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A Spark-based genetic algorithm for sensor placement in large scale drinking water distribution systems

机译:大规模饮用水分配系统传感器放置的一种基于火花的遗传算法

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摘要

Water pollution incidents have occurred frequently in recent years, causing severe damages, economic loss and long-lasting society impact. A viable solution is to install water quality monitoring sensors in water supply networks (WSNs) for real-time pollution detection, thereby mitigating the risk of catastrophic contamination incidents. Given the significant cost of placing sensors at all locations in a network, a critical issue is where to deploy sensors within WSNs, while achieving rapid detection of contaminant events. Existing studies have mainly focused on sensor placement in water distribution systems (WDSs). However, the problem is still not adequately addressed, especially for large scale WSNs. In this paper, we investigate the sensor placement problem in large scale WDSs with the objective of minimizing the impact of contamination events. Specifically, we propose a two-phase Spark-based genetic algorithm (SGA). Experimental results show that SGA outperforms other traditional algorithms in both accuracy and efficiency, which validates the feasibility and effectiveness of our proposed approach.
机译:近年来,水污染事件经常发生,造成严重损害,经济损失和持久的社会影响。可行的解决方案是在供水网络(WSN)中安装水质监测传感器,以进行实时污染检测,从而减轻灾难性污染事件的风险。鉴于在网络中所有位置放置传感器的大量成本,关键问题是在WSN内部署传感器的位置,同时实现了快速检测污染事件。现有研究主要集中在水分配系统(WDS)中的传感器放置。但是,问题仍未得到充分解决,特别是对于大规模的WSN。在本文中,我们研究了大规模WDS中的传感器放置问题,目的是最大限度地减少污染事件的影响。具体而言,我们提出了一种两相火花族遗传算法(SGA)。实验结果表明,SGA以准确性和效率均优于其他传统算法,这验证了我们所提出的方法的可行性和有效性。

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