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FUZZY EVIDENCE THEORETIC APPROACHES FOR KNOWLEDGE DISCOVERY IN SPATIAL UNCERTAINTY DATA SETS

机译:空间不确定性数据集中知识发现的模糊证据理论方法

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Although uncertainties exist in spatial knowledge discovery, they have not been paid much attention to. In the past years, the most researches of spatial knowledge discovery focused on the methods of data mining and its algorithms. In this paper, uncertainty and its propagation of spatial data are discussed and analysed firstly. Then, uncertainties at various stages of spatial knowledge discovery are briefly analysed, including data selection, data preprocessing, data mining, knowledge representation and uncertain reasoning. Thirdly, a method of spatial knowledge discovery in conjunction with uncertain reasoning by means of fuzzy evidence theory is proposed. Herein, the framework for uncertainty handling in spatial knowledge discovery is constructed, and the fundamental issues include soft discretization of spatial data, fuzzy transformation between quantitative data and qualitative concept, reasoning under uncertainty and uncertain knowledge representation.
机译:虽然空间知识发现中存在不确定性,但他们没有得到很多关注。在过去几年中,空间知识发现的最多研究专注于数据挖掘方法及其算法。在本文中,首先讨论并分析了空间数据的不确定性及其传播。然后,简要分析了空间知识发现的各个阶段的不确定性,包括数据选择,数据预处理,数据挖掘,知识表示和不确定推理。第三,提出了一种通过模糊证据理论结合不确定推理的空间知识发现的方法。这里,构建了用于空间知识发现的不确定性处理的框架,并且基本问题包括空间数据的软离散化,定量数据与定性概念之间的模糊转换,在不确定度和不确定的知识表示下的推理。

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