"wrappers/vscode:/vscode.git/clone" did not exist on "3775794f24e41aea54d102ab0c5a44aeef206e3c"
ReferenceLJCoulombIxn.cpp 26.4 KB
Newer Older
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26

/* Portions copyright (c) 2006 Stanford University and Simbios.
 * Contributors: Pande Group
 *
 * Permission is hereby granted, free of charge, to any person obtaining
 * a copy of this software and associated documentation files (the
 * "Software"), to deal in the Software without restriction, including
 * without limitation the rights to use, copy, modify, merge, publish,
 * distribute, sublicense, and/or sell copies of the Software, and to
 * permit persons to whom the Software is furnished to do so, subject
 * to the following conditions:
 *
 * The above copyright notice and this permission notice shall be included
 * in all copies or substantial portions of the Software.
 *
 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS
 * OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
 * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.
 * IN NO EVENT SHALL THE AUTHORS, CONTRIBUTORS OR COPYRIGHT HOLDERS BE
 * LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION
 * OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION
 * WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE.
 */

#include <string.h>
#include <sstream>
27
#include <complex>
28

29
30
31
#include "../SimTKUtilities/SimTKOpenMMCommon.h"
#include "../SimTKUtilities/SimTKOpenMMLog.h"
#include "../SimTKUtilities/SimTKOpenMMUtilities.h"
32
33
#include "ReferenceLJCoulombIxn.h"
#include "ReferenceForce.h"
34
#include "PME.h"
35

36
37
// In case we're using some primitive version of Visual Studio this will
// make sure that erf() and erfc() are defined.
38
#include "openmm/internal/MSVC_erfc.h"
39

40
41
using std::vector;

42
43
44
45
46
47
/**---------------------------------------------------------------------------------------

   ReferenceLJCoulombIxn constructor

   --------------------------------------------------------------------------------------- */

48
ReferenceLJCoulombIxn::ReferenceLJCoulombIxn( ) : cutoff(false), periodic(false), ewald(false), pme(false) {
49
50
51
52
53
54
55
56
57
58
59
60
61
62
63
64
65
66
67
68
69
70
71
72
73

   // ---------------------------------------------------------------------------------------

   // static const char* methodName = "\nReferenceLJCoulombIxn::ReferenceLJCoulombIxn";

   // ---------------------------------------------------------------------------------------

}

/**---------------------------------------------------------------------------------------

   ReferenceLJCoulombIxn destructor

   --------------------------------------------------------------------------------------- */

ReferenceLJCoulombIxn::~ReferenceLJCoulombIxn( ){

   // ---------------------------------------------------------------------------------------

   // static const char* methodName = "\nReferenceLJCoulombIxn::~ReferenceLJCoulombIxn";

   // ---------------------------------------------------------------------------------------

}

74
75
76
77
78
79
80
81
82
83
84
85
86
  /**---------------------------------------------------------------------------------------

     Set the force to use a cutoff.

     @param distance            the cutoff distance
     @param neighbors           the neighbor list to use
     @param solventDielectric   the dielectric constant of the bulk solvent

     @return ReferenceForce::DefaultReturn

     --------------------------------------------------------------------------------------- */

  int ReferenceLJCoulombIxn::setUseCutoff( RealOpenMM distance, const OpenMM::NeighborList& neighbors, RealOpenMM solventDielectric ) {
87

88
89
90
    cutoff = true;
    cutoffDistance = distance;
    neighborList = &neighbors;
91
92
    krf = pow(cutoffDistance, -3.0f)*(solventDielectric-1.0f)/(2.0f*solventDielectric+1.0f);
    crf = (1.0f/cutoffDistance)*(3.0f*solventDielectric)/(2.0f*solventDielectric+1.0f);
93

94
95
96
97
98
99
100
101
102
103
104
105
106
107
108
109
110
111
112
113
114
115
116
117
118
119
120
121
122
    return ReferenceForce::DefaultReturn;
  }

  /**---------------------------------------------------------------------------------------

     Set the force to use periodic boundary conditions.  This requires that a cutoff has
     also been set, and the smallest side of the periodic box is at least twice the cutoff
     distance.

     @param boxSize             the X, Y, and Z widths of the periodic box

     @return ReferenceForce::DefaultReturn

     --------------------------------------------------------------------------------------- */

  int ReferenceLJCoulombIxn::setPeriodic( RealOpenMM* boxSize ) {

    assert(cutoff);
    assert(boxSize[0] >= 2.0*cutoffDistance);
    assert(boxSize[1] >= 2.0*cutoffDistance);
    assert(boxSize[2] >= 2.0*cutoffDistance);
    periodic = true;
    periodicBoxSize[0] = boxSize[0];
    periodicBoxSize[1] = boxSize[1];
    periodicBoxSize[2] = boxSize[2];
    return ReferenceForce::DefaultReturn;

  }

123
124
125
126
127
128
129
130
131
132
133
134
135
136
137
138
139
140
141
  /**---------------------------------------------------------------------------------------

     Set the force to use Ewald summation.

     @param alpha  the Ewald separation parameter
     @param kmaxx  the largest wave vector in the x direction
     @param kmaxy  the largest wave vector in the y direction
     @param kmaxz  the largest wave vector in the z direction

     --------------------------------------------------------------------------------------- */

  void ReferenceLJCoulombIxn::setUseEwald(RealOpenMM alpha, int kmaxx, int kmaxy, int kmaxz) {
      alphaEwald = alpha;
      numRx = kmaxx;
      numRy = kmaxy;
      numRz = kmaxz;
      ewald = true;
  }

142
143
144
145
146
  /**---------------------------------------------------------------------------------------

     Set the force to use Particle-Mesh Ewald (PME) summation.

     @param alpha  the Ewald separation parameter
147
     @param gridSize the dimensions of the mesh
148
149
150

     --------------------------------------------------------------------------------------- */

151
  void ReferenceLJCoulombIxn::setUsePME(RealOpenMM alpha, int meshSize[3]) {
152
      alphaEwald = alpha;
153
154
155
      meshDim[0] = meshSize[0];
      meshDim[1] = meshSize[1];
      meshDim[2] = meshSize[2];
156
157
158
      pme = true;
  }

159
160
161
162
163
164
165
/**---------------------------------------------------------------------------------------

   Calculate parameters for LJ Coulomb ixn

   @param c6               c6
   @param c12              c12
   @param q1               q1 charge atom 1
166
   @param epsfac           epsfacSqrt ????????????
167
   @param parameters       output parameters:
168
169
										parameter[SigIndex]  = 0.5*( (c12/c6)**1/6 ) (sigma/2)
										parameter[EpsIndex]  = sqrt(c6*c6/c12)       (2*sqrt(epsilon))
170
171
172
173
174
175
176
177
178
179
180
181
182
183
184
185
186
187
188
189
190
191
192
193
194
195
196
197
198
										parameter[QIndex]    = epsfactorSqrt*q1

   @return ReferenceForce::DefaultReturn

   --------------------------------------------------------------------------------------- */

int ReferenceLJCoulombIxn::getDerivedParameters( RealOpenMM c6, RealOpenMM c12, RealOpenMM q1,
                                                 RealOpenMM epsfacSqrt,
                                                 RealOpenMM* parameters ) const {

   // ---------------------------------------------------------------------------------------

   // static const char* methodName = "\nReferenceLJCoulombIxn::getDerivedParameters";

   static const RealOpenMM zero          =  0.0;
   static const RealOpenMM one           =  1.0;
   static const RealOpenMM six           =  6.0;
   static const RealOpenMM half          =  0.5;
   static const RealOpenMM oneSixth      =  one/six;
   static const RealOpenMM oneTweleth    =  half*oneSixth;

   // ---------------------------------------------------------------------------------------

   if( c12 <= 0.0 ){

      parameters[EpsIndex] = zero;
      parameters[SigIndex] = half;

   } else {
199

200
      parameters[EpsIndex]    = c6*SQRT( one/c12 );
201

202
203
204
205
206
207
208
209
210
      parameters[SigIndex]    = POW( (c12/c6), oneSixth );
      parameters[SigIndex]   *= half;
   }

   parameters[QIndex]   = epsfacSqrt*q1;

   return ReferenceForce::DefaultReturn;
}

211
212
213
214
215
216
217
218
219
220
221
222
223
224
225
226
227
/**---------------------------------------------------------------------------------------

   Calculate Ewald ixn

   @param numberOfAtoms    number of atoms
   @param atomCoordinates  atom coordinates
   @param atomParameters   atom parameters                             atomParameters[atomIndex][paramterIndex]
   @param exclusions       atom exclusion indices                      exclusions[atomIndex][atomToExcludeIndex]
                           exclusions[atomIndex][0] = number of exclusions
                           exclusions[atomIndex][1-no.] = atom indices of atoms to excluded from
                           interacting w/ atom atomIndex
   @param fixedParameters  non atom parameters (not currently used)
   @param forces           force array (forces added)
   @param energyByAtom     atom energy
   @param totalEnergy      total energy

   @return ReferenceForce::DefaultReturn
228

229
   --------------------------------------------------------------------------------------- */
230

231
232
233
int ReferenceLJCoulombIxn::calculateEwaldIxn( int numberOfAtoms, RealOpenMM** atomCoordinates,
                                             RealOpenMM** atomParameters, int** exclusions,
                                             RealOpenMM* fixedParameters, RealOpenMM** forces,
234
                                             RealOpenMM* energyByAtom, RealOpenMM* totalEnergy) const {
235
236
237
238

    #include "../SimTKUtilities/RealTypeSimTk.h"
    typedef std::complex<RealOpenMM> d_complex;

239
    static const RealOpenMM epsilon     =  1.0;
240
    static const RealOpenMM one         =  1.0;
241
242
    static const RealOpenMM six         =  6.0;
    static const RealOpenMM twelve      = 12.0;
243

244
    int kmax                            = (ewald ? std::max(numRx, std::max(numRy,numRz)) : 0);
245
246
247
248
    RealOpenMM  factorEwald             = -1 / (4*alphaEwald*alphaEwald);
    RealOpenMM SQRT_PI                  = sqrt(PI);
    RealOpenMM TWO_PI                   = 2.0 * PI;
    RealOpenMM recipCoeff               = (RealOpenMM)(4*PI/(periodicBoxSize[0] * periodicBoxSize[1] * periodicBoxSize[2]) /epsilon);
249

250
    RealOpenMM totalSelfEwaldEnergy     = 0.0;
251
252
    RealOpenMM realSpaceEwaldEnergy     = 0.0;
    RealOpenMM recipEnergy              = 0.0;
253
    RealOpenMM totalRecipEnergy         = 0.0;
254
    RealOpenMM vdwEnergy                = 0.0;
255
256
257
258
259
260

// **************************************************************************************
// SELF ENERGY
// **************************************************************************************

    for( int atomID = 0; atomID < numberOfAtoms; atomID++ ){
261
262
        RealOpenMM selfEwaldEnergy       = atomParameters[atomID][QIndex]*atomParameters[atomID][QIndex] * alphaEwald/SQRT_PI;
        totalSelfEwaldEnergy            -= selfEwaldEnergy;
263
264

        if( energyByAtom ){
265
           energyByAtom[atomID]         -= selfEwaldEnergy;
266
        }
267
268
    }

269
270
271
272
    if( totalEnergy ){
        *totalEnergy += totalSelfEwaldEnergy;
    }

273
274
275
// **************************************************************************************
// RECIPROCAL SPACE EWALD ENERGY AND FORCES
// **************************************************************************************
276
    // PME
277

278
279
280
281
  if (pme) {
	pme_t          pmedata; /* abstract handle for PME data */
	RealOpenMM virial[3][3];

282
	pme_init(&pmedata,alphaEwald,numberOfAtoms,meshDim,5,1);
283
284
285
286
287
288
289
290
291
292

	pme_exec(pmedata,atomCoordinates,forces,atomParameters,periodicBoxSize,&recipEnergy,virial);

	if( totalEnergy )
       *totalEnergy += recipEnergy;

    if( energyByAtom )
        for(int n = 0; n < numberOfAtoms; n++)
            energyByAtom[n] += recipEnergy;

293
        pme_destroy(pmedata);
294
295
296
297
298
299
300
  }

    // Ewald method

  else if (ewald) {

    // setup reciprocal box
301
302
303
304

           RealOpenMM recipBoxSize[3] = { TWO_PI / periodicBoxSize[0], TWO_PI / periodicBoxSize[1], TWO_PI / periodicBoxSize[2]};


305
    // setup K-vectors
306

307
  #define EIR(x, y, z) eir[(x)*numberOfAtoms*3+(y)*3+z]
308
309
310
  vector<d_complex> eir(kmax*numberOfAtoms*3);
  vector<d_complex> tab_xy(numberOfAtoms);
  vector<d_complex> tab_qxyz(numberOfAtoms);
311
312
313
314
315
316
317

  if (kmax < 1) {
      std::stringstream message;
      message << " kmax < 1 , Aborting" << std::endl;
      SimTKOpenMMLog::printError( message );
  }

318
319
  for(int i = 0; (i < numberOfAtoms); i++) {
    for(int m = 0; (m < 3); m++)
320
      EIR(0, i, m) = d_complex(1,0);
321

322
    for(int m=0; (m<3); m++)
323
324
      EIR(1, i, m) = d_complex(cos(atomCoordinates[i][m]*recipBoxSize[m]),
                               sin(atomCoordinates[i][m]*recipBoxSize[m]));
325

326
327
    for(int j=2; (j<kmax); j++)
      for(int m=0; (m<3); m++)
328
        EIR(j, i, m) = EIR(j-1, i, m) * EIR(1, i, m);
329
330
  }

331
332
    // calculate reciprocal space energy and forces

333
334
335
336
337
338
339
340
341
342
343
344
    int lowry = 0;
    int lowrz = 1;

    for(int rx = 0; rx < numRx; rx++) {

      RealOpenMM kx = rx * recipBoxSize[0];

      for(int ry = lowry; ry < numRy; ry++) {

        RealOpenMM ky = ry * recipBoxSize[1];

        if(ry >= 0) {
345
          for(int n = 0; n < numberOfAtoms; n++)
346
            tab_xy[n] = EIR(rx, n, 0) * EIR(ry, n, 1);
347
348
349
        }

        else {
350
          for(int n = 0; n < numberOfAtoms; n++)
351
            tab_xy[n]= EIR(rx, n, 0) * conj (EIR(-ry, n, 1));
352
353
354
355
356
        }

        for (int rz = lowrz; rz < numRz; rz++) {

          if( rz >= 0) {
357
358
           for( int n = 0; n < numberOfAtoms; n++)
             tab_qxyz[n] = atomParameters[n][QIndex] * (tab_xy[n] * EIR(rz, n, 2));
359
360
361
          }

          else {
362
363
            for( int n = 0; n < numberOfAtoms; n++)
              tab_qxyz[n] = atomParameters[n][QIndex] * (tab_xy[n] * conj(EIR(-rz, n, 2)));
364
365
366
367
368
369
370
371
372
373
374
375
376
377
378
379
          }

          RealOpenMM cs = 0.0f;
          RealOpenMM ss = 0.0f;

          for( int n = 0; n < numberOfAtoms; n++) {
            cs += tab_qxyz[n].real();
            ss += tab_qxyz[n].imag();
          }

          RealOpenMM kz = rz * recipBoxSize[2];
          RealOpenMM k2 = kx * kx + ky * ky + kz * kz;
          RealOpenMM ak = exp(k2*factorEwald) / k2;

          for(int n = 0; n < numberOfAtoms; n++) {
            RealOpenMM force = ak * (cs * tab_qxyz[n].imag() - ss * tab_qxyz[n].real());
380
381
382
            forces[n][0] += 2 * recipCoeff * force * kx ;
            forces[n][1] += 2 * recipCoeff * force * ky ;
            forces[n][2] += 2 * recipCoeff * force * kz ;
383
          }
384

385
386
          recipEnergy       = recipCoeff * ak * ( cs * cs + ss * ss);
          totalRecipEnergy += recipEnergy;
387
388
389
390
391
392
393
394

          if( totalEnergy )
             *totalEnergy += recipEnergy;

          if( energyByAtom )
             for(int n = 0; n < numberOfAtoms; n++)
               energyByAtom[n] += recipEnergy;

395
396
397
398
399
          lowrz = 1 - numRz;
        }
        lowry = 1 - numRy;
      }
    }
400
  }
401

402
403
404
405
406
  else {
      std::stringstream message;
      message << " Wrong method for Ewald summation, Aborting" << std::endl;
      SimTKOpenMMLog::printError( message );
  }
407

408

409
410
411
412
// **************************************************************************************
// SHORT-RANGE ENERGY AND FORCES
// **************************************************************************************

413
414
415
    RealOpenMM totalVdwEnergy            = 0.0f;
    RealOpenMM totalRealSpaceEwaldEnergy = 0.0f;

416
417
418
419
    for (int i = 0; i < (int) neighborList->size(); i++) {
       OpenMM::AtomPair pair = (*neighborList)[i];
       int ii = pair.first;
       int jj = pair.second;
420

421
422
       RealOpenMM deltaR[2][ReferenceForce::LastDeltaRIndex];
       ReferenceForce::getDeltaRPeriodic( atomCoordinates[jj], atomCoordinates[ii], periodicBoxSize, deltaR[0] );
423
424
425
426
       RealOpenMM r         = deltaR[0][ReferenceForce::RIndex];
       RealOpenMM r2        = deltaR[0][ReferenceForce::R2Index];
       RealOpenMM inverseR  = one/(deltaR[0][ReferenceForce::RIndex]);
       RealOpenMM alphaR    = alphaEwald * r;
427
428


429
430
       RealOpenMM dEdR      = atomParameters[ii][QIndex] * atomParameters[jj][QIndex] * inverseR * inverseR * inverseR;
                  dEdR      = (RealOpenMM)(dEdR * (erfc(alphaR) + 2 * alphaR * exp ( - alphaR * alphaR) / SQRT_PI ));
431

432
433
434
435
436
       RealOpenMM sig       = atomParameters[ii][SigIndex] +  atomParameters[jj][SigIndex];
       RealOpenMM sig2      = inverseR*sig;
                  sig2     *= sig2;
       RealOpenMM sig6      = sig2*sig2*sig2;
       RealOpenMM eps       = atomParameters[ii][EpsIndex]*atomParameters[jj][EpsIndex];
437
                  dEdR     += eps*( twelve*sig6 - six )*sig6*inverseR*inverseR;
438

439
       // accumulate forces
440

441
442
443
444
       for( int kk = 0; kk < 3; kk++ ){
          RealOpenMM force  = dEdR*deltaR[0][kk];
          forces[ii][kk]   += force;
          forces[jj][kk]   -= force;
445
446
       }

447
       // accumulate energies
448

449
450
       realSpaceEwaldEnergy        = (RealOpenMM) (atomParameters[ii][QIndex]*atomParameters[jj][QIndex]*inverseR*erfc(alphaR));
       vdwEnergy                   = eps*(sig6-one)*sig6;
451

452
453
       totalVdwEnergy             += vdwEnergy;
       totalRealSpaceEwaldEnergy  += realSpaceEwaldEnergy;
454

455
456
457
458
        if( energyByAtom ){
           energyByAtom[ii] += realSpaceEwaldEnergy + vdwEnergy;
           energyByAtom[jj] += realSpaceEwaldEnergy + vdwEnergy;
        }
459

460
    }
461

462
463
464
    if( totalEnergy )
        *totalEnergy += totalRealSpaceEwaldEnergy + totalVdwEnergy;

Peter Eastman's avatar
Peter Eastman committed
465
466
    // Now subtract off the exclusions, since they were implicitly included in the reciprocal space sum.

467
    RealOpenMM totalExclusionEnergy = 0.0f;
Peter Eastman's avatar
Peter Eastman committed
468
469
470
471
472
473
474
475
476
477
478
479
480
481
482
483
484
485
486
487
488
489
490
491
    for (int i = 0; i < numberOfAtoms; i++)
        for (int j = 1; j <= exclusions[i][0]; j++)
            if (exclusions[i][j] > i) {
               int ii = i;
               int jj = exclusions[i][j];

               RealOpenMM deltaR[2][ReferenceForce::LastDeltaRIndex];
               ReferenceForce::getDeltaRPeriodic( atomCoordinates[jj], atomCoordinates[ii], periodicBoxSize, deltaR[0] );
               RealOpenMM r         = deltaR[0][ReferenceForce::RIndex];
               RealOpenMM inverseR  = one/(deltaR[0][ReferenceForce::RIndex]);
               RealOpenMM alphaR    = alphaEwald * r;
               RealOpenMM dEdR      = atomParameters[ii][QIndex] * atomParameters[jj][QIndex] * inverseR * inverseR * inverseR;
                          dEdR      = (RealOpenMM)(dEdR * (erf(alphaR) - 2 * alphaR * exp ( - alphaR * alphaR) / SQRT_PI ));

               // accumulate forces

               for( int kk = 0; kk < 3; kk++ ){
                  RealOpenMM force  = dEdR*deltaR[0][kk];
                  forces[ii][kk]   -= force;
                  forces[jj][kk]   += force;
               }

               // accumulate energies

492
               realSpaceEwaldEnergy = (RealOpenMM) (atomParameters[ii][QIndex]*atomParameters[jj][QIndex]*inverseR*erf(alphaR));
Peter Eastman's avatar
Peter Eastman committed
493

494
495
               totalExclusionEnergy += realSpaceEwaldEnergy;
               if( energyByAtom ){
Peter Eastman's avatar
Peter Eastman committed
496
497
                   energyByAtom[ii] -= realSpaceEwaldEnergy;
                   energyByAtom[jj] -= realSpaceEwaldEnergy;
498
               }
Peter Eastman's avatar
Peter Eastman committed
499
500
            }

501
502
    if( totalEnergy )
        *totalEnergy -= totalExclusionEnergy;
503

504
// ***********************************************************************
505
506
507
508
509

   return ReferenceForce::DefaultReturn;
}


510
511
512
513
514
515
516
517
518
519
520
521
522
523
524
525
526
/**---------------------------------------------------------------------------------------

   Calculate LJ Coulomb pair ixn

   @param numberOfAtoms    number of atoms
   @param atomCoordinates  atom coordinates
   @param atomParameters   atom parameters                             atomParameters[atomIndex][paramterIndex]
   @param exclusions       atom exclusion indices                      exclusions[atomIndex][atomToExcludeIndex]
                           exclusions[atomIndex][0] = number of exclusions
                           exclusions[atomIndex][1-no.] = atom indices of atoms to excluded from
                           interacting w/ atom atomIndex
   @param fixedParameters  non atom parameters (not currently used)
   @param forces           force array (forces added)
   @param energyByAtom     atom energy
   @param totalEnergy      total energy

   @return ReferenceForce::DefaultReturn
527

528
   --------------------------------------------------------------------------------------- */
529

530
531
532
533
534
int ReferenceLJCoulombIxn::calculatePairIxn( int numberOfAtoms, RealOpenMM** atomCoordinates,
                                             RealOpenMM** atomParameters, int** exclusions,
                                             RealOpenMM* fixedParameters, RealOpenMM** forces,
                                             RealOpenMM* energyByAtom, RealOpenMM* totalEnergy ) const {

535
   if (ewald || pme)
536
        return calculateEwaldIxn(numberOfAtoms, atomCoordinates, atomParameters, exclusions, fixedParameters, forces, energyByAtom, totalEnergy);
537
   if (cutoff) {
538
       for (int i = 0; i < (int) neighborList->size(); i++) {
539
540
541
542
543
544
           OpenMM::AtomPair pair = (*neighborList)[i];
           calculateOneIxn(pair.first, pair.second, atomCoordinates, atomParameters, forces, energyByAtom, totalEnergy);
       }
   }
   else {
       // allocate and initialize exclusion array
545

546
547
548
549
       int* exclusionIndices = new int[numberOfAtoms];
       for( int ii = 0; ii < numberOfAtoms; ii++ ){
          exclusionIndices[ii] = -1;
       }
550

551
       for( int ii = 0; ii < numberOfAtoms; ii++ ){
552

553
          // set exclusions
554

555
556
557
          for( int jj = 1; jj <= exclusions[ii][0]; jj++ ){
             exclusionIndices[exclusions[ii][jj]] = ii;
          }
558

559
          // loop over atom pairs
560

561
          for( int jj = ii+1; jj < numberOfAtoms; jj++ ){
562

563
564
565
566
567
             if( exclusionIndices[jj] != ii ){
                 calculateOneIxn(ii, jj, atomCoordinates, atomParameters, forces, energyByAtom, totalEnergy);
             }
          }
       }
568

569
570
       delete[] exclusionIndices;
   }
571

572
573
   return ReferenceForce::DefaultReturn;
}
574

575
  /**---------------------------------------------------------------------------------------
576

577
     Calculate LJ Coulomb pair ixn between two atoms
578

579
580
581
582
583
584
585
     @param ii               the index of the first atom
     @param jj               the index of the second atom
     @param atomCoordinates  atom coordinates
     @param atomParameters   atom parameters (charges, c6, c12, ...)     atomParameters[atomIndex][paramterIndex]
     @param forces           force array (forces added)
     @param energyByAtom     atom energy
     @param totalEnergy      total energy
586

587
     @return ReferenceForce::DefaultReturn
588

589
     --------------------------------------------------------------------------------------- */
590

Peter Eastman's avatar
Peter Eastman committed
591
int ReferenceLJCoulombIxn::calculateOneIxn( int ii, int jj, RealOpenMM** atomCoordinates,
592
593
                        RealOpenMM** atomParameters, RealOpenMM** forces,
                        RealOpenMM* energyByAtom, RealOpenMM* totalEnergy ) const {
594

595
    // ---------------------------------------------------------------------------------------
596

597
    static const std::string methodName = "\nReferenceLJCoulombIxn::calculateOneIxn";
598

599
    // ---------------------------------------------------------------------------------------
600

601
    // constants -- reduce Visual Studio warnings regarding conversions between float & double
602

603
604
605
606
607
608
609
    static const RealOpenMM zero        =  0.0;
    static const RealOpenMM one         =  1.0;
    static const RealOpenMM two         =  2.0;
    static const RealOpenMM three       =  3.0;
    static const RealOpenMM six         =  6.0;
    static const RealOpenMM twelve      = 12.0;
    static const RealOpenMM oneM        = -1.0;
610

611
    static const int threeI             = 3;
612

613
614
615
616
617
618
619
620
621
622
623
    // debug flag

    static const int debug              = -1;

    static const int LastAtomIndex      = 2;

    RealOpenMM deltaR[2][ReferenceForce::LastDeltaRIndex];

    // get deltaR, R2, and R between 2 atoms

    if (periodic)
624
        ReferenceForce::getDeltaRPeriodic( atomCoordinates[jj], atomCoordinates[ii], periodicBoxSize, deltaR[0] );
625
    else
626
        ReferenceForce::getDeltaR( atomCoordinates[jj], atomCoordinates[ii], deltaR[0] );
627
628
629
630
631
632
633
634
635
636
637

    RealOpenMM r2        = deltaR[0][ReferenceForce::R2Index];
    RealOpenMM inverseR  = one/(deltaR[0][ReferenceForce::RIndex]);
    RealOpenMM sig       = atomParameters[ii][SigIndex] +  atomParameters[jj][SigIndex];
    RealOpenMM sig2      = inverseR*sig;
               sig2     *= sig2;
    RealOpenMM sig6      = sig2*sig2*sig2;

    RealOpenMM eps       = atomParameters[ii][EpsIndex]*atomParameters[jj][EpsIndex];
    RealOpenMM dEdR      = eps*( twelve*sig6 - six )*sig6;
               if (cutoff)
638
                   dEdR += atomParameters[ii][QIndex]*atomParameters[jj][QIndex]*(inverseR-2.0f*krf*r2);
639
640
641
               else
                   dEdR += atomParameters[ii][QIndex]*atomParameters[jj][QIndex]*inverseR;
               dEdR     *= inverseR*inverseR;
642

643
644
645
646
647
648
649
650
651
652
653
654
655
656
657
658
659
660
661
662
663
664
665
666
667
668
    // accumulate forces

    for( int kk = 0; kk < 3; kk++ ){
       RealOpenMM force  = dEdR*deltaR[0][kk];
       forces[ii][kk]   += force;
       forces[jj][kk]   -= force;
    }

    RealOpenMM energy = 0.0;

    // accumulate energies

    if( totalEnergy || energyByAtom ) {
        if (cutoff)
            energy = atomParameters[ii][QIndex]*atomParameters[jj][QIndex]*(inverseR+krf*r2-crf);
        else
            energy = atomParameters[ii][QIndex]*atomParameters[jj][QIndex]*inverseR;
        energy += eps*(sig6-one)*sig6;
        if( totalEnergy )
           *totalEnergy += energy;
        if( energyByAtom ){
           energyByAtom[ii] += energy;
           energyByAtom[jj] += energy;
        }
    }

669
    // debug
670
671
672
673
674
675
676

    if( debug == ii ){
       static bool printHeader = false;
       std::stringstream message;
       message << methodName;
       message << std::endl;
       int pairArray[2] = { ii, jj };
677
       if( !printHeader  ){
678
679
680
          printHeader = true;
          message << std::endl;
          message << methodName.c_str() << " a0 k [c q p s] r1 r2  angle dt rp p[] dot cosine angle dEdR*r F[]" << std::endl;
681
       }
682
683
684
685
686
687
688
689
690
691
692
693
694
695
696
697
698
699
700
701
702
703
704
705
706
707
708
709
710
711
712
713
714
715
716
717
718
719
720

       message << std::endl;
       for( int kk = 0; kk < 2; kk++ ){
          message << " Atm " << pairArray[kk] << " [" << atomCoordinates[pairArray[kk]][0] << " " << atomCoordinates[pairArray[kk]][1] << " " << atomCoordinates[pairArray[kk]][2] << "] ";
       }
       message << std::endl << " Delta:";
       for( int kk = 0; kk < (LastAtomIndex - 1); kk++ ){
          message << " [";
          for( int jj = 0; jj < ReferenceForce::LastDeltaRIndex; jj++ ){
             message << deltaR[kk][jj] << " ";
          }
          message << "]";
       }
       message << std::endl;

       for( int kk = 0; kk < 2; kk++ ){
          message << " p" << pairArray[kk] << " [";
          message << atomParameters[pairArray[kk]][0] << " " << atomParameters[pairArray[kk]][1] << " " << atomParameters[pairArray[kk]][2];
          message << "]";
       }
      message << std::endl;

       message << " dEdR=" << dEdR;
       message << " E=" << energy << " force factors: ";
       message << "F=compute force; f=cumulative force";

       message << std::endl << "  ";
       message << " f" << ii << "[";
       SimTKOpenMMUtilities::formatRealStringStream( message, deltaR[0], threeI, dEdR );
       message << "]";

       for( int kk = 0; kk < 2; kk++ ){
          message << " F" <<  pairArray[kk] << " [";
          SimTKOpenMMUtilities::formatRealStringStream( message, forces[pairArray[kk]], threeI );
          message << "]";
       }

       SimTKOpenMMLog::printMessage( message );
    }
721
    return ReferenceForce::DefaultReturn;
722
  }
723