DocumentCode :
2906226
Title :
An Algorithm for Privacy-Preserving Quantitative Association Rules Mining
Author :
Jing, Weiwei ; Huang, Liusheng ; Luo, Yonglong ; Xu, Weijiang ; Yao, Yifei
Author_Institution :
MOST Co-Key Lab. of High Performance Comput. & Its Application, Univ. of Sci. & Technol. of China, Hefei
fYear :
2006
fDate :
Sept. 29 2006-Oct. 1 2006
Firstpage :
315
Lastpage :
324
Abstract :
When data mining occurs on distributed data, privacy of parties becomes great concerns. This paper considers the problem of mining quantitative association rules without revealing the private information of parties who compute jointly and share distributed data. The issue is an area of privacy preserving data mining (PPDM) research. Some researchers have considered the case of mining Boolean association rules; however, this method cannot be easily applied to quantitative rules mining. A new secure set union algorithm is proposed in this paper, which unifies the input sets of parties without revealing any element´s owner and has lower time cost than existing algorithms. The new algorithm takes the advantages of both in privacy-preserving Boolean association rules mining and in privacy-preserving quantitative association mining. This paper also presents an algorithm for privacy-preserving quantitative association rules mining over horizontally portioned data, based on CF tree and secure sum algorithm. Besides, the analysis of the correctness, the security and the complexity of our algorithms are provided
Keywords :
Boolean algebra; data mining; data privacy; Boolean association rules mining; CF tree algorithm; privacy preserving data mining; quantitative association rules mining; secure set union algorithm; secure sum algorithm; Algorithm design and analysis; Association rules; Costs; Data mining; Data privacy; Data security; Distributed computing; High performance computing; Laboratories; Partitioning algorithms;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Dependable, Autonomic and Secure Computing, 2nd IEEE International Symposium on
Conference_Location :
Indianapolis, IN
Print_ISBN :
0-7695-2539-3
Type :
conf
DOI :
10.1109/DASC.2006.18
Filename :
4030898
Link To Document :
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