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A recursive partitioning approach for subgroup identification in individual patient data meta‐analysis

机译:个体患者数据荟萃分析中用于亚组识别的递归分区方法

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摘要

BackgroundMotivated by the setting of clinical trials in low back pain, this work investigated statistical methods to identify patient subgroups for which there is a large treatment effect (treatment by subgroup interaction). Statistical tests for interaction are often underpowered. Individual patient data (IPD) meta‐analyses provide a framework with improved statistical power to investigate subgroups. However, conventional approaches to subgroup analyses applied in both a single trial setting and an IPD setting have a number of issues, one of them being that factors used to define subgroups are investigated one at a time. As individuals have multiple characteristics that may be related to response to treatment, alternative exploratory statistical methods are required.
机译:背景技术受腰背痛临床试验的启发,这项工作研究了统计方法,以鉴定治疗效果大的患者亚组(通过亚组相互作用进行治疗)。交互的统计测试通常功能不足。个别患者数据(IPD)荟萃分析提供了一个具有改进的统计能力的框架,可用于研究亚组。但是,在单个试验环境和IPD环境中应用的常规亚组分析方法存在许多问题,其中之一是一次要研究用于定义亚组的因素。由于个体具有可能与治疗反应相关的多种特征,因此需要其他探索性统计方法。

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