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Some new results on univariate and multivariate permutation tests for ordinal categorical variables under restricted alternatives

机译:受限替代项下有序分类变量的单变量和多变量置换检验的一些新结果

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In several sciences, especially when dealing with performance evaluation, complex testing problems may arise due in particular to the presence of multidimensional categorical data. In such cases the application of nonparametric methods can represent a reasonable approach. In this paper, we consider the problem of testing whether a "treatment" is stochastically larger than a "control" when univariate and multivariate ordinal categorical data are present. We propose a solution based on the nonparametric combination of dependent permutation tests (Pesarin in Multivariate permutation test with application to biostatistics. Wiley, Chichester, 2001), on variable transformation, and on tests on moments. The solution requires the transformation of categorical response variables into numeric variables and the breaking up of the original problem's hypotheses into partial sub-hypotheses regarding the moments of the transformed variables. This type of problem is considered to be almost impossible to analyze within likelihood ratio tests, especially in the multivariate case (Wang in J Am Stat Assoc 91:1676-1683, 1996). A comparative simulation study is also presented along with an application example.
机译:在一些科学中,尤其是在处理性能评估时,特别是由于多维分类数据的存在,可能会出现复杂的测试问题。在这种情况下,非参数方法的应用可以代表一种合理的方法。在本文中,我们考虑测试存在单变量和多变量有序分类数据时“处理”是否比“对照”大的问题。我们提出了一个基于非依存排列检验的非参数组合的解决方案(多变量排列检验中的Pesarin及其在生物统计学中的应用。Wiley,Chichester,2001),变量转换和矩量检验。该解决方案需要将分类响应变量转换为数值变量,并将原始问题的假设分解为有关转换变量矩的部分子假设。这种类型的问题被认为几乎不可能在似然比检验中进行分析,尤其是在多变量情况下(Wang in J Am Stat Assoc 91:1676-1683,1996)。还提供了一个比较仿真研究以及一个应用示例。

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