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Comparison of frequentist and Bayesian regularization in structural equation modeling

机译:结构方程建模中频度和贝叶斯正则化的比较

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摘要

Research in regularization, as applied to structural equation modeling (SEM), remains in its infancy. Specifically, very little work has compared regularization approaches across both frequentist and Bayesian estimation. The purpose of this study was to address just that, demonstrating both similarity and distinction across estimation frameworks, while specifically highlighting more recent developments in Bayesian regularization. This is accomplished through the use of two empirical examples that demonstrate both ridge and lasso approaches across both frequentist and Bayesian estimation, along with detail regarding software implementation. We conclude with a discussion of future research, advocating for increased evaluation and synthesis across both Bayesian and frequentist frameworks.
机译:应用于结构方程模型(SEM)的正则化研究仍处于起步阶段。具体而言,很少有工作比较频数估计和贝叶斯估计的正则化方法。这项研究的目的就是要解决这一问题,同时证明估计框架之间的相似性和区别,同时特别强调贝叶斯正则化的最新发展。这是通过使用两个经验示例来完成的,这些示例说明了在频度估计和贝叶斯估计中的岭方法和套索方法,以及有关软件实现的详细信息。我们以对未来研究的讨论作为结尾,主张在贝叶斯框架和常客框架之间增加评估和综合。

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