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A Rapid Prediction Model of Urban Flood Inundation in a High-Risk Area Coupling Machine Learning and Numerical Simulation Approaches

机译:高风险区域耦合机学习中城市洪水淹没快速预测模型及数值模拟方法

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摘要

Climate change has led to increasing frequency of sudden extreme heavy rainfall events in cities, resulting in great disaster losses. Therefore, in emergency management, we need to be timely in predicting urban floods. Although the existing machine learning models can quickly predict the depth of stagnant water, these models only target single points and require large amounts of measured data, which are currently lacking. Although numerical models can accurately simulate and predict such events, it takes a long time to perform the associated calculations, especially two-dimensional large-scale calculations, which cannot meet the needs of emergency management. Therefore, this article proposes a method of coupling neural networks and numerical models that can simulate and identify areas at high risk from urban floods and quickly predict the depth of water accumulation in these areas. Taking a drainage area in Tianjin Municipality, China, as an example, the results show that the simulation accuracy of this method is high, the Nash coefficient is 0.876, and the calculation time is 20 seconds. This method can quickly and accurately simulate the depth of water accumulation in high-risk areas in cities and provide technical support for urban flood emergency management.
机译:气候变化导致城市中突然极端暴雨事件的频率增加,导致灾难损失很大。因此,在应急管理中,我们需要及时预测城市洪水。虽然现有的机器学习模型可以快速预测停滞水的深度,但这些模型仅目标单点并需要大量的测量数据,目前缺乏。尽管数值模型可以准确地模拟和预测此类事件,但执行相关的计算需要很长时间,特别是二维大规模计算,这不能满足紧急管理的需要。因此,本文提出了一种耦合神经网络和数值模型的方法,该数字模型可以模拟和识别城市洪水的高风险,并迅速预测这些领域的水积累深度。以中国天津市的排水区为例,结果表明,该方法的仿真精度高,纳什系数为0.876,计算时间为20秒。这种方法可以快速准确地模拟城市高风险区域的水积累深度,为城市洪水应急管理提供技术支持。

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