基于tcam的网络入侵检测系统改进预过滤

Yeim-Kuan Chang, Ming-Li Tsai, Cheng-Chien Su
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引用次数: 7

摘要

随着互联网的日益增长,攻击和病毒的爆发严重影响着网络安全。网络入侵检测系统(NIDS)就是通过一套规则来识别这些网络攻击。然而,在NIDS中搜索多个模式是一项计算成本很高的任务。传统的基于软件的解决方案已不能满足当前高速网络对高带宽的需求。在过去,针对NIDS设计的预滤波是一种有效的技术,可以显著降低处理开销。类似于FNP的TCAM搜索引擎(FTSE)就是一个使用两阶段架构来检测输入字符串是否包含模式的例子。在本文中,我们提出了两种技术来提高FTSE的性能,利用三元内容可寻址存储器(TCAM)作为预滤波器来实现千兆性能。第一种技术执行w字节后缀模式匹配,而不是使用w字节前缀。第二种技术是从所有组而不是第一组中查找匹配结果。最后给出了使用Snort模式集和DEFCON数据包跟踪的仿真结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improved TCAM-Based Pre-Filtering for Network Intrusion Detection Systems
With the increasing growth of the Internet, the explosion of attacks and viruses significantly affects the network security. Network intrusion detection system (NIDS) is developed to identify these network attacks by a set of rules. However, searching for multiple patterns is a computationally expensive task in NIDS. Traditional software-based solutions can not meet the high bandwidth demanded in current high-speed networks. In the past, the pre-filtering designed for NIDS is an effective technique that can reduce the processing overhead significantly. A FNP- like TCAM searching engine (FTSE) is an example that uses an 2-stage architecture to detect whether an incoming string contains patterns. In this paper, we propose two techniques to improve the performance of FTSE that utilizes ternary content addressable memory (TCAM) as pre-filter to achieve gigabit performance. The first technique performs the w-byte suffix pattern match instead of using w-byte prefix. The second technique finds the matching results from all groups rather than first group. We finally present the simulation result using Snort pattern set and DEFCON packet traces.
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