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Balancing Score Adjusted Targeted Minimum Loss-based Estimation

机译:平衡分数调整后的目标基于最小损失的估计

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摘要

Adjusting for a balancing score is sufficient for bias reduction when estimating causal effects including the average treatment effect and effect among the treated. Estimators that adjust for the propensity score in a nonparametric way, such as matching on an estimate of the propensity score, can be consistent when the estimated propensity score is not consistent for the true propensity score but converges to some other balancing score. We call this property the balancing score property, and discuss a class of estimators that have this property. We introduce a targeted minimum loss-based estimator (TMLE) for a treatment specific mean with the balancing score property that is additionally locally efficient and doubly robust. We investigate the new estimatoru27s performance relative to other estimators, including another TMLE, a propensity score matching estimator, an inverse probability of treatment weighted estimator, and a regression based estimator in simulation studies.
机译:当评估因果效应(包括平均治疗效果和被治疗者之间的效果)时,调整平衡分数足以减少偏见。当估计的倾向分数与真实倾向分数不一致时,收敛到某个其他平衡分数时,以非参数方式调整倾向分数的估计器(例如,对倾向分数的估计值进行匹配)可以是一致的。我们将此属性称为平衡分数属性,并讨论具有此属性的一类估计量。我们针对特定于治疗的均值引入了基于目标的基于最小损失的估计量(TMLE),其平衡得分属性在局部方面更为有效并且具有双重鲁棒性。我们在其他模拟研究中调查了新估计器相对于其他估计器的性能,包括另一个TMLE,倾向得分匹配估计器,治疗加权估计器的逆概率以及基于回归的估计器。

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