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两部分因素混合建模:在攻击性行为测量工具中的应用。

Two-Part Factor Mixture Modeling: Application to an Aggressive Behavior Measurement Instrument.

作者信息

Kim Youngkoung, Muthén Bengt O

机构信息

The College Board, New York.

出版信息

Struct Equ Modeling. 2009 Oct 1;16(4):602-624. doi: 10.1080/10705510903203516.

Abstract

This study introduces a two-part factor mixture model as an alternative analysis approach to modeling data where strong floor effects and unobserved population heterogeneity exist in the measured items. As the names suggests, a two-part factor mixture model combines a two-part model, which addresses the problem of strong floor effects by decomposing the data into dichotomous and continuous response components, with a factor mixture model, which explores unobserved heterogeneity in a population by establishing latent classes. Two-part factor mixture modeling can be an important tool for situations in which ordinary factor analysis produces distorted results and can allow researchers to better understand population heterogeneity within groups. Building a two-part factor mixture model involves a consecutive model building strategy that explores latent classes in the data for each part as well as a combination of the two-part. This model building strategy was applied to data from a randomized preventive intervention trial in Baltimore public schools administered by the Johns Hopkins Center for Early Intervention. The proposed model revealed otherwise unobserved subpopulations among the children in the study in terms of both their tendency toward and their level of aggression. Furthermore, the modeling approach was examined using a Monte Carlo simulation.

摘要

本研究引入了一个两部分因子混合模型,作为一种替代分析方法,用于对测量项目中存在强烈地板效应和未观察到的总体异质性的数据进行建模。顾名思义,两部分因子混合模型将一个两部分模型与一个因子混合模型相结合,前者通过将数据分解为二分响应和连续响应成分来解决强烈地板效应问题,后者通过建立潜在类别来探索总体中未观察到的异质性。当普通因子分析产生扭曲结果时,两部分因子混合建模可以成为一种重要工具,并能让研究人员更好地理解组内的总体异质性。构建两部分因子混合模型涉及一种连续的模型构建策略,该策略探索数据中每个部分的潜在类别以及两部分的组合。这种模型构建策略应用于约翰·霍普金斯早期干预中心在巴尔的摩公立学校进行的一项随机预防性干预试验的数据。所提出的模型揭示了研究中的儿童在攻击倾向和攻击水平方面未被观察到的亚群体。此外,使用蒙特卡罗模拟对建模方法进行了检验。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/32e4/2921717/aca0ced6508d/nihms222001f1.jpg

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