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ADD: model3DoF prototype
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@ -44,19 +44,19 @@ bool Vtl_Engine::vtl_loop(Vtl_Data& new_data)
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static arma::mat kf_dx = arma::zeros(n_of_states, 1);
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// covariances (static)
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kf_R = arma::zeros(2 * new_data.sat_number, 2 * new_data.sat_number);
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kf_R = arma::zeros(3 * new_data.sat_number, 3 * new_data.sat_number);
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double kf_dt = delta_t_vtl; //0.05;
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kf_Q = arma::eye(n_of_states, n_of_states);
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kf_F = arma::eye(n_of_states, n_of_states);
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bool test = kf_F_fill(kf_F,kf_dt);
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//kf_H = arma::zeros(2 * new_data.sat_number, n_of_states);
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kf_y = arma::zeros(2 * new_data.sat_number, 1);
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kf_yerr = arma::zeros(2 * new_data.sat_number, 1);
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//kf_H = arma::zeros(3 * new_data.sat_number, n_of_states);
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kf_y = arma::zeros(3 * new_data.sat_number, 1);
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kf_yerr = arma::zeros(3 * new_data.sat_number, 1);
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kf_xerr = arma::zeros(n_of_states, 1);
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kf_S = arma::zeros(2 * new_data.sat_number, 2 * new_data.sat_number); // kf_P_y innovation covariance matrix
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kf_K = arma::zeros(n_of_states, 2 * new_data.sat_number); ;
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kf_S = arma::zeros(3 * new_data.sat_number, 3 * new_data.sat_number); // kf_P_y innovation covariance matrix
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kf_K = arma::zeros(n_of_states, 3 * new_data.sat_number); ;
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// ################## Kalman Tracking ######################################
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static uint32_t counter = 0; //counter
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counter = counter + 1; //uint64_t
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@ -85,9 +85,16 @@ bool Vtl_Engine::vtl_loop(Vtl_Data& new_data)
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else
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{
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// receiver solution from previous KF step
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kf_x(6) = (kf_x(6)-kf_dx(6))/kf_dt;
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kf_x(7) = (kf_x(7)-kf_dx(7))/kf_dt;
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kf_x(8) = (kf_x(8)-kf_dx(8))/kf_dt;
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double acc_x = 0;
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double acc_y = 0;
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double acc_z = 0;
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test = model3DoF(acc_x,acc_x,acc_x,kf_x,kf_dt);
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kf_x(6) = acc_x;
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kf_x(7) = acc_y;
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kf_x(8) = acc_z;
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// kf_x(6) = (kf_x(6)-kf_dx(6))/kf_dt;
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// kf_x(7) = (kf_x(7)-kf_dx(7))/kf_dt;
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// kf_x(8) = (kf_x(8)-kf_dx(8))/kf_dt;
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}
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// State error Covariance Matrix Q (PVT)
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@ -98,11 +105,11 @@ bool Vtl_Engine::vtl_loop(Vtl_Data& new_data)
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kf_Q(3, 3) = 8.0;
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kf_Q(4, 4) = 8.0;
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kf_Q(5, 5) = 8.0;
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kf_Q(6, 6) = 10;
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kf_Q(7, 7) = 10;
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kf_Q(8, 8) = 10;
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kf_Q(6, 6) = .10;
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kf_Q(7, 7) = .10;
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kf_Q(8, 8) = .10;
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kf_Q(9, 9) = 4.0;
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kf_Q(10, 10) = 100.0;
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kf_Q(10, 10) = 10.0;
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// Measurement error Covariance Matrix R assembling
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for (int32_t i = 0; i < new_data.sat_number; i++)
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@ -110,10 +117,12 @@ bool Vtl_Engine::vtl_loop(Vtl_Data& new_data)
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// It is diagonal 2*NSatellite x 2*NSatellite (NSat psudorange error;NSat pseudo range rate error)
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kf_R(i, i) = 80.0;//*50.0/new_data.sat_CN0_dB_hz(i); //TODO: fill with real values.
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kf_R(i + new_data.sat_number, i + new_data.sat_number) = 20.0;//*50.0/new_data.sat_CN0_dB_hz(i);
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kf_R(i + 2*new_data.sat_number, i + 2*new_data.sat_number) = 100.0;//*50.0/new_data.sat_CN0_dB_hz(i);
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if(80.0*50.0/new_data.sat_CN0_dB_hz(i)>90||20.0*50.0/new_data.sat_CN0_dB_hz(i)>25){
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kf_R(i, i) = 10e4;
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kf_R(i + new_data.sat_number, i + new_data.sat_number) = 10e4;
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kf_R(i + 2*new_data.sat_number, i + 2*new_data.sat_number) = 10e4;
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cout<<"channel: "<<i<<"discarded"<<endl;
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}
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}
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@ -321,3 +330,8 @@ bool Vtl_Engine::kf_measurements(arma::mat &kf_yerr, int sat_number, arma::mat r
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}
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return -1;
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}
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bool Vtl_Engine::model3DoF(double acc_x,double acc_y,double acc_z,arma::mat kf_x,double kf_dt)
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{
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return -1;
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}
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@ -88,6 +88,7 @@ private:
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bool kf_F_fill(arma::mat &kf_F,double kf_dt); // System Matrix constructor
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bool obsv_calc(arma::mat &rho_pri,arma::mat &rhoDot_pri,arma::colvec &ax, arma::colvec &ay, arma::colvec &az,int sat_number,arma::mat sat_p,arma::mat sat_v,arma::mat kf_x); // Observables calculation
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bool kf_measurements(arma::mat &kf_yerr, int sat_number, arma::mat rho_pri, arma::mat rhoDot_pri, arma::colvec pr_m, arma::colvec doppler_hz, arma::mat kf_x);
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bool model3DoF(double acc_x,double acc_y,double acc_z,arma::mat kf_x,double kf_dt);
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};
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/** \} */
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