DIAGRAM KENDALI MEWMV DAN MEWMA BERBASIS MODEL TIME SERIES PADA DATA BERAUTOKORELASI: STUDI KASUS GULA KRISTAL PUTIH

Novri Suhermi, Retno Puspitaningrum, Agus Suharsono
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Abstract

In this study, we aim to build a multivariate control chart for autocorrelated data. We use MEWMA and MEWMV control charts which are free of normality assumption. Time series model is then applied to tackle autocorrelation problem in the data where the control charts require independence assumption. The real dataset used is the quality characteristics of white crystal sugar, also called gula kristal putih (GKP). There are 3 quality characteristics of GKP, namely moisture (%), color of solution (IU), and grain type (mm). It is considered that these quality characteristics are correlated each other. Our results show that the variability process is out of control where there are 5 observations outside the control limits. Meanwhile the mean process is also out of control. The factors causing the out of control include the workers, the raw materials, the measurement, the machines, and the methods. The process capability indices result in the values less than 1 which means the process is not sufficiently capable.
MEWMV控制图和MEWMA基于自相关数据的时间系列模型:白糖晶体案例研究
在本研究中,我们的目标是为自相关数据建立一个多元控制图。我们使用了MEWMA和MEWMV控制图,它们不存在正态性假设。然后应用时间序列模型来解决控制图需要独立性假设的数据的自相关问题。使用的真实数据集是白色冰糖的质量特征,也称为古拉水晶putih (GKP)。GKP有3个质量特征,即水分(%)、溶液颜色(IU)和颗粒类型(mm)。认为这些品质特征是相互关联的。我们的结果表明,当有5个观测值超出控制范围时,变异性过程是失控的。同时,均值过程也不受控制。造成失控的因素包括工人、原材料、测量、机器和方法。工艺能力指标的值小于1,说明工艺能力不足。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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