A flexible Bayesian periodic autoregressive model is used for the prediction of quarterly and monthly time series data. As the unknown autoregressive lag order, the occurrence of structural breaks and their respective break dates are common sources of uncertainty these are treated as random quantities within the Bayesian framework. Since no analytical expressions for the corresponding marginal posterior predictive distributions exist a Markov Chain Monte Carlo approach based on data augmentation is proposed. Its performance is demonstrated in Monte Carlo experiments. Instead of resorting to a model selection approach by choosing a particular candidate model for prediction, a forecasting approach based on Bayesian model averaging is used in order to account for model uncertainty and to improve forecasting accuracy. For model diagnosis a Bayesian sign test is introduced to compare the predictive accuracy of different forecasting models in terms of statistical significance. In an empirical application, using monthly unemployment rates of Germany, the performance of the model averaging prediction approach is compared to those of model selected Bayesian and classical (non)periodic time series models.
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Japan Meteorol Agcy, Meteorol Res Inst, Tsukuba, Ibaraki, Japan
Japan Meteorol Agcy, Numer Predict Dev Ctr, Tsukuba, Ibaraki, JapanJapan Meteorol Agcy, Meteorol Res Inst, Tsukuba, Ibaraki, Japan
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Dongyang Univ, Dept Railrd Construct & Safety Engn, Yeongju 36040, South KoreaDongyang Univ, Dept Railrd Construct & Safety Engn, Yeongju 36040, South Korea
Kim, Sungwon
Alizamir, Meysam
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Islamic Azad Univ, Hamedan Branch, Dept Civil Engn, Hamadan 6518115743, Hamadan, IranDongyang Univ, Dept Railrd Construct & Safety Engn, Yeongju 36040, South Korea
Alizamir, Meysam
Kim, Nam Won
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Korea Inst Civil Engn & Bldg Technol, Dept Land Water & Environm Res, Goyang Si 10223, South KoreaDongyang Univ, Dept Railrd Construct & Safety Engn, Yeongju 36040, South Korea
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Univ Nacl Tucuman, FACET, Artifitial Intelligence Lab, San Miguel De Tucuman, Tucuman, ArgentinaUniv Nacl Cordoba, FCEFyN, LIMAC, Cordoba, Argentina
Juarez, Gustavo
Franco, Leonardo
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Univ Malaga, ETSI Informat, Comp Sci Dept, Malaga, SpainUniv Nacl Cordoba, FCEFyN, LIMAC, Cordoba, Argentina
Franco, Leonardo
Patino, Daniel
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Univ Nacl San Juan, Inst Automat INAUT, San Juan, ArgentinaUniv Nacl Cordoba, FCEFyN, LIMAC, Cordoba, Argentina