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纵向中介效应横断面分析中的偏倚。

Bias in cross-sectional analyses of longitudinal mediation.

作者信息

Maxwell Scott E, Cole David A

机构信息

Department of Psychology, University of Notre Dame, Notre Dame, IN 46556, USA.

出版信息

Psychol Methods. 2007 Mar;12(1):23-44. doi: 10.1037/1082-989X.12.1.23.

Abstract

Most empirical tests of mediation utilize cross-sectional data despite the fact that mediation consists of causal processes that unfold over time. The authors considered the possibility that longitudinal mediation might occur under either of two different models of change: (a) an autoregressive model or (b) a random effects model. For both models, the authors demonstrated that cross-sectional approaches to mediation typically generate substantially biased estimates of longitudinal parameters even under the ideal conditions when mediation is complete. In longitudinal models where variable M completely mediates the effect of X on Y, cross-sectional estimates of the direct effect of X on Y, the indirect effect of X on Y through M, and the proportion of the total effect mediated by M are often highly misleading.

摘要

尽管中介作用包含随时间展开的因果过程,但大多数中介作用的实证检验都使用横截面数据。作者考虑了纵向中介作用可能在两种不同变化模型中的任何一种下发生的可能性:(a) 自回归模型或 (b) 随机效应模型。对于这两种模型,作者都证明,即使在中介作用完成的理想条件下,横截面中介作用方法通常也会产生对纵向参数的大幅偏差估计。在变量M完全中介X对Y的效应的纵向模型中,X对Y的直接效应、X通过M对Y的间接效应以及由M介导的总效应比例的横截面估计往往具有很大的误导性。

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