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Estimating the Step-Change Time of the Location Parameter in Multistage Processes Using MLE

机译:使用MLE估算多阶段过程中位置参数的阶跃变化时间

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摘要

In this paper, maximum likelihood step-change point estimators of the location parameter, the out-of-control sample and the out-of-control stage are developed for auto-correlated multistage processes. To do this, the multistage process and the concept of change detection are first discussed. Then, a time-series model of the process is presented. Assuming step changes in the location parameter of the process, next, the likelihood functions of different samples before and after receiving out-of-control signal from an X-bar control chart were derived under different conditions. The maximum likelihood estimators were then obtained by maximizing the likelihood functions. Finally, the accuracy and the precision of the proposed estimators are examined through some Monte Carlo simulation experiments. The results show the estimators to be promising.
机译:本文针对自动关联的多阶段过程,开发了位置参数,失控样本和失控阶段的最大似然阶跃点估计器。为此,首先讨论了多阶段过程和变化检测的概念。然后,给出了该过程的时间序列模型。假设过程的位置参数发生变化,接下来,在不同条件下,得出从X形控制图接收失控信号之前和之后,不同样本的似然函数。然后通过使似然函数最大化来获得最大似然估计器。最后,通过一些蒙特卡洛模拟实验检验了所提出估计量的准确性和精度。结果表明估计量是有希望的。

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