多因素误差结构面板数据模型的计量经济学分析

IF 6.8 2区 经济学 Q1 ECONOMICS
Hande Karabıyık, F. Palm, J. Urbain
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引用次数: 11

摘要

经济面板数据通常表现出横截面依赖性,即使在对适当的解释变量进行调节之后也是如此。通常使用两种方法对经济面板数据中的横截面依赖性进行建模:空间依赖性方法,用单位之间的距离来解释横截面依赖;残差多因素方法,用不同程度影响个体的常见因素来解释横截依赖。本文综述了具有截面依赖性的平稳和非平稳面板数据的估计和统计推断理论,特别是具有多因素误差结构的模型。提供了检验单位根、斜率同质性、协整和因子数量的检验和诊断。我们讨论了一些问题,如估计共同因素,处理实践中的参数过多,结构稳定性和非线性测试,以及处理模型和参数的不确定性。最后,我们讨论了与使用这些经济面板模型有关的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Econometric Analysis of Panel Data Models with Multifactor Error Structures
Economic panel data often exhibit cross-sectional dependence, even after conditioning on appropriate explanatory variables. Two approaches to modeling cross-sectional dependence in economic panel data are often used: the spatial dependence approach, which explains cross-sectional dependence in terms of distance among units, and the residual multifactor approach, which explains cross-sectional dependence by common factors that affect individuals to a different extent. This article reviews the theory on estimation and statistical inference for stationary and nonstationary panel data with cross-sectional dependence, particularly for models with a multifactor error structure. Tests and diagnostics for testing for unit roots, slope homogeneity, cointegration, and the number of factors are provided. We discuss issues such as estimating common factors, dealing with parameter plethora in practice, testing for structural stability and nonlinearity, and dealing with model and parameter uncertainty. Finally, we address issues related to the use of these economic panel models.
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来源期刊
CiteScore
9.70
自引率
3.60%
发文量
34
期刊介绍: The Annual Review of Economics covers significant developments in the field of economics, including macroeconomics and money; microeconomics, including economic psychology; international economics; public finance; health economics; education; economic growth and technological change; economic development; social economics, including culture, institutions, social interaction, and networks; game theory, political economy, and social choice; and more.
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