Title :
Time-efficient Relaying Strategies for Military Communication
Author :
Bajaj, Ian ; Yi Gong ; Hui Lee Yee
Author_Institution :
Sch. of Electr. & Electron. Eng., Nanyang Technol. Univ., Singapore, Singapore
Abstract :
Military communication relies on robust and secure physical links that adhere to regulatory protocols and standards for communication. In unfamiliar terrain or hostile conditions these physical links can undergo deep-fading or intentional signal jamming, deteriorating the ongoing communication. Traditional retransmission technology or power adaptation would not be applicable to correct the outages seen in such scenarios, and often relays have been sought out as the solution. However given the exigency related to in-battle military communications, the latency with relaying cannot be tolerated and designing a scheme that is time-efficient is crucial. To this end, we discuss a practical approach to establishing bi-directional communication via a support node that acts a partial relay to the stranded military units, while maintaining its ongoing communication. This is possible through the use of a broadcast spatial multiplexing protocol implemented through space-time block coding at the relay. Our simulation results show us improved BER (bit-error rate) performance than the perfect direct link for high-SNR (signal-to-noise ratio) regimes, and comparable performance across the spectrum. We also demonstrate that our scheme is impervious to power a synchronicities between the stranded military nodes.
Keywords :
broadcast communication; error statistics; fading; jamming; military communication; multiplexing; protocols; relay networks (telecommunication); space-time block codes; BER; SNR; bi-directional communication; bit-error rate; broadcast spatial multiplexing protocol; in-battle military communications; intentional signal jamming; power adaptation; regulatory protocols; retransmission technology; secure physical links; signal-to-noise ratio; space-time block coding; stranded military nodes; time-efficient relaying strategies; Bidirectional control; Bit error rate; Distributed Bragg reflectors; Military communication; Protocols; Relays; Signal to noise ratio; Physical-layer network coding; deep fading; military communication; relaying; space-time block coding;
Conference_Titel :
Military Communications Conference (MILCOM), 2014 IEEE
Conference_Location :
Baltimore, MD
DOI :
10.1109/MILCOM.2014.92