DocumentCode :
2631437
Title :
Adaptive linear turbo equalization of large delay spread time-varying channel responses
Author :
Choi, Jun Won ; Riedl, Thomas ; Daly, Erica L. ; Kim, Kyeongyeon ; Singer, Andrew C. ; Preisig, James C.
Author_Institution :
Coordinated Sci. Lab., Univ. of Illinois at Urbana Champaign, Urbana, IL, USA
fYear :
2010
fDate :
4-7 Oct. 2010
Firstpage :
77
Lastpage :
80
Abstract :
In this paper, we investigate applying linear turbo equalization techniques to underwater acoustic communications. First, we elaborate on two popular linear turbo equalizers (TEQ), a channel estimate-based minimum mean square error TEQ (CE-based MMSE-TEQ) and a direct-adaptive TEQ (DA-TEQ). We compare the behavior of both TEQ approaches in the presence of channel estimation errors and adaptation filter adjustment errors. By analyzing extrinsic information transfer (EXIT) charts, we confirm that the performance gap between these two TEQs is small after convergence. Next, we introduce an underwater receiver architecture based on the LMS DA-TEQ technique that dramatically improves the performance of the conventional decision-feedback equalizer at a feasible complexity. This receiver architecture is demonstrated using data collected from the SPACE 08 experiment. The experimental results demonstrate that the LMS DA-TEQ yields more than an order of magnitude performance gain over the conventional equalizer.
Keywords :
acoustic receivers; adaptive equalisers; channel estimation; convergence; decision feedback equalisers; delays; least mean squares methods; time-varying channels; underwater acoustic communication; CE-based MMSE-TEQ approach; EXIT charts; LMS DA-TEQ technique; adaptation filter adjustment errors; adaptive linear turbo equalization techniques; channel estimation error; convergence; decision-feedback equalizer; direct-adaptive TEQ; extrinsic information transfer charts; large delay spread time-varying channel responses; minimum mean square error; receiver architecture; underwater acoustic communications; underwater receiver architecture; Channel estimation; Equalizers; Least squares approximation; Phase shift keying; Receivers; Signal to noise ratio; Underwater acoustics;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Sensor Array and Multichannel Signal Processing Workshop (SAM), 2010 IEEE
Conference_Location :
Jerusalem
ISSN :
1551-2282
Print_ISBN :
978-1-4244-8978-7
Electronic_ISBN :
1551-2282
Type :
conf
DOI :
10.1109/SAM.2010.5606771
Filename :
5606771
Link To Document :
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