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A modified classification tree method for personalized medicine decisions

机译:个性化医学决策的改进分类树方法

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The tree-based methodology has been widely applied to identify predictors of health outcomes in medical studies. However, the classical tree-based approaches do not pay particular attention to treatment assignment and thus do not consider prediction in the context of treatment received. In recent years, attention has been shifting from average treatment effects to identifying moderators of treatment response, and tree-based approaches to identify subgroups of subjects with enhanced treatment responses are emerging. In this study, we extend and present modifications to one of these approaches (Zhang et al., 2010) to efficiently identify subgroups of subjects who respond more favorably to one treatment than another based on their baseline characteristics. We extend the algorithm by incorporating an automatic pruning step and propose a measure for assessment of the predictive performance of the constructed tree. We evaluate the proposed method through a simulation study and illustrate the approach using a data set from a clinical trial of treatments for alcohol dependence. This simple and efficient statistical tool can be used for developing algorithms for clinical decision making and personalized treatment for patients based on their characteristics.
机译:基于树的方法已广泛应用于在医学研究中确定健康结局的预测因子。但是,传统的基于树的方法没有特别注意治疗分配,因此在所接受的治疗范围内没有考虑预测。近年来,注意力已经从平均治疗效果转移到确定治疗反应的调节剂,并且基于树的方法来鉴定具有增强的治疗反应的受试者的亚组正在兴起。在这项研究中,我们扩展并提出了对这些方法之一的修改(Zhang等,2010),以根据其基线特征有效地识别出对一种治疗的反应优于另一种治疗的受试者的亚组。我们通过合并自动修剪步骤扩展了算法,并提出了一种评估所构造树的预测性能的措施。我们通过模拟研究评估提出的方法,并使用来自酒精依赖治疗临床试验的数据集说明了该方法。这种简单而有效的统计工具可用于开发算法,以根据患者的特征为患者进行临床决策和个性化治疗。

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