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Analyzing Long-Duration and High-Frequency Data Using the Time-Varying Effect Model

机译:使用时变效果模型分析长期和高频数据

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摘要

With the rapid development of methods for electronic data capture, longitudinal data sets with many assessment points have become common in mental health services and addiction research. These data typically exhibit complex and irregular patterns of change, and the relationship between variables may also change over time. Existing statistical methods are not flexible enough to capture this complexity, but a new method, the time-varying effect model (TVEM), permits modeling nearly any shape of change, and allows the effect of an independent variable on outcome to change over time. This paper introduces TVEM and illustrates its application using data from a 16-year study of 223 participants with serious mental illness and substance abuse.
机译:随着电子数据捕获方法的快速发展,具有许多评估点的纵向数据集在心理健康服务和成瘾研究中变得普遍。 这些数据通常表现出复杂和不规则的变化模式,并且变量之间的关系也可能随时间变化。 现有统计方法不足以捕获这种复杂性,而是一种新方法,时变效果模型(TVEM),允许建模几乎任何形式的变化,并允许在结果上实现独立变量以随着时间的推移而改变。 本文介绍了TVEM,并使用来自223名参与者的16年学习的数据来介绍其应用,具有严重的精神疾病和药物滥用。

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