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Bias of Nonparametric Goodness-of-Fit Tests Relative to Certain Pairs of Competing Hypotheses

机译:相对于某些竞争假设的非参数拟合优度检验的偏差

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摘要

The application of the nonparametric Anderson-Darling, Cramer-Mises-Smirnov, Kuiper, Watson, Kolmogorov, and Zhang goodness-of-fit tests in verification of simple and composite hypotheses is considered. Based on an investigation of the power, it is shown for the first time that there exist pairs of competing hypotheses which these tests are not able to distinguish in the case of small sample sizes n and type 1 error probabilities. It is shown that the reason for this lies in the bias of the tests in corresponding situations.
机译:考虑了非参数Anderson-Darling,Cramer-Mises-Smirnov,Kuiper,Watson,Kolmogorov和Zhang拟合优度检验在简单假设和复合假设验证中的应用。基于对功效的调查,首次显示存在成对的竞争假设,这些假设在样本量n小和类型1错误概率较小的情况下无法区分。结果表明,其原因在于相应情况下测试的偏差。

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