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On the estimation of the extreme value and normal distribution parameters based on progressive type-II hybrid-censored data

机译:基于渐进式II型混合删失数据的极值和正态分布参数估计

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摘要

A progressive hybrid censoring scheme is a mixture of type-I and type-II progressive censoring schemes. In this paper, we mainly consider the analysis of progressive type-II hybrid-censored data when the lifetime distribution of the individual item is the normal and extreme value distributions. Since the maximum likelihood estimators (MLEs) of these parameters cannot be obtained in the closed form, we propose to use the expectation and maximization (EM) algorithm to compute the MLEs. Also, the Newton-Raphson method is used to estimate the model parameters. The asymptotic variance-covariance matrix of the MLEs under EM framework is obtained by Fisher information matrix using the missing information and asymptotic confidence intervals for the parameters are then constructed. This study will end up with comparing the two methods of estimation and the asymptotic confidence intervals of coverage probabilities corresponding to the missing information principle and the observed information matrix through a simulation study, illustrated examples and real data analysis.
机译:渐进式混合检查方案是I型和II型渐进式检查方案的混合。在本文中,我们主要考虑当单个项目的寿命分布为正态分布和极值分布时,渐进式II型混合删失数据的分析。由于无法以封闭形式获得这些参数的最大似然估计器(MLE),因此我们建议使用期望和最大化(EM)算法来计算MLE。同样,牛顿-拉夫森法被用来估计模型参数。利用丢失的信息,通过Fisher信息矩阵,得到EM框架下MLE的渐近方差-协方差矩阵,然后构造参数的渐近置信区间。本研究将通过仿真研究,实例说明和真实数据分析,比较两种估计方法以及与丢失信息原理和观测信息矩阵相对应的覆盖概率的渐近置信区间。

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