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dc.contributor.authorMuñoz San Roque, Antonioes-ES
dc.contributor.authorSanz Bobi, Miguel Ángeles-ES
dc.date.accessioned2016-05-23T03:07:23Z-
dc.date.available2016-05-23T03:07:23Z-
dc.date.issued1998-12-01es_ES
dc.identifier.issn0925-2312es_ES
dc.identifier.urihttps:doi.org10.1016S0925-2312(98)00082-4es_ES
dc.descriptionArtículos en revistases_ES
dc.description.abstractes-ES
dc.description.abstractThis paper introduces the probabilistc radial function network (PRBFN) and a new incipient fault detection system based on it. The PRBFN is a neural network model able to estimate IO mappings and probability density functions. These capabilities play a crucial role in the design of the proposed fault detction system, where faults are detected by comparing the actual behaviour of the plant with the predicted using a model of normal operation conditions. Once the reliable domain of the model has been defined, a comparison is made through a local estimation of the upper bound of the resulting residual under normal operation conditions. This procedure automatically adjusts the sensitivity of the fault detction system to the intrinsic characteristics of the underlying process and prevents false alarms by detecting unknown operating conditions.en-GB
dc.format.mimetypeapplication/pdfes_ES
dc.language.isoen-GBes_ES
dc.rightses_ES
dc.rights.uries_ES
dc.sourceRevista: Neurocomputing, Periodo: 1, Volumen: online, Número: 1-3, Página inicial: 177, Página final: 194es_ES
dc.subject.otherInstituto de Investigación Tecnológica (IIT)es_ES
dc.titleAn incipient fault detection system based on the probabilistic radial basis function network. Application to the diagnosis of the condenser of a coal power plantes_ES
dc.typeinfo:eu-repo/semantics/articlees_ES
dc.description.versioninfo:eu-repo/semantics/publishedVersiones_ES
dc.rights.accessRightsinfo:eu-repo/semantics/restrictedAccesses_ES
dc.keywordses-ES
dc.keywordsFault detection; Diagnosis; Neural Networks; Power plant monitoringen-GB
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