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Use of Principal Component Analysis for parameter selection for development of a novel Water Quality Index: A case study of river Ganga India

机译:主成分分析在参数选择中的应用,以开发新型水质指数:以印度恒河为例

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摘要

Water Quality Index (WQI) is one of the most widely used concepts for representation of the quality of a water resource. This concept has wide acceptance among policy makers and other stakeholders as this gives a clear and comprehensive picture of the status of the pollution of a water body. The standard step of development of a WQI are – parameter selection, assignment of weights, development of sub-index functions and final aggregation of weighted sub- index values. Out of these, the current study focusses on the first step, i.e. parameter selection. The results of this study shall play a crucial role in the development of Ganga Water Quality Index in the future. For the current study, the initially available data has been subjected to Principal Component Analysis (PCA) and this led to reduction of number of parameters from 28 to 9. This has been done to make the process more feasible and economic as this would drastically reduce the time, effort and cost required to monitor samples for a large number of parameters. The finally shortlisted 9 parameters were- Dissolved Oxygen (DO), pH, Conductivity, Biological Oxygen Demand (BOD), Total Coliform (TC), Chlorides, Magnesium, Sulphate, Total Dissolved Solids (TDS). PCA utilizes the variance in the entire data set and projects it in new dimensions, thereby reducing the number of parameters but retaining maximum variance. The use of statistical techniques in WQI development makes it less biased and more objective in nature and forms the basis of development of a Ganga Water Quality Index (GWQI) in future.
机译:水质指数(WQI)是代表水资源质量的最广泛使用的概念之一。这一概念在决策者和其他利益相关者中得到了广泛的接受,因为这可以清晰,全面地了解水体的污染状况。开发WQI的标准步骤是–参数选择,权重分配,子索引函数的开发以及加权子索引值的最终汇总。其中,当前的研究集中在第一步,即参数选择。这项研究的结果将在未来恒河水质指数的发展中发挥关键作用。对于当前的研究,最初可用的数据已经过主成分分析(PCA),这导致参数数量从28个减少到9个。这样做是为了使该过程更加可行和经济,因为这将大大减少监视样本中大量参数所需的时间,精力和成本。最终入围的9个参数是-溶解氧(DO),pH,电导率,生物需氧量(BOD),总大肠菌群(TC),氯化物,镁,硫酸盐,总溶解固体(TDS)。 PCA利用整个数据集中的方差并将其投影到新的维度,从而减少了参数数量,但保留了最大方差。在WQI开发中使用统计技术使其在本质上减少了偏差,变得更加客观,并构成了未来恒河水质指数(GWQI)发展的基础。

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