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An improved quality-related statistical process monitoring method based on global plus local projection to latent structures (GPLPLS)

机译:一种基于质量和潜在结构的全局投影的改进的与质量相关的统计过程监视方法(GPLPLS)

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摘要

PLS is widely used in the quality control process system, but it has poor capability in some strong local nonlinear system for fault diagnosis. To enhance the monitoring ability of such type fault, a novel statistical model based on global plus local projection to latent structures (GPLPLS) is proposed. Firstly, the characteristics and nature of quality-related global and local partial least squares (QGLPLS) are carefully analyzed, where its principal components preserve the local structure information in their respective data sheets as large as possible but not the correlation. In order to establish a quality-related model, this paper focuses more attention on the relevance of extracted principal components. Then, a quality-related monitoring strategy is established not only has the ability of PLS to extract the maximum linear relevant information but also the local nonlinear structural relevant information between the process variables and quality variables. Finally, the validity and effectiveness of GPLPLS-based statistical model are illustrated through two sets of artificial three-dimensional data of S-curve and Tennessee Eastman process (TEP) simulation platform. The experimental results demonstrate that the proposed model can be maintained the local property of the original data as much as possible and get a better monitoring result compared with PLS and QGLPLS.
机译:PLS在质量控制过程系统中得到了广泛的应用,但是在某些强大的局部非线性系统中,其故障诊断能力却很差。为了提高这种类型故障的监测能力,提出了一种基于全局加局部投影到潜在结构的新型统计模型(GPLPLS)。首先,仔细分析了质量相关的全局和局部偏最小二乘(QGLPLS)的特征和性质,其主要成分在各自的数据表中保留了尽可能大的局部结构信息,但没有相关性。为了建立质量相关的模型,本文将更多的注意力集中在提取的主成分的相关性上。然后,建立了一种与质量相关的监控策略,该策略不仅具有PLS提取最大线性相关信息的能力,而且还具有过程变量与质量变量之间的局部非线性结构相关信息的能力。最后,通过两组S曲线和田纳西伊斯曼过程(TEP)仿真平台的人工三维数据,说明了基于GPLPLS的统计模型的有效性和有效性。实验结果表明,与PLS和QGLPLS相比,该模型可以尽可能地保持原始数据的局部性,并获得较好的监测效果。

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