Rule Generation using Rough set and Hierarchical Structure

러프집합과 계층적 구조를 이용한 규칙생성

  • Kim, Ju-Young (Dept. of Electrical Engineering, Kangwon National University) ;
  • Lee, Chul-Heui (Dept. of Electrical Engineering, Kangwon National University)
  • Published : 2002.11.30

Abstract

This paper deals with the rule generation from data for control system and data mining using rough set. If the cores and reducts are searched for without consideration of the frequency of data belonging to the same equivalent class, the unnecessary attributes may not be discarded, and the resultant rules don't represent well the characteristics of the data. To improve this, we handle the inconsistent data with a probability measure defined by support, As a result the effect of uncertainty in knowledge reduction can be reduced to some extent. Also we construct the rule base in a hierarchical structure by applying core as the classification criteria at each level. If more than one core exist, the coverage degree is used to select an appropriate one among then to increase the classification rate. The proposed method gives more proper and effective rule base in compatibility and size. For some data mining example the simulations are performed to show the effectiveness of the proposed method.

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