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Automated compilation of pseudo-lithology maps from geophysical data sets: a comparison of Gustafson-Kessel and fuzzy c-means cluster algorithms

机译:从地球物理数据集自动编译伪岩性图:Gustafson-Kessel与模糊c均值聚类算法的比较

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The fuzzy partitioning Gustafson-Kessel cluster algorithm is employed for rapid and objective integration of multi-parameter Earth-science related databases. We begin by evaluating the Gustafson-Kessel algorithm using the example of a synthetic study and compare the results to those obtained from the more widely employed fuzzy c-means algorithm. Since the Gustafson-Kessel algorithm goes beyond the potential of the fuzzy c-means algorithm by adapting the shape of the clusters to be detected and enabling a manual control of the cluster volume, we believe the results obtained from Gustafson-Kessel algorithm to be superior. Accordingly, a field database comprising airborne and ground-based geophysical data sets is analysed, which has previously been classified by means of the fuzzy c-means algorithm. This database is integrated using the Gustafson-Kessel algorithm thus minimising the amount of empirical data processing required before and after fuzzy c-means clustering. The resultant zonal geophysical map is more evenly clustered matching regional geology information available from the survey area. Even additional information about linear structures, e.g. as typically caused by the presence of dolerite dykes or faults, is visible in the zonal map obtained from Gustafson-Kessel cluster analysis.
机译:模糊划分的Gustafson-Kessel聚类算法用于与地球科学相关的多参数数据库的快速客观集成。我们首先以综合研究为例评估Gustafson-Kessel算法,然后将结果与从采用更广泛的模糊c均值算法获得的结果进行比较。由于Gustafson-Kessel算法通过适应要检测的簇的形状并实现了对簇体积的手动控制,从而超越了模糊c-均值算法的潜力,因此我们认为从Gustafson-Kessel算法获得的结果会更好。因此,分析了包括机载和基于地面的地球物理数据集的现场数据库,该数据库先前已通过模糊c均值算法进行了分类。该数据库使用Gustafson-Kessel算法进行集成,从而最大程度地减少了模糊c均值聚类之前和之后所需的经验数据处理量。所生成的区域地球物理图会更均匀地聚类,以匹配可从调查区域获得的区域地质信息。甚至有关线性结构的其他信息,例如从古斯塔夫森-凯塞尔聚类分析获得的地带图中可以清楚地看到,通常是由于白云岩堤坝或断层的存在而引起的。

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