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Non parametric multiple comparisons of non nested rival models

机译:非参数比较非嵌套竞争力模型的比较

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摘要

The practice for testing homogeneity of several rival models is of interest. In this article, we consider a non parametric multiple test for non nested distributions in the context of the model selection. Based on the linear sign rank test, and the known union-intersection principle, we let the magnitude of the data to give a better performance to the test statistic. We consider the sample and the non nested rival models as blocks and treatments, respectively, and introduce the extended Friedman test version to compare with the results of the test based on the linear sign rank test. A real dataset based on the waiting time to earthquake is considered to illustrate the results.
机译:测试几个竞争模型的均匀性的实践是感兴趣的。在本文中,我们在模型选择的上下文中考虑对非嵌套分布的非参数多测试。基于线性标志等级测试,以及已知的联合交叉路口原理,我们让数据的大小给出了测试统计的更好的性能。我们将样本和非嵌套竞争对手模型分别视为块和治疗,并介绍扩展弗里德曼测试版本,以基于线性标志等级测试与测试结果进行比较。基于等待地震时间的真实数据集被认为是说明结果。

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