Please use this identifier to cite or link to this item: https://hdl.handle.net/10316/4081
DC FieldValueLanguage
dc.contributor.authorFerreira, P. M.-
dc.contributor.authorFaria, E. A.-
dc.contributor.authorRuano, A. E.-
dc.date.accessioned2008-09-01T09:58:55Z-
dc.date.available2008-09-01T09:58:55Z-
dc.date.issued2002en_US
dc.identifier.citationNeurocomputing. 43:1-4 (2002) 51-75en_US
dc.identifier.urihttps://hdl.handle.net/10316/4081-
dc.description.abstractThe adequacy of radial basis function neural networks to model the inside air temperature of a hydroponic greenhouse as a function of the outside air temperature and solar radiation, and the inside relative humidity, is addressed. As the model is intended to be incorporated in an environmental control strategy both off-line and on-line methods could be of use to accomplish this task. In this paper known hybrid off-line training methods and on-line learning algorithms are analyzed. An off-line method and its application to on-line learning is proposed. It exploits the linear-non-linear structure found in radial basis function neural networks.en_US
dc.description.urihttp://www.sciencedirect.com/science/article/B6V10-44NM87G-5/1/eece7333cd9cdc60d1a36eda697cbb9cen_US
dc.format.mimetypeaplication/PDFen
dc.language.isoengeng
dc.rightsopenAccesseng
dc.subjectRadial basis functionsen_US
dc.subjectNeural networksen_US
dc.subjectGreenhouse environmental controlen_US
dc.subjectModellingen_US
dc.titleNeural network models in greenhouse air temperature predictionen_US
dc.typearticleen_US
dc.identifier.doi10.1016/S0925-2312(01)00620-8-
item.openairetypearticle-
item.fulltextCom Texto completo-
item.languageiso639-1en-
item.grantfulltextopen-
item.cerifentitytypePublications-
item.openairecristypehttp://purl.org/coar/resource_type/c_18cf-
Appears in Collections:FCTUC Eng.Electrotécnica - Artigos em Revistas Internacionais
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