Innovations to Attribute Reduction of Covering Decision System Based on Conditional Information Entropy

Author:

Xia Xiuyun1,Tian Hao2,Wang Ye3

Affiliation:

1. School of General Education , Hunan University of Information Technology , Changsha , China

2. Electronic Information College , Hunan University of Information Technology , Changsha , China

3. School of Computer Science , Huaiyin Normal University , Huaian , China

Abstract

Abstract Traditional rough set theory is mainly used to reduce attributes and extract rules in databases in which attributes are characterised by partitions, which the covering rough set theory, a generalisation of traditional rough set theory, covers. In this article, we posit a method to reduce the attributes of covering decision systems, which are databases incarnated in the form of covers. First, we define different covering decision systems and their attributes’ reductions. Further, we describe the necessity and sufficiency for reductions. Thereafter, we construct a discernible matrix to design algorithms that compute all the reductions of covering decision systems. Finally, the above methods are illustrated using a practical example and the obtained results are contrasted with other results.

Publisher

Walter de Gruyter GmbH

Subject

Applied Mathematics,Engineering (miscellaneous),Modeling and Simulation,General Computer Science

Reference32 articles.

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3. J.N. Mordeson, Rough set theory applied to (fuzzy) ideal theory, Fuzzy Sets and Systems 121(2001) 315–324.

4. G. Cattaneo. Abstract approximate spaces for rough theories[M], in: Polkowski, Skowron (Eds.), Rough Sets in Knowledge Discovery 1: Methodology and Applications, Physicaverlaf, Heidelberg, 1998, pp. 59–98.

5. H.S. Nguyen, D. Slezak. Approximation reducts and association rules correspondence and complexity results, in: N. Zhong, A. Skowron, S. Oshuga (Eds.), Proceedings of RSFDGrC’99[C]. Japan: LNAI1711, 1999.

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