A Sharp Test for the Judge Leniency Design

Mohamed Coulibaly, Yu-Chin Hsu, Ismael Mourifi'e, Yuanyuan Wan
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Abstract

We propose a new specification test to assess the validity of the judge leniency design. We characterize a set of sharp testable implications, which exploit all the relevant information in the observed data distribution to detect violations of the judge leniency design assumptions. The proposed sharp test is asymptotically valid and consistent and will not make discordant recommendations. When the judge's leniency design assumptions are rejected, we propose a way to salvage the model using partial monotonicity and exclusion assumptions, under which a variant of the Local Instrumental Variable (LIV) estimand can recover the Marginal Treatment Effect. Simulation studies show our test outperforms existing non-sharp tests by significant margins. We apply our test to assess the validity of the judge leniency design using data from Stevenson (2018), and it rejects the validity for three crime categories: robbery, drug selling, and drug possession.
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法官宽大处理设计的严峻考验
我们提出了一种新的规范测试来评估法官宽大处理设计的有效性。我们利用观测数据分布中的所有相关信息来检测违反法官宽大处理设计假设的情况,从而描述了一组可检验的尖锐含义。所提出的尖锐检验具有渐进有效性和一致性,不会提出不一致的建议。当法官宽大处理设计假设被拒绝时,我们提出了一种利用部分单调性和排除假设挽救模型的方法,在此假设下,局部工具变量(LIV)估计的变体可以恢复边际治疗效果。模拟研究表明,我们的检验方法明显优于现有的非锐利检验方法。我们使用 Stevenson(2018)的数据应用我们的检验来评估法官宽大处理设计的有效性,结果拒绝了抢劫、贩卖毒品和持有毒品这三类犯罪的有效性。
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