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Estimation in Partially Linear Single-Index Models with Missing Covariates

机译:协变量缺失的部分线性单指标模型的估计

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摘要

In this article, we consider a partially linear single-index model Y = g(Zτθ_0) + Xτβ_0 +ε when the covariate X may be missing at random. We propose weighted estimators for the unknown parametric and nonparametric part by applying weighted estimating equations. We establish normality of the estimators of the parameters and asymptotic expansion for the estimator of the nonparametric part when the selection probabilities are unknown. Simulation studies are also conducted to illustrate the finite sample properties of these estimators.
机译:在本文中,当协变量X可能随机缺失时,我们考虑部分线性单指标模型Y = g(Zτθ_0)+Xτβ_0+ε。通过应用加权估计方程,我们为未知参数和非参数部分提出了加权估计器。当选择概率未知时,我们建立参数估计量的正态性和非参数部分的估计量的渐近展开。还进行了仿真研究,以说明这些估计量的有限样本属性。

著录项

  • 来源
    《Communications in Statistics 》 |2012年第18期| 3428-3447| 共20页
  • 作者

    X.H.LIU; Z.Z. WANG; X.M.HU;

  • 作者单位

    School of Mathematics Science and Computing Technology Central South University Hunuan 410075 China School of Statistics Jiangxi University of Finance and Economics Jiangxi China;

    School of Mathematics Science and Computing Technology Central South University Hunuan China;

    Mathematics and Statistics College Chongqing Technologyand Business University Chongqing China Academy of Mathematics and Systems Science Chinese Academy of Sciences Beijing China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Local linear regression; Missing at random; Partially linear single-index model; Weighted estimating equations;

    机译:局部线性回归随机丢失;部分线性单指标模型;加权估计方程;

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