DocumentCode :
2492494
Title :
A new technique for blind source separation of post nonlinear mixture
Author :
Fahmy, M.F. ; Mohammed, U.S. ; Saleh, N.A.
Author_Institution :
Dept. of Electr. & Electron. Eng., Assiut Univ., Assuit, Egypt
fYear :
2010
fDate :
15-18 Dec. 2010
Firstpage :
196
Lastpage :
201
Abstract :
This paper presents a new method for solving post-nonlinear blind source separation (PNLBSS). It proposes a modified Gaussianization technique for recovering PNLBSS systems. The proposed technique overcomes the failure of classical Gaussianization schemes to work properly in some PNL mixture with severe nonlinearity characteristics. It is found that the failure is due to the multi-modality of the probability distributions (pdf), of the received nonlinear mixture. In order to estimate the eceived pdf, the paper proposes an accurate nonparametric evaluation of the signal´s pdf and its entropy functions . The pdf estimation is based on using Bspline wavelet transform as the smoothing filter for the data histogram distribution. The paper also proposes a pre-mapping scheme that transforms multi-modal pdf to a uni-modal one, and thereby makes them Gaussianable. Several illustrative examples are given, to verify the ability of the proposed technique to estimate signal´s pdf, recover PNLBSS mixture with severe nonlinearity characteristics.
Keywords :
Gaussian distribution; blind source separation; entropy; nonlinear filters; smoothing methods; splines (mathematics); wavelet transforms; B-spline wavelet transform; PNLBSS; PNLBSS system recovery; blind source separation; data histogram distribution; entropy function; modified Gaussianization technique; pdf estimation; postnonlinear mixture; probability distribution; smoothing filter;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Signal Processing and Information Technology (ISSPIT), 2010 IEEE International Symposium on
Conference_Location :
Luxor
Print_ISBN :
978-1-4244-9992-2
Type :
conf
DOI :
10.1109/ISSPIT.2010.5711777
Filename :
5711777
Link To Document :
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