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Incorporating operational uncertainty in early warning system design optimization for water distribution system security

机译:采用水分配系统安全预警系统设计优化的运营不确定性

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Incorporating a system of monitoring stations to insure high quality water is being delivered to consumers has been acknowledged a crucial component required by any public water distribution system (WDS). Extensive studies have acknowledged the risk posed to large populations by an accidental or intentional contamination intrusion within a WDS;; failure of an early warning system (EWS) to report a contamination event carries profound economic and public health consequences. Dynamic, stochastic conditions exist in municipal WDSs and a monitoring system needs to be designed according to a robust protocol that incorporates the inherent uncertainty in WDS operation, including: demand variability, and contamination event characteristic variability. This work composes the problem of locating the best junctions within a WDS to place fixed monitoring stations, and the best junctions to input innovative inline mobile sensors, in a multi-objective framework that incorporates uncertainty in the network's demands and EWS operation. Mobile sensors are carried by flow within pipes sampling and monitoring water quality in real time, and wirelessly uploading data to fixed transceiver beacons, providing an implicit preference towards demand dense regions. A multi-objective noisy messy genetic algorithm is structured to the problem at hand and employed on a small, medium, and large-scale model WDS to calculate near-optimal solutions from the large solutions space. This multi-objective framework provides high performing trade off (Pareto) sets comparing an EWS's system cost to numerous performance objectives incorporating non-deterministic objective functions to provide a high performing and resilient EWS. Results show a large trade off surface between the cost and the respective system's performance, with large diminishing returns. Although implementing a more expensive solution may provide little to no benefit from a traditional performance standpoint, implementing a system of higher cost can increase the systems resiliency, highlighting the importance of incorporating proper objective measures in optimization procedure.
机译:纳入保险站的监测站系统被交付给消费者,已经承认任何公共配水系统所需的关键组件(WDS)。广泛的研究承认,通过WDS内的意外或有意的污染侵入侵入大量群体的风险;预警系统(EWS)未能报告污染事件带来深刻的经济和公共卫生后果。在市政WDS中存在动态,随机条件和监测系统需要根据强大的协议设计,该协议包含WDS操作中固有的不确定性,包括:需求变异性和污染事件特征可变性。这项工作归结了在WDS内定位最佳连接的问题,以将固定的监控站放置,以及在多目标框架中输入创新的内联移动传感器的最佳结合在网络需求和EWS操作中的不确定性。移动传感器通过管道采样和实时监测水质的流动,并将数据无线上传到固定的收发信标,为需求密集区域提供隐含的偏好。多目标嘈杂的杂乱遗传算法结构涉及手头的问题,并采用小型,中型和大型模型WDS,从大型解决方案空间计算近最佳解决方案。这种多目标框架提供了高性能的折衷(Pareto)集比较EWS的系统成本,以包含非确定性目标函数的许多性能目标,以提供高性能和弹性EWS。结果在成本和各自的系统性能之间表现出大型贸易面,回报率较大。虽然实施更昂贵的解决方案可能会从传统的性能角度提供很少的情况下,实现更高成本的系统可以提高系统弹性,突出显示在优化过程中结合适当客观措施的重要性。

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