Testing for Idiosyncratic Treatment Effect Heterogeneity

Jaime Ramirez-Cuellar
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引用次数: 1

Abstract

This paper provides asymptotically valid tests for the null hypothesis of no treatment effect heterogeneity. Importantly, I consider the presence of heterogeneity that is not explained by observed characteristics, or so-called idiosyncratic heterogeneity. When examining this heterogeneity, common statistical tests encounter a nuisance parameter problem in the average treatment effect which renders the asymptotic distribution of the test statistic dependent on that parameter. I propose an asymptotically valid test that circumvents the estimation of that parameter using the empirical characteristic function. A simulation study illustrates not only the test's validity but its higher power in rejecting a false null as compared to current tests. Furthermore, I show the method's usefulness through its application to a microfinance experiment in Bosnia and Herzegovina. In this experiment and for outcomes related to loan take-up and self-employment, the tests suggest that treatment effect heterogeneity does not seem to be completely accounted for by baseline characteristics. For those outcomes, researchers could potentially try to collect more baseline characteristics to inspect the remaining treatment effect heterogeneity, and potentially, improve treatment targeting.
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特异治疗效果异质性检验
本文为无治疗效果异质性的原假设提供了渐近有效的检验。重要的是,我认为异质性的存在不能用观察到的特征来解释,或所谓的特质异质性。在检验这种异质性时,常见的统计检验在平均处理效果中遇到一个麻烦参数问题,该问题使检验统计量的渐近分布依赖于该参数。我提出了一个渐近有效的检验,它绕过了使用经验特征函数对该参数的估计。仿真研究不仅证明了该测试的有效性,而且与现有测试相比,它在拒绝假零值方面具有更高的能力。此外,我还通过将该方法应用于波斯尼亚和黑塞哥维那的小额信贷实验来证明该方法的有效性。在本实验中,对于与贷款和自营职业相关的结果,测试表明,治疗效果的异质性似乎不能完全由基线特征来解释。对于这些结果,研究人员可能会尝试收集更多的基线特征来检查剩余的治疗效果异质性,并可能提高治疗的针对性。
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