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Cloud-Based Water Leakage Detection and Localization

机译:基于云的漏水检测与定位

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In this paper, a cloud-based system for smart water management is proposed to detect the water leakage and to predict the location of leakage in pipes. The system utilizes the flow rates of water in pipelines to determine leakages and applies machine learning (ML) techniques to predict the location of the leakages. A hybrid ML model has been developed, combining a multi-layer perceptron (MLP) and a support vector machine (SVM), which is used to predict the location of the leakages in the pipeline. To minimize the losses of water, an itinerary for leak maintenance is proposed, which prioritizes leaks based on its location and the extent of the outflow. To test the proposed system, a prototype has been developed and the same is modelled in STAR-CCM+, a Computational Fluid Dynamics (CFD) software. The results show that the leakage detection algorithm has an accuracy of 99% while location prediction using machine learning has an accuracy of 94.14%.
机译:本文提出了一种基于云的智能水管理系统,以检测漏​​水并预测管道中的漏水位置。该系统利用管道中水的流速来确定泄漏,并应用机器学习(ML)技术来预测泄漏的位置。已经开发了一种混合ML模型,该模型结合了多层感知器(MLP)和支持向量机(SVM),用于预测管道中泄漏的位置。为了最大程度地减少水的损失,提出了一个用于维护泄漏的路线,该路线根据泄漏的位置和流出程度对泄漏进行优先排序。为了测试所提出的系统,已经开发了一个原型,并在计算流体动力学(CFD)软件STAR-CCM +中对其进行了建模。结果表明,泄漏检测算法的准确性为99%,而使用机器学习的位置预测的准确性为94.14%。

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