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Estimation of the Burr type III distribution with application in unified hybrid censored sample of fracture toughness

机译:Burr III型分布的估计及其在断裂韧性的统一混合检查样本中的应用

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In this paper, the statistical inference of the unknown parameters of a Burr Type III (BIII) distribution based on the unified hybrid censored sample is studied. The maximum likelihood estimators of the unknown parameters are obtained using the Expectation-Maximization algorithm. It is observed that the Bayes estimators cannot be obtained in explicit forms, hence Lindley's approximation and the Markov Chain Monte Carlo (MCMC) technique are used to compute the Bayes estimators. Further the highest posterior density credible intervals of the unknown parameters based on the MCMC samples are provided. The new model selection test is developed in discriminating between two competing models under unified hybrid censoring scheme. Finally, the potentiality of the BIII distribution to analyze the real data is illustrated by using the fracture toughness data of the three different materials namely silicon nitride (Si3N4), Zirconium dioxide (ZrO2) and sialon (Si6-xAlxOxN8-x). It is observed that for the present data sets, the BIII distribution has the better fit than the Weibull distribution which is frequently used in the fracture toughness data analysis.
机译:本文研究了基于统一混合删失样本的Burr III型(BIII)分布的未知参数的统计推断。使用Expectation-Maximization算法获得未知参数的最大似然估计器。观察到无法以显式形式获得贝叶斯估计量,因此使用Lindley逼近和马尔可夫链蒙特卡洛(MCMC)技术来计算贝叶斯估计量。此外,还提供了基于MCMC样本的未知参数的最高后验密度可信区间。开发新的模型选择测试是为了在统一的混合检查方案下区分两个竞争模型。最后,通过使用三种不同材料的断裂韧性数据(即氮化硅(Si3N4),二氧化锆(ZrO2)和赛隆(Si6-xAlxOxN8-x))来说明BIII分布分析实际数据的潜力。可以看出,对于当前数据集,BIII分布比通常在断裂韧性数据分析中使用的Weibull分布具有更好的拟合度。

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