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Joint remote radio head activation and beamforming for energy efficient C-RAN

机译:联合远程无线电头激活和波束成形以实现节能C-RAN

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The cloud radio access network (C-RAN) has emerged as a promising architecture to provide extremely high throughput with fantastic energy efficiency (EE) performance. However, as all the RRHs need to be connected to the baseband unit pool (BBU) through transport links, the transmit power consumption becomes significant, which result in the demands of new researches in energy efficiency optimization. In this paper, we focus on the dynamic remote radio head (RRH) activation and network EE optimization in order to fully reap the benefits brought by Green C-RAN. First, an EE optimization problem that jointly considers RRH activation and group sparse beamforming is formulated, which is hard to solve due to its non-convexity nature. Thus, we utilize the weighted minimal mean square error (WMMSE) method to transfer the non-convex EE problem into a concave-convex fractional program problem. And the Lagrangian theory is exploited to assist the problem analysis and algorithm design. Specifically, the weighted group sparse beamforming algorithm is proposed. In this algorithm, we adopt the mixed l1=lp-norm to induce group sparsity in the beamformers, which corresponds to switching off RRHs. Simulation results will show that the proposed algorithm can significantly improve the EE for C-RAN.
机译:云无线电接入网络(C-RAN)已经成为一种有前途的架构,可以提供超高的吞吐量和出色的能源效率(EE)性能。但是,由于所有RRH都需要通过传输链路连接到基带单元池(BBU),因此发射功率消耗变得很大,这导致对能效优化进行新研究的需求。在本文中,我们专注于动态远程无线电头(RRH)激活和网络EE优化,以便充分利用Green C-RAN带来的好处。首先,提出了同时考虑RRH激活和群稀疏波束形成的EE优化问题,由于其非凸性,很难解决。因此,我们利用加权最小均方误差(WMMSE)方法将非凸EE问题转换为凹-分数阶程序问题。并利用拉格朗日理论来辅助问题分析和算法设计。具体地,提出了加权群稀疏波束形成算法。在该算法中,我们采用混合的l1 = lp-norm来诱导波束形成器中的组稀疏性,这对应于关闭RRH。仿真结果表明,该算法可以显着提高C-RAN的EE。

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