DocumentCode
1554576
Title
Performances of multi-element multi-user detection strategies in a shallow-water acoustic network (SWAN)
Author
Yeo, Hong Kwang ; Sharif, Bayan S. ; Adams, Alan E. ; Hinton, Oliver R.
Author_Institution
Dept. of Electr. & Electron. Eng., Newcastle upon Tyne Univ., UK
Volume
26
Issue
4
fYear
2001
fDate
10/1/2001 12:00:00 AM
Firstpage
604
Lastpage
611
Abstract
A multi-element receiver strategy is proposed in this paper for a multi-user shallow-water acoustic network (SWAN). The base station receiver, equipped with prior knowledge of the synchronization and training sequences of all intended users, has the task of demodulating the received signals of each user independent of the presence of other users. The adopted receiver strategy enables robust communications through the challenging underwater environment which is limited by both environmental and system factors. The channel is characterized by inter-symbol interference due to multipath propagation and multiple access interference. In this paper, we propose a number of multi-user detection receiver structures employing adaptive decision feedback equalization and spatial diversity to mitigate the effect of these two types of interference. Computer simulations and experimental sea trials conducted in the North Sea in 1999 were used to test the receiver strategies´ performance for a two user near far scenario. Amongst a number of strategies tested, the structure based on recursive successive interference cancellation demonstrated improved performance overall
Keywords
acoustic signal detection; adaptive equalisers; decision feedback equalisers; digital communication; diversity reception; error statistics; interference suppression; intersymbol interference; multi-access systems; multiuser channels; receivers; underwater acoustic communication; BER; ISI; MAI cancellation; North Sea trials; SWAN; adaptive decision feedback equalization; base station receiver; bit error rate; demodulating; intersymbol interference; multi-element receiver strategy; multi-user detection; multi-user shallow-water acoustic network; multipath propagation; multiple access interference cancellation; robust communications; spatial diversity; synchronization; training sequences; underwater environment; Base stations; Computer simulation; Decision feedback equalizers; Multiple access interference; Multiuser detection; Performance evaluation; Robustness; Testing; Underwater acoustics; Underwater communication;
fLanguage
English
Journal_Title
Oceanic Engineering, IEEE Journal of
Publisher
ieee
ISSN
0364-9059
Type
jour
DOI
10.1109/48.972100
Filename
972100
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