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A meta-modelling strategy to identify the critical offshore conditions for coastal flooding

机译:确定沿海洪灾关键海上条件的元建模策略

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High water level at the coast may be the result of different combinations of offshore hydrodynamic conditions(e.g.wave characteristics, offshore water level, etc.).Providing the contour of the "critical" set of offshore conditions leading to high water level is of primary importance either to constrain early warning networks based on hydrometeorological forecast or observations, or for the assessment of the coastal flood hazard return period.The challenge arises from the use of computationally intensive simulators, which prevent the application of a grid approach consisting in extracting the contour through the systematic evaluation of the simulator on a fine design grid defined in the offshore conditions domain.To overcome such a computational difficulty, we propose a strategy based on the kriging meta-modelling technique combined with an adaptive sampling procedure aiming at improving the local accuracy in the regions of the offshore conditions that contribute the most to the estimate of the targeted contour.This methodology is applied to two cases using an idealized site on the Mediterranean coast(southern France):(1) a two-dimensional case to ease the visual analysis and aiming at identifying the combination of offshore water level and of significant wave height;(2) a more complex case aiming at identifying four offshore conditions(offshore water level and offshore wave characteristics: height, direction and period).By using a simulator of moderate computation time cost(a few tens of minutes), the targeted contour can be estimated using a cluster composed of a moderate number of computer units.This reference contour is then compared with the results of the metamodel-based strategy.In both cases, we show that the critical offshore conditions can be estimated with a good level of accuracy using a very limited number(of a few tens) of computationally intensive hydrodynamic simulations.
机译:沿海高水位可能是海上流体动力条件(例如波浪特征,海上水位等)不同组合的结果。提供导致高水位的“关键”海上条件集的轮廓是主要的重要的是要么限制基于水文气象预报或观测的预警网络,要么评估沿海洪灾灾害的重现期。挑战来自使用计算密集型模拟器,这阻碍了采用网格方法提取轮廓的方法为了克服这种计算难题,我们提出了一种基于克里格元建模技术并结合自适应采样程序的策略,旨在提高局部精度,从而克服了这种计算难题。在对海底影响最大的海上条件区域这种方法适用于使用地中海沿岸(法国南部)的理想地点的两种情况:(1)二维情况,以简化视觉分析并旨在识别近海水位和(2)一个更复杂的案例,旨在识别四个海上条件(海上水位和海上波浪特征:高度,方向和周期)。通过使用适度的计算时间成本(几十分钟)的模拟器可以使用由中等数量的计算机单元组成的集群来估算目标轮廓,然后将该参考轮廓与基于元模型的策略的结果进行比较。在两种情况下,我们都表明可以使用以下方法估算关键的海上条件使用数量非常有限(几十个)的计算密集型流体动力学模拟,可以获得很高的精度。

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