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Data-Driven Approach of KPI Monitoring and Prediction with Application to Wastewater Treatment Process

机译:KPI监测和预测的数据驱动方法与污水处理过程

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摘要

In this paper, a data-driven scheme of key performance indicator (KPI) monitoring, prediction and KPI related fault detection is applied to the wastewater treatment process (WWTP). By means of a data-driven realization of the so-called left coprime factorization (LCF) of the process, the efficient monitoring and prediction of chemical oxygen demand (COD) concentration in the effluent flow are realized both for the situation that COD is measurable and unmeasurable. The well established Benchmark Simulation Model no. 1 (BSM1) is utilized for the demonstration of the effectiveness of this approach.
机译:在本文中,将关键性能指标(KPI)监测,预测和KPI相关故障检测的数据驱动方案应用于废水处理过程(WWTP)。通过对过程的所谓左副作用(LCF)的数据驱动的实现,在鳕鱼可测量的情况下,流出物流中的化学需氧量(COD)浓度的有效监测和预测是实现的和不可估量的。良好的基准模拟模型号。 1(BSM1)用于证明这种方法的有效性。

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