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Combined Estimation of Treatment Effects Under a Discrete Random Effects Model

机译:离散随机效应模型下治疗效果的组合估计

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Combining information from different groups of data, such as regions in a multi-regional study or trials in a meta-analysis, is an increasingly important problem in clinical drug development. This paper focuses on the combination of treatment effect estimates from independent sources of data (e.g., regions, trials) under a discrete, patient-level random effects model. The approach is motivated by multi-regional clinical studies, being also illustrated in the context of meta-analysis. Comparisons to traditional combination of information methods based on fixed effects (multi-regional trials) and study-level random effects (meta-analysis) are also discussed.
机译:结合来自不同数据组的信息,例如多区域研究中的区域或荟萃分析中的试验,已成为临床药物开发中日益重要的问题。本文重点讨论在离散的,患者水平的随机效应模型下,来自独立数据源(例如区域,试验)的治疗效果估计值的组合。该方法受到多区域临床研究的启发,并在荟萃分析中得到了说明。还讨论了基于固定效应(多区域试验)和研究水平随机效应(元分析)的传统信息方法组合的比较。

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