将人工智能集成到Snort IDS中

Xianjin Fang, Ling-bing Liu
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引用次数: 4

摘要

Snort是一种使用规则驱动语言的开源网络入侵检测和防御系统(IDS/IPS),其缺点是无法检测新的攻击。本文探讨了如何将人工智能集成到Snort IDS/IPS中,使IDS/IPS能够适应网络并检测异常。对于Snort IDS的预处理器,集成了人工神经网络(ANN)等学习算法。因此,人工智能通过首先了解网络并衡量安全专业人员的反应来减少误报,从而减轻了一些安全专业人员的工作负担,其次,通过适应网络中的变化来识别新的攻击。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Integrating Artificial Intelligence into Snort IDS
Snort is an open source network intrusion detection and prevention system (IDS/IPS) utilizing a rule-driven language, its shortcoming is unable to detect new attacks. This paper explores how to integrate Artificial Intelligence into Snort IDS/IPS, which enables IDS/IPS adapt to networks and detect anomalies. As for preprocessors of Snort IDS, a learning algorithm such as artificial neural network (ANN) is integrated into it. So Artificial Intelligence alleviates some of the security professionals' work load by first learning about a network and gauging reactions from a security professional to reduce false positives, and second, by adapting to changes in the network to identify new attacks.
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