Estimating a Continuous Treatment Model with Spillovers: A Control Function Approach

Tadao Hoshino
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Abstract

We study a continuous treatment effect model in the presence of treatment spillovers through social networks. We assume that one's outcome is affected not only by his/her own treatment but also by a (weighted) average of his/her neighbors' treatments, both of which are treated as endogenous variables. Using a control function approach with appropriate instrumental variables, we show that the conditional mean potential outcome can be nonparametrically identified. We also consider a more empirically tractable semiparametric model and develop a three-step estimation procedure for this model. As an empirical illustration, we investigate the causal effect of the regional unemployment rate on the crime rate.
具有溢出效应的连续处理模型的估计:一种控制函数方法
我们研究了一个通过社会网络存在治疗溢出的连续治疗效应模型。我们假设一个人的结果不仅受到他/她自己的治疗的影响,而且受到他/她邻居治疗的(加权)平均值的影响,这两者都被视为内生变量。使用控制函数方法和适当的工具变量,我们表明条件平均潜在结果可以非参数识别。我们还考虑了一个经验上更易于处理的半参数模型,并为该模型开发了一个三步估计过程。作为实证分析,我们考察了地区失业率对犯罪率的因果关系。
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