DocumentCode :
3270752
Title :
Discovery Association Rules in Time Series of Hydrology
Author :
Wan, Dingsheng ; Zhang, Yitao ; Li, Shijin
Author_Institution :
Hohai Univ., Nanjing
fYear :
2007
fDate :
20-24 March 2007
Firstpage :
653
Lastpage :
657
Abstract :
Mining association rules in hydrological time series will help to leverage the hydrological data more effectively and extract insightful information from the data, in this paper an improved method of mining quantitative association rules is proposed to implement the hydrological analysis, as well as the optimization of the rules. The improved clustering method is exploited for discretization in the process of mining quantitative association rules. It requires acquiring the initial cluster centers by sampling, then merging the initial clusters iteratively, meanwhile computing the cost in the process of merging. Then rules are generated from the classical Apriori algorithm for mining association rules. Furthermore, with respect to redundancy of the rules, optimized association rules are discovered according to the rule structure and the hydrological analysis requirements. In this way, the semantic integrity between data and the rationality of rules are guaranteed. Finally, the experiment results indicate the feasibility and practicability to analyze the time series in hydrology.
Keywords :
data analysis; data integrity; data mining; geophysics computing; hydrology; merging; pattern clustering; time series; clustering method; discovery association rules; hydrological analysis; hydrological data; hydrological time series; hydrology; merging; mining association rules; semantic integrity; Association rules; Clustering methods; Costs; Data mining; Hydrology; Information analysis; Merging; Optimization methods; Sampling methods; Time series analysis; Time series; association rule; clustering; rule optimization;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Integration Technology, 2007. ICIT '07. IEEE International Conference on
Conference_Location :
Shenzhen
Print_ISBN :
1-4244-1092-4
Electronic_ISBN :
1-4244-1092-4
Type :
conf
DOI :
10.1109/ICITECHNOLOGY.2007.4290400
Filename :
4290400
Link To Document :
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