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Channel Selection in Multi-channel Multi-user RF Energy Harvesting Cognitive Radio Networks

机译:多信道多用户射频能量收集认知无线电网络中的信道选择

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Recently in wireless networks, spectrum scarcity and energy consumption are becoming important issues. Radio Frequency Energy Harvesting Cognitive Radio (RF-EH-CR) networks play a key role to solve this problem. Channel selection is an important aspect which affects the throughput of the CR network. In this paper, we compare the performance of DRQoSUCB and DRCA reinforcement learning algorithms for the network of energy harvesting cognitive radio nodes. The secondary nodes are non-cooperative and are not aware of each other's state. The EH-RCA policy is seen to be better than EH-RQUCB policy as number of user increases.
机译:近年来,在无线网络中,频谱稀缺和能量消耗正在成为重要的问题。射频能量收集认知无线电(RF-EH-CR)网络在解决此问题方面起着关键作用。信道选择是影响CR网络吞吐量的重要方面。在本文中,我们比较了DRQoSUCB和DRCA强化学习算法在能量收集认知无线电节点网络中的性能。次节点是不合作的,并且不知道彼此的状态。随着用户数量的增加,EH-RCA策略被认为比EH-RQUCB策略更好。

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