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Diagnosability Study of Multistage Manufacturing Processes Based on Linear Mixed-Effects Models

机译:基于线性混合效应模型的多阶段制造过程可诊断性研究

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摘要

Automatic in-process data collection techniques have been widely used in complicated manufacturing processes in recent years. The huge amounts of product measurement data have created great opportunities for process monitoring and diagnosis. Given such product quality measurements, this article examines the diagnosability of the process faults in a multistage manufacturing process using a linear mixed-effects model. Fault diagnosability is defined in a general way that does not depend on specific diagnosis algorithms. The concept of a minimal diagnosable class is proposed to expose the "aliasing" Structure among process faults in a partially diagnosable system. The algorithms and procedures needed to obtain the minimal diagnosable class and to evaluate the system-level diagnosability are presented. The methodology, which can be used for any general linear input-output system, is illustrated using a panel assembly process and an engine head machining process.
机译:近年来,自动过程中数据收集技术已广泛用于复杂的制造过程中。大量的产品测量数据为过程监控和诊断创造了巨大的机会。给定此类产品质量度量,本文使用线性混合效应模型检查了多阶段制造过程中过程故障的可诊断性。故障诊断性以不依赖特定诊断算法的一般方式定义。提出了最小可诊断类的概念,以在部分可诊断系统的过程故障中暴露“混淆”结构。介绍了获得最小可诊断类和评估系统级可诊断性所需的算法和过程。使用面板组装过程和发动机缸盖加工过程说明了可用于任何通用线性输入-输出系统的方法。

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