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首页> 外文期刊>Journal of Probability and Statistics >Risk Efficiencies of Empirical Bayes and Generalized Maximum Likelihood Estimates for Rayleigh Model under Censored Data
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Risk Efficiencies of Empirical Bayes and Generalized Maximum Likelihood Estimates for Rayleigh Model under Censored Data

机译:删失数据下瑞利模型的经验贝叶斯风险效率和广义最大似然估计

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The comparison of empirical Bayes and generalized maximum likelihood estimates of reliability performances is made in terms of risk efficiencies when the data are progressively Type II censored from Rayleigh distribution. The empirical Bayes estimates are obtained using an asymmetric loss function. The risk functions of the estimates and risk efficiencies are obtained under this loss function. A real data set is presented to illustrate the proposed comparison method, and the performance of the estimates is examined and compared in terms of risk efficiencies by means of Monte Carlo simulations. The simulation results indicate that the proposed empirical Bayes estimates are more preferable than the generalized maximum likelihood estimates.
机译:当根据瑞利分布对II类数据进行渐进式删失时,根据风险效率对经验贝叶斯和可靠性性能的广义最大似然估计进行比较。使用不对称损失函数获得经验贝叶斯估计。在此损失函数下获得估计的风险函数和风险效率。给出了一个真实的数据集来说明所提出的比较方法,并通过蒙特卡洛模拟对估计的性能进行了检查,并根据风险效率进行了比较。仿真结果表明,提出的经验贝叶斯估计比广义最大似然估计更可取。

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