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Fuzzy modelling via on-line support vector machines
Authors:Wen Yu
Affiliation:1. Departamento de Control Automatico , CINVESTAV-IPN , Av.IPN 2508, México, D.F. 07360, México yuw@ctrl.cinvestav.mx
Abstract:This article introduces an approach to identify unknown nonlinear systems by fuzzy rules and support vector machines (SVMs). Structure identification is realised by an on-line SVM technique, the fuzzy rules are generated automatically. Time-varying learning rates are applied for updating the membership functions of the fuzzy rules. Finally, the upper bounds of the modelling errors are proven.
Keywords:fuzzy logic  support vector machines  identification  clustering
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