1 | // %pacpus:license{
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2 | // This file is part of the PACPUS framework distributed under the
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3 | // CECILL-C License, Version 1.0.
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4 | // %}
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5 | /// @file
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6 | /// @author Marek Kurdej <firstname.surname@utc.fr>
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7 | /// @author Jean Laneurit <firstname.surname@utc.fr>
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8 | /// @date April, 2010
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9 | /// @version $Id: geodesie.h 75 2013-01-10 17:04:19Z kurdejma $
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10 | /// @copyright Copyright (c) UTC/CNRS Heudiasyc 2006 - 2013. All rights reserved.
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11 | /// @brief Brief description.
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12 | ///
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13 | /// Detailed description.
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14 |
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15 | #ifndef GEODESIE_H
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16 | #define GEODESIE_H
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17 |
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18 | #include "PacpusToolsConfig.h"
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19 |
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20 | #include <Pacpus/kernel/pacpus.h>
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21 |
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22 | #include <boost/math/constants/constants.hpp>
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23 | #include <cmath>
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24 | #include <iostream>
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25 | #include <vector>
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26 |
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27 | #include <QMatrix4x4>
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28 | #include <QVector3D>
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29 |
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30 | namespace Geodesy
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31 | {
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32 |
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33 | /// 9x9 matrix ???
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34 | ///
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35 | /// @todo Documentation
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36 | /// @todo Rewrite!
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37 | struct PACPUSTOOLS_API Matrice
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38 | {
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39 | /// Copy ctor
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40 | Matrice(Matrice const& A);
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41 | /// Ctor
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42 | Matrice();
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43 | /// @todo Documentation
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44 | void Apply(double v0, double v1, double v2, double& Mv0, double& Mv1, double& Mv2);
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45 |
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46 | /// @todo Documentation
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47 | double c0_l0;
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48 | /// @todo Documentation
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49 | double c1_l0;
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50 | /// @todo Documentation
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51 | double c2_l0;
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52 |
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53 | /// @todo Documentation
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54 | double c0_l1;
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55 | /// @todo Documentation
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56 | double c1_l1;
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57 | /// @todo Documentation
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58 | double c2_l1;
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59 |
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60 | /// @todo Documentation
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61 | double c0_l2;
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62 | /// @todo Documentation
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63 | double c1_l2;
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64 | /// @todo Documentation
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65 | double c2_l2;
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66 | };
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67 |
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68 | PACPUSTOOLS_API Matrice TransMat(Matrice const& A);
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69 | PACPUSTOOLS_API Matrice ProdMat(Matrice const& A, Matrice const& B);
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70 | PACPUSTOOLS_API PACPUS_DEPRECATED_MSG(void Write(Matrice const& A, std::ostream& out), "use operator<<");
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71 | PACPUSTOOLS_API std::ostream& operator<<(std::ostream& os, Matrice const& A);
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72 |
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73 | ////////////////////////////////////////////////////////////////////////
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74 | /// @todo Documentation
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75 | class PACPUSTOOLS_API Raf98
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76 | {
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77 | public:
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78 | /// Ctor of Raf98 class.
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79 | Raf98();
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80 |
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81 | /// Dtor of Raf98 class.
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82 | ~Raf98();
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83 |
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84 | /// @todo Documentation
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85 | /// @param s filepath
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86 | bool Load(const std::string& s);
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87 |
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88 | /// @todo Documentation
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89 | /// @param longitude [degrees]
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90 | /// @param latitude [degrees]
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91 | /// @param Hwgs84 Output: interpolated altitude using WGS84 geoid model [meters]
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92 | bool Interpol(double longitude /*deg*/, double latitude /*deg*/, double* Hwgs84) const;
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93 |
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94 | private:
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95 | std::vector<double> m_dvalues;
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96 | double LitGrille(unsigned int c, unsigned int l) const;
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97 | };
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98 |
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99 | ////////////////////////////////////////////////////////////////////////
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100 |
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101 | ////////////////////////////////////////////////////////////////////////
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102 | inline double Deg2Rad(double deg)
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103 | {
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104 | using namespace ::boost::math::constants;
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105 | return deg * pi<double>() / 180.0;
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106 | }
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107 |
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108 | inline double Rad2Deg(double rad)
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109 | {
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110 | using namespace ::boost::math::constants;
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111 | return rad * 180.0 / pi<double>();
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112 | }
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113 |
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114 | ////////////////////////////////////////////////////////////////////////
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115 |
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116 | const double a_Lambert93 = 6378137;
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117 | const double f_Lambert93 = 1 / 298.257222101;
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118 | const double e_Lambert93 = sqrt(f_Lambert93 * (2 - f_Lambert93));
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119 | const double lambda0_Lambert93 = Deg2Rad(3.0); //degres
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120 | const double phi0_Lambert93 = Deg2Rad(46.5);
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121 | const double phi1_Lambert93 = Deg2Rad(44.0);
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122 | const double phi2_Lambert93 = Deg2Rad(49.0); //degres
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123 | const double X0_Lambert93 = 700000; //
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124 | const double Y0_Lambert93 = 6600000; //
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125 | const double n_Lambert93 = 0.7256077650;
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126 | const double c_Lambert93 = 11754255.426;
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127 | const double xs_Lambert93 = 700000;
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128 | const double ys_Lambert93 = 12655612.050;
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129 |
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130 | const double GRS_a = 6378137;
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131 | const double GRS_f = 1 / 298.257222101;
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132 | const double GRS_b = GRS_a * (1 - GRS_f);
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133 | const double GRS_e = sqrt((pow(GRS_a, 2) - pow(GRS_b, 2)) / pow(GRS_a, 2));
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134 |
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135 | ////////////////////////////////////////////////////////////////////////
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136 | PACPUSTOOLS_API void Geographique_2_Lambert93(const Raf98& raf98, double lambda, double phi, double he, Matrice in, double& E, double& N, double& h, Matrice& out);
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137 | PACPUSTOOLS_API void Geographique_2_Lambert93(const Raf98& raf98, double lambda, double phi, double he, double& E, double& N, double& h);
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138 | PACPUSTOOLS_API void Lambert93_2_Geographique(const Raf98& raf98, double E, double N, double h, double& lambda, double& phi, double& he);
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139 | PACPUSTOOLS_API void Lambert93_2_Geographique(const Raf98& raf98, double E, double N, double h, Matrice in, double& lambda, double& phi, double& he, Matrice& out);
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140 | /** Convert from geographique to ECEF.
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141 | * @param[in] longitude Longitude in radian.
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142 | * @param[in] latitude Latitude in radian.
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143 | * @param[in] he Height in meter.
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144 | */
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145 | PACPUSTOOLS_API void Geographique_2_ECEF(double longitude, double latitude, double he, double& x, double& y, double& z);
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146 | /** Convert from ECEF two ENU.
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147 | * @param[in] lon0 Longitude of the origin in radian.
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148 | * @param[in] lat0 Latitude of the origin in radian.
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149 | * @param[in] he0 Height of the origin in radian.
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150 | */
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151 | PACPUSTOOLS_API void ECEF_2_ENU(double x, double y, double z, double& e, double& n, double& u, double lon0, double lat0, double he0);
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152 | ////////////////////////////////////////////////////////////////////////
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153 |
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154 | ///ALGO0001
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155 | /// @todo Rename
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156 | PACPUSTOOLS_API double LatitueIsometrique(double latitude, double e);
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157 | ///ALGO0002
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158 | /// @todo Rename
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159 | PACPUSTOOLS_API double LatitueIsometrique2Lat(double latitude_iso, double e, double epsilon);
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160 |
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161 | ///ALGO0003
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162 | PACPUSTOOLS_API void Geo2ProjLambert(
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163 | double lambda, double phi,
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164 | double n, double c, double e,
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165 | double lambdac, double xs, double ys,
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166 | double& X, double& Y);
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167 | ///ALGO0004
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168 | PACPUSTOOLS_API void Proj2GeoLambert(
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169 | double X, double Y,
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170 | double n, double c, double e,
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171 | double lambdac, double xs, double ys,
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172 | double epsilon,
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173 | double& lambda, double& phi);
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174 |
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175 | PACPUSTOOLS_API double ConvMerApp(double longitude);
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176 |
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177 | /**
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178 | Converts Cartesian (x, y) coordinates to polar coordinates (r, theta)
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179 | */
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180 | template <typename _T1, typename _T2>
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181 | void cartesianToPolar(const _T1 x, const _T1 y, _T2& r, _T2& theta)
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182 | {
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183 | r = std::sqrt(x * x + y * y);
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184 | theta = std::atan2(x, y);
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185 | }
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186 |
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187 | /**
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188 | Converts polar coordinates (r, theta) to Cartesian (x, y) coordinates
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189 | */
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190 | template <typename _T1, typename _T2>
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191 | void polarToCartesian(const _T1 r, const _T1 theta, _T2& x, _T2& y)
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192 | {
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193 | x = r * std::cos(theta);
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194 | y = r * std::sin(theta);
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195 | }
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196 |
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197 | /**
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198 | Converts Cartesian (x, y, z) coordinates to spherical coordinates (r, theta, phi)
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199 | Angles expressed in radians.
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200 | */
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201 | template <typename _T1, typename _T2>
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202 | void cartesianToSpherical(const _T1 x, const _T1 y, const _T1 z, _T2& r, _T2& theta, _T2& phi)
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203 | {
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204 | r = std::sqrt(x * x + y * y + z * z);
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205 | theta = std::acos(z / r);
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206 | phi = std::atan2(y, x);
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207 | }
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208 |
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209 | /**
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210 | Converts spherical coordinates (r, theta, phi) to Cartesian (x, y, z) coordinates.
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211 | Angles expressed in radians.
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212 | */
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213 | template <typename _T1, typename _T2>
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214 | void sphericalToCartesian(const _T1 r, const _T1 theta, const _T1 phi, _T2& x, _T2& y, _T2& z)
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215 | {
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216 | x = r * std::sin(theta) * std::cos(phi);
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217 | y = r * std::sin(theta) * std::sin(phi);
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218 | z = r * std::cos(theta);
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219 | }
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220 |
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221 | PACPUSTOOLS_API QMatrix4x4 yprenuToMatrix(QVector3D angle, QVector3D position);
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222 |
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223 | } // namespace Geodesy
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224 |
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225 | namespace Geodesie
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226 | {
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227 | using namespace Geodesy;
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228 | } // namespace Geodesie
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229 |
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230 | #endif // GEODESIE_H
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