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Energy-Efficient On-Demand Cloud Radio Access Networks Virtualization

机译:节能按需云无线电接入网络虚拟化

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By leveraging the elasticity of cloud computing, cloud radio access network (C-RAN) facilitates on-demand radio and computing resource provisioning. In this paper, we propose an energy-efficient on-demand C-RAN virtualization model which dynamically provisions virtual C-RAN according to service demand. The energy consumption of the virtual C-RAN is minimized by jointly optimizing the remote radio head (RRH) selection and computing resource provisioning. The network energy consumption minimization problem is challenging because of the interdependence between the RRH selection and the computing resource provisioning. We propose the energy-efficient on-demand C-RAN virtualization (REACT) algorithm to solve the problem in two steps. First, we cluster RRHs into groups using the hierarchical clustering analysis (HCA) algorithm and assign a BBU to each RRH group for the baseband signal processing. Second, we determine the RRH selection by optimizing the cooperative beamforming. The performance of the proposed algorithm is evaluated through extensive simulations, which shows the proposed algorithm reduces up to 62% of the network energy consumption as compared to a baseline algorithm.
机译:通过利用云计算的弹性,云无线电接入网络(C-RAN)有助于按需无线电和计算资源供应。在本文中,我们提出了一种节能的按需C-RAN虚拟化模型,可根据服务需求动态地规定虚拟C-RAN。通过联合优化远程无线电头(RRH)选择和计算资源配置,最小化虚拟C-RAN的能量消耗。由于RRH选择与计算资源供应之间的相互依存,网络能量消耗最小化问题是具有挑战性的。我们提出了节能按需C-RAN虚拟化(React)算法,以解决两个步骤的问题。首先,使用分层聚类分析(HCA)算法将RRH集群群集成组,并将BBU分配给基带信号处理的每个RRH组。其次,我们通过优化协作波束成形来确定RRH选择。所提出的算法的性能是通过大量的模拟,其示出了所提出的算法相比于基线算法最多减少到网络的能量消耗的62 %进行评价。

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