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Dynamic Functional Split Selection in Energy Harvesting Virtual Small Cells Using Temporal Difference Learning

机译:使用时间差异学习的能量收集虚拟小细胞动态功能分离选择

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Flexible functional split in Cloud Radio Access Network (CRAN) is a promising approach to overcome the capacity and latency challenges in the fronthaul. In such architecture, the baseband processing takes place partially at local base stations and the remaining processes are executed at the central cloud. On the other hand, we have seen a recent trend of powering base stations with ambient energy sources to achieve both environmental sustainability and profit advantages. As the base stations become smaller and deployed in densified manner, it is evident that baseband processing power consumption has a huge share in the total base station power consumption breakdown. Given that such base stations are powered by energy harvesting sources, energy availability conditions the decision on where to place each baseband function in the system. This work focuses on applying reinforcement learning techniques, in particular Q-learning and SARSA, for optimal placement of baseband functional split options in virtualized small cells that are solely powered by energy harvesting sources. In addition, a comparison of such online optimization solution with respect to offline performance bounds is provided.
机译:云无线电接入网络(CRAN)中灵活的功能拆分是一种有希望的方法,克服Fronthaul中的能力和延迟挑战。在这种架构中,基带处理部分地发生在本地基站处,并且在中央云处执行剩余过程。另一方面,我们看到了最近具有环境能源的电力基站的最新趋势,实现了环境可持续性和利润优势。由于基站以致密化的方式较小并且部署,因此显而易见的是,基带处理功耗在总基站功耗故障中具有巨大的份额。鉴于这种基站由能量收集来源提供供电,能量可用性条件对放置系统中每个基带功能的位置的决定。这项工作侧重于应用强化学习技术,特别是Q学习和Sarsa,以便在虚拟化的小单元中最佳地放置基带功能分裂选项,该选项仅由能量收集来源供电。另外,提供了对离线性能界限的这种在线优化解决方案的比较。

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