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dc.creatorPala, Luiz Otávio de Oliveira-
dc.creatorCarvalho, Marcela de M.-
dc.creatorSáfadi, Thelma-
dc.date.accessioned2025-01-31T17:10:02Z-
dc.date.available2025-01-31T17:10:02Z-
dc.date.issued2023-
dc.identifier.citationPALA, Luiz Otávio de Oliveira; CARVALHO, Marcela de M.; SÁFADI, Thelma. Analysis of count time series: a bayesian GARMA(p, q) approach. Austrian Journal of Statistics, [S.l.], v. 52, p. 131-151, 2023.pt_BR
dc.identifier.urihttp://repositorio.ufla.br/jspui/handle/1/59806-
dc.description.abstractExtensions of the Autoregressive Moving Average, ARMA(p, q), class for modeling non-Gaussian time series have been proposed in the literature in recent years, being applied in phenomena such as counts and rates. One of them is the Generalized Autoregressive Moving Average, GARMA(p, q), that is supported by the Generalized Linear Models theory and has been studied under the Bayesian perspective. This paper aimed to study models for time series of counts using the Poisson, Negative binomial and Poisson inverse Gaussian distributions, and adopting the Bayesian framework. To do so, we carried out a simulation study and, in addition, we showed a practical application and evaluation of these models by using a set of real data, corresponding to the number of vehicle thefts in Brazil.pt_BR
dc.languageen_USpt_BR
dc.publisherAustrian Society for Statisticspt_BR
dc.rightsacesso abertopt_BR
dc.rightsAttribution 4.0 International*
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/*
dc.sourceAustrian Journal of Statisticspt_BR
dc.subjectAutoregressive moving average modelspt_BR
dc.subjectCount datapt_BR
dc.subjectGeneralized linear modelspt_BR
dc.subjectMarkov chain Monte Carlo (MCMC)pt_BR
dc.subjectTime seriespt_BR
dc.titleAnalysis of count time series: a bayesian GARMA(p, q) approachpt_BR
dc.typeArtigopt_BR
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