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RANKING AND SELECTION THEORY

Selecting the Best Process Based on Capability Index via Empirical Bayes Approach

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Pages 1576-1588 | Received 01 May 2008, Accepted 29 Dec 2008, Published online: 24 Apr 2009
 

Abstract

Consider k (k ≥ 2) manufacturing processes whose mean θ i , variance and process capability index C pw (i), i = 1,…, k, are all unknown. For two given control values C pw (0) and , we are interested in selecting some process whose capability index is no less than C pw (0) and is the largest in the qualified subset in which each process variance is no larger than . Under a Bayes framework, we consider the normally distributed manufacturing processes taking normal-gamma as its conjugate prior. A Bayes approach is set up and an empirical Bayes procedure is proposed which has been shown to be asymptotically optimal. A simulation study is carried out for the performance of the proposed procedure and it is found practically useful.

Mathematics Subject Classification:

Acknowledgment

We are grateful to two referees for their patience of careful reading and many helpful comments which greatly lead to improvement of this presentation.

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