内存高效模式匹配入侵检测系统

S. Dhivya, D. Dhakchianandan, A. Gowtham, P. Sujatha, A. Kannan
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引用次数: 5

摘要

在当今网络化的世界中,通过网络进行的通信正在以惊人的速度加强。并非所有的沟通都是可信的,任何地方、任何时间都可能出现不当行为。如果对正常流量进行轻微的修改以欺骗入侵检测系统,那么传统系统可能无法有效识别。在此基础上,提出了一种新型攻击检测系统。由于任意数量的用户都可以使用一个网页,因此维护资源的可用性并根据他们的需要将它们分配给活动用户是非常必要的。多线程概念用于共享每个客户端可以使用的资源。属性选择算法(Attribute Selection Algorithm)是weka中的特征提取算法,用于生成与用户请求相关的特征,有助于获得更准确的结果。级联二叉搜索树提高了内存效率。有效地存储模式,从而有效地完成对攻击存在的搜索。在此基础上,提出了一种内存利用率高、检测攻击和降低误报率的入侵检测系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Memory efficacious pattern matching intrusion detection system
In today's web-enabled world, the communications happening over the network is intensifying at a capacious rate. Not all communications are credible and malpractice can arise anywhere, anytime. If the normal traffic is slightly modified to delude the intrusion detection system, then the traditional systems might not be able to discern the same effectively. Thus, a system that could detect and ferret out the novel attacks has been proposed. Since any number of users can use a web page, maintaining the availability of the resources and allocating them to the active users as per their need is very essential. The multi-thread concept is used to share the resources that each client can use. Attribute Selection Algorithm is used as the feature extraction algorithm in weka, to yield those relevant features pertaining to the user's request and helps in achieving a more accurate result. Memory efficiency is brought in with the cascading binary search tree. The patterns are efficiently stored and hence the search for the presence of an attack is accomplished effectively. An Intrusion Detection System which is memory efficient and effective enough in detecting attacks and reducing the false positives is thus proposed.
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