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An Binary Discernibility Matrix Attribute Reduction Algorithm on Attribute Importance Heuristic Message

机译:属性重要性启发式消息的二进制可分辨矩阵属性约简算法

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摘要

A binary discernibility matrix attribute reduction algorithm of incomplete decision table is introduced in this paper, which takes the importance of attribute as the heuristic message. To obtain better attribute reduction, this paper constructs a metric formula of attribute importance and gives a binary discernibility matrix to present incomplete decision table. Based on the formula and matrix an attribute reduction algorithm of incomplete decision table is introduced. This algorithm solves the problem of the attribute selection when the frequencies of attributes are equal. The result shows that this method is simple and effective.
机译:介绍了一种不完全决策表的二进制可分辨矩阵属性约简算法,该算法将属性的重要性作为启发式信息。为了获得更好的属性约简,本文构造了属性重要性的度量公式,并给出了二进制可分辨矩阵来表示不完整的决策表。基于公式和矩阵,提出了一种不完备决策表的属性约简算法。该算法解决了当属性频率相等时属性选择的问题。结果表明,该方法简单有效。

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