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Empirical Bayes Methods for Dynamic Factor Models

delete2017-07-01
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OA
AI
S
Siem Jan Koopman *
G
Geert Mesters
DOI:10.1162/REST_a_00614delete
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摘要

摘要

En 中文
We consider the dynamic factor model where the loading matrix, the dynamic factors, and the disturbances are treated as latent stochastic processes. We present empirical Bayes methods that enable the shrinkagebased estimation of the loadings and factors. We investigate the methods in a large Monte Carlo study where we evaluate the finite sample properties of the empirical Bayes methods for quadratic loss functions. Finally, we present and discuss the results of an empirical study concerning the forecasting of U.S. macroeconomic time series using our empirical Bayes methods.
Keyword:
MAXIMUM-LIKELIHOOD-ESTIMATION
NUMBER
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期刊

Review of Economics and Statistics 封面图
Review of Economics and Statistics
IF:
6.8
论文数:
3.6K
被引数:
2.1W

机构

V
Vrije Universiteit Amsterdam
学者数:
4.2W
论文数: 3.7W
被引数: 3.7W
A
Aarhus University
学者数:
4.3W
论文数: 4.2W
被引数: 4.8W
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