Title :
Long-Range Double-Differentially Coded Spread-Spectrum Acoustic Communications With a Towed Array
Author :
Zhiqiang Liu ; Kwang Yoo ; Yang, T.C. ; Cho, Steve E. ; Song, H.C. ; Ensberg, David E.
Author_Institution :
Naval Res. Lab., Washington, DC, USA
Abstract :
This paper presents a novel double-differentially coded spread-spectrum (DD-SS) system design for long-range acoustic communications (LRAC) between a moving source and a towed horizontal line array (HLA). The proposed design relies on two techniques that have been historically developed for radio-frequency terrestrial wireless communications, namely, direct sequence spread spectrum and double-differential coding. In DD-SS, direct sequence spread spectrum is employed to: 1) increase the signal-to-noise ratio; 2) suppress multipath interference; and 3) support data multiplexing, while double-differential coding makes reliable symbol recovery possible without explicit phase and Doppler tracking/correction. Thanks to the two techniques together with traditional beamforming, the DD-SS system is shown capable of effectively dealing with many challenging issues posed by LRAC with a towed HLA, without using complicated receiver processing. During the 2010 Long-Range Acoustic Communication Experiment (LRAC10) in deep waters, the DD-SS system was tested by using a moving source at a speed of 2-3 kn at 75-m depth and a 64-element HLA towed at 3.5 kn at a depth of 200 m. Excellent uncoded error performance (less than 4% bit error rate) is demonstrated at a data rate of 6.4 b/s for a bandwidth of 200 Hz and at a range of 550 km.
Keywords :
acoustic arrays; acoustic signal processing; array signal processing; encoding; interference suppression; spread spectrum communication; underwater acoustic communication; DD-SS system design; LRAC; LRAC10; bandwidth 200 Hz; beamforming; bit rate 6.4 bit/s; complicated receiver processing; data multiplexing; depth 200 m; depth 75 km; direct sequence spread spectrum; distance 550 km; double-differential coding; long-range acoustic communication experiment; long-range double-differentially coded spread-spectrum acoustic communications; moving source; multipath interference suppression; radio-frequency terrestrial wireless communications; signal-to-noise ratio; symbol recovery; towed horizontal line array; underwater acoustic communications; Acoustics; Arrays; Encoding; Marine vehicles; Mobile communication; Multiplexing; Receivers; Direct sequence spread spectrum; double-differential coding; long-range acoustic communications (LRAC); towed line array; underwater acoustic communications;
Journal_Title :
Oceanic Engineering, IEEE Journal of
DOI :
10.1109/JOE.2013.2264994