DocumentCode :
3316656
Title :
Channel-estimation-based adaptive equalization of underwater acoustic signals
Author :
Stojanovic, M. ; Freitag, L. ; Johnson, M.
Volume :
2
fYear :
1999
fDate :
1999
Firstpage :
590
Abstract :
To reduce computational complexity of signal processing and improve performance of data detection, receiver structures that are matched to the physical channel characteristics are investigated. A decision-feedback equalizer is designed which relies on an adaptive channel estimator to compute its parameters. The channel estimate is reduced in size by selecting only the significant components, whose delay span is often much shorter than the multipath spread of the channel. This estimate is used to cancel the post-cursor ISI prior to linear equalization. Optimal coefficient selection (sparsing) is performed by truncation in magnitude. The advantages of this approach are reduction in the number of receiver parameters, optimal implementation of sparse feedback, and efficient parallel implementation of adaptive algorithms for the multichannel pre-combiner, the fractionally-spaced channel estimators and the short feedforward equalizer alters. The receiver algorithm is demonstrated using real data transmitted at 10 kbps over 3 km in shallow water
Keywords :
acoustic receivers; adaptive equalisers; adaptive estimation; computational complexity; decision feedback equalisers; feedback; interference suppression; intersymbol interference; underwater acoustic communication; adaptive channel estimator; channel-estimation-based adaptive equalization; computational complexity; data detection; decision-feedback equalizer; fractionally-spaced channel estimators; multichannel pre-combiner; optimal coefficient selection; parallel implementation; physical channel characteristics; post-cursor ISI; receiver algorithm; receiver structures; shallow water; short feedforward equalizer; signal processing; sparse feedback; underwater acoustic signals; Adaptive equalizers; Computational complexity; Decision feedback equalizers; Delay estimation; Diversity reception; Filters; Signal processing; Signal processing algorithms; Underwater acoustics; Underwater tracking;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
OCEANS '99 MTS/IEEE. Riding the Crest into the 21st Century
Conference_Location :
Seattle, WA
Print_ISBN :
0-7803-5628-4
Type :
conf
DOI :
10.1109/OCEANS.1999.804768
Filename :
804768
Link To Document :
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