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中国管理科学 ›› 2009, Vol. 17 ›› Issue (4): 170-177.

• 论文 • 上一篇    下一篇

基于多子样的贝叶斯动态过程能力估计与评价方法研究

朱慧明1, 曾惠芳1, 虞克明2, 郝立亚1, 李素芳1   

  1. 1. 湖南大学工商管理学院, 湖南长沙410082;
    2. 布鲁内尔大学数学系, 伦敦UB8 3PH
  • 收稿日期:2008-12-22 修回日期:2009-04-20 出版日期:2009-08-30 发布日期:2009-08-30
  • 作者简介:朱慧明(1966- ),男(汉族),湖南大学工商管理学院,教授、博士生导师,研究方向:贝叶斯预测与决微分析.
  • 基金资助:

    国家自然科学基金项目(70770138);教育部新世纪人才支持计划项目(NCET050704)

Bayesian Dynamic Estimation and Evaluation of Process Capability Indices with Multiple Subsamples

ZHU Hui-ming1, ZENG Hui-fang1, YU Ke-ming2, HAO Li-ya1, LI Su-fang1   

  1. 1. College of Business Administration, Hunan University, Changsha 410082, China;
    2. Department of Statistics, Brunel University, London UB8 3PH, China
  • Received:2008-12-22 Revised:2009-04-20 Online:2009-08-30 Published:2009-08-30

摘要: 针对参数随机化情况下生产过程能力的评价问题,提出了新的过程能力指数估计与评价方法。通过质量控制模型的统计结构分析,研究了扩散先验分布下参数后验分布,据此构造了过程能力指数的贝叶斯点估计和区间估计;在此基础上,将前一阶段模型参数后验分布作为下一阶段的参数先验分布,充分利用历史数据信息,建立了过程能力指数及其下限的贝叶斯动态评价模型。研究结果表明:与现有的贝叶斯过程能力指数估计方法比较,贝叶斯动态过程能力指数的预测精度优于前者,更能反映实际生产过程能力水平。

关键词: 质量控制, 过程能力指数, 贝叶斯方法, 估计, 先验分布

Abstract: To analyze the process capability under random parameters,a new kind of process capability index is designed in this paper. Based on the statistical model for quality variables,we explored the parameters' Bayesian point estimates and interval estimation with a diffuse prior and developed a Bayesian process capability index. Then,we considered the parameters'current posterior distribution to be their prior distribution in the next phrase when the process is capable,by which the Bayesian dynamic process capable index is established. Finally,we give an example to show how to use the method proposed in this paper. The results indicate that the accuracy of estimators for process capability indices can be improved through Bayesian dynamic statistical methods.

Key words: quality control, process capability index, bayesian method, estimation, prior distribution

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