Flood forecasting based on an artificial neural network scheme

被引:46
|
作者
Dtissibe, Francis Yongwa [2 ]
Ari, Ado Adamou Abba [1 ,2 ]
Titouna, Chafiq [4 ]
Thiare, Ousmane [3 ]
Gueroui, Abdelhak Mourad [1 ]
机构
[1] Univ Versailles St Quentin En Yvelines, Univ Paris Saclay, LI PaRAD Lab, 45 Ave Etats Unis, F-78035 Versailles, France
[2] Univ Maroua, LaRI Lab, POB 814, Maroua, Cameroon
[3] Gaston Berger Univ St Louis, LANI Lab, POB 234, St Louis, Senegal
[4] Univ Paris, LIPADE Lab, 45 Rue St Peres, F-75006 Paris, France
关键词
Flood forecasting; Artificial neural networks; Multilayer perceptron; Machine learning; MODEL; CALIBRATION; RAINFALL;
D O I
10.1007/s11069-020-04211-5
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Nowadays, floods have become the widest global environmental and economic hazard in many countries, causing huge loss of lives and materials damages. It is, therefore, necessary to build an efficient flood forecasting system. The physical-based flood forecasting methods have indeed proven to be limited and ineffective. In most cases, they are only applicable under certain conditions. Indeed, some methods do not take into account all the parameters involved in the flood modeling, and these parameters can vary along a channel, which results in obtaining forecasted discharges very different from observed discharges. While using machine learning tools, especially artificial neural networks schemes appears to be an alternative. However, the performance of forecasting models, as well as a minimum error of prediction, is very interesting and challenging issues. In this paper, we used the multilayer perceptron in order to design a flood forecasting model and used discharge as input-output variables. The designed model has been tested upon intensive experiments and the results showed the effectiveness of our proposal with a good forecasting capacity.
引用
收藏
页码:1211 / 1237
页数:27
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