i型混合滤波下逆威布尔分布参数的估计

IF 0.6 Q4 STATISTICS & PROBABILITY
Mohammad Kazemi, Mina Azizpoor
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引用次数: 2

摘要

混合截尾是i型和ii型截尾方案的混合。本文给出了当数据为i型混合截尾时的反威布尔分布参数的统计推论。首先,我们考虑未知参数的最大似然估计。观察到最大似然估计不能以封闭形式得到。我们进一步利用重要性抽样程序,在独立的伽马先验假设下,得到了未知参数的贝叶斯估计和相应的最高后验密度可信区间。我们还使用林德利近似技术计算近似贝叶斯估计。通过蒙特卡洛马尔可夫链技术将贝叶斯估计的性能与最大似然估计进行了比较。最后,为了说明目的,分析了一个真实的数据集。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Estimation of the Inverse Weibull Distribution Parameters under Type-I Hybrid Censoring
The hybrid censoring is a mixture of type-I and type-II censoring schemes. This paper presents the statistical inferences of the inverse Weibull distribution parameters when the data are type-I hybrid censored. First, we consider the maximum likelihood estimates of the unknown parameters. It is observed that the maximum likelihood estimates can not be obtained in closed form. We further obtain the Bayes estimates and the corresponding highest posterior density credible intervals of the unknown parameters under the assumption of independent gamma priors using the importance sampling procedure. We also compute the approximate Bayes estimates using Lindley's approximation technique. The performance of the Bayes estimates have been compared with maximum likelihood estimates through the Monte Carlo Markov chain techniques. Finally, a real data set have been analysed for illustration purpose.
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来源期刊
Austrian Journal of Statistics
Austrian Journal of Statistics STATISTICS & PROBABILITY-
CiteScore
1.10
自引率
0.00%
发文量
30
审稿时长
24 weeks
期刊介绍: The Austrian Journal of Statistics is an open-access journal (without any fees) with a long history and is published approximately quarterly by the Austrian Statistical Society. Its general objective is to promote and extend the use of statistical methods in all kind of theoretical and applied disciplines. The Austrian Journal of Statistics is indexed in many data bases, such as Scopus (by Elsevier), Web of Science - ESCI by Clarivate Analytics (formely Thompson & Reuters), DOAJ, Scimago, and many more. The current estimated impact factor (via Publish or Perish) is 0.775, see HERE, or even more indices HERE. Austrian Journal of Statistics ISNN number is 1026597X Original papers and review articles in English will be published in the Austrian Journal of Statistics if judged consistently with these general aims. All papers will be refereed. Special topics sections will appear from time to time. Each section will have as a theme a specialized area of statistical application, theory, or methodology. Technical notes or problems for considerations under Shorter Communications are also invited. A special section is reserved for book reviews.
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