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The Concordance Test, an Alternative to Kruskal-Wallis Based on the Kendall-τ Distance: An R Package


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Title:
The Concordance Test, an Alternative to Kruskal-Wallis Based on the Kendall-τ Distance: An R Package
Authors:
Anton-Sanchez, Laura  
ALCARAZ, JAVIER  
Monge, Juan Francisco  
Editor:
The R Foundation
Department:
Departamentos de la UMH::Estadística, Matemáticas e Informática
Issue Date:
2022
URI:
https://hdl.handle.net/11000/34257
Abstract:
The Kendall rank correlation coefficient, based on the Kendall-τ distance, is used to measure the ordinal association between two measurements. In this paper, we introduce a new coefficient also based on the Kendall-τ distance, the Concordance coefficient, and a test to measure whether different samples come from the same distribution. This work also presents a new R package, ConcordanceTest, with the implementation of the proposed coefficient. We illustrate the use of the Concordance coefficient to measure the ordinal association between quantity and quality measures when two or more samples are considered. In this sense, the Concordance coefficient can be seen as a generalization of the Kendall rank correlation coefficient and an alternative to the non-parametric mean rank-based methods for comparing two or more samples. A comparison of the proposed Concordance coefficient and the classical Kruskal-Wallis statistic is presented through a comparison of the exact distributions of both statistics.
Knowledge area:
CDU: Ciencias puras y naturales: Matemáticas
Type of document:
info:eu-repo/semantics/article
Access rights:
info:eu-repo/semantics/openAccess
Attribution-NonCommercial-NoDerivatives 4.0 Internacional
DOI:
https://doi.org/10.32614/RJ-2022-039
Appears in Collections:
Artículos Estadística, Matemáticas e Informática



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