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Out of Sample Predictability in Predictive Regressions with Many Predictor Candidates

Jesus Gonzalo and Jean-Yves Pitarakis

Papers from arXiv.org

Abstract: This paper is concerned with detecting the presence of out of sample predictability in linear predictive regressions with a potentially large set of candidate predictors. We propose a procedure based on out of sample MSE comparisons that is implemented in a pairwise manner using one predictor at a time and resulting in an aggregate test statistic that is standard normally distributed under the global null hypothesis of no linear predictability. Predictors can be highly persistent, purely stationary or a combination of both. Upon rejection of the null hypothesis we subsequently introduce a predictor screening procedure designed to identify the most active predictors. An empirical application to key predictors of US economic activity illustrates the usefulness of our methods and highlights the important forward looking role played by the series of manufacturing new orders.

Date: 2023-02, Revised 2023-10
New Economics Papers: this item is included in nep-ets
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Citations: View citations in EconPapers (1)

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http://arxiv.org/pdf/2302.02866 Latest version (application/pdf)

Related works:
Journal Article: Out-of-sample predictability in predictive regressions with many predictor candidates (2024) Downloads
Working Paper: Out of sample predictability in predictive regressions with many predictor candidates (2020) Downloads
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