Proceedings of the 7th International Conference on Computer Engineering and Networks — PoS(CENet2017) 2017
DOI: 10.22323/1.299.0096
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Detecting Anomalous User Behavior in Database

Abstract: In order to protect vital data in today's internet environment and prevent misuse, especially insider abuse by valid users, we propose a novel two-step detecting approach to distinguish potential misuse behaviour (namely anomalous user behaviour) from normal behaviour. First, we capture the access patterns of users by using association rules. Then, based on the patterns and users' sequential behaviour, we try to deter anomalous user behaviour by leveraging the logistic regression model. Experimental results on… Show more

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