DocumentCode :
2215250
Title :
Bayesian multiuser detection based on a network of NLMS filters
Author :
Sayadi, Bessem ; Marcos, Sylvie
Author_Institution :
Lab. of signals & Syst. (L2S), SUPELEC, Gif-sur-Yvette, France
fYear :
2006
fDate :
4-8 Sept. 2006
Firstpage :
1
Lastpage :
5
Abstract :
The Network of Kalman Filters structure was proposed, recently, to perform an optimal Bayesian symbol-by-symbol estimation in the multiuser detection context. By approximating the prediction error covariance matrix on each branch by a constant diagonal one, we show in this paper that the NKF structure can be expressed into a particular Network of normalized LMS filters exhibiting less computational complexity. The choice of the value of the step-size is also discussed. In order to overcome its heuristic choice, we, here, propose a new adaptive step size based on the second order moment of the estimated symbols. The form of the step-size still contains an information on the a priori state estimation. The performance of the resulted receiver structure is evaluated by means of computer simulations for very high asynchronous system load, in multipath fading channel, and compared to MAP, NKF, MMSE and Rake receivers.
Keywords :
Kalman filters; belief networks; covariance matrices; estimation theory; fading channels; least mean squares methods; multiuser detection; radio receivers; state estimation; Bayesian multiuser detection; Bayesian symbol-by-symbol estimation; Kalman filters network structure; MAP; MMSE; NKF structure; NLMS filters; Rake receivers; multipath fading channel; multiple access interference; normalized least mean square filters; prediction error covariance matrix; state estimation; Abstracts; Bayes methods; Detectors; Electronic mail; Least squares approximations; Multiuser detection; State-space methods;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Signal Processing Conference, 2006 14th European
Conference_Location :
Florence
ISSN :
2219-5491
Type :
conf
Filename :
7071206
Link To Document :
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