Detection of anomalous computer session activity

H. S. Vaccaro, G. Liepins
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引用次数: 213

Abstract

The authors discusses Wisdom and Sense (W&S), a computer security anomaly detection system. W&S is statistically based. It automatically generates rules from historical data and, in terms of those rules, identifies computer transactions that are at variance with historically established usage patterns. Issues addressed include how W&S generates rules from a necessarily small sample of all possible transactions, how W&S deals with inherently categorical data, and how W&S assists system security officers in their review of audit logs. Preliminary results with W&S show that the software does periodically detect anomalies of high interest even in data though to be free of such events.<>
检测异常的计算机会话活动
讨论了一种计算机安全异常检测系统——智慧与感知(W&S)。W&S是基于统计的。它从历史数据自动生成规则,并根据这些规则识别与历史上建立的使用模式不一致的计算机事务。解决的问题包括W&S如何从所有可能的事务的必要的小样本中生成规则,W&S如何处理固有的分类数据,以及W&S如何协助系统安全人员审查审计日志。W&S的初步结果表明,即使在没有此类事件的数据中,该软件也能周期性地检测出高兴趣的异常
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