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Moments of cross-sectional stock market returns and the German business cycle
Authors:Jörg Döpke  Karsten Müller  Lars Tegtmeier
Affiliation:1. Department of Business Administration and Information Sciences, University of Applied Sciences Merseburg, Merseburg, Germany;2. German Aerospace Center (DLR), Institute of Networked Energy Systems, Stuttgart, Germany
Abstract:Based on monthly data covering the period from 1987 to 2021, we analyse whether cross-sectional moments of stock market returns may provide information about the future position of the German business cycle. We apply in-sample forecasting regressions with and without leading indicators as control variables, pseudo-out-of-sample exercises, autoregressive distributed lag models, and impulse-response functions estimated by local projections. We find in-sample predictive power of the first and third cross-section moments for the future growth of industrial production, even if one controls for well-established leading indicators for the German business cycle. Out-of-sample tests show that these variables reduce the relative mean squared error compared with benchmark models. We do not find a long-run relation between the moment series and industrial production. The dynamic response of industrial production to a shock on the cross-section moments is in line with the other results.
Keywords:business cycle  Germany  leading indicator  stock market cross-sectional moments
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