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Cloud Data Center Intrusion Detection Model Based on Active Rules

机译:基于活动规则的云数据中心入侵检测模型

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Because the part of rules matching takes up a relatively high proportion in the current intrusion detection model and the rules adjustment can also influence the data accuracy, this paper proposes an anomalous detection model based on the active rules. Aiming at the problem of low rules adjustment efficiency in the current model, this paper designs the structure of active rules and a dynamic adjustment approach of active rules based on two-steps. This paper selects rules matching approach to update the matching process dynamically on the basis of activeness, and thus reducing the time complexity of intrusion detection system and false alarm rate. The experimental results indicate that the anomalous detection model relying on active rules proposed here can further improve the efficiency of rules matching and reduce the false alarm rate, performing a stronger practicability.
机译:由于规则的一部分匹配在当前入侵检测模型中占用相对较高的比例,并且规则调整也可以影响数据准确性,提出了一种基于主动规则的异常检测模型。针对当前模型中规则调整效率的低规则调整效率问题,本文设计了基于两步的主动规则的结构和动态调整方法。本文选择规则匹配方法,以便在激活度的基础上动态更新匹配过程,从而降低入侵检测系统的时间复杂性和误报率。实验结果表明,依赖于此处提出的积极规则的异常检测模型可以进一步提高规则匹配的效率并降低误报率,执行更强的实用性。

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