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Parameter estimation of generalized Rayleigh distribution based on ranked set sample

机译:基于排序集样本的广义瑞利分布参数估计

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摘要

Ranked set sampling (RSS) is an efficient method for estimating parameters when exact measurement of observation is difficult and/or expensive. In this paper, we provide maximum likelihood estimation of the shape and scale parameters concerning generalized Rayleigh distribution based on RSS and its some modifications. We compare the biases, mean squared errors and relative efficiencies of estimators in simple random sampling, RSS, extreme RSS and median RSS with different set and cycle sizes. Comparison of the mean squared errors of estimators in RSS for the case of imperfect ranking are also given. Monte Carlo simulation study is performed by using Mathematica 11.0 with 10,000 repetitions.
机译:当难以精确测量观测值和/或增加观测值时,排序集抽样(RSS)是一种有效的参数估计方法。在本文中,我们提供了基于RSS及其一些修改的关于广义瑞利分布的形状和尺度参数的最大似然估计。我们比较了简单随机抽样,RSS,极限RSS和具有不同集合和周期大小的中值RSS中估计量的偏差,均方误差和相对效率。对于排名不完善的情况,还给出了RSS中估计量的均方误差的比较。蒙特卡洛模拟研究是通过使用Mathematica 11.0进行10,000次重复进行的。

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