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Statistical inferences for stress-strength in the proportional hazard models based on progressive Type-Ⅱ censored samples

机译:基于渐进式Ⅱ型删失样本的比例风险模型中应力强度的统计推断

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The aim of this paper is to study the estimation of the reliability R = P(X < Y), when the available data have the form of progressively Type-Ⅱ censored sample. It is supposed that X-sample and Y-sample are independent and generated from the proportional hazard rate (PHR) model with different proportionality parameters which includes several lifetime distributions such as exponential, Weibull (one parameter), Pareto and Burr type Ⅻ among others. Uniformly minimum variance unbiased estimator, maximum likelihood estimator (MLE), exact confidence interval (CI), asymptotic CI and Bayes estimator for the parameter of interest are derived. For PHR model, it has been shown that the expected width of the CIs and mean squared errors of the MLE and uniformly minimum variance unbiased estimator of R do not depend on the censoring schemes and the underlying distribution functions of X and Y. A Monte Carlo simulation study is conducted to compare the performance of the proposed estimators. Also, the use of the proposed estimators is shown in an illustrative example.
机译:本文的目的是研究当可用数据呈渐进式Ⅱ类删失样本的形式时,对可靠性R = P(X <Y)的估计。假设X样本和Y样本是独立的,并且是由比例风险率(PHR)模型生成的,该模型具有不同的比例参数,其中包括多个寿命分布,例如指数,Weibull(一个参数),Pareto和Burr类型Ⅻ 。得出感兴趣参数的一致最小方差无偏估计量,最大似然估计量(MLE),精确置信区间(CI),渐近CI和贝叶斯估计量。对于PHR模型,已经表明,CI的期望宽度和MLE的均方误差以及R的一致最小方差无偏估计量不取决于检查方案以及X和Y的基础分布函数。进行了仿真研究,以比较建议的估算器的性能。另外,在说明性示例中示出了所提出的估计器的使用。

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