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Type-1 and singleton fuzzy logic system trained by a fast scaled conjugate gradient methods for dealing with classification problems

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Previous issue date: 2017-09-01 / - / This thesis presents and discusses improvements in the type-1 and singleton fuzzy logic system for dealing with classification problems. Two training methods are addressed, the scaled conjugate gradient, which uses the second order information approximating the multiplication of the Hessian matrix H by the directional vector v (i.e. Hv), and the same method using the differential operator R {.} to compute the exact value of Hv. Also, in order to adapt the fuzzy model to handle multiclass classification problems, it is developed a novel fuzzy model with a vector as output. All proposals are tested through the performance metrics analysis based on data sets provided by UCI Machine Learning Repository. The reported results show the high convergence speed and better classification rates of the proposed training methods than others presented in the literature. Additionally, the novel fuzzy model has a significant reduction in computational and classifier complexity, especially when the number of classes in classification problem increases.

Identiferoai:union.ndltd.org:IBICT/oai:hermes.cpd.ufjf.br:ufjf/6034
Date01 September 2017
CreatorsAmaral, Renan Piazzaroli Finotti
ContributorsRibeiro, Moisés Vidal, Aguiar, Eduardo Pestana de, Silva Junior, Ivo Chaves da, Guimarães, Frederico Gadelha
PublisherUniversidade Federal de Juiz de Fora (UFJF), Programa de Pós-graduação em Engenharia Elétrica, UFJF, Brasil, ICE – Instituto de Ciências Exatas
Source SetsIBICT Brazilian ETDs
LanguageEnglish
Detected LanguageEnglish
Typeinfo:eu-repo/semantics/publishedVersion, info:eu-repo/semantics/masterThesis
Sourcereponame:Repositório Institucional da UFJF, instname:Universidade Federal de Juiz de Fora, instacron:UFJF
Rightsinfo:eu-repo/semantics/openAccess

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