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Watershed reliability, resilience and vulnerability analysis under uncertainty using water quality data

机译:使用水质数据进行不确定性下的流域可靠性,适应性和脆弱性分析

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摘要

A method for assessment of watershed health is developed by employing measures of reliability, resilience and vulnerability (R-R-V) using stream water quality data. Observed water quality data are usually sparse, so that a water quality time-series is often reconstructed using surrogate variables (streamflow). A Bayesian algorithm based on relevance vector machine (RVM) was employed to quantify the error in the reconstructed series, and a probabilistic assessment of watershed status was conducted based on established thresholds for various constituents. As an application example, observed water quality data for several constituents at different monitoring points within the Cedar Creek watershed in north-east Indiana (USA) were utilized. Considering uncertainty in the data for the period 2002-2007, the R-R-V analysis revealed that the Cedar Creek watershed tends to be in compliance with respect to selected pesticides, ammonia and total phosphorus. However, the watershed was found to be prone to violations of sediment standards. Ignoring uncertainty in the water quality time-series led to misleading results especially in the case of sediments. Results indicate that the methods presented in this study may be used for assessing the effects of different stressors over a watershed. The method shows promise as a management tool for assessing watershed health.
机译:通过使用溪流水质数据采用可靠性,适应性和脆弱性(R-R-V)的措施,开发了一种评估流域健康的方法。观测到的水质数据通常很少,因此通常使用替代变量(水流)来重建水质时间序列。采用基于相关向量机(RVM)的贝叶斯算法对重建序列中的误差进行量化,并基于各种成分的确定阈值对流域状态进行概率评估。作为一个应用示例,利用了印第安纳州东北部(美国)雪松溪流域内不同监测点的几种成分的观测水质数据。考虑到2002年至2007年期间数据的不确定性,R-R-V分析显示,雪松溪流域在某些农药,氨和总磷方面趋向于合规。但是,发现该流域容易违反沉积物标准。忽略水质时间序列的不确定性会导致误导性的结果,尤其是在沉积物的情况下。结果表明,本研究中提出的方法可用于评估分水岭上不同压力源的影响。该方法显示了作为评估流域健康状况的管理工具的希望。

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