Analysis of Xgamma distribution using adaptive Type-I progressively censored competing risks data with applications

IF 1.7 4区 综合性期刊 Q2 MULTIDISCIPLINARY SCIENCES Journal of Radiation Research and Applied Sciences Pub Date : 2024-08-02 DOI:10.1016/j.jrras.2024.101051
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Abstract

This paper considers the competing risks model with two causes of death to analyze time-to-event data for a group of male mice exposed to three hundred roentgen radiation for 5–6 weeks. The analysis is based on the assumption that the parent distribution is the Xgamma distribution and the data are gathered using an adaptive Type-I progressively censored sample. Two estimation approaches are considered to complete the analysis: maximum likelihood and Bayesian methods. Besides acquiring the estimations of the model parameters, the estimations of the reliability and failure rate are also discussed. Both point and interval estimates using both estimation approaches are studied. In Bayesian estimations, the squared error loss function is used and the Markov Chain Monte Carlo technique is proposed to get samples from the joint posterior distribution. The various methods are compared using simulation studies to compare their performance. The mentioned radiation data set is investigated and the analysis showed the suitability of the competing risks model with Xgamma distribution to analyze the data and to estimate the reliability metrics.

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利用自适应 I 型逐步删减竞争风险数据分析 Xgamma 分布及其应用
本文考虑了两种死亡原因的竞争风险模型,分析了一组雄性小鼠暴露于 300 伦琴辐射 5-6 周的时间到事件数据。分析基于母体分布为 Xgamma 分布的假设,并使用自适应 I 型逐步删减样本收集数据。为完成分析,考虑了两种估计方法:最大似然法和贝叶斯法。除了获取模型参数的估计值,还讨论了可靠性和故障率的估计值。对这两种估计方法的点估计和区间估计都进行了研究。在贝叶斯估计法中,使用了平方误差损失函数,并提出了从联合后验分布中获取样本的马尔可夫链蒙特卡罗技术。通过模拟研究比较了各种方法的性能。对上述辐射数据集进行了研究,分析结果表明,具有 Xgamma 分布的竞争风险模型适用于分析数据和估计可靠性指标。
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来源期刊
自引率
5.90%
发文量
130
审稿时长
16 weeks
期刊介绍: Journal of Radiation Research and Applied Sciences provides a high quality medium for the publication of substantial, original and scientific and technological papers on the development and applications of nuclear, radiation and isotopes in biology, medicine, drugs, biochemistry, microbiology, agriculture, entomology, food technology, chemistry, physics, solid states, engineering, environmental and applied sciences.
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