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Stein-like Common Correlated Effects Estimation under Structural Breaks

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  • Shahnaz Parsaeian

    (Department of Economics, University of Kansas, Lawrence, KS 66045, USA)

Abstract

This paper develops a Stein-like combined estimator for large heterogeneous panel data models under common structural breaks. The model allows for cross-sectional dependence through a general multifactor error structure. By utilizing the common correlated effects (CCE) estimation technique, we propose a Stein-like combined estimator of the CCE full-sample estimator (i.e., estimation using both the pre-break and post-break observations) and the CCE post-break estimator (i.e., estimation using only the post-break sample observations). The proposed Stein-like combined estimator benefits from exploiting the pre-break sample observations. We derive the optimal combination weight by minimizing the asymptotic risk. We show the superiority of the CCE Stein-like combined estimator over the CCE post-break estimator in terms of the asymptotic risk. Further, we establish the asymptotic properties of the CCE mean group Stein-like combined estimator. The finite sample performance of our proposed estimator is investigated using Monte Carlo experiments and an empirical application of predicting the output growth of industrialized countries.

Suggested Citation

  • Shahnaz Parsaeian, 2024. "Stein-like Common Correlated Effects Estimation under Structural Breaks," Econometrics, MDPI, vol. 12(2), pages 1-23, April.
  • Handle: RePEc:gam:jecnmx:v:12:y:2024:i:2:p:11-:d:1378087
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    References listed on IDEAS

    as
    1. Tae-Hwy Lee & Shahnaz Parsaeian & Aman Ullah, 2022. "Efficient Combined Estimation under Structural Breaks," Advances in Econometrics, in: Essays in Honor of M. Hashem Pesaran: Prediction and Macro Modeling, volume 43, pages 119-142, Emerald Group Publishing Limited.
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