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An approach to leak detection in pipe networks using analysis of monitored pressure values by support vector machine

机译:支持向量机使用监测压力值分析管网泄漏检测方法

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This paper presents a method of mining the data obtained by a collection of pressure sensors monitoring a pipe network to obtain information about the location and size of leaks in the network. This inverse engineering problem is effected by support vector machines (SVMs) which act as pattern recognisers. In this study the SVMs are trained and tested on data obtained from the EPANET hydraulic modelling system. Performance assessment of the SVM showed that leak size and location are both predicted with a reasonable degree of accuracy. The information obtained from this SVM analysis would be invaluable to water authorities in overcoming the ongoing problem of leak detection.
机译:本文介绍了通过监视管网的压力传感器集合获得的数据进行挖掘,以获取有关网络中泄漏的位置和大小的信息。该逆工程问题由支持作为模式识别器的支持向量机(SVM)实现。在本研究中,SVMS培训并测试从EPANET液压建模系统获得的数据上。 SVM的性能评估表明,泄漏尺寸和位置都以合理的准确度预测。从该SVM分析中获得的信息对于克服泄漏检测的持续问题而言,水当局将为宝贵。

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