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dc.contributor.authorChang, Jyh-Yeongen_US
dc.contributor.authorHan, Ming-Fengen_US
dc.contributor.authorLin, Chin-Tengen_US
dc.date.accessioned2015-07-21T08:31:24Z-
dc.date.available2015-07-21T08:31:24Z-
dc.date.issued2012-01-01en_US
dc.identifier.isbn978-3-642-34487-9en_US
dc.identifier.issn0302-9743en_US
dc.identifier.urihttp://hdl.handle.net/11536/124887-
dc.description.abstractThis paper proposes a group-based evolutionary algorithm (GEA) for the fuzzy system (FS) optimization. Initially, we adopt an entropy measure method to determine the number of rules. Fuzzy rules are automatically generated from training data by entropy measure. Subsequently, the GEA is performed to optimize all the free parameters for the FS design. In the evolution process, a FS is coded as an individual. All individuals based on their performance are partitioned into a superior group and an inferior group. The superior group, which is composed of individuals with better performance, uses a global evolution operation to search potential individuals. In the inferior group, individuals with a worse performance employ the local evolution operation to search better individuals near the current best individual. Finally, the proposed FS with GEA model (FS-GEA) is applied to time series forecasting problem. Results show that the proposed FS-GEA model obtains better performance than other algorithm.en_US
dc.language.isoen_USen_US
dc.subjectfuzzy system (FS)en_US
dc.subjectdifferential evolution (DE)en_US
dc.subjectgroup-based evolutionary algorithm (GEA)en_US
dc.subjectoptimizationen_US
dc.titleOptimization of Fuzzy Systems Using Group-Based Evolutionary Algorithmen_US
dc.typeProceedings Paperen_US
dc.identifier.journalNEURAL INFORMATION PROCESSING, ICONIP 2012, PT IIIen_US
dc.citation.volume7665en_US
dc.citation.spage291en_US
dc.citation.epage298en_US
dc.contributor.department電控工程研究所zh_TW
dc.contributor.departmentInstitute of Electrical and Control Engineeringen_US
dc.identifier.wosnumberWOS:000345089800036en_US
dc.citation.woscount0en_US
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