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Ordinal profile monitoring with random explanatory variables

机译:具有随机解释变量的序数轮廓监视

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摘要

Profiles characterise the functional relationship between the response variable and one or more explanatory variables and have been playing an important role in many applications. Profile monitoring mainly aims at checking the stability of this relationship. In many situations, we observe that the response variable is categorical with three or more attribute levels, and that there is natural order among the levels. Moreover, the explanatory variables are also random rather than fixed at some predefined values. To fully exploit the ordinal information, it is assumed that there is an unknown latent continuous distribution determining the levels of the ordinal response. Based on this, we propose a novel control chart for jointly monitoring the functional relationship, location shifts in the latent continuous distribution, and the random explanatory variables. Simulation results show that our proposed chart is efficient in detecting abnormalities and is robust to various latent distributions.
机译:概要描述了响应变量和一个或多个解释变量之间的功能关系,并在许多应用程序中发挥了重要作用。概要文件监视主要旨在检查这种关系的稳定性。在许多情况下,我们观察到响应变量是具有三个或更多属性级别的类别,并且在这些级别之间存在自然顺序。此外,解释变量也是随机的,而不是固定在某些预定义的值上。为了充分利用序数信息,假设存在未知的潜在连续分布,它决定了序数响应的级别。在此基础上,我们提出了一种新颖的控制图,用于共同监视功能关系,潜在连续分布中的位置偏移以及随机解释变量。仿真结果表明,我们提出的图表能够有效地检测异常,并且对各种潜在分布具有鲁棒性。

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