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Clustering and Principal Component Analysis for the Heavy Metal contents of soil in Yunnan Province

机译:云南省土壤重金属含量的聚类与主成分分析

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The clustering analysis method which can extracts the useful as well as potential information and knowledge from the random and quantity data is widely used in many domains as an important task of Data Mining. Single Factor Index, Principal Component Analysis, Hierarchical Clustering Analysis and K-Means Clustering Analysis which were used in the experiment in this paper to reveal the relationships of the 12 species of heavy mental elements including Cr, Ni, Cu, V, Co, Mn, Pb, Zn, As, Se, Hg and Cd in the soil of YunNan province. 1781 soil samples of the soil which contain the 12 kinds of heavy mental elements that mentioned above were analyzed in the experiment. These heavy metal elements were separated into four parts by the above clustering analysis methods. The 12 kinds heavy metal elements were divided into 4 groups by the Hierarchical Clustering analysis ,one group consisted of r, Co, Cd, Se, Ni, Mn and Hg, one group consisted of Pb and Zn as a cluster, one group consisted of Cu and V, the other was As respectively. As well as 4 parts were divided by the K-means clustering analysis, which is similar with the Hierarchical Clustering analysis, one group consisted of Hg, Cu, Ni, Mn and V, one group consisted of Pb and Zn as a cluster, one group consisted of Cr, Cd and Co, the other was As respectively. The results in this paper present that elements in the same group are strong symbiotic correlation.
机译:可以从随机和数量数据中提取有用的以及潜在的信息和知识的聚类分析方法在许多领域中被广泛用作数据挖掘的重要任务。实验中使用的单因素指数,主成分分析,层次聚类分析和K-均值聚类分析揭示了Cr,Ni,Cu,V,Co,Mn等12种重金属元素的关系云南省土壤中的铅,铅,锌,砷,硒,汞和镉在实验中分析了1781个土壤样本,其中包含上述12种重金属元素。通过上述聚类分析方法将这些重金属元素分为四个部分。通过层次聚类分析将12种重金属元素分为4组,一组由r,Co,Cd,Se,Ni,Mn和Hg组成,一组由Pb和Zn组成,一组由Pb和Zn组成。 Cu和V,另一个分别为As。通过K-均值聚类分析将4个部分进行划分,这与层次聚类分析相似,一组由Hg,Cu,Ni,Mn和V组成,一组由Pb和Zn组成,一组Cr,Cd和Co组成的组分别为As。本文的结果表明,同一组中的元素具有很强的共生相关性。

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