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Simple linear profiles monitoring in the presence of within profile autocorrelation

机译:在存在轮廓自相关的情况下进行简单的线性轮廓监控

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摘要

Quality of some processes or products can be characterized effectively by a function referred to as profile. Many studies have been done by researchers on the monitoring of simple linear profiles when the observations within each profile are uncorrelated. However, due to spatial autocorrelation or time collapse, this assumption is violated and leads to poor performance of the proposed control charts. In this paper, we consider a simple linear profile and assume that there is a first order autoregressive model between observations in each profile. Here, we specifically focus on phase II monitoring of simple linear regression. The effect of autocorrelation within the profiles is investigated on the estimate of regression parameters as well as the performance of control charts when the autocorrelation is overlooked. In addition, as a remedial measure, transformation of Y-values is used to eliminate the effect of autocorrelation. Four methods are discussed to monitor simple linear profiles and their performances are evaluated using average run length criterion. Finally, a case study in agriculture field is investigated.
机译:某些过程或产品的质量可以通过称为配置文件的功能有效地表征。当每个轮廓内的观测值不相关时,研究人员已经进行了许多研究,以监测简单线性轮廓。但是,由于空间自相关或时间崩溃,违反了此假设,并导致所提出的控制图的性能较差。在本文中,我们考虑一个简单的线性轮廓,并假设每个轮廓中的观测值之间存在一阶自回归模型。在这里,我们特别关注简单线性回归的第二阶段监视。当忽略自相关时,将研究轮廓内自相关对回归参数估计值以及控制图性能的影响。另外,作为补救措施,使用Y值的转换来消除自相关的影响。讨论了四种监视简单线性轮廓的方法,并使用平均游程准则对它们的性能进行了评估。最后,以农业领域为例进行了研究。

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