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首页> 外文期刊>Statistica Sinica >PANEL DATA PARTIALLY LINEAR VARYING-COEFFICIENT MODEL WITH ERRORS CORRELATED IN SPACE AND TIME
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PANEL DATA PARTIALLY LINEAR VARYING-COEFFICIENT MODEL WITH ERRORS CORRELATED IN SPACE AND TIME

机译:具有时空相关误差的面板数据部分线性变化系数模型

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摘要

In this paper, we consider a panel data varying-coefficient partially linear model errors correlated in space and time. A serially correlated error structure is adopted for the correlation in time, and we propose an estimating procedure for the autoregressive coefficients in our set-up by combining a polynomial spline series approximation with least squares. The resulted estimators are shown to enjoy asymptotic properties. We construct a weighted semiparametric least squares estimator (WSLSE) and a weighted polynomial spline series estimator (WPSSE) for the parametric and nonparametric components of the mean model, respectively. The WSLSE is shown to be asymptotically normal and more efficient than the unweighted one, and the WPSSE is shown to achieve the optimal nonparametric convergence rate. Some simulation studies are reported to illustrate the finite sample performance of the proposed procedure. An application to Indonesian rice farming data is given.
机译:在本文中,我们考虑了在空间和时间上相关的面板数据变系数部分线性模型误差。时间相关采用了串行相关的误差结构,我们通过结合多项式样条级数逼近和最小二乘,为设置中的自回归系数提出了一种估计程序。结果表明,估计器具有渐近性质。我们分别为均值模型的参数和非参数分量构造了一个加权半参数最小二乘估计器(WSLSE)和一个加权多项式样条序列估计器(WPSSE)。 WSLSE被证明是渐近正态的,并且比未加权的更有效,WPSSE被证明可以达到最佳的非参数收敛速度。据报道,一些模拟研究表明了该程序的有限样本性能。给出了印度尼西亚稻米种植数据的应用。

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