ReferenceKernels.cpp 80.4 KB
Newer Older
1
2
3
4
5
6
7
8
/* -------------------------------------------------------------------------- *
 *                                   OpenMM                                   *
 * -------------------------------------------------------------------------- *
 * This is part of the OpenMM molecular simulation toolkit originating from   *
 * Simbios, the NIH National Center for Physics-Based Simulation of           *
 * Biological Structures at Stanford, funded under the NIH Roadmap for        *
 * Medical Research, grant U54 GM072970. See https://simtk.org.               *
 *                                                                            *
9
 * Portions copyright (c) 2008-2009 Stanford University and the Authors.      *
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26
27
28
29
30
31
32
 * Authors: Peter Eastman                                                     *
 * Contributors:                                                              *
 *                                                                            *
 * 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 "ReferenceKernels.h"
33
#include "gbsa/CpuObc.h"
Mark Friedrichs's avatar
Mark Friedrichs committed
34
#include "gbsa/CpuGBVI.h"
35
#include "SimTKReference/ReferenceAndersenThermostat.h"
36
37
#include "SimTKReference/ReferenceAngleBondIxn.h"
#include "SimTKReference/ReferenceBondForce.h"
38
#include "SimTKReference/ReferenceBrownianDynamics.h"
39
#include "SimTKReference/ReferenceCCMAAlgorithm.h"
40
#include "SimTKReference/ReferenceCustomAngleIxn.h"
41
#include "SimTKReference/ReferenceCustomBondIxn.h"
42
#include "SimTKReference/ReferenceCustomExternalIxn.h"
43
#include "SimTKReference/ReferenceCustomGBIxn.h"
44
#include "SimTKReference/ReferenceCustomHbondIxn.h"
45
#include "SimTKReference/ReferenceCustomNonbondedIxn.h"
46
#include "SimTKReference/ReferenceCustomTorsionIxn.h"
47
48
49
#include "SimTKReference/ReferenceHarmonicBondIxn.h"
#include "SimTKReference/ReferenceLJCoulomb14.h"
#include "SimTKReference/ReferenceLJCoulombIxn.h"
50
#include "SimTKReference/ReferenceMonteCarloBarostat.h"
51
52
#include "SimTKReference/ReferenceProperDihedralBond.h"
#include "SimTKReference/ReferenceRbDihedralBond.h"
53
#include "SimTKReference/ReferenceStochasticDynamics.h"
54
55
#include "SimTKReference/ReferenceVariableStochasticDynamics.h"
#include "SimTKReference/ReferenceVariableVerletDynamics.h"
56
#include "SimTKReference/ReferenceVerletDynamics.h"
57
#include "openmm/CMMotionRemover.h"
58
#include "openmm/Context.h"
59
#include "openmm/System.h"
60
#include "openmm/internal/ContextImpl.h"
61
#include "openmm/internal/CustomHbondForceImpl.h"
62
#include "openmm/internal/NonbondedForceImpl.h"
63
#include "openmm/Integrator.h"
64
#include "openmm/OpenMMException.h"
65
#include "SimTKUtilities/SimTKOpenMMUtilities.h"
66
#include "lepton/CustomFunction.h"
67
68
#include "lepton/Parser.h"
#include "lepton/ParsedExpression.h"
69
#include <cmath>
70
#include <limits>
71
72
73
74

using namespace OpenMM;
using namespace std;

75
static int** allocateIntArray(int length, int width) {
76
77
78
79
80
81
    int** array = new int*[length];
    for (int i = 0; i < length; ++i)
        array[i] = new int[width];
    return array;
}

82
static RealOpenMM** allocateRealArray(int length, int width) {
83
84
85
86
87
88
    RealOpenMM** array = new RealOpenMM*[length];
    for (int i = 0; i < length; ++i)
        array[i] = new RealOpenMM[width];
    return array;
}

89
static int** copyToArray(const vector<vector<int> > vec) {
90
91
92
    if (vec.size() == 0)
        return new int*[0];
    int** array = allocateIntArray(vec.size(), vec[0].size());
93
94
    for (size_t i = 0; i < vec.size(); ++i)
        for (size_t j = 0; j < vec[i].size(); ++j)
95
96
97
98
            array[i][j] = vec[i][j];
    return array;
}

99
static RealOpenMM** copyToArray(const vector<vector<double> > vec) {
100
101
102
    if (vec.size() == 0)
        return new RealOpenMM*[0];
    RealOpenMM** array = allocateRealArray(vec.size(), vec[0].size());
103
104
105
    for (size_t i = 0; i < vec.size(); ++i)
        for (size_t j = 0; j < vec[i].size(); ++j)
            array[i][j] = static_cast<RealOpenMM>(vec[i][j]);
106
107
108
    return array;
}

109
static void disposeIntArray(int** array, int size) {
110
111
112
113
114
115
116
    if (array) {
        for (int i = 0; i < size; ++i)
            delete[] array[i];
        delete[] array;
    }
}

117
static void disposeRealArray(RealOpenMM** array, int size) {
118
119
120
121
122
123
124
    if (array) {
        for (int i = 0; i < size; ++i)
            delete[] array[i];
        delete[] array;
    }
}

125
126
127
128
129
130
131
132
133
134
135
136
137
138
139
static RealOpenMM** extractPositions(ContextImpl& context) {
    ReferencePlatform::PlatformData* data = reinterpret_cast<ReferencePlatform::PlatformData*>(context.getPlatformData());
    return (RealOpenMM**) data->positions;
}

static RealOpenMM** extractVelocities(ContextImpl& context) {
    ReferencePlatform::PlatformData* data = reinterpret_cast<ReferencePlatform::PlatformData*>(context.getPlatformData());
    return (RealOpenMM**) data->velocities;
}

static RealOpenMM** extractForces(ContextImpl& context) {
    ReferencePlatform::PlatformData* data = reinterpret_cast<ReferencePlatform::PlatformData*>(context.getPlatformData());
    return (RealOpenMM**) data->forces;
}

140
141
142
143
144
static RealOpenMM* extractBoxSize(ContextImpl& context) {
    ReferencePlatform::PlatformData* data = reinterpret_cast<ReferencePlatform::PlatformData*>(context.getPlatformData());
    return (RealOpenMM*) data->periodicBoxSize;
}

145
static void findAnglesForCCMA(const System& system, vector<ReferenceCCMAAlgorithm::AngleInfo>& angles) {
146
147
148
149
150
151
152
    for (int i = 0; i < system.getNumForces(); i++) {
        const HarmonicAngleForce* force = dynamic_cast<const HarmonicAngleForce*>(&system.getForce(i));
        if (force != NULL) {
            for (int j = 0; j < force->getNumAngles(); j++) {
                int atom1, atom2, atom3;
                double angle, k;
                force->getAngleParameters(j, atom1, atom2, atom3, angle, k);
153
                angles.push_back(ReferenceCCMAAlgorithm::AngleInfo(atom1, atom2, atom3, (RealOpenMM)angle));
154
155
156
157
158
            }
        }
    }
}

159
void ReferenceCalcForcesAndEnergyKernel::initialize(const System& system) {
160
161
}

162
void ReferenceCalcForcesAndEnergyKernel::beginForceComputation(ContextImpl& context) {
163
164
165
166
167
168
169
    int numParticles = context.getSystem().getNumParticles();
    RealOpenMM** forceData = extractForces(context);
    for (int i = 0; i < numParticles; ++i) {
        forceData[i][0] = (RealOpenMM) 0.0;
        forceData[i][1] = (RealOpenMM) 0.0;
        forceData[i][2] = (RealOpenMM) 0.0;
    }
170
171
}

172
173
174
175
176
177
178
179
180
181
void ReferenceCalcForcesAndEnergyKernel::finishForceComputation(ContextImpl& context) {
}

void ReferenceCalcForcesAndEnergyKernel::beginEnergyComputation(ContextImpl& context) {
}

double ReferenceCalcForcesAndEnergyKernel::finishEnergyComputation(ContextImpl& context) {
    return 0.0;
}

182
void ReferenceUpdateStateDataKernel::initialize(const System& system) {
183
184
}

185
double ReferenceUpdateStateDataKernel::getTime(const ContextImpl& context) const {
186
187
188
    return data.time;
}

189
void ReferenceUpdateStateDataKernel::setTime(ContextImpl& context, double time) {
190
191
192
    data.time = time;
}

193
194
195
196
197
198
199
200
201
202
203
204
void ReferenceUpdateStateDataKernel::getPositions(ContextImpl& context, std::vector<Vec3>& positions) {
    int numParticles = context.getSystem().getNumParticles();
    RealOpenMM** posData = extractPositions(context);
    positions.resize(numParticles);
    for (int i = 0; i < numParticles; ++i)
        positions[i] = Vec3(posData[i][0], posData[i][1], posData[i][2]);
}

void ReferenceUpdateStateDataKernel::setPositions(ContextImpl& context, const std::vector<Vec3>& positions) {
    int numParticles = context.getSystem().getNumParticles();
    RealOpenMM** posData = extractPositions(context);
    for (int i = 0; i < numParticles; ++i) {
205
206
207
        posData[i][0] = (RealOpenMM) positions[i][0];
        posData[i][1] = (RealOpenMM) positions[i][1];
        posData[i][2] = (RealOpenMM) positions[i][2];
208
209
210
211
212
213
214
215
216
217
218
219
220
221
222
    }
}

void ReferenceUpdateStateDataKernel::getVelocities(ContextImpl& context, std::vector<Vec3>& velocities) {
    int numParticles = context.getSystem().getNumParticles();
    RealOpenMM** velData = extractVelocities(context);
    velocities.resize(numParticles);
    for (int i = 0; i < numParticles; ++i)
        velocities[i] = Vec3(velData[i][0], velData[i][1], velData[i][2]);
}

void ReferenceUpdateStateDataKernel::setVelocities(ContextImpl& context, const std::vector<Vec3>& velocities) {
    int numParticles = context.getSystem().getNumParticles();
    RealOpenMM** velData = extractVelocities(context);
    for (int i = 0; i < numParticles; ++i) {
223
224
225
        velData[i][0] = (RealOpenMM) velocities[i][0];
        velData[i][1] = (RealOpenMM) velocities[i][1];
        velData[i][2] = (RealOpenMM) velocities[i][2];
226
227
228
229
230
231
232
233
234
235
236
    }
}

void ReferenceUpdateStateDataKernel::getForces(ContextImpl& context, std::vector<Vec3>& forces) {
    int numParticles = context.getSystem().getNumParticles();
    RealOpenMM** forceData = extractForces(context);
    forces.resize(numParticles);
    for (int i = 0; i < numParticles; ++i)
        forces[i] = Vec3(forceData[i][0], forceData[i][1], forceData[i][2]);
}

237
238
239
240
241
242
243
244
245
246
247
248
249
250
void ReferenceUpdateStateDataKernel::getPeriodicBoxVectors(ContextImpl& context, Vec3& a, Vec3& b, Vec3& c) const {
    RealOpenMM* box = extractBoxSize(context);
    a = Vec3(box[0], 0, 0);
    b = Vec3(0, box[1], 0);
    c = Vec3(0, 0, box[2]);
}

void ReferenceUpdateStateDataKernel::setPeriodicBoxVectors(ContextImpl& context, const Vec3& a, const Vec3& b, const Vec3& c) const {
    RealOpenMM* box = extractBoxSize(context);
    box[0] = (RealOpenMM) a[0];
    box[1] = (RealOpenMM) b[1];
    box[2] = (RealOpenMM) c[2];
}

251
ReferenceCalcHarmonicBondForceKernel::~ReferenceCalcHarmonicBondForceKernel() {
252
253
254
255
    disposeIntArray(bondIndexArray, numBonds);
    disposeRealArray(bondParamArray, numBonds);
}

256
void ReferenceCalcHarmonicBondForceKernel::initialize(const System& system, const HarmonicBondForce& force) {
257
258
259
260
    numBonds = force.getNumBonds();
    bondIndexArray = allocateIntArray(numBonds, 2);
    bondParamArray = allocateRealArray(numBonds, 2);
    for (int i = 0; i < force.getNumBonds(); ++i) {
Peter Eastman's avatar
Peter Eastman committed
261
        int particle1, particle2;
262
        double length, k;
Peter Eastman's avatar
Peter Eastman committed
263
264
265
        force.getBondParameters(i, particle1, particle2, length, k);
        bondIndexArray[i][0] = particle1;
        bondIndexArray[i][1] = particle2;
266
267
        bondParamArray[i][0] = (RealOpenMM) length;
        bondParamArray[i][1] = (RealOpenMM) k;
268
    }
269
270
}

271
void ReferenceCalcHarmonicBondForceKernel::executeForces(ContextImpl& context) {
272
273
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = extractForces(context);
274
275
276
277
278
    ReferenceBondForce refBondForce;
    ReferenceHarmonicBondIxn harmonicBond;
    refBondForce.calculateForce(numBonds, bondIndexArray, posData, bondParamArray, forceData, 0, 0, 0, harmonicBond);
}

279
double ReferenceCalcHarmonicBondForceKernel::executeEnergy(ContextImpl& context) {
280
    RealOpenMM** posData = extractPositions(context);
Peter Eastman's avatar
Peter Eastman committed
281
    RealOpenMM** forceData = allocateRealArray(context.getSystem().getNumParticles(), 3);
282
283
284
285
286
287
288
    RealOpenMM* energyArray = new RealOpenMM[numBonds];
    RealOpenMM energy = 0;
    ReferenceBondForce refBondForce;
    ReferenceHarmonicBondIxn harmonicBond;
    for (int i = 0; i < numBonds; ++i)
        energyArray[i] = 0;
    refBondForce.calculateForce(numBonds, bondIndexArray, posData, bondParamArray, forceData, energyArray, 0, &energy, harmonicBond);
Peter Eastman's avatar
Peter Eastman committed
289
    disposeRealArray(forceData, context.getSystem().getNumParticles());
290
291
292
293
    delete[] energyArray;
    return energy;
}

294
295
296
297
298
299
300
301
302
303
304
ReferenceCalcCustomBondForceKernel::~ReferenceCalcCustomBondForceKernel() {
    disposeIntArray(bondIndexArray, numBonds);
    disposeRealArray(bondParamArray, numBonds);
}

void ReferenceCalcCustomBondForceKernel::initialize(const System& system, const CustomBondForce& force) {
    numBonds = force.getNumBonds();
    int numParameters = force.getNumPerBondParameters();

    // Build the arrays.

305
    bondIndexArray = allocateIntArray(numBonds, 2);
306
307
308
309
310
311
312
313
314
315
316
317
318
319
320
321
322
323
324
325
326
327
328
329
330
331
332
333
334
335
336
337
338
339
340
341
342
343
344
345
346
347
348
349
350
351
352
353
354
355
356
    bondParamArray = allocateRealArray(numBonds, numParameters);
    vector<double> params;
    for (int i = 0; i < force.getNumBonds(); ++i) {
        int particle1, particle2;
        force.getBondParameters(i, particle1, particle2, params);
        bondIndexArray[i][0] = particle1;
        bondIndexArray[i][1] = particle2;
        for (int j = 0; j < numParameters; j++)
            bondParamArray[i][j] = (RealOpenMM) params[j];
    }

    // Parse the expression used to calculate the force.

    Lepton::ParsedExpression expression = Lepton::Parser::parse(force.getEnergyFunction()).optimize();
    energyExpression = expression.createProgram();
    forceExpression = expression.differentiate("r").optimize().createProgram();
    for (int i = 0; i < numParameters; i++)
        parameterNames.push_back(force.getPerBondParameterName(i));
    for (int i = 0; i < force.getNumGlobalParameters(); i++)
        globalParameterNames.push_back(force.getGlobalParameterName(i));
}

void ReferenceCalcCustomBondForceKernel::executeForces(ContextImpl& context) {
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = extractForces(context);
    map<string, double> globalParameters;
    for (int i = 0; i < (int) globalParameterNames.size(); i++)
        globalParameters[globalParameterNames[i]] = context.getParameter(globalParameterNames[i]);
    ReferenceBondForce refBondForce;
    ReferenceCustomBondIxn harmonicBond(energyExpression, forceExpression, parameterNames, globalParameters);
    refBondForce.calculateForce(numBonds, bondIndexArray, posData, bondParamArray, forceData, 0, 0, 0, harmonicBond);
}

double ReferenceCalcCustomBondForceKernel::executeEnergy(ContextImpl& context) {
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = allocateRealArray(context.getSystem().getNumParticles(), 3);
    RealOpenMM* energyArray = new RealOpenMM[numBonds];
    RealOpenMM energy = 0;
    map<string, double> globalParameters;
    for (int i = 0; i < (int) globalParameterNames.size(); i++)
        globalParameters[globalParameterNames[i]] = context.getParameter(globalParameterNames[i]);
    ReferenceBondForce refBondForce;
    ReferenceCustomBondIxn harmonicBond(energyExpression, forceExpression, parameterNames, globalParameters);
    for (int i = 0; i < numBonds; ++i)
        energyArray[i] = 0;
    refBondForce.calculateForce(numBonds, bondIndexArray, posData, bondParamArray, forceData, energyArray, 0, &energy, harmonicBond);
    disposeRealArray(forceData, context.getSystem().getNumParticles());
    delete[] energyArray;
    return energy;
}

357
358
359
360
361
362
363
364
365
ReferenceCalcHarmonicAngleForceKernel::~ReferenceCalcHarmonicAngleForceKernel() {
    disposeIntArray(angleIndexArray, numAngles);
    disposeRealArray(angleParamArray, numAngles);
}

void ReferenceCalcHarmonicAngleForceKernel::initialize(const System& system, const HarmonicAngleForce& force) {
    numAngles = force.getNumAngles();
    angleIndexArray = allocateIntArray(numAngles, 3);
    angleParamArray = allocateRealArray(numAngles, 2);
366
    for (int i = 0; i < force.getNumAngles(); ++i) {
Peter Eastman's avatar
Peter Eastman committed
367
        int particle1, particle2, particle3;
368
        double angle, k;
Peter Eastman's avatar
Peter Eastman committed
369
370
371
372
        force.getAngleParameters(i, particle1, particle2, particle3, angle, k);
        angleIndexArray[i][0] = particle1;
        angleIndexArray[i][1] = particle2;
        angleIndexArray[i][2] = particle3;
373
374
        angleParamArray[i][0] = (RealOpenMM) angle;
        angleParamArray[i][1] = (RealOpenMM) k;
375
    }
376
377
}

378
void ReferenceCalcHarmonicAngleForceKernel::executeForces(ContextImpl& context) {
379
380
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = extractForces(context);
381
382
383
384
385
    ReferenceBondForce refBondForce;
    ReferenceAngleBondIxn angleBond;
    refBondForce.calculateForce(numAngles, angleIndexArray, posData, angleParamArray, forceData, 0, 0, 0, angleBond);
}

386
double ReferenceCalcHarmonicAngleForceKernel::executeEnergy(ContextImpl& context) {
387
    RealOpenMM** posData = extractPositions(context);
Peter Eastman's avatar
Peter Eastman committed
388
    RealOpenMM** forceData = allocateRealArray(context.getSystem().getNumParticles(), 3);
389
390
391
392
393
394
395
    RealOpenMM* energyArray = new RealOpenMM[numAngles];
    RealOpenMM energy = 0;
    ReferenceBondForce refBondForce;
    ReferenceAngleBondIxn angleBond;
    for (int i = 0; i < numAngles; ++i)
        energyArray[i] = 0;
    refBondForce.calculateForce(numAngles, angleIndexArray, posData, angleParamArray, forceData, energyArray, 0, &energy, angleBond);
Peter Eastman's avatar
Peter Eastman committed
396
    disposeRealArray(forceData, context.getSystem().getNumParticles());
397
398
399
400
    delete[] energyArray;
    return energy;
}

401
402
403
404
405
406
407
408
409
410
411
412
413
414
415
416
417
418
419
420
421
422
423
424
425
426
427
428
429
430
431
432
433
434
435
436
437
438
439
440
441
442
ReferenceCalcCustomAngleForceKernel::~ReferenceCalcCustomAngleForceKernel() {
    disposeIntArray(angleIndexArray, numAngles);
    disposeRealArray(angleParamArray, numAngles);
}

void ReferenceCalcCustomAngleForceKernel::initialize(const System& system, const CustomAngleForce& force) {
    numAngles = force.getNumAngles();
    int numParameters = force.getNumPerAngleParameters();

    // Build the arrays.

    angleIndexArray = allocateIntArray(numAngles, 3);
    angleParamArray = allocateRealArray(numAngles, numParameters);
    vector<double> params;
    for (int i = 0; i < force.getNumAngles(); ++i) {
        int particle1, particle2, particle3;
        force.getAngleParameters(i, particle1, particle2, particle3, params);
        angleIndexArray[i][0] = particle1;
        angleIndexArray[i][1] = particle2;
        angleIndexArray[i][2] = particle3;
        for (int j = 0; j < numParameters; j++)
            angleParamArray[i][j] = (RealOpenMM) params[j];
    }

    // Parse the expression used to calculate the force.

    Lepton::ParsedExpression expression = Lepton::Parser::parse(force.getEnergyFunction()).optimize();
    energyExpression = expression.createProgram();
    forceExpression = expression.differentiate("theta").optimize().createProgram();
    for (int i = 0; i < numParameters; i++)
        parameterNames.push_back(force.getPerAngleParameterName(i));
    for (int i = 0; i < force.getNumGlobalParameters(); i++)
        globalParameterNames.push_back(force.getGlobalParameterName(i));
}

void ReferenceCalcCustomAngleForceKernel::executeForces(ContextImpl& context) {
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = extractForces(context);
    map<string, double> globalParameters;
    for (int i = 0; i < (int) globalParameterNames.size(); i++)
        globalParameters[globalParameterNames[i]] = context.getParameter(globalParameterNames[i]);
    ReferenceBondForce refBondForce;
443
444
    ReferenceCustomAngleIxn customAngle(energyExpression, forceExpression, parameterNames, globalParameters);
    refBondForce.calculateForce(numAngles, angleIndexArray, posData, angleParamArray, forceData, 0, 0, 0, customAngle);
445
446
447
448
449
450
451
452
453
454
455
}

double ReferenceCalcCustomAngleForceKernel::executeEnergy(ContextImpl& context) {
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = allocateRealArray(context.getSystem().getNumParticles(), 3);
    RealOpenMM* energyArray = new RealOpenMM[numAngles];
    RealOpenMM energy = 0;
    map<string, double> globalParameters;
    for (int i = 0; i < (int) globalParameterNames.size(); i++)
        globalParameters[globalParameterNames[i]] = context.getParameter(globalParameterNames[i]);
    ReferenceBondForce refBondForce;
456
    ReferenceCustomAngleIxn customAngle(energyExpression, forceExpression, parameterNames, globalParameters);
457
458
    for (int i = 0; i < numAngles; ++i)
        energyArray[i] = 0;
459
    refBondForce.calculateForce(numAngles, angleIndexArray, posData, angleParamArray, forceData, energyArray, 0, &energy, customAngle);
460
461
462
463
464
    disposeRealArray(forceData, context.getSystem().getNumParticles());
    delete[] energyArray;
    return energy;
}

465
466
467
468
469
470
471
472
473
474
ReferenceCalcPeriodicTorsionForceKernel::~ReferenceCalcPeriodicTorsionForceKernel() {
    disposeIntArray(torsionIndexArray, numTorsions);
    disposeRealArray(torsionParamArray, numTorsions);
}

void ReferenceCalcPeriodicTorsionForceKernel::initialize(const System& system, const PeriodicTorsionForce& force) {
    numTorsions = force.getNumTorsions();
    torsionIndexArray = allocateIntArray(numTorsions, 4);
    torsionParamArray = allocateRealArray(numTorsions, 3);
    for (int i = 0; i < force.getNumTorsions(); ++i) {
Peter Eastman's avatar
Peter Eastman committed
475
        int particle1, particle2, particle3, particle4, periodicity;
476
        double phase, k;
Peter Eastman's avatar
Peter Eastman committed
477
478
479
480
481
        force.getTorsionParameters(i, particle1, particle2, particle3, particle4, periodicity, phase, k);
        torsionIndexArray[i][0] = particle1;
        torsionIndexArray[i][1] = particle2;
        torsionIndexArray[i][2] = particle3;
        torsionIndexArray[i][3] = particle4;
482
483
484
        torsionParamArray[i][0] = (RealOpenMM) k;
        torsionParamArray[i][1] = (RealOpenMM) phase;
        torsionParamArray[i][2] = (RealOpenMM) periodicity;
485
    }
486
487
}

488
void ReferenceCalcPeriodicTorsionForceKernel::executeForces(ContextImpl& context) {
489
490
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = extractForces(context);
491
492
493
494
495
    ReferenceBondForce refBondForce;
    ReferenceProperDihedralBond periodicTorsionBond;
    refBondForce.calculateForce(numTorsions, torsionIndexArray, posData, torsionParamArray, forceData, 0, 0, 0, periodicTorsionBond);
}

496
double ReferenceCalcPeriodicTorsionForceKernel::executeEnergy(ContextImpl& context) {
497
    RealOpenMM** posData = extractPositions(context);
Peter Eastman's avatar
Peter Eastman committed
498
    RealOpenMM** forceData = allocateRealArray(context.getSystem().getNumParticles(), 3);
499
500
501
502
503
504
505
    RealOpenMM* energyArray = new RealOpenMM[numTorsions];
    RealOpenMM energy = 0;
    ReferenceBondForce refBondForce;
    ReferenceProperDihedralBond periodicTorsionBond;
    for (int i = 0; i < numTorsions; ++i)
        energyArray[i] = 0;
    refBondForce.calculateForce(numTorsions, torsionIndexArray, posData, torsionParamArray, forceData, energyArray, 0, &energy, periodicTorsionBond);
Peter Eastman's avatar
Peter Eastman committed
506
    disposeRealArray(forceData, context.getSystem().getNumParticles());
507
508
509
510
511
512
513
514
515
516
517
518
519
520
    delete[] energyArray;
    return energy;
}

ReferenceCalcRBTorsionForceKernel::~ReferenceCalcRBTorsionForceKernel() {
    disposeIntArray(torsionIndexArray, numTorsions);
    disposeRealArray(torsionParamArray, numTorsions);
}

void ReferenceCalcRBTorsionForceKernel::initialize(const System& system, const RBTorsionForce& force) {
    numTorsions = force.getNumTorsions();
    torsionIndexArray = allocateIntArray(numTorsions, 4);
    torsionParamArray = allocateRealArray(numTorsions, 6);
    for (int i = 0; i < force.getNumTorsions(); ++i) {
Peter Eastman's avatar
Peter Eastman committed
521
        int particle1, particle2, particle3, particle4;
522
        double c0, c1, c2, c3, c4, c5;
Peter Eastman's avatar
Peter Eastman committed
523
524
525
526
527
        force.getTorsionParameters(i, particle1, particle2, particle3, particle4, c0, c1, c2, c3, c4, c5);
        torsionIndexArray[i][0] = particle1;
        torsionIndexArray[i][1] = particle2;
        torsionIndexArray[i][2] = particle3;
        torsionIndexArray[i][3] = particle4;
528
529
530
531
532
533
        torsionParamArray[i][0] = (RealOpenMM) c0;
        torsionParamArray[i][1] = (RealOpenMM) c1;
        torsionParamArray[i][2] = (RealOpenMM) c2;
        torsionParamArray[i][3] = (RealOpenMM) c3;
        torsionParamArray[i][4] = (RealOpenMM) c4;
        torsionParamArray[i][5] = (RealOpenMM) c5;
534
    }
535
536
}

537
void ReferenceCalcRBTorsionForceKernel::executeForces(ContextImpl& context) {
538
539
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = extractForces(context);
540
541
542
543
544
    ReferenceBondForce refBondForce;
    ReferenceRbDihedralBond rbTorsionBond;
    refBondForce.calculateForce(numTorsions, torsionIndexArray, posData, torsionParamArray, forceData, 0, 0, 0, rbTorsionBond);
}

545
double ReferenceCalcRBTorsionForceKernel::executeEnergy(ContextImpl& context) {
546
    RealOpenMM** posData = extractPositions(context);
Peter Eastman's avatar
Peter Eastman committed
547
    RealOpenMM** forceData = allocateRealArray(context.getSystem().getNumParticles(), 3);
548
549
550
551
552
553
554
    RealOpenMM* energyArray = new RealOpenMM[numTorsions];
    RealOpenMM energy = 0;
    ReferenceBondForce refBondForce;
    ReferenceRbDihedralBond rbTorsionBond;
    for (int i = 0; i < numTorsions; ++i)
        energyArray[i] = 0;
    refBondForce.calculateForce(numTorsions, torsionIndexArray, posData, torsionParamArray, forceData, energyArray, 0, &energy, rbTorsionBond);
Peter Eastman's avatar
Peter Eastman committed
555
    disposeRealArray(forceData, context.getSystem().getNumParticles());
556
557
558
559
    delete[] energyArray;
    return energy;
}

560
561
562
563
564
565
566
567
568
569
570
571
572
573
574
575
576
577
578
579
580
581
582
583
584
585
586
587
588
589
590
591
592
593
594
595
596
597
598
599
600
601
602
603
604
605
606
607
608
609
610
611
612
613
614
615
616
617
618
619
620
621
622
623
624
ReferenceCalcCustomTorsionForceKernel::~ReferenceCalcCustomTorsionForceKernel() {
    disposeIntArray(torsionIndexArray, numTorsions);
    disposeRealArray(torsionParamArray, numTorsions);
}

void ReferenceCalcCustomTorsionForceKernel::initialize(const System& system, const CustomTorsionForce& force) {
    numTorsions = force.getNumTorsions();
    int numParameters = force.getNumPerTorsionParameters();

    // Build the arrays.

    torsionIndexArray = allocateIntArray(numTorsions, 4);
    torsionParamArray = allocateRealArray(numTorsions, numParameters);
    vector<double> params;
    for (int i = 0; i < force.getNumTorsions(); ++i) {
        int particle1, particle2, particle3, particle4;
        force.getTorsionParameters(i, particle1, particle2, particle3, particle4, params);
        torsionIndexArray[i][0] = particle1;
        torsionIndexArray[i][1] = particle2;
        torsionIndexArray[i][2] = particle3;
        torsionIndexArray[i][3] = particle4;
        for (int j = 0; j < numParameters; j++)
            torsionParamArray[i][j] = (RealOpenMM) params[j];
    }

    // Parse the expression used to calculate the force.

    Lepton::ParsedExpression expression = Lepton::Parser::parse(force.getEnergyFunction()).optimize();
    energyExpression = expression.createProgram();
    forceExpression = expression.differentiate("theta").optimize().createProgram();
    for (int i = 0; i < numParameters; i++)
        parameterNames.push_back(force.getPerTorsionParameterName(i));
    for (int i = 0; i < force.getNumGlobalParameters(); i++)
        globalParameterNames.push_back(force.getGlobalParameterName(i));
}

void ReferenceCalcCustomTorsionForceKernel::executeForces(ContextImpl& context) {
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = extractForces(context);
    map<string, double> globalParameters;
    for (int i = 0; i < (int) globalParameterNames.size(); i++)
        globalParameters[globalParameterNames[i]] = context.getParameter(globalParameterNames[i]);
    ReferenceBondForce refBondForce;
    ReferenceCustomTorsionIxn customTorsion(energyExpression, forceExpression, parameterNames, globalParameters);
    refBondForce.calculateForce(numTorsions, torsionIndexArray, posData, torsionParamArray, forceData, 0, 0, 0, customTorsion);
}

double ReferenceCalcCustomTorsionForceKernel::executeEnergy(ContextImpl& context) {
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = allocateRealArray(context.getSystem().getNumParticles(), 3);
    RealOpenMM* energyArray = new RealOpenMM[numTorsions];
    RealOpenMM energy = 0;
    map<string, double> globalParameters;
    for (int i = 0; i < (int) globalParameterNames.size(); i++)
        globalParameters[globalParameterNames[i]] = context.getParameter(globalParameterNames[i]);
    ReferenceBondForce refBondForce;
    ReferenceCustomTorsionIxn customTorsion(energyExpression, forceExpression, parameterNames, globalParameters);
    for (int i = 0; i < numTorsions; ++i)
        energyArray[i] = 0;
    refBondForce.calculateForce(numTorsions, torsionIndexArray, posData, torsionParamArray, forceData, energyArray, 0, &energy, customTorsion);
    disposeRealArray(forceData, context.getSystem().getNumParticles());
    delete[] energyArray;
    return energy;
}

625
ReferenceCalcNonbondedForceKernel::~ReferenceCalcNonbondedForceKernel() {
Peter Eastman's avatar
Peter Eastman committed
626
627
    disposeRealArray(particleParamArray, numParticles);
    disposeIntArray(exclusionArray, numParticles);
628
629
630
631
632
633
    disposeIntArray(bonded14IndexArray, num14);
    disposeRealArray(bonded14ParamArray, num14);
    if (neighborList != NULL)
        delete neighborList;
}

634
635
636
637
void ReferenceCalcNonbondedForceKernel::initialize(const System& system, const NonbondedForce& force) {

    // Identify which exceptions are 1-4 interactions.

Peter Eastman's avatar
Peter Eastman committed
638
    numParticles = force.getNumParticles();
639
640
641
642
643
644
645
646
647
648
649
650
651
652
653
    exclusions.resize(numParticles);
    vector<int> nb14s;
    for (int i = 0; i < force.getNumExceptions(); i++) {
        int particle1, particle2;
        double chargeProd, sigma, epsilon;
        force.getExceptionParameters(i, particle1, particle2, chargeProd, sigma, epsilon);
        exclusions[particle1].insert(particle2);
        exclusions[particle2].insert(particle1);
        if (chargeProd != 0.0 || epsilon != 0.0)
            nb14s.push_back(i);
    }

    // Build the arrays.

    num14 = nb14s.size();
654
655
    bonded14IndexArray = allocateIntArray(num14, 2);
    bonded14ParamArray = allocateRealArray(num14, 3);
Peter Eastman's avatar
Peter Eastman committed
656
657
    particleParamArray = allocateRealArray(numParticles, 3);
    for (int i = 0; i < numParticles; ++i) {
658
        double charge, radius, depth;
Peter Eastman's avatar
Peter Eastman committed
659
660
661
        force.getParticleParameters(i, charge, radius, depth);
        particleParamArray[i][0] = static_cast<RealOpenMM>(0.5*radius);
        particleParamArray[i][1] = static_cast<RealOpenMM>(2.0*sqrt(depth));
662
        particleParamArray[i][2] = static_cast<RealOpenMM>(charge);
663
    }
664
    this->exclusions = exclusions;
Peter Eastman's avatar
Peter Eastman committed
665
666
    exclusionArray = new int*[numParticles];
    for (int i = 0; i < numParticles; ++i) {
667
668
669
670
671
672
673
        exclusionArray[i] = new int[exclusions[i].size()+1];
        exclusionArray[i][0] = exclusions[i].size();
        int index = 0;
        for (set<int>::const_iterator iter = exclusions[i].begin(); iter != exclusions[i].end(); ++iter)
            exclusionArray[i][++index] = *iter;
    }
    for (int i = 0; i < num14; ++i) {
Peter Eastman's avatar
Peter Eastman committed
674
        int particle1, particle2;
675
        double charge, radius, depth;
676
        force.getExceptionParameters(nb14s[i], particle1, particle2, charge, radius, depth);
Peter Eastman's avatar
Peter Eastman committed
677
678
        bonded14IndexArray[i][0] = particle1;
        bonded14IndexArray[i][1] = particle2;
679
680
        bonded14ParamArray[i][0] = static_cast<RealOpenMM>(radius);
        bonded14ParamArray[i][1] = static_cast<RealOpenMM>(4.0*depth);
681
        bonded14ParamArray[i][2] = static_cast<RealOpenMM>(charge);
682
    }
683
    nonbondedMethod = CalcNonbondedForceKernel::NonbondedMethod(force.getNonbondedMethod());
684
    nonbondedCutoff = (RealOpenMM) force.getCutoffDistance();
685
686
687
688
    if (nonbondedMethod == NoCutoff)
        neighborList = NULL;
    else
        neighborList = new NeighborList();
689
690
691
    if (nonbondedMethod == Ewald) {
        double alpha;
        NonbondedForceImpl::calcEwaldParameters(system, force, alpha, kmax[0], kmax[1], kmax[2]);
692
        ewaldAlpha = (RealOpenMM) alpha;
693
694
695
696
    }
    else if (nonbondedMethod == PME) {
        double alpha;
        NonbondedForceImpl::calcPMEParameters(system, force, alpha, gridSize[0], gridSize[1], gridSize[2]);
697
        ewaldAlpha = (RealOpenMM) alpha;
698
    }
699
    rfDielectric = (RealOpenMM)force.getReactionFieldDielectric();
700
701
702
703
    if (force.getUseDispersionCorrection())
        dispersionCoefficient = NonbondedForceImpl::calcDispersionCorrection(system, force);
    else
        dispersionCoefficient = 0.0;
704
705
}

706
void ReferenceCalcNonbondedForceKernel::executeForces(ContextImpl& context) {
707
708
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = extractForces(context);
709
    ReferenceLJCoulombIxn clj;
710
    bool periodic = (nonbondedMethod == CutoffPeriodic);
711
    bool ewald  = (nonbondedMethod == Ewald);
712
    bool pme  = (nonbondedMethod == PME);
713
    if (nonbondedMethod != NoCutoff) {
714
        computeNeighborListVoxelHash(*neighborList, numParticles, posData, exclusions, (periodic || ewald || pme) ? extractBoxSize(context) : NULL, nonbondedCutoff, 0.0);
715
        clj.setUseCutoff(nonbondedCutoff, *neighborList, rfDielectric);
716
    }
717
    if (periodic || ewald || pme)
718
        clj.setPeriodic(extractBoxSize(context));
719
720
    if (ewald)
        clj.setUseEwald(ewaldAlpha, kmax[0], kmax[1], kmax[2]);
721
    if (pme)
722
        clj.setUsePME(ewaldAlpha, gridSize);
723
    clj.calculatePairIxn(numParticles, posData, particleParamArray, exclusionArray, 0, forceData, 0, 0);
724
    ReferenceBondForce refBondForce;
725
726
727
728
    ReferenceLJCoulomb14 nonbonded14;
    refBondForce.calculateForce(num14, bonded14IndexArray, posData, bonded14ParamArray, forceData, 0, 0, 0, nonbonded14);
}

729
double ReferenceCalcNonbondedForceKernel::executeEnergy(ContextImpl& context) {
730
    RealOpenMM** posData = extractPositions(context);
Peter Eastman's avatar
Peter Eastman committed
731
    RealOpenMM** forceData = allocateRealArray(numParticles, 3);
732
733
    RealOpenMM energy = 0;
    ReferenceLJCoulombIxn clj;
734
    bool periodic = (nonbondedMethod == CutoffPeriodic);
735
    bool ewald  = (nonbondedMethod == Ewald);
736
    bool pme  = (nonbondedMethod == PME);
737
    if (nonbondedMethod != NoCutoff) {
738
        computeNeighborListVoxelHash(*neighborList, numParticles, posData, exclusions, (periodic || ewald || pme) ? extractBoxSize(context) : NULL, nonbondedCutoff, 0.0);
739
        clj.setUseCutoff(nonbondedCutoff, *neighborList, rfDielectric);
740
    }
741
    if (periodic || ewald || pme)
742
        clj.setPeriodic(extractBoxSize(context));
743
744
    if (ewald)
        clj.setUseEwald(ewaldAlpha, kmax[0], kmax[1], kmax[2]);
745
    if (pme)
746
        clj.setUsePME(ewaldAlpha, gridSize);
747
    clj.calculatePairIxn(numParticles, posData, particleParamArray, exclusionArray, 0, forceData, 0, &energy);
748
    ReferenceBondForce refBondForce;
749
    ReferenceLJCoulomb14 nonbonded14;
Peter Eastman's avatar
Peter Eastman committed
750
751
    RealOpenMM* energyArray = new RealOpenMM[num14];
    for (int i = 0; i < num14; ++i)
752
753
        energyArray[i] = 0;
    refBondForce.calculateForce(num14, bonded14IndexArray, posData, bonded14ParamArray, forceData, energyArray, 0, &energy, nonbonded14);
Peter Eastman's avatar
Peter Eastman committed
754
    disposeRealArray(forceData, numParticles);
755
    delete[] energyArray;
756
757
758
759
    if (periodic || ewald || pme) {
        RealOpenMM* boxSize = extractBoxSize(context);
        energy += dispersionCoefficient/(boxSize[0]*boxSize[1]*boxSize[2]);
    }
760
761
762
    return energy;
}

763
class ReferenceTabulatedFunction : public Lepton::CustomFunction {
764
public:
765
    ReferenceTabulatedFunction(double min, double max, const vector<double>& values, bool interpolating) :
766
767
768
769
770
771
772
773
774
775
            min(min), max(max), values(values), interpolating(interpolating) {
    }
    int getNumArguments() const {
        return 1;
    }
    /**
     * Given the function argument, find the local spline coefficients.
     */
    void findCoefficients(double& x, double* coeff) const {
        int length = values.size();
776
        double scale = (length-1)/(max-min);
777
        int index = (int) std::floor((x-min)*scale);
778
779
780
781
782
783
784
785
786
787
788
789
790
791
792
793
794
        double points[4];
        points[0] = (index == 0 ? 2*values[0]-values[1] : values[index-1]);
        points[1] = values[index];
        points[2] = (index > length-2 ? values[length-1] : values[index+1]);
        points[3] = (index > length-3 ? 2*values[length-1]-values[length-2] : values[index+2]);
        if (interpolating) {
            coeff[0] = points[1];
            coeff[1] = 0.5*(-points[0]+points[2]);
            coeff[2] = 0.5*(2.0*points[0]-5.0*points[1]+4.0*points[2]-points[3]);
            coeff[3] = 0.5*(-points[0]+3.0*points[1]-3.0*points[2]+points[3]);
        }
        else {
            coeff[0] = (points[0]+4.0*points[1]+points[2])/6.0;
            coeff[1] = (-3.0*points[0]+3.0*points[2])/6.0;
            coeff[2] = (3.0*points[0]-6.0*points[1]+3.0*points[2])/6.0;
            coeff[3] = (-points[0]+3.0*points[1]-3.0*points[2]+points[3])/6.0;
        }
795
        x = (x-min)*scale-index;
796
797
798
799
800
801
802
803
804
805
806
807
808
809
810
811
    }
    double evaluate(const double* arguments) const {
        double x = arguments[0];
        if (x < min || x > max)
            return 0.0;
        double coeff[4];
        findCoefficients(x, coeff);
        return coeff[0]+x*(coeff[1]+x*(coeff[2]+x*coeff[3]));
    }
    double evaluateDerivative(const double* arguments, const int* derivOrder) const {
        double x = arguments[0];
        if (x < min || x > max)
            return 0.0;
        double coeff[4];
        findCoefficients(x, coeff);
        double scale = (values.size()-1)/(max-min);
812
        return scale*(coeff[1]+x*(2.0*coeff[2]+x*3.0*coeff[3])); // We assume a first derivative, because that's the only order ever used by CustomNonbondedForce.
813
814
    }
    CustomFunction* clone() const {
815
        return new ReferenceTabulatedFunction(min, max, values, interpolating);
816
817
818
819
820
821
    }
    double min, max;
    vector<double> values;
    bool interpolating;
};

822
823
824
825
826
827
828
829
830
ReferenceCalcCustomNonbondedForceKernel::~ReferenceCalcCustomNonbondedForceKernel() {
    disposeRealArray(particleParamArray, numParticles);
    disposeIntArray(exclusionArray, numParticles);
    if (neighborList != NULL)
        delete neighborList;
}

void ReferenceCalcCustomNonbondedForceKernel::initialize(const System& system, const CustomNonbondedForce& force) {

831
    // Record the exclusions.
832
833
834

    numParticles = force.getNumParticles();
    exclusions.resize(numParticles);
835
    for (int i = 0; i < force.getNumExclusions(); i++) {
836
        int particle1, particle2;
837
        force.getExclusionParticles(i, particle1, particle2);
838
839
840
841
842
843
        exclusions[particle1].insert(particle2);
        exclusions[particle2].insert(particle1);
    }

    // Build the arrays.

844
    int numParameters = force.getNumPerParticleParameters();
845
846
    particleParamArray = allocateRealArray(numParticles, numParameters);
    for (int i = 0; i < numParticles; ++i) {
847
        vector<double> parameters;
848
849
850
851
852
853
854
855
856
857
858
859
860
861
862
863
864
865
866
        force.getParticleParameters(i, parameters);
        for (int j = 0; j < numParameters; j++)
            particleParamArray[i][j] = static_cast<RealOpenMM>(parameters[j]);
    }
    exclusionArray = new int*[numParticles];
    for (int i = 0; i < numParticles; ++i) {
        exclusionArray[i] = new int[exclusions[i].size()+1];
        exclusionArray[i][0] = exclusions[i].size();
        int index = 0;
        for (set<int>::const_iterator iter = exclusions[i].begin(); iter != exclusions[i].end(); ++iter)
            exclusionArray[i][++index] = *iter;
    }
    nonbondedMethod = CalcCustomNonbondedForceKernel::NonbondedMethod(force.getNonbondedMethod());
    nonbondedCutoff = (RealOpenMM) force.getCutoffDistance();
    if (nonbondedMethod == NoCutoff)
        neighborList = NULL;
    else
        neighborList = new NeighborList();

867
868
869
870
871
872
873
874
875
    // Create custom functions for the tabulated functions.

    map<string, Lepton::CustomFunction*> functions;
    for (int i = 0; i < force.getNumFunctions(); i++) {
        string name;
        vector<double> values;
        double min, max;
        bool interpolating;
        force.getFunctionParameters(i, name, values, min, max, interpolating);
876
        functions[name] = new ReferenceTabulatedFunction(min, max, values, interpolating);
877
878
    }

879
880
    // Parse the various expressions used to calculate the force.

881
    Lepton::ParsedExpression expression = Lepton::Parser::parse(force.getEnergyFunction(), functions).optimize();
882
883
    energyExpression = expression.createProgram();
    forceExpression = expression.differentiate("r").optimize().createProgram();
884
885
    for (int i = 0; i < numParameters; i++)
        parameterNames.push_back(force.getPerParticleParameterName(i));
886
887
    for (int i = 0; i < force.getNumGlobalParameters(); i++)
        globalParameterNames.push_back(force.getGlobalParameterName(i));
888
889
890
891
892

    // Delete the custom functions.

    for (map<string, Lepton::CustomFunction*>::iterator iter = functions.begin(); iter != functions.end(); iter++)
        delete iter->second;
893
894
895
}

void ReferenceCalcCustomNonbondedForceKernel::executeForces(ContextImpl& context) {
896
897
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = extractForces(context);
898
    ReferenceCustomNonbondedIxn ixn(energyExpression, forceExpression, parameterNames);
899
900
    bool periodic = (nonbondedMethod == CutoffPeriodic);
    if (nonbondedMethod != NoCutoff) {
901
        computeNeighborListVoxelHash(*neighborList, numParticles, posData, exclusions, periodic ? extractBoxSize(context) : NULL, nonbondedCutoff, 0.0);
902
903
904
        ixn.setUseCutoff(nonbondedCutoff, *neighborList);
    }
    if (periodic)
905
        ixn.setPeriodic(extractBoxSize(context));
906
    map<string, double> globalParameters;
907
    for (int i = 0; i < (int) globalParameterNames.size(); i++)
908
909
        globalParameters[globalParameterNames[i]] = context.getParameter(globalParameterNames[i]);
    ixn.calculatePairIxn(numParticles, posData, particleParamArray, exclusionArray, 0, globalParameters, forceData, 0, 0);
910
911
912
}

double ReferenceCalcCustomNonbondedForceKernel::executeEnergy(ContextImpl& context) {
913
    RealOpenMM** posData = extractPositions(context);
914
915
    RealOpenMM** forceData = allocateRealArray(numParticles, 3);
    RealOpenMM energy = 0;
916
    ReferenceCustomNonbondedIxn ixn(energyExpression, forceExpression, parameterNames);
917
918
    bool periodic = (nonbondedMethod == CutoffPeriodic);
    if (nonbondedMethod != NoCutoff) {
919
        computeNeighborListVoxelHash(*neighborList, numParticles, posData, exclusions, periodic ? extractBoxSize(context) : NULL, nonbondedCutoff, 0.0);
920
921
922
        ixn.setUseCutoff(nonbondedCutoff, *neighborList);
    }
    if (periodic)
923
        ixn.setPeriodic(extractBoxSize(context));
924
    map<string, double> globalParameters;
925
    for (int i = 0; i < (int) globalParameterNames.size(); i++)
926
927
        globalParameters[globalParameterNames[i]] = context.getParameter(globalParameterNames[i]);
    ixn.calculatePairIxn(numParticles, posData, particleParamArray, exclusionArray, 0, globalParameters, forceData, 0, &energy);
928
929
930
931
    disposeRealArray(forceData, numParticles);
    return energy;
}

932
ReferenceCalcGBSAOBCForceKernel::~ReferenceCalcGBSAOBCForceKernel() {
933
    if (obc) {
934
        // delete obc->getObcParameters();
935
936
937
938
        delete obc;
    }
}

939
void ReferenceCalcGBSAOBCForceKernel::initialize(const System& system, const GBSAOBCForce& force) {
Peter Eastman's avatar
Peter Eastman committed
940
941
942
943
944
    int numParticles = system.getNumParticles();
    charges.resize(numParticles);
    vector<RealOpenMM> atomicRadii(numParticles);
    vector<RealOpenMM> scaleFactors(numParticles);
    for (int i = 0; i < numParticles; ++i) {
945
        double charge, radius, scalingFactor;
Peter Eastman's avatar
Peter Eastman committed
946
        force.getParticleParameters(i, charge, radius, scalingFactor);
947
948
949
        charges[i] = static_cast<RealOpenMM>(charge);
        atomicRadii[i] = static_cast<RealOpenMM>(radius);
        scaleFactors[i] = static_cast<RealOpenMM>(scalingFactor);
950
    }
951
    ObcParameters* obcParameters = new ObcParameters(numParticles, ObcParameters::ObcTypeII);
952
    obcParameters->setAtomicRadii(atomicRadii);
953
    obcParameters->setScaledRadiusFactors(scaleFactors);
954
955
    obcParameters->setSolventDielectric( static_cast<RealOpenMM>(force.getSolventDielectric()) );
    obcParameters->setSoluteDielectric( static_cast<RealOpenMM>(force.getSoluteDielectric()) );
956
957
    if (force.getNonbondedMethod() != GBSAOBCForce::NoCutoff)
        obcParameters->setUseCutoff(static_cast<RealOpenMM>(force.getCutoffDistance()));
958
    isPeriodic = (force.getNonbondedMethod() == GBSAOBCForce::CutoffPeriodic);
959
960
    obc = new CpuObc(obcParameters);
    obc->setIncludeAceApproximation(true);
961
962
}

963
void ReferenceCalcGBSAOBCForceKernel::executeForces(ContextImpl& context) {
964
965
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = extractForces(context);
966
967
    if (isPeriodic)
        obc->getObcParameters()->setPeriodic(extractBoxSize(context));
968
    obc->computeImplicitSolventForces(posData, &charges[0], forceData, 1);
969
970
}

971
double ReferenceCalcGBSAOBCForceKernel::executeEnergy(ContextImpl& context) {
972
    RealOpenMM** posData = extractPositions(context);
Peter Eastman's avatar
Peter Eastman committed
973
    RealOpenMM** forceData = allocateRealArray(context.getSystem().getNumParticles(), 3);
974
975
    if (isPeriodic)
        obc->getObcParameters()->setPeriodic(extractBoxSize(context));
976
    obc->computeImplicitSolventForces(posData, &charges[0], forceData, 1);
Peter Eastman's avatar
Peter Eastman committed
977
    disposeRealArray(forceData, context.getSystem().getNumParticles());
978
    return obc->getEnergy();
979
980
}

Mark Friedrichs's avatar
Mark Friedrichs committed
981
982
983
984
985
986
987
988
989
990
991
992
993
994
995
996
997
998
999
1000
1001
1002
1003
1004
ReferenceCalcGBVIForceKernel::~ReferenceCalcGBVIForceKernel() {
    if (gbvi) {
        delete gbvi;
    }
}

void ReferenceCalcGBVIForceKernel::initialize(const System& system, const GBVIForce& force, const std::vector<double> & inputScaledRadii ) {
    int numParticles = system.getNumParticles();
    charges.resize(numParticles);
    vector<RealOpenMM> atomicRadii(numParticles);
    vector<RealOpenMM> scaledRadii(numParticles);
    vector<RealOpenMM> gammas(numParticles);
    for (int i = 0; i < numParticles; ++i) {
        double charge, radius, gamma;
        force.getParticleParameters(i, charge, radius, gamma);
        charges[i]       = static_cast<RealOpenMM>(charge);
        atomicRadii[i]   = static_cast<RealOpenMM>(radius);
        gammas[i]        = static_cast<RealOpenMM>(gamma);
        scaledRadii[i]   = static_cast<RealOpenMM>(inputScaledRadii[i]);
    }
    GBVIParameters * gBVIParameters = new GBVIParameters(numParticles);
    gBVIParameters->setAtomicRadii(atomicRadii);
    gBVIParameters->setGammaParameters(gammas);
    gBVIParameters->setScaledRadii(scaledRadii);
1005
1006
1007
1008
    gBVIParameters->setSolventDielectric(static_cast<RealOpenMM>(force.getSolventDielectric()));
    gBVIParameters->setSoluteDielectric(static_cast<RealOpenMM>(force.getSoluteDielectric()));
    if (force.getNonbondedMethod() != GBVIForce::NoCutoff)
        gBVIParameters->setUseCutoff(static_cast<RealOpenMM>(force.getCutoffDistance()));
1009
    isPeriodic = (force.getNonbondedMethod() == GBVIForce::CutoffPeriodic);
Mark Friedrichs's avatar
Mark Friedrichs committed
1010
1011
1012
    gbvi = new CpuGBVI(gBVIParameters);
}

1013
void ReferenceCalcGBVIForceKernel::executeForces(ContextImpl& context) {
Mark Friedrichs's avatar
Mark Friedrichs committed
1014

1015
1016
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = extractForces(context);
Mark Friedrichs's avatar
Mark Friedrichs committed
1017
    RealOpenMM* bornRadii  = new RealOpenMM[context.getSystem().getNumParticles()];
1018
1019
    if (isPeriodic)
        gbvi->getGBVIParameters()->setPeriodic(extractBoxSize(context));
Mark Friedrichs's avatar
Mark Friedrichs committed
1020
1021
1022
1023
1024
    gbvi->computeBornRadii(posData, bornRadii, NULL ); 
    gbvi->computeBornForces(bornRadii, posData, &charges[0], forceData);
    delete[] bornRadii;
}

1025
double ReferenceCalcGBVIForceKernel::executeEnergy(ContextImpl& context) {
1026
    RealOpenMM** posData = extractPositions(context);
Mark Friedrichs's avatar
Mark Friedrichs committed
1027
    RealOpenMM* bornRadii = new RealOpenMM[context.getSystem().getNumParticles()];
1028
1029
    if (isPeriodic)
        gbvi->getGBVIParameters()->setPeriodic(extractBoxSize(context));
1030
    gbvi->computeBornRadii(posData, bornRadii, NULL );
Mark Friedrichs's avatar
Mark Friedrichs committed
1031
1032
1033
1034
1035
    RealOpenMM energy     = gbvi->computeBornEnergy(bornRadii ,posData, &charges[0]);
    delete[] bornRadii;
    return static_cast<double>(energy);
}

1036
1037
1038
1039
1040
1041
1042
ReferenceCalcCustomGBForceKernel::~ReferenceCalcCustomGBForceKernel() {
    disposeRealArray(particleParamArray, numParticles);
    if (neighborList != NULL)
        delete neighborList;
}

void ReferenceCalcCustomGBForceKernel::initialize(const System& system, const CustomGBForce& force) {
1043
1044
1045
1046
1047
1048
1049
1050
1051
1052
1053
1054
    if (force.getNumComputedValues() > 0) {
        string name, expression;
        CustomGBForce::ComputationType type;
        force.getComputedValueParameters(0, name, expression, type);
        if (type == CustomGBForce::SingleParticle)
            throw OpenMMException("ReferencePlatform requires that the first computed value for a CustomGBForce be of type ParticlePair or ParticlePairNoExclusions.");
        for (int i = 1; i < force.getNumComputedValues(); i++) {
            force.getComputedValueParameters(i, name, expression, type);
            if (type != CustomGBForce::SingleParticle)
                throw OpenMMException("ReferencePlatform requires that a CustomGBForce only have one computed value of type ParticlePair or ParticlePairNoExclusions.");
        }
    }
1055
1056
1057
1058
1059
1060
1061
1062
1063
1064
1065
1066
1067
1068
1069
1070
1071
1072
1073
1074
1075
1076
1077
1078
1079
1080
1081
1082
1083
1084
1085
1086
1087
1088
1089
1090

    // Record the exclusions.

    numParticles = force.getNumParticles();
    exclusions.resize(numParticles);
    for (int i = 0; i < force.getNumExclusions(); i++) {
        int particle1, particle2;
        force.getExclusionParticles(i, particle1, particle2);
        exclusions[particle1].insert(particle2);
        exclusions[particle2].insert(particle1);
    }

    // Build the arrays.

    int numPerParticleParameters = force.getNumPerParticleParameters();
    particleParamArray = allocateRealArray(numParticles, numPerParticleParameters);
    for (int i = 0; i < numParticles; ++i) {
        vector<double> parameters;
        force.getParticleParameters(i, parameters);
        for (int j = 0; j < numPerParticleParameters; j++)
            particleParamArray[i][j] = static_cast<RealOpenMM>(parameters[j]);
    }
    for (int i = 0; i < numPerParticleParameters; i++)
        particleParameterNames.push_back(force.getPerParticleParameterName(i));
    for (int i = 0; i < force.getNumGlobalParameters(); i++)
        globalParameterNames.push_back(force.getGlobalParameterName(i));
    nonbondedMethod = CalcCustomGBForceKernel::NonbondedMethod(force.getNonbondedMethod());
    nonbondedCutoff = (RealOpenMM) force.getCutoffDistance();
    if (nonbondedMethod == NoCutoff)
        neighborList = NULL;
    else
        neighborList = new NeighborList();

    // Create custom functions for the tabulated functions.

    map<string, Lepton::CustomFunction*> functions;
1091
1092
1093
1094
1095
1096
1097
1098
    for (int i = 0; i < force.getNumFunctions(); i++) {
        string name;
        vector<double> values;
        double min, max;
        bool interpolating;
        force.getFunctionParameters(i, name, values, min, max, interpolating);
        functions[name] = new ReferenceTabulatedFunction(min, max, values, interpolating);
    }
1099
1100
1101

    // Parse the expressions for computed values.

1102
    valueDerivExpressions.resize(force.getNumComputedValues());
1103
    valueGradientExpressions.resize(force.getNumComputedValues());
1104
1105
1106
1107
1108
1109
1110
1111
    for (int i = 0; i < force.getNumComputedValues(); i++) {
        string name, expression;
        CustomGBForce::ComputationType type;
        force.getComputedValueParameters(i, name, expression, type);
        Lepton::ParsedExpression ex = Lepton::Parser::parse(expression, functions).optimize();
        valueExpressions.push_back(ex.createProgram());
        valueTypes.push_back(type);
        valueNames.push_back(name);
1112
1113
1114
        if (i == 0)
            valueDerivExpressions[i].push_back(ex.differentiate("r").optimize().createProgram());
        else {
1115
1116
1117
            valueGradientExpressions[i].push_back(ex.differentiate("x").optimize().createProgram());
            valueGradientExpressions[i].push_back(ex.differentiate("y").optimize().createProgram());
            valueGradientExpressions[i].push_back(ex.differentiate("z").optimize().createProgram());
1118
1119
1120
            for (int j = 0; j < i; j++)
                valueDerivExpressions[i].push_back(ex.differentiate(valueNames[j]).optimize().createProgram());
        }
1121
1122
    }

1123
    // Parse the expressions for energy terms.
1124
1125

    energyDerivExpressions.resize(force.getNumEnergyTerms());
1126
    energyGradientExpressions.resize(force.getNumEnergyTerms());
1127
1128
1129
1130
1131
1132
1133
1134
1135
1136
    for (int i = 0; i < force.getNumEnergyTerms(); i++) {
        string expression;
        CustomGBForce::ComputationType type;
        force.getEnergyTermParameters(i, expression, type);
        Lepton::ParsedExpression ex = Lepton::Parser::parse(expression, functions).optimize();
        energyExpressions.push_back(ex.createProgram());
        energyTypes.push_back(type);
        if (type != CustomGBForce::SingleParticle)
            energyDerivExpressions[i].push_back(ex.differentiate("r").optimize().createProgram());
        for (int j = 0; j < force.getNumComputedValues(); j++) {
1137
            if (type == CustomGBForce::SingleParticle) {
1138
                energyDerivExpressions[i].push_back(ex.differentiate(valueNames[j]).optimize().createProgram());
1139
1140
1141
1142
                energyGradientExpressions[i].push_back(ex.differentiate("x").optimize().createProgram());
                energyGradientExpressions[i].push_back(ex.differentiate("y").optimize().createProgram());
                energyGradientExpressions[i].push_back(ex.differentiate("z").optimize().createProgram());
            }
1143
1144
1145
1146
1147
1148
1149
1150
1151
1152
1153
1154
1155
1156
1157
1158
            else {
                energyDerivExpressions[i].push_back(ex.differentiate(valueNames[j]+"1").optimize().createProgram());
                energyDerivExpressions[i].push_back(ex.differentiate(valueNames[j]+"2").optimize().createProgram());
            }
        }
    }

    // Delete the custom functions.

    for (map<string, Lepton::CustomFunction*>::iterator iter = functions.begin(); iter != functions.end(); iter++)
        delete iter->second;
}

void ReferenceCalcCustomGBForceKernel::executeForces(ContextImpl& context) {
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = extractForces(context);
1159
1160
    ReferenceCustomGBIxn ixn(valueExpressions, valueDerivExpressions, valueGradientExpressions, valueNames, valueTypes, energyExpressions,
        energyDerivExpressions, energyGradientExpressions, energyTypes, particleParameterNames);
1161
    bool periodic = (nonbondedMethod == CutoffPeriodic);
1162
1163
    if (periodic)
        ixn.setPeriodic(extractBoxSize(context));
1164
    if (nonbondedMethod != NoCutoff) {
1165
        computeNeighborListVoxelHash(*neighborList, numParticles, posData, exclusions, periodic ? extractBoxSize(context) : NULL, nonbondedCutoff, 0.0);
1166
1167
1168
1169
1170
        ixn.setUseCutoff(nonbondedCutoff, *neighborList);
    }
    map<string, double> globalParameters;
    for (int i = 0; i < (int) globalParameterNames.size(); i++)
        globalParameters[globalParameterNames[i]] = context.getParameter(globalParameterNames[i]);
1171
    ixn.calculateIxn(numParticles, posData, particleParamArray, exclusions, globalParameters, forceData, 0);
1172
1173
1174
1175
1176
1177
}

double ReferenceCalcCustomGBForceKernel::executeEnergy(ContextImpl& context) {
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = allocateRealArray(numParticles, 3);
    RealOpenMM energy = 0;
1178
1179
    ReferenceCustomGBIxn ixn(valueExpressions, valueDerivExpressions, valueGradientExpressions, valueNames, valueTypes, energyExpressions,
        energyDerivExpressions, energyGradientExpressions, energyTypes, particleParameterNames);
1180
    bool periodic = (nonbondedMethod == CutoffPeriodic);
1181
1182
    if (periodic)
        ixn.setPeriodic(extractBoxSize(context));
1183
    if (nonbondedMethod != NoCutoff) {
1184
        computeNeighborListVoxelHash(*neighborList, numParticles, posData, exclusions, periodic ? extractBoxSize(context) : NULL, nonbondedCutoff, 0.0);
1185
1186
1187
1188
1189
        ixn.setUseCutoff(nonbondedCutoff, *neighborList);
    }
    map<string, double> globalParameters;
    for (int i = 0; i < (int) globalParameterNames.size(); i++)
        globalParameters[globalParameterNames[i]] = context.getParameter(globalParameterNames[i]);
1190
    ixn.calculateIxn(numParticles, posData, particleParamArray, exclusions, globalParameters, forceData, &energy);
1191
1192
1193
1194
    disposeRealArray(forceData, numParticles);
    return energy;
}

1195
1196
1197
1198
1199
1200
1201
1202
1203
1204
1205
1206
1207
1208
1209
1210
1211
1212
1213
1214
1215
1216
1217
1218
1219
1220
1221
1222
1223
1224
1225
1226
1227
1228
1229
1230
1231
1232
1233
1234
1235
1236
1237
1238
1239
1240
1241
1242
1243
1244
1245
1246
1247
1248
1249
1250
1251
ReferenceCalcCustomExternalForceKernel::~ReferenceCalcCustomExternalForceKernel() {
    disposeRealArray(particleParamArray, numParticles);
}

void ReferenceCalcCustomExternalForceKernel::initialize(const System& system, const CustomExternalForce& force) {
    numParticles = force.getNumParticles();
    int numParameters = force.getNumPerParticleParameters();

    // Build the arrays.

    particles.resize(numParticles);
    particleParamArray = allocateRealArray(numParticles, numParameters);
    vector<double> params;
    for (int i = 0; i < numParticles; ++i) {
        force.getParticleParameters(i, particles[i], params);
        for (int j = 0; j < numParameters; j++)
            particleParamArray[i][j] = (RealOpenMM) params[j];
    }

    // Parse the expression used to calculate the force.

    Lepton::ParsedExpression expression = Lepton::Parser::parse(force.getEnergyFunction()).optimize();
    energyExpression = expression.createProgram();
    forceExpressionX = expression.differentiate("x").optimize().createProgram();
    forceExpressionY = expression.differentiate("y").optimize().createProgram();
    forceExpressionZ = expression.differentiate("z").optimize().createProgram();
    for (int i = 0; i < numParameters; i++)
        parameterNames.push_back(force.getPerParticleParameterName(i));
    for (int i = 0; i < force.getNumGlobalParameters(); i++)
        globalParameterNames.push_back(force.getGlobalParameterName(i));
}

void ReferenceCalcCustomExternalForceKernel::executeForces(ContextImpl& context) {
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = extractForces(context);
    map<string, double> globalParameters;
    for (int i = 0; i < (int) globalParameterNames.size(); i++)
        globalParameters[globalParameterNames[i]] = context.getParameter(globalParameterNames[i]);
    ReferenceCustomExternalIxn force(energyExpression, forceExpressionX, forceExpressionY, forceExpressionZ, parameterNames, globalParameters);
    for (int i = 0; i < numParticles; ++i)
        force.calculateForce(particles[i], posData, particleParamArray[i], forceData, 0);
}

double ReferenceCalcCustomExternalForceKernel::executeEnergy(ContextImpl& context) {
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = allocateRealArray(context.getSystem().getNumParticles(), 3);
    RealOpenMM energy = 0;
    map<string, double> globalParameters;
    for (int i = 0; i < (int) globalParameterNames.size(); i++)
        globalParameters[globalParameterNames[i]] = context.getParameter(globalParameterNames[i]);
    ReferenceCustomExternalIxn force(energyExpression, forceExpressionX, forceExpressionY, forceExpressionZ, parameterNames, globalParameters);
    for (int i = 0; i < numParticles; ++i)
        force.calculateForce(particles[i], posData, particleParamArray[i], forceData, &energy);
    disposeRealArray(forceData, context.getSystem().getNumParticles());
    return energy;
}

1252
1253
1254
1255
ReferenceCalcCustomHbondForceKernel::~ReferenceCalcCustomHbondForceKernel() {
    disposeRealArray(donorParamArray, numDonors);
    disposeRealArray(acceptorParamArray, numAcceptors);
    disposeIntArray(exclusionArray, numDonors);
1256
1257
    if (ixn != NULL)
        delete ixn;
1258
1259
1260
1261
1262
1263
1264
1265
1266
1267
1268
1269
1270
1271
1272
1273
1274
1275
}

void ReferenceCalcCustomHbondForceKernel::initialize(const System& system, const CustomHbondForce& force) {

    // Record the exclusions.

    numDonors = force.getNumDonors();
    numAcceptors = force.getNumAcceptors();
    numParticles = system.getNumParticles();
    exclusions.resize(numDonors);
    for (int i = 0; i < force.getNumExclusions(); i++) {
        int donor, acceptor;
        force.getExclusionParticles(i, donor, acceptor);
        exclusions[donor].insert(acceptor);
    }

    // Build the arrays.

1276
    vector<vector<int> > donorParticles(numDonors);
1277
1278
1279
1280
    int numDonorParameters = force.getNumPerDonorParameters();
    donorParamArray = allocateRealArray(numDonors, numDonorParameters);
    for (int i = 0; i < numDonors; ++i) {
        vector<double> parameters;
1281
1282
1283
1284
1285
        int d1, d2, d3;
        force.getDonorParameters(i, d1, d2, d3, parameters);
        donorParticles[i].push_back(d1);
        donorParticles[i].push_back(d2);
        donorParticles[i].push_back(d3);
1286
1287
1288
        for (int j = 0; j < numDonorParameters; j++)
            donorParamArray[i][j] = static_cast<RealOpenMM>(parameters[j]);
    }
1289
    vector<vector<int> > acceptorParticles(numAcceptors);
1290
1291
1292
1293
    int numAcceptorParameters = force.getNumPerAcceptorParameters();
    acceptorParamArray = allocateRealArray(numAcceptors, numAcceptorParameters);
    for (int i = 0; i < numAcceptors; ++i) {
        vector<double> parameters;
1294
1295
1296
1297
1298
        int a1, a2, a3;
        force.getAcceptorParameters(i, a1, a2, a3, parameters);
        acceptorParticles[i].push_back(a1);
        acceptorParticles[i].push_back(a2);
        acceptorParticles[i].push_back(a3);
1299
1300
1301
1302
1303
1304
1305
1306
1307
1308
1309
        for (int j = 0; j < numAcceptorParameters; j++)
            acceptorParamArray[i][j] = static_cast<RealOpenMM>(parameters[j]);
    }
    exclusionArray = new int*[numDonors];
    for (int i = 0; i < numDonors; ++i) {
        exclusionArray[i] = new int[exclusions[i].size()+1];
        exclusionArray[i][0] = exclusions[i].size();
        int index = 0;
        for (set<int>::const_iterator iter = exclusions[i].begin(); iter != exclusions[i].end(); ++iter)
            exclusionArray[i][++index] = *iter;
    }
1310
    NonbondedMethod nonbondedMethod = CalcCustomHbondForceKernel::NonbondedMethod(force.getNonbondedMethod());
1311
1312
1313
1314
1315
1316
1317
1318
1319
1320
1321
1322
1323
1324
    nonbondedCutoff = (RealOpenMM) force.getCutoffDistance();

    // Create custom functions for the tabulated functions.

    map<string, Lepton::CustomFunction*> functions;
    for (int i = 0; i < force.getNumFunctions(); i++) {
        string name;
        vector<double> values;
        double min, max;
        bool interpolating;
        force.getFunctionParameters(i, name, values, min, max, interpolating);
        functions[name] = new ReferenceTabulatedFunction(min, max, values, interpolating);
    }

1325
    // Parse the expression and create the object used to calculate the interaction.
1326

1327
1328
1329
    map<string, vector<int> > distances;
    map<string, vector<int> > angles;
    map<string, vector<int> > dihedrals;
1330
    Lepton::ParsedExpression energyExpression = CustomHbondForceImpl::prepareExpression(force, functions, distances, angles, dihedrals);
1331
1332
    vector<string> donorParameterNames;
    vector<string> acceptorParameterNames;
1333
1334
1335
1336
1337
1338
    for (int i = 0; i < numDonorParameters; i++)
        donorParameterNames.push_back(force.getPerDonorParameterName(i));
    for (int i = 0; i < numAcceptorParameters; i++)
        acceptorParameterNames.push_back(force.getPerAcceptorParameterName(i));
    for (int i = 0; i < force.getNumGlobalParameters(); i++)
        globalParameterNames.push_back(force.getGlobalParameterName(i));
1339
    ixn = new ReferenceCustomHbondIxn(donorParticles, acceptorParticles, energyExpression, donorParameterNames, acceptorParameterNames, distances, angles, dihedrals);
1340
    isPeriodic = (nonbondedMethod == CutoffPeriodic);
1341
1342
    if (nonbondedMethod != NoCutoff)
        ixn->setUseCutoff(nonbondedCutoff);
1343
1344
1345
1346
1347
1348
1349
1350
1351
1352

    // Delete the custom functions.

    for (map<string, Lepton::CustomFunction*>::iterator iter = functions.begin(); iter != functions.end(); iter++)
        delete iter->second;
}

void ReferenceCalcCustomHbondForceKernel::executeForces(ContextImpl& context) {
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = extractForces(context);
1353
1354
    if (isPeriodic)
        ixn->setPeriodic(extractBoxSize(context));
1355
1356
1357
    map<string, double> globalParameters;
    for (int i = 0; i < (int) globalParameterNames.size(); i++)
        globalParameters[globalParameterNames[i]] = context.getParameter(globalParameterNames[i]);
1358
    ixn->calculatePairIxn(posData, donorParamArray, acceptorParamArray, exclusionArray, globalParameters, forceData, 0);
1359
1360
1361
1362
1363
}

double ReferenceCalcCustomHbondForceKernel::executeEnergy(ContextImpl& context) {
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** forceData = allocateRealArray(numParticles, 3);
1364
1365
    if (isPeriodic)
        ixn->setPeriodic(extractBoxSize(context));
1366
1367
1368
1369
    RealOpenMM energy = 0;
    map<string, double> globalParameters;
    for (int i = 0; i < (int) globalParameterNames.size(); i++)
        globalParameters[globalParameterNames[i]] = context.getParameter(globalParameterNames[i]);
1370
    ixn->calculatePairIxn(posData, donorParamArray, acceptorParamArray, exclusionArray, globalParameters, forceData, &energy);
1371
1372
1373
1374
    disposeRealArray(forceData, numParticles);
    return energy;
}

1375
1376
1377
ReferenceIntegrateVerletStepKernel::~ReferenceIntegrateVerletStepKernel() {
    if (dynamics)
        delete dynamics;
1378
1379
    if (constraints)
        delete constraints;
1380
1381
1382
1383
    if (masses)
        delete[] masses;
    if (constraintIndices)
        disposeIntArray(constraintIndices, numConstraints);
1384
1385
    if (constraintDistances)
        delete[] constraintDistances;
1386
1387
}

1388
void ReferenceIntegrateVerletStepKernel::initialize(const System& system, const VerletIntegrator& integrator) {
Peter Eastman's avatar
Peter Eastman committed
1389
1390
    int numParticles = system.getNumParticles();
    masses = new RealOpenMM[numParticles];
1391
    for (int i = 0; i < numParticles; ++i)
Peter Eastman's avatar
Peter Eastman committed
1392
        masses[i] = static_cast<RealOpenMM>(system.getParticleMass(i));
1393
1394
    numConstraints = system.getNumConstraints();
    constraintIndices = allocateIntArray(numConstraints, 2);
1395
    constraintDistances = new RealOpenMM[numConstraints];
1396
    for (int i = 0; i < numConstraints; ++i) {
Peter Eastman's avatar
Peter Eastman committed
1397
        int particle1, particle2;
1398
        double distance;
Peter Eastman's avatar
Peter Eastman committed
1399
1400
1401
        system.getConstraintParameters(i, particle1, particle2, distance);
        constraintIndices[i][0] = particle1;
        constraintIndices[i][1] = particle2;
1402
        constraintDistances[i] = static_cast<RealOpenMM>(distance);
1403
    }
1404
1405
}

1406
void ReferenceIntegrateVerletStepKernel::execute(ContextImpl& context, const VerletIntegrator& integrator) {
1407
    double stepSize = integrator.getStepSize();
1408
1409
1410
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** velData = extractVelocities(context);
    RealOpenMM** forceData = extractForces(context);
1411
1412
1413
1414
1415
    if (dynamics == 0 || stepSize != prevStepSize) {
        // Recreate the computation objects with the new parameters.
        
        if (dynamics) {
            delete dynamics;
1416
            delete constraints;
1417
        }
Peter Eastman's avatar
Peter Eastman committed
1418
        dynamics = new ReferenceVerletDynamics(context.getSystem().getNumParticles(), static_cast<RealOpenMM>(stepSize) );
1419
1420
1421
        vector<ReferenceCCMAAlgorithm::AngleInfo> angles;
        findAnglesForCCMA(context.getSystem(), angles);
        constraints = new ReferenceCCMAAlgorithm(context.getSystem().getNumParticles(), numConstraints, constraintIndices, constraintDistances, masses, angles, (RealOpenMM)integrator.getConstraintTolerance());
1422
        dynamics->setReferenceConstraintAlgorithm(constraints);
1423
1424
        prevStepSize = stepSize;
    }
Peter Eastman's avatar
Peter Eastman committed
1425
    dynamics->update(context.getSystem().getNumParticles(), posData, velData, forceData, masses);
1426
    data.time += stepSize;
1427
    data.stepCount++;
1428
}
1429

1430
1431
1432
ReferenceIntegrateLangevinStepKernel::~ReferenceIntegrateLangevinStepKernel() {
    if (dynamics)
        delete dynamics;
1433
1434
    if (constraints)
        delete constraints;
1435
1436
1437
1438
    if (masses)
        delete[] masses;
    if (constraintIndices)
        disposeIntArray(constraintIndices, numConstraints);
1439
1440
    if (constraintDistances)
        delete[] constraintDistances;
1441
}
1442

1443
void ReferenceIntegrateLangevinStepKernel::initialize(const System& system, const LangevinIntegrator& integrator) {
Peter Eastman's avatar
Peter Eastman committed
1444
1445
    int numParticles = system.getNumParticles();
    masses = new RealOpenMM[numParticles];
1446
    for (int i = 0; i < numParticles; ++i)
Peter Eastman's avatar
Peter Eastman committed
1447
        masses[i] = static_cast<RealOpenMM>(system.getParticleMass(i));
1448
1449
    numConstraints = system.getNumConstraints();
    constraintIndices = allocateIntArray(numConstraints, 2);
1450
    constraintDistances = new RealOpenMM[numConstraints];
1451
    for (int i = 0; i < numConstraints; ++i) {
Peter Eastman's avatar
Peter Eastman committed
1452
        int particle1, particle2;
1453
        double distance;
Peter Eastman's avatar
Peter Eastman committed
1454
1455
1456
        system.getConstraintParameters(i, particle1, particle2, distance);
        constraintIndices[i][0] = particle1;
        constraintIndices[i][1] = particle2;
1457
        constraintDistances[i] = static_cast<RealOpenMM>(distance);
1458
    }
1459
    SimTKOpenMMUtilities::setRandomNumberSeed((unsigned int) integrator.getRandomNumberSeed());
1460
1461
}

1462
void ReferenceIntegrateLangevinStepKernel::execute(ContextImpl& context, const LangevinIntegrator& integrator) {
1463
1464
1465
    double temperature = integrator.getTemperature();
    double friction = integrator.getFriction();
    double stepSize = integrator.getStepSize();
1466
1467
1468
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** velData = extractVelocities(context);
    RealOpenMM** forceData = extractForces(context);
1469
1470
1471
1472
1473
    if (dynamics == 0 || temperature != prevTemp || friction != prevFriction || stepSize != prevStepSize) {
        // Recreate the computation objects with the new parameters.
        
        if (dynamics) {
            delete dynamics;
1474
            delete constraints;
1475
        }
1476
1477
        RealOpenMM tau = static_cast<RealOpenMM>( friction == 0.0 ? 0.0 : 1.0/friction );
        dynamics = new ReferenceStochasticDynamics(
Peter Eastman's avatar
Peter Eastman committed
1478
				context.getSystem().getNumParticles(), 
1479
1480
1481
				static_cast<RealOpenMM>(stepSize), 
				static_cast<RealOpenMM>(tau), 
				static_cast<RealOpenMM>(temperature) );
1482
1483
1484
        vector<ReferenceCCMAAlgorithm::AngleInfo> angles;
        findAnglesForCCMA(context.getSystem(), angles);
        constraints = new ReferenceCCMAAlgorithm(context.getSystem().getNumParticles(), numConstraints, constraintIndices, constraintDistances, masses, angles, (RealOpenMM)integrator.getConstraintTolerance());
1485
        dynamics->setReferenceConstraintAlgorithm(constraints);
1486
1487
1488
1489
        prevTemp = temperature;
        prevFriction = friction;
        prevStepSize = stepSize;
    }
Peter Eastman's avatar
Peter Eastman committed
1490
    dynamics->update(context.getSystem().getNumParticles(), posData, velData, forceData, masses);
1491
    data.time += stepSize;
1492
    data.stepCount++;
1493
1494
}

1495
1496
1497
ReferenceIntegrateBrownianStepKernel::~ReferenceIntegrateBrownianStepKernel() {
    if (dynamics)
        delete dynamics;
1498
1499
    if (constraints)
        delete constraints;
1500
1501
1502
1503
    if (masses)
        delete[] masses;
    if (constraintIndices)
        disposeIntArray(constraintIndices, numConstraints);
1504
1505
    if (constraintDistances)
        delete[] constraintDistances;
1506
1507
}

1508
void ReferenceIntegrateBrownianStepKernel::initialize(const System& system, const BrownianIntegrator& integrator) {
Peter Eastman's avatar
Peter Eastman committed
1509
1510
    int numParticles = system.getNumParticles();
    masses = new RealOpenMM[numParticles];
1511
    for (int i = 0; i < numParticles; ++i)
Peter Eastman's avatar
Peter Eastman committed
1512
        masses[i] = static_cast<RealOpenMM>(system.getParticleMass(i));
1513
1514
    numConstraints = system.getNumConstraints();
    constraintIndices = allocateIntArray(numConstraints, 2);
1515
    constraintDistances = new RealOpenMM[numConstraints];
1516
    for (int i = 0; i < numConstraints; ++i) {
Peter Eastman's avatar
Peter Eastman committed
1517
        int particle1, particle2;
1518
        double distance;
Peter Eastman's avatar
Peter Eastman committed
1519
1520
1521
        system.getConstraintParameters(i, particle1, particle2, distance);
        constraintIndices[i][0] = particle1;
        constraintIndices[i][1] = particle2;
1522
        constraintDistances[i] = static_cast<RealOpenMM>(distance);
1523
    }
1524
    SimTKOpenMMUtilities::setRandomNumberSeed((unsigned int) integrator.getRandomNumberSeed());
1525
1526
}

1527
void ReferenceIntegrateBrownianStepKernel::execute(ContextImpl& context, const BrownianIntegrator& integrator) {
1528
1529
1530
    double temperature = integrator.getTemperature();
    double friction = integrator.getFriction();
    double stepSize = integrator.getStepSize();
1531
1532
1533
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** velData = extractVelocities(context);
    RealOpenMM** forceData = extractForces(context);
1534
1535
1536
1537
1538
    if (dynamics == 0 || temperature != prevTemp || friction != prevFriction || stepSize != prevStepSize) {
        // Recreate the computation objects with the new parameters.
        
        if (dynamics) {
            delete dynamics;
1539
            delete constraints;
1540
        }
1541
        dynamics = new ReferenceBrownianDynamics(
Peter Eastman's avatar
Peter Eastman committed
1542
				context.getSystem().getNumParticles(), 
1543
1544
1545
				static_cast<RealOpenMM>(stepSize), 
				static_cast<RealOpenMM>(friction), 
				static_cast<RealOpenMM>(temperature) );
1546
1547
1548
        vector<ReferenceCCMAAlgorithm::AngleInfo> angles;
        findAnglesForCCMA(context.getSystem(), angles);
        constraints = new ReferenceCCMAAlgorithm(context.getSystem().getNumParticles(), numConstraints, constraintIndices, constraintDistances, masses, angles, (RealOpenMM)integrator.getConstraintTolerance());
1549
        dynamics->setReferenceConstraintAlgorithm(constraints);
1550
1551
1552
1553
        prevTemp = temperature;
        prevFriction = friction;
        prevStepSize = stepSize;
    }
Peter Eastman's avatar
Peter Eastman committed
1554
    dynamics->update(context.getSystem().getNumParticles(), posData, velData, forceData, masses);
1555
    data.time += stepSize;
1556
    data.stepCount++;
1557
1558
}

1559
1560
1561
1562
1563
1564
1565
1566
1567
1568
1569
1570
1571
1572
1573
1574
1575
1576
1577
1578
1579
1580
1581
1582
1583
1584
1585
1586
1587
1588
1589
1590
ReferenceIntegrateVariableLangevinStepKernel::~ReferenceIntegrateVariableLangevinStepKernel() {
    if (dynamics)
        delete dynamics;
    if (constraints)
        delete constraints;
    if (masses)
        delete[] masses;
    if (constraintIndices)
        disposeIntArray(constraintIndices, numConstraints);
    if (constraintDistances)
        delete[] constraintDistances;
}

void ReferenceIntegrateVariableLangevinStepKernel::initialize(const System& system, const VariableLangevinIntegrator& integrator) {
    int numParticles = system.getNumParticles();
    masses = new RealOpenMM[numParticles];
    for (int i = 0; i < numParticles; ++i)
        masses[i] = static_cast<RealOpenMM>(system.getParticleMass(i));
    numConstraints = system.getNumConstraints();
    constraintIndices = allocateIntArray(numConstraints, 2);
    constraintDistances = new RealOpenMM[numConstraints];
    for (int i = 0; i < numConstraints; ++i) {
        int particle1, particle2;
        double distance;
        system.getConstraintParameters(i, particle1, particle2, distance);
        constraintIndices[i][0] = particle1;
        constraintIndices[i][1] = particle2;
        constraintDistances[i] = static_cast<RealOpenMM>(distance);
    }
    SimTKOpenMMUtilities::setRandomNumberSeed((unsigned int) integrator.getRandomNumberSeed());
}

1591
void ReferenceIntegrateVariableLangevinStepKernel::execute(ContextImpl& context, const VariableLangevinIntegrator& integrator, double maxTime) {
1592
1593
1594
    double temperature = integrator.getTemperature();
    double friction = integrator.getFriction();
    double errorTol = integrator.getErrorTolerance();
1595
1596
1597
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** velData = extractVelocities(context);
    RealOpenMM** forceData = extractForces(context);
1598
1599
1600
1601
1602
1603
1604
1605
1606
1607
1608
1609
1610
1611
1612
1613
1614
1615
1616
1617
1618
1619
1620
1621
1622
    if (dynamics == 0 || temperature != prevTemp || friction != prevFriction || errorTol != prevErrorTol) {
        // Recreate the computation objects with the new parameters.

        if (dynamics) {
            delete dynamics;
            delete constraints;
        }
        RealOpenMM tau = static_cast<RealOpenMM>( friction == 0.0 ? 0.0 : 1.0/friction );
        dynamics = new ReferenceVariableStochasticDynamics(context.getSystem().getNumParticles(), (RealOpenMM) tau, (RealOpenMM) temperature, (RealOpenMM) errorTol);
        vector<ReferenceCCMAAlgorithm::AngleInfo> angles;
        findAnglesForCCMA(context.getSystem(), angles);
        constraints = new ReferenceCCMAAlgorithm(context.getSystem().getNumParticles(), numConstraints, constraintIndices, constraintDistances, masses, angles, (RealOpenMM)integrator.getConstraintTolerance());
        dynamics->setReferenceConstraintAlgorithm(constraints);
        prevTemp = temperature;
        prevFriction = friction;
        prevErrorTol = errorTol;
    }
    RealOpenMM maxStepSize = (RealOpenMM) (maxTime-data.time);
    dynamics->update(context.getSystem().getNumParticles(), posData, velData, forceData, masses, maxStepSize);
    data.time += dynamics->getDeltaT();
    if (dynamics->getDeltaT() == maxStepSize)
        data.time = maxTime; // Avoid round-off error
    data.stepCount++;
}

1623
1624
1625
1626
1627
1628
1629
1630
1631
1632
1633
1634
1635
1636
1637
1638
1639
1640
1641
1642
1643
1644
1645
1646
1647
1648
1649
1650
1651
1652
1653
ReferenceIntegrateVariableVerletStepKernel::~ReferenceIntegrateVariableVerletStepKernel() {
    if (dynamics)
        delete dynamics;
    if (constraints)
        delete constraints;
    if (masses)
        delete[] masses;
    if (constraintIndices)
        disposeIntArray(constraintIndices, numConstraints);
    if (constraintDistances)
        delete[] constraintDistances;
}

void ReferenceIntegrateVariableVerletStepKernel::initialize(const System& system, const VariableVerletIntegrator& integrator) {
    int numParticles = system.getNumParticles();
    masses = new RealOpenMM[numParticles];
    for (int i = 0; i < numParticles; ++i)
        masses[i] = static_cast<RealOpenMM>(system.getParticleMass(i));
    numConstraints = system.getNumConstraints();
    constraintIndices = allocateIntArray(numConstraints, 2);
    constraintDistances = new RealOpenMM[numConstraints];
    for (int i = 0; i < numConstraints; ++i) {
        int particle1, particle2;
        double distance;
        system.getConstraintParameters(i, particle1, particle2, distance);
        constraintIndices[i][0] = particle1;
        constraintIndices[i][1] = particle2;
        constraintDistances[i] = static_cast<RealOpenMM>(distance);
    }
}

1654
void ReferenceIntegrateVariableVerletStepKernel::execute(ContextImpl& context, const VariableVerletIntegrator& integrator, double maxTime) {
1655
    double errorTol = integrator.getErrorTolerance();
1656
1657
1658
    RealOpenMM** posData = extractPositions(context);
    RealOpenMM** velData = extractVelocities(context);
    RealOpenMM** forceData = extractForces(context);
1659
    if (dynamics == 0 || errorTol != prevErrorTol) {
1660
1661
1662
1663
1664
1665
        // Recreate the computation objects with the new parameters.

        if (dynamics) {
            delete dynamics;
            delete constraints;
        }
1666
        dynamics = new ReferenceVariableVerletDynamics(context.getSystem().getNumParticles(), (RealOpenMM) errorTol);
1667
1668
1669
1670
        vector<ReferenceCCMAAlgorithm::AngleInfo> angles;
        findAnglesForCCMA(context.getSystem(), angles);
        constraints = new ReferenceCCMAAlgorithm(context.getSystem().getNumParticles(), numConstraints, constraintIndices, constraintDistances, masses, angles, (RealOpenMM)integrator.getConstraintTolerance());
        dynamics->setReferenceConstraintAlgorithm(constraints);
1671
        prevErrorTol = errorTol;
1672
    }
1673
1674
    RealOpenMM maxStepSize = (RealOpenMM) (maxTime-data.time);
    dynamics->update(context.getSystem().getNumParticles(), posData, velData, forceData, masses, maxStepSize);
1675
    data.time += dynamics->getDeltaT();
1676
1677
1678
    if (dynamics->getDeltaT() == maxStepSize)
        data.time = maxTime; // Avoid round-off error
    data.stepCount++;
1679
1680
}

1681
1682
1683
1684
1685
1686
1687
ReferenceApplyAndersenThermostatKernel::~ReferenceApplyAndersenThermostatKernel() {
    if (thermostat)
        delete thermostat;
    if (masses)
        delete[] masses;
}

1688
void ReferenceApplyAndersenThermostatKernel::initialize(const System& system, const AndersenThermostat& thermostat) {
Peter Eastman's avatar
Peter Eastman committed
1689
1690
    int numParticles = system.getNumParticles();
    masses = new RealOpenMM[numParticles];
1691
    for (int i = 0; i < numParticles; ++i)
Peter Eastman's avatar
Peter Eastman committed
1692
        masses[i] = static_cast<RealOpenMM>(system.getParticleMass(i));
1693
    this->thermostat = new ReferenceAndersenThermostat();
1694
    SimTKOpenMMUtilities::setRandomNumberSeed((unsigned int) thermostat.getRandomNumberSeed());
1695
1696
}

1697
void ReferenceApplyAndersenThermostatKernel::execute(ContextImpl& context) {
1698
    RealOpenMM** velData = extractVelocities(context);
1699
    thermostat->applyThermostat(
1700
			context.getSystem().getNumParticles(),
1701
1702
			velData, 
			masses, 
1703
1704
			static_cast<RealOpenMM>(context.getParameter(AndersenThermostat::Temperature())), 
			static_cast<RealOpenMM>(context.getParameter(AndersenThermostat::CollisionFrequency())), 
1705
			static_cast<RealOpenMM>(context.getIntegrator().getStepSize()) );
1706
1707
}

1708
1709
1710
1711
1712
1713
1714
1715
1716
ReferenceApplyMonteCarloBarostatKernel::~ReferenceApplyMonteCarloBarostatKernel() {
    if (barostat)
        delete barostat;
}

void ReferenceApplyMonteCarloBarostatKernel::initialize(const System& system, const MonteCarloBarostat& barostat) {
}

void ReferenceApplyMonteCarloBarostatKernel::scaleCoordinates(ContextImpl& context, double scale) {
1717
1718
    if (barostat == NULL)
        barostat = new ReferenceMonteCarloBarostat(context.getSystem().getNumParticles(), context.getMolecules());
1719
    RealOpenMM** posData = extractPositions(context);
1720
    RealOpenMM* boxSize = extractBoxSize(context);
1721
1722
1723
1724
1725
1726
1727
1728
    barostat->applyBarostat(posData, boxSize, scale);
}

void ReferenceApplyMonteCarloBarostatKernel::restoreCoordinates(ContextImpl& context) {
    RealOpenMM** posData = extractPositions(context);
    barostat->restorePositions(posData);
}

1729
void ReferenceCalcKineticEnergyKernel::initialize(const System& system) {
Peter Eastman's avatar
Peter Eastman committed
1730
1731
    int numParticles = system.getNumParticles();
    masses.resize(numParticles);
1732
    for (int i = 0; i < numParticles; ++i)
Peter Eastman's avatar
Peter Eastman committed
1733
        masses[i] = system.getParticleMass(i);
1734
1735
}

1736
double ReferenceCalcKineticEnergyKernel::execute(ContextImpl& context) {
1737
    RealOpenMM** velData = extractVelocities(context);
1738
    double energy = 0.0;
1739
    for (size_t i = 0; i < masses.size(); ++i)
1740
1741
        energy += masses[i]*(velData[i][0]*velData[i][0]+velData[i][1]*velData[i][1]+velData[i][2]*velData[i][2]);
    return 0.5*energy;
1742
}
1743

1744
1745
void ReferenceRemoveCMMotionKernel::initialize(const System& system, const CMMotionRemover& force) {
    frequency = force.getFrequency();
Peter Eastman's avatar
Peter Eastman committed
1746
    masses.resize(system.getNumParticles());
1747
    for (size_t i = 0; i < masses.size(); ++i)
Peter Eastman's avatar
Peter Eastman committed
1748
        masses[i] = system.getParticleMass(i);
1749
1750
}

1751
void ReferenceRemoveCMMotionKernel::execute(ContextImpl& context) {
1752
    if (data.stepCount%frequency != 0)
1753
        return;
1754
    RealOpenMM** velData = extractVelocities(context);
1755
1756
1757
1758
    
    // Calculate the center of mass momentum.
    
    RealOpenMM momentum[] = {0.0, 0.0, 0.0};
1759
    RealOpenMM mass = 0.0;
1760
1761
1762
1763
    for (size_t i = 0; i < masses.size(); ++i) {
        momentum[0] += static_cast<RealOpenMM>( masses[i]*velData[i][0] );
        momentum[1] += static_cast<RealOpenMM>( masses[i]*velData[i][1] );
        momentum[2] += static_cast<RealOpenMM>( masses[i]*velData[i][2] );
1764
        mass += static_cast<RealOpenMM>( masses[i] );
1765
1766
    }
    
Peter Eastman's avatar
Peter Eastman committed
1767
    // Adjust the particle velocities.
1768
    
1769
1770
1771
    momentum[0] /= mass;
    momentum[1] /= mass;
    momentum[2] /= mass;
1772
    for (size_t i = 0; i < masses.size(); ++i) {
1773
1774
1775
        velData[i][0] -= momentum[0];
        velData[i][1] -= momentum[1];
        velData[i][2] -= momentum[2];
1776
1777
    }
}