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首页> 外文期刊>Journal of Hydroinformatics >Design and implementation of an operational multimodel multiproduct real-time probabilistic streamflow forecasting platform
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Design and implementation of an operational multimodel multiproduct real-time probabilistic streamflow forecasting platform

机译:可操作的多模型多产品实时概率流量预测平台的设计与实现

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The task of real-time streamflow monitoring and forecasting is particularly challenging for ungauged or sparsely gauged river basins, and largely relies upon satellite-based estimates of precipitation. We present the design and implementation of a state-of-the-art real-time streamflow monitoring and forecasting platform that integrates information provided by cutting-edge satellite precipitation products (SPPs), numerical precipitation forecasts, and multiple hydrologic models, to generate probabilistic streamflow forecasts that have an effective lead time of 9 days. The modular design of the platform enables adding/removing any model/product as may be appropriate. The SPPs are bias-corrected in real-time, and the model-generated streamflow forecasts are further bias-corrected and merged, to produce probabilistic forecasts that are computed via several model averaging techniques. The platform is currently operational in multiple river basins in Africa, and can also be adapted to any new basin by incorporating some basin-specific changes and recalibration of the hydrologic models.
机译:实时流量监测和预报的任务对于流域未覆盖或稀疏的流域尤其具有挑战性,并且主要依赖于基于卫星的降水估计。我们介绍了最新的实时流量监测和预报平台的设计和实现,该平台集成了由尖端卫星降水产品(SPP),数值降水预报和多种水文模型提供的信息,从而可以产生概率有效提前期为9天的流量预测。平台的模块化设计可以根据需要添加/删除任何模型/产品。对SPP进行实时偏差校正,并进一步对模型生成的流量预测进行偏差校正和合并,以生成通过几种模型平均技术计算出的概率预测。该平台目前可在非洲的多个流域中使用,并且还可以通过合并某些流域特定的更改并重新校准水文模型来适应任何新流域。

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