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首页> 外文期刊>Hydrology and Earth System Sciences Discussions >Calibration of hydrological models for ecologically relevant streamflow predictions: a trade-off between fitting well to data and estimating consistent parameter sets?
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Calibration of hydrological models for ecologically relevant streamflow predictions: a trade-off between fitting well to data and estimating consistent parameter sets?

机译:生态相关的流流程预测的水文模型的校准:适用于数据与估计一致参数集之间的权衡?

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The ecological integrity of freshwater ecosystems is intimately linked to natural fluctuations in the river flow regime. In catchments with little human-induced alterations of the flow regime (e.g. abstractions and regulations), existing hydrological models can be used to predict changes in the local flow regime to assess any changes in its rivers' living environment for endemic species. However, hydrological models are traditionally calibrated to give a good general fit to observed hydrographs, e.g. using criteria such as the Nash–Sutcliffe efficiency (NSE) or the Kling–Gupta efficiency (KGE). Much ecological research has shown that aquatic species respond to a range of specific characteristics of the hydrograph, including magnitude, frequency, duration, timing, and the rate of change of flow events. This study investigates the performance of specially developed and tailored criteria formed from combinations of those specific streamflow characteristics (SFCs) found to be ecologically relevant in previous ecohydrological studies. These are compared with the more traditional Kling–Gupta criterion for 33 Irish catchments. A split-sample test with a rolling window is applied to reduce the influence on the conclusions of differences between the calibration and evaluation periods. These tailored criteria are shown to be marginally better suited to predicting the targeted streamflow characteristics; however, traditional criteria are more robust and produce more consistent behavioural parameter sets, suggesting a trade-off between model performance and model parameter consistency when predicting specific streamflow characteristics. Analysis of the fitting to each of 165 streamflow characteristics revealed a general lack of versatility for criteria with a strong focus on low-flow conditions, especially in predicting high-flow conditions. On the other hand, the Kling–Gupta efficiency applied to the square root of flow values performs as well as two sets of tailored criteria across the 165 streamflow characteristics. These findings suggest that traditional composite criteria such as the Kling–Gupta efficiency may still be preferable over tailored criteria for the prediction of streamflow characteristics, when robustness and consistency are important.
机译:淡水生态系统的生态完整性与河流制度的自然波动密切相关。在集水区内具有很少人的流动制度的改变(例如抽象和法规),现有的水文模型可用于预测当地流动制度的变化,以评估其河流生活环境的任何变化。然而,传统上校准水文模型,以赋予观察到的文档普遍适合。使用纳什Sutcliffe效率(NSE)或Kling-Gupta效率(KGE)等标准。许多生态研究表明,水生物种响应了水生的一系列特征,包括幅度,频率,持续时间,时间和流动事件的变化率。本研究调查了由在以前的生态学研究中发现生态相关的特定流流程特征(SFC)的组合形成的特殊开发和量身定制标准的性能。这些与33个爱尔兰集水区的传统kling-gupta标准进行了比较。应用带有滚动窗的分型样品测试以减少对校准和评估期之间的差异结论的影响。这些量身定制的标准显示出略微更适合预测有针对性的流流特征;然而,传统标准更强大,产生更一致的行为参数集,在预测特定的流流特性时,建议在模型性能和模型参数一致性之间进行折衷。对165个流流出特征中的每一个的拟合分析揭示了具有强调低流量条件的强调标准的普遍缺乏功能性,特别是在预测高流量条件下。另一方面,施加到流量值的平方根的Kling-Gupta效率在165个流流特征上执行和两组定制标准。这些发现表明,当鲁棒性和一致性重要时,仍然可以优选诸如Kling-Gupta效率的传统复合标准,例如Kling-Gupta效率,以便预测流流特性的预测标准。

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