This study focuses on the innovative field of quantum synchronization for satellite-based navigation systems including Global Navigation Satellite Systems (GNSSs) and the Non-Terrestrial Network (NTN) component of future 6G networks integrating both communication and navigation services. By combining a four-qubit system with the theoretical approach of the Lindblad master equation, we transcend the inherent limits of standard synchronization techniques. This achievement represents a quantum leap in satellite-based positioning, highlighting the scalability and cost-effectiveness of our technique for smaller satellites. The study demonstrates the possibility of reducing synchronization errors to less than one meter, significantly improving the reliability and precision of satellite-based navigation systems. The results of this study may contribute to the future development of both user-centric localization systems (typically GNSS systems) and network-centric localization systems (typically through the NTN component of 6G networks), leading to better positioning performance, more flexible multi-functional systems with the potential to limit both cost and size of satellites.

Shekhar Nande, S., Rossi, T., Idham Habibie, M., Barhoumi, M., Palaparthy, K., Mansouri, W., et al. (2024). Satellite-based positioning enhanced by quantum synchronization. COMPUTER NETWORKS, 254 [10.1016/j.comnet.2024.110734].

Satellite-based positioning enhanced by quantum synchronization

Tommaso Rossi;Ernestina Cianca;Mauro De Sanctis
2024-01-01

Abstract

This study focuses on the innovative field of quantum synchronization for satellite-based navigation systems including Global Navigation Satellite Systems (GNSSs) and the Non-Terrestrial Network (NTN) component of future 6G networks integrating both communication and navigation services. By combining a four-qubit system with the theoretical approach of the Lindblad master equation, we transcend the inherent limits of standard synchronization techniques. This achievement represents a quantum leap in satellite-based positioning, highlighting the scalability and cost-effectiveness of our technique for smaller satellites. The study demonstrates the possibility of reducing synchronization errors to less than one meter, significantly improving the reliability and precision of satellite-based navigation systems. The results of this study may contribute to the future development of both user-centric localization systems (typically GNSS systems) and network-centric localization systems (typically through the NTN component of 6G networks), leading to better positioning performance, more flexible multi-functional systems with the potential to limit both cost and size of satellites.
2024
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore ING-INF/03
Settore IINF-03/A - Telecomunicazioni
English
Con Impact Factor ISI
Localization; Optical lattice clock; Quantum communication networks; Quantum synchronization; Satellite communication; Time synchronization; Time-sensitive networking
Shekhar Nande, S., Rossi, T., Idham Habibie, M., Barhoumi, M., Palaparthy, K., Mansouri, W., et al. (2024). Satellite-based positioning enhanced by quantum synchronization. COMPUTER NETWORKS, 254 [10.1016/j.comnet.2024.110734].
Shekhar Nande, S; Rossi, T; Idham Habibie, M; Barhoumi, M; Palaparthy, K; Mansouri, W; Raju, A; Bassoli, R; Cianca, E; Fitzek, Fhp; DE SANCTIS, M...espandi
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/399510
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