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首页> 外文期刊>Journal of earth system science >Prediction of sediment load by sediment rating curve and neural network (ANN) in El Kebir catchment, Algeria
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Prediction of sediment load by sediment rating curve and neural network (ANN) in El Kebir catchment, Algeria

机译:利用泥沙额定曲线和神经网络(ANN)预测阿尔及利亚El Kebir流域的泥沙负荷

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摘要

The annual sediment load of a river is generally determined either from direct measurements of the sediment load throughout the year or from any of the many sediment transport equations that are available today. Due to lack of a long-term sediment concentration data, sediment rating curves and flux estimation are the most widely applied. This paper has investigated the abilities of statistical models to improve the accuracy of streamflowa€“suspended sediment relationships in daily and annual suspended sediment estimation. In this study, a comparison was made between suspended sediment rating curves and artificial neural networks (ANNs) for the El Kebir catchment. Daily water discharge and daily suspended sediment data from the gauging station of Ain Assel, were used as inputs and targets in the models which were based on the cascade-forward and feed-forward back-propagation using Levenberga€“Marquardt and Bayesian regularization algorithms. The model results have shown that the ANN models have the highest efficiency to reproduce the daily sediment load and the global annual sediment yields. Our estimation based on the available data indicated that the areas along the El Kebir River have experienced high sediment fluxes that could have obvious impacts on the sediment trapping and siltation in the Mexa reservoir.
机译:河流的年度泥沙负荷通常是根据全年对泥沙负荷的直接测量结果,或者根据当今可用的许多泥沙输送方程式中的任何一个来确定。由于缺乏长期的泥沙浓度数据,因此泥沙等级曲线和流量估算是应用最广泛的。本文研究了统计模型在每日和年度悬浮泥沙估算中提高河流流量和悬浮泥沙关系的准确性的能力。在这项研究中,对El Kebir流域的悬浮泥沙额定曲线和人工神经网络(ANN)进行了比较。该模型基于使用Levenberga,Marquardt和贝叶斯正则化算法的级联前向和前向反向传播,将来自Ain Assel计量站的每日排水量和每日悬浮泥沙数据用作模型的输入和目标。模型结果表明,人工神经网络模型具有最高的效率,能够再现每日的泥沙负荷和全球每年的泥沙产量。根据现有数据进行的估算表明,厄尔士基比尔河沿岸地区的泥沙通量很高,这可能会对Mexa水库的泥沙淤积和淤积产生明显影响。

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