Parallel Distributed Two-Level Evolutionary Multiobjective Methodology for Granularity Learning and Membership Functions Tuning in Linguistic Fuzzy Systems

This paper deals with the learning of the membership functions for Mamdani fuzzy systems - the number of labels of the variables and the tuning of them - in order to obtain a set of linguistic fuzzy systems with different trade-offs between accuracy and complexity, through the use of a two-level evo...

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Hauptverfasser: De Vega, M.A., Bardallo, J.M., Marquez, F.A., Peregrin, A.
Format: Tagungsbericht
Sprache:eng
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Zusammenfassung:This paper deals with the learning of the membership functions for Mamdani fuzzy systems - the number of labels of the variables and the tuning of them - in order to obtain a set of linguistic fuzzy systems with different trade-offs between accuracy and complexity, through the use of a two-level evolutionary multi-objective algorithm. The presented methodology employs a high level main evolutionary multi-objective heuristic searching the number of labels, and some distributed low level ones, also evolutionary, tuning the membership functions of the candidate variable partitions.
ISSN:2164-7143
2164-7151
DOI:10.1109/ISDA.2009.225