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Two-Level Packet Inspection Using Sequential Differentiate Method

机译:使用顺序差分法的两级包检查

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Deep Packet Inspection is a vital task in network security applications such as Firewalls and Intrusion Detection Systems (IDS). Patterns based detectors used in Packet Inspection implement multi-pattern matching algorithms to check whether the packet payload have a specified patterns in a patterns set. Computational cost is one of the major concerns of the commercial Intrusion Detection Systems (IDSs). Although these systems are proven to be promising in detecting network abnormalities, they need to check all the patterns to identify a suspicious abnormal in the worst case. This is time consuming. This paper proposes an efficient two-level IDS, which applies a statistical patterns approach and a Sequential Differentiate Method (SeqDM) for the detection of unauthorized packets. The two-level system converts high-faceted character space into a low-faceted character space. It is able to reduce the computational cost and integrates groups of patterns into an identical patterns. The integration of patterns reduces the cost involved for valid packet identification. The final decision is made on the integrated low-faceted character space. Finally, the proposed two-level system is evaluated using DARPA 1999 IDS dataset for the detection of unauthorized packets.
机译:在防火墙和入侵检测系统(IDS)等网络安全应用程序中,深度数据包检查是一项至关重要的任务。数据包检查中使用的基于模式的检测器实现多模式匹配算法,以检查数据包有效载荷是否在模式集中具有指定的模式。计算成本是商业入侵检测系统(IDS)的主要问题之一。尽管这些系统被证明在检测网络异常方面很有前途,但它们需要检查所有模式以在最坏的情况下识别可疑异常。这很费时间。本文提出了一种有效的两级IDS,该IDS采用统计模式方法和顺序区分方法(SeqDM)来检测未经授权的数据包。两级系统将高面字符空间转换为低面字符空间。它能够减少计算成本,并将模式组集成到相同的模式中。模式的集成减少了有效数据包识别所涉及的成本。最终决定由集成的低面字符空间决定。最后,使用DARPA 1999 IDS数据集对提议的两级系统进行评估,以检测未经授权的数据包。

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