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A Quality-Related Fault Detection Approach Based on Dynamic Least Squares for Process Monitoring

机译:基于动态最小二乘的过程监控质量相关故障检测方法

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摘要

The issue of quality-related fault detection has attracted much attention in recent years. Partial least squares (PLS) is considered as an efficient tool for predicting and monitoring. However, due to the fact that PLS performs an oblique projection to input space, it is not suitable for quality-related fault detection. On the other hand, PLS is a static method which cannot be used in dynamic systems. In this paper, a dynamic least squares approach is developed by using the structure of auto-regressive moving average exogenous (ARMAX) time-series model. Furthermore, augmented input matrix is decomposed into two orthogonal parts according to their correlations with output, such that quality-related fault detection can be utilized by designing appropriate statistics in two subspaces corresponding to the two parts. The proposed approached is simple and effective for systems with dynamic input and static output, which is a common case for most industrial processes. A numerical example and an industrial process simulator are applied to test the performance of the proposed approach.
机译:近年来,与质量相关的故障检测问题引起了广泛的关注。偏最小二乘(PLS)被认为是一种有效的预测和监视工具。但是,由于PLS对输入空间执行倾斜投影,因此不适用于质量相关的故障检测。另一方面,PLS是静态方法,不能在动态系统中使用。本文采用自回归移动平均外生(ARMAX)时间序列模型的结构,开发了动态最小二乘法。此外,根据增强的输入矩阵根据它们与输出的相关性将其分解为两个正交的部分,从而可以通过在与两个部分相对应的两个子空间中设计适当的统计信息来利用与质量相关的故障检测。对于动态输入和静态输出的系统来说,所提出的方法简单有效,这在大多数工业过程中都是常见的情况。数值算例和工业过程仿真器用于测试所提出方法的性能。

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