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Quantifying the importance of spatial resolution and other factors through global sensitivity analysis of a flood inundation model

机译:通过洪水泛滥模型的整体敏感性分析,量化空间分辨率和其他因素的重要性

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摘要

Where high-resolution topographic data are available, modelers are faced with the decision of whether it is better to spend computational resource on resolving topography at finer resolutions or on running more simulations to account for various uncertain input factors (e.g., model parameters). In this paper we apply global sensitivity analysis to explore how influential the choice of spatial resolution is when compared to uncertainties in the Manning's friction coefficient parameters, the inflow hydrograph, and those stemming from the coarsening of topographic data used to produce Digital Elevation Models (DEMs). We apply the hydraulic model LISFLOOD-FP to produce several temporally and spatially variable model outputs that represent different aspects of flood inundation processes, including flood extent, water depth, and time of inundation. We find that the most influential input factor for flood extent predictions changes during the flood event, starting with the inflow hydrograph during the rising limb before switching to the channel friction parameter during peak flood inundation, and finally to the floodplain friction parameter during the drying phase of the flood event. Spatial resolution and uncertainty introduced by resampling topographic data to coarser resolutions are much more important for water depth predictions, which are also sensitive to different input factors spatially and temporally. Our findings indicate that the sensitivity of LISFLOOD-FP predictions is more complex than previously thought. Consequently, the input factors that modelers should prioritize will differ depending on the model output assessed, and the location and time of when and where this output is most relevant.
机译:在可获得高分辨率地形数据的地方,建模者面临的决策是,将计算资源花费在以更高分辨率解决地形还是在运行更多模拟以解决各种不确定的输入因素(例如模型参数)方面是否是更好的选择。在本文中,我们应用全局敏感性分析来探讨与Manning摩擦系数参数,入水水文图以及用于生成数字高程模型(DEM)的地形数据粗化所带来的不确定性相比,空间分辨率的选择有多大影响)。我们应用水力模型LISFLOOD-FP来生成几个时变模型输出,这些输出表示洪水泛滥过程的不同方面,包括洪水泛滥,水深和淹没时间。我们发现,洪水程度预测中最有影响力的输入因素在洪水事件期间发生了变化,从上升肢的入水水文图开始,然后在洪峰淹没期间切换到河道摩擦参数,最后在干燥阶段变成洪水平原的摩擦参数。洪水事件。通过将地形数据重新采样为较粗略的分辨率而引入的空间分辨率和不确定性对于水深预测更为重要,水深预测也对时空上的不同输入因子敏感。我们的发现表明,LISFLOOD-FP预测的敏感性比以前认为的要复杂。因此,建模人员应优先考虑的输入因素将有所不同,具体取决于评估的模型输出以及此输出最相关的时间和地点和时间。

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  • 来源
    《Water resources research》 |2016年第11期|9146-9163|共18页
  • 作者单位

    Univ Bristol, Sch Geog Sci, Bristol, Avon, England|Univ Bristol, Cabot Inst, Bristol, Avon, England;

    Univ Bristol, Cabot Inst, Bristol, Avon, England|Univ Bristol, Dept Civil Engn, Bristol, Avon, England;

    Univ Bristol, Sch Geog Sci, Bristol, Avon, England|Univ Bristol, Cabot Inst, Bristol, Avon, England;

    Univ Bristol, Sch Geog Sci, Bristol, Avon, England|Univ Bristol, Cabot Inst, Bristol, Avon, England;

    Univ Bristol, Cabot Inst, Bristol, Avon, England|Univ Bristol, Dept Civil Engn, Bristol, Avon, England;

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