PLS modelling and fault detection on the Tennessee Eastman benchmark

D. Wilson, G. Irwin
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引用次数: 28

Abstract

This paper describes the application of multivariate regression techniques to the Tennessee Eastman benchmark process. Two methods are applied: linear partial least squares, and a nonlinear variant of this procedure using a radial basis function inner relation. These methods are used to create online inferential models of delayed process measurement. The redundancy so obtained is then used to generate a fault detection and isolation scheme for these sensors. The effectiveness of this scheme is demonstrated on a number of test faults.
基于田纳西伊士曼基准的PLS建模与故障检测
本文描述了多元回归技术在田纳西伊士曼基准过程中的应用。应用了两种方法:线性偏最小二乘法,以及利用径向基函数内关系的非线性变体。这些方法用于创建延迟过程测量的在线推理模型。得到的冗余然后用于生成这些传感器的故障检测和隔离方案。在一系列测试故障中验证了该方案的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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