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Joint Channel Allocation and Power Control Based on Long Short-Term Memory Deep Q Network in Cognitive Radio Networks

机译:基于长短期内存深Q网络在认知无线电网络中的联合通道分配和功率控制

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Efficient spectrum resource management in cognitive radio networks (CRNs) is a promising method that improves the utilization of spectrum resource. In particular, the power control and channel allocation are of top priorities in spectrum resource management. Nevertheless, the joint design of power control and channel allocation is an NP-hard problem and the research is still in the preliminary stage. In this paper, we propose a novel joint approach based on long short-term memory deep Q network (LSTM-DQN). Our objective is to obtain the channel allocation schemes of the access points (APs) and the power control strategies of the secondary users (SUs). Specifically, the received signal strength information (RSSI) collected by the microbase stations is used as the input of LSTM-DQN. In this way, the collection of RSSI can be shared between users. After the training is completed, the APs are capable of selecting channels with small interference while the SUs may access the authorized channels in an underlay operation mode without knowing any knowledge about the primary users (PUs). Experimental results show that the channels are allocated to the APs with a lower probability of collision. Moreover, the SUs can adjust their power control strategies quickly to avoid the harmful interference to the PUs when the environment parameters change randomly. Consequently, the overall performance of CRNs and the utilization of spectrum resources are improved significantly compared to existing popular solutions.
机译:认知无线电网络(CRNS)中的高效频谱资源管理是一种提高频谱资源利用率的有希望的方法。特别地,功率控制和信道分配是频谱资源管理中的首要任务。尽管如此,功率控制和渠道分配的联合设计是一个NP-COLLION问题,研究仍处于初步阶段。在本文中,我们提出了一种基于长短期内存深Q网络(LSTM-DQN)的新型联合方法。我们的目标是获取接入点(AP)和辅助用户(SUS)的电源控制策略的通道分配方案。具体地,由微轴站收集的接收信号强度信息(RSSI)用作LSTM-DQN的输入。通过这种方式,可以在用户之间共享RSSI的集合。训练完成后,APS能够选择具有小干扰的通道,而SUS可以在底层操作模式下访问授权通道,而不知道主用户(PU)的知识。实验结果表明,通道被分配给具有较低碰撞概率的AP。此外,SUS可以快速调节其功率控制策略,以避免当环境参数随机更改时对PU的有害干扰。因此,与现有流行的解决方案相比,CRN的总体性能和频谱资源的利用率显着提高。

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