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Shewhart Control Charts in New Perspective

机译:新视角的Shewhart控制图

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摘要

The effects of estimating parameters and the violation of the assumption of normality when dealing with control charts are discussed. Corrections for estimating errors and extensions of the normal control chart to parametric and nonparametric charts are investigated. The underlying theory is extensively discussed, including the choice of a suitable parametric family containing the normal family. It turns out that classical contamination families like random or deterministic mixtures do not give a suitable solution here. The so-called normal power family leads to an acceptable family, as it is intimately connected to the problem at hand of modeling and estimating an extreme quantile. When the underlying distribution cannot be modeled sufficiently accurately by the normal power family, the nonparametric control chart comes into the picture. A data-driven procedure makes the choice between the three different charts. When the nonparametric chart turns up, a large number of Phase I observations are needed. When such a large sample size is not available, it may be preferred to replace the individual chart by a grouped one. The new minimum chart is recommended in that case.
机译:讨论了在处理控制图时估计参数的效果和违反正态性假设的情况。研究了估计误差的校正方法以及将正常控制图扩展到参数图和非参数图的方法。对该基础理论进行了广泛讨论,包括选择包含正常族的合适参数族。事实证明,经典的污染族(如随机或确定性混合物)在此处无法提供合适的解决方案。所谓的普通幂族导致了一个可接受的族,因为它与建模和估计极端分位数时面临的问题紧密相关。当正常功率系列无法充分准确地建模基础分布时,就会出现非参数控制图。数据驱动的过程在三个不同的图表之间进行选择。当非参数图表出现时,需要进行大量的I期观测。如果无法提供这么大的样本量,则最好将单个图表替换为一组图表。在这种情况下,建议使用新的最小图表。

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