论文标题

基于学习的蜜罐游戏,用于无人机网络中的协作防御

A Learning-based Honeypot Game for Collaborative Defense in UAV Networks

论文作者

Wang, Yuntao, Su, Zhou, Benslimane, Abderrahim, Xu, Qichao, Dai, Minghui, Li, Ruidong

论文摘要

无人驾驶汽车(无人机)的扩散为任何随时随地提供了按需服务提供的新机会,但它也使无人机面临各种网络威胁。低/中等相互作用的蜜罐被认为是一种有希望的轻量级防御,可以积极保护移动互联网,尤其是无人机网络。现有作品主要集中在蜜罐设计和攻击模式识别上,激励无人机的参与(例如,在蜜罐中共享被困的攻击数据)以协作抵抗分布式和复杂的攻击的激励问题仍然不足。本文提出了一种基于游戏的合作防御方法,以解决网络动力学和无人机的多维私人信息(例如有效的防御数据(VDD)体积,通信延迟和无人机成本)的最佳,公平和可行的激励机制设计。具体来说,我们首先在局部和完整信息不对称方案下在无人机之间开发蜜罐游戏。然后,我们设计了一种合同理论方法,以通过部分信息不对称地解决最佳的VDD奖励合同设计问题,同时确保真实性,公平性和计算效率。此外,在完整的信息不对称下,我们设计了一种基于增强学习的分布式方法,以动态设计快速变化网络中不同类型的无人机的最佳合同。实验模拟表明,与现有解决方案相比,该提出的计划可以激发无人机在VDD共享中的合作并提高防御效果。

The proliferation of unmanned aerial vehicles (UAVs) opens up new opportunities for on-demand service provisioning anywhere and anytime, but it also exposes UAVs to various cyber threats. Low/medium-interaction honeypot is regarded as a promising lightweight defense to actively protect mobile Internet of things, especially UAV networks. Existing works primarily focused on honeypot design and attack pattern recognition, the incentive issue for motivating UAVs' participation (e.g., sharing trapped attack data in honeypots) to collaboratively resist distributed and sophisticated attacks is still under-explored. This paper proposes a novel game-based collaborative defense approach to address optimal, fair, and feasible incentive mechanism design, in the presence of network dynamics and UAVs' multi-dimensional private information (e.g., valid defense data (VDD) volume, communication delay, and UAV cost). Specifically, we first develop a honeypot game between UAVs under both partial and complete information asymmetry scenarios. We then devise a contract-theoretic method to solve the optimal VDD-reward contract design problem with partial information asymmetry, while ensuring truthfulness, fairness, and computational efficiency. Furthermore, under complete information asymmetry, we devise a reinforcement learning based distributed method to dynamically design optimal contracts for distinct types of UAVs in the fast-changing network. Experimental simulations show that the proposed scheme can motivate UAV's collaboration in VDD sharing and enhance defensive effectiveness, compared with existing solutions.

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