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Models and Strategies for Factor Mixture Analysis: An Example Concerning the Structure Underlying Psychological Disorders

机译:因子混合分析的模型和策略:关于心理障碍基础结构的例子

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摘要

The factor mixture model (FMM) uses a hybrid of both categorical and continuous latent variables. The FMM is a good model for the underlying structure of psychopathology because the use of both categorical and continuous latent variables allows the structure to be simultaneously categorical and dimensional. This is useful because both diagnostic class membership and the range of severity within and across diagnostic classes can be modeled concurrently. Although the conceptualization of the FMM has been explained in the literature, the use of the FMM is still not prevalent. One reason is that there is little research about how such models should be applied in practice and, once a well-fitting model is obtained, how it should be interpreted. In this article, the FMM is explored by studying a real data example on conduct disorder. By exploring this example, this article aims to explain the different formulations of the FMM, the various steps in building a FMM, and how to decide between an FMM and alternative models.
机译:因子混合模型(FMM)使用分类和连续潜在变量的混合体。 FMM是心理病理学基础结构的一个很好的模型,因为同时使用分类和连续潜在变量都可以使结构同时进行分类和维数。这很有用,因为可以同时对诊断类成员资格和诊断类内以及诊断类之间的严重性范围进行建模。尽管在文献中已经解释了FMM的概念化,但是FMM的使用仍然不普及。原因之一是关于如何在实践中应用这种模型的研究很少,一旦获得了合适的模型,应该如何解释它。在本文中,通过研究有关行为障碍的真实数据示例来探索FMM。通过探索此示例,本文旨在解释FMM的不同公式,构建FMM的各个步骤以及如何在FMM和替代模型之间进行决策。

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