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Bayesian single and double variable sampling plans for the Weibull distribution with censoring
Authors:Jianwei Chen  Kim-Hung Li  Yeh Lam
Institution:1. Department of Biostatistics and Computational Biology, University of Rochester, 601, Elmwood Avenue, Box 630, Rochester, NY 14642, USA;2. Department of Statistics, The Chinese University of Hong Kong, Hong Kong;3. Department of Statistics and Actuarial Science, The University of Hong Kong, Hong Kong
Abstract:The sampling inspection problem is one of the main research topics in quality control. In this paper, we employ Bayesian decision theory to study single and double variable sampling plans, for the Weibull distribution, with Type II censoring. A general loss function which includes the sampling cost, the time-consuming cost, the salvage value, and the after-sales cost is proposed to determine the Bayes risk and the corresponding optimal sampling plan. Explicit expressions for the Bayes risks for both single and double sampling plans are derived, respectively. Numerical examples are given to illustrate the effectiveness of the proposed method. Comparisons between single and double sampling plans are made, and sensitivity analysis is performed.
Keywords:Bayes risk  Double sampling plan  Salvage value  Single sampling plan  Time-consuming cost  Weibull distribution
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