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Modern variable selection for longitudinal semi-parametric models with missing data

机译:缺少数据的纵向半参数模型的现代变量选择

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摘要

Penalized methods for variable selection such as the Smoothly Clipped Absolute Deviation penalty have been increasingly applied to aid variable section in regression analysis. Much of the literature has focused on parametric models, while a few recent studies have shifted the focus and developed their applications for the popular semi-parametric, or distribution-free, generalized estimating equations (GEEs) and weighted GEE (WGEE). However, although the WGEE is composed of one main and one missing-data module, available methods only focus on the main module, with no variable selection for the missing-data module. In this paper, we develop a new approach to further extend the existing methods to enable variable selection for both modules. The approach is illustrated by both real and simulated study data.
机译:变量选择的惩罚方法,例如“平滑裁剪的绝对偏差”罚分已越来越多地用于回归分析中的变量部分。许多文献集中在参数模型上,而最近的一些研究转移了焦点,并将其应用于流行的半参数或无分布的广义估计方程(GEE)和加权GEE(WGEE)。但是,尽管WGEE由一个主模块和一个缺失数据模块组成,但是可用方法仅集中在主模块上,没有为缺失数据模块选择变量。在本文中,我们开发了一种新方法来进一步扩展现有方法,以实现两个模块的变量选择。实际和模拟研究数据都说明了该方法。

著录项

  • 来源
    《Journal of applied statistics 》 |2018年第16期| 2548-2562| 共15页
  • 作者单位

    Emory Univ, Dept Biostat & Bioinformat, Atlanta, GA 30322 USA;

    Univ Rochester, Dept Biostat & Computat Biol, Rochester, NY 14627 USA;

    Univ Toledo, Dept Math & Stat, 2801 W Bancroft St, Toledo, OH 43606 USA;

    Univ Calif Davis, Dept Stat, Davis, CA 95616 USA;

    Univ Calif San Diego, Dept Family Med & Publ Hlth, San Diego, CA 92103 USA;

    Univ Rochester, Dept Biostat & Computat Biol, Rochester, NY 14627 USA;

    Univ Rochester, Dept Biostat & Computat Biol, Rochester, NY 14627 USA;

    Univ Calif San Diego, Dept Family Med & Publ Hlth, San Diego, CA 92103 USA;

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

    HIV; missing at random; SCAD; structural equation models; WGEE;

    机译:HIV;随机缺失;SCAD;结构方程模型;WGEE;

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