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Measuring the individual benefit of a medical or behavioral treatment using generalized linear mixed-effects models

机译:使用广义线性混合效应模型衡量医学或行为治疗的个人利益

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We propose statistical definitions of the individual benefit of a medical or behavioral treatment and of the severity of a chronic illness. These definitions are used to develop a graphical method that can be used by statisticians and clinicians in the data analysis of clinical trials from the perspective of personalized medicine. The method focuses on assessing and comparing individual effects of treatments rather than average effects and can be used with continuous and discrete responses, including dichotomous and count responses. The method is based on new developments in generalized linear mixed-effects models, which are introduced in this article. To illustrate, analyses of data from the Sequenced Treatment Alternatives to Relieve Depression clinical trial of sequences of treatments for depression and data from a clinical trial of respiratory treatments are presented. The estimation of individual benefits is also explained. Copyright (c) 2016 John Wiley & Sons, Ltd.
机译:我们提出了关于医学或行为治疗的个人收益以及慢性病严重程度的统计定义。这些定义用于开发图形方法,统计学家和临床医生可以从个性化医学的角度对临床试验的数据进行分析。该方法侧重于评估和比较治疗的个体效果,而不是平均效果,并且可用于连续和离散响应,包括二分和计数响应。该方法基于本文介绍的广义线性混合效应模型的新发展。为了说明,对缓解抑郁症的序列治疗方案的数据进行了分析,并对抑郁症的治疗序列进行了分析,并给出了呼吸治疗临床试验的数据。还说明了个人收益的估算。版权所有(c)2016 John Wiley&Sons,Ltd.

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