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Time-between-events control charts for an exponentiated class of distributions of the renewal process

机译:更新过程指数级分布的事件间时间控制图

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Time-between-events control charts are commonly used to monitor high-quality processes and have several advantages over the ordinary control charts. In this article, we present some new control charts based on the renewal process, where a class of absolutely continuous exponentiated distributions is assumed for the time between events. This class includes the generalized exponential, generalized Rayleigh, and exponentiated Pareto distributions. Although we discuss the design structure for all the mentioned distributions, our main focus will be on the generalized exponential distribution due to its practical relevance and popularity. Since the generalized exponential distribution is a generalization of the traditional exponential distribution, the new control chart is more flexible than the existing exponential time-between-events charts. The control chart performance is evaluated in terms of some useful measures, including the average run length (ARL), the expected quadratic loss, continuous ranked probability, and the relative ARL. The effect of parameter estimation using the maximum likelihood and Bayesian methods on the ARL is also discussed in this article. The study also presents an illustrative example and 4 case studies to highlight the practical relevance of the proposal.
机译:事件间隔时间控制图通常用于监视高质量的过程,并且具有比普通控制图更多的优势。在本文中,我们基于更新过程提出了一些新的控制图,其中假设事件之间的时间间隔为一类绝对连续的指数分布。此类包括广义指数分布,广义瑞利分布和指数帕累托分布。尽管我们讨论了所有上述分布的设计结构,但由于其实际相关性和受欢迎程度,我们的主要重点将放在广义指数分布上。由于广义指数分布是传统指数分布的广义,因此新的控制图比现有的指数事件间时间图更灵活。根据一些有用的措施来评估控制图的性能,包括平均游程长度(ARL),预期的二次损失,连续排名概率和相对ARL。本文还讨论了使用最大似然和贝叶斯方法进行参数估计对ARL的影响。该研究还提供了一个示例性例子和4个案例研究,以突出该建议的实际意义。

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