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Please Call Again: Correcting Nonresponse Bias in Treatment Effect Models

机译:请再次致电:纠正治疗效果模型中的无反应偏差

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摘要

We propose a novel selectivity correction procedure to deal with survey attrition in treatment effect models, at the crossroads of the Heckit model and the bounding approach of Lee (2009). As a substitute for the instrument needed in sample selectivity correction models, we use information on the number of prior calls made to each individual before obtaining a response to the survey. We obtain sharp bounds to the average treatment effect on the common support of responding individuals. Because the number of prior calls brings information, we can obtain tighter bounds than in other nonparametric methods.
机译:在Heckit模型和Lee(2009)的边界方法的交叉点上,我们提出了一种新颖的选择性校正程序来处理治疗效果模型中的调查损耗。作为样本选择性校正模型中所需工具的替代品,我们在获得对调查的回应之前会使用有关对每个人进行的事先致电数量的信息。我们对响应个体的共同支持的平均治疗效果有了明确的界限。因为先前调用的次数带来了信息,所以我们可以获得比其他非参数方法更严格的界限。

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