DocumentCode
2885944
Title
A super-nyquist architecture for reliable underwater acoustic communication
Author
Erez, Uri ; Wornell, Gregory
Author_Institution
Tel Aviv Univ., Ramat Aviv, Israel
fYear
2011
fDate
28-30 Sept. 2011
Firstpage
469
Lastpage
476
Abstract
A natural joint physical and link layer transmission architecture is developed for communication over underwater acoustic channels, based on the concept of super-Nyquist (SNQ) signaling. In such systems, the signaling rate is chosen significantly higher than the Nyquist rate of the system. We show that such signaling can be used in conjunction with good "off- the-shelf" base codes, simple linear redundancy, and minimum mean-square error decision feedback equalization (MMSE-DFE) to produce highly efficient, low complexity rateless (i.e., "fountain") codes for the severe time-varying intersymbol-interference channels typical of this application. We show that not only can SNQ rateless codes approach capacity arbitrarily closely, but even particularly simple SNQ-based rateless codes require the transmission of dramatically fewer packets than does traditional ARQ with Chase combining.
Keywords
codes; decision feedback equalisers; intersymbol interference; least mean squares methods; telecommunication network reliability; telecommunication signalling; time-varying channels; underwater acoustic communication; ARQ; Chase combining; MMSE-DFE; SNQ signaling; linear redundancy; link layer transmission; minimum mean-square error decision feedback equalization; off-the-shelf base codes; physical layer transmission; rateless codes; superNyquist architecture; time-varying intersymbol-interference channels; underwater acoustic channels; underwater acoustic communication reliability; Decision feedback equalizers; Encoding; Modulation; Mutual information; Receivers; Signal to noise ratio; Transmitters;
fLanguage
English
Publisher
ieee
Conference_Titel
Communication, Control, and Computing (Allerton), 2011 49th Annual Allerton Conference on
Conference_Location
Monticello, IL
Print_ISBN
978-1-4577-1817-5
Type
conf
DOI
10.1109/Allerton.2011.6120204
Filename
6120204
Link To Document