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Bayesian accrual modeling and prediction in multicenter clinical trials with varying center activation times

机译:不同中心激活时间的多中心临床试验中贝叶斯的应力建模与预测

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Investigators who manage multicenter clinical trials need to pay careful attention to patterns of subject accrual, and the prediction of activation time for pending centers is potentially crucial for subject accrual prediction. We propose a Bayesian hierarchical model to predict subject accrual for multicenter clinical trials in which center activation times vary. We define center activation time as the time at which a center can begin enrolling patients in the trial. The difference in activation times between centers is assumed to follow an exponential distribution, and the model of subject accrual integrates prior information for the study with actual enrollment progress. We apply our proposed Bayesian multicenter accrual model to two multicenter clinical studies. The first is the PAIN-CONTRoLS study, a multicenter clinical trial with a goal of activating 40 centers and enrolling 400 patients within 104 weeks. The second is the HOBIT trial, a multicenter clinical trial with a goal of activating 14 centers and enrolling 200 subjects within 36 months. In summary, the Bayesian multicenter accrual model provides a prediction of subject accrual while accounting for both center- and individual patient-level variation.
机译:管理多中心临床试验的研究人员需要仔细关注受试者累积的模式,而对待定中心激活时间的预测对于受试者累积的预测可能至关重要。我们提出了一个贝叶斯层次模型来预测中心激活时间不同的多中心临床试验的受试者累积。我们将中心激活时间定义为中心开始为患者登记试验的时间。假设中心之间激活时间的差异服从指数分布,受试者累积模型将研究的先验信息与实际注册进度相结合。我们将我们提出的贝叶斯多中心累积模型应用于两项多中心临床研究。第一项是疼痛控制研究,这是一项多中心临床试验,目标是在104周内激活40个中心,招募400名患者。第二个是HOBIT试验,这是一项多中心临床试验,目标是在36个月内激活14个中心,招募200名受试者。总之,贝叶斯多中心累积模型提供了受试者累积的预测,同时考虑了中心和个体患者水平的变化。

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