_lambda;
669
670     nsets = nsets_dhdl + nsets_de; /* dhdl + fep differences */
671
672     if (fep->n_lambda>0 && ir->bExpanded)
673     {
674         nsets += 1;   /*add fep state for expanded ensemble */
675     }
676
677     if (fep->bPrintEnergy)
678     {
679         nsets += 1;  /* add energy to the dhdl as well */
680     }
681
682     nsetsextend = nsets;
683     if ((ir->epc!=epcNO) && (fep->n_lambda>0))
684     {
685         nsetsextend += 1; /* for PV term, other terms possible if required for the reduced potential (only needed with foreign lambda) */
686     }
687     snew(setname,nsetsextend);
688
689     if (ir->bExpanded)
690     {
691         /* state for the fep_vals, if we have alchemical sampling */
692         sprintf(buf,"%s","Thermodynamic state");
693         setname[s] = strdup(buf);
694         s+=1;
695     }
696
697     if (fep->bPrintEnergy)
698     {
699         sprintf(buf,"%s (%s)","Energy",unit_energy);
700         setname[s] = strdup(buf);
701         s+=1;
702     }
703
704     for (i=0;i<efptNR;i++)
705     {
706         if (fep->separate_dvdl[i]) {
707             sprintf(buf,"%s (%s)",dhdl,efpt_names[i]);
708             setname[s] = strdup(buf);
709             s+=1;
710         }
711     }
712
713     if (fep->n_lambda > 0)
714     {
715         /* g_bar has to determine the lambda values used in this simulation
716          * from this xvg legend.
717          */
718
719         if (ir->bExpanded) {
720             nsetsbegin = 1;  /* for including the expanded ensemble */
721         } else {
722             nsetsbegin = 0;
723         }
724
725         if (fep->bPrintEnergy)
726         {
727             nsetsbegin += 1;
728         }
729         nsetsbegin += nsets_dhdl;
730
731         for(s=nsetsbegin; s<nsets; s++)
732         {
733             nps = sprintf(buf,"%s %s (",deltag,lambda);
734             for (i=0;i<efptNR;i++)
735             {
736                 if (fep->separate_dvdl[i])
737                 {
738                     np = sprintf(&buf[nps],"%g,",fep->all_lambda[i][s-(nsetsbegin)]);
739                     nps += np;
740                 }
741             }
742             if (ir->bSimTemp)
743             {
744                 /* print the temperature for this state if doing simulated annealing */
745                 sprintf(&buf[nps],"T = %g (%s))",ir->simtempvals->temperatures[s-(nsetsbegin)],unit_temp_K);
746             }
747             else
748             {
749                 sprintf(&buf[nps-1],")");  /* -1 to overwrite the last comma */
750             }
751             setname[s] = strdup(buf);
752         }
753         if (ir->epc!=epcNO) {
754             np = sprintf(buf,"pV (%s)",unit_energy);
755             setname[nsetsextend-1] = strdup(buf);  /* the first entry after nsets */
756         }
757
758         xvgr_legend(fp,nsetsextend,(const char **)setname,oenv);
759
760         for(s=0; s<nsetsextend; s++)
761         {
762             sfree(setname[s]);
763         }
764         sfree(setname);
765     }
766
767     return fp;
768 }
769
770 static void copy_energy(t_mdebin *md, real e[],real ecpy[])
771 {
772     int i,j;
773
774     for(i=j=0; (i<F_NRE); i++)
775         if (md->bEner[i])
776             ecpy[j++] = e[i];
777     if (j != md->f_nre)
778         gmx_incons("Number of energy terms wrong");
779 }
780
781 void upd_mdebin(t_mdebin *md,
782                 gmx_bool bDoDHDL,
783                 gmx_bool bSum,
784                 double time,
785                 real tmass,
786                 gmx_enerdata_t *enerd,
787                 t_state *state,
788                 t_lambda *fep,
789                 t_expanded *expand,
790                 matrix  box,
791                 tensor svir,
792                 tensor fvir,
793                 tensor vir,
794                 tensor pres,
795                 gmx_ekindata_t *ekind,
796                 rvec mu_tot,
797                 gmx_constr_t constr)
798 {
799     int    i,j,k,kk,m,n,gid;
800     real   crmsd[2],tmp6[6];
801     real   bs[NTRICLBOXS],vol,dens,pv,enthalpy;
802     real   eee[egNR];
803     real   ecopy[F_NRE];
804     double store_dhdl[efptNR];
805     double *dE=NULL;
806     real   store_energy=0;
807     real   tmp;
808
809     /* Do NOT use the box in the state variable, but the separate box provided
810      * as an argument. This is because we sometimes need to write the box from
811      * the last timestep to match the trajectory frames.
812      */
813     copy_energy(md, enerd->term,ecopy);
814     add_ebin(md->ebin,md->ie,md->f_nre,ecopy,bSum);
815     if (md->nCrmsd)
816     {
817         crmsd[0] = constr_rmsd(constr,FALSE);
818         if (md->nCrmsd > 1)
819         {
820             crmsd[1] = constr_rmsd(constr,TRUE);
821         }
822         add_ebin(md->ebin,md->iconrmsd,md->nCrmsd,crmsd,FALSE);
823     }
824     if (md->bDynBox)
825     {
826         int nboxs;
827         if(md->bTricl)
828         {
829             bs[0] = box[XX][XX];
830             bs[1] = box[YY][YY];
831             bs[2] = box[ZZ][ZZ];
832             bs[3] = box[YY][XX];
833             bs[4] = box[ZZ][XX];
834             bs[5] = box[ZZ][YY];
835             nboxs=NTRICLBOXS;
836         }
837         else
838         {
839             bs[0] = box[XX][XX];
840             bs[1] = box[YY][YY];
841             bs[2] = box[ZZ][ZZ];
842             nboxs=NBOXS;
843         }
844         vol  = box[XX][XX]*box[YY][YY]*box[ZZ][ZZ];
845         dens = (tmass*AMU)/(vol*NANO*NANO*NANO);
846         add_ebin(md->ebin,md->ib   ,nboxs,bs   ,bSum);
847         add_ebin(md->ebin,md->ivol ,1    ,&vol ,bSum);
848         add_ebin(md->ebin,md->idens,1    ,&dens,bSum);
849
850         if (md->bDiagPres)
851         {
852             /* This is pV (in kJ/mol).  The pressure is the reference pressure,
853                not the instantaneous pressure */
854             pv = vol*md->ref_p/PRESFAC;
855
856             add_ebin(md->ebin,md->ipv  ,1    ,&pv  ,bSum);
857             enthalpy = pv + enerd->term[F_ETOT];
858             add_ebin(md->ebin,md->ienthalpy  ,1    ,&enthalpy  ,bSum);
859         }
860     }
861     if (md->bConstrVir)
862     {
863         add_ebin(md->ebin,md->isvir,9,svir[0],bSum);
864         add_ebin(md->ebin,md->ifvir,9,fvir[0],bSum);
865     }
866     if (md->bVir)
867         add_ebin(md->ebin,md->ivir,9,vir[0],bSum);
868     if (md->bPress)
869         add_ebin(md->ebin,md->ipres,9,pres[0],bSum);
870     if (md->bSurft){
871         tmp = (pres[ZZ][ZZ]-(pres[XX][XX]+pres[YY][YY])*0.5)*box[ZZ][ZZ];
872         add_ebin(md->ebin,md->isurft,1,&tmp,bSum);
873     }
874     if (md->epc == epcPARRINELLORAHMAN || md->epc == epcMTTK)
875     {
876         tmp6[0] = state->boxv[XX][XX];
877         tmp6[1] = state->boxv[YY][YY];
878         tmp6[2] = state->boxv[ZZ][ZZ];
879         tmp6[3] = state->boxv[YY][XX];
880         tmp6[4] = state->boxv[ZZ][XX];
881         tmp6[5] = state->boxv[ZZ][YY];
882         add_ebin(md->ebin,md->ipc,md->bTricl ? 6 : 3,tmp6,bSum);
883     }
884     if(md->bMu)
885         add_ebin(md->ebin,md->imu,3,mu_tot,bSum);
886     if (ekind && ekind->cosacc.cos_accel != 0)
887     {
888         vol  = box[XX][XX]*box[YY][YY]*box[ZZ][ZZ];
889         dens = (tmass*AMU)/(vol*NANO*NANO*NANO);
890         add_ebin(md->ebin,md->ivcos,1,&(ekind->cosacc.vcos),bSum);
891         /* 1/viscosity, unit 1/(kg m^-1 s^-1) */
892         tmp = 1/(ekind->cosacc.cos_accel/(ekind->cosacc.vcos*PICO)
893                  *dens*vol*sqr(box[ZZ][ZZ]*NANO/(2*M_PI)));
894         add_ebin(md->ebin,md->ivisc,1,&tmp,bSum);
895     }
896     if (md->nE > 1)
897     {
898         n=0;
899         for(i=0; (i<md->nEg); i++)
900         {
901             for(j=i; (j<md->nEg); j++)
902             {
903                 gid=GID(i,j,md->nEg);
904                 for(k=kk=0; (k<egNR); k++)
905                 {
906                     if (md->bEInd[k])
907                     {
908                         eee[kk++] = enerd->grpp.ener[k][gid];
909                     }
910                 }
911                 add_ebin(md->ebin,md->igrp[n],md->nEc,eee,bSum);
912                 n++;
913             }
914         }
915     }
916
917     if (ekind)
918     {
919         for(i=0; (i<md->nTC); i++)
920         {
921             md->tmp_r[i] = ekind->tcstat[i].T;
922         }
923         add_ebin(md->ebin,md->itemp,md->nTC,md->tmp_r,bSum);
924
925         if (md->etc == etcNOSEHOOVER)
926         {
927             /* whether to print Nose-Hoover chains: */
928             if (md->bPrintNHChains)
929             {
930                 if (md->bNHC_trotter)
931                 {
932                     for(i=0; (i<md->nTC); i++)
933                     {
934                         for (j=0;j<md->nNHC;j++)
935                         {
936                             k = i*md->nNHC+j;
937                             md->tmp_r[2*k] = state->nosehoover_xi[k];
938                             md->tmp_r[2*k+1] = state->nosehoover_vxi[k];
939                         }
940                     }
941                     add_ebin(md->ebin,md->itc,md->mde_n,md->tmp_r,bSum);
942
943                     if (md->bMTTK) {
944                         for(i=0; (i<md->nTCP); i++)
945                         {
946                             for (j=0;j<md->nNHC;j++)
947                             {
948                                 k = i*md->nNHC+j;
949                                 md->tmp_r[2*k] = state->nhpres_xi[k];
950                                 md->tmp_r[2*k+1] = state->nhpres_vxi[k];
951                             }
952                         }
953                         add_ebin(md->ebin,md->itcb,md->mdeb_n,md->tmp_r,bSum);
954                     }
955                 }
956                 else
957                 {
958                     for(i=0; (i<md->nTC); i++)
959                     {
960                         md->tmp_r[2*i] = state->nosehoover_xi[i];
961                         md->tmp_r[2*i+1] = state->nosehoover_vxi[i];
962                     }
963                     add_ebin(md->ebin,md->itc,md->mde_n,md->tmp_r,bSum);
964                 }
965             }
966         }
967         else if (md->etc == etcBERENDSEN || md->etc == etcYES ||
968                  md->etc == etcVRESCALE)
969         {
970             for(i=0; (i<md->nTC); i++)
971             {
972                 md->tmp_r[i] = ekind->tcstat[i].lambda;
973             }
974             add_ebin(md->ebin,md->itc,md->nTC,md->tmp_r,bSum);
975         }
976     }
977
978     if (ekind && md->nU > 1)
979     {
980         for(i=0; (i<md->nU); i++)
981         {
982             copy_rvec(ekind->grpstat[i].u,md->tmp_v[i]);
983         }
984         add_ebin(md->ebin,md->iu,3*md->nU,md->tmp_v[0],bSum);
985     }
986
987     ebin_increase_count(md->ebin,bSum);
988
989     /* BAR + thermodynamic integration values */
990     if ((md->fp_dhdl || md->dhc) && bDoDHDL && (enerd->n_lambda > 0))
991     {
992         snew(dE,enerd->n_lambda-1);
993         for(i=0; i<enerd->n_lambda-1; i++) {
994             dE[i] = enerd->enerpart_lambda[i+1]-enerd->enerpart_lambda[0];  /* zero for simulated tempering */
995             if (md->temperatures!=NULL)
996             {
997                 /* MRS: is this right, given the way we have defined the exchange probabilities? */
998                 /* is this even useful to have at all? */
999                 dE[i] += (md->temperatures[i]/md->temperatures[state->fep_state]-1.0)*enerd->term[F_EKIN];
1000             }
1001         }
1002     }
1003
1004     if (md->fp_dhdl && bDoDHDL)
1005     {
1006         fprintf(md->fp_dhdl,"%.4f",time);
1007         /* the current free energy state */
1008
1009         /* print the current state if we are doing expanded ensemble */
1010         if (expand->elmcmove > elmcmoveNO) {
1011             fprintf(md->fp_dhdl," %4d",state->fep_state);
1012         }
1013         /* total energy (for if the temperature changes */
1014         if (fep->bPrintEnergy)
1015         {
1016             store_energy = enerd->term[F_ETOT];
1017             fprintf(md->fp_dhdl," %#.8g",store_energy);
1018         }
1019
1020         for (i=0;i<efptNR;i++)
1021         {
1022             if (fep->separate_dvdl[i])
1023             {
1024                 fprintf(md->fp_dhdl," %#.8g",enerd->term[F_DVDL+i]); /* assumes F_DVDL is first */
1025             }
1026         }
1027         for(i=1; i<enerd->n_lambda; i++)
1028         {
1029             fprintf(md->fp_dhdl," %#.8g",dE[i-1]);
1030
1031         }
1032         if ((md->epc!=epcNO)  && (enerd->n_lambda > 0))
1033         {
1034             fprintf(md->fp_dhdl," %#.8g",pv);   /* PV term only needed when there are alternate state lambda */
1035         }
1036         fprintf(md->fp_dhdl,"\n");
1037         /* and the binary free energy output */
1038     }
1039     if (md->dhc && bDoDHDL)
1040     {
1041         int idhdl = 0;
1042         for (i=0;i<efptNR;i++)
1043         {
1044             if (fep->separate_dvdl[i])
1045             {
1046                 store_dhdl[idhdl] = enerd->term[F_DVDL+i]; /* assumes F_DVDL is first */
1047                 idhdl+=1;
1048             }
1049         }
1050         /* store_dh is dE */
1051         mde_delta_h_coll_add_dh(md->dhc,
1052                                 (double)state->fep_state,
1053                                 store_energy,
1054                                 pv,
1055                                 (expand->elamstats>elamstatsNO),
1056                                 (fep->bPrintEnergy),
1057                                 (md->epc!=epcNO),
1058                                 idhdl,
1059                                 fep->n_lambda,
1060                                 store_dhdl,
1061                                 dE,
1062                                 time);
1063     }
1064     if ((md->fp_dhdl || md->dhc) && bDoDHDL && (enerd->n_lambda >0))
1065     {
1066         sfree(dE);
1067     }
1068 }
1069
1070
1071 void upd_mdebin_step(t_mdebin *md)
1072 {
1073     ebin_increase_count(md->ebin,FALSE);
1074 }
1075
1076 static void npr(FILE *log,int n,char c)
1077 {
1078     for(; (n>0); n--) fprintf(log,"%c",c);
1079 }
1080
1081 static void pprint(FILE *log,const char *s,t_mdebin *md)
1082 {
1083     char CHAR='#';
1084     int  slen;
1085     char buf1[22],buf2[22];
1086
1087     slen = strlen(s);
1088     fprintf(log,"\t<======  ");
1089     npr(log,slen,CHAR);
1090     fprintf(log,"  ==>\n");
1091     fprintf(log,"\t<====  %s  ====>\n",s);
1092     fprintf(log,"\t<==  ");
1093     npr(log,slen,CHAR);
1094     fprintf(log,"  ======>\n\n");
1095
1096     fprintf(log,"\tStatistics over %s steps using %s frames\n",
1097             gmx_step_str(md->ebin->nsteps_sim,buf1),
1098             gmx_step_str(md->ebin->nsum_sim,buf2));
1099     fprintf(log,"\n");
1100 }
1101
1102 void print_ebin_header(FILE *log,gmx_large_int_t steps,double time,real lambda)
1103 {
1104     char buf[22];
1105
1106     fprintf(log,"   %12s   %12s   %12s\n"
1107             "   %12s   %12.5f   %12.5f\n\n",
1108             "Step","Time","Lambda",gmx_step_str(steps,buf),time,lambda);
1109 }
1110
1111 void print_ebin(ener_file_t fp_ene,gmx_bool bEne,gmx_bool bDR,gmx_bool bOR,
1112                 FILE *log,
1113                 gmx_large_int_t step,double time,
1114                 int mode,gmx_bool bCompact,
1115                 t_mdebin *md,t_fcdata *fcd,
1116                 gmx_groups_t *groups,t_grpopts *opts)
1117 {
1118     /*static char **grpnms=NULL;*/
1119     char        buf[246];
1120     int         i,j,n,ni,nj,ndr,nor,b;
1121     int         ndisre=0;
1122     real        *disre_rm3tav, *disre_rt;
1123
1124     /* these are for the old-style blocks (1 subblock, only reals), because
1125        there can be only one per ID for these */
1126     int         nr[enxNR];
1127     int         id[enxNR];
1128     real        *block[enxNR];
1129
1130     /* temporary arrays for the lambda values to write out */
1131     double      enxlambda_data[2];
1132
1133     t_enxframe  fr;
1134
1135     switch (mode)
1136     {
1137         case eprNORMAL:
1138             init_enxframe(&fr);
1139             fr.t            = time;
1140             fr.step         = step;
1141             fr.nsteps       = md->ebin->nsteps;
1142             fr.dt           = md->delta_t;
1143             fr.nsum         = md->ebin->nsum;
1144             fr.nre          = (bEne) ? md->ebin->nener : 0;
1145             fr.ener         = md->ebin->e;
1146             ndisre          = bDR ? fcd->disres.npair : 0;
1147             disre_rm3tav    = fcd->disres.rm3tav;
1148             disre_rt        = fcd->disres.rt;
1149             /* Optional additional old-style (real-only) blocks. */
1150             for(i=0; i<enxNR; i++)
1151             {
1152                 nr[i] = 0;
1153             }
1154             if (fcd->orires.nr > 0 && bOR)
1155             {
1156                 diagonalize_orires_tensors(&(fcd->orires));
1157                 nr[enxOR]     = fcd->orires.nr;
1158                 block[enxOR]  = fcd->orires.otav;
1159                 id[enxOR]     = enxOR;
1160                 nr[enxORI]    = (fcd->orires.oinsl != fcd->orires.otav) ?
1161                           fcd->orires.nr : 0;
1162                 block[enxORI] = fcd->orires.oinsl;
1163                 id[enxORI]    = enxORI;
1164                 nr[enxORT]    = fcd->orires.nex*12;
1165                 block[enxORT] = fcd->orires.eig;
1166                 id[enxORT]    = enxORT;
1167             }
1168
1169             /* whether we are going to wrte anything out: */
1170             if (fr.nre || ndisre || nr[enxOR] || nr[enxORI])
1171             {
1172
1173                 /* the old-style blocks go first */
1174                 fr.nblock = 0;
1175                 for(i=0; i<enxNR; i++)
1176                 {
1177                     if (nr[i] > 0)
1178                     {
1179                         fr.nblock = i + 1;
1180                     }
1181                 }
1182                 add_blocks_enxframe(&fr, fr.nblock);
1183                 for(b=0;b<fr.nblock;b++)
1184                 {
1185                     add_subblocks_enxblock(&(fr.block[b]), 1);
1186                     fr.block[b].id=id[b];
1187                     fr.block[b].sub[0].nr = nr[b];
1188 #ifndef GMX_DOUBLE
1189                     fr.block[b].sub[0].type = xdr_datatype_float;
1190                     fr.block[b].sub[0].fval = block[b];
1191 #else
1192                     fr.block[b].sub[0].type = xdr_datatype_double;
1193                     fr.block[b].sub[0].dval = block[b];
1194 #endif
1195                 }
1196
1197                 /* check for disre block & fill it. */
1198                 if (ndisre>0)
1199                 {
1200                     int db = fr.nblock;
1201                     fr.nblock+=1;
1202                     add_blocks_enxframe(&fr, fr.nblock);
1203
1204                     add_subblocks_enxblock(&(fr.block[db]), 2);
1205                     fr.block[db].id=enxDISRE;
1206                     fr.block[db].sub[0].nr=ndisre;
1207                     fr.block[db].sub[1].nr=ndisre;
1208 #ifndef GMX_DOUBLE
1209                     fr.block[db].sub[0].type=xdr_datatype_float;
1210                     fr.block[db].sub[1].type=xdr_datatype_float;
1211                     fr.block[db].sub[0].fval=disre_rt;
1212                     fr.block[db].sub[1].fval=disre_rm3tav;
1213 #else
1214                     fr.block[db].sub[0].type=xdr_datatype_double;
1215                     fr.block[db].sub[1].type=xdr_datatype_double;
1216                     fr.block[db].sub[0].dval=disre_rt;
1217                     fr.block[db].sub[1].dval=disre_rm3tav;
1218 #endif
1219                 }
1220                 /* here we can put new-style blocks */
1221
1222                 /* Free energy perturbation blocks */
1223                 if (md->dhc)
1224                 {
1225                     mde_delta_h_coll_handle_block(md->dhc, &fr, fr.nblock);
1226                 }
1227
1228                 /* we can now free & reset the data in the blocks */
1229                 if (md->dhc)
1230                 {
1231                     mde_delta_h_coll_reset(md->dhc);
1232                 }
1233
1234                 /* do the actual I/O */
1235                 do_enx(fp_ene,&fr);
1236                 gmx_fio_check_file_position(enx_file_pointer(fp_ene));
1237                 if (fr.nre)
1238                 {
1239                     /* We have stored the sums, so reset the sum history */
1240                     reset_ebin_sums(md->ebin);
1241                 }
1242             }
1243             free_enxframe(&fr);
1244             break;
1245         case eprAVER:
1246             if (log)
1247             {
1248                 pprint(log,"A V E R A G E S",md);
1249             }
1250             break;
1251         case eprRMS:
1252             if (log)
1253             {
1254                 pprint(log,"R M S - F L U C T U A T I O N S",md);
1255             }
1256             break;
1257         default:
1258             gmx_fatal(FARGS,"Invalid print mode (%d)",mode);
1259     }
1260
1261     if (log)
1262     {
1263         for(i=0;i<opts->ngtc;i++)
1264         {
1265             if(opts->annealing[i]!=eannNO)
1266             {
1267                 fprintf(log,"Current ref_t for group %s: %8.1f\n",
1268                         *(groups->grpname[groups->grps[egcTC].nm_ind[i]]),
1269                         opts->ref_t[i]);
1270             }
1271         }
1272         if (mode==eprNORMAL && fcd->orires.nr>0)
1273         {
1274             print_orires_log(log,&(fcd->orires));
1275         }
1276         fprintf(log,"   Energies (%s)\n",unit_energy);
1277         pr_ebin(log,md->ebin,md->ie,md->f_nre+md->nCrmsd,5,mode,TRUE);
1278         fprintf(log,"\n");
1279
1280         if (!bCompact)
1281         {
1282             if (md->bDynBox)
1283             {
1284                 pr_ebin(log,md->ebin,md->ib, md->bTricl ? NTRICLBOXS : NBOXS,5,
1285                         mode,TRUE);
1286                 fprintf(log,"\n");
1287             }
1288             if (md->bConstrVir)
1289             {
1290                 fprintf(log,"   Constraint Virial (%s)\n",unit_energy);
1291                 pr_ebin(log,md->ebin,md->isvir,9,3,mode,FALSE);
1292                 fprintf(log,"\n");
1293                 fprintf(log,"   Force Virial (%s)\n",unit_energy);
1294                 pr_ebin(log,md->ebin,md->ifvir,9,3,mode,FALSE);
1295                 fprintf(log,"\n");
1296             }
1297             if (md->bVir)
1298             {
1299                 fprintf(log,"   Total Virial (%s)\n",unit_energy);
1300                 pr_ebin(log,md->ebin,md->ivir,9,3,mode,FALSE);
1301                 fprintf(log,"\n");
1302             }
1303             if (md->bPress)
1304             {
1305                 fprintf(log,"   Pressure (%s)\n",unit_pres_bar);
1306                 pr_ebin(log,md->ebin,md->ipres,9,3,mode,FALSE);
1307                 fprintf(log,"\n");
1308             }
1309             fprintf(log,"   Total Dipole (%s)\n",unit_dipole_D);
1310             pr_ebin(log,md->ebin,md->imu,3,3,mode,FALSE);
1311             fprintf(log,"\n");
1312
1313             if (md->nE > 1)
1314             {
1315                 if (md->print_grpnms==NULL)
1316                 {
1317                     snew(md->print_grpnms,md->nE);
1318                     n=0;
1319                     for(i=0; (i<md->nEg); i++)
1320                     {
1321                         ni=groups->grps[egcENER].nm_ind[i];
1322                         for(j=i; (j<md->nEg); j++)
1323                         {
1324                             nj=groups->grps[egcENER].nm_ind[j];
1325                             sprintf(buf,"%s-%s",*(groups->grpname[ni]),
1326                                     *(groups->grpname[nj]));
1327                             md->print_grpnms[n++]=strdup(buf);
1328                         }
1329                     }
1330                 }
1331                 sprintf(buf,"Epot (%s)",unit_energy);
1332                 fprintf(log,"%15s   ",buf);
1333                 for(i=0; (i<egNR); i++)
1334                 {
1335                     if (md->bEInd[i])
1336                     {
1337                         fprintf(log,"%12s   ",egrp_nm[i]);
1338                     }
1339                 }
1340                 fprintf(log,"\n");
1341                 for(i=0; (i<md->nE); i++)
1342                 {
1343                     fprintf(log,"%15s",md->print_grpnms[i]);
1344                     pr_ebin(log,md->ebin,md->igrp[i],md->nEc,md->nEc,mode,
1345                             FALSE);
1346                 }
1347                 fprintf(log,"\n");
1348             }
1349             if (md->nTC > 1)
1350             {
1351                 pr_ebin(log,md->ebin,md->itemp,md->nTC,4,mode,TRUE);
1352                 fprintf(log,"\n");
1353             }
1354             if (md->nU > 1)
1355             {
1356                 fprintf(log,"%15s   %12s   %12s   %12s\n",
1357                         "Group","Ux","Uy","Uz");
1358                 for(i=0; (i<md->nU); i++)
1359                 {
1360                     ni=groups->grps[egcACC].nm_ind[i];
1361                     fprintf(log,"%15s",*groups->grpname[ni]);
1362                     pr_ebin(log,md->ebin,md->iu+3*i,3,3,mode,FALSE);
1363                 }
1364                 fprintf(log,"\n");
1365             }
1366         }
1367     }
1368
1369 }
1370
1371 void update_energyhistory(energyhistory_t * enerhist,t_mdebin * mdebin)
1372 {
1373     int i;
1374
1375     enerhist->nsteps     = mdebin->ebin->nsteps;
1376     enerhist->nsum       = mdebin->ebin->nsum;
1377     enerhist->nsteps_sim = mdebin->ebin->nsteps_sim;
1378     enerhist->nsum_sim   = mdebin->ebin->nsum_sim;
1379     enerhist->nener      = mdebin->ebin->nener;
1380
1381     if (mdebin->ebin->nsum > 0)
1382     {
1383         /* Check if we need to allocate first */
1384         if(enerhist->ener_ave == NULL)
1385         {
1386             snew(enerhist->ener_ave,enerhist->nener);
1387             snew(enerhist->ener_sum,enerhist->nener);
1388         }
1389
1390         for(i=0;i<enerhist->nener;i++)
1391         {
1392             enerhist->ener_ave[i] = mdebin->ebin->e[i].eav;
1393             enerhist->ener_sum[i] = mdebin->ebin->e[i].esum;
1394         }
1395     }
1396
1397     if (mdebin->ebin->nsum_sim > 0)
1398     {
1399         /* Check if we need to allocate first */
1400         if(enerhist->ener_sum_sim == NULL)
1401         {
1402             snew(enerhist->ener_sum_sim,enerhist->nener);
1403         }
1404
1405         for(i=0;i<enerhist->nener;i++)
1406         {
1407             enerhist->ener_sum_sim[i] = mdebin->ebin->e_sim[i].esum;
1408         }
1409     }
1410     if (mdebin->dhc)
1411     {
1412         mde_delta_h_coll_update_energyhistory(mdebin->dhc, enerhist);
1413     }
1414 }
1415
1416 void restore_energyhistory_from_state(t_mdebin * mdebin,
1417                                       energyhistory_t * enerhist)
1418 {
1419     int i;
1420
1421     if ((enerhist->nsum > 0 || enerhist->nsum_sim > 0) &&
1422         mdebin->ebin->nener != enerhist->nener)
1423     {
1424         gmx_fatal(FARGS,"Mismatch between number of energies in run input (%d) and checkpoint file (%d).",
1425                   mdebin->ebin->nener,enerhist->nener);
1426     }
1427
1428     mdebin->ebin->nsteps     = enerhist->nsteps;
1429     mdebin->ebin->nsum       = enerhist->nsum;
1430     mdebin->ebin->nsteps_sim = enerhist->nsteps_sim;
1431     mdebin->ebin->nsum_sim   = enerhist->nsum_sim;
1432
1433     for(i=0; i<mdebin->ebin->nener; i++)
1434     {
1435         mdebin->ebin->e[i].eav  =
1436                   (enerhist->nsum > 0 ? enerhist->ener_ave[i] : 0);
1437         mdebin->ebin->e[i].esum =
1438                   (enerhist->nsum > 0 ? enerhist->ener_sum[i] : 0);
1439         mdebin->ebin->e_sim[i].esum =
1440                   (enerhist->nsum_sim > 0 ? enerhist->ener_sum_sim[i] : 0);
1441     }
1442     if (mdebin->dhc)
1443     {
1444         mde_delta_h_coll_restore_energyhistory(mdebin->dhc, enerhist);
1445     }
1446 }