Bibliography Details

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Dingbang Xu and Peng Ning, "A Flexible Approach to Intrusion Alert Anonymization and Correlation," Securecomm and Workshops, 2006, aug 2006.
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A Flexible Approach to Intrusion Alert Anonymization and Correlation
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Authors:
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Dingbang Xu Peng Ning
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Published:
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Securecomm and Workshops,, 2006
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URL:
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http://discovery.csc.ncsu.edu/pubs/SecureComm06a.pdf
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ENTRY DATE:
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2008-06-16
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ABSTRACT:
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Intrusion alert data sets are critical for security research
such as alert correlation. However, privacy concerns about
the data sets from different data owners may prevent data
sharing and investigation. It is always desirable and sometimes mandatory to anonymize sensitive data in alert sets
before they are shared and analyzed. To address privacy
concerns, in this paper we propose three schemes to flexibly perform alert anonymization. These schemes are closely
related but can also be applied independently. In Scheme
I, we generate artificial alerts and mix them with original
alerts to help hide original attribute values. In Scheme II,
we further map sensitive attributes to random values based
on concept hierarchies. In Scheme III, we propose to partition an alert set into multiple subsets and apply Scheme
II in each subset independently. To evaluate privacy protection and guide alert anonymization, we define local privacy
and global privacy, and use entropy to compute their values. Though we emphasize alert anonymization techniques
in this paper, to examine data usability, we further perform
correlation analysis for anonymized data sets. We focus on
estimating similarity values between anonymized attributes
and building attack scenarios from anonymized data sets.
Our experimental results demonstrated the effectiveness of
our techniques.
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