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Optimal treatment regimes for survival endpoints using a locally-efficient doubly-robust estimator from a classification perspective

机译:从分类的角度来看,使用局部有效的双稳健估计量对生存终点的最佳治疗方案

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A treatment regime at a single decision point is a rule that assigns a treatment, among the available options, to a patient based on the patient's baseline characteristics. The value of a treatment regime is the average outcome of a population of patients if they were all treated in accordance to the treatment regime, where large values are desirable. The optimal treatment regime is a regime which results in the greatest value. Typically, the optimal treatment regime is estimated by positing a regression relationship for the outcome of interest as a function of treatment and baseline characteristics. However, this can lead to suboptimal treatment regimes when the regression model is misspecified. We instead consider value search estimators for the optimal treatment regime where we directly estimate the value for any treatment regime and then maximize this estimator over a class of regimes. For many studies the primary outcome of interest is survival time which is often censored. We derive a locally efficient, doubly robust, augmented inverse probability weighted complete case estimator for the value function with censored survival data and study the large sample properties of this estimator. The optimization is realized from a weighted classification perspective that allows us to use available off the shelf software. In some studies one treatment may have greater toxicity or side effects, thus we also consider estimating a quality adjusted optimal treatment regime that allows a patient to trade some additional risk of death in order to avoid the more invasive treatment.
机译:单个决策点的治疗方案是一种规则,该规则根据患者的基线特征在可用选项中为患者分配治疗。如果所有患者均根据治疗方案进行治疗,则治疗方案的价值是一组患者的平均结果,在这种情况下,希望获得较大的价值。最佳治疗方案是产生最大价值的方案。通常,通过根据治疗结果和基线特征确定目标结果的回归关系来估算最佳治疗方案。但是,当回归模型指定不正确时,这可能导致处理方案欠佳。相反,我们考虑针对最佳治疗方案的价值搜索估算器,在该方案中,我们直接估算任何治疗方案的价值,然后在一类方案中最大化该估算器。对于许多研究而言,感兴趣的主要结果是生存时间,通常会对其进行审查。我们针对带有删失生存数据的值函数,导出了局部有效,加倍健壮,增强的逆概率加权完整案例估计量,并研究了该估计量的大样本属性。从加权分类的角度实现了优化,这使我们可以使用现成的软件。在某些研究中,一种治疗可能具有更大的毒性或副作用,因此,我们还考虑评估一种质量调整的最佳治疗方案,该方案允许患者交易一些额外的死亡风险,以避免进行更具侵入性的治疗。

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