Quantile-based MANOVA: A new tool for inferring multivariate data in factorial designs

IF 1.4 3区 数学 Q2 STATISTICS & PROBABILITY Journal of Multivariate Analysis Pub Date : 2023-10-27 DOI:10.1016/j.jmva.2023.105246
Marléne Baumeister , Marc Ditzhaus , Markus Pauly
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引用次数: 1

Abstract

Multivariate analysis-of-variance (MANOVA) is a well established tool to examine multivariate endpoints. While classical approaches depend on restrictive assumptions like normality and homogeneity, there is a recent trend to more general and flexible procedures. In this paper, we proceed on this path, but do not follow the typical mean-focused perspective. Instead we consider general quantiles, in particular the median, for a more robust multivariate analysis. The resulting methodology is applicable for all kind of factorial designs and shown to be asymptotically valid. Our theoretical results are complemented by an extensive simulation study for small and moderate sample sizes. An illustrative data analysis is also presented.

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基于分位数的方差分析:在析因设计中推断多变量数据的新工具
多变量方差分析(MANOVA)是检验多变量终点的成熟工具。虽然经典方法依赖于限制性假设,如正态性和同质性,但最近的趋势是更通用和灵活的程序。在本文中,我们沿着这条道路前进,但不遵循典型的以均值为中心的观点。相反,我们考虑一般分位数,特别是中位数,以进行更稳健的多变量分析。所得到的方法适用于所有类型的析因设计,并证明是渐近有效的。我们的理论结果是补充了广泛的模拟研究小和中等样本量。并给出了一个说明性的数据分析。
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来源期刊
Journal of Multivariate Analysis
Journal of Multivariate Analysis 数学-统计学与概率论
CiteScore
2.40
自引率
25.00%
发文量
108
审稿时长
74 days
期刊介绍: Founded in 1971, the Journal of Multivariate Analysis (JMVA) is the central venue for the publication of new, relevant methodology and particularly innovative applications pertaining to the analysis and interpretation of multidimensional data. The journal welcomes contributions to all aspects of multivariate data analysis and modeling, including cluster analysis, discriminant analysis, factor analysis, and multidimensional continuous or discrete distribution theory. Topics of current interest include, but are not limited to, inferential aspects of Copula modeling Functional data analysis Graphical modeling High-dimensional data analysis Image analysis Multivariate extreme-value theory Sparse modeling Spatial statistics.
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