Dynamics of on-line learning in radial basis function networks

被引:14
作者
Freeman, JAS [1 ]
Saad, D [1 ]
机构
[1] ASTON UNIV,DEPT COMP SCI & APPL MATH,BIRMINGHAM B4 7ET,W MIDLANDS,ENGLAND
来源
PHYSICAL REVIEW E | 1997年 / 56卷 / 01期
关键词
D O I
10.1103/PhysRevE.56.907
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
On-line learning is examined for the radial basis function network, an important and practical type of neural network. The evolution of generalization error is calculated within a framework which allows the phenomena of the learning process, such as the specialization of the hidden units, to be analyzed. The distinct stages of training are elucidated, and the role of the learning rate described. The three most important stages of training, the symmetric phase, the symmetry-breaking phase, and the convergence phase, are analyzed in detail; the convergence phase analysis allows derivation of maximal and optimal learning rates. As well as finding the evolution of the mean system parameters, the variances of these parameters are derived and shown to be typically small. Finally, the analytic results an strongly confirmed by simulations.
引用
收藏
页码:907 / 918
页数:12
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