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Quality-relevant fault monitoring based on efficient projection to latent structures with application to hot strip mill process

机译:基于对潜在结构的有效投影的与质量相关的故障监控,并应用于热轧机

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摘要

In this study, a new statistical monitoring technique based on efficient projection to latent structures (EPLS) is proposed for quality-relevant fault detection in multivariate processes that exhibit collinear measurements. The algorithm decomposes process variables into three subspaces according to singular value decomposition (SVD) and principal component analysis. This method effectively solves the problems of real-time and effectiveness in the quality-relevant fault diagnosis of industrial processes. EPLS takes full advantage of good nature of SVD. As a result, the calculation of the projection process is greatly reduced. It is reasonable that the process data space was projected to three subspaces, a quality-relevant subspace, a quality-irrelevant subspace and a residual subspace. EPLS algorithm not only effectively avoids the tedious iterative calculation, but also makes more explicit spatial resolution. The framework of quality-relevant fault monitoring based on EPLS algorithm was proposed as well in this study. A challenging problem, real industrial hot strip mill process, is used to illustrate the effectiveness of the proposed method.
机译:在这项研究中,提出了一种新的基于潜在结构有效投影(EPLS)的统计监视技术,用于显示共线测量的多变量过程中与质量相关的故障检测。该算法根据奇异值分解(SVD)和主成分分析将过程变量分解为三个子空间。该方法有效地解决了工业过程中与质量相关的故障诊断中实时性和有效性的问题。 EPLS充分利用了SVD的良好特性。结果,大大减少了投影过程的计算。可以将过程数据空间投影到三个子空间,即质量相关子空间,质量无关子空间和残差子空间,这是合理的。 EPLS算法不仅有效地避免了繁琐的迭代计算,而且使空间分辨率更加明确。提出了基于EPLS算法的质量相关的故障监测框架。一个具有挑战性的问题,即实际的工业热轧机工艺,被用来说明所提出方法的有效性。

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