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On empirical likelihood for linear models with missing responses
Authors:Yongsong Qin  Qingzhu Lei
Institution:School of Mathematical Sciences, Guangxi Normal University, Guilin, Guangxi 541004, China
Abstract:Suppose that we have a linear regression model Y=Xβ+ν0(X)εY=Xβ+ν0(X)ε with random error εε, where X is a random design variable and is observed completely, and Y is the response variable and some Y-values are missing at random (MAR). In this paper, based on the ‘complete’ data set for Y after inverse probability weighted imputation, we construct empirical likelihood statistics on EY   and ββ which have the χ2χ2-type limiting distributions under some new conditions compared with Xue (2009). Our results broaden the applicable scope of the approach combined with Xue (2009).
Keywords:Linear model  Empirical likelihood  Missing at random  Confidence interval
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