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Kurtosis Approach for Nonlinear Blind Source SeparationIn this paper, we introduce a new algorithm for blind source signal separation for post-nonlinear mixtures. The mixtures are assumed to be linearly mixed from unknown sources first and then distorted by memoryless nonlinear functions. The nonlinear functions are assumed to be smooth and can be approximated by polynomials. Both the coefficients of the unknown mixing matrix and the coefficients of the approximated polynomials are estimated by the gradient descent method conditional on the higher order statistical requirements. The results of simulation experiments presented in this paper demonstrate the validity and usefulness of our approach for nonlinear blind source signal separation.
Document ID
20090028744
Acquisition Source
Jet Propulsion Laboratory
Document Type
Conference Paper
External Source(s)
Authors
Duong, Vu A.
(Jet Propulsion Lab., California Inst. of Tech. Pasadena, CA, United States)
Stubbemd, Allen R.
(California Univ. Irvine, CA, United States)
Date Acquired
August 24, 2013
Publication Date
December 14, 2005
Subject Category
Communications And Radar
Meeting Information
Meeting: InTech ''05
Location: Phu Ket
Country: Thailand
Start Date: December 14, 2005
End Date: December 16, 2005
Distribution Limits
Public
Copyright
Other
Keywords
kurtosis
independent component analysis
higher order statistics

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