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Comparing trunk/src/primitives/Inversion.cpp (file contents):
Revision 1275 by cli2, Fri Jul 4 20:54:29 2008 UTC vs.
Revision 2067 by gezelter, Thu Mar 5 15:35:37 2015 UTC

# Line 6 | Line 6
6   * redistribute this software in source and binary code form, provided
7   * that the following conditions are met:
8   *
9 < * 1. Acknowledgement of the program authors must be made in any
10 < *    publication of scientific results based in part on use of the
11 < *    program.  An acceptable form of acknowledgement is citation of
12 < *    the article in which the program was described (Matthew
13 < *    A. Meineke, Charles F. Vardeman II, Teng Lin, Christopher
14 < *    J. Fennell and J. Daniel Gezelter, "OOPSE: An Object-Oriented
15 < *    Parallel Simulation Engine for Molecular Dynamics,"
16 < *    J. Comput. Chem. 26, pp. 252-271 (2005))
17 < *
18 < * 2. Redistributions of source code must retain the above copyright
9 > * 1. Redistributions of source code must retain the above copyright
10   *    notice, this list of conditions and the following disclaimer.
11   *
12 < * 3. Redistributions in binary form must reproduce the above copyright
12 > * 2. Redistributions in binary form must reproduce the above copyright
13   *    notice, this list of conditions and the following disclaimer in the
14   *    documentation and/or other materials provided with the
15   *    distribution.
# Line 37 | Line 28
28   * arising out of the use of or inability to use software, even if the
29   * University of Notre Dame has been advised of the possibility of
30   * such damages.
31 + *
32 + * SUPPORT OPEN SCIENCE!  If you use OpenMD or its source code in your
33 + * research, please cite the appropriate papers when you publish your
34 + * work.  Good starting points are:
35 + *                                                                      
36 + * [1]  Meineke, et al., J. Comp. Chem. 26, 252-271 (2005).            
37 + * [2]  Fennell & Gezelter, J. Chem. Phys. 124, 234104 (2006).          
38 + * [3]  Sun, Lin & Gezelter, J. Chem. Phys. 128, 234107 (2008).          
39 + * [4]  Kuang & Gezelter,  J. Chem. Phys. 133, 164101 (2010).
40 + * [5]  Vardeman, Stocker & Gezelter, J. Chem. Theory Comput. 7, 834 (2011).
41   */
42  
43 + #include "config.h"
44 + #include <cmath>
45 +
46   #include "primitives/Inversion.hpp"
47  
48 < namespace oopse {
48 > namespace OpenMD {
49  
50    Inversion::Inversion(Atom *atom1, Atom *atom2, Atom *atom3,
51 <                       Atom *atom4, InversionType *it) :
52 <    atom1_(atom1), atom2_(atom2), atom3_(atom3), atom4_(atom4),
53 <    inversionType_(it) { }
51 >                       Atom *atom4, InversionType *it) :
52 >    ShortRangeInteraction(), inversionType_(it) {
53 >
54 >    atoms_.resize(4);
55 >    atoms_[0] = atom1;
56 >    atoms_[1] = atom2;
57 >    atoms_[2] = atom3;
58 >    atoms_[3] = atom4;
59 >    
60 >    inversionKey_ = inversionType_->getKey();
61 >  }
62    
63 <  void Inversion::calcForce(RealType& angle) {
63 >  void Inversion::calcForce(RealType& angle, bool doParticlePot) {
64      
65 <    // In OOPSE's version of an inversion, the central atom
65 >    // In OpenMD's version of an inversion, the central atom
66      // comes first.  However, to get the planarity in a typical cosine
67      // version of this potential (i.e. Amber-style), the central atom
68      // is treated as atom *3* in a standard torsion form:
69  
70 <    Vector3d pos1 = atom2_->getPos();
71 <    Vector3d pos2 = atom3_->getPos();
72 <    Vector3d pos3 = atom1_->getPos();
73 <    Vector3d pos4 = atom4_->getPos();
70 >    Vector3d pos1 = atoms_[1]->getPos();
71 >    Vector3d pos2 = atoms_[2]->getPos();
72 >    Vector3d pos3 = atoms_[0]->getPos();
73 >    Vector3d pos4 = atoms_[3]->getPos();
74  
75 <    Vector3d r21 = pos1 - pos2;
76 <    Vector3d r32 = pos2 - pos3;
75 >    Vector3d r31 = pos1 - pos3;
76 >    Vector3d r23 = pos3 - pos2;
77      Vector3d r43 = pos3 - pos4;
78  
79      //  Calculate the cross products and distances
80 <    Vector3d A = cross(r21, r32);
80 >    Vector3d A = cross(r31, r43);
81      RealType rA = A.length();
82 <    Vector3d B = cross(r32, r43);
82 >    Vector3d B = cross(r43, r23);
83      RealType rB = B.length();
72    Vector3d C = cross(r32, A);
73    RealType rC = C.length();
84  
85      A.normalize();
86      B.normalize();
77    C.normalize();
87      
88      //  Calculate the sin and cos
89      RealType cos_phi = dot(A, B) ;
90      if (cos_phi > 1.0) cos_phi = 1.0;
91 <    if (cos_phi < -1.0) cos_phi = -1.0;
91 >    if (cos_phi < -1.0) cos_phi = -1.0;
92  
93      RealType dVdcosPhi;
94 <    inversionType_->calcForce(cos_phi, potential_, dVdcosPhi);
95 <    Vector3d f1;
96 <    Vector3d f2;
97 <    Vector3d f3;
94 >    switch (inversionKey_) {
95 >    case itCosAngle:
96 >      inversionType_->calcForce(cos_phi, potential_, dVdcosPhi);
97 >      break;
98 >    case itAngle:
99 >      RealType phi = acos(cos_phi);
100 >      RealType dVdPhi;
101 >      inversionType_->calcForce(phi, potential_, dVdPhi);
102 >      RealType sin_phi = sqrt(1.0 - cos_phi * cos_phi);  
103 >      if (fabs(sin_phi) < 1.0E-6) {
104 >        sin_phi = 1.0E-6;
105 >      }
106 >      dVdcosPhi = dVdPhi / sin_phi;
107 >      break;
108 >    }
109 >    
110 >    Vector3d f1 ;
111 >    Vector3d f2 ;
112 >    Vector3d f3 ;
113  
114      Vector3d dcosdA = (cos_phi * A - B) /rA;
115      Vector3d dcosdB = (cos_phi * B - A) /rB;
116  
117 <    f1 = dVdcosPhi * cross(r32, dcosdA);
118 <    f2 = dVdcosPhi * ( cross(r43, dcosdB) - cross(r21, dcosdA));
119 <    f3 = dVdcosPhi * cross(dcosdB, r32);
117 >    f1 = dVdcosPhi * cross(r43, dcosdA);
118 >    f2 = dVdcosPhi * ( cross(r23, dcosdB) - cross(r31, dcosdA));
119 >    f3 = dVdcosPhi * cross(dcosdB, r43);
120  
121 <    // In OOPSE's version of an improper torsion, the central atom
121 >    // In OpenMD's version of an improper torsion, the central atom
122      // comes first.  However, to get the planarity in a typical cosine
123      // version of this potential (i.e. Amber-style), the central atom
124      // is treated as atom *3* in a standard torsion form:
125  
126      //  AMBER:   I - J - K - L   (e.g. K is sp2 hybridized carbon)
127 <    //  OOPSE:   I - (J - K - L)  (e.g. I is sp2 hybridized carbon)
127 >    //  OpenMD:  I - (J - K - L)  (e.g. I is sp2 hybridized carbon)
128  
129      // Confusing enough?  Good.
130  
131 <    atom3_->addFrc(f1);
132 <    atom1_->addFrc(f2 - f1);
133 <    atom2_->addFrc(f3 - f2);
134 <    atom4_->addFrc(-f3);
131 >    atoms_[1]->addFrc(f1);
132 >    atoms_[0]->addFrc(f2 - f1 + f3);
133 >    atoms_[3]->addFrc(-f2);
134 >    atoms_[2]->addFrc(-f3);
135 >
136 >    if (doParticlePot) {
137 >      atoms_[0]->addParticlePot(potential_);
138 >      atoms_[1]->addParticlePot(potential_);
139 >      atoms_[2]->addParticlePot(potential_);
140 >      atoms_[3]->addParticlePot(potential_);
141 >    }
142 >    
143      angle = acos(cos_phi) /M_PI * 180.0;
144    }
145  

Comparing trunk/src/primitives/Inversion.cpp (property svn:keywords):
Revision 1275 by cli2, Fri Jul 4 20:54:29 2008 UTC vs.
Revision 2067 by gezelter, Thu Mar 5 15:35:37 2015 UTC

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