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Sample size determination for estimating multivariate process capability indices based on lower confidence limits

机译:基于较低置信度限制的样本量确定,用于估计多元过程能力指数

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摘要

With the advent of modern technology, manufacturing processes have become very sophisticated; a single quality characteristic can no longer reflect a product's quality. In order to establish performance measures for evaluating the capability of a multivariate manufacturing process, several new multivariate capability (NMC) indices, such as NMC_p and NMC_(pm), have been developed over the past few years. However, the sample size determination for multivariate process capability indices has not been thoroughly considered in previous studies. Generally, the larger the sample size, the more accurate an estimation will be. However, too large a sample size may result in excessive costs. Hence, the trade-off between sample size and precision in estimation is a critical issue. In this paper, the lower confidence limits of NMC_p and NMC_(pm) indices are used to determine the appropriate sample size. Moreover, a procedure for conducting the multivariate process capability study is provided. Finally, two numerical examples are given to demonstrate that the proper determination of sample size for multivariate process indices can achieve a good balance between sampling costs and estimation precision.
机译:随着现代技术的出现,制造过程变得非常复杂。单一的质量特征不再能够反映产品的质量。为了建立评估多元制造工艺能力的性能指标,在过去的几年中已经开发了几种新的多元能力(NMC)指标,例如NMC_p和NMC_(pm)。但是,在以前的研究中尚未对多变量过程能力指数的样本量确定进行全面考虑。通常,样本量越大,估计将越准确。但是,样本量太大可能会导致成本过高。因此,样本量与估计精度之间的权衡是一个关键问题。在本文中,使用NMC_p和NMC_(pm)指数的下限置信度来确定适当的样本量。此外,提供了进行多元过程能力研究的程序。最后,给出了两个数值示例,以证明对多元过程指标的样本大小的适当确定可以在采样成本和估计精度之间取得良好的平衡。

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