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An algorithm for attribute reduction based on classification of condition attributes in rough set

机译:基于粗糙集中条件属性分类的属性约简算法

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Attribute reduction can remove redundant attributes and improve the efficiency of decision making in the case of keeping the classification of research objects. This paper researches attributes reduction of rough set theory. Based on the definition of core in rough set attribute reduction, this paper classifies condition attributes and extracts significant and insignificant attributes. On this basis, combining with Pawlak's attribute reduction method, this paper puts forward an algorithm for attribute reduction based on classification of condition attributes. The experimental results show that the algorithm is verified to be more feasible and effective.
机译:在保持研究对象的分类的情况下,属性约简可以删除多余的属性并提高决策效率。本文研究粗糙集理论的属性约简。基于粗糙集属性约简的核心定义,本文对条件属性进行分类,并提取重要和不重要的属性。在此基础上,结合Pawlak的属性约简方法,提出了一种基于条件属性分类的属性约简算法。实验结果表明,该算法是可行和有效的。

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