A Comparative Study on a Triple-Concept Model of Two Techniques for Monitoring the Mean of Stationary Processes
Publish place: International Journal of Industrial Engineering & Production Research، Vol: 32، Issue: 4
Publish Year: 1400
نوع سند: مقاله ژورنالی
زبان: English
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JR_IJIEPR-32-4_005
تاریخ نمایه سازی: 19 دی 1400
Abstract:
In recent years, it has been proven that integrating statistical process control, maintenance policy, and production can bring more benefits for the entire production systems. In the literature of triple-concept integrated models, it has generally been assumed that the observations are independent. However, the existence of correlated structures in some practical applications put the traditional control charts in trouble. The mixed EWMA-CUSUM (MEC) control chart and the ARMA control chart are effective tools to monitor the mean of autocorrelated processes. This paper proposes an integrated model subject to some constraints for determining the decision variables of triple concepts in the presence of autocorrelated data. Three types of autocorrelated processes are investigated to study their effects on the results. Moreover, the results of the MEC and ARMA charts are compared. Due to the complexity of the model, a particle swarm optimization (PSO) algorithm is applied to select optimal decision variables. An industrial example and extensive comparisons are provided
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Authors
Samrad Jafarian-Namin
Department of Industrial Engineering, Faculty of Engineering, Yazd University
mohammad saber Fallahnezhad
Department of Industrial Engineering, Faculty of Engineering, Yazd University
Reza Tavakkoli-Moghaddam
School of Industrial Engineering, College of Engineering, University of Tehran
Ali Salmasnia
Department of Industrial Engineering, Faculty of Technology and Engineering, University of Qom
Mohammad Hossein Abooei
Department of Industrial Engineering, Faculty of Engineering, Yazd University