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A Bee-Inspired Data Clustering Approach to Design RBF Neural Network Classifiers
Conference proceeding

A Bee-Inspired Data Clustering Approach to Design RBF Neural Network Classifiers

Davila Patricia Ferreira Cruz, Renato Dourado Maia, Leandro Augusto da Silva and Leandro Nunes de Castro
DISTRIBUTED COMPUTING AND ARTIFICIAL INTELLIGENCE, 11TH INTERNATIONAL CONFERENCE, Vol.290, pp.545-552
Advances in Intelligent Systems and Computing
01-01-2014

Abstract

Computer Science Computer Science, Artificial Intelligence Computer Science, Theory & Methods Science & Technology Technology
Different methods have been used to train radial basis function neural networks. This paper proposes a bee-inspired algorithm to automatically select the number and location of basis functions to be used in such RBF network. The algorithm was designed to solve data clustering problems, where the centroids of clusters are used as centers for the RBF network. The approach presented in this paper is preliminary evaluated in three synthetic datasets, two classification datasets and one function approximation problem, and its results suggest a potential for real-world application.

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