DocumentCode :
2386301
Title :
Production and Retrieval of Rough Classes in Multi Relations
Author :
Tolun, Mehmet R. ; Sever, Hayri ; Gorur, A. Kadir
Author_Institution :
Cankaya Univ., Ankara
fYear :
2007
fDate :
2-4 Nov. 2007
Firstpage :
192
Lastpage :
192
Abstract :
Organizational memory in today´s business world forms basis for organizational learning, which is the ability of an organization to gain insight and understanding from experience through experimentation, observation, analysis, and a willingness to examine both successes and failures. This basically requires consideration of different aspects of knowledge that may reside on top of a conventional information management system. Of them, representation, retrieval and production issues of meta patterns constitute to the main theme of this article. Particularly we are interested in a formal approach to handle rough concepts. We utilize rough classifiers to propose a preliminary framework based on minimal term sets with p-norms to extract meta patterns. We describe a relational rule induction approach, which is called rila. Experimental results are provided on the mutagenesis, and the KDD Cup 2001 genes data sets.
Keywords :
SQL; data mining; information retrieval; learning by example; relational databases; rough set theory; KDD Cup 2001 genes data sets; SQL; business world; data mining; formal approach; information management system; meta pattern extraction; mutagenesis; organizational learning; organizational memory; relational rule induction approach; rila; rough classes production; rough classes retrieval; rough concept handling; Approximation algorithms; Approximation methods; Data mining; Failure analysis; Information management; Information retrieval; Logic; Production; Rough sets; Set theory;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Granular Computing, 2007. GRC 2007. IEEE International Conference on
Conference_Location :
Fremont, CA
Print_ISBN :
978-0-7695-3032-1
Type :
conf
DOI :
10.1109/GrC.2007.56
Filename :
4403092
Link To Document :
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