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Continuous Bayesian adaptive randomization based on event times with covariates.

机译:基于事件时间和协变量的连续贝叶斯自适应随机化。

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In comparative clinical trials, the randomization probabilities may be unbalanced adaptively by utilizing the interim data available at each patient's entry time to favour the treatment or treatments having comparatively superior outcomes. This is ethically appealing because, on average, more patients are assigned to the more successful treatments. Consequently, physicians are more likely to enroll patients onto trials where the randomization is outcome-adaptive rather than balanced in the conventional manner. Outcome-adaptive methods based on a binary variable may be applied by reducing an event time to the indicator of the event's occurrence within a predetermined time interval. This results in a loss of information, however, since it ignores the censoring times of patients who have not experienced the event but whose evaluation interval is not complete. This paper proposes and compares exact and approximate Bayesian outcome-adaptive randomization procedures based on time-to-event outcomes. The procedures account for baseline prognostic covariates, and they may be applied continuously over the course of the trial. We illustrate these methods by application to a phase II selection trial in acute leukaemia. A simulation study in the context of this trial is presented.
机译:在比较性临床试验中,通过利用每个患者入院时可用的中期数据,可以偏向于随机化概率,以偏向于一种或多种疗效相对较好的治疗。这在道德上具有吸引力,因为平均而言,将更多的患者分配到更成功的治疗中。因此,医师更有可能将患者纳入随机试验是适应结果的试验,而不是以常规方式进行平衡的试验。可以通过在预定时间间隔内将事件时间减少到事件发生的指示符来应用基于二进制变量的结果自适应方法。但是,这导致信息丢失,因为它忽略了未经历事件但评估间隔未完成的患者的检查时间。本文提出并比较了基于事件发生时间的精确和近似贝叶斯结果自适应随机程序。该程序说明了基线预后协变量,并且可以在试验过程中连续应用。我们通过将其应用于急性白血病的II期选择试验来说明这些方法。在该试验的背景下进行了模拟研究。

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