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结构方程模型的基于残差的诊断方法。

Residual-based diagnostics for structural equation models.

作者信息

Sánchez B N, Houseman E A, Ryan L M

机构信息

Department of Biostatistics, University of Michigan, School of Public Health, Ann Arbor, Michigan 48104, USA.

出版信息

Biometrics. 2009 Mar;65(1):104-15. doi: 10.1111/j.1541-0420.2008.01022.x. Epub 2008 Mar 29.

Abstract

Classical diagnostics for structural equation models are based on aggregate forms of the data and are ill suited for checking distributional or linearity assumptions. We extend recently developed goodness-of-fit tests for correlated data based on subject-specific residuals to structural equation models with latent variables. The proposed tests lend themselves to graphical displays and are designed to detect misspecified distributional or linearity assumptions. To complement graphical displays, test statistics are defined; the null distributions of the test statistics are approximated using computationally efficient simulation techniques. The properties of the proposed tests are examined via simulation studies. We illustrate the methods using data from a study of in utero lead exposure.

摘要

结构方程模型的经典诊断基于数据的汇总形式,不适用于检验分布或线性假设。我们将最近基于个体特定残差为相关数据开发的拟合优度检验扩展到具有潜在变量的结构方程模型。所提出的检验适用于图形显示,旨在检测错误指定的分布或线性假设。为补充图形显示,定义了检验统计量;使用计算效率高的模拟技术来近似检验统计量的零分布。通过模拟研究检验了所提出检验的性质。我们使用来自一项子宫内铅暴露研究的数据来说明这些方法。

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