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Data and knowledge visualization with virtual reality spaces, neural networks and rough sets: Application to cancer and geophysical prospecting data

机译:具有虚拟现实空间,神经网络和粗糙集的数据和知识可视化:在癌症和地球物理勘探数据中的应用

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摘要

Visual data mining with virtual reality spaces is used for the representation of data and symbolic knowledge. High quality structure-preserving and maximally discriminative visual representations can be obtained using a combination of neural networks (SAMANN and NDA) and rough sets techniques, so that a proper subsequent analysis can be made. The approach is illustrated with two types of data: for gene expression cancer data, an improvement in classification performance with respect to the original spaces was obtained; for geophysical prospecting data for cave detection, a cavity was successfully predicted.
机译:具有虚拟现实空间的可视数据挖掘用于表示数据和符号知识。结合神经网络(SAMANN和NDA)和粗糙集技术,可以获得高质量的结构保留和最大程度的区分性视觉表示,因此可以进行适当的后续分析。用两种类型的数据说明了该方法:对于基因表达癌症数据,相对于原始空间,分类性能得到了改善;对于用于探洞的地球物理勘探数据,成功预测了一个空腔。

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