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Hypothesis testing for the inverse Gaussian distribution mean based on ranked set sampling

机译:基于排名设定采样的反向高斯分布平均假设检测

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摘要

In this study, the hypothesis test for the population mean of inverse Gaussian distribution using ranked set sampling is considered when the scale parameter is both known and unknown. In order to obtain critical values, a simulation study is conducted for different sample sizes and significance levels. Also, power comparisons are made between ranked set sampling and simple random sampling for the inverse Gaussian distribution. The simulation results show that ranked set sampling performs much better compared to simple random sampling when the underlying distribution is inverse Gaussian.
机译:在这项研究中,当刻度参数既已知且未知时,考虑使用排序设定采样的逆高斯分布的群体均值的假设试验。为了获得临界值,对不同的样本尺寸和显着性水平进行仿真研究。此外,在排序的集合采样和用于逆高斯分布的简单随机采样之间进行功率比较。仿真结果表明,与底层分布逆高斯时,与简单随机采样相比,排名集采样执行更好。

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