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Soil Contamination Interpretation by the Use of Monitoring Data Analysis

机译:利用监测数据分析法解释土壤污染

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摘要

The presented study deals with the interpretation of soil quality monitoring data using hierarchical cluster analysis (HCA) and principal components analysis (PCA). Both statistical methods contributed to the correct data classification and projection of the surface (0–20 cm) and subsurface (20–40 cm) soil layers of 36 sampling sites in the region of Burgas, Bulgaria. Clustering of the variables led to formation of four significant clusters corresponding to possible sources defining the soil quality like agricultural activity, industrial impact, fertilizing, etc. Two major clusters were found to explain the sampling site locations according to soil composition—one cluster for coastal and mountain sites and another—for typical rural and industrial sites. Analogous results were obtained by the use of PCA. The advantage of the latter was the opportunity to offer more quantitative interpretation of the role of identified soil quality sources by the level of explained total variance. The score plots and the dendrogram of the sampling sites indicated a relative spatial homogeneity according to geographical location and soil layer depth. The high-risk areas and pollution profiles were detected and visualized using surface maps based on Kriging algorithm.
机译:本研究使用层次聚类分析(HCA)和主成分分析(PCA)来处理土壤质量监测数据。两种统计方法都有助于对保加利亚布尔加斯地区36个采样点的表层(0–20 cm)和表层(20–40 cm)的土壤层进行正确的数据分类和投影。变量的聚类导致形成四个重要的聚类,对应于定义土壤质量的可能来源,如农业活动,工业影响,施肥等。发现了两个主要聚类来解释根据土壤成分的采样点位置—一个聚类用于沿海山区和其他地点-典型的农村和工业用地。通过使用PCA获得了类似的结果。后者的优势是有机会通过解释的总方差水平对所识别的土壤质量来源的作用提供更多的定量解释。得分图和采样点的树状图显示了根据地理位置和土壤层深度的相对空间均匀性。使用基于Kriging算法的表面图对高风险区域和污染状况进行检测和可视化。

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