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首页> 外文期刊>International Journal of Industrial Engineering & Production Research >Linear Profile Monitoring in the Presence of Non-Normality and Autocorrelation
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Linear Profile Monitoring in the Presence of Non-Normality and Autocorrelation

机译:存在非正态和自相关时的线性轮廓监视

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In an increasing number of practical situations, the quality of a process or product can be effectively characterized and summarized by a profile. A profile is usually a functional relationship between a response variable and one or more explanatory variables which can be modeled frequently using linear or nonlinear regression models. In this paper, we study the effect of non-normality on profile monitoring in Phase II when within or between autocorrelation is present. Different levels of autocorrelation and skewed and heavy-tailed symmetric nonnormal distributions are used in our study to evaluate the performance of three existing monitoring schemes numerically. Simulation results indicate that the non-normality and autocorrelation can have a significant effect on the in-control performances of the considered schemes. Results also indicate that the out-of-control performances of the schemes are not very sensitive to low and moderate levels of autocorrelation in moderate and large shifts.
机译:在越来越多的实际情况下,可以通过配置文件有效地表征和总结过程或产品的质量。轮廓通常是响应变量和一个或多个解释变量之间的函数关系,可以使用线性或非线性回归模型对其进行频繁建模。在本文中,我们研究了当存在自相关之内或之间时,非正态性对II期剖面监测的影响。在我们的研究中,使用了不同水平的自相关以及偏斜和重尾对称非正态分布,以数字方式评估三种现有监测方案的性能。仿真结果表明,非正态和自相关可能对所考虑方案的控制性能产生重大影响。结果还表明,该方案的失控性能对于中等和较大班次的低和中等水平的自相关不是很敏感。

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