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Estimating the drift time for processes subject to linear trend disturbance using fuzzy statistical clustering

机译:使用模糊统计聚类估计线性趋势扰动过程的漂移时间

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摘要

Although control charts can notify the state of out-of-control in a process by generating a signal, the indication is usually followed by a considerable amount of delay. Identifying the real time of the change in a process would provide a starting point for further investigation of an assignable cause. This paper addresses the problem of detecting the change point in different processes when the quality characteristics drift steadily away from an in-control state. For this purpose, a fuzzy statistical clustering (FSC) method is used to estimate the drift time in different processes. Since the application of an FSC method requires both in- and out-of-control values of the process parameter, a linear regression model is utilised to estimate the trend rate and then calculate the out-of-control process parameter. Through extensive simulations, the performance of the proposed change point estimation method is analysed and compared with the most recent estimators for several control charts. The results demonstrate that the proposed method is more effective in detecting the drift time through a wide range of trend rates. Furthermore, it is shown that the proposed method offers a higher estimation precision compared to conventional statistical methods.
机译:尽管控制图可以通过生成信号来通知过程中失控的状态,但通常在指示之后会出现大量延迟。识别流程更改的实时性将为进一步调查可分配原因提供起点。当质量特性稳定地偏离控制状态时,本文解决了在不同过程中检测变化点的问题。为此,使用模糊统计聚类(FSC)方法来估计不同过程中的漂移时间。由于FSC方法的应用需要过程参数的失控值和失控值,因此使用线性回归模型估算趋势率,然后计算失控的过程参数。通过广泛的仿真,对提出的变更点估计方法的性能进行了分析,并与针对多个控制图的最新估计器进行了比较。结果表明,所提出的方法在较大的趋势率范围内检测漂移时间更为有效。此外,表明与传统的统计方法相比,所提出的方法提供了更高的估计精度。

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