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首页> 外文期刊>Journal of pediatric psychology >An introduction to latent variable mixture modeling (Part 2): Longitudinal latent class growth analysis and growth mixture models
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An introduction to latent variable mixture modeling (Part 2): Longitudinal latent class growth analysis and growth mixture models

机译:潜在变量混合物建模简介(第2部分):纵向潜在类增长分析和增长混合物模型

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摘要

Objective Pediatric psychologists are often interested in finding patterns in heterogeneous longitudinal data. Latent variable mixture modeling is an emerging statistical approach that models such heterogeneity by classifying individuals into unobserved groupings (latent classes) with similar (more homogenous) patterns. The purpose of the second of a 2-article set is to offer a nontechnical introduction to longitudinal latent variable mixture modeling. Methods 3 latent variable approaches to modeling longitudinal data are reviewed and distinguished. Results Step-by-step pediatric psychology examples of latent growth curve modeling, latent class growth analysis, and growth mixture modeling are provided using the Early Childhood Longitudinal Study-Kindergarten Class of 1998-1999 data file. Conclusions Latent variable mixture modeling is a technique that is useful to pediatric psychologists who wish to find groupings of individuals who share similar longitudinal data patterns to determine the extent to which these patterns may relate to variables of interest.
机译:客观儿科心理学家通常对在异类纵向数据中寻找模式感兴趣。潜在变量混合建模是一种新兴的统计方法,它通过将个体分为具有相似(更均质)模式的未观察到的分组(潜在类别)来对这种异质性进行建模。第二篇文章的第二篇文章的目的是对纵向潜变量混合物建模提供非技术性的介绍。方法对3种潜在的纵向数据建模方法进行了综述和区分。结果使用1998-1999早期儿童纵向研究-幼儿园班级数据文件,提供了潜在生长曲线建模,潜在类生长分析和生长混合物建模的分步心理学实例。结论潜在变量混合建模是一种对希望找到共享相似纵向数据模式以确定这些模式可能与感兴趣变量相关程度的个体分组的儿科心理学家有用的技术。

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