Directionally constrained filterbank ICA

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초록

A modification is proposed to the independent component analysis (ICA)-based filterbank approach in consideration to its structural similarity with binaural auditory model of sound source localization. The estimated sound locations provide an additional cue to the learning algorithm, which is utilized for initialization and imposition of directional constraints on the subband separation networks. Directionally constrained filterbank ICA (DC-FBICA) gives faster convergence and improves separation performance for noisy mixtures having significant spectral overlap among the convolved mixture and the corrupting noise. However, only slight improvement in separation performance is observed when the additive noise is a low frequency noise, although faster convergence is still observed.

키워드

binaural processingblind source separation (BSS)direction of arrival (DOA)filterbank independent component analysis (FBICA)SOURCE SEPARATION
제목
Directionally constrained filterbank ICA
저자
Dhir, Chandra ShekharPark, Hyung-MinLee, Soo-Young
DOI
10.1109/LSP.2006.891318
발행일
2007-08
유형
Article
저널명
IEEE Signal Processing Letters
14
8
페이지
541 ~ 544