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LIDS: Learning Intrusion Detection System

机译:LIDS:学习入侵检测系统

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摘要

The detection of attacks against computer networks is becoming a harder problem to solve in the field of network security. The dexterity of the attackers, the developing technologies and the enormous growth of internet traffic have made it difficult for any existing intrusion detection system to offer a reliable service. However, a close examination of the problem shows that there usually exists a behavioral pattern in the attacks that can be learned and can be used to detect intrusions more effectively. Thus, there is a requirement for a system with learning and adapting capabilities for optimal performance. This paper discusses the design of a Learning Intrusion Detection System (LIDS) that includes a blackboard-based architecture with autonomous agents. It has the capability for online learning, which may result in better performance than present systems. This feature enables the system to adapt to changes in the network environment as it assimilates more network data.
机译:检测针对计算机网络的攻击已成为网络安全领域中一个更难解决的问题。攻击者的敏捷性,不断发展的技术以及互联网流量的巨大增长,使得现有的入侵检测系统很难提供可靠的服务。但是,仔细研究该问题后发现,攻击中通常存在一种行为模式,该行为模式可以学习并可以用来更有效地检测入侵。因此,需要具有学习和适应能力以实现最佳性能的系统。本文讨论了学习入侵检测系统(LIDS)的设计,该系统包括具有自主代理的基于黑板的体系结构。它具有在线学习的能力,这可能会导致比现有系统更好的性能。此功能使系统可以吸收更多网络数据,从而适应网络环境的变化。

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