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Adaptive Neuro-fuzzy Computing Technique For Suspended Sediment Estimation

机译:悬浮泥沙估算的自适应神经模糊计算技术

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This paper investigates the accuracy of an adaptive neuro-fuzzy computing technique in suspended sediment estimation. The monthly streamflow and suspended sediment data from two stations, Kuylus and Salur Koprusu, in Kizilirmak Basin in Turkey are used as case studies. The estimation results obtained by using the neuro-fuzzy technique are tested and compared with those of the artificial neural networks and sediment rating curves. Root mean squared errors, mean absolute errors and correlation coefficient statistics are used as comparing criteria for the evaluation of the models' performances. The comparison results reveal that the neuro-fuzzy models can be employed successfully in monthly suspended sediment estimation.
机译:本文研究了一种自适应神经模糊计算技术在悬浮泥沙估算中的准确性。案例研究使用了土耳其基兹利马克盆地两个站Kuylus和Salur Koprusu的月流量和悬浮泥沙数据。测试了使用神经模糊技术获得的估计结果,并将其与人工神经网络和沉积物额定曲线进行了比较。均方根误差,均值绝对误差和相关系数统计量用作评估模型性能的比较标准。比较结果表明,神经模糊模型可以成功地用于每月悬浮泥沙的估算。

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