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- #include <stdexcept>
- #include <iostream>
- #include <vector>
- #include "nmie.hpp"
- #include "nmie-basic.hpp"
- #include "nmie-nearfield.hpp"
- namespace nmie {
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- int ScattCoeffs(const unsigned int L, const int pl, const std::vector<double> &x, const std::vector<std::complex<double> > &m,
- const int nmax, std::vector<std::complex<double> > &an, std::vector<std::complex<double> > &bn) {
- if (x.size() != L || m.size() != L)
- throw std::invalid_argument("Declared number of layers do not fit x and m!");
- try {
- MultiLayerMie<FloatType> ml_mie;
- ml_mie.SetLayersSize(ConvertVector<FloatType>(x));
- ml_mie.SetLayersIndex(ConvertComplexVector<FloatType>(m));
- ml_mie.SetPECLayer(pl);
- ml_mie.SetMaxTerms(nmax);
- ml_mie.calcScattCoeffs();
- an = ConvertComplexVector<double>(ml_mie.GetAn());
- bn = ConvertComplexVector<double>(ml_mie.GetBn());
- return ml_mie.GetMaxTerms();
- } catch(const std::invalid_argument &ia) {
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- std::cerr << "Invalid argument: " << ia.what() << std::endl;
- throw std::invalid_argument(ia);
- }
- }
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- int ExpanCoeffs(const unsigned int L, const int pl, const std::vector<double> &x, const std::vector<std::complex<double> > &m, const int nmax,
- std::vector<std::vector<std::complex<double> > > &aln, std::vector<std::vector<std::complex<double> > > &bln,
- std::vector<std::vector<std::complex<double> > > &cln, std::vector<std::vector<std::complex<double> > > &dln) {
- if (x.size() != L || m.size() != L)
- throw std::invalid_argument("Declared number of layers do not fit x and m!");
- try {
- MultiLayerMie<FloatType> ml_mie;
- ml_mie.SetLayersSize(ConvertVector<FloatType>(x));
- ml_mie.SetLayersIndex(ConvertComplexVector<FloatType>(m));
- ml_mie.SetPECLayer(pl);
- ml_mie.SetMaxTerms(nmax);
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- ml_mie.calcScattCoeffs();
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- ml_mie.calcExpanCoeffs();
- aln = ConvertComplexVectorVector<double>(ml_mie.GetLayerAn());
- bln = ConvertComplexVectorVector<double>(ml_mie.GetLayerBn());
- cln = ConvertComplexVectorVector<double>(ml_mie.GetLayerCn());
- dln = ConvertComplexVectorVector<double>(ml_mie.GetLayerDn());
- return ml_mie.GetMaxTerms();
- } catch(const std::invalid_argument &ia) {
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- std::cerr << "Invalid argument: " << ia.what() << std::endl;
- throw std::invalid_argument(ia);
- }
- }
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- int nMie(const unsigned int L, const int pl, std::vector<double> &x, std::vector<std::complex<double> > &m,
- const unsigned int nTheta, std::vector<double> &Theta, const int nmax,
- double *Qext, double *Qsca, double *Qabs, double *Qbk, double *Qpr, double *g, double *Albedo,
- std::vector<std::complex<double> > &S1, std::vector<std::complex<double> > &S2,
- int mode_n, int mode_type) {
- if (x.size() != L || m.size() != L)
- throw std::invalid_argument("Declared number of layers do not fit x and m!");
- if (Theta.size() != nTheta)
- throw std::invalid_argument("Declared number of sample for Theta is not correct!");
- try {
- MultiLayerMie<FloatType> ml_mie;
- ml_mie.SetLayersSize(ConvertVector<FloatType>(x));
- ml_mie.SetLayersIndex(ConvertComplexVector<FloatType>(m));
- ml_mie.SetAngles(ConvertVector<FloatType>(Theta));
- ml_mie.SetPECLayer(pl);
- ml_mie.SetMaxTerms(nmax);
- ml_mie.SetModeNmaxAndType(mode_n, mode_type);
- ml_mie.RunMieCalculation();
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- *Qext = static_cast<double>(ml_mie.GetQext());
- *Qsca = static_cast<double>(ml_mie.GetQsca());
- *Qabs = static_cast<double>(ml_mie.GetQabs());
- *Qbk = static_cast<double>(ml_mie.GetQbk());
- *Qpr = static_cast<double>(ml_mie.GetQpr());
- *g = static_cast<double>(ml_mie.GetAsymmetryFactor());
- *Albedo = static_cast<double>(ml_mie.GetAlbedo());
- S1 = ConvertComplexVector<double>(ml_mie.GetS1());
- S2 = ConvertComplexVector<double>(ml_mie.GetS2());
- return ml_mie.GetMaxTerms();
- } catch(const std::invalid_argument &ia) {
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- std::cerr << "Invalid argument: " << ia.what() << std::endl;
- throw std::invalid_argument(ia);
- }
- }
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- int nMie(const unsigned int L, const int pl,
- std::vector<double> &x, std::vector<std::complex<double> > &m,
- const unsigned int nTheta, std::vector<double> &Theta, const int nmax,
- double *Qext, double *Qsca, double *Qabs, double *Qbk, double *Qpr, double *g, double *Albedo,
- std::vector<std::complex<double> > &S1, std::vector<std::complex<double> > &S2) {
- return nmie::nMie(L, pl, x, m, nTheta, Theta, nmax, Qext, Qsca, Qabs, Qbk, Qpr, g, Albedo, S1, S2, -1, -1);
- }
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- int nMie(const unsigned int L, std::vector<double> &x, std::vector<std::complex<double> > &m,
- const unsigned int nTheta, std::vector<double> &Theta,
- double *Qext, double *Qsca, double *Qabs, double *Qbk, double *Qpr, double *g, double *Albedo,
- std::vector<std::complex<double> > &S1, std::vector<std::complex<double> > &S2) {
- return nmie::nMie(L, -1, x, m, nTheta, Theta, -1, Qext, Qsca, Qabs, Qbk, Qpr, g, Albedo, S1, S2);
- }
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- int nMie(const unsigned int L, const int pl, std::vector<double> &x, std::vector<std::complex<double> > &m,
- const unsigned int nTheta, std::vector<double> &Theta,
- double *Qext, double *Qsca, double *Qabs, double *Qbk, double *Qpr, double *g, double *Albedo,
- std::vector<std::complex<double> > &S1, std::vector<std::complex<double> > &S2) {
- return nmie::nMie(L, pl, x, m, nTheta, Theta, -1, Qext, Qsca, Qabs, Qbk, Qpr, g, Albedo, S1, S2);
- }
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- int nMie(const unsigned int L, std::vector<double> &x, std::vector<std::complex<double> > &m,
- const unsigned int nTheta, std::vector<double> &Theta, const int nmax,
- double *Qext, double *Qsca, double *Qabs, double *Qbk, double *Qpr, double *g, double *Albedo,
- std::vector<std::complex<double> > &S1, std::vector<std::complex<double> > &S2) {
- return nmie::nMie(L, -1, x, m, nTheta, Theta, nmax, Qext, Qsca, Qabs, Qbk, Qpr, g, Albedo, S1, S2);
- }
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- int nField(const unsigned int L, const int pl,
- const std::vector<double> &x, const std::vector<std::complex<double> > &m, const int nmax,
- const int mode_n, const int mode_type, const unsigned int ncoord,
- const std::vector<double> &Xp_vec, const std::vector<double> &Yp_vec, const std::vector<double> &Zp_vec,
- std::vector<std::vector<std::complex<double> > > &E, std::vector<std::vector<std::complex<double> > > &H) {
- if (x.size() != L || m.size() != L)
- throw std::invalid_argument("Declared number of layers do not fit x and m!");
- if (Xp_vec.size() != ncoord || Yp_vec.size() != ncoord || Zp_vec.size() != ncoord
- || E.size() != ncoord || H.size() != ncoord)
- throw std::invalid_argument("Declared number of coords do not fit Xp, Yp, Zp, E, or H!");
- for (const auto &f:E)
- if (f.size() != 3)
- throw std::invalid_argument("Field E is not 3D!");
- for (const auto &f:H)
- if (f.size() != 3)
- throw std::invalid_argument("Field H is not 3D!");
- try {
- MultiLayerMie<FloatType> ml_mie;
- ml_mie.SetLayersSize(ConvertVector<FloatType>(x));
- ml_mie.SetLayersIndex(ConvertComplexVector<FloatType>(m));
- ml_mie.SetPECLayer(pl);
- ml_mie.SetFieldCoords({ConvertVector<FloatType>(Xp_vec),
- ConvertVector<FloatType>(Yp_vec),
- ConvertVector<FloatType>(Zp_vec) });
- if (nmax != -1) ml_mie.SetMaxTerms(nmax);
- ml_mie.SetModeNmaxAndType(mode_n, mode_type);
- ml_mie.RunFieldCalculation();
- E = ConvertComplexVectorVector<double>(ml_mie.GetFieldE());
- H = ConvertComplexVectorVector<double>(ml_mie.GetFieldH());
- return ml_mie.GetMaxTerms();
- } catch(const std::invalid_argument &ia) {
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- std::cerr << "Invalid argument: " << ia.what() << std::endl;
- throw std::invalid_argument(ia);
- }
- }
- }
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