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An attribute reduction algorithm in the incomplete information system based on the attribute significance

机译:基于属性重要性的不完备信息系统中的属性约简算法

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This paper proposes an attribute reduction algorithm based on attribute significance in the incomplete information system. The algorithm makes use of the concept of similar matrix via tolerance relationship. In the similar matrix, attribute significance reflects the ability of distinguishing between objects. The more frequent the appearance times are, the less importance the attribute is. The attribute reflects the higher similarity of objects. Then a new algorithm is presented which adds the attribute into the reduction set based on the attribute significance. Experiment results show that the algorithm is correct and effective.
机译:提出了一种不完备信息系统中基于属性重要性的属性约简算法。该算法通过公差关系利用相似矩阵的概念。在相似的矩阵中,属性重要性反映了区分对象的能力。出现时间越频繁,属性的重要性就越低。该属性反映了对象的更高相似性。然后提出了一种新的算法,该算法根据属性的重要性将属性添加到约简集中。实验结果表明该算法是正确有效的。

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