SMURFEN: A knowledge sharing intrusion detection network

dc.contributor.authorFung, Carol
dc.contributor.authorZhu, Quanyan
dc.contributor.authorBoutaba, Raouf
dc.contributor.authorBasar, Tamar
dc.date.accessioned2026-09-17T18:57:33Z
dc.date.issued2011-02-11
dc.description.abstractThe problem of Internet intrusions has become a world-wide security concern. To protect computer users from malicious attacks, Intrusion Detection Systems (IDSs) are designed to monitor network traffic and computer activities in order to alert users about suspicious intrusions. Collaboration among IDSs allows users to benefit from the collective knowledge and information from their collaborators and achieve more accurate intrusion detection. However, most existing collaborative intrusion detection networks rely on the exchange of intrusion data which raises the privacy concern of participants. To overcome this problem, we propose SMURFEN: a knowledge-based intrusion detection network, which provides a platform for IDS users to effectively share their customized detection knowledge in an IDS community. An automatic knowledge propagation mechanism is proposed based on a decentralized two-level optimization problem formulation, leading to a Nash equilibrium solution which is proved to be scalable, incentive compatible, fair, efficient and robust. We evaluate our rule sharing mechanism through simulations and compare our results to existing knowledge sharing methods such as random gossiping and fixed neighbours sharing schemes.
dc.identifier.urihttps://hdl.handle.net/10012/24325
dc.language.isoen
dc.publisherUniversity of Waterloo
dc.relation.ispartofseriesComputer Science Technical Reports; CS-2011-06
dc.titleSMURFEN: A knowledge sharing intrusion detection network
dc.typeTechnical Report
uws.contributor.affiliation1Faculty of Mathematics
uws.contributor.affiliation2David R. Cheriton School of Computer Science
uws.peerReviewStatusUnreviewed
uws.scholarLevelFaculty
uws.typeOfResourceTexten

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