mirror of
https://github.com/SatDump/SatDump
synced 2026-08-13 17:47:30 -04:00
374 lines
12 KiB
C++
374 lines
12 KiB
C++
#include "tracking_widget.h"
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#include "common/tracking/tle.h"
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#include "common/utils.h"
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#include "logger.h"
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#include <cfloat>
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namespace satdump
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{
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void TrackingWidget::backend_run()
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{
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while (backend_should_run)
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{
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std::this_thread::sleep_for(std::chrono::milliseconds(50));
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if (!has_tle)
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continue;
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tle_update_mutex.lock();
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if (horizons_mode)
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{
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if (getTime() > last_horizons_fetch_time + 3600)
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{
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loadHorizons();
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updateNextPass();
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}
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if (horizons_data.size() > 0)
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{
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double timed = getTime();
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int iter = 0;
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for (int i = 0; i < (int)horizons_data.size(); i++)
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if (horizons_data[i].timestamp < timed)
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iter = i;
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if (getTime() > next_los_time)
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updateNextPass();
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current_az = horizons_data[iter].az;
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current_el = horizons_data[iter].el;
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}
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}
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else
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{
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if (satellite_object != nullptr)
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{
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predict_orbit(satellite_object, &satellite_orbit, predict_to_julian_double(getTime()));
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predict_observe_orbit(observer_station, &satellite_orbit, &observation_pos);
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if (getTime() > next_los_time)
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updateNextPass();
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current_az = observation_pos.azimuth * RAD_TO_DEG;
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current_el = observation_pos.elevation * RAD_TO_DEG;
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}
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}
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// Update
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if (backend_needs_update)
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{
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logger->trace("Updating elements...");
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if (horizons_mode)
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{
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loadHorizons();
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updateNextPass();
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}
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else
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{
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if (satellite_object != nullptr)
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predict_destroy_orbital_elements(satellite_object);
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auto &tle = general_tle_registry[current_satellite];
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satellite_object = predict_parse_tle(tle.line1.c_str(), tle.line2.c_str());
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updateNextPass();
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}
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backend_needs_update = false;
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}
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processAutotrack();
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tle_update_mutex.unlock();
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}
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}
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void TrackingWidget::updateNextPass()
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{
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logger->trace("Update pass trajectory...");
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upcoming_pass_points.clear();
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next_aos_time = 0;
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next_los_time = 0;
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if (horizons_mode)
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{
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if (horizons_data.size() == 0)
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return;
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upcoming_passes_mtx.lock();
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double timed = getTime();
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int iter = 0;
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for (int i = 0; i < (int)horizons_data.size(); i++)
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if (horizons_data[i].timestamp < timed)
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iter = i;
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if (horizons_data[iter].el > 0) // Already got AOS
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{
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next_aos_time = timed;
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for (int i = iter - 1; i >= 0; i--) // Attempt to find previous AOS
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{
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if (horizons_data[i].el <= 0)
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{
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next_aos_time = horizons_data[i].timestamp;
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next_aos_az = horizons_data[i].az;
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next_aos_el = horizons_data[i].el;
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break;
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}
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}
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for (int i = iter; i < (int)horizons_data.size(); i++) // Find LOS
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{
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if (horizons_data[i].el <= 0)
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{
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next_los_time = horizons_data[i].timestamp;
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break;
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}
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}
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}
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else
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{
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int aos_iter = 0;
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for (int i = iter; i < (int)horizons_data.size(); i++) // Find AOS
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{
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if (horizons_data[i].el > 0)
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{
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next_aos_time = horizons_data[i].timestamp;
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next_aos_az = horizons_data[i].az;
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next_aos_el = horizons_data[i].el;
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aos_iter = i;
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break;
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}
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}
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if (next_aos_time != 0)
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{
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for (int i = aos_iter; i < (int)horizons_data.size(); i++) // Find LOS
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{
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if (horizons_data[i].el <= 0)
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{
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next_los_time = horizons_data[i].timestamp;
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break;
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}
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}
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}
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}
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if (next_aos_time != 0 && next_los_time != 0)
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{
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double time_step = abs(next_los_time - next_aos_time) / 50.0;
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for (double ctime = next_aos_time; ctime <= next_los_time; ctime += time_step)
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{
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int iter = 0;
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for (int i = 0; i < (int)horizons_data.size(); i++)
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if (horizons_data[i].timestamp < ctime)
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iter = i;
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upcoming_pass_points.push_back({horizons_data[iter].az, horizons_data[iter].el});
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}
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}
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upcoming_passes_mtx.unlock();
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}
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else
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{
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if (predict_is_geosynchronous(satellite_object))
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{
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next_aos_time = 0;
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next_los_time = DBL_MAX;
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return;
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}
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upcoming_passes_mtx.lock();
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// Get next LOS
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predict_observation next_aos, next_los;
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next_aos = next_los = predict_next_los(observer_station, satellite_object, predict_to_julian_double(getTime()));
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// Calculate the AOS before that LOS
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next_aos_time = next_los_time = predict_from_julian(next_los.time);
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do
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{
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next_aos = predict_next_aos(observer_station, satellite_object, predict_to_julian_double(next_aos_time));
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next_aos_time -= 10;
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} while (predict_from_julian(next_aos.time) >= next_los_time);
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next_los_time = predict_from_julian(next_los.time);
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next_aos_time = predict_from_julian(next_aos.time);
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next_aos_az = next_aos.azimuth * RAD_TO_DEG;
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next_aos_el = next_aos.elevation * RAD_TO_DEG;
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// Calculate a few points during the pass
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predict_position satellite_orbit2;
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predict_observation observation_pos2;
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double time_step = abs(next_los_time - next_aos_time) / 50.0;
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for (double ctime = next_aos_time; ctime <= next_los_time; ctime += time_step)
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{
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predict_orbit(satellite_object, &satellite_orbit2, predict_to_julian_double(ctime));
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predict_observe_orbit(observer_station, &satellite_orbit2, &observation_pos2);
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upcoming_pass_points.push_back({observation_pos2.azimuth * RAD_TO_DEG, observation_pos2.elevation * RAD_TO_DEG});
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}
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upcoming_passes_mtx.unlock();
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}
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}
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void TrackingWidget::loadHorizons()
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{
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logger->trace("Pulling Horizons data...");
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double curr_time = getTime();
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double start_time = curr_time - 24 * 3600;
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double stop_time = curr_time + 24 * 3600;
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auto hdata = pullHorizonsData(start_time, stop_time, 8640);
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if (hdata.size() > 0)
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{
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horizons_data = hdata;
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last_horizons_fetch_time = curr_time;
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logger->trace("Done pulling Horizons data...");
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}
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else
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logger->trace("Pulled 0 Horizons objects!");
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}
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std::vector<TrackingWidget::HorizonsV> TrackingWidget::pullHorizonsData(double start_time, double stop_time, int num_points)
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{
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std::vector<HorizonsV> hdata;
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std::string cmd = (std::string) "https://ssd.jpl.nasa.gov/api/horizons.api?format=text" +
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"&OBJ_DATA=NO" +
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"&MAKE_EPHEM=YES" +
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"&COMMAND=" + std::to_string(horizonsoptions[current_horizons].first) +
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"&CAL_FORMAT=JD" +
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"&EPHEM_TYPE=OBSERVER" +
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"&CENTER='coord@399'" +
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"&COORD_TYPE=GEODETIC" +
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"&SITE_COORD='" + (qth_lon >= 0 ? "+" : "") + std::to_string(qth_lon) + "," +
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(qth_lat >= 0 ? "+" : "") + std::to_string(qth_lat) + "," +
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std::to_string(qth_alt / 1e3) + "'" +
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"&START_TIME='JD " + std::to_string((start_time / 86400.0) + 2440587.5) + "'" +
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"&STOP_TIME='JD " + std::to_string((stop_time / 86400.0) + 2440587.5) + "'" +
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"&STEP_SIZE='" + std::to_string(num_points) + "'" + // 86400
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"&QUANTITIES='4,20'";
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std::string req_result;
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int err = perform_http_request(cmd, req_result);
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if (err != 0)
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{
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logger->error("Could not fetch data from Horizons!");
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return hdata;
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}
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std::istringstream req_results(req_result);
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std::string line;
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bool fount_soe = false;
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bool fount_eoe = false;
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while (getline(req_results, line))
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{
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if (!fount_soe)
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{
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if (line.find("$$SOE") != std::string::npos)
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fount_soe = true;
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continue;
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}
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if (fount_eoe)
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{
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continue;
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}
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else
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{
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if (line.find("$$EOE") != std::string::npos)
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fount_eoe = true;
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}
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double julian_time = 0;
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double az = 0;
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double el = 0;
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double delta = 0;
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double deldot = 0;
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double unk = 0;
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if (sscanf(line.c_str(), "%lf%*s %lf %lf %lf %lf %lf",
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&julian_time, &az, &el, &delta, &deldot, &unk) == 6 ||
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sscanf(line.c_str(), "%lf %*s %lf %lf %lf %lf %lf",
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&julian_time, &az, &el, &delta, &deldot) == 5 ||
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sscanf(line.c_str(), "%lf %lf %lf %lf %lf %lf",
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&julian_time, &az, &el, &delta, &deldot, &unk) == 6)
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{
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double ctime = (julian_time - 2440587.5) * 86400.0;
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// logger->info("%s %f %f", timestamp_to_string(ctime).c_str(), az, el);
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hdata.push_back({ctime, (float)az, (float)el});
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}
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}
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return hdata;
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}
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std::vector<std::pair<int, std::string>> TrackingWidget::pullHorizonsList()
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{
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std::vector<std::pair<int, std::string>> vv;
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logger->trace("Pulling object list from Horizons...");
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std::string url = "https://ssd.jpl.nasa.gov/api/horizons.api?format=text&COMMAND='*'";
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std::string req_result;
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perform_http_request(url, req_result);
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std::istringstream req_results(req_result);
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std::string line;
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bool got_start = false;
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while (getline(req_results, line))
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{
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if (line.find(" ------- ---------------------------------- ----------- ------------------- ") != std::string::npos)
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{
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got_start = true;
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continue;
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}
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if (!got_start)
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continue;
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try
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{
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std::string numid = line.substr(0, 9);
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std::string name = line.substr(11, 35);
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std::string desig = line.substr(45, 13);
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std::string iauo = line.substr(59, 21);
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int id = std::stoi(numid);
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bool is_valid = false;
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for (auto &c : name)
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if (c != ' ')
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is_valid = true;
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if (is_valid && name.find("simulation") == std::string::npos)
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vv.push_back({id, name});
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}
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catch (std::exception&)
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{
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}
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}
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if (vv.size() > 0)
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return vv;
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else
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return horizonsoptions;
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}
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}
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