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A quasi-competitive network with transition between models

โœ Scribed by Toshiki Kindo


Book ID
104591704
Publisher
John Wiley and Sons
Year
1995
Tongue
English
Weight
980 KB
Volume
26
Category
Article
ISSN
0882-1666

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โœฆ Synopsis


Abstract

This paper proposes a quasiโ€competitive network in which the mass reaction intensity of the elements in the intermediate layer is kept constant as a model that approximates the continuous nonlinear function. As the loss function, the local loss function is considered. It is composed of the error and the local model loss term reflecting the local model size.

The learning algorithm of the quasiโ€competitive network including the change of the number of elements is derived from the local loss function. It is shown by numerical experiment that the quasiโ€competitive network can form quickly the structure reflecting the target function and has a high generalization power. It is shown also that the high generalization power is due to the constant mass reaction intensity of the elements in the intermediate layer of the quasiโ€competitive network.


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