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Process capability indices in normal distribution with the presence of outliers

机译:使用异常值存在的正态分布过程能力指标

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Process capability indices (PCIs) are useful measures to evaluate the performance and capability of a process when it is under control. Assuming the specification variable is distributed from a normal population, several PCIs are derived by the researchers. Also, many scientists have worked on these indices when data are contaminated with outliers as well as in the homogenous case. But, in almost all studies, they evaluated the effect of outliers on the PCIs nonparametrical and used robust methods. Here, the parametric model of outliers is considered and introduced the PCIs based on the outliers model. Therefore, these indices are estimated based on the maximum-likelihood and moment estimator of the unknown parameters of the normal distribution contaminated by outliers. Finally, the performances of these measures as well as their parametric and nonparametric estimators are discussed by using simulation studies and several numerical examples. It has been seen that parametric estimation has better performances than a nonparametric method.
机译:流程能力指数(PCIS)是评估在控制下时流程的性能和能力的有用措施。假设规范变量是从正常群体分发的,研究人员派生了几种PCIS。此外,当数据被异常值和同质案件污染时,许多科学家在这些指数上工作。但是,在几乎所有研究中,他们评估了异常值对PCIS非参差和使用的鲁棒方法的影响。这里,考虑异常值的参数模型并根据异常值模型引入PCI。因此,基于由异常值污染的正常分布的未知参数的最大似然和时刻估计估计这些指标。最后,通过使用模拟研究和几个数值示例,讨论了这些措施的性能以及它们的参数和非参数估计器。已经看到参数估计比非参数方法更好。

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