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General Set Covering for Feature Selection in Data Mining
General Set Covering for Feature Selection in Data Mining
- Zhengyu Ma;
- 류홍서
초록
Set covering has widely been accepted as a staple tool for feature selection in data mining. We present a generalized version of this classical combinatorial optimization model to make it better suited for the purpose and propose a surrogate relaxation-based procedure for its meta-heuristic solution. Mathematically and also numerically with experiments on 25 set covering instances, we demonstrate the utility of the proposed model and the proposed solution method.
키워드
General Set Covering; Feature Selection; Surrogate Relaxation
- 제목
- General Set Covering for Feature Selection in Data Mining
- 제목 (타언어)
- General Set Covering for Feature Selection in Data Mining
- 저자
- Zhengyu Ma; 류홍서
- 발행일
- 2012
- 권
- 18
- 호
- 2
- 페이지
- 13 ~ 17