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首页> 外文期刊>Communications in Statistics >Bootstrap confidence intervals of generalized process capability index C_(pyk) for Lindley and power Lindley distributions
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Bootstrap confidence intervals of generalized process capability index C_(pyk) for Lindley and power Lindley distributions

机译:Lindley和Power Lindley分布的广义过程能力指数C_(pyk)的自举置信区间

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摘要

One of the indicators for evaluating the capability of a process is the process capability index. In this article, bootstrap confidence intervals of the generalized process capability index (GPCI) proposed by Maiti et al. are studied through simulation, when the underlying distributions are Lindley and Power Lindley distributions. The maximum likelihood method is used to estimate the parameters of the models. Three bootstrap confidence intervals namely, standard bootstrap (SB), percentile bootstrap (PB), and bias-corrected percentile bootstrap (BCPB) are considered for obtaining confidence intervals of GPCI. A Monte Carlo simulation has been used to investigate the estimated coverage probabilities and average width of the bootstrap confidence intervals. Simulation results show that the estimated coverage probabilities of the percentile bootstrap confidence interval and the bias-corrected percentile bootstrap confidence interval get closer to the nominal confidence level than those of the standard bootstrap confidence interval. Finally, three real datasets are analyzed for illustrative purposes.
机译:评估过程能力的指标之一是过程能力指数。在本文中,Maiti等人提出的广义过程能力指数(GPCI)的自举置信区间。当基础分布是Lindley和Power Lindley分布时,可以通过仿真来研究。最大似然法用于估计模型的参数。为了获得GPCI的置信区间,考虑了三个自举置信区间,即标准自举(SB),百分位数自举(PB)和偏差校正的百分位数自举(BCPB)。蒙特卡洛模拟已用于调查估计的覆盖概率和自举置信区间的平均宽度。仿真结果表明,与标准自举置信区间相比,百分比自举置信区间和偏差校正的百分数自举置信区间的估计覆盖概率更接近标称置信水平。最后,出于说明目的,分析了三个真实的数据集。

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