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Acceptance control charts for non-normal data
Authors:Chao-Yu Chou  CHung-Ho Chen  Hui-Rong Liu
Institution:1. Department of Industrial Engineering and Management , National Yunlin University of Science and Technology , Taiwan, ROC;2. Department of Industrial Management , Southern Taiwan University of Technology , Taiwan, ROC;3. Department of Food and Nutrition , Hung-Kuang University , Taiwan, ROC
Abstract:Control charts are one of the most important methods in industrial process control. The acceptance control chart is generally applied in situations when an X¯ chart is used to control the fraction of conforming units produced by the process and where 6-sigma spread of the process is smaller than the spread in the specification limits. Traditionally, when designing control charts, one usually assumes that the data or measurements are normally distributed. However, this assumption may not be true in some processes. In this paper, we use the Burr distribution, which is employed to represent various non-normal distributions, to determine the appropriate control limits or sample size for the acceptance control chart under non-normality. Some numerical examples are given for illustration. From the presented examples, ignoring the effect of non-normality in the data leads to a higher type I or type II error probability.
Keywords:Control chart  non-normality  skewness  kurtosis  the Burr distribution
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