Pipelined on-line back-propagation training of an artificial neural network on a parallel mutiprocessor system

dc.creatorSilva, Tiago M. da
dc.creatorBraga, Antônio de P.
dc.creatorLacerda, Wilian S.
dc.date.accessioned2020-09-17T01:19:18Z
dc.date.available2020-09-17T01:19:18Z
dc.date.issued2010
dc.description.abstractThis work presents an on-chip learning of artificial neural networks in a FPGA multiprocessor system, where each neuron is implemented in a soft-core processor. In order to take maximum advantage of the distributed architecture, a pipelined version of the on-line back-propagation algorithm is used, providing a high degree of parallelism between neuron layers and, hence, a higher speed-up in relation to a sequential implementation.pt_BR
dc.description.provenanceSubmitted by Tatiana Silva (tatianasilva@biblioteca.ufla.br) on 2020-09-15T20:01:32Z No. of bitstreams: 0en
dc.description.provenanceApproved for entry into archive by Tatiana Silva (tatianasilva@biblioteca.ufla.br) on 2020-09-17T01:19:18Z (GMT) No. of bitstreams: 0en
dc.description.provenanceMade available in DSpace on 2020-09-17T01:19:18Z (GMT). No. of bitstreams: 0 Previous issue date: 2010en
dc.identifier.citationSILVA, T. M. da; BRAGA, A. de P.; LACERDA, W. S. Pipelined on-line back-propagation training of an artificial neural network on a parallel mutiprocessor system. Learning and Nonlinear Models, [S.l.], v. 8, p. 120-123, 2010. DOI: 10.21528/lmln-vol8-no2-art5.pt_BR
dc.identifier.urihttps://repositorio.ufla.br/handle/1/43109
dc.identifier.urihttp://abricom.org.br/lnlm-en/publications/vol8-no2/vol8-no2-art5/pt_BR
dc.languageen_USpt_BR
dc.publisherAssociação Brasileira de Inteligência Computacional (ABRICOM)pt_BR
dc.rightsopenAccesspt_BR
dc.sourceLearning & Nonlinear Models (L&NLM)pt_BR
dc.subjectNIOSpt_BR
dc.subjectFPGApt_BR
dc.subjectMultiprocessorspt_BR
dc.subjectBackpropagationpt_BR
dc.subjectPipelinept_BR
dc.subjectArtificial neural networkspt_BR
dc.subjectField programmable gate array (FPGA)pt_BR
dc.titlePipelined on-line back-propagation training of an artificial neural network on a parallel mutiprocessor systempt_BR
dc.typeArtigopt_BR

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