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首页> 外文期刊>Statistica Sinica >EFFICIENT ESTIMATION IN PANEL DATA PARTIALLY ADDITIVE LINEAR MODEL WITH SERIALLY CORRELATED ERRORS
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EFFICIENT ESTIMATION IN PANEL DATA PARTIALLY ADDITIVE LINEAR MODEL WITH SERIALLY CORRELATED ERRORS

机译:具有串行相关误差的面板数据部分累加线性模型的有效估计

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摘要

The partially linear additive model arises in many scientific endeavors. In this paper, we look at inference given panel data and a serially correlated error component structure. By combining polynomial spline series approximation with least squares and the estimation of correlation, we propose a weighted semiparametric least squares estimator (WSLSE) for the parametric components, and a weighted polynomial spline series estimator (WPSSE) for the nonparametric components. The WSLSE is shown to be asymptotically normal and more efficient than the un-weighted one. In addition, based on the WSLSE and WPSSE, a two-stage local polynomial estimator (TSLLE) of the nonparametric components is proposed that takes both contemporaneous correlation and additive structure into account. The TSLLE has several advantages, including higher asymptotic efficiency and an oracle property that achieves the same asymptotic distribution of each additive component as if the parametric and other nonparametric components were known with certainty. Some simulation studies were conducted to illustrate the finite sample performance of the proposed procedure. An example of application to a set of panel data from a wage study is illustrated.
机译:部分线性加性模型出现在许多科学领域。在本文中,我们着眼于给定面板数据和与序列相关的错误分量结构的推论。通过结合具有最小二乘的多项式样条序列近似和相关估计,我们为参数分量提出了加权半参数最小二乘估计器(WSLSE),为非参数分量提出了加权多项式样条序列估计器(WPSSE)。 WSLSE被证明是渐近正常的,并且比未加权的更有效。另外,基于WSLSE和WPSSE,提出了同时考虑相关性和加性结构的两阶段非参数分量的局部多项式估计器(TSLLE)。 TSLLE具有几个优点,包括更高的渐近效率和预言性,可以确定每个加性成分的渐近分布,就像确定参数和其他非参数成分一样。进行了一些仿真研究,以说明所提出程序的有限样本性能。说明了从工资研究应用于一组面板数据的示例。

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