DocumentCode :
468269
Title :
Diagnostic Rules Discovery with Hierarchical Clustering and Focusing Mechanism Based on Rough Sets Theory
Author :
Shi, Minghui ; Zhou, Changle
Author_Institution :
Xiamen Univ., Xiamen
Volume :
2
fYear :
2007
fDate :
24-27 Aug. 2007
Firstpage :
673
Lastpage :
677
Abstract :
An approach is proposed to discover diagnostic rules from clinical databases. First, the diseases in the clinical database are clustered by their necessary characterization. Then focusing mechanism, which includes three processes: exclusion process, discrimination process and combining process, is exploited to derive diagnostic rules. The main characteristic feature of the approach is: 1) coverage is exploited to find necessary characterization of diseases during the exclusion process, while accuracy is exploited to find lambdaA-sufficient characterization of diseases during the discrimination process; 2) discrimination process can be executed among many diseases; 3) a series of classification information systems (CISs) derived by exclusion process from the original are considered; 4) the CISs are reducted to the simple ones; 5) crisp rules and uncertain rules can be conveniently derived. Finally, an example illustrates the approach and shows its effectiveness.
Keywords :
data mining; diseases; medical diagnostic computing; medical information systems; pattern classification; pattern clustering; rough set theory; classification information systems; clinical databases; combining process; crisp rules; diagnostic rules discovery; discrimination process; disease clustering; exclusion process; hierarchical clustering mechanism; hierarchical focusing mechanism; rough set theory; uncertain rules; Artificial intelligence; Computational Intelligence Society; Diseases; Information systems; Knowledge acquisition; Logic; Psychology; Rough sets; Set theory; Spatial databases;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Fuzzy Systems and Knowledge Discovery, 2007. FSKD 2007. Fourth International Conference on
Conference_Location :
Haikou
Print_ISBN :
978-0-7695-2874-8
Type :
conf
DOI :
10.1109/FSKD.2007.252
Filename :
4406161
Link To Document :
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