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Fault Detection in Waste Water Treatment Plants using Improved Particle Filter-based Optimized EWMA

机译:基于改进的基于粒子过滤器的优化EWMA的废水处理厂故障检测

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Environmental, health, and safety concerns are of major importance world-wide. These concerns are closely tied to the availability and quality of water that can be used in various domestic and industrial applications. Therefore, the objective of this paper is to develop a general framework for modeling and monitoring technique that aims at enhancing the operation of wastewater treatment plants. In this work, an improved PF (IPF) method will be developed to better handle the nonlinear and high dimensional state estimation problem involved in modeling wastewater treatment plants. Then, an improved detection control chart to enhance the monitoring of WWTP will be developed. The contributions of this work are the foorfold: 1) to estimate a nonlinear state variables of WWTPs using improved particle filter in three types of weathers (dry, storm and rain). 2) to develop an new optimized EWMA (OEWMA) based on the best selection of smoothing parameter ($lambda$) and control width L. 3) to combine the advantages of state estimation technique, with OEWMA chart to improve the fault detection of WWTP. 4) to investigate the effect of fault types (change in variance and mean in shift) and sizes on the monitoring performances.
机译:在全球范围内,环境,健康和安全问题至关重要。这些问题与可用于各种家庭和工业应用的水的可用性和质量密切相关。因此,本文的目的是建立一个旨在增强废水处理厂运行的建模和监测技术的通用框架。在这项工作中,将开发一种改进的PF(IPF)方法,以更好地处理污水处理厂建模中涉及的非线性和高维状态估计问题。然后,将开发改进的检测控制图以增强对WWTP的监控。这项工作的重点是:1)在三种类型的天气(干旱,暴风雨和雨天)中使用改进的粒子滤波器来估计污水处理厂的非线性状态变量。 2)基于最佳选择的平滑参数($ \ lambda $)和控制宽度L,开发一种新的优化EWMA(OEWMA)。3)结合状态估计技术的优势,结合OEWMA图表来改进对故障的检测污水处理厂。 4)研究故障类型(方差变化和均值变化)和大小对监控性能的影响。

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