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A Survey on Game-Theoretic Approaches for Intrusion Detection and Response Optimization

机译:入侵检测和响应优化的游戏理论方法调查

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Intrusion Detection Systems (IDS) are key components for securing critical infrastructures, capable of detecting malicious activities on networks or hosts. However, the efficiency of an IDS depends primarily on both its configuration and its precision. The large amount of network traffic that needs to be analyzed, in addition to the increase in attacks' sophistication, renders the optimization of intrusion detection an important requirement for infrastructure security, and a very active research subject. In the state of the art, a number of approaches have been proposed to improve the efficiency of intrusion detection and response systems. In this article, we review the works relying on decision-making techniques focused on game theory and Markov decision processes to analyze the interactions between the attacker and the defender, and classify them according to the type of the optimization problem they address. While these works provide valuable insights for decision-making, we discuss the limitations of these solutions as a whole, in particular regarding the hypotheses in the models and the validation methods. We also propose future research directions to improve the integration of game-theoretic approaches into IDS optimization techniques.
机译:入侵检测系统(IDS)是用于保护关键基础架构的关键组件,能够检测网络或主机上的恶意活动。但是,ID的效率主要取决于其配置及其精度。除了攻击复杂性的增加之外,还需要分析的大量网络流量,使入侵检测的优化是基础设施安全的重要要求,以及一个非常活跃的研究主题。在现有技术中,已经提出了许多方法来提高入侵检测和响应系统的效率。在本文中,我们审查了依赖于博弈论和马尔可夫决策过程的决策技术的作品,以分析攻击者和后卫之间的互动,并根据他们地址的优化问题的类型对它们进行分类。虽然这些作品为决策提供了有价值的见解,但我们讨论了整个这些解决方案的局限性,特别是关于模型中的假设和验证方法。我们还提出了未来的研究方向,以改善游戏理论方法进入IDS优化技术的整合。

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