Work place: College of Electronic Engineering, Naval Univ. of Engineering, Wuhan, China
E-mail: yuhuagang103@163.com
Website:
Research Interests: Intrusion Detection System, Detection Theory
Biography
Hua-Gang Yu was born in 1984. He received the B.S. and M.E. degrees in communication engineering from Naval University of Engineering, Wuhan, China, in 2006 and 2008, respectively. He is currently working towards the Ph.D. degree in communication and information engineering at Naval University of Engineering. His current research interests in the area of blind signal processing, passive detection and wireless communications.
By Hua-Gang Yu Gao-Ming Huang Jun Gao
DOI: https://doi.org/10.5815/ijcnis.2010.01.01, Pub. Date: 8 Nov. 2010
To solve the problem of nonlinear blind source separation (BSS), a novel algorithm based on kernel multi-set canonical correlation analysis (MCCA) is presented. Combining complementary research fields of kernel feature spaces and BSS using MCCA, the proposed approach yields a highly efficient and elegant algorithm for nonlinear BSS with invertible nonlinearity. The algorithm works as follows: First, the input data is mapped to a high-dimensional feature space and perform dimension reduction to extract the effective reduced feature space, translate the nonlinear problem in the input space to a linear problem in reduced feature space. In the second step, the MCCA algorithm was used to obtain the original signals.
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