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Estimation of the inverted exponentiated Rayleigh Distribution Based on Adaptive Type II Progressive Hybrid Censored Sample

机译:基于Adaptive II型渐进式混合缩醛样品估算倒的指数瑞利分布

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摘要

In this paper, the problem of estimating parameters of the inverted exponentiated Rayleigh distribution under adaptive Type II progressive hybrid censored sample is discussed. The maximum likelihood estimators (MLEs) are developed for estimating the unknown parameters. The asymptotic normality of the MLEs is used to construct the approximate confidence intervals for the parameters. By applying the Bayesian approach, the estimators of the unknown parameters are derived under symmetric and asymmetric loss functions. The Bayesian estimates are evaluated by using the Lindley's approximation as well as the Monte Carlo Markov chain (MCMC) technique together with Metropolis-Hastings algorithm. The MCMC samples are further utilized to construct the Bayesian intervals for the unknown parameters. Monte Carlo simulations are implemented and observations are given. Finally, the data of the maximum spreading diameter of nano-droplet impact on hydrophobic surfaces is analyzed to illustrative purposes. (C) 2019 Elsevier B.V. All rights reserved.
机译:本文讨论了在适应性II型逐步循环调查样本下估算反相指数瑞利分布参数的问题。开发了最大似然估计器(MLES),用于估计未知参数。 MLE的渐近常态用于构造参数的近似置信区间。通过应用贝叶斯方法,在对称和不对称损耗函数下导出未知参数的估计器。通过使用林德利的近似以及Monte Carlo Markov链(MCMC)技术与Metropolis-Hastings算法一起评估贝叶斯估计。 MCMC样品进一步用于构建未知参数的贝叶斯间隔。实施蒙特卡罗模拟,并给出了观察。最后,分析了对疏水表面的纳米液滴的最大扩散直径的数据分析到说明性目的。 (c)2019 Elsevier B.v.保留所有权利。

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