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A two-pass hybrid training algorithm for RBF networks

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dc.contributor.author Ozdemir, Ali Ekber
dc.contributor.author Eminoglu, Ilyas
dc.date.accessioned 2022-09-07T07:02:28Z
dc.date.available 2022-09-07T07:02:28Z
dc.date.issued 2013
dc.identifier.uri http://doi.org/10.1109/ELECO.2013.6713920
dc.identifier.uri http://earsiv.odu.edu.tr:8080/xmlui/handle/11489/3205
dc.description.abstract This paper presents a systematic construction of linearly weighted Gaussian radial basis function (RBF) neural network. The proposed method is computationally a two-stage hybrid training algorithm. The first stage of the hybrid algorithm is a pre-processing unit which generates a coarsely-tuned RBF network. The second stage is a fine-tuning phase. The coarsely-tuned RBF network is then optimized by using a two-pass training algorithm. In forward-pass, the output weights of RBF are calculated by the Levenberg - Marquardt (LM) algorithm while the rest of the parameters is remained fixed. Similarly, in backward-pass, the free parameters of basis function (center and width of each node) are adjusted by gradient descent (GD) algorithm while the output weights of RBF are remained fixed. Hence, the effectiveness of the proposed method for an RBF network is demonstrated with simulations. en_US
dc.language.iso eng en_US
dc.publisher IEEE345 E 47TH ST, NEW YORK, NY 10017 USA en_US
dc.relation.isversionof 10.1109/ELECO.2013.6713920 en_US
dc.rights info:eu-repo/semantics/openAccess en_US
dc.subject NEURAL-NETWORK FUZZY PERFORMANCE en_US
dc.title A two-pass hybrid training algorithm for RBF networks en_US
dc.type article en_US
dc.relation.journal 2013 8TH INTERNATIONAL CONFERENCE ON ELECTRICAL AND ELECTRONICS ENGINEERING (ELECO) en_US
dc.contributor.department Ordu Üniversitesi en_US
dc.contributor.authorID 0000-0002-3367-8390 en_US
dc.identifier.startpage 617 en_US
dc.identifier.endpage 620 en_US


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