DocumentCode :
2671079
Title :
A simple variable step algorithm for blind source separation (BSS)
Author :
Pun, M.O. ; Hirai, Yuzo
Author_Institution :
Master Program of Sci. & Eng., Tsukuba Univ., Ibaraki, Japan
fYear :
1998
fDate :
31 Aug-2 Sep 1998
Firstpage :
73
Lastpage :
82
Abstract :
Most of the existing online learning algorithms for blind source separation are confronted with the learning step-size problem. In this paper, we propose a way to decompose the demixing matrix into row vector space. From the row vector viewpoint, a variable step (VS) algorithm for the blind source separation problem is proposed. Instead of using a constant step-size, the VS learning algorithm adaptively changes the learning step-size of each row vector according to the convergence behaviors of its corresponding row vector. Our simulation results show that the new VS learning algorithm outperforms the conventional algorithms
Keywords :
adaptive signal detection; convergence; learning (artificial intelligence); matrix algebra; neural nets; real-time systems; Simon Hirai indicator; adaptive signal detection; blind source separation; convergence; demixing matrix; learning algorithms; variable step algorithm; vector space; Blind source separation; Convergence; Costs; Differential equations; Fluctuations; H infinity control; Matrix decomposition; Programmable control; Source separation; Steady-state;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Neural Networks for Signal Processing VIII, 1998. Proceedings of the 1998 IEEE Signal Processing Society Workshop
Conference_Location :
Cambridge
ISSN :
1089-3555
Print_ISBN :
0-7803-5060-X
Type :
conf
DOI :
10.1109/NNSP.1998.710635
Filename :
710635
Link To Document :
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