Affiliation:
1. Electrical Engineering Unit, Tampere University, 33720 Tampere, Finland
Abstract
Low Earth Orbit (LEO) constellations have ecently gained tremendous attention in the navigational field due to their arger constellation size, faster geometry variations, and higher signal power evels than Global Navigation Satellite Systems (GNSS), making them favourable for Position, Navigation, and Timing (PNT) purposes. Satellite signals are heavily attenuated from the atmospheric ayers, especially from the ionosphere. Ionospheric delays are, however, expected to be smaller in signals from LEO satellites than GNSS due to their ower orbital altitudes and higher carrier frequency. Nevertheless, unlike for GNSS, there are currently no standardized models for correcting the ionospheric errors in LEO signals. In this paper, we derive a new model called Interpolated and Averaged Memory Model (IAMM) starting from existing International GNSS Service (IGS) data and based on the observation that ionospheric effects epeat every 11 years. Our IAMM model can be used for ionospheric corrections for signals from any satellite constellation, including LEO. This model is constructed based on averaging multiple ionospheric data and eflecting the electron content inside the ionosphere. The IAMM model’s primary advantage is its ability to be used both online and offline without needing eal-time input parameters, thus making it easy to store in a device’s memory. We compare this model with two benchmark models, the Klobuchar and International Reference Ionosphere (IRI) models, by utilizing GNSS measurement data from 24 scenarios acquired in several European countries using both professional GNSS eceivers and Android smartphones. The model’s behaviour is also evaluated on LEO signals using simulated data (as measurement data based on LEO signals are still not available in the open-access community; we show a significant eduction in ionospheric delays in LEO signals compared to GNSS. Finally, we highlight the remaining open challenges toward viable ionospheric-delay models in an LEO-PNT context.
Funder
INdoor navigation from CUBesAT Technology (INCUBATE) project under a grant from the Technology Industries of Finland Centennial Foundation
Jane and Aatos Erkko Foundation
LEDSOL project funded within the LEAP-RE programme by the European Union’s Horizon 2020 Research and Innovation Program
Academy of Finland
APROPOS project funded within the Horizon 2020 Marie Skłodowska-Curie program
Subject
Computer Networks and Communications,Human-Computer Interaction
Reference59 articles.
1. Broadband LEO Constellations for Navigation;Reid;Navigation,2018
2. Revisiting Doppler positioning performance with LEO satellites;Shi;GPS Solut.,2023
3. Kassas, Z.Z.M. (2020). Position, Navigation, and Timing Technologies in the 21st Century, John Wiley & Sons, Ltd.. Chapter 43.
4. Position, Navigation, and Timing (PNT) Through Low Earth Orbit (LEO) Satellites: A Survey on Current Status, Challenges, and Opportunities;Prol;IEEE Access,2022
5. Morales-Ferre, R., Lohan, E.S., Falco, G., and Falletti, E. (2020, January 12–14). GDOP-based analysis of suitability of LEO constellations for future satellite-based positioning. Proceedings of the 2020 IEEE International Conference on Wireless for Space and Extreme Environments (WiSEE), Virtual.
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