2014
DOI: 10.1108/ec-11-2012-0297
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A classification approach based on variable precision rough sets and cluster validity index function

Abstract: Purpose – The clustering/classification method proposed in this study, designated as the PFV-index method, provides the means to solve the following problems for a data set characterized by imprecision and uncertainty: first, discretizing the continuous values of all the individual attributes within a data set; second, evaluating the optimality of the discretization results; third, determining the optimal number of clusters per attribute; and fourth, improving the classification accuracy (CA) o… Show more

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