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Estimation of suspended sediment load using three neural network algorithms in Ramganga River catchment of Ganga Basin, India

机译:印度甘谷河流域Ramganga河流域三个神经网络算法估算沉积沉积物负荷

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摘要

The information on suspended sediments of river is considered to be crucial for issues concerning water management and the environment. The abrupt quantity and nature of sediment loads can be best studied by simultaneously considering the governing variables contributing towards this physical phenomenon. Artificial Neural Network (ANN) is one of the suitable data-mining technique which helps in carrying out the modelling of this phenomenon. In this study, ANNs are employed to approximate the monthly mean suspended sediment load for Ramganga River. Three simulations with rainfall and water discharge data were carried out to predict the suspended sediment load. In terms of the selected performance criteria, three algorithms were evaluated and the results so obtained are presented. It has been found that rainfall values were not sufficient to correctly predict the suspended sediment load. However, considering water discharge values as input improves the performance of all the three considered algorithms.
机译:关于河流悬浮沉积物的信息被认为是关于有关水管理和环境的问题至关重要。通过同时考虑促进这种物理现象的控制变量,可以最好地研究沉积物负荷的突然数量和性质。人工神经网络(ANN)是有助于执行这种现象的建模的合适数据挖掘技术之一。在本研究中,ANNS用于近似ramganga河流的月平均悬浮沉积物。进行了花降雨量和排水数据的三种模拟,以预测悬浮的沉积物负荷。就所选性能标准而言,评估了三种算法,并提出了如此获得的结果。已经发现,降雨量不足以正确预测悬浮的沉积物负荷。但是,考虑到排水值作为输入改善了所有三种考虑的算法的性能。

著录项

  • 来源
    《Sustainable Water Resources Management》 |2019年第3期|1115-1131|共17页
  • 作者单位

    Department of Earth Sciences Indian Institute of Technology Roorkee Roorkee 247667 India Department of Hydraulic Engineering School of Civil Engineering Institute of Hydrology and Water Resources Tsinghua University Beijing 100084 China;

    Department of Mechanical Engineering Z.H. College of Engineering and Technology Aligarh Muslim University Aligarh 202002 India;

    Department of Hydraulic Engineering School of Civil Engineering Institute of Hydrology and Water Resources Tsinghua University Beijing 100084 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Suspended sediment load; Artificial neural network; Ramganga River;

    机译:悬浮沉积物负荷;人工神经网络;Ramganga River;

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