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The Forecasting performance of the Factor model with Martingale Difference errors

Luca Mattia Rolla, Alessandro Giovannelli

arXiv 20 May 2022 · Econometrics

arXiv:2205.10256 · PDF · DOI · OpenAlex · Extracted main text

Abstract

This paper analyses the forecasting performance of a new class of factor models with martingale difference errors (FMMDE) recently introduced by Lee and Shao (2018). The FMMDE makes it possible to retrieve a transformation of the original series so that the resulting variables can be partitioned according to whether they are conditionally mean-independent with respect to past information. We contribute to the literature in two respects. First, we propose a novel methodology for selecting the number of factors in FMMDE. Through simulation experiments, we show the good performance of our approach for finite samples for various panel data specifications. Second, we compare the forecasting performance of FMMDE with alternative factor model specifications by conducting an extensive forecasting exercise using FRED-MD, a comprehensive monthly macroeconomic database for the US economy. Our empirical findings indicate that FMMDE provides an advantage in predicting the evolution of the real sector of the economy when the novel methodology for factor selection is adopted. These results are confirmed for key aggregates such as Production and Income, the Labor Market, and Consumption.

Citation extraction

19
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Most heavily cited references

The works this paper leans on most, across its whole bibliography — not restricted to papers in our corpus. Ranked by composite intensity, which combines how often a work is mentioned, how many sections mention it, and how much of that falls in the main text rather than the appendix.

ReferenceIntensityMentionsSectionsMain text
1lee2018martingale APACrefauthors Lee, C E. \ Shao, X. APACrefauthors \ (2018) 20180.92844100%
2lam2011estimation APACrefauthors Lam, C. , Yao, Q. \ Bathia, N. APAC… (2011) 20110.92843100%
3stock2002macroeconomic APACrefauthors Stock, J H. \ Watson, M W. APA… (2002) 2002 20.84333100%
4mccracken2016fred APACrefauthors McCracken, M W. \ Ng, S. APACrefaut… (2016) 20160.73732100%
5bai2002determining APACrefauthors Bai, J. \ Ng, S. APACrefauthors \ (2002) 20020.64422100%
6stock2002forecasting APACrefauthors Stock, J H. \ Watson, M W. APACr… (2002) 2002 10.64422100%
7gao2021modeling APACrefauthors Gao, Z. \ Tsay, R S. APACrefauthors \ (2021) 20210.58531100%
8giacomini2010forecast APACrefauthors Giacomini, R. \ Rossi, B. APACr… (2010) 20100.51121100%
9wang2022testing APACrefauthors Wang, G. , Zhu, K. \ Shao, X. APACref… (2022) 20220.51121100%
10alessi2010improved APACrefauthors Alessi, L. , Barigozzi, M. \ Capas… (1806) 20100.40511100%

Showing the top 10 of 19 scored citations.