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 * redistribute this software in source and binary code form, provided | 
| 7 | 
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 * that the following conditions are met: | 
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 * | 
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 * 1. Acknowledgement of the program authors must be made in any | 
| 10 | 
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 *    publication of scientific results based in part on use of the | 
| 11 | 
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 *    program.  An acceptable form of acknowledgement is citation of | 
| 12 | 
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 *    the article in which the program was described (Matthew | 
| 13 | 
< | 
 *    A. Meineke, Charles F. Vardeman II, Teng Lin, Christopher | 
| 14 | 
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 *    J. Fennell and J. Daniel Gezelter, "OOPSE: An Object-Oriented | 
| 15 | 
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 *    Parallel Simulation Engine for Molecular Dynamics," | 
| 16 | 
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 *    J. Comput. Chem. 26, pp. 252-271 (2005)) | 
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< | 
 * | 
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 * 2. Redistributions of source code must retain the above copyright | 
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> | 
 * 1. Redistributions of source code must retain the above copyright | 
| 10 | 
  | 
 *    notice, this list of conditions and the following disclaimer. | 
| 11 | 
  | 
 * | 
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 * 3. Redistributions in binary form must reproduce the above copyright | 
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> | 
 * 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 | 
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 *    distribution. | 
| 28 | 
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 * arising out of the use of or inability to use software, even if the | 
| 29 | 
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 * University of Notre Dame has been advised of the possibility of | 
| 30 | 
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 * such damages. | 
| 31 | 
+ | 
 * | 
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 * 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 | 
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 *                                                                       | 
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+ | 
 * [1]  Meineke, et al., J. Comp. Chem. 26, 252-271 (2005).              | 
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+ | 
 * [2]  Fennell & Gezelter, J. Chem. Phys. 124, 234104 (2006).           | 
| 38 | 
+ | 
 * [3]  Sun, Lin & Gezelter, J. Chem. Phys. 128, 24107 (2008).           | 
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+ | 
 * [4]  Kuang & Gezelter,  J. Chem. Phys. 133, 164101 (2010). | 
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 * [5]  Vardeman, Stocker & Gezelter, J. Chem. Theory Comput. 7, 834 (2011). | 
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  | 
 */ | 
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 | 
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#include <algorithm> | 
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  | 
#include "applications/staticProps/GofRAngle.hpp" | 
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  | 
#include "utils/simError.h" | 
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  | 
 | 
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< | 
namespace oopse { | 
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> | 
namespace OpenMD { | 
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 | 
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< | 
GofRAngle::GofRAngle(SimInfo* info, const std::string& filename, const std::string& sele1, const std::string& sele2, double len) | 
| 51 | 
< | 
    : RadialDistrFunc(info, filename, sele1, sele2, len){ | 
| 50 | 
> | 
  GofRAngle::GofRAngle(SimInfo* info, const std::string& filename, const std::string& sele1,  | 
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> | 
                       const std::string& sele2, RealType len, int nrbins, int nangleBins) | 
| 52 | 
> | 
    : RadialDistrFunc(info, filename, sele1, sele2), len_(len), nRBins_(nrbins), nAngleBins_(nangleBins){ | 
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  | 
 | 
| 54 | 
< | 
    histogram_.resize(nbins_); | 
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< | 
    avgGofr_.resize(nbins_); | 
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< | 
} | 
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> | 
      deltaR_ = len_ /(double) nRBins_; | 
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> | 
      deltaCosAngle_ = 2.0 / (double)nAngleBins_;     | 
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> | 
      histogram_.resize(nRBins_); | 
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> | 
      avgGofr_.resize(nRBins_); | 
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> | 
      for (int i = 0 ; i < nRBins_; ++i) { | 
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> | 
        histogram_[i].resize(nAngleBins_); | 
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> | 
        avgGofr_[i].resize(nAngleBins_); | 
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> | 
      } | 
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> | 
    } | 
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 | 
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  | 
 | 
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< | 
void GofRAngle::preProcess() { | 
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< | 
    avgGofr_.resize(nbins_); | 
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< | 
    for (int i = 0; i < avgGofr_.size(); ++i) | 
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< | 
        std::fill(avgGofr_[i].begin(), avgGofr_[i].end(), 0); | 
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< | 
} | 
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> | 
  void GofRAngle::preProcess() { | 
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> | 
    for (unsigned int i = 0; i < avgGofr_.size(); ++i) { | 
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> | 
      std::fill(avgGofr_[i].begin(), avgGofr_[i].end(), 0); | 
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> | 
    } | 
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> | 
  } | 
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 | 
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< | 
void GofRAngle::initalizeHistogram() { | 
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> | 
  void GofRAngle::initializeHistogram() { | 
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    npairs_ = 0; | 
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< | 
    for (int i = 0; i < histogram_.size(); ++i) | 
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< | 
        std::fill(histogram_[i].begin(), histogram_[i].end(), 0); | 
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< | 
} | 
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> | 
    for (unsigned int i = 0; i < histogram_.size(); ++i){ | 
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> | 
      std::fill(histogram_[i].begin(), histogram_[i].end(), 0); | 
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> | 
    } | 
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> | 
  } | 
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  | 
 | 
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+ | 
  void GofRAngle::processHistogram() { | 
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+ | 
    int nPairs = getNPairs(); | 
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+ | 
    RealType volume = info_->getSnapshotManager()->getCurrentSnapshot()->getVolume(); | 
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+ | 
    RealType pairDensity = nPairs /volume; | 
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+ | 
    RealType pairConstant = ( 4.0 * NumericConstant::PI * pairDensity ) / 3.0; | 
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  | 
 | 
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< | 
void GofRAngle::processHistogram() { | 
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> | 
    for(unsigned int i = 0 ; i < histogram_.size(); ++i){ | 
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  | 
 | 
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< | 
    double volume = info_->getSnapshotManager()->getCurrentSnapshot()->getVolume(); | 
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< | 
    double pairDensity = npairs_ /volume; | 
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< | 
    double pairConstant = ( 4.0 * PI * pairDensity ) / 3.0; | 
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> | 
      RealType rLower = i * deltaR_; | 
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> | 
      RealType rUpper = rLower + deltaR_; | 
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> | 
      RealType volSlice = ( rUpper * rUpper * rUpper ) - ( rLower * rLower * rLower ); | 
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> | 
      RealType nIdeal = volSlice * pairConstant; | 
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  | 
 | 
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< | 
    for(int i = 0 ; i < histogram_.size(); ++i){ | 
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< | 
 | 
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< | 
        double rLower = i * deltaR_; | 
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        double rUpper = rLower + deltaR_; | 
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        double volSlice = ( rUpper * rUpper * rUpper ) - ( rLower * rLower * rLower ); | 
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        double nIdeal = volSlice * pairConstant; | 
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 | 
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< | 
        for (int j = 0; j < histogram_[i].size(); ++j){ | 
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            avgGofr_[i][j] += histogram_[i][j] / nIdeal;     | 
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< | 
        } | 
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> | 
      for (unsigned int j = 0; j < histogram_[i].size(); ++j){ | 
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> | 
        avgGofr_[i][j] += histogram_[i][j] / nIdeal;     | 
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> | 
      } | 
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  | 
    } | 
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 | 
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< | 
} | 
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> | 
  } | 
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 | 
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< | 
void GofRAngle::collectHistogram(StuntDouble* sd1, StuntDouble* sd2) { | 
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> | 
  void GofRAngle::collectHistogram(StuntDouble* sd1, StuntDouble* sd2) { | 
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 | 
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    if (sd1 == sd2) { | 
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< | 
        return; | 
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> | 
      return; | 
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  | 
    } | 
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– | 
     | 
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  | 
    Vector3d pos1 = sd1->getPos(); | 
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  | 
    Vector3d pos2 = sd2->getPos(); | 
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< | 
    Vector3d r12 = pos1 - pos2; | 
| 106 | 
< | 
    currentSnapshot_->wrapVector(r12); | 
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> | 
    Vector3d r12 = pos2 - pos1; | 
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> | 
    if (usePeriodicBoundaryConditions_) | 
| 107 | 
> | 
      currentSnapshot_->wrapVector(r12); | 
| 108 | 
  | 
 | 
| 109 | 
< | 
    double distance = r12.length(); | 
| 110 | 
< | 
    int whichBin = distance / deltaR_; | 
| 109 | 
> | 
    RealType distance = r12.length(); | 
| 110 | 
> | 
    int whichRBin = int(distance / deltaR_); | 
| 111 | 
  | 
 | 
| 112 | 
< | 
     | 
| 105 | 
< | 
    double cosAngle = evaluateAngle(sd1, sd2); | 
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< | 
    histogram_[whichBin] ++; | 
| 107 | 
< | 
     | 
| 108 | 
< | 
    npairs_++; | 
| 109 | 
< | 
} | 
| 112 | 
> | 
    if (distance <= len_) { | 
| 113 | 
  | 
 | 
| 114 | 
< | 
void GofRAngle::writeRdf() { | 
| 114 | 
> | 
      RealType cosAngle = evaluateAngle(sd1, sd2); | 
| 115 | 
> | 
      RealType halfBin = (nAngleBins_ - 1) * 0.5; | 
| 116 | 
> | 
      int whichThetaBin = int(halfBin * (cosAngle + 1.0)); | 
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> | 
      ++histogram_[whichRBin][whichThetaBin]; | 
| 118 | 
> | 
         | 
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> | 
      ++npairs_; | 
| 120 | 
> | 
    } | 
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> | 
  } | 
| 122 | 
> | 
 | 
| 123 | 
> | 
  void GofRAngle::writeRdf() { | 
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  | 
    std::ofstream rdfStream(outputFilename_.c_str()); | 
| 125 | 
  | 
    if (rdfStream.is_open()) { | 
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< | 
        rdfStream << "#radial distribution function\n"; | 
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< | 
        rdfStream << "#selection1: (" << selectionScript1_ << ")\t"; | 
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        rdfStream << "selection2: (" << selectionScript2_ << ")\n"; | 
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< | 
        rdfStream << "#r\tcorrValue\n"; | 
| 130 | 
< | 
        for (int i = 0; i < avgGofr_.size(); ++i) { | 
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< | 
            double r = deltaR_ * (i + 0.5); | 
| 126 | 
> | 
      rdfStream << "#radial distribution function\n"; | 
| 127 | 
> | 
      rdfStream << "#selection1: (" << selectionScript1_ << ")\t"; | 
| 128 | 
> | 
      rdfStream << "selection2: (" << selectionScript2_ << ")\n"; | 
| 129 | 
> | 
      rdfStream << "#nRBins = " << nRBins_ << "\t maxLen = " << len_ << "deltaR = " << deltaR_ <<"\n"; | 
| 130 | 
> | 
      rdfStream << "#nAngleBins =" << nAngleBins_ << "deltaCosAngle = " << deltaCosAngle_ << "\n"; | 
| 131 | 
> | 
      for (unsigned int i = 0; i < avgGofr_.size(); ++i) { | 
| 132 | 
> | 
        RealType r = deltaR_ * (i + 0.5); | 
| 133 | 
  | 
 | 
| 134 | 
< | 
            for(int j = 0; j < avgGofr_[i].size(); ++j) { | 
| 135 | 
< | 
                double cosAngle = ; | 
| 136 | 
< | 
                rdfStream << r << "\t" << cosAngle << "\t" << avgGofr_[i][j]/nProcessed_ << "\n"; | 
| 137 | 
< | 
            } | 
| 138 | 
< | 
        } | 
| 134 | 
> | 
        for(unsigned int j = 0; j < avgGofr_[i].size(); ++j) { | 
| 135 | 
> | 
          RealType cosAngle = -1.0 + (j + 0.5)*deltaCosAngle_; | 
| 136 | 
> | 
          rdfStream << avgGofr_[i][j]/nProcessed_ << "\t"; | 
| 137 | 
> | 
        } | 
| 138 | 
> | 
 | 
| 139 | 
> | 
        rdfStream << "\n"; | 
| 140 | 
> | 
      } | 
| 141 | 
  | 
         | 
| 142 | 
  | 
    } else { | 
| 143 | 
< | 
 | 
| 144 | 
< | 
 | 
| 143 | 
> | 
      sprintf(painCave.errMsg, "GofRAngle: unable to open %s\n", outputFilename_.c_str()); | 
| 144 | 
> | 
      painCave.isFatal = 1; | 
| 145 | 
> | 
      simError();   | 
| 146 | 
  | 
    } | 
| 147 | 
  | 
 | 
| 148 | 
  | 
    rdfStream.close(); | 
| 149 | 
< | 
} | 
| 149 | 
> | 
  } | 
| 150 | 
  | 
 | 
| 151 | 
< | 
 | 
| 136 | 
< | 
 | 
| 137 | 
< | 
double GofRTheta::evaluateAngle(StuntDouble* sd1, StuntDouble* sd2) { | 
| 151 | 
> | 
  RealType GofRTheta::evaluateAngle(StuntDouble* sd1, StuntDouble* sd2) { | 
| 152 | 
  | 
    Vector3d pos1 = sd1->getPos(); | 
| 153 | 
  | 
    Vector3d pos2 = sd2->getPos(); | 
| 154 | 
< | 
    Vector3d r12 = pos1 - pos2; | 
| 155 | 
< | 
    currentSnapshot_->wrapVector(r12); | 
| 154 | 
> | 
    Vector3d r12 = pos2 - pos1; | 
| 155 | 
> | 
   | 
| 156 | 
> | 
    if (usePeriodicBoundaryConditions_) | 
| 157 | 
> | 
      currentSnapshot_->wrapVector(r12); | 
| 158 | 
> | 
 | 
| 159 | 
  | 
    r12.normalize(); | 
| 160 | 
< | 
    Vector3d dipole = sd1->getElectroFrame().getColumn(2)£» | 
| 160 | 
> | 
    Vector3d dipole = sd1->getElectroFrame().getColumn(2); | 
| 161 | 
  | 
    dipole.normalize();     | 
| 162 | 
< | 
    return dot(); | 
| 163 | 
< | 
} | 
| 162 | 
> | 
    return dot(r12, dipole); | 
| 163 | 
> | 
  } | 
| 164 | 
  | 
 | 
| 165 | 
< | 
double GofROmega::evaluateAngle(StuntDouble* sd1, StuntDouble* sd2) { | 
| 165 | 
> | 
  RealType GofROmega::evaluateAngle(StuntDouble* sd1, StuntDouble* sd2) { | 
| 166 | 
  | 
    Vector3d v1 = sd1->getElectroFrame().getColumn(2); | 
| 167 | 
< | 
    Vector3d v2 = sd1->getElectroFrame().getColumn(2); | 
| 167 | 
> | 
    Vector3d v2 = sd2->getElectroFrame().getColumn(2);     | 
| 168 | 
> | 
    v1.normalize(); | 
| 169 | 
> | 
    v2.normalize(); | 
| 170 | 
> | 
    return dot(v1, v2); | 
| 171 | 
> | 
  } | 
| 172 | 
  | 
 | 
| 152 | 
– | 
     | 
| 153 | 
– | 
} | 
| 173 | 
  | 
 | 
| 155 | 
– | 
 | 
| 174 | 
  | 
} | 
| 175 | 
  | 
 | 
| 176 | 
  | 
 |