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Anomaly detection of Municipal Wastewater Treatment Plant operation using Support Vector Machine

机译:使用支持向量机的城市污水处理厂运行的异常检测

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It is difficult to run a wastewater treatment process (WWTP) stably in the long term. In this work, to monitor the operation state of the treatment process, Support Vector Machine is applied for anomaly detection in Municipal Wastewater Treatment Plant based on operational data. Considering the characteristics of the water quality parameters and relevant regulations, we select the detection vector and choose C-SVM and Radial Basis Function (RBF).Then this paper analysis the parameters optimization of SVM, using the Grid search and Particle Swarm Optimization for model calibration. By comparing the accuracy with 10-Cross Validation of three models, we determine the final classification model. Validation demonstrates the model is able to gain high classification accuracy.
机译:难以长期运行污水处理过程(WWTP)。 在这项工作中,为了监测治疗过程的操作状态,基于操作系统的城市污水处理厂中的支持向量机应用于异常检测。 考虑到水质参数和相关规定的特点,我们选择检测载体并选择C-SVM和径向基函数(RBF)。然后,本文分析了SVM的参数优化,使用网格搜索和粒子群优化模型 校准。 通过比较三个模型的10交叉验证的准确性,我们确定最终的分类模型。 验证演示了模型能够获得高分类准确性。

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