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首页> 外文期刊>Advances in Science, Technology and Engineering Systems >Performance of Robust Confidence Intervals for Estimating Population Mean Under Both Non-Normality and in Presence of Outliers
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Performance of Robust Confidence Intervals for Estimating Population Mean Under Both Non-Normality and in Presence of Outliers

机译:用于估计人口在非正常性和异常值存在下估计人口的稳健置信区间的性能

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摘要

We proposed two robust confidence interval estimators, namely, the median interquartile range confidence interval (MDIQR) and the trimean interquartile range confidence interval (TRIQR) for the population mean (μ) as an alternative to the classical confidence interval. The proposed methods are based on the asymptotic normal theorem (ANT) for the sample median (MD) and the sample trimean (TR). We compare the performance of the proposed interval estimators with the classical estimators by using a simulation study through the following criteria: (i) average width (AW) and (ii) empirical coverage probability (CP). It is evident from simulation study is that the proposed robust interval estimator performs well under both criterion and when the observations are sampled from contaminated normal distribution. However, when the observations are sampled from non-normal distributions, the classical confidence interval performs the best in the shorter width sense, but the coverage probability tends to be smaller than the two proposed robust confidence interval estimators for all sample sizes. For illustration purposes, two real life data sets are analyzed, which supported the findings of the simulation study to some extent.
机译:我们提出了两种稳健的置信区间估计器,即中值的间位范围置信区间(MDIQR)和群体的三个间位范围置信区间(TRIQR)是级别(μ)作为经典置信区间的替代方案。所提出的方法基于样品中值(MD)的渐近正常定理(ANT)和样品三角形(TR)。我们通过使用以下标准使用模拟研究来比较所提出的间隔估计器与经典估算器的性能:(i)平均宽度(aw)和(ii)经验覆盖概率(CP)。从仿真研究中明显看出,所提出的稳健间隔估计器在两个标准下表现良好,并且当从受污染的正态分布采样观察时。然而,当从非正常分布采样观察时,经典置信区间以较短的宽度感测到最佳状态,但覆盖概率趋于小于所有样本尺寸的两个提出的稳健置信区间估计量。出于插图目的,分析了两个现实生活数据集,这在一定程度上支持了模拟研究的发现。

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