An Empirical Likelihood Ratio-Based Omnibus Test for Normality with an Adjustment for Symmetric Alternatives

IF 1 Q3 STATISTICS & PROBABILITY Journal of Probability and Statistics Pub Date : 2021-03-02 DOI:10.1155/2021/6661985
C. Marange, Yongsong Qin
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Abstract

An omnibus test for normality with an adjustment for symmetric alternatives is developed using the empirical likelihood ratio technique. We first transform the raw data via a jackknife transformation technique by deleting one observation at a time. The probability integral transformation was then applied on the transformed data, and under the null hypothesis, the transformed data have a limiting uniform distribution, reducing testing for normality to testing for uniformity. Employing the empirical likelihood technique, we show that the test statistic has a chi-square limiting distribution. We also demonstrated that, under the established symmetric settings, the CUSUM-type and Shiryaev–Roberts test statistics gave comparable properties and power. The proposed test has good control of type I error. Monte Carlo simulations revealed that the proposed test outperformed studied classical existing tests under symmetric short-tailed alternatives. Findings from a real data study further revealed the robustness and applicability of the proposed test in practice.
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基于经验似然比的正态性综合检验及其对对称方案的调整
利用经验似然比技术开发了一种综合正态性检验,并对对称替代方案进行了调整。我们首先通过一次删除一个观测值的折刀变换技术对原始数据进行变换。然后对变换后的数据进行概率积分变换,在零假设下,变换后的数据具有极限均匀分布,将正态性检验简化为均匀性检验。利用经验似然技术,我们证明检验统计量具有卡方极限分布。我们还证明,在已建立的对称设置下,cusum型和Shiryaev-Roberts检验统计量具有相当的性质和功率。该试验对I型误差具有较好的控制效果。蒙特卡罗模拟表明,在对称短尾替代方案下,所提出的测试优于经典的现有测试。实际数据研究的结果进一步揭示了所提出的测试在实践中的稳健性和适用性。
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来源期刊
Journal of Probability and Statistics
Journal of Probability and Statistics STATISTICS & PROBABILITY-
自引率
0.00%
发文量
14
审稿时长
18 weeks
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