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Data Mining using Modified GFMM Neural Network

  • International Journal of Computer Applications
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Abstract

The fuzzy neural networks are adaptive, learns quickly and are highly suitable in decision making where uncertainty is involved. In this paper the Modified General Fuzzy Min-Max Neural Network (MGFMMNN) is described which is experimented for the data mining tasks such as classification and clustering. The MGFMMNN utilizes fuzzy sets as pattern classes in which each fuzzy set is a union of fuzzy set hyperboxes. It is an extension of the general fuzzy min-max (GFMM) neural network proposed by Gabrys and Bargiala. The data mining tasks such as classification and clustering have been studied using MGFMMNN and Fisher Iris data set.

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Publication details

DOI
10.5120/20411-2786
OpenAlex
W2319507350
Document type
article
Language
EN
Source
International Journal of Computer Applications
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