Please use this identifier to cite or link to this item: http://ir.lib.seu.ac.lk/handle/123456789/4956
Title: Performance of joint quality monitoring schemes under Gaussian distribution
Authors: Razmy, Athambawa Mohamed
Faisa, Mohamed Ababneh
Ahmed, Al-Hadhrami
Zakir Hossain, Mohammad
Sadoon, Abdullah Ibrahim Al-Obaidy
Keywords: Average run length
Control chart
Cumulative sum
Exponentially weighted moving average
Joint monitoring scheme
Shewhart scheme
Issue Date: Jul-2020
Publisher: Blue Eyes Intelligence Engineering & Sciences Publication
Citation: International Journal of Recent Technology and Engineering (IJRTE), 9(2): 335-340
Series/Report no.: 9;2
Abstract: Jointly monitoring the process mean and variance has become a well-known topic in statistical quality control literature after it is considered as a bivariate problem. Many joint monitoring schemes have been proposed by using the Shewhart, cumulative sum and exponentially weighted moving average techniques. In this paper, best performing schemes from each technique has been selected and compared for their performance using average run length properties. It was found that selection of better joint monitoring scheme based on the shift in mean and variance to be detected quickly. In particular, the Shewhart distance joint monitoring scheme performs well when there is larger shifts in mean, variance or in both. In addition, the Shewhart distance joint monitoring scheme performs specific when there is no shift in mean and decrease in variance. For the smaller shifts in mean, variance or in both, cumulative sum and exponentially weighted moving average joint monitoring schemes can be recommended. At this scenario exponentially weighted moving average joint monitoring scheme performs marginally better than the cumulative sum scheme
URI: http://ir.lib.seu.ac.lk/handle/123456789/4956
ISSN: 2277-3878
Appears in Collections:Research Articles

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