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Machine learning technique for data-driven fault detection of nonlinear processes

机译:用于非线性过程的数据驱动故障检测机器学习技术

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This paper proposes a new machine learning method for fault detection using a reduced kernel partial least squares (RKPLS), in static and online forms, for handling nonlinear dynamic systems. The choice of the fault detection method has a vital role to improve efficiency and safety as well as production. The kernel partial least squares is a nonlinear extension of partial least squares. The present method has been mostly used as a monitoring method for nonlinear processes. Thus, the standard method cannot perform properly and quickly when the training data set is large. The main contributions of the suggested approach are: the approximation of the components retained by the standard method and the reduction in the computation time as well as the false alarm rate. Using the reduced principal, the online suggested method is presented for fault detection of nonlinear dynamic processes. The online reduced method is developed to monitor the dynamic process online and update the reduced reference model. For this reason, the moving window RKPLS is proposed. The general principle is to check if the new useful observation satisfies, in the feature space, the condition of independencies between variables. Thereafter, the relevance of the suggested methods is used to monitor the chemical stirred tank reactor benchmark process, the air quality and the tennessee eastman process. The simulation results of the suggested methods are compared to the standard one.
机译:本文提出了一种新的机器学习方法,用于使用静态和在线形式使用静态和在线形式的减少的内核部分最小二乘(RKPL)进行故障检测,用于处理非线性动态系统。故障检测方法的选择具有重要作用,可以提高效率和安全性以及生产。内核部分最小二乘是部分最小二乘的非线性延伸。本方法主要用作非线性过程的监测方法。因此,当训练数据集很大时,标准方法无法正确且快速地执行。建议方法的主要贡献是:由标准方法保留的组件的近似值和计算时间的减少以及误报率。使用减少的主体,介绍了在线建议的方法用于非线性动态过程的故障检测。开发了在线减少的方法以在线监控动态过程并更新减少的参考模型。因此,提出了移动窗口RKPLS。一般原则是检查新的有用观察是否满足了特征空间,变量之间的独立条件。此后,建议的方法的相关性用于监测化学搅拌罐反应器基准工艺,空气质量和田纳西州伊士德曼流程。建议方法的仿真结果与标准相比。

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