Variable data measurement systems analysis: advances in gage bias and linearity referencing and acceptability

Mahjoub Abdelgadir, C. Gerling, J. L. Dobson
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引用次数: 3

Abstract

Measurement systems analysis (MSA) is a set of requirements and procedures adopted by the automotive industry and other disciplines to evaluate the accuracy and precision of measurement systems through assessing and quantifying the random and systematic errors and assigning appropriate dispositions for tolerance and performance acceptance. The methodology of variable data MSA comprises studies of a system's stability, bias, linearity and gage repeatability and reproducibility (GR&R). This paper describes advances in referencing and criteria for estimation of uncertainty errors, dispositions, and acceptability of MSA bias and linearity, proposing an extension to the basic statistical zero null-hypothesis to include overlap between confidence intervals and uncertainty associated with the reference standards used in bias and linearity studies.
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可变数据测量系统分析:量规偏差和线性参考及可接受性方面的进展
测量系统分析(MSA)是汽车工业和其他学科采用的一套要求和程序,通过评估和量化随机和系统误差,并为公差和性能接受度分配适当的配置,来评估测量系统的准确性和精度。可变数据MSA的方法包括研究系统的稳定性、偏置、线性和测量可重复性和再现性(GR&R)。本文描述了MSA偏差和线性的不确定性误差、倾向和可接受性的参考和估计标准的进展,提出了对基本统计零零假设的扩展,以包括与偏差和线性研究中使用的参考标准相关的置信区间和不确定性之间的重叠。
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来源期刊
International Journal of Metrology and Quality Engineering
International Journal of Metrology and Quality Engineering Engineering-Safety, Risk, Reliability and Quality
CiteScore
1.70
自引率
0.00%
发文量
8
审稿时长
8 weeks
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