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dc.contributor.authorGlackin, C.
dc.contributor.authorMcDaid, L.
dc.contributor.authorMaguire, L.
dc.contributor.authorSayers, H.
dc.date.accessioned2014-02-12T10:28:59Z
dc.date.available2014-02-12T10:28:59Z
dc.date.issued2008
dc.identifier.citationGlackin , C , McDaid , L , Maguire , L & Sayers , H 2008 , Implementing fuzzy reasoning on a spiking neural network . in Artificial Neural Networks - ICANN 2008 : Proceedings, Part II . Lecture Notes in Computer Science , vol. 5164 , Springer Nature , pp. 258-267 . https://doi.org/10.1007/978-3-540-87559-8_27
dc.identifier.isbn978-3-540-87559-8
dc.identifier.isbn978-3-540-87559-8
dc.identifier.otherBibtex: urn:1bcea119b44aaf46751aff421eacf993
dc.identifier.urihttp://hdl.handle.net/2299/12807
dc.description.abstractThis paper presents a supervised training algorithm that implements fuzzy reasoning on a spiking neural network. Neuron selectivity is facilitated using receptive fields that enable individual neurons to be responsive to certain spike train frequencies. The receptive fields behave in a similar manner as fuzzy membership functions. The network is supervised but learning only occurs locally as in the biological case. The connectivity of the hidden and output layers is representative of a fuzzy rule base. The advantages and disadvantages of the network topology for the IRIS classification task are demonstrated and directions of current and future work are discusseden
dc.format.extent10
dc.language.isoeng
dc.publisherSpringer Nature
dc.relation.ispartofArtificial Neural Networks - ICANN 2008
dc.relation.ispartofseriesLecture Notes in Computer Science
dc.titleImplementing fuzzy reasoning on a spiking neural networken
dc.contributor.institutionSchool of Computer Science
rioxxterms.versionofrecord10.1007/978-3-540-87559-8_27
rioxxterms.typeOther
herts.preservation.rarelyaccessedtrue


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