Title :
Covert underwater acoustic communications: Transceiver structures, waveform designs and associated performances
Author :
Ling, Jun ; He, Hao ; Li, Jian ; Roberts, William ; Stoica, Petre
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Florida, Gainesville, FL, USA
Abstract :
Covert communications are conducted at a low received signal-to-noise ratio (SNR) to prevent interception or detection by an eavesdropper, and successful detection in this particular area heavily relies on the processing gain achieved by employing the direct-sequence spread-spectrum (DSSS) technique. If covert communications take place in underwater acoustic (UWA) environments, then additional challenges are present. UWA channels are time-varying in nature, which could preclude an accurate channel estimation at low SNR. Furthermore, UWA environments are frequency-selective with long-memory channels, which imposes challenges to the design of the spreading waveform. In this paper, we investigate covert UWA communications from a noncoherent perspective. Two modulation schemes are addressed, namely, binary orthogonal modulation and binary differential phase-shift keying (DPSK). Both schemes are coupled with the DSSS technique and a RAKE receiver. The employed spreading waveforms not only account for the transceiver structure and frequency-selective nature of the UWA channel, but also serve to protect the privacy of the transmitted information. The effectiveness of the proposed methods is verified by numerical examples.
Keywords :
channel estimation; differential phase shift keying; radio receivers; spread spectrum communication; time-varying channels; transceivers; underwater acoustic communication; waveform analysis; DSSS technique; RAKE receiver; UWA channels; binary differential phase shift keying; binary orthogonal modulation; channel estimation; direct sequence spread spectrum; eavesdropper; frequency selective channels; signal-to-noise ratio; time-varying channels; transceiver structures; underwater acoustic communication; waveform designs; Correlation; Differential phase shift keying; Fading; Interference; Signal to noise ratio; Spread spectrum communication;
Conference_Titel :
OCEANS 2010
Conference_Location :
Seattle, WA
Print_ISBN :
978-1-4244-4332-1
DOI :
10.1109/OCEANS.2010.5663840