DocumentCode :
1309572
Title :
Recursive Bayesian Control of Multichannel Acoustic Echo Cancellation
Author :
Malik, Sarmad ; Enzner, Gerald
Author_Institution :
Inst. of Commun. Acoust. IKA, Ruhr-Univ. Bochum, Bochum, Germany
Volume :
18
Issue :
11
fYear :
2011
Firstpage :
619
Lastpage :
622
Abstract :
We present a novel recursive Bayesian method in the DFT-domain to address the multichannel acoustic echo cancellation problem. We model the echo paths between the loudspeakers and the near-end microphone as a multichannel random variable with a first-order Markov property. The incorporation of the near-end observation noise, in conjunction with the multichannel Markov model, leads to a multichannel state-space model. We derive a recursive Bayesian solution to the multichannel state-space model, which turns out to be well suited for input signals that are not only auto-correlated but also cross-correlated. We show that the resulting multichannel state-space frequency-domain adaptive filter (MCSSFDAF) can be efficiently implemented due to the submatrix-diagonality of the state-error covariance. The filter offers optimal tracking and robust adaptation in the presence of near-end noise and echo path variability.
Keywords :
Bayes methods; Markov processes; acoustic correlation; acoustic signal processing; adaptive filters; covariance analysis; echo suppression; frequency-domain analysis; loudspeakers; microphones; recursive filters; DFT-domain; auto correlation; cross correlation; echo path variability; first-order Markov property; loudspeakers; multichannel Markov model; multichannel acoustic echo cancellation problem; multichannel random variable; multichannel state space frequency domain adaptive filter; multichannel state space model; near-end microphone; near-end noise variability; optimal tracking; recursive Bayesian control; recursive Bayesian method; recursive Bayesian solution; robust adaptation; state error covariance; submatrix diagonality; Adaptation models; Bayesian methods; Echo cancellers; Frequency modulation; Markov processes; Noise; Frequency-domain adaptive filtering; multichannel acoustic echo cancellation; state-space modeling;
fLanguage :
English
Journal_Title :
Signal Processing Letters, IEEE
Publisher :
ieee
ISSN :
1070-9908
Type :
jour
DOI :
10.1109/LSP.2011.2166385
Filename :
6004809
Link To Document :
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