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Combination schemes for turning point predictions
Authors:Monica Billio  Roberto Casarin  Francesco Ravazzolo  Herman K. van Dijk
Affiliation:1. University Ca'' Foscari of Venice and GRETA Assoc. Venice, Italy;2. Norges Bank, Norway;3. BI Norwegian Business School, Norway;4. Econometric Institute, Erasmus University Rotterdam, The Netherlands;5. VU University Amsterdam and Tinbergen Institute, The Netherlands
Abstract:We propose new forecast combination schemes for predicting turning points of business cycles. The proposed combination schemes are based on the forecasting performances of a given set of models with the aim to provide better turning point predictions. In particular, we consider predictions generated by autoregressive (AR) and Markov-switching AR models, which are commonly used for business cycle analysis. In order to account for parameter uncertainty we consider a Bayesian approach for both estimation and prediction and compare, in terms of statistical accuracy, the individual models and the combined turning point predictions for the United States and the Euro area business cycles.
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