Stochastic Search Variable Selection in Vector Error Correction Models with an Application to the Model of the UK Macroeconomy
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Jochmann, Markus
Koop, Gary
Leon-Gonzalez, Roberto
Strachan, Rodney
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John Wiley & Sons Inc
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This paper develops methods for stochastic search variable selection (currently popular with regression and vector autoregressive models) for vector error correction models where there are many possible restrictions on the cointegration space. We show how this allows the researcher to begin with a single unrestricted model and either do model selection or model averaging in an automatic and computationally efficient manner. We apply our methods to a large UK macroeconomic model.
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Journal of Applied Econometrics
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2037-12-31
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