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单变量和多变量偏度和峰度测量非正态性:流行率、影响和估计。

Univariate and multivariate skewness and kurtosis for measuring nonnormality: Prevalence, influence and estimation.

机构信息

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

出版信息

Behav Res Methods. 2017 Oct;49(5):1716-1735. doi: 10.3758/s13428-016-0814-1.

Abstract

Nonnormality of univariate data has been extensively examined previously (Blanca et al., Methodology: European Journal of Research Methods for the Behavioral and Social Sciences, 9(2), 78-84, 2013; Miceeri, Psychological Bulletin, 105(1), 156, 1989). However, less is known of the potential nonnormality of multivariate data although multivariate analysis is commonly used in psychological and educational research. Using univariate and multivariate skewness and kurtosis as measures of nonnormality, this study examined 1,567 univariate distriubtions and 254 multivariate distributions collected from authors of articles published in Psychological Science and the American Education Research Journal. We found that 74 % of univariate distributions and 68 % multivariate distributions deviated from normal distributions. In a simulation study using typical values of skewness and kurtosis that we collected, we found that the resulting type I error rates were 17 % in a t-test and 30 % in a factor analysis under some conditions. Hence, we argue that it is time to routinely report skewness and kurtosis along with other summary statistics such as means and variances. To facilitate future report of skewness and kurtosis, we provide a tutorial on how to compute univariate and multivariate skewness and kurtosis by SAS, SPSS, R and a newly developed Web application.

摘要

先前已经广泛研究了单变量数据的非正态性(Blanca 等人,方法:欧洲研究方法杂志行为和社会科学,9(2),78-84,2013 年;Miceeri,心理学公报,105(1),156,1989 年)。然而,尽管多元分析在心理和教育研究中被广泛使用,但对于多元数据的潜在非正态性却知之甚少。本研究使用单变量和多元偏度和峰度作为非正态性的度量指标,检查了从发表在《心理科学》和《美国教育研究杂志》的文章的作者那里收集的 1567 个单变量分布和 254 个多元分布。我们发现,74%的单变量分布和 68%的多元分布偏离正态分布。在使用我们收集的典型偏度和峰度值进行的模拟研究中,我们发现,在某些条件下,t 检验的 I 型错误率为 17%,因子分析的 I 型错误率为 30%。因此,我们认为现在是时候像报告均值和方差等其他汇总统计信息一样,定期报告偏度和峰度了。为了方便将来报告偏度和峰度,我们提供了一个教程,介绍如何使用 SAS、SPSS、R 和一个新开发的 Web 应用程序计算单变量和多元偏度和峰度。

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