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Anti-jamming transmissions with learning in heterogenous cognitive radio networks

机译:异构认知无线电网络中学习的抗干扰传输

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This paper investigates the interactions between a secondary user (SU) with frequency hopping and a jammer with spectrum sensing in heterogenous cognitive radio networks. The power control interactions are formulated as a multi-stage anti-jamming game, in which the SU and jammer repeatedly choose their power allocation strategies over multiple channels simultaneously without interfering with primary users. We propose a power allocation strategy for the SU to achieve the optimal transmission power and channel with unaware parameters such as the channel gain of the opponent based on reinforcement learning algorithms including Q-learning for and WoLF-Q. Simulation results show that the proposed power allocation strategy can efficiently improve the SU's performance against both sweeping jammers and smart jammers with learning in heterogenous cognitive radio networks.
机译:本文研究了具有跳频和带有频谱传感的次级用户(SU)与异构认知无线电网络的频谱感测的相互作用。功率控制交互被配制为多级抗干扰游戏,其中SU和干扰器在同时在多个通道上反复选择其功率分配策略,而不会干扰主用户。我们提出了一种基于加强学习算法,包括诸如对手的信道增益,包括Q-Learning的Q-Learning and和Wolf-Q等参数的最佳传输功率和信道来实现最佳传输功率和信道。仿真结果表明,拟议的电力分配策略可以有效地改善苏对扫描干扰和智能干扰器的性能,在异构认知无线电网络中学习。

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