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An improved approach for constructing lower confidence bound on process yield

Author

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  • Chien-Wei Wu
  • Mou-Yuan Liao
  • James C. Chen

Abstract

Process yield, the percentage of processed product units passing inspection, is a standard numerical measure of process performance in manufacturing industry. Based on the expression of process yield, Boyles (1994) presented a yield-measure index, Spk, for normally distributed processes. In order to compute the index value, sample data must be collected and a great degree of uncertainty may be introduced into the yield assessment due to sampling errors. To remedy for this, several existing techniques have been applied to construct the confidence bounds for Spk. In this article, an alternative approach is proposed to construct the lower confidence bound for Spk. To examine and compare the performances of the proposed generalised confidence intervals (GCIs), a series of simulations is conducted. The results show that the proposed GCIs approach is superior to the standard bootstrap in terms of coverage rate. Therefore, this article recommends GCIs approach for assessing the process yield in real applications. [Received 4 November 2010; Revised 5 January 2011; Accepted 7 January 2011]

Suggested Citation

  • Chien-Wei Wu & Mou-Yuan Liao & James C. Chen, 2012. "An improved approach for constructing lower confidence bound on process yield," European Journal of Industrial Engineering, Inderscience Enterprises Ltd, vol. 6(3), pages 369-390.
  • Handle: RePEc:ids:eujine:v:6:y:2012:i:3:p:369-390
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    Cited by:

    1. Shih-Wen Liu & Chien-Wei Wu, 2016. "A quick switching sampling system by variables for controlling lot fraction nonconforming," International Journal of Production Research, Taylor & Francis Journals, vol. 54(6), pages 1839-1849, March.

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