Optimal Repair Strategy Against Advanced Persistent Threats Under Time-Varying Networks
Zixuan Wang, Jiliang Li, Yuntao Wang, Zhou Su, Shui Yu, and Weizhi, Meng

TL;DR
This paper introduces a game-theoretical, real-time optimal defense strategy for advanced persistent threats in time-varying networks, addressing a gap in existing static network-focused approaches.
Contribution
It models APT defense as a dynamic game and develops an online control mechanism to derive near-optimal strategies efficiently in time-varying environments.
Findings
Achieves near-optimal defense strategies within 54481 ms.
Reduces resource occupancy by 9.64% compared to existing methods.
Outperforms static network approaches in stability and resource utilization.
Abstract
Advanced persistent threat (APT) is a kind of stealthy, sophisticated, and long-term cyberattack that has brought severe financial losses and critical infrastructure damages. Existing works mainly focus on APT defense under stable network topologies, while the problem under time-varying dynamic networks (e.g., vehicular networks) remains unexplored, which motivates our work. Besides, the spatiotemporal dynamics in defense resources, complex attackers' lateral movement behaviors, and lack of timely defense make APT defense a challenging issue under time-varying networks. In this paper, we propose a novel game-theoretical APT defense approach to promote real-time and optimal defense strategy-making under both periodic time-varying and general time-varying environments. Specifically, we first model the interactions between attackers and defenders in an APT process as a dynamic APT repair…
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Taxonomy
TopicsInformation and Cyber Security · Network Security and Intrusion Detection · Terrorism, Counterterrorism, and Political Violence
