DocumentCode :
2409843
Title :
Theoretical study on a new information entropy and its use in attribute reduction
Author :
Luo, Ping ; He, Qing ; Shi, Zhongzhi
Author_Institution :
Key Lab. of Intelligent Inf. Process., Chinese Acad. of Sci., Beijing, China
fYear :
2005
fDate :
8-10 Aug. 2005
Firstpage :
73
Lastpage :
79
Abstract :
The positive region in rough set framework and Shannon conditional entropy are two traditional uncertainty measurements, used usually as heuristic metrics in attribute reduction. In this paper first a new information entropy is systematically compared with Shannon entropy, which shows its competence of another new uncertainty measurement. Then given a decision system we theoretically analyze the variance of these three metrics under two reverse circumstances, Those are when condition (decision) granularities merge while decision (condition) granularities remain unchanged. The conditions that keep these measurements unchanged in the above different situations are also figured out. These results help us to give a new information view of attribute reduction and propose more clear understanding of the quantitative relations between these different views, defined by the above three uncertainty measurements. It shows that the requirement of reducing a condition attribute in new information view is more rigorous than the ones in the latter two views and these three views are equivalent in a consistent decision system.
Keywords :
entropy; rough set theory; Shannon conditional entropy; attribute reduction; condition granularity; decision granularity; decision system; heuristic metrics; information entropy; rough set framework; uncertainty measurement; Algebra; Analysis of variance; Computers; Information entropy; Information processing; Laboratories; Machine learning; Measurement uncertainty; Merging; Set theory;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Cognitive Informatics, 2005. (ICCI 2005). Fourth IEEE Conference on
Print_ISBN :
0-7803-9136-5
Type :
conf
DOI :
10.1109/COGINF.2005.1532617
Filename :
1532617
Link To Document :
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