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Facing off with Scylla and Charybdis: a comparison of scalar partial and the novel possibility of approximate measurement invariance

机译:面对Scylla和Charybdis:标量部分和近似测量不变性的新颖可能性的比较

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摘要

Measurement invariance (MI) is a pre-requisite for comparing latent variable scores across groups. The current paper introduces the concept of approximate MI building on the work of Muthén and Asparouhov and their application of Bayesian Structural Equation Modeling (BSEM) in the software Mplus. They showed that with BSEM exact zeros constraints can be replaced with approximate zeros to allow for minimal steps away from strict MI, still yielding a well-fitting model. This new opportunity enables researchers to make explicit trade-offs between the degree of MI on the one hand, and the degree of model fit on the other. Throughout the paper we discuss the topic of approximate MI, followed by an empirical illustration where the test for MI fails, but where allowing for approximate MI results in a well-fitting model. Using simulated data, we investigate in which situations approximate MI can be applied and when it leads to unbiased results. Both our empirical illustration and the simulation study show approximate MI outperforms full or partial MI In detecting/recovering the true latent mean difference when there are (many) small differences in the intercepts and factor loadings across groups. In the discussion we provide a step-by-step guide in which situation what type of MI is preferred. Our paper provides a first step in the new research area of (partial) approximate MI and shows that it can be a good alternative when strict MI leads to a badly fitting model and when partial MI cannot be applied.
机译:测量不变性(MI)是比较各组潜在变量得分的先决条件。本文介绍了基于Muthén和Asparouhov的工作的近似MI构建的概念,以及它们在软件Mplus中的贝叶斯结构方程模型(BSEM)的应用。他们表明,使用BSEM可以将精确的零约束替换为近似零,以使距严格的MI的步长最小,仍然可以生成一个拟合模型。这一新机会使研究人员能够在一方面的MI程度与另一方面的模型拟合程度之间做出明确的权衡。在整篇文章中,我们讨论近似MI的主题,然后通过经验例证说明MI的测试失败,但在合适的模型中允许近似MI的结果。使用模拟数据,我们研究了在哪些情况下可以应用近似MI以及何时导致无偏结果。我们的经验图和模拟研究均显示,当在各组的截距和因子负荷中存在(许多)小的差异时,在检测/恢复真实的潜在均值差异方面,近似的MI胜过全部或部分MI。在讨论中,我们提供了分步指南,在哪种情况下首选哪种类型的MI。我们的论文为(局部)近似MI的新研究领域提供了第一步,并表明当严格的MI导致模型的拟合性差且无法应用局部MI时,它可能是一个很好的选择。

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