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Online Classification of Contaminants Based on Multi-Classification Support Vector Machine Using Conventional Water Quality Sensors

机译:基于常规水质传感器的多分类支持向量机污染物在线分类

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摘要

Water quality early warning system is mainly used to detect deliberate or accidental water pollution events in water distribution systems. Identifying the types of pollutants is necessary after detecting the presence of pollutants to provide warning information about pollutant characteristics and emergency solutions. Thus, a real-time contaminant classification methodology, which uses the multi-classification support vector machine (SVM), is proposed in this study to obtain the probability for contaminants belonging to a category. The SVM-based model selected samples with indistinct feature, which were mostly low-concentration samples as the support vectors, thereby reducing the influence of the concentration of contaminants in the building process of a pattern library. The new sample points were classified into corresponding regions after constructing the classification boundaries with the support vector. Experimental results show that the multi-classification SVM-based approach is less affected by the concentration of contaminants when establishing a pattern library compared with the cosine distance classification method. Moreover, the proposed approach avoids making a single decision when classification features are unclear in the initial phase of injecting contaminants.
机译:水质预警系统主要用于检测配水系统中故意或意外的水污染事件。在检测到污染物的存在之后,有必要识别污染物的类型,以提供有关污染物特性和应急解决方案的警告信息。因此,在这项研究中,提出了一种使用多分类支持向量机(SVM)的实时污染物分类方法,以获取污染物属于某类的可能性。基于SVM的模型选择了特征不明显的样本,这些样本大多是低浓度样本作为支持向量,从而在模式库的构建过程中减少了污染物浓度的影响。在用支持向量构造分类边界之后,将新的采样点分类到相应的区域中。实验结果表明,与余弦距离分类方法相比,基于多分类支持向量机的方法在建立模式库时受污染物浓度的影响较小。而且,当在注入污染物的初始阶段不清楚分类特征时,所提出的方法避免了做出单个决定。

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