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Switch-On/Off Policies for Energy Harvesting Small Cells through Distributed Q-Learning

机译:通过分布式Q学习获得小型电池的能量的开关策略

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The massive deployment of small cells (SCs) represents one of the most promising solutions adopted by 5G cellular networks to meet the foreseen huge traffic demand. The high number of network elements entails a significant increase in the energy consumption. The usage of renewable energies for powering the small cells can help reduce the environmental impact of mobile networks in terms of energy consumption and also save on electric bills. In this paper, we consider a two-tier cellular network architecture where SCs can offload macro base stations and solely rely on energy harvesting and storage. In order to deal with the erratic nature of the energy arrival process, we exploit an ON/OFF switching algorithm, based on reinforcement learning, that autonomously learns energy income and traffic demand patterns. The algorithm is based on distributed multi-agent Q-learning for jointly optimizing the system performance and the self-sustainability of the SCs. We analyze the algorithm by assessing its convergence time, characterizing the obtained ON/OFF policies, and evaluating an offline trained variant. Simulation results demonstrate that our solution is able to increase the energy efficiency of the system with respect to simpler approaches. Moreover, the proposed method provides an harvested energy surplus, which can be used by mobile operators to offer ancillary services to the smart electricity grid.
机译:小型基站(SC)的大规模部署代表了5G蜂窝网络采用的最有前途的解决方案之一,可以满足可预见的巨大流量需求。大量的网络元素会导致能耗的显着增加。使用可再生能源为小型蜂窝供电可帮助减少移动网络在能源消耗方面对环境的影响,并节省电费。在本文中,我们考虑了两层蜂窝网络体系结构,其中SC可以卸载宏基站,而仅依赖于能量收集和存储。为了应对能量到达过程的不稳定特性,我们在增强学习的基础上采用了开/关切换算法,该算法可自主学习能量收入和交通需求模式。该算法基于分布式多主体Q学习,共同优化系统性能和SC的自我可持续性。我们通过评估算法的收敛时间,表征获得的开/关策略以及评估离线训练的变体来分析算法。仿真结果表明,相对于更简单的方法,我们的解决方案能够提高系统的能源效率。而且,所提出的方法提供了收集的能量剩余,移动运营商可以使用该剩余能量来向智能电网提供辅助服务。

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