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首页> 外文期刊>Polish Journal of Environmental Studies >Quantifying the Relationships of Impact Factors on Non-Point Source Pollution Using the Boosted Regression Tree Algorithm
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Quantifying the Relationships of Impact Factors on Non-Point Source Pollution Using the Boosted Regression Tree Algorithm

机译:使用Boosting回归树算法量化非点源污染影响因子的关系

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Non-point source (NPS) pollution contributes greatly to the contamination of surface water quality and has aroused widespread concerns. NPS pollution is influenced by a multitude of site-related factors whose effects are complicated. We estimated NPS pollution with a soil and water assessment tool (SWAT) model in China's Fan River watershed. A new method, boosted regression tree (BRT), was proposed to study the relationship of impact factors on NPS pollution. We analyzed the effects of elevation, land use, soil, and slope on the patterns of sediment transport, total nitrogen (TN), and total phosphorus (TP). The results showed that R-2 values were higher than 0.76, and NSE was higher than 0.67. The SWAT model can estimate NPS pollution effectively in a study area. Although the spatial pattern of sediment and TP was quite consistent, the relationship between sediment and TN was weak. The contribution of impact factors for sediment TN and TP were different. Slope is the most important impact factor for sediment and TP load. Land use is the most important impact factor for TN load. The BRT model can reduce barriers to factor complexity and promote understanding of the NPS pollution formation mechanism. We proposed control strategies of pollution sources, and our research has proven to be useful for the explanation of impact factors in NPS pollution study, which is meaningful for NPS pollution control.
机译:面源(NPS)污染是造成地表水水质污染的主要因素,并引起了广泛的关注。 NPS污染受多种与现场有关的因素的影响,这些因素的影响十分复杂。我们使用土壤和水评估工具(SWAT)模型估算了中国范江流域的NPS污染。为了研究影响因子与NPS污染之间的关系,提出了一种新的方法,即Boost回归树(BRT)。我们分析了海拔,土地利用,土壤和坡度对沉积物迁移,总氮(TN)和总磷(TP)模式的影响。结果表明,R-2值高于0.76,NSE高于0.67。 SWAT模型可以有效地估算研究区域内的NPS污染。尽管沉积物和总磷的空间格局相当一致,但沉积物与总氮之间的关系却很弱。影响沉积物总氮和总磷的因素不同。坡度是泥沙和总磷负荷最重要的影响因素。土地使用是TN负荷最重要的影响因素。 BRT模型可以减少影响因素复杂性的障碍,并增进对NPS污染形成机理的了解。我们提出了污染源的控制策略,研究证明对解释NPS污染研究中的影响因素很有用,这对NPS污染控制具有重要意义。

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