The focused information criterion for varying-coefficient partially linear measurement error models

被引:0
作者
Hai Ying Wang
Xinjie Chen
Nancy Flournoy
机构
[1] University of New Hampshire,Department of Mathematics and Statistics
[2] Chinese Academy of Sciences,Academy of Mathematics and Systems Science
[3] University of Missouri,Department of Statistics
来源
Statistical Papers | 2016年 / 57卷
关键词
Focused information criterion; Measurement errors; Model averaging; Model selection; Semi-parametric models;
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中图分类号
学科分类号
摘要
Under general parametric models, Claeskens and Hjort (J Am Stat Assoc 98:900–916, 2003) proposed a focused information criterion for model selection which emphasizes the accuracy of estimation for particular parameters of interest. This paper extends their framework to include a semi-parametric varying-coefficient partially linear model when covariates in both the parametric and the non-parametric parts are subject to measurement errors. We allow the covariance matrices of the measurement errors to be unknown and be estimated by replicated observations. Also, we derive the asymptotic properties of the frequentist model average estimator for the model in consideration, which generalizes the results obtained by Wang et al. (Electron J Stat 6:1017–1039, 2012). In addition to asymptotic properties, finite sample performance of the proposed methods are examined in a simulation study, and a data set obtained from Continuing Survey of Food Intakes by Individuals conducted by the U.S. Department of Agriculture’s (CSFII) is considered.
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页码:99 / 113
页数:14
相关论文
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