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On the Energy and Spectral Efficiency Tradeoff in Massive MIMO-Enabled HetNets With Capacity-Constrained Backhaul Links

机译:具有容量受限回程链路的大规模启用MIMO的HetNet的能量和频谱效率权衡

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摘要

In this paper, we propose a general framework to study the tradeoff between energy efficiency (EE) and spectral efficiency (SE) in massive multiple-input-multiple-output-enabled heterogenous networks while ensuring proportional rate fairness among users and taking into account the backhaul capacity constraint. We aim at jointly optimizing user association, spectrum allocation, power coordination, and the number of activated antennas, which is formulated as a multi-objective optimization problem maximizing EE and SE simultaneously. With the help of weighted Tchebycheff method, it is then transformed into a single-objective optimization problem, which is a mixed-integer non-convex problem and requires unaffordable computational complexity to find the optimum. Hence, a low-complexity effective algorithm is developed based on primal decomposition, where we solve the power coordination and number of antenna optimization problem and the user association and spectrum allocation problem separately. Both theoretical analysis and numerical results demonstrate that our proposed algorithm can fast converge within several iterations and significantly improve both the EE-SE tradeoff performance and rate fairness among users compared with other algorithms.
机译:在本文中,我们提出了一个通用框架来研究大规模多输入多输出使能异构网络中能量效率(EE)和频谱效率(SE)之间的权衡,同时确保用户之间的比例速率公平性并考虑到回程容量约束。我们旨在共同优化用户关联,频谱分配,功率协调和激活天线的数量,这被表述为同时最大化EE和SE的多目标优化问题。然后借助加权Tchebycheff方法将其转化为单目标优化问题,该问题是混合整数非凸问题,并且需要难以承受的计算复杂度才能找到最佳解。因此,开发了一种基于原始分解的低复杂度有效算法,在该算法中,我们分别解决了功率协调和天线优化问题数以及用户关联和频谱分配问题。理论分析和数值结果均表明,与其他算法相比,我们提出的算法可以在几次迭代中快速收敛,并显着提高用户之间的EE-SE权衡性能和速率公平性。

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