DocumentCode :
1147234
Title :
Performance Analysis of Gradient Neural Network Exploited for Online Time-Varying Matrix Inversion
Author :
Zhang, Yunong ; Chen, Ke ; Tan, Hong-Zhou
Author_Institution :
Sch. of Inf. Sci. & Technol., Sun Yat-Sen Univ., Guangzhou, China
Volume :
54
Issue :
8
fYear :
2009
Firstpage :
1940
Lastpage :
1945
Abstract :
This technical note presents theoretical analysis and simulation results on the performance of a classic gradient neural network (GNN), which was designed originally for constant matrix inversion but is now exploited for time-varying matrix inversion. Compared to the constant matrix-inversion case, the gradient neural network inverting a time-varying matrix could only approximately approach its time-varying theoretical inverse, instead of converging exactly. In other words, the steady-state error between the GNN solution and the theoretical/exact inverse does not vanish to zero. In this technical note, the upper bound of such an error is estimated firstly. The global exponential convergence rate is then analyzed for such a Hopfield-type neural network when approaching the bound error. Computer-simulation results finally substantiate the performance analysis of this gradient neural network exploited to invert online time-varying matrices.
Keywords :
Hopfield neural nets; convergence; gradient methods; mathematics computing; matrix inversion; Hopfield-type neural network; convergence rate; gradient neural network; online time-varying matrix inversion; steady-state error; Analytical models; Computer errors; Computer networks; Concurrent computing; Hopfield neural networks; Neural networks; Performance analysis; Pervasive computing; Steady-state; Upper bound; Global exponential convergence rate; gradient neural networks; performance analysis; residual error bound; time-varying matrix inversion;
fLanguage :
English
Journal_Title :
Automatic Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9286
Type :
jour
DOI :
10.1109/TAC.2009.2023779
Filename :
5173488
Link To Document :
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