Initial Positioning Results with Decoded Iridium NEXT Signals Using a TDOA Approach
Первые результаты позиционирования с использованием декодированных сигналов Iridium NEXT методом TDOA
2025-04-08
SCID: 54.1/s5hun375
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GNSS-denied navigationIridium NEXTextended Kalman filterleast mean squarestime difference of arrival
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Abstract (AI)
Global navigation satellite systems (GNSS) are essential for modern navigation, but face limitations in environments where signals are obstructed, jammed or spoofed. With the aim of overcoming these challenges, this paper presents an innovative navigation framework using low Earth orbit (LEO) Iridium NEXT satellites as signals of opportunity. The proposed system exploits Iridium ring alert messages, which are transmitted every 90 ms at 1626.270 MHz, and uses the time difference of arrival technique with least mean squares to determine the receiver position. An extended Kalman filter is integrated to improve the accuracy by predicting the receiver state and refining estimates using satellite data. Experimental results from a 15-minute static test using signals from six Iridium satellites indicated two-dimensional positioning accuracy with a root mean square error of 31.66 m. These results highlight the potential of the framework as a robust alternative or backup for a GNSS in environments such as urban canyons, indoor environments, and remote areas. Future developments will aim to integrate Iridium signals of opportunity with other LEO constellations, such as Orbcomm, Starlink and OneWeb, to further improve accuracy, resilience and coverage, which will represent a significant step forward in reliable navigation solutions.significant step forward in reliable navigation solutions.
Key Findings
1
A 15-minute static experiment using six Iridium satellites achieved two-dimensional positioning with a 31.66 m root mean square error.
2
A navigation framework uses decoded Iridium NEXT low-Earth-orbit signals of opportunity to address GNSS obstruction, jamming, and spoofing limitations.
3
Least mean squares estimates receiver position from arrival-time differences, while an extended Kalman filter predicts receiver state and refines estimates using satellite data.
4
The results indicate potential for Iridium-based positioning as a GNSS alternative or backup in urban canyons, indoor environments, and remote areas.
5
The system exploits Iridium ring alert messages transmitted every 90 ms at 1626.270 MHz for time-difference-of-arrival positioning.
Research Object
LEO Iridium NEXT satellite signals used as signals of opportunity for receiver navigation
Research Subject
TDOA-based two-dimensional positioning accuracy and robustness, enhanced by least mean squares estimation and an extended Kalman filter, under GNSS-obstructed, jammed, or spoofed conditions
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2025-04-08
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