Efficient Estimation for Staggered Rollout Designs

J. Roth, Pedro H. C. Sant’Anna
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引用次数: 27

Abstract

We study estimation of causal effects in staggered rollout designs, i.e. settings where there is staggered treatment adoption and the timing of treatment is as-good-as randomly assigned. We derive the most efficient estimator in a class of estimators that nests several popular generalized difference-in-differences methods. A feasible plug-in version of the efficient estimator is asymptotically unbiased with efficiency (weakly) dominating that of existing approaches. We provide both $t$-based and permutation-test-based methods for inference. In an application to a training program for police officers, confidence intervals for the proposed estimator are as much as eight times shorter than for existing approaches.
交错推出设计的有效估计
我们研究了交错推出设计中因果效应的估计,即采用交错治疗的设置,治疗时间与随机分配一样好。我们在一类包含几种流行的广义差中差方法的估计量中推导出最有效的估计量。有效估计量的可行插件版本是渐近无偏的,并且效率(弱)优于现有方法。我们提供了基于$t$和基于置换测试的推理方法。在一个警察培训项目的应用中,所提出的估计器的置信区间比现有方法缩短了8倍。
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