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首页> 外文期刊>Communications in Statistics. B, Simulation and Computation >Optimal Progressive Type-II Censoring Schemes for Nonparametric Confidence Intervals of Quantiles
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Optimal Progressive Type-II Censoring Schemes for Nonparametric Confidence Intervals of Quantiles

机译:分位数的非参数置信区间的最优渐进式II型删失方案

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摘要

In this article, optimal progressive censoring schemes are examined for the nonparametric confidence intervals of population quantiles. The results obtained can be universally applied to any continuous probability distribution. By using the interval mass as an optimality criterion, the optimization process is free of the actual observed values from the sample and needs only the initial sample size n and the number of complete failures m. Using several sample sizes combined with various degrees of censoring, the results of the optimization are presented here for the population median at selected levels of confidence (99, 95, and 90%). With the optimality criterion under consideration, the efficiencies of the worst progressive Type-II censoring scheme and ordinary Type-II censoring scheme are also examined in comparison to the best censoring scheme obtained for fixed n and m.
机译:在本文中,针对种群分位数的非参数置信区间检查了最佳渐进式检查方案。获得的结果可以普遍应用于任何连续概率分布。通过使用间隔质量作为最佳标准,优化过程将没有样本的实际观察值,并且仅需要初始样本大小n和完全故障数m。使用几种样本量并结合不同程度的审查,此处以选定的置信度(99%,95%和90%)显示了人口中位数的优化结果。在考虑最优性准则的情况下,与固定n和m的最佳审查方案相比,还研究了最差的渐进式II审查方案和普通的II审查方案的效率。

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