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Performance and uncertainty analysis in deep learning frameworks for streamflow forecasting via Monte Carlo dropout technique

Study Region: The research was conducted at the Red River Basin, Vietnam. Study Focus: This study evaluated the performance of six deep learning models (Standard LSTM (S_LSTM), Bidirectional LSTM (Bi_LSTM), LSTM with attention mechanism (At_LSTM), Advanced LSTM (Ad_LSTM), Temporal Convolutional Netw...

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Bibliografiska uppgifter
Huvudupphov: Xuan-Hien Le, Doan Van Binh, Giha Lee
Materialtyp: Artigo
Språk:Inglês
Utgiven: Elsevier 2025-10-01
Serie:Journal of Hydrology: Regional Studies
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Länkar:http://www.sciencedirect.com/science/article/pii/S2214581825004975
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