DocumentCode :
1493954
Title :
Under-Determined Reverberant Audio Source Separation Using a Full-Rank Spatial Covariance Model
Author :
Duong, Ngoc Q K ; Vincent, Emmanuel ; Gribonval, Rémi
Author_Institution :
Centre Inria Rennes-Bretagne Atlantique, INRIA, Rennes, France
Volume :
18
Issue :
7
fYear :
2010
Firstpage :
1830
Lastpage :
1840
Abstract :
This paper addresses the modeling of reverberant recording environments in the context of under-determined convolutive blind source separation. We model the contribution of each source to all mixture channels in the time-frequency domain as a zero-mean Gaussian random variable whose covariance encodes the spatial characteristics of the source. We then consider four specific covariance models, including a full-rank unconstrained model. We derive a family of iterative expectation-maximization (EM) algorithms to estimate the parameters of each model and propose suitable procedures adapted from the state-of-the-art to initialize the parameters and to align the order of the estimated sources across all frequency bins. Experimental results over reverberant synthetic mixtures and live recordings of speech data show the effectiveness of the proposed approach.
Keywords :
audio signal processing; covariance analysis; source separation; audio source separation; blind source separation; covariance encodes; full-rank unconstrained model; iterative expectation-maximization algorithms; mixture channels; spatial characteristics; spatial covariance model; time frequency domain; underdetermined reverberant; zero-mean Gaussian random variable; Audio recording; Blind source separation; Context modeling; Frequency estimation; Iterative algorithms; Parameter estimation; Random variables; Source separation; State estimation; Time frequency analysis; Convolutive blind source separation (BSS); expectation–maximization (EM) algorithm; permutation problem; spatial covariance models; under-determined mixtures;
fLanguage :
English
Journal_Title :
Audio, Speech, and Language Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1558-7916
Type :
jour
DOI :
10.1109/TASL.2010.2050716
Filename :
5466223
Link To Document :
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