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Research and application of cluster and association analysis in geochemical data processing

机译:聚类和关联分析在地球化学数据处理中的研究与应用

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For applications of data mining techniques in geosciences, through mining spatial databases which are constructed with geophysical and geochemical data measured in fields, critical knowledge, such as the spatial distribution of geological targets, the geophysical and geochemical characteristics of geological targets, the differentiation among the geological targets, and the relationship among geophysical and geochemical data, can be discovered. Due to the complexity of geophysical and geochemical data, traditional mining methods of cluster analysis and association analysis have limitations in processing complex data. In this paper, a clustering algorithm based on density and adaptive density-reachable is presented which has the ability to handle clusters of arbitrary shapes, sizes, and densities. For association analysis, mining the continuous attributes may reveal useful and interesting insights about the data objects in geoscientific applications. An approach for distance-based quantitative association analysis is presented in this paper. Experiments and applications indicate that the algorithm and approach are effective in real-world applications.
机译:对于数据挖掘技术在地球科学中的应用,通过挖掘使用在野外测量的地球物理和地球化学数据构建的空间数据库,可以获取关键知识,例如地质目标的空间分布,地质目标的地球物理和地球化学特征,可以发现地质目标以及地球物理和地球化学数据之间的关系。由于地球物理和地球化学数据的复杂性,传统的聚类分析和关联分析的挖掘方法在处理复杂数据方面存在局限性。本文提出了一种基于密度和自适应密度可达的聚类算法,该算法具有处理任意形状,大小和密度的聚类的能力。对于关联分析,挖掘连续属性可能会揭示有关地球科学应用程序中数据对象的有用且有趣的见解。本文提出了一种基于距离的定量关联分析方法。实验和应用表明,该算法和方法在实际应用中是有效的。

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