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Fitting sediment rating curves using regression analysis: a case study of Russian Arctic rivers

机译:使用回归分析拟合沉积物评级曲线 - 以俄罗斯北极河流为例

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Published suspended sediment data for Arctic rivers is scarce. Suspended sediment rating curves for three medium to large rivers of the Russian Arctic were obtained using various curve-fitting techniques. Due to the biased sampling strategy, the raw datasets do not exhibit log-normal distribution, which restricts the applicability of a log-transformed linear fit. Non-linear (power) model coefficients were estimated using the Levenberg-Marquardt, Nelder-Mead and Hooke-Jeeves algorithms, all of which generally showed close agreement. A non-linear power model employing the Levenberg-Marquardt parameter evaluation algorithm was identified as an optimal statistical solution of the problem. Long-term annual suspended sediment loads estimated using the non-linear power model are, in general, consistent with previously published results.
机译:发表了北极河流的悬浮沉积物数据稀缺。使用各种曲线拟合技术获得三种培养基三种媒体到大型河流的悬浮沉积物曲线。由于偏置的采样策略,原始数据集没有表现出日志正态分布,这限制了对数转换的线性配合的适用性。使用Levenberg-Marquardt,Nelder-Mead和Hooke-Jeeves算法估计非线性(功率)模型系数,所有这些都普遍展示了密切的协议。采用Levenberg-Marquardt参数评估算法的非线性功率模型被识别为问题的最佳统计解决方案。通常使用非线性电源模型估计的长期年悬浮沉积物负载与先前已发表的结果一致。

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