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Industrial Control System Intrusion Detection Model based on LSTM Attack Tree

机译:基于LSTM&攻击树的工业控制系统入侵检测模型

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摘要

With the rapid development of the Industrial Internet, the network security risks faced by industrial control systems (ICSs) are becoming more and more intense. How to do a good job in the security protection of industrial control systems is extremely urgent. For traditional network security, industrial control systems have some unique characteristics, which results in traditional intrusion detection systems that cannot be directly reused on it. Aiming at the industrial control system, this paper constructs all attack paths from the hacker's perspective through the attack tree model, and uses the LSTM algorithm to identify and classify the attack behavior, and then further classify the attack event by extracting atomic actions. Finally, through the constructed attack tree model, the results are reversed and predicted. The results show that the model has a good effect on attack recognition, and can effectively analyze the hacker attack path and predict the next attack target.
机译:随着工业互联网的快速发展,工业控制系统(ICS)面临的网络安全风险变得越来越强烈。如何在工业控制系统的安全保护方面做好的工作非常紧急。对于传统的网络安全,工业控制系统具有一些独特的特性,这导致传统的入侵检测系统无法直接重复使用。针对工业控制系统,本文通过攻击树模型构建了来自黑客的角度的所有攻击路径,并使用LSTM算法来识别和分类攻击行为,然后通过提取原子操作进一步分类攻击事件。最后,通过构造的攻击树模型,结果颠倒并预测。结果表明,该模型对攻击识别有良好的影响,可以有效地分析黑客攻击路径并预测下一个攻击目标。

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