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Specification tests for the propensity score

机译:规格测试倾向得分

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This paper proposes new nonparametric diagnostic tools to assess the asymptotic validity of different treatment effects estimators that rely on the correct specification of the propensity score. We derive a particular restriction relating the propensity score distribution of treated and control groups, and develop specification tests based upon it. The resulting tests do not suffer from the "curse of dimensionality" when the vector of covariates is high-dimensional, are fully data-driven, do not require tuning parameters such as bandwidths, and are able to detect a broad class of local alternatives converging to the null at the parametric rate n(-1/2), with n the sample size. We show that the use of an orthogonal projection on the tangent space of nuisance parameters facilitates the simulation of critical values by means of a multiplier bootstrap procedure, and can lead to power gains. The finite sample performance of the tests is examined by means of a Monte Carlo experiment and an empirical application. Open-source software is available for implementing the proposed tests. (C) 2019 Elsevier B.V. All rights reserved.
机译:本文提出了新的非参数诊断工具,以评估不同治疗效果估计的渐近有效性,依赖于倾向评分的正确规范。我们推导出特定的限制,与处理和对照组的倾向分数分布相关,并基于其开发规格测试。当协变量的向量是高维时,所得到的测试不会遭受“维度的维度”,是完全数据驱动的,不需要调谐参数,例如带宽,并且能够检测广泛的本地替代方案会聚在参数速率n(-1/2)处的空位,使用n个样本大小。我们表明,在滋扰参数的切线空间上使用正交投影借助乘法器的引导程序进行临界值的仿真,并且可以导致电力增益。通过Monte Carlo实验和经验应用检查测试的有限样本性能。开源软件可用于实现所提出的测试。 (c)2019年Elsevier B.V.保留所有权利。

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