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Time between events control charts for gamma distribution
Authors:Muhammad Taqi Shah  Muhammad Azam  Muhammad Aslam  Uzma Sherazi
Affiliation:1. National College of Business Administration and Economics, Lahore, Pakistan

Higher Education Department, Govt. of Punjab, Pakistan;2. Department of Statistics and Computer Science, University of Veterinary and Animal Sciences, Lahore, Pakistan;3. Department of Statistics, Faculty of Science, King Abdulaziz University, Jeddah, Saudi Arabia;4. Department of Statistics, University of Sargodha, Sargodha, Pakistan

Abstract:Modern and emerging techniques of technology have brought a revolution in quality inspection of products. When events in highly efficient production processes occur rarely, it requires to inspect and monitor the time between occurrence of these events (TBE). The exponential and gamma distributions are commonly used models for time between events (TBE) data. In this article, a new monitoring scheme has been established for TBE data based on exponential and gamma distributions. In a previous research, transformation-based control charts have been developed for TBE. The proposed study is aimed to use the exact probability distribution of charting statistic rather than applying transformations to data and this has remained still unaddressed. Average run length (ARL) and percentage decrease in ARL (ΔARL) have been calculated using Monte Carlo simulations and the proposed monitoring method has been compared with existing techniques applied to transformed data. The proposed scheme provides a simpler design structure and better performance on different sample sizes in identifying annoying process variations. Further, the technique has been applied to simulated and real-life data sets of time between manufacturing plant accidents to highlight the worth and particle applicability of the proposed work.
Keywords:ARL  control charts  distribution of charting statistic  exponential distribution  gamma distribution  MGF technique  TBE  ΔARL
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