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Use este identificador para citar ou linkar para este item: https://repositorio.ufba.br/handle/ri/11885
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dc.contributor.authorGilardoni, Gustavo L.-
dc.contributor.authorOliveira, Maristela Dias de-
dc.contributor.authorColosimo, Enrico A.-
dc.creatorGilardoni, Gustavo L.-
dc.creatorOliveira, Maristela Dias de-
dc.creatorColosimo, Enrico A.-
dc.date.accessioned2013-06-11T19:08:02Z-
dc.date.available2013-06-11T19:08:02Z-
dc.date.issued2013-
dc.identifier.issn0167-9473-
dc.identifier.urihttp://www.repositorio.ufba.br/ri/handle/ri/11885-
dc.descriptionTexto completo. Acesso restrito. p. 113–124pt_BR
dc.description.abstractConsider a repairable system operating under a maintenance strategy that calls for complete preventive repair actions at pre-scheduled times and minimal repair actions whenever a failure occurs. Under minimal repair, the failures are assumed to follow a nonhomogeneous Poisson process with an increasing intensity function. This paper departs from the usual power-law-process parametric approach by using the constrained nonparametric maximum likelihood estimate of the intensity function to estimate the optimum preventive maintenance policy. Several strategies to bootstrap the failure times and construct confidence intervals for the optimal maintenance periodicity are presented and discussed. The methodology is applied to a real data set concerning the failure histories of a set of power transformers.pt_BR
dc.language.isoenpt_BR
dc.publisherComputational Statistics & Data Analysispt_BR
dc.sourcehttp://dx.doi.org/10.1016/j.csda.2013.02.006pt_BR
dc.subjectBounded intensity modelspt_BR
dc.subjectConstrained maximum likelihood estimationpt_BR
dc.subjectGreatest convex minorantpt_BR
dc.subjectMinimal repairpt_BR
dc.subjectPoisson processpt_BR
dc.subjectPower law processpt_BR
dc.titleNonparametric estimation and bootstrap confidence intervals for the optimal maintenance time of a repairable systempt_BR
dc.title.alternativeComputational Statistics & Data Analysispt_BR
dc.typeArtigo de Periódicopt_BR
dc.description.localpubSalvadorpt_BR
dc.identifier.numberv. 63pt_BR
Aparece nas coleções:Artigo Publicado em Periódico (IME)

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