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领域统计学统计学
方法族Latent structureLatent structure
起源年份19982008–2014
提出者Yuan & Bentler (robust SEM/path framework); Huber (M-estimation foundation)Yuan & MacKinnon (median-regression formulation, 2014); robust bootstrap variants popularised by Hayes (2013) and Preacher & Hayes (2008)
类型Causal path modeling with robust estimationCausal inference / indirect effects
开创性文献Yuan, K.-H. & Bentler, P. M. (1998). Robust mean and covariance structure analysis. British Journal of Mathematical and Statistical Psychology, 51(1), 63–88. DOI ↗Yuan, Y., & MacKinnon, D. P. (2014). Robust mediation analysis based on median regression. Psychological Methods, 19(1), 1–20. DOI ↗
别名robust PA, path analysis with robust standard errors, robust causal path modeling, robust structural path modelingrobust indirect effects, outlier-resistant mediation, robust causal mediation
相关65
摘要Robust path analysis applies robust estimation — such as sandwich standard errors or M-estimation — to path models that specify directed causal relationships among observed variables. It preserves valid inference about path coefficients and indirect effects when data violate normality, contain outliers, or exhibit heteroscedasticity that would distort conventional standard errors.Robust mediation analysis estimates the indirect effect of an independent variable on an outcome through one or more mediators using estimators that resist the influence of outliers and non-normal error distributions. By combining robust regression (such as median or M-estimation) with percentile or bias-corrected bootstrap confidence intervals, it yields trustworthy conclusions when standard ordinary-least-squares mediation would be distorted by extreme observations.
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ScholarGate方法对比: Robust Path Analysis · Robust Mediation Analysis. 于 2026-06-15 检索自 https://scholargate.app/zh/compare