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IDENTIFICATION AND INFERENCE FOR MARGINAL AVERAGE TREATMENT EFFECT ON THE TREATED WITH AN INSTRUMENTAL VARIABLE

机译:用仪器变量治疗的边缘平均处理效果的识别和推断

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摘要

In observational studies, treatments are typically not randomized and, therefore, estimated treatment effects may be subject to a confounding bias. The instrumental variable (IV) design plays the role of a quasi-experimental handle because the IV is associated with the treatment and only affects the outcome through the treatment. In this paper, we present a novel framework for identification and inferences, using an IV for the marginal average treatment effect amongst the treated (ETT) in the presence of unmeasured confounding. For inferences, we propose three semiparametric approaches: (i) an inverse probability weighting (IPW); (ii) an outcome regression (OR); and (iii) a doubly robust (DR) estimation, which is consistent if either (i) or (ii) is consistent, but not necessarily both. A closed-form locally semiparametric efficient estimator is obtained in the simple case of a binary IV, and outcome, and the efficiency bound is derived for the more general case.
机译:在观察性研究中,治疗通常不随机化,因此,估计的治疗效果可能受到混淆偏差。 乐器变量(iv)设计起到准实验手柄的作用,因为IV与治疗有关,并且仅通过治疗影响结果。 在本文中,我们介绍了一种用于鉴定和推论的新框架,使用IV在未测量的混淆存在下进行治疗(ETT)之间的边际平均治疗效果。 对于推论,我们提出了三种半导体方法:(i)反向概率加权(IPW); (ii)成果回归(或); (iii)一致的鲁棒(DR)估计,如果(i)或(ii)是一致的,但不一定都是一致的。 在二进制IV的简单情况下获得闭合的局部半甲酰胺估计器,结果是用于更常规情况的效率。

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