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A stochastic framework for hydraulic performance assessment of complex water distribution networks: Application to connectivity detection problems

机译:复杂配水网络液压性能评估的随机框架:在连接检测问题的应用

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摘要

This paper is concerned with the hydraulic performance assessment of large scale water distribution networks in presence of uncertainty. In particular, the associate connectivity detection problem is examined in detail. For this purpose, a Bayesian system identification methodology is combined with an efficient hydraulic simulation model. A number of hydraulic model classes are defined as potential connectivity events. Based on information from flow rates in the pipes, the proposed updating technique provides estimates of the most probable connectivity scenarios. Such scenarios correspond to the model classes that maximize their evidences or posterior probabilities. The effectiveness of the proposed identification framework is illustrated by applying the connectivity detection approach to a real water distribution system.
机译:本文涉及在存在不确定性的情况下大规模水分配网络的水力性能评估。特别地,详细检查了相关联的连接检测问题。为此目的,贝叶斯系统识别方法与高效的液压仿真模型相结合。许多液压模型类被定义为潜在的连接事件。基于管道中流速的信息,所提出的更新技术提供了最可能连接方案的估计。这种情况对应于最大化其证据或后验概率的模型类。通过将连接检测方法应用于真正的配水系统来说明所提出的识别框架的有效性。

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