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首页> 外文期刊>Journal of Economic Surveys >NONPARAMETRIC AND SEMIPARAMETRIC PANEL DATA MODELS: RECENT DEVELOPMENTS
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NONPARAMETRIC AND SEMIPARAMETRIC PANEL DATA MODELS: RECENT DEVELOPMENTS

机译:非参数和半参数面板数据模型:最新动态

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摘要

In this paper, we provide an intensive review of the recent developments for semiparametric and fully nonparametric panel data models that are linearly separable in the innovation and the individual-specific term. We analyze these developments under two alternative model specifications: fixed and random effects panel data models. More precisely, in the random effects setting, we focus our attention in the analysis of some efficiency issues that have to do with the so-called working independence condition. This assumption is introduced when estimating the asymptotic variance-covariance matrix of nonparametric estimators. In the fixed effects setting, to cope with the so-called incidental parameters problem, we consider two different estimation approaches: profiling techniques and differencing methods. Furthermore, we are also interested in the endogeneity problem and how instrumental variables are used in this context. In addition, for practitioners, we also show different ways of avoiding the so-called curse of dimensionality problem in pure nonparametric models. In this way, semiparametric and additive models appear as a solution when the number of explanatory variables is large.
机译:在本文中,我们对半参数和完全非参数面板数据模型的最新进展进行了深入的综述,这些模型在创新和特定于个人的术语中是线性可分离的。我们在两种替代模型规范下分析这些发展:固定效应面板数据模型和随机效应面板数据模型。更准确地说,在随机效应设置中,我们将注意力集中在分析与所谓的工作独立性条件有关的一些效率问题上。在估计非参数估计量的渐近方差-协方差矩阵时会引入此假设。在固定效果设置中,为了应对所谓的偶然参数问题,我们考虑了两种不同的估计方法:剖析技术和微分方法。此外,我们也对内生性问题以及在这种情况下如何使用工具变量感兴趣。另外,对于从业者,我们还展示了避免纯净非参数模型中所谓的维数问题诅咒的不同方法。这样,当解释变量的数量很大时,半参数模型和加性模型将作为解决方案出现。

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