Adaptive Forecasting in the Presence of Recent and Ongoing Structural Change
Liudas Giraitis,
George Kapetanios and
Simon Price
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Liudas Giraitis: Queen Mary, University of London
No 691, Working Papers from Queen Mary University of London, School of Economics and Finance
Abstract:
We consider time series forecasting in the presence of ongoing structural change where both the time series dependence and the nature of the structural change are unknown. Methods that downweight older data, such as rolling regressions, forecast averaging over different windows and exponentially weighted moving averages, known to be robust to historical structural change, are found to be also useful in the presence of ongoing structural change in the forecast period. A crucial issue is how to select the degree of downweighting, usually defined by an arbitrary tuning parameter. We make this choice data dependent by minimizing forecast mean square error, and provide a detailed theoretical analysis of our proposal. Monte Carlo results illustrate the methods. We examine their performance on 191 UK and US macro series. Forecasts using data-based tuning of the data discount rate are shown to perform well.
Keywords: Recent and ongoing structural change; Forecast combination; Robust forecasts (search for similar items in EconPapers)
JEL-codes: C10 C59 (search for similar items in EconPapers)
Date: 2012-03-01
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Citations: View citations in EconPapers (2)
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Related works:
Working Paper: Adaptive forecasting in the presence of recent and ongoing structural change (2014) 
Journal Article: Adaptive forecasting in the presence of recent and ongoing structural change (2013) 
Working Paper: Adaptive Forcasting in the Presence of Recent and Ongoing Structural Change (2012) 
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Persistent link: https://EconPapers.repec.org/RePEc:qmw:qmwecw:691
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