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dc.creatorStavrakoudis, D. G.en
dc.creatorTheocharis, J. B.en
dc.creatorPetridis, V.en
dc.creatorGiakas, G.en
dc.date.accessioned2015-11-23T10:48:41Z
dc.date.available2015-11-23T10:48:41Z
dc.date.issued2015
dc.identifier.isbn9783952417386
dc.identifier.urihttp://hdl.handle.net/11615/33396
dc.description.abstractAn enhanced memory TSK-type recurrent fuzzy network (EM-TRFN) is proposed in this paper, suitable for modeling complex dynamic systems. Feedback connections, formulated using finite impulse response (FIR) synaptic filters, are employed in the network architecture, serving as internal memories of multiple past firing values, used to determine the current rule firings. Thus, high-order temporal capabilities are embedded in the network, rendering it capable of modeling highly complex nonlinear temporal processes. The structure of the EM-TRFN is evolved in an on-line fashion, with concurrent structure and parameter learning. The proposed network is combined with the predictive modular fuzzy system (PREMOFS), leading to an efficient system for on-line time-series classification. Simulations on a gait identification problem indicate the efficiency of the proposed system. © 2007 EUCA.en
dc.source.urihttp://www.scopus.com/inward/record.url?eid=2-s2.0-84927710126&partnerID=40&md5=afe215a39e02f753a4efab8fd6ffe49b
dc.subjectdynamic fuzzy inferenceen
dc.subjectgait identificationen
dc.subjectreal-time classificationen
dc.subjectrecurrent neuro-fuzzy systemsen
dc.subjectComplex networksen
dc.subjectFuzzy inferenceen
dc.subjectFuzzy systemsen
dc.subjectIdentification (control systems)en
dc.subjectImpulse responseen
dc.subjectNetwork architectureen
dc.subjectReal time systemsen
dc.subjectSocial networking (online)en
dc.subjectFinite-impulse responseen
dc.subjectGait identificationsen
dc.subjectNonlinear temporal processen
dc.subjectReal timeen
dc.subjectRecurrent neuro-fuzzy systemen
dc.subjectTime series classificationsen
dc.subjectTSK-type recurrent fuzzy networksen
dc.subjectFuzzy logicen
dc.titleAn enhanced memory TSK-type recurrent fuzzy network for real-time classificationen
dc.typeconferenceItemen


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