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Uncertainty assessment for watershed water quality modeling: A Probabilistic Collocation Method based approach

机译:流域水质模型的不确定性评估:一种基于概率配置方法的方法

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Watershed water quality models are increasingly used in management. However, simulations by such complex models often involve significant uncertainty, especially those for non-conventional pollutants which are often poorly monitored. This study first proposed an integrated framework for watershed water quality modeling. Within this frameworkProbabilistic Collocation Method (PCM) was then applied to a WARMF model of diazinon pollution to assess the modeling uncertainty. Based on PCM, a global sensitivity analysis method named PCM-VD (VD stands for variance decomposition) was also developed, which quantifies variance contribution of all uncertain parameters. The study results validated the applicability of PCM and PCM-VD to the WARMF model. The PCM-based approach is much more efficient, regarding computational time, than conventional Monte Carlo methods. It has also been demonstrated that analysis using the PCM-based approach could provide insights into data collection, model structure improvement and management practices. It was concluded that the PCM-based approach could play an important role in watershed water quality modeling, as an alternative to conventional Monte Carlo methods to account for parametric uncertainty and uncertainty propagation.
机译:流域水质模型越来越多地用于管理。但是,使用这种复杂模型进行的模拟通常会涉及很大的不确定性,尤其是对于那些非常规污染物(通常监测不佳)的不确定性。这项研究首先提出了流域水质建模的综合框架。然后在该框架内将概率配置方法(PCM)应用于二嗪农污染的WARMF模型,以评估建模的不确定性。基于PCM,还开发了一种称为PCM-VD(VD代表方差分解)的全局灵敏度分析方法,该方法可量化所有不确定参数的方差贡献。研究结果验证了PCM和PCM-VD在WARMF模型中的适用性。就计算时间而言,基于PCM的方法比传统的蒙特卡洛方法效率更高。还已经证明,使用基于PCM的方法进行分析可以提供有关数据收集,模型结构改进和管理实践的见解。结论是,基于PCM的方法在流域水质建模中可以发挥重要作用,可以替代传统的蒙特卡洛方法来解决参数不确定性和不确定性传播问题。

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