DocumentCode :
3421905
Title :
MRFI-The maintenance of representative frequent itemsets
Author :
Yen, Show-Jane ; Lee, Yue-Shi ; Wang, Chiu-kuang
Author_Institution :
Dept. of Comput. Sci. & Infor. Eng., Ming Chuan Univ., Taoyuan, Taiwan
fYear :
2009
fDate :
17-19 Aug. 2009
Firstpage :
710
Lastpage :
715
Abstract :
Mining frequent itemsets is an important research task for knowledge discovery, which is to discover the groups of items appearing always together excess of a user specified threshold from a transaction database. However, there may be many frequent itemsets existing in a transaction database, such that it is difficult to make a decision for a decision maker. Recently, mining frequent closed itemsets becomes a major research issue. The reason is that all frequent itemsets can be derived from frequent closed itemsets. In addition, the transactions in a database will increase constantly. It is a challenge that how to update the previous frequent closed itemsets from the increased transactions. In this paper, we propose an efficient algorithm MRFI for incrementally mining frequent closed itemsets without scanning original database. MRFI algorithm generates frequent closed itemsets by performing some operations on the previous closed itemsets and the added transactions without doing any searching operation. Finally, the experimental results show that MRFI algorithm performs much better than the previous approaches.
Keywords :
data mining; database management systems; decision making; database scanning; frequent closed itemset mining; knowledge discovery; transaction database; Companies; Computer science; Data engineering; Data mining; Engineering management; Itemsets; Knowledge engineering; Knowledge management; Merchandise; Transaction databases;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Granular Computing, 2009, GRC '09. IEEE International Conference on
Conference_Location :
Nanchang
Print_ISBN :
978-1-4244-4830-2
Type :
conf
DOI :
10.1109/GRC.2009.5255029
Filename :
5255029
Link To Document :
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