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首页> 外文期刊>Behavior Research Methods >Detection Of Interactions Between Adichotomous Moderator And A Continuousrnpredictor In Moderated Multiple Regressionrnwith Heterogeneous Error Variance
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Detection Of Interactions Between Adichotomous Moderator And A Continuousrnpredictor In Moderated Multiple Regressionrnwith Heterogeneous Error Variance

机译:具有异类误差方差的中度多元回归中二分主持人与连续预测者之间相互作用的检测

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摘要

Moderated multiple regression (MMR) has been widely used to investigate the interaction or moderating effects of a categorical moderator across a variety of subdisciplines in the behavioral and social sciences. In view of the frequent violation of the homogeneity of error variance assumption in MMR applications, the weighted least squares (WLS) approach has been proposed as one of the alternatives to the ordinary least squares method for the detection of the interaction effect between a dichotomous moderator and a continuous predictor. Although the existing result is informative in assuring the statistical accuracy and computational ease of the WLS-based method, no explicit algebraic formulation and underlying distributional details are available. This article aims to delineate the fundamental properties of the WLS test in connection with the well-known Welch procedure for regression slope homogeneity under error variance heterogeneity. With elaborately systematic derivation and analytic assessment, it is shown that the notion of WLS is implicitly embedded in the Welch approach. More importantly, extensive simulation study is conducted to demonstrate the conditions in which the Welch test will substantially outperform the WLS method; they may yield different conclusions. Welch's solution to the Behrens-Fisher problem is so entrenched that the use of its direct extension within the linear regression framework can arguably be recommended. In order to facilitate the application of Welch's procedure, the SAS and R computing algorithms are presented. The study contributes to the understanding of methodological variants for detecting the effect of a dichotomous moderator in the context of moderated multiple regression. Supplemental materials for this article may be downloaded from brm.psychonomic-journals.org/content/supplemental.
机译:调节多元回归(MMR)已被广泛用于研究行为和社会科学中各个子学科的分类主持人的相互作用或调节作用。鉴于在MMR应用程序中经常违反误差方差假设的同质性,已提出了加权最小二乘法(WLS)方法,作为检测二分主持人之间交互作用的普通最小二乘法的替代方法之一。和连续的预测变量。尽管现有结果有助于确保基于WLS的方法的统计准确性和计算简便性,但尚无明确的代数公式和基本的分布详细信息。本文旨在描述WLS测试的基本属性,并结合众所周知的Welch过程对误差方差异质性下的回归斜率同质性进行描述。通过精心的系统推导和分析评估,表明WLS的概念隐含地嵌入到Welch方法中。更重要的是,进行了广泛的仿真研究,以证明Welch测试将大大优于WLS方法的条件。他们可能得出不同的结论。韦尔奇(Welch)对贝伦斯-费舍(Behrens-Fisher)问题的解决方法根深蒂固,以至于可以建议在线性回归框架内使用其直接扩展。为了促进Welch程序的应用,提出了SAS和R计算算法。这项研究有助于理解在适度多元回归的背景下检测二分型调节剂作用的方法变异。可以从brm.psychonomic-journals.org/content/supplemental下载本文的补充材料。

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