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The Effect of Parameter Estimation on Upper- sided Bernoulli Cumulative Sum Charts

机译:参数估计对上侧伯努利累积和图的影响

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The Bernoulli cumulative sum (CUSUM) chart has been shown to be effective for monitoring the rate of nonconforming items in high-quality processes where the in-control proportion of nonconforming items (p_0) is low. The implementation of the Bernoulli CUSUM chart is often based on the assumption that the in-control value p_0 is known; therefore, when p_0 is unknown, accurate estimation is necessary. We recommend using a Bayes estimator to estimate the value of p_0 to incorporate practitioner knowledge and to avoid estimation issues when no nonconforming items are observed in phase I. We also investigate the effects of parameter estimation in phase I on the upper-sided Bernoulli CUSUM chart by using the expected value of the average number of observations to signal (ANOS) and the standard deviation of the ANOS. It is found that the effects of parameter estimation on the Bernoulli CUSUM chart are more significant than those on the Shewhart-type geometric chart. The low p_0 values inherent to high-quality processes imply that a very large, and often unrealistic, sample size may be needed to accurately estimate Po- A methodology to identify a continuous variable to monitor is highly recommended when the value of p_0 is low and the required phase I sample size is impractically large.
机译:伯努利累积总和(CUSUM)图表已被证明可有效地监控质量不合格项目的可控制比例低的高质量过程中不合格项目的比率(p_0)。 Bernoulli CUSUM图表的实现通常基于以下假设:控制值p_0是已知的。因此,当p_0未知时,必须进行准确估计。我们建议使用贝叶斯估计器来估计p_0的值,以吸收从业人员的知识,并避免当阶段I中未观察到不合格项时发生估计问题。我们还研究了阶段I中参数估计对上侧Bernoulli CUSUM图的影响通过使用平均观测信号数(ANOS)的期望值和ANOS的标准偏差。发现参数估计对Bernoulli CUSUM图的影响比对Shewhart型几何图的影响更大。高质量过程所固有的低p_0值意味着可能需要非常大且通常不切实际的样本大小才能准确估计Po-当p_0的值低且不适用时,强烈建议您使用一种方法来识别要监视的连续变量。所需的I相样本数量过大。

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