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Erschienen in: Neural Computing and Applications 4/2009

01.05.2009 | Original Article

An online pruning strategy for supervised ARTMAP-based neural networks

verfasst von: Shing Chiang Tan, M. V. C. Rao, Chee Peng Lim

Erschienen in: Neural Computing and Applications | Ausgabe 4/2009

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Abstract

Identifying an appropriate architecture of an artificial neural network (ANN) for a given task is important because learning and generalisation of an ANN is affected by its structure. In this paper, an online pruning strategy is proposed to participate in the learning process of two constructive networks, i.e. fuzzy ARTMAP (FAM) and fuzzy ARTMAP with dynamic decay adjustment (FAMDDA), and the resulting hybrid networks are called FAM/FAMDDA with temporary nodes (i.e. FAM-T and FAMDDA-T, respectively). FAM-T and FAMDDA-T possess a capability of reducing the network complexity online by removing unrepresentative neurons. The performances of FAM-T and FAMDDA-T are evaluated and compared with those of FAM and FAMDDA using a total of 13 benchmark data sets. To demonstrate the applicability of FAM-T and FAMDDA-T, a real fault detection and diagnosis task in a power plant is tested. The results from both benchmark studies and real-world application show that FAMDDA-T and FAM-T are able to yield satisfactory classification performances, with the advantage of having parsimonious network structures.

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Metadaten
Titel
An online pruning strategy for supervised ARTMAP-based neural networks
verfasst von
Shing Chiang Tan
M. V. C. Rao
Chee Peng Lim
Publikationsdatum
01.05.2009
Verlag
Springer-Verlag
Erschienen in
Neural Computing and Applications / Ausgabe 4/2009
Print ISSN: 0941-0643
Elektronische ISSN: 1433-3058
DOI
https://doi.org/10.1007/s00521-008-0191-5

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