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The use of length-biased distributions in statistical monitoring

机译:长度偏向分布在统计监视中的使用

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摘要

Statistical process monitoring (SPM) has been used extensively recently in order to assure the quality of the output of industrial processes. Techniques of SPM have been efficiently applied during the last two decades in non-industrial processes. A field of application with great interest is public health monitoring, where a pitfall with which we have to deal is the fact that available samples are not random in all cases. In the majority of cases, we monitor measurements derived from patient admissions to a hospital against control limits that were calculated using a sample of data taken from an epidemiological survey. In this work, we bridge the gap of a change in the sampling scheme from Phase I to Phase II, studying the case where the sampling during Phase II is biased. We present the appropriate methodology and then apply extensive numerical simulation in order to explore the performance of the proposed methodology, for measurements following various asymmetrical distributions. As the simulations show, the proposed methodology has a significantly better performance than the standard procedure.
机译:统计过程监视(SPM)最近已广泛使用,以确保工业过程输出的质量。在过去的二十年中,SPM技术已在非工业过程中得到有效应用。公众健康监测是引起人们极大兴趣的应用领域,我们必须解决的一个难题是,在所有情况下可用样本并非都是随机的。在大多数情况下,我们将对照流行病学调查数据样本所计算出的对照限值,来监控从入院患者中获得的测量结果。在这项工作中,我们研究了从第一阶段到第二阶段的采样方案变化的差距,研究了第二阶段采样有偏差的情况。我们提出适当的方法,然后应用大量的数值模拟,以探索所提出方法的性能,以进行各种不对称分布的测量。如仿真所示,所提出的方法具有比标准程序更好的性能。

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