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      Application of Long Short-Term Memory (LSTM) Neural Network for Flood Forecasting

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      Water
      MDPI AG

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          Abstract

          Flood forecasting is an essential requirement in integrated water resource management. This paper suggests a Long Short-Term Memory (LSTM) neural network model for flood forecasting, where the daily discharge and rainfall were used as input data. Moreover, characteristics of the data sets which may influence the model performance were also of interest. As a result, the Da River basin in Vietnam was chosen and two different combinations of input data sets from before 1985 (when the Hoa Binh dam was built) were used for one-day, two-day, and three-day flowrate forecasting ahead at Hoa Binh Station. The predictive ability of the model is quite impressive: The Nash–Sutcliffe efficiency (NSE) reached 99%, 95%, and 87% corresponding to three forecasting cases, respectively. The findings of this study suggest a viable option for flood forecasting on the Da River in Vietnam, where the river basin stretches between many countries and downstream flows (Vietnam) may fluctuate suddenly due to flood discharge from upstream hydroelectric reservoirs.

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          Learning Phrase Representations using RNN Encoder–Decoder for Statistical Machine Translation

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            Dropout: A simple way to prevent neural networks from ooverfitting

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              TensorFlow: Large‐scale machine learning on heterogeneous distributed systems

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                Author and article information

                Journal
                WATEGH
                Water
                Water
                MDPI AG
                2073-4441
                July 2019
                July 05 2019
                : 11
                : 7
                : 1387
                Article
                10.3390/w11071387
                312c23f9-84bf-456d-93fa-2a65b6c57f84
                © 2019

                https://creativecommons.org/licenses/by/4.0/

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