德国最低工资和工资增长:使用因果森林的异质处理效应

Patrick Burauel, Carsten Schroeder
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引用次数: 1

摘要

先前的研究表明,最低工资在不同的雇员群体中引起了不同的待遇效应。这项研究通常预先\textit{定义群体}。我们通过调整Athey等人(2019)在差异中差异环境中的广义随机森林实现,分析了以数据驱动的方式可以识别异质性的影响程度。这种数据驱动的方法可以检测到预先选择的亚组中发现的异质性的潜在虚假性质。2015年德国引入最低工资是制度背景,社会经济小组的数据是我们的经验基础。我们的分析不仅揭示了相当大的治疗异质性,还表明以前记录的效果异质性可以通过其他协变量的相互作用来解释。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The German Minimum Wage and Wage Growth: Heterogeneous Treatment Effects Using Causal Forests
Previous research suggests that minimum wages induce heterogeneous treatment effects on wages across different groups of employees. This research usually defines groups \textit{ex ante}. We analyze to what extent effect heterogeneities can be discerned in a data-driven manner by adapting the generalized random forest implementation of Athey et al (2019) in a difference-in-differences setting. Such a data-driven methodology allows detecting the potentially spurious nature of heterogeneities found in subgroups chosen ex-ante. The 2015 introduction of a minimum wage in Germany is the institutional background, with data of the Socio-economic Panel serving as our empirical basis. Our analysis not only reveals considerable treatment heterogeneities, it also shows that previously documented effect heterogeneities can be explained by interactions of other covariates.
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