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Hydrological Modeling: A Better Alternative to Empirical Methods for Monthly Flow Estimation in Ungauged Basins

机译:水文建模:未凝固盆地月度流量估计的效果更好的替代方法

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摘要

Water resource is required for agricultural, industrial, and domestic activities and for environmental preservation. However, with the increase in population and growth of urbanization, industrialization, and commercial activities, planning and management of water resources have become a challenging task to meet various water demands globally. Information and data on streamflow hydrology are, thus, crucial for this purpose. However, availability of measured flow data in many cases is either inadequate or not available at all. When there is no gauging station available at the site of interest, various empirical methods are generally used to estimate the flow there and the best estimation is chosen. This study is focused on the estimation of monthly average flows by such methods popular in Nepal and assessment of how they compare with the results of hydrological simulation. Performance evaluation of those methods was made with a newly introduced index, Global Performance Index (GPI) utilizing six commonly used goodness-of-fit parameters viz. coefficient of determination, mean absolute error, root mean square error, percentage of volume bias, Nash Sutcliff Efficiency and Kling-Gupta Efficiency. This study showed that hydrological modeling is the best among the considered methods of flow estimation for ungauged catchments.
机译:农业,工业和国内活动和环境保护所需的水资源。然而,随着人口的增加和城市化,工业化和商业活动的增长,水资源的规划和管理已成为全球各种水需求的具有挑战性的任务。因此,流出水文的信息和数据对于此目的至关重要。然而,许多情况下测量的流量数据的可用性是不充分的或根本不可用。当没有在感兴趣的部位提供衡量站时,通常用于估计那里的流程,选择各种经验方法,并选择最佳估计。本研究专注于尼泊尔流行的这些方法估计月平均流量,并评估它们与水文模拟结果的比较。这些方法的性能评估是通过新引进的指数,全球性能指数(GPI)利用六个常用的拟合良好参数viz进行。测定系数,平均绝对误差,均方根误差,体积偏差百分比,纳什·斯托夫夫效率和kling-Gupta效率。本研究表明,水文建模是未凝固的集水区的所考虑的流动估计方法中最好的。

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