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首页> 外文期刊>Psychosomatic Medicine: Journal of the American Psychosomatic Society >Applying mixed regression models to the analysis of repeated-measures data in psychosomatic medicine.
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Applying mixed regression models to the analysis of repeated-measures data in psychosomatic medicine.

机译:将混合回归模型应用于心身医学中重复测量数据的分析。

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OBJECTIVE: Although repeated-measures designs are increasingly common in research on psychosomatic medicine, they are not well suited to the conventional statistical techniques that scientists often apply to them. The goal of this article is to introduce readers to mixed regression models, which provide a more flexible and accurate framework for managing repeated-measures data. METHODS AND RESULTS: We begin with a summary of the advantages that mixed regression models have over conventional statistical techniques in the context of repeated-measures designs. Next, we outline the conceptual and mathematical underpinnings of mixed regression models for a nonstatistical audience. The article ends with two examples of how these models can be applied in psychosomatic research; one deals with a prospective investigation of depressive symptoms and change in body mass index in older adults and the other with a diary study of social interactions and cortisol secretion. CONCLUSIONS: Mixed regression models offer a flexible and powerful approach to analyzing repeated-measures data. They possess important advantages over more traditional strategies, and more widespread application of these models is likely to enhance the overall quality of psychosomatic research.
机译:目的:尽管重复测量设计在心身医学研究中越来越普遍,但它们并不十分适合科学家经常应用于它们的常规统计技术。本文的目的是向读者介绍混合回归模型,该模型为管理重复测量数据提供了更灵活,更准确的框架。方法和结果:我们首先总结了在重复测量设计的背景下混合回归模型相对于传统统计技术的优势。接下来,我们概述了非统计受众的混合回归模型的概念和数学基础。本文以两个如何在心身研究中应用这些模型为例。一项针对老年人的抑郁症状和体重指数变化进行前瞻性研究,另一项针对社会互动和皮质醇分泌的日记研究。结论:混合回归模型提供了一种灵活而强大的方法来分析重复测量数据。与更传统的策略相比,它们具有重要的优势,并且这些模型的更广泛应用可能会提高心身研究的整体质量。

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