An Approach for Prototype Generation based on Similarity Relations for Problems of Classification

Yumilka B. Fernandez Hernandez, Rafael Bello, Yaima Filiberto, Mabel Frias, Lenniet Coello Blanco, Yaile Caballero

Abstract


In this paper, a new method for solving classification problems based on prototypes is proposed. When using similarity relations for granulation of a universe, similarity classes are generated, and a prototype is constructed for each similarity class. Experimental results show that the proposed method has higher classification accuracy and a satisfactory reduction coefficient compared to other well-known methods, proving to be statistically superior in terms of classification’s precision.

 


Keywords


Prototype generation, similarity relations, classification

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