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我们应该一直使用水力模型吗?一种用于水系统校准和不确定性评估的图神经网络元模型。

Shall we always use hydraulic models? A graph neural network metamodel for water system calibration and uncertainty assessment.

作者信息

Zanfei Ariele, Menapace Andrea, Brentan Bruno M, Sitzenfrei Robert, Herrera Manuel

机构信息

AIAQUA S.r.l., Via Volta 13/A, Bolzano, Italy.

Faculty of Science and Technology, Free University of Bozen-Bolzano, Piazza Università 5, Bolzano, Italy.

出版信息

Water Res. 2023 Aug 15;242:120264. doi: 10.1016/j.watres.2023.120264. Epub 2023 Jun 24.

Abstract

Representing reality in a numerical model is complex. Conventionally, hydraulic models of water distribution networks are a tool for replicating water supply system behaviour through simulation by means of approximation of physical equations. A calibration process is mandatory to achieve plausible simulation results. However, calibration is affected by a set of intrinsic uncertainty sources, mainly related to the lack of system knowledge. This paper proposes a breakthrough approach for calibrating hydraulic models through a graph machine learning approach. The main idea is to create a graph neural network metamodel to estimate the network behaviour based on a limited number of monitoring sensors. Once the flows and pressures of the entire network have been estimated, a calibration is carried out to obtain the set of hydraulic parameters that best approximates the metamodel. Through this process, it is possible to estimate the uncertainty that is transferred from the few available measurements to the final hydraulic model. The paper sparks a discussion to assess under what circumstances a graph-based metamodel might be a solution for water network analysis.

摘要

在数值模型中表示现实情况很复杂。传统上,供水网络的水力模型是一种通过对物理方程进行近似模拟来复制供水系统行为的工具。校准过程是获得合理模拟结果所必需的。然而,校准受到一组内在不确定性来源的影响,主要与系统知识的缺乏有关。本文提出了一种通过图机器学习方法校准水力模型的突破性方法。主要思想是创建一个图神经网络元模型,以基于有限数量的监测传感器估计网络行为。一旦估计出整个网络的流量和压力,就进行校准以获得最接近元模型的水力参数集。通过这个过程,可以估计从少数可用测量值传递到最终水力模型的不确定性。本文引发了一场讨论,以评估在何种情况下基于图的元模型可能是水网络分析的解决方案。

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