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Assimilating SAR-derived water level data into a hydraulic model: A case study

机译:将SAR得出的水位数据同化为水力模型:一个案例研究

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Satellite-based active microwave sensors not only provide synoptic overviews of flooded areas, but also offer an effective way to estimate spatially distributed river water levels. If rapidly produced and processed, these data can be used for updating hydraulic models in near real-time. The usefulness of such approaches with real event data sets provided by currently existing sensors has yet to be demonstrated. In this case study, a Particle Filter-based assimilation scheme is used to integrate ERS-2 SAR and ENVISAT ASAR-derived water level data into a one-dimensional (1-D) hydraulic model of the Alzette River. Two variants of the Particle Filter assimilation scheme are proposed with a global and local particle weighting procedure. The first option finds the best water stage line across all cross sections, while the second option finds the best solution at individual cross sections. The variant that is to be preferred depends on the level of confidence that is attributed to the observations or to the model. The results show that the Particle Filter-based assimilation of remote sensing-derived water elevation data provides a significant reduction in the uncertainty at the analysis step. Moreover, it is shown that the periodical updating of hydraulic models through the proposed assimilation scheme leads to an improvement of model predictions over several time steps. However, the performance of the assimilation depends on the skill of the hydraulic model and the quality of the observation data.
机译:基于卫星的有源微波传感器不仅提供洪水泛滥的概况,而且还提供一种估算空间分布河水位的有效方法。如果能够快速生产和处理,这些数据可用于近实时更新水力模型。此类方法与当前现有传感器提供的真实事件数据集的有用性尚未得到证实。在本案例研究中,基于粒子过滤器的同化方案用于将ERS-2 SAR和ENVISAT ASAR得出的水位数据集成到阿尔泽特河的一维(1-D)水力模型中。提出了粒子滤波同化方案的两个变体,其中包含全局和局部粒子加权程序。第一个选择在所有横截面上找到最佳的水位线,而第二个选择在单个横截面上找到最佳的水位线。首选的变体取决于归因于观测值或模型的置信度。结果表明,基于遥感影像的水位高程数据的基于粒子滤波的同化可显着减少分析步骤中的不确定性。此外,结果表明,通过拟议的同化方案对水力模型进行定期更新,可以在几个时间步长上改进模型预测。但是,同化的性能取决于水力模型的技能和观测数据的质量。

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