DocumentCode :
1368111
Title :
Passive Time Reversal Acoustic Communications Through Shallow-Water Internal Waves
Author :
Song, Aijun ; Badiey, Mohsen ; Newhall, Arthur E. ; Lynch, James F. ; DeFerrari, Harry A. ; Katsnelson, Boris G.
Author_Institution :
Coll. of Earth, Ocean, & Environ., Univ. of Delaware, Newark, DE, USA
Volume :
35
Issue :
4
fYear :
2010
Firstpage :
756
Lastpage :
765
Abstract :
During a 12-h period in the 2006 Shallow Water Experiment (SW06), binary phase shift keying (BPSK) signals at the carrier frequencies of 813 and 1627 Hz were propagated over a 19.8-km source-receiver range when a packet of strong internal waves passed through the acoustic track. The communication data are analyzed by time reversal processing followed by a single-channel decision feedback equalizer. Two types of internal wave effects are investigated in the context of acoustic communications. One is the rapid channel fluctuation within 90-s data packets. It can be characterized as decreased channel coherence, which was the result of fast sound-speed perturbations during the internal wave passage. We show its effect on the time reversal receiver performance and apply channel tracking in the receiver to counteract such fluctuation. The other one is the long-term (in the scale of hours) performance degradation in the depressed waveguide when the internal waves passed through the acoustic track. Even with channel tracking, the time reversal receiver experiences average 3-4-dB decrease in the output signal-to-noise ratio (SNR). Such long-term performance degradation is explained by the ray approximation in the depressed waveguide.
Keywords :
approximation theory; decision feedback equalisers; phase shift keying; underwater acoustic communication; waveguides; BPSK; SNR; acoustic track; binary phase shift keying signal; channel coherence; channel tracking; depressed waveguide; distance 19.8 km; frequency 1627 Hz; frequency 813 Hz; long-term performance degradation; passive time reversal acoustic communications; ray approximation; shallow-water internal waves; signal-to-noise ratio; single-channel decision feedback equalizer; sound-speed perturbations; source-receiver; time 12 h; time 90 s; time reversal processing; time reversal receiver performance; Acoustics; Channel estimation; Coherence; Decision feedback equalizers; Feedback; Radar tracking; Receivers; Acoustic communications; decision feedback equalizers; internal waves; time reversal processing;
fLanguage :
English
Journal_Title :
Oceanic Engineering, IEEE Journal of
Publisher :
ieee
ISSN :
0364-9059
Type :
jour
DOI :
10.1109/JOE.2010.2060530
Filename :
5618583
Link To Document :
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