Publication:
Application of the Sugeno integral in fuzzy rule-based classification

Date

2022

Director

Publisher

Springer
Acceso abierto / Sarbide irekia
Contribución a congreso / Biltzarrerako ekarpena
Versión aceptada / Onetsi den bertsioa

Project identifier

Impacto

Abstract

Fuzzy Rule-Based Classification System (FRBCS) is a well known technique to deal with classification problems. Recent studies have considered the usage of the Choquet integral and its generalizations to enhance the quality of such systems. Precisely, it was applied to the Fuzzy Reasoning Method (FRM) to aggregate the fired fuzzy rules when classify new data. On the other side, the Sugeno integral, another well known aggregation operator, obtained good results when applied to brain-computer interfaces. Those facts led to the present study in which we consider the Sugeno integral in classification problems. That is, the Sugeno integral is applied in the FRM of a widely used FRBCS and its performance is analyzed over 33 different datasets from the literature. In order to show the efficiency of this new approach, the obtained results are also compared to past studies involving the application of different aggregation functions. Finally, we perform a statistical analysis of the application.

Description

Keywords

Choquet integral, Classification problem, Fuzzy reasoning method, Fuzzy Rule-Based Classification System, Sugeno integral

Department

Estadística, Informática y Matemáticas / Estatistika, Informatika eta Matematika

Faculty/School

Degree

Doctorate program

item.page.cita

Wieczynski, J., Lucca, G., Borges, E., Dimuro, G. (2022) Application of the Sugeno integral in fuzzy rule-based classification. En Xavier-Junior, J. C., Rios R. A. (Eds.), Intelligent Systems: 11th Brazilian Conference, BRACIS 2022. Proceedings, Part I (pp. 209-220). Springer. https://doi.org/10.1007/978-3-031-21686-2_15.

item.page.rights

© 2022 The Author(s), under exclusive license to Springer Nature Switzerland AG.

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