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A COGNITIVE ADAPTIVE ARTIFICIAL IMMUNITY ALGORITHM FOR DATABASE INTRUSION DETECTION SYSTEMS

机译:数据库入侵检测系统的认知自适应人工免疫算法。

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Applying artificial immune system in database security is a challenging trend to increase detection rate for internal intrusive users or administrators. Negative selection algorithm and danger theory are artificial immunity algorithms that provide promoting solutions for obtaining privacy-preserving data. This paper develops a mixed innate and adaptive immunity algorithm based on negative selection algorithm and danger they to detect unknown intrusive users based on multi-layer pattern matching. A secret sharing mechanism is applied to monitor database administrators? transactions in a lowest possible time. The proposed immunity algorithm is based on a continuous cognitive adaptive methodology for using detected users as antigens for future faster response to unknown patterns. The key features of the presented immunity algorithm are its uniqueness for each detector, multi-layer detection and pattern matching, diversification in detecting unknown users at all levels of security, self-protection by using detected users as antigens for future detection process, and finally learning and memorization for storing previously detected users in antigen table to be used in pattern detection process. The conducted experimental results of the developed artificial immunity algorithm are compared to five algorithms and have achieved a high detection rate, low false positive and low false negative alarms.
机译:在数据库安全中应用人工免疫系统是提高内部侵入式用户或管理员的检测率的挑战性趋势。否定选择算法和危险理论是人工免疫算法,可提供促进解决方案的方法来获取隐私保护数据。本文提出了一种基于否定选择算法的混合先天与自适应免疫算法,并基于多层模式匹配的危险性来检测未知入侵用户。是否应用了秘密共享机制来监视数据库管理员?在尽可能短的时间内进行交易。所提出的免疫算法基于一种连续的认知自适应方法,该方法用于将检测到的用户用作抗原,以便将来对未知模式做出更快的响应。提出的免疫算法的关键特征是其对于每个检测器的唯一性,多层检测和模式匹配,在各种安全级别上检测未知用户的多样性,通过将检测到的用户用作抗原来进行未来检测过程的自我保护,以及最后学习和记忆,以便将先前检测到的用户存储在抗原表中以用于模式检测过程。将所开发的人工免疫算法的实验结果与五种算法进行比较,取得了较高的检测率,低的误报率和低的误报率。

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