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On the Construction of Preliminary Test Estimators of the Reliability Characteristics for the Exponential Distribution Based on Records

机译:基于记录的指数分布可靠性特征的初步检验估计器的构建

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摘要

The one-parameter exponential distribution plays an important role in reliability theory. Two measures of reliability for exponential distribution are considered, R(t) = P(X > t) and P = P(X > Y). Sometimes, due to past knowledge or experience, the experimenter may be in a position to make an initial guess on some of the parameters of interest. In such cases, we can provide an improved estimator by incorporating the prior information on the parameters. Preliminary test estimators (PTES) have been developed in the literature for the parameters of various distributions. To the best of the knowledge of the authors, PTES are not available for reliability functions R(t) and P. For record values from exponential distribution, we define PTES based on uniformly minimum variance unbiased estimator (UMVUE), maximum likelihood estimator (MLE), and empirical Bayes estimator (EBE) for the powers of the parameter, R(t) and P. Bias and mean square error (MSE) expressions for the proposed estimators are derived to examine their efficiency. A comparative study of different methods of estimation is done through simulations, and it is established that PTES perform better than ordinary UMVUES, MLES, and EBES.
机译:一参数指数分布在可靠性理论中起着重要作用。考虑了两种指数分布的可靠性度量,即R(t)= P(X> t)和P = P(X> Y)。有时,由于过去的知识或经验,实验者可能会对某些感兴趣的参数进行初步猜测。在这种情况下,我们可以通过合并有关参数的先验信息来提供一种改进的估计器。文献中已经针对各种分布的参数开发了初步测试估计器(PTES)。据作者所知,PTES对可靠性函数R(t)和P不可用。对于来自指数分布的记录值,我们根据统一的最小方差无偏估计量(UMVUE),最大似然估计量(MLE)定义PTES。 ),以及经验贝叶斯估计器(EBE)的参数R(t)和P的功效。推导了所提出的估计器的偏差和均方误差(MSE)表达式,以检验其效率。通过仿真对不同的估算方法进行了比较研究,并确定PTES的性能优于普通的UMVUES,MLES和EBES。

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