Diversity Combining Scheme for Time-Varying STBC NGSO Multi-Satellite Systems

Current trends in non-geostationary orbit (NGSO) satellite communications pose the challenge of attaining high spectral efficiency with low-complexity user terminals (UTs). In this context, this letter investigates the downlink/forward transmission of linear space-time block coded (STBC) signals thr...

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Veröffentlicht in:IEEE communications letters 2024-04, Vol.28 (4), p.882-886
Hauptverfasser: Singh, Vibhum, Eappen, Geoffrey, Martins, Wallace A., Palisetty, Rakesh, Rojas, Carlos Luis Marcos, Gonzalez-Rios, Jorge Luis, Vasquez-Peralvo, Juan A., Krivochiza, Jevgenij, Merlano-Duncan, Juan Carlos, Socarras, Luis Garces, Chatzinotas, Symeon, Ottersten, Bjorn
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Sprache:eng
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Zusammenfassung:Current trends in non-geostationary orbit (NGSO) satellite communications pose the challenge of attaining high spectral efficiency with low-complexity user terminals (UTs). In this context, this letter investigates the downlink/forward transmission of linear space-time block coded (STBC) signals through multiple geographically distributed NGSO satellites. As such, by combining the signals through multiple satellites, STBC provides a diversity advantage, which helps in combating the adverse effects of fading and interference at the UT. The main challenge of implementing such a scheme is the lack of time synchronization and the interference effect through a multi-satellite system toward the UT. To address this issue, we propose a digital receiver structure with multiple branches specifically designed to lock onto each satellite of the multi-satellite system, thus providing a solution for simple UT without requiring additional complexity in terms of radio-frequency components. Herein, we consider the zero-forcing (ZF) based diversity combining scheme while deriving the signal-to-interference-plus-noise ratio (SINR) expression at UT. Our results demonstrate the SINR improvement brought by the ZF combiner.
ISSN:1089-7798
1558-2558
DOI:10.1109/LCOMM.2024.3359329