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Revisiting Numerical Pattern Mining with Formal Concept Analysis

机译:借助形式概念分析重新探究数值模式挖掘

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We investigate the problem of mining numerical data with Formal Concept Analysis. The usual way is to use a scaling procedure -transforming numerical attributes into binary ones- leading either to a loss of information or of efficiency, in particular w.r.t. the volume of extracted patterns. By contrast, we propose to directly work on numerical data in a more precise and efficient way. For that, the notions of closed patterns, generators and equivalent classes are revisited in the numerical context. Moreover, two algorithms are proposed and tested in an evaluation involving real-world data, showing the quality of the present approach.
机译:我们研究使用形式概念分析来挖掘数值数据的问题。通常的方法是使用缩放过程-将数字属性转换为二进制属性-导致信息丢失或效率降低,尤其是w.r.t.。提取图案的数量。相比之下,我们建议以更精确和有效的方式直接处理数字数据。为此,在数字上下文中重新讨论了封闭模式,生成器和等效类的概念。此外,提出了两种算法并在涉及实际数据的评估中进行了测试,表明了本方法的质量。

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