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Estimating Heterogeneous Causal Effects in the Presence of Irregular Assignment Mechanisms

机译:存在不规则分配机制时的异类因果效应估计

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This paper provides a link between causal inference and machine learning techniques - specifically, Classification and Regression Trees (CART) - in observational studies where the receipt of the treatment is not randomized, but the assignment to the treatment can be assumed to be randomized (irregular assignment mechanism). The paper contributes to the growing applied machine learning literature on causal inference, by proposing a modified version of the Causal Tree (CT) algorithm to draw causal inference from an irregular assignment mechanism. The proposed method is developed by merging the CT approach with the instrumental variable framework to causal inference, hence the name Causal Tree with Instrumental Variable (CT-IV). As compared to CT, the main strength of CT-IV is that it can deal more efficiently with the heterogeneity of causal effects, as demonstrated by a series of numerical results obtained on synthetic data. Then, the proposed algorithm is used to evaluate a public policy implemented by the Tuscan Regional Administration (Italy), which aimed at easing the access to credit for small firms. In this context, CT-IV breaks fresh ground for target-based policies, identifying interesting heterogeneous causal effects.
机译:本文提供了因果推理与机器学习技术之间的联系-特别是分类和回归树(CART)-在观察研究中,治疗的接受不是随机的,但可以认为治疗的分配是随机的(不规则分配机制)。本文提出了因果树(CT)算法的改进版本,以从不规则分配机制中提取因果推理,从而为因果推理方面的不断增长的应用机器学习文献做出了贡献。所提出的方法是通过将CT方法与工具变量框架与因果推理相结合而开发的,因此将其命名为带有工具变量的因果树(CT-IV)。与CT相比,CT-IV的主要优势在于,它可以更有效地处理因果关系的异质性,如通过合成数据获得的一系列数值结果所证明的。然后,所提出的算法用于评估由托斯卡纳地区管理局(意大利)实施的公共政策,该政策旨在简化小公司的信贷渠道。在这种情况下,第四次世界大战为基于目标的政策开辟了新天地,确定了有趣的异类因果关系。

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