DocumentCode :
43832
Title :
Blind System Identification Using Sparse Learning for TDOA Estimation of Room Reflections
Author :
Kowalczyk, Konrad ; Habets, Emanuel A. P. ; Kellermann, Walter ; Naylor, Patrick A.
Author_Institution :
Audio Dept., Univ. of Erlangen-Nuremberg, Erlangen, Germany
Volume :
20
Issue :
7
fYear :
2013
fDate :
Jul-13
Firstpage :
653
Lastpage :
656
Abstract :
Localization of early room reflections can be achieved by estimating the time-differences-of-arrival (TDOAs) of reflected waves between elements of a microphone array. For an unknown source, we propose to apply sparse blind system identification (BSI) methods to identify the acoustic impulse responses, from which the TDOAs of temporally sparse reflections are estimated. The proposed time- and frequency-domain adaptive algorithms based on crossrelation formulation are regularized by incorporating an l1 -norm sparseness constraint, which is realized using a split Bregman method. These algorithms are shown to outperform standard crossrelation-based BSI techniques when estimating TDOAs of reflections in the presence of background noise.
Keywords :
acoustic signal processing; blind source separation; frequency-domain analysis; microphone arrays; time-domain analysis; time-of-arrival estimation; TDOA estimation; acoustic impulse responses; background noise; cross-relation formulation; frequency-domain adaptive algorithms; l1-norm sparseness constraint; microphone array; reflected waves; room reflections; sparse blind system identification; sparse learning; split Bregman method; temporally sparse reflections; time-differences-of-arrival estimation; time-domain adaptive algorithms; unknown source; Acoustics; Estimation; Frequency-domain analysis; Microphones; Noise measurement; Signal processing algorithms; Speech; Blind system identification; Bregman method; crossrelation error; sparse learning; time delay estimation;
fLanguage :
English
Journal_Title :
Signal Processing Letters, IEEE
Publisher :
ieee
ISSN :
1070-9908
Type :
jour
DOI :
10.1109/LSP.2013.2261059
Filename :
6512048
Link To Document :
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