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Nonparametric monitoring of multiple count data

机译:非参数监视多个计数数据

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摘要

Process monitoring of multiple count data has recently received considerable attention in the statistical process control literature. Most existing methods on this topic are based on parametric modeling of the observed process data. However, the assumed parametric models are often invalid in practice, leading to unreliable performance of the related control charts. In this article, we first show the consequence of using a parametric control chart in cases where the underlying parametric distribution is invalid. Then, we thoroughly investigate the performance of some parametric and nonparametric control charts in monitoring multiple count data. Our numerical results show that nonparametric methods can provide a more reliable and effective process monitoring in such cases. A real-data example about the crime log of the University of Florida Police Department is used for illustrating the implementation of the related control charts.
机译:最近,在统计过程控制文献中,多计数数据的过程监视受到了相当大的关注。关于此主题的大多数现有方法都基于观察到的过程数据的参数化建模。但是,假定的参数模型在实践中通常是无效的,从而导致相关控制图的性能不可靠。在本文中,我们首先显示在基础参数分布无效的情况下使用参数控制图的结果。然后,我们彻底研究某些参数和非参数控制图在监视多计数数据中的性能。我们的数值结果表明,在这种情况下,非参数方法可以提供更可靠和有效的过程监控。佛罗里达大学警察局犯罪日志的真实数据示例用于说明相关控制图的实现。

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