Please use this identifier to cite or link to this item: https://hdl.handle.net/1959.11/61403
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dc.contributor.authorFan, Zongwenen
dc.contributor.authorChiong, Raymonden
dc.contributor.authorHu, Zhongyien
dc.contributor.authorLin, Yuqingen
dc.date.accessioned2024-07-10T01:01:40Z-
dc.date.available2024-07-10T01:01:40Z-
dc.date.issued2020-
dc.identifier.citationNeurocomputing, v.410, p. 114-124en
dc.identifier.issn1872-8286en
dc.identifier.issn0925-2312en
dc.identifier.urihttps://hdl.handle.net/1959.11/61403-
dc.description.abstract<p>Fuzzy systems are widely used for solving complex and non-linear problems that cannot be addressed using precise mathematical models. Their performance, however, is critically affected by how they are constructed as well as their fuzzy rule base. Inspired by neural networks that apply a multi-layer structure to improve their performance, we propose a multi-layer fuzzy model with modified fuzzy rules to improve the approximation ability of fuzzy systems without losing efficiency. In practical applications, the fuzzy rule base extracted from numerical data is often incomplete, which makes a fuzzy system less robust. To address this problem, a non-linear function is used as the consequent of each fuzzy rule based on fuzzy-rule clustering to enhance the approximation ability of the fuzzy rule base. In addition, exact matching of fuzzy rules is employed based on the fuzzy rule's antecedent for prediction. By doing so, only one rule will be triggered in each layer, which is very efficient. Experimental results from two simulated functions and three practical applications confirm that our proposed multi-layer fuzzy model can outperform other well-established fuzzy models in terms of accuracy and robustness without sacrificing efficiency.</p>en
dc.languageenen
dc.publisherElsevier BVen
dc.relation.ispartofNeurocomputingen
dc.titleA multi-layer fuzzy model based on fuzzy-rule clustering for prediction tasksen
dc.typeJournal Articleen
dc.identifier.doi10.1016/j.neucom.2020.04.031en
local.contributor.firstnameZongwenen
local.contributor.firstnameRaymonden
local.contributor.firstnameZhongyien
local.contributor.firstnameYuqingen
local.profile.schoolSchool of Science & Technologyen
local.profile.emailrchiong@une.edu.auen
local.output.categoryC1en
local.record.placeauen
local.record.institutionUniversity of New Englanden
local.publisher.placeThe Netherlandsen
local.format.startpage114en
local.format.endpage124en
local.identifier.volume410en
local.contributor.lastnameFanen
local.contributor.lastnameChiongen
local.contributor.lastnameHuen
local.contributor.lastnameLinen
dc.identifier.staffune-id:rchiongen
local.profile.orcid0000-0002-8285-1903en
local.profile.roleauthoren
local.profile.roleauthoren
local.profile.roleauthoren
local.profile.roleauthoren
local.identifier.unepublicationidune:1959.11/61403en
dc.identifier.academiclevelAcademicen
dc.identifier.academiclevelAcademicen
dc.identifier.academiclevelAcademicen
dc.identifier.academiclevelAcademicen
local.title.maintitleA multi-layer fuzzy model based on fuzzy-rule clustering for prediction tasksen
local.output.categorydescriptionC1 Refereed Article in a Scholarly Journalen
local.search.authorFan, Zongwenen
local.search.authorChiong, Raymonden
local.search.authorHu, Zhongyien
local.search.authorLin, Yuqingen
local.uneassociationNoen
dc.date.presented2020-
local.atsiresearchNoen
local.sensitive.culturalNoen
local.year.published2020en
local.year.presented2020en
local.fileurl.closedpublishedhttps://rune.une.edu.au/web/retrieve/183d9008-46fc-407f-94aa-1d3d9d191f0fen
local.subject.for20204602 Artificial intelligenceen
local.profile.affiliationtypeExternal Affiliationen
local.profile.affiliationtypeExternal Affiliationen
local.profile.affiliationtypeExternal Affiliationen
local.profile.affiliationtypeExternal Affiliationen
local.date.moved2024-07-25en
Appears in Collections:Journal Article
School of Science and Technology
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