Improving Flood Prediction Assimilating Uncertain Crowdsourced Data into Hydrologic and Hydraulic Models(UNESCO-IHE PhD Thesis Series)

吸收不确定众包数据到水文水力学模型中以改善洪水预报

环境科学技术基础学科

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822.00
发货周期:预计5-7周发货
作      者
出  版 社
出版时间
2017年01月10日
装      帧
平装
ISBN
9781138035904
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页      码
274
开      本
240x170mm
语      种
英文
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图书简介
This research aims to investigate the benefits of assimilating the crowdsourced observations, coming from a distributed network of heterogeneous physical and social (static and dynamic) sensors, within hydrological and hydraulic models, in order to improve flood forecasting. The results of this study demonstrate that crowdsourced observations can significantly improve flood prediction if properly integrated in hydrological and hydraulic models. This can be a potential application of recent efforts to build citizen observatories of water, in which citizens not only can play an active role in information capturing, evaluation and communication, but also can help improving models and thus increase flood resilience.
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