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Estimating causal effects: considering three alternatives to difference-in-differences estimation

机译:估计因果效应:考虑差异中差异估计的三种替代方法

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摘要

Difference-in-differences (DiD) estimators provide unbiased treatment effect estimates when, in the absence of treatment, the average outcomes for the treated and control groups would have followed parallel trends over time. This assumption is implausible in many settings. An alternative assumption is that the potential outcomes are independent of treatment status, conditional on past outcomes. This paper considers three methods that share this assumption: the synthetic control method, a lagged dependent variable (LDV) regression approach, and matching on past outcomes. Our motivating empirical study is an evaluation of a hospital pay-for-performance scheme in England, the best practice tariffs programme. The conclusions of the original DiD analysis are sensitive to the choice of approach. We conduct a Monte Carlo simulation study that investigates these methods’ performance. While DiD produces unbiased estimates when the parallel trends assumption holds, the alternative approaches provide less biased estimates of treatment effects when it is violated. In these cases, the LDV approach produces the most efficient and least biased estimates.Electronic supplementary materialThe online version of this article (doi:10.1007/s10742-016-0146-8) contains supplementary material, which is available to authorized users.
机译:当在没有治疗的情况下,治疗组和对照组的平均结局随时间推移呈平行趋势时,差异差(DiD)估计器可提供无偏的治疗效果估计。在许多情况下,这种假设是不可信的。另一种假设是,潜在结果与治疗状态无关,取决于过去的结果。本文考虑了三种共享此假设的方法:综合控制方法,滞后因变量(LDV)回归方法以及对过去结果的匹配。我们的激励性实证研究是对英国最佳绩效费率计划中的医院绩效工资计划的评估。原始DiD分析的结论对方法的选择很敏感。我们进行了蒙特卡洛模拟研究,以调查这些方法的性能。尽管在平行趋势假设成立的情况下DiD会产生无偏估计,但是在违反DDI时,替代方法可以提供较少偏倚的治疗效果估计。在这些情况下,LDV方法可产生最有效且偏差最小的估计。电子补充材料本文的在线版本(doi:10.1007 / s10742-016-0146-8)包含补充材料,授权用户可以使用。

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