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Progressive Variance Control Charts for Monitoring Process Dispersion
Authors:Raja Fawad Zafar  Muhammad Riaz  Zawar Hussain
Institution:1. Department of Basic Sciences, Riphah International University Islamabad, Pakistan;2. Department of Mathematics and Statistics, King Fahad University of Petroleum and Minerals, Dhahran, Saudi Arabia;3. Department of Statistics, Quaid-i-Azam University Islamabad, Pakistan
Abstract:In a process, the deviation from location or scale parameters affects the quality of the process and waste resources. So it is essential to monitor such processes for possible changes due to any assignable causes. Control charts are the most famous tool used to meet this intention. It is useless to monitor process location until the assurance that process dispersion is in-control. This study proposes some new two-sided memory control charts named as progressive variance (PV) control charts which are based on sample variance to monitor changes in process dispersion assuming normality of quality characteristic to be monitored. Simulation studies are made, and an example is discussed to evaluate the performance of the proposed charts. The comparison of the proposed chart is made with exponentially weighted moving average- and cumulative sum-type charts for process dispersion. The study shows that performance of the proposed charts are uniformly better than its competitors for detecting positive shifts while for detecting negative shift in the variance their performance is better for small shifts and reasonably good for moderated shifts.
Keywords:Average run length  Control charts  Process dispersion  Progressive variance  Statistical process control
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