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首页> 外文期刊>International Journal of Agricultural and Environmental Information Systems >Statistical and Data Mining Techniques for Understanding Water Quality Profiles in a Mining-Affected River Basin
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Statistical and Data Mining Techniques for Understanding Water Quality Profiles in a Mining-Affected River Basin

机译:理解采矿河流域水质型材的统计和数据挖掘技术

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This article contains a multivariate analysis (MV), data mining (DM) techniques and water quality index (WQI) metrics which were applied to a water quality dataset from three water quality monitoring stations in the Petaquilla River Basin, Panama, to understand the environmental stress on the river and to assess the feasibility for drinking. Principal Components and Factor Analysis (PCA/FA), indicated that the factors which changed the quality of the water for the two seasons differed. During the low flow season, water quality showed to be influenced by turbidity (NTU) and total suspended solids (TSS). For the high flow season, main changes on water quality were characterized by an inverse relation of NTU and TSS with electrical conductivity (EC) and chlorides (Cl), followed by sources of agricultural pollution. To complement the MV analysis, DM techniques like cluster analysis (CA) and classification (CLA) was applied and to assess the quality of the water for drinking, a WQI.
机译:本文含有多变量分析(MV),数据挖掘(DM)技术和水质指数(WQI)指标,其应用于Petaquilla River Boutin,巴拿马,以了解环境的水质数据集 压力在河里,评估饮酒的可行性。 主要成分和因子分析(PCA / FA)表示改变了两个赛季水质质量的因素不同。 在低流量季节期间,水质显示出受浊度(NTU)和总悬浮固体(TSS)的影响。 对于高流量季,水质的主要变化是通过NTU和TSS与导电性(EC)和Chlorides(CL)的反向关系,其次是农业污染源。 为了补充MV分析,适用于集群分析(CA)和分类(CLA)等DM技术,并评估饮用水的质量,是WQI。

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