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Study of variations in water quality of Mumbai coast through multivariate analysis techniques

机译:多元分析技术研究孟买海岸水质变化

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Multivariate statistical techniques, such as Cluster Analysis (CA), Discriminant Analysis (DA), and Principal component analysis (PCA) were applied to evaluate the temporal/spatial variations in marine water quality of Mumbai and to identify pollution sources. Hierarchical CA grouped 12 sampling sites into three clusters of similar water quality characteristics. DA gave the best results both spatially and temporally. It provided an important data reduction as it used only four parameters (DO, Total coliform, Ammonical nitrogen and pH) affording 100% correct assignment in temporal analysis. For spatial DA, DO and temperature; Feacal strptococii, DO and Total coliform; temperature and phosphate were used for summer, monsoon and winter seasons respectively. DA gave 100% correct assignment in spatial analysis except for summer season, step wise mode DA rendered 91.6% correct assignment. PCA resulted in four factors explaining 81.4% of the total variance. The first factor obtained represents organic pollution from domestic waste water. The second factor represents natural pollution which includes the surface run off. The third factor represents nutrient pollution whereas the fourth factor represents seasonal effects of temperature.
机译:运用多元统计技术,例如聚类分析(CA),判别分析(DA)和主成分分析(PCA)来评估孟买海洋水质的时空变化并确定污染源。层次CA将12个采样点分为三个具有相似水质特征的簇。 DA在空间和时间上都给出了最佳结果。它仅使用了四个参数(DO,总大肠菌群,氨氮和pH),提供了重要的数据减少,在时间分析中提供了100%正确的分配。用于空间DA,DO和温度;粪链球菌,DO和大肠菌群;夏季,季风和冬季分别使用高温和磷酸盐。除夏季外,DA在空间分析中给出了100%的正确分配,逐步模式DA提供了91.6%的正确分配。 PCA产生了四个因素,占总方差的81.4%。获得的第一个因素代表生活污水中的有机污染。第二个因素代表自然污染,其中包括地表径流。第三个因素代表养分污染,而第四个因素代表温度的季节性影响。

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