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On the ability of neural networks to perform generalization by induction.

作者信息

Anshelevich V V, Amirikian B R, Lukashin A V, Frank-Kamenetskii M D

机构信息

Institute of Molecular Genetics, USSR Academy of Sciences, Moscow.

出版信息

Biol Cybern. 1989;61(2):125-8. doi: 10.1007/BF00204596.

Abstract

The ability of neural networks to perform generalization by induction is the ability to learn an algorithm without the benefit of complete information about it. We consider the properties of networks and algorithms that determine the efficiency of generalization. These properties are described in quantitative terms. The most effective generalization is shown to be achieved by networks with the least admissible capacity. General conclusions are illustrated by computer simulations for a three-layered neural network. We draw a quantitative comparison between the general equations and specific results reported here and elsewhere.

摘要

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