Comparing GEE and Robust Standard Errors for Conditionally Dependent Data

Christopher Zorn
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引用次数: 95

Abstract

In recent years political scientists have become increasingly sensitive to questions of conditional dependence in their data. I outline and compare two general, widely-used approaches for addressing such dependence—robust variance estimators and generalized estimating equations (GEEs)—using data on votes in Supreme Court search and seizure decisions between 1963 and 1981. The results make clear that choices about the unit on which data are grouped, i.e., clustered, are typically of far greater significance than are decisions about which type estimator is used.
条件相关数据的GEE和鲁棒标准误差比较
近年来,政治学家对数据中的条件依赖性问题变得越来越敏感。我概述并比较了两种通用的、广泛使用的方法来解决这种依赖——稳健方差估计器和广义估计方程(GEEs)——使用1963年至1981年间最高法院搜查和扣押决定的投票数据。结果清楚地表明,选择数据分组的单位,即聚类,通常比决定使用哪种类型的估计器要重要得多。
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