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dc.contributor.authorVeintimilla Reyes, Jaime Eduardo-
dc.contributor.authorCisneros Espinosa, Felipe Eduardo francisco-
dc.contributor.authorVanegas Peralta, Pablo Fernando-
dc.date.accessioned2018-01-11T16:47:48Z-
dc.date.available2018-01-11T16:47:48Z-
dc.date.issued2016-
dc.identifier.isbn000-000-000-0-
dc.identifier.issn1877-7058-
dc.identifier.urihttps://www.sciencedirect.com/science/article/pii/S1877705816333367?via%3Dihub-
dc.descriptionThe main aim of this research is to create a model based on Artificial Neural Networks (ANN) that allows predicting the flow in Tomebamba river, at real time and in a specific day of a year. As inputs, this research is using information of rainfall and flow of the stations along of the river. This information is organized in scenarios and each scenario is prepared to a specific area. For this article, we have selected two scenarios. The information is acquired from the hydrological stations placed in the watershed using an electronic system developed at real time and it supports any kind or brands of this type of sensors. The prediction works very good three days in advance. This research includes two ANN models: Backpropagation and a hybrid model between back propagation and OWO-HWO (output weight optimization–hidden weight optimization) to select the initial weights of the connection. These last two models have been tested in a preliminary research. To validate the results we are using some error indicators such as MSE, RMSE, EF, CD and BIAS. The results of this research reached high levels of reliability and the level of error is minimal. These predictions are useful to avoid floods in the city of Cuenca in Ecuador.-
dc.description.abstractThe main aim of this research is to create a model based on Artificial Neural Networks (ANN) that allows predicting the flow in Tomebamba river, at real time and in a specific day of a year. As inputs, this research is using information of rainfall and flow of the stations along of the river. This information is organized in scenarios and each scenario is prepared to a specific area. For this article, we have selected two scenarios. The information is acquired from the hydrological stations placed in the watershed using an electronic system developed at real time and it supports any kind or brands of this type of sensors. The prediction works very good three days in advance. This research includes two ANN models: Backpropagation and a hybrid model between back propagation and OWO-HWO (output weight optimization–hidden weight optimization) to select the initial weights of the connection. These last two models have been tested in a preliminary research. To validate the results we are using some error indicators such as MSE, RMSE, EF, CD and BIAS. The results of this research reached high levels of reliability and the level of error is minimal. These predictions are useful to avoid floods in the city of Cuenca in Ecuador.-
dc.language.isoes_ES-
dc.publisherElsevier Ltd-
dc.sourceProcedia Engineering 162-
dc.subjectArtificial Neural Networks-
dc.subjectAnn-
dc.subjectForecasting-
dc.subjectHydrology-
dc.subjectFloods-
dc.titleArtificial neural networks applied to flow prediction: A use case for the Tomebamba river-
dc.typeARTÍCULO DE CONFERENCIA-
dc.description.cityChania, Creta-
dc.ucuenca.idautor0103458394-
dc.ucuenca.idautor0101045540-
dc.ucuenca.idautor0102274891-
dc.identifier.doi10.1016/j.proeng.2016.11.031-
dc.ucuenca.versionVersión publicada-
dc.ucuenca.areaconocimientounescoamplio06 - Información y Comunicación (TIC)-
dc.ucuenca.afiliacionVeintimilla, J., Universidad de Cuenca, Departamento de Ciencias de la Computación, Cuenca, Ecuador; Veintimilla, J., KU Leuven, Leuven, Belgica-
dc.ucuenca.afiliacionCisneros, F., Universidad de Cuenca, Departamento de Ingeniería Civil, Cuenca, Ecuador-
dc.ucuenca.afiliacionVanegas, P., Universidad de Cuenca, Departamento de Ciencias de la Computación, Cuenca, Ecuador-
dc.ucuenca.correspondenciaVeintimilla Reyes, Jaime Eduardo, jaime.veintimilla@ucuenca.edu.ec-
dc.ucuenca.volumenvolumen 162-
dc.ucuenca.indicebibliograficoSCOPUS-
dc.ucuenca.numerocitaciones0-
dc.ucuenca.areaconocimientofrascatiamplio2. Ingeniería y Tecnología-
dc.ucuenca.paisGRECIA-
dc.ucuenca.conferenciaInternational Conference on Efficien Sustainable Water Systems Management toward Worth Living Development, 2nd EWaS 2016-
dc.ucuenca.areaconocimientofrascatiespecifico2.11 Otras Ingenierias y Tecnologías-
dc.ucuenca.areaconocimientofrascatidetallado2.11.2 Otras Ingenierias y Tecnologías-
dc.ucuenca.areaconocimientounescoespecifico061 - Información y Comunicación (TIC)-
dc.ucuenca.areaconocimientounescodetallado0613 - Software y Desarrollo y Análisis de Aplicativos-
dc.ucuenca.fechainicioconferencia2016-06-01-
dc.ucuenca.fechafinconferencia2016-06-04-
dc.ucuenca.organizadorconferenciaUniversity of Thessaly and the Technical University of Crete.-
dc.ucuenca.comiteorganizadorconferenciaVasilis Kanakoudis, George Karatzas, Evangelos Keramaris, Theodoros Karakasidis, Stavroula Tsitsifli, Zoi Dokou, Nektarios Kourgialas, Anastasios Zouboulis, Petros Samaras, George Tsakiris-
dc.ucuenca.urifuentehttps://www.sciencedirect.com/journal/procedia-engineering-
dc.contributor.ponenteVeintimilla Reyes, Jaime Eduardo-
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