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首页> 外文期刊>Eurasip Journal on Wireless Communications and Networking >Cache-enabled physical-layer secure game against smart uAV-assisted attacks in b5G NOMA networks
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Cache-enabled physical-layer secure game against smart uAV-assisted attacks in b5G NOMA networks

机译:支持缓存的物理层安全游戏,针对B5G NOMA网络中的智能无人机辅助攻击

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Abstract This paper investigates cache-enabled physical-layer secure communication in a no-orthogonal multiple access (NOMA) network with two users, where an intelligent unmanned aerial vehicle (UAV) is equipped with attack module which can perform as multiple attack modes. We present a power allocation strategy to enhance the transmission security. To this end, we propose an algorithm which can adaptively control the power allocation factor for the source station in NOMA network based on reinforcement learning. The interaction between the source station and UAV is regarded as a dynamic game. In the process of the game, the source station adjusts the power allocation factor appropriately according to the current work mode of the attack module on UAV. To maximize the benefit value, the source station keeps exploring the changing radio environment until the Nash equilibrium (NE) is reached. Moreover, the proof of the NE is given to verify the strategy we proposed is optimal. Simulation results prove the effectiveness of the strategy.
机译:摘要本文调查了具有两个用户的无正交多址(NOMA)网络中的高速缓存的物理层安全通信,其中智能无人驾驶飞行器(UAV)配备有可以作为多攻击模式执行的攻击模块。我们提出了一种功率分配策略来提高传输安全性。为此,我们提出了一种算法,该算法可以根据增强学习自适应地控制诺马网络中源站的功率分配因子。源站和UAV之间的相互作用被认为是动态游戏。在游戏的过程中,源站根据UAV上的攻击模块的当前工作模式适当地调整功率分配因子。为了最大限度地提高益处价值,源站将继续探索更改的无线电环境,直到达到纳什均衡(NE)。而且,给出了NE的证明来验证我们提出的策略是最佳的。仿真结果证明了策略的有效性。

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