JOURNAL ARTICLE

River flood forecasting with a neural network model

Marina CampoloPaolo AndreussiAlfredo Soldati

Year: 1999 Journal:   Water Resources Research Vol: 35 (4)Pages: 1191-1197   Publisher: Wiley

Abstract

A neural network model was developed to analyze and forecast the behavior of the river Tagliamento, in Italy, during heavy rain periods. The model makes use of distributed rainfall information coming from several rain gauges in the mountain district and predicts the water level of the river at the section closing the mountain district. The water level at the closing section in the hours preceding the event was used to characterize the behavior of the river system subject to the rainfall perturbation. Model predictions are very accurate (i.e., mean square error is less than 4%) when the model is used with a 1‐hour time horizon. Increasing the time horizon, thus making the model suitable for flood forecasting, decreases the accuracy of the model. A limiting time horizon is found corresponding to the minimum time lag between the water level at the closing section and the rainfall, which is characteristic of each flooding event and depends on the rainfall and on the state of saturation of the basin. Performance of the model remains satisfactory up to 5 hours. A model of this type using just rainfall and water level information does not appear to be capable of predicting beyond this time limit.

Keywords:
Environmental science Flood myth Flooding (psychology) Flood forecasting Lag Water level Drainage basin Hydrology (agriculture) Limiting Meteorology Artificial neural network Closing (real estate) Structural basin Horizon Climatology Geology Geography Computer science Mathematics Geotechnical engineering Engineering

Metrics

455
Cited By
13.02
FWCI (Field Weighted Citation Impact)
19
Refs
1.00
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Hydrological Forecasting Using AI
Physical Sciences →  Environmental Science →  Environmental Engineering
Hydrology and Watershed Management Studies
Physical Sciences →  Environmental Science →  Water Science and Technology
Flood Risk Assessment and Management
Physical Sciences →  Environmental Science →  Global and Planetary Change

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