| 49 |  |  | 
| 50 |  | Vector3d pos1 = atom1_->getPos(); | 
| 51 |  | Vector3d pos2 = ghostAtom->getPos(); | 
| 52 | < |  | 
| 52 | > |  | 
| 53 |  | Vector3d r12 = pos1 - pos2; | 
| 54 |  | RealType d12 = r12.length(); | 
| 55 | < |  | 
| 55 | > |  | 
| 56 |  | RealType d12inv = 1.0 / d12; | 
| 57 | < |  | 
| 57 | > |  | 
| 58 |  | Vector3d r32 = ghostAtom->getElectroFrame().getColumn(2); | 
| 59 |  | RealType d32 = r32.length(); | 
| 60 | < |  | 
| 60 | > |  | 
| 61 |  | RealType d32inv = 1.0 / d32; | 
| 62 | < |  | 
| 62 | > |  | 
| 63 |  | RealType cosTheta = dot(r12, r32) / (d12 * d32); | 
| 64 | < |  | 
| 64 | > |  | 
| 65 |  | //check roundoff | 
| 66 |  | if (cosTheta > 1.0) { | 
| 67 |  | cosTheta = 1.0; | 
| 68 |  | } else if (cosTheta < -1.0) { | 
| 69 |  | cosTheta = -1.0; | 
| 70 |  | } | 
| 71 | < |  | 
| 71 | > |  | 
| 72 |  | RealType theta = acos(cosTheta); | 
| 73 | < |  | 
| 73 | > |  | 
| 74 |  | RealType firstDerivative; | 
| 75 | < |  | 
| 75 | > |  | 
| 76 |  | bendType_->calcForce(theta, firstDerivative, potential_); | 
| 77 | < |  | 
| 77 | > |  | 
| 78 |  | RealType sinTheta = sqrt(1.0 - cosTheta * cosTheta); | 
| 79 | < |  | 
| 79 | > |  | 
| 80 |  | if (fabs(sinTheta) < 1.0E-12) { | 
| 81 |  | sinTheta = 1.0E-12; | 
| 82 |  | } | 
| 83 | < |  | 
| 83 | > |  | 
| 84 |  | RealType commonFactor1 = -firstDerivative / sinTheta * d12inv; | 
| 85 |  | RealType commonFactor2 = -firstDerivative / sinTheta * d32inv; | 
| 86 | < |  | 
| 86 | > |  | 
| 87 |  | Vector3d force1 = commonFactor1*(r12*(d12inv*cosTheta) - r32*d32inv); | 
| 88 |  | Vector3d force3 = commonFactor2*(r32*(d32inv*cosTheta) - r12*d12inv); | 
| 89 |  | atom1_->addFrc(force1); | 
| 90 |  | ghostAtom->addFrc(-force1); | 
| 91 |  | /**@todo test correctness */ | 
| 92 |  | ghostAtom->addTrq(cross(r32, force3) ); | 
| 93 | < |  | 
| 93 | > |  | 
| 94 |  | angle = theta /M_PI * 180.0; | 
| 95 | < |  | 
| 96 | < | } | 
| 97 | < |  | 
| 95 | > |  | 
| 96 | > | } | 
| 97 |  | } //end namespace oopse | 
| 98 |  |  |