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Study of traffic-emitted lead pollution of soil and plants using different fuzzy clustering algorithms

机译:使用不同模糊聚类算法研究土壤和植物的交通排放铅污染

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We discuss the clustering of 234 environmental samples resulting from an extensive monitoring program concerning soil lead content, plant lead content, traffic density, and distance from the road at different sampling locations in former East Germany. Considering the structure of data and the unsatisfactory results obtained applying classical clustering and principal component analysis, it appeared evident that fuzzy clustering could be one of the best solutions. In the following order we used different fuzzy clustering algorithms, namely, the fuzzy c-means (FCM) algorithm, the Gustafson–Kessel (GK) algorithm, which may detect clusters of ellipsoidal shapes in data by introducing an adaptive distance norm for each cluster, and the fuzzy c-varieties (FCV) algorithm, which was developed for recognition of r-dimensional linear varieties in high-dimensional data (lines, planes or hyperplanes). Fuzzy clustering with convex combination of point prototypes and different multidimensional linear prototypes is also discussed and applied for the first time in analytical chemistry (environmetrics). The results obtained in this study show the advantages of the FCV and GK algorithms over the FCM algorithm. The performance of each algorithm is illustrated by graphs and evaluated by the values of some conventional cluster validity indices. The values of the validity indices are in very good agreement with the quality of the clustering results.
机译:我们讨论了234个环境样本的聚类,该聚类是由涉及土壤铅含量,植物铅含量,交通密度以及前东德不同采样地点与道路的距离的广泛监控程序得出的。考虑到数据的结构以及经典聚类和主成分分析所获得的不令人满意的结果,显然模糊聚类可能是最佳解决方案之一。按照以下顺序,我们使用了不同的模糊聚类算法,即模糊c均值(FCM)算法,Gustafson-Kessel(GK)算法,该算法可以通过为每个聚类引入自适应距离范数来检测数据中的椭圆形聚类以及模糊c变量(FCV)算法,该算法是为识别高维数据(线,平面或超平面)中的r维线性变体而开发的。还讨论了点样机和不同多维线性样机的凸组合的模糊聚类,并将其首次应用于分析化学(环境计量学)。这项研究获得的结果表明,FCV和GK算法优于FCM算法。每种算法的性能由图形表示,并由一些常规聚类有效性指标的值进行评估。有效性指标的值与聚类结果的质量非常吻合。

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