Approaches for Measurement System Analysis Considering Randomness and Fuzziness

Liang-Hsuan Chen, Chia-Jung Chang
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引用次数: 2

Abstract

For some quality inspection practices, subjective judgements based on the inspectors' experience and knowledge, such as visual inspection, may be required for some particular quality characteristics. This kind of measurement system, including its associated randomness and fuzziness, should be assessed by Measurement system analysis (MSA) before its application. For such purpose, this article represents observations with randomness and fuzziness from MSAs as fuzzy random variables, and then two pairs of descriptive parameters, i.e., expected value and variance, are derived. Then, the relationship of the total sum of squares of factors is proven to hold, so that fuzzy analysis of variance (FANOVA) in terms of gauge repeatability and reproducibility can be developed. The proposed approach has the advantage that FANOVA is developed based on the relationship of the total sum of squares of factors, considering randomness and fuzziness. A real case in the semiconductor packaging industry is used to demonstrate the applicability of the proposed approaches to MSA.
考虑随机性和模糊性的测量系统分析方法
对于一些质量检验实践,可能需要基于检验员经验和知识的主观判断,例如目视检验,以确定某些特定的质量特征。这种测量系统的随机性和模糊性在应用前需要进行测量系统分析(MSA)。为此,本文将msa中具有随机性和模糊性的观测值表示为模糊随机变量,并推导出期望值和方差这两对描述性参数。然后,证明了各因素的总平方和之间的关系成立,从而建立了测量重复性和再现性的模糊方差分析(FANOVA)。该方法的优点是基于因子的总平方和关系,考虑了随机性和模糊性。在半导体封装行业的一个真实案例被用来证明所提出的方法对MSA的适用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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