DocumentCode
1398857
Title
Gibbs-Sampler-Based Semiblind Equalizer in Underwater Acoustic Communications
Author
Jun Ling ; Jian Li
Author_Institution
MathWorks Inc., Natick, MA, USA
Volume
37
Issue
1
fYear
2012
Firstpage
1
Lastpage
13
Abstract
The acoustic communication channel is frequency selective with long memory, leading to severe intersymbol interference (ISI). To mitigate ISI, equalizer becomes an indispensable module in the receiver structure. However, the time-varying nature of the underwater acoustic environment imposes unique challenges to the design of an effective equalizer. First, the equalization process needs to be performed on a block basis and the block length could be short. Second, concerning that the dynamic acoustic medium makes the newly acquired channel information readily outdated, it is desirable that the equalizer performance is robust against the inaccuracy of the channel information when the transmission scheme involves cross-block reference. In this paper, we consider a statistical semiblind equalizer implemented by the Gibbs sampler techniques. The proposed equalizer con- ducts channel estimation and symbol detection in a joint manner, and it is robust to the accuracy of the channel information. The effectiveness of the proposed semiblind equalizer is demonstrated using both simulated and the 2008 Surface Processes and Communications Experiment (SPACE08, Martha´s Vineyard, MA) in-water experimentation examples.
Keywords
channel estimation; intersymbol interference; signal sampling; statistical analysis; underwater acoustic communication; Gibbs-sampler-based semiblind equalizer; acoustic communication channel equalizer performance; acoustic medium; channel estimation; channel information; intersymbol interference; receiver structure; statistical semiblind equalizer; time-varying nature; transmission scheme; underwater acoustic communication; Channel estimation; Equalizers; OFDM; Payloads; Training; Underwater acoustics; Vectors; Channel estimation; Gibbs-sampler-based semiblind equalizer; symbol detection; two-step equalizer; underwater acoustic communications;
fLanguage
English
Journal_Title
Oceanic Engineering, IEEE Journal of
Publisher
ieee
ISSN
0364-9059
Type
jour
DOI
10.1109/JOE.2011.2171132
Filename
6104190
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