DocumentCode :
548429
Title :
Privacy preserving OLAP: Models, issues, algorithms
Author :
Cuzzocrea, Alfredo
Author_Institution :
ICAR-CNR, Univ. of Calabria, Cosenza, Italy
fYear :
2011
fDate :
23-27 May 2011
Firstpage :
1538
Lastpage :
1543
Abstract :
The problem of computing privacy preserving OLAP data cubes is gaining momentum in the Data Mining and Warehousing research community, due to the large spectrum of application scenarios where OLAP and, under a larger vision, Business Intelligence (BI) are exploited successfully. Following this emerging trend, several privacy preserving OLAP techniques have been proposed recently, with alternate fortune. This research proposes an excerpt of two significant state-of-the-art contributions in the contexts of centralized and distributed privacy preserving OLAP research, by providing several case studies showing challenges and achievements of these contributions, along with directions for future efforts in these fields.
Keywords :
competitive intelligence; data mining; data privacy; data warehouses; business intelligence; data mining; data warehousing research community; privacy preserving OLAP data cubes technique; Accuracy; Aggregates; Data privacy; Distributed databases; Privacy; Protocols; XML;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
MIPRO, 2011 Proceedings of the 34th International Convention
Conference_Location :
Opatija
Print_ISBN :
978-1-4577-0996-8
Type :
conf
Filename :
5967305
Link To Document :
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