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Should instrumental variables be used as matching variables?

机译:工具变量应该用作匹配变量吗?

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I show that for a linear model and estimating a coefficient on an endogenous explanatory variable, adding covariates that satisfy instrumental variables assumptions increases the amount of inconsistency. A special case is an endogenous binary treatment and estimating a constant treatment effect when matching on covariates that satisfy instrumental variables, rather than ignoribility, assumptions. I also establish a general result that implies that regression adjustment using the propensity score based on instrumental variables actually maximizes the inconsistency among regression-type estimators.
机译:我表明对于线性模型并估计内生解释变量的系数,添加满足工具变量假设的协变量会增加不一致的程度。一种特殊情况是内生的二进制处理,当匹配满足工具变量而非可忽略性假设的协变量时,估计恒定的处理效果。我还建立了一个普遍的结果,该结果暗示使用基于工具变量的倾向评分进行回归调整实际上会最大化回归类型估计量之间的不一致。

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