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使用逆概率比加权法进行多中介变量中介分析的实用指南。

Practical guidance for conducting mediation analysis with multiple mediators using inverse odds ratio weighting.

作者信息

Nguyen Quynh C, Osypuk Theresa L, Schmidt Nicole M, Glymour M Maria, Tchetgen Tchetgen Eric J

出版信息

Am J Epidemiol. 2015 Mar 1;181(5):349-56. doi: 10.1093/aje/kwu278. Epub 2015 Feb 17.

Abstract

Despite the recent flourishing of mediation analysis techniques, many modern approaches are difficult to implement or applicable to only a restricted range of regression models. This report provides practical guidance for implementing a new technique utilizing inverse odds ratio weighting (IORW) to estimate natural direct and indirect effects for mediation analyses. IORW takes advantage of the odds ratio's invariance property and condenses information on the odds ratio for the relationship between the exposure (treatment) and multiple mediators, conditional on covariates, by regressing exposure on mediators and covariates. The inverse of the covariate-adjusted exposure-mediator odds ratio association is used to weight the primary analytical regression of the outcome on treatment. The treatment coefficient in such a weighted regression estimates the natural direct effect of treatment on the outcome, and indirect effects are identified by subtracting direct effects from total effects. Weighting renders treatment and mediators independent, thereby deactivating indirect pathways of the mediators. This new mediation technique accommodates multiple discrete or continuous mediators. IORW is easily implemented and is appropriate for any standard regression model, including quantile regression and survival analysis. An empirical example is given using data from the Moving to Opportunity (1994-2002) experiment, testing whether neighborhood context mediated the effects of a housing voucher program on obesity. Relevant Stata code (StataCorp LP, College Station, Texas) is provided.

摘要

尽管近期中介分析技术蓬勃发展,但许多现代方法难以实施,或仅适用于有限范围的回归模型。本报告为实施一种利用逆比值比加权(IORW)来估计中介分析中自然直接效应和间接效应的新技术提供实用指南。IORW利用比值比的不变性,通过将暴露对中介变量和协变量进行回归,汇总了在协变量条件下暴露(治疗)与多个中介变量之间关系的比值比信息。协变量调整后的暴露 - 中介变量比值比关联的倒数用于对结局关于治疗的主要分析回归进行加权。这种加权回归中的治疗系数估计了治疗对结局的自然直接效应,间接效应则通过从总效应中减去直接效应来确定。加权使治疗和中介变量相互独立,从而使中介变量的间接路径失效。这种新的中介技术适用于多个离散或连续的中介变量。IORW易于实施,适用于任何标准回归模型,包括分位数回归和生存分析。使用“搬到机会”(1994 - 2002年)实验的数据给出了一个实证例子,检验邻里环境是否中介了住房券计划对肥胖的影响。并提供了相关的Stata代码(StataCorp LP,德克萨斯州大学站)。

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