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Self-starting single control charts for multivariate processes: a comparison of methods

机译:用于多变量过程的自动启动单控制图:方法的比较

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Paper aims: Based on challenges faced in real SPC application, this paper considers implementation and performance ofself-starting methodology in multivariate process monitoring.Originality: Traditional omnibus charts depend on in-control process parameters while parameters are generally known.However, in real settings, this information may not exist. This paper proposes and compares novel methods to overcomethis difficulty.Research method: This paper introduces, evaluates the performance and implements multivariate self-starting charts(SSMEC, SSMELR, and SSMME) for multivariate process monitoring.Main findings: Proposed SSMME chart is the best choice in real application because it proves better performance inresponse to various simulation scenarios and gives diagnostic tools for further analysis.Implications for theory and practice: The main contributions are the comparison of different self-starting approachesand introducing a novel multivariate self-starting chart that are suitable in real process monitoring and illustrate thebenefit of the selected SPC chart with hypertension monitoring.
机译:纸质目标:基于真实SPC应用面临的挑战,本文考虑了在多变量过程监控中的自主启用方法的实施和性能。 ,此信息可能不存在。本文提出并比较了新的方法来过度困难。方法:本文介绍,评估了对多变量过程监测的多变量自启动图表(SSMEC,SSMELR和SSMME)的性能和实现:提出的SSMME图表是最好的实际应用中的选择,因为它证明了各种仿真方案的更好的性能,并为进一步分析提供了诊断工具。用于理论和实践的重要组:主要贡献是不同自动方法和引入新的多变量自启动图表的比较适用于实际过程监测,并用高血压监测说明所选SPC图表的苯特征。

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