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首页> 外文期刊>International Journal of Applied Mathematics and Computer Science >AN UNSUPERVISED APPROACH TO LEAK DETECTION AND LOCATION IN WATER DISTRIBUTION NETWORKS
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AN UNSUPERVISED APPROACH TO LEAK DETECTION AND LOCATION IN WATER DISTRIBUTION NETWORKS

机译:配水网络中泄漏检测和定位的未经监督的方法

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The water loss detection and location problem has received great attention in recent years. In particular, data-driven methods have shown very promising results mainly because they can deal with uncertain data and the variability of models better than model-based methods. The main contribution of this work is an unsupervised approach to leak detection and location in water distribution networks. This approach is based on a zone division of the network, and it only requires data from a normal operation scenario of the pipe network. The proposition combines a periodic transformation and a data vector extension together with principal component analysis of leak detection. A reconstruction-based contribution index is used for determining the leak zone location. The Hanoi distribution network is employed as the case study for illustrating the feasibility of the proposal. Single leaks are emulated with varying outflow magnitudes at all nodes that represent less than 2.5% of the total demand of the network and between 3% and 25% of the node's demand. All leaks can be detected within the time interval of a day, and the average classification rate obtained is 85.28% by using only data from three pressure sensors.
机译:近年来,失水检测和定位问题受到了极大的关注。特别是,数据驱动的方法显示出非常有希望的结果,主要是因为它们可以比基于模型的方法更好地处理不确定的数据和模型的可变性。这项工作的主要贡献是一种无监督方法,用于配水管网中的泄漏检测和定位。此方法基于网络的区域划分,并且仅需要来自管道网络正常运行情况的数据。该提议结合了周期性变换和数据向量扩展以及泄漏检测的主成分分析。基于重建的贡献指数用于确定泄漏区域的位置。以河内配电网为例,说明该建议的可行性。在所有节点上模拟单个泄漏并具有变化的流出量,这些泄漏量占网络总需求的不到2.5%,在节点需求的3%至25%之间。在一天的时间间隔内可以检测到所有泄漏,仅使用来自三个压力传感器的数据即可获得平均分类率为85.28%。

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