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Semiparametric Estimation of Partially Linear Dynamic Panel Data Models with Fixed Effects

机译:具有固定效应的部分线性动态面板数据模型的半曝光估计

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摘要

In this paper, we study a partially linear dynamic panel data model with fixed effects, where either exogenous or endogenous variables or both enter the linear part, and the lagged dependent variable together with some other exogenous variables enter the nonparametric part. Two types of estimation methods are proposed for the first-differenced model. One is composed of a semiparametric GMM estimator for the finite dimensional parameter and a local polynomial estimator for the infinite dimensional parameter m based on the empirical solutions to Fredholm integral equations of the second kind, and the other is a sieve IV estimate of the parametric and nonparametric components jointly. We study the asymptotic properties for these two types of estimates when the number of individuals N tends to infinity and the time period T is fixed. We also propose a specification test for the linearity of the nonparametric component based on a weighted square distance between the parametric estimate under the linear restriction and the semiparametric estimate under the alternative. Monte Carlo simulations suggest that the proposed estimators and tests perform well in finite samples. We apply the model to study the relationship between intellectual property right (IPR) protection and economic growth, and find that IPR has a nonlinear positive effect on the economic growth rate.
机译:在本文中,我们研究了与固定效应,其中任外源或内源的变量或两者进入线性部分的局部线性动态面板数据模型,并且滞后因变量连同其它一些外生变量进入非参数的一部分。两种类型的估计方法提出了一阶差分模式。一个由半参数GMM估计器,用于有限维参数以及基于所述第二种Fredholm积分方程经验性解无穷维参数m的局部多项式估计的,而另一种是参量的筛IV估计和非参数组件联合。当个体数N趋于无穷大,并且时间周期T是固定的,我们研究这两类估计的渐进性质。我们还提出了一种规格测试用于基于所述线性约束下的参数估计和所述替代下半参数估计之间的加权平方距离非参数分量的线性度。蒙特卡罗模拟表明,所提出的估计和检验有限样本中表现良好。我们运用模型来研究知识产权(IPR)保护与经济增长之间的关系,发现知识产权对经济增长率的非线性积极作用。

著录项

  • 作者

    Liangjun Su; Yonghui Zhang;

  • 作者单位
  • 年度 2016
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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