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Time and Other Considerations in Mediation Design

机译:中介设计的时间和其他考虑因素

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This article serves as a practical guide to mediation design and analysis by evaluating the ability of mediation models to detect a significant mediation effect using limited data. The cross-sectional mediation model, which has been shown to be biased when the mediation is happening over time, is compared with longitudinal mediation models: sequential, dynamic, and cross-lagged panel. These longitudinal mediation models take time into account but bring many problems of their own, such as choosing measurement intervals and number of measurement occasions. Furthermore, researchers with limited resources often cannot collect enough data to fit an appropriate longitudinal mediation model. These issues were addressed using simulations comparing four mediation models each using the same amount of data but with differing numbers of people and time points. The data were generated using multilevel mediation models, with varying data characteristics that may be incorrectly specified in the analysis models. Models were evaluated using power and Type I error rates in detecting a significant indirect path. Multilevel longitudinal mediation analysis performed well in every condition, even in the misspecified conditions. Of the analyses that used limited data, sequential mediation had the best performance; therefore, it offers a viable second choice when resources are limited. Finally, each of these models were demonstrated in an empirical analysis.
机译:本文通过评估使用有限数据来检测中介模型检测显着的调解效果来进行调解设计和分析的实用指南。随着时间的推移发生在调解时,已经显示出偏置的横截面中介模型,与纵向中介模型进行比较:顺序,动态和交叉滞留板。这些纵向中介模型需要时间考虑到,但会带来许多问题,例如选择测量间隔和测量场合的数量。此外,资源有限的研究人员通常不能收集足够的数据以适应适当的纵向中介模型。使用仿真对比较四个中介模型来解决这些问题,每种中介模型使用相同数量的数据,而且具有不同数量的人和时间点。使用多级中介模型生成数据,具有不同数据特征,可以在分析模型中指定不正确。使用电源和I型错误率进行评估模型在检测到显着的间接路径时。即使在错过的条件下,多级纵向中介分析也良好地表现良好。在使用有限数据的分析中,连续调解具有最佳性能;因此,当资源有限时,它提供了可行的第二选择。最后,在经验分析中证明了这些模型中的每一个。

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