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Latent Variable Modelling: A Survey

机译:潜在变量建模:调查

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摘要

Latent variable modelling has gradually become an integral part of mainstream statistics and is currently used for a multitude of applications in different subject areas. Examples of 'traditional' latent variable models include latent class models, item-response models, common factor models, structural equation models, mixed or random effects models and covariate measurement error models. Although latent variables have widely different interpretations in different settings, the models have a very similar mathematical structure. This has been the impetus for the formulation of general modelling frameworks which accommodate a wide range of models. Recent developments include multilevel structural equation models with both continuous and discrete latent variables, multiprocess models and nonlinear latent variable models.
机译:潜在变量建模已逐渐成为主流统计的组成部分,目前已用于不同主题领域的大量应用程序。 “传统”潜在变量模型的示例包括潜在类别模型,项目响应模型,公共因子模型,结构方程模型,混合或随机效应模型以及协变量测量误差模型。尽管潜在变量在不同设置中的解释有很大不同,但是模型具有非常相似的数学结构。这是制定适用于各种模型的通用建模框架的动力。最近的发展包括具有连续和离散潜变量的多级结构方程模型,多过程模型和非线性潜变量模型。

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