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Improved nonlinear fault detection strategy based on the Hellinger distance metric: Plug flow reactor monitoring

机译:基于Hellinger距离度量的非线性故障检测策略:插头流量电抗器监控

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摘要

Fault detection has a vital role in the process industry to enhance productivity, efficiency, and safety, and to avoid expensive maintenance. This paper proposes an innovative multivariate fault detection method that can be used for monitoring nonlinear processes. The proposed method merges advantages of nonlinear projection to latent structures (NLPLS) modeling and those of Hellinger distance (HD) metric to identify abnormal changes in highly correlated multivariate data. Specifically, the HD is used to quantify the dissimilarity between current NLPLS-based residual and reference probability distributions obtained using fault-free data. Furthermore, to enhance further the robustness of these methods to measurement noise, and reduce the false alarms due to modeling errors, wavelet-based multiscale filtering of residuals is used before the application of the HD-based monitoring scheme. The performances of the developed NLPLS-HD fault detection technique is illustrated using simulated plug flow reactor data. The results show that the proposed method provides favorable performance for detection of faults compared to the conventional NLPLS method.
机译:故障检测在工艺业中具有重要作用,以提高生产率,效率和安全性,并避免昂贵的维护。本文提出了一种创新的多变量故障检测方法,可用于监控非线性过程。所提出的方法将非线性投影的优点与潜在结构(NLPLS)建模和Hellinger距离(HD)度量的优点合并,以识别高度相关的多变量数据的异常变化。具体地,HD用于量化使用无故障数据获得的基于NLPL的基于NLPL的残差和参考概率分布之间的异化。此外,为了进一步增强这些方法对测量噪声的鲁棒性,并且减少由于建模误差引起的误报,在应用基于HD的监视方案之前使用的基于小波的多尺度过滤。使用模拟插头流量反应堆数据说明了开发的NLPLS-HD故障检测技术的性能。结果表明,与传统的NLPLS方法相比,该方法提供了对检测故障的有利性能。

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