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对计算偏相关系数抽样方差的批判性反思。

A critical reflection on computing the sampling variance of the partial correlation coefficient.

机构信息

Department of Methodology and Statistics, Tilburg University, Tilburg, The Netherlands.

出版信息

Res Synth Methods. 2023 May;14(3):520-525. doi: 10.1002/jrsm.1632. Epub 2023 Mar 22.

Abstract

The partial correlation coefficient quantifies the relationship between two variables while taking into account the effect of one or multiple control variables. Researchers often want to synthesize partial correlation coefficients in a meta-analysis since these can be readily computed based on the reported results of a linear regression analysis. The default inverse variance weights in standard meta-analysis models require researchers to compute not only the partial correlation coefficients of each study but also its corresponding sampling variance. The existing literature is diffuse on how to estimate this sampling variance, because two estimators exist that are both widely used. We critically reflect on both estimators, study their statistical properties, and provide recommendations for applied researchers. We also compute the sampling variances of studies using both estimators in a meta-analysis on the partial correlation between self-confidence and sports performance.

摘要

偏相关系数量化了两个变量之间的关系,同时考虑了一个或多个控制变量的影响。研究人员经常希望在荟萃分析中综合偏相关系数,因为这些系数可以根据线性回归分析的报告结果轻松计算。标准荟萃分析模型中的默认逆方差权重要求研究人员不仅要计算每个研究的偏相关系数,还要计算其相应的抽样方差。关于如何估计这种抽样方差的现有文献比较分散,因为有两种广泛使用的估计器。我们批判性地反思了这两个估计器,研究了它们的统计特性,并为应用研究人员提供了建议。我们还在一项关于自信与运动表现之间偏相关的荟萃分析中,使用这两个估计器计算了研究的抽样方差。

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