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A Regression Framework for Causal Mediation Analysis with Applications to Behavioral Science

机译:应用于行为科学的因果调解分析的回归框架

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摘要

We introduce and extend the classical regression framework for conducting mediation analysis from the fit of only one model. Using the essential mediation components (EMCs) allows us to estimate causal mediation effects and their analytical variance. This single-equation approach reduces computation time and permits the use of a rich suite of regression tools that are not easily implemented on a system of three equations. Additionally, we extend this framework to non-nested mediation systems, provide a joint measure of mediation for complex mediation hypotheses, propose new visualizations for mediation effects, and explain why estimates of the total effect may differ depending on the approach used. Using data from social science studies, we also provide extensive illustrations of the usefulness of this framework and its advantages over traditional approaches to mediation analysis. The example data are freely available for download online and we include the R code necessary to reproduce our results.
机译:我们介绍并扩展了古典回归框架,用于从一个模型的拟合中进行中介分析。使用基本调解组件(EMCS)允许我们估计因果调解效应及其分析方差。这种单个方程方法减少了计算时间并允许使用在三个方程的系统上不容易实现的丰富的回归工具套件。此外,我们将此框架扩展到非嵌套中介系统,为复杂的调解假设提供联合调解的联合测量,提出了新的调解效果的可视化,并解释了为什么总效果的估计可能因使用的方法而异。利用社会科学研究的数据,我们还提供了广泛的说明本框架的有用性及其与传统调解分析方法的优势。示例数据可自由地可用于在线下载,我们包括再现结果所需的R代码。

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