A Preliminar Analysis of CO2RBFN in Imbalanced Problems

نویسندگان

  • M. Dolores Pérez-Godoy
  • Antonio J. Rivera
  • Alberto Fernández
  • María José del Jesús
  • Francisco Herrera
چکیده

In many real classification problems the data are imbalanced, i.e., the number of instances for some classes are much higher than that of the other classes. Solving a classification task using such an imbalanced data-set is difficult due to the bias of the training towards the majority classes. The aim of this contribution is to analyse the performance of CORBFN, a cooperative-competitive evolutionary model for the design of RBFNs applied to classification problems on imbalanced domains and to study the cooperation of a well known preprocessing method, the “Synthetic Minority Over-sampling Technique” (SMOTE) with our algorithm. The good performance of CORBFN is shown through an experimental study carried out over a large collection of imbalanced data-sets.

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تاریخ انتشار 2009