DocumentCode :
1647744
Title :
Interesting measures for mining association rules
Author :
Sheikh, Liaquat Majeed ; Tanveer, Basit ; Hamdani, Syed Mustafa Ali
Author_Institution :
FAST-NUCES, Lahore, Pakistan
fYear :
2004
Firstpage :
641
Lastpage :
644
Abstract :
Discovering association rules is one of the most important tasks in data mining and many efficient algorithms were proposed in the literature. However, the number of discovered rules is often so large, so the user cannot analyze all discovered rules. To overcome that problem several methods for mining interesting rules only have been proposed. Many measures have been proposed in the literature to determine the interestingness of the rule. In this paper we have selected a total of eight different measures, we have compared these measures by using a data set, and we have made some recommendation about the use of the measures for discovering the most interesting rules.
Keywords :
data mining; knowledge based systems; association rules; data mining; interesting measures; rule interestingness; Association rules; Conference management; Dairy products; Data mining; Frequency; Itemsets; Lattices; Transaction databases;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Multitopic Conference, 2004. Proceedings of INMIC 2004. 8th International
Print_ISBN :
0-7803-8680-9
Type :
conf
DOI :
10.1109/INMIC.2004.1492964
Filename :
1492964
Link To Document :
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