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dc.contributor.authorAndrade Filho, Luiz Soares de-
dc.contributor.authorBarreto, Guilherme de Alencar-
dc.date.accessioned2023-02-09T16:30:18Z-
dc.date.available2023-02-09T16:30:18Z-
dc.date.issued2014-
dc.identifier.citationANDRADE FILHO, L. S.; BARRETO, G. A. On the efficient design of a prototype-based classifier using differential evolution. In: SYMPOSIUM ON DIFFERENTIAL EVOLUTION, 2014, Orlando. Anais... Orlando: IEEE, 2014. p. 1-8.pt_BR
dc.identifier.urihttp://www.repositorio.ufc.br/handle/riufc/70703-
dc.description.abstractIn this paper we introduce an evolutionary approach for the efficient design of prototype-based classifiers using differential evolution (DE). For this purpose we amalgamate ideas from the Learning Vector Quantization (LVQ) framework for supervised classification by Kohonen [1], [2], with the DE-based automatic clustering approach by Das et al. [3] in order to evolve supervised classifiers. The proposed approach is able to determine both the optimal number of prototypes per class and the corresponding positions of these prototypes in the data space. By means of comprehensive computer simulations on benchmarking datasets, we show that the resulting classifier, named LVQ-DE, consistently outperforms state-of-the-art prototype-based classifiers.pt_BR
dc.language.isoenpt_BR
dc.publisherSymposium on Differential Evolutionpt_BR
dc.titleOn the efficient design of a prototype-based classifier using differential evolutionpt_BR
dc.typeArtigo de Eventopt_BR
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