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Titlebook: Advances in Hydroinformatics—SimHydro 2023 Volume 1; New Modelling Paradi Philippe Gourbesville,Guy Caignaert Conference proceedings 2024 T

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楼主: Blandishment
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https://doi.org/10.1007/978-3-8348-9147-1ion of artificial intelligence algorithms to flood forecasting. To fill the data gap, we produced flood maps by numerical simulation by solving the shallow water equations on the French pilot sites of the project (Nive and Gave de Pau). Five machine learning algorithms were evaluated on the Nive and
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Grundzusammenhänge der Elektrotechnikwould cause catastrophic risks to downstream populations and result in severe structural damage. Therefore, it is essential to forecast flood wave propagation over spaces containing macro-roughness, such as buildings, to assess and mitigate these risks. In this paper, datasets are provided from redu
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,Quasistationäres elektromagnetisches Feld, storage of any kind of fluid, either Newtonian or non-Newtonian, and are commonly located outside the basin’s channel network, totally or partially delimited by a retention dyke. The hydraulic studies that consider the break of the dyke of the structure, and the subsequent flood wave propagation, a
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Artificial Intelligence and GPU Card Calculations Applied to Flood Forecasting: Feedback from the Ie of a multi-head neural convolution network (MH CNN), further requiring less computing resources than algorithms based on LSTM in particular. All deep learning configurations perform better than the best machine learning configuration.
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Coupling Mage with Melissa to Compute Ubiquitous Sobol Indices for River Hydraulics,ariance of the model outputs at each time-step and at each spatial point of the model. This paper introduces the coupling of the 1D numerical solver for transient open-channel flows Mage with Melissa, a framework for large scale in-transit sensitivity analysis. This framework is fault tolerant and c
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