Título : Level river forecasting using empirical hydrological modeling for Rio Negro basin Uruguay
Autor(es) : Duque, Johan
Aubet, Natalie
do Santos, Leonardo
Santos, Rafael
Arteaga, Johny
Fecha de publicación : 2022
Tipo de publicación: Preprint
Areas del conocimiento : Ciencias Naturales y Exactas
Ciencias de la Tierra y relacionadas con el Medio Ambiente
Oceanografía, Hidrología, Recursos Acuáticos
Otros descriptores : Empirical hydrological modeling
Water-level
Rain
Neural networks
Resumen : Climate change has influenced several of the water cycle related variables such as rainfall that contribute to increasing natural disasters. To establish new methodologies for rivers level forecasting is necessary for the implementation of early warning systems. In this work, we present results of a multilayer perceptron artificial neural network (ANN) to forecast temporal series of water levels at the outlet of Rio Negro river with 24-hour antecedence. Input data was collected by a set of hydrological monitoring stations composed of water level and rainfall measures acquired with a one-day resolution. Water-level prediction were evaluated by the Nash-Sutcliffe coefficient (NSE) and by the root mean square error (RMSE). The results show consistency between predicted and observed values, especially when combining both water level and rainfall data. In such case, values of NSE reached 0.93 to 0.54 and RMSE between 0.028 and 0.061 for antecedence of 1 to 7 days respectively with implemented topology for the empirical model.
URI / Handle: https://hdl.handle.net/20.500.12381/3963
Parte de: Proceeding Series of the Brazilian Society of Computational and Applied Mathematics
DOI: https://doi.org/10.5540/03.2022.009.01.0269
Institución responsable del proyecto: Universidad Tecnológica del Uruguay
National Institute for Space Research
Nivel de Acceso: Acceso abierto
Licencia CC: Reconocimiento-NoComercial-CompartirIgual 4.0 Internacional. (CC BY-NC-SA)
Aparece en las colecciones: Universidad Tecnológica

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