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Throughput-optimal user association in energy harvesting relay-assisted cellular networks

机译:吞吐量最优用户在能量收集中继辅助蜂窝网络中的关联

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We study the user association problem targeting on the throughput optimization for energy harvesting (EH) relay-assisted cellular networks where the base stations (BSs) are powered by grid power and the relay stations (RSs) are powered by renewable energy. Since the harvested energy of RS is stochastic and not always large enough, our challenge is how to match the user association with the energy arrival rate of RS so as to maximize the throughput of the network. For this purpose, we propose a dynamic bias based user association policy which means the user is associated with the BS/RS that provides the strongest-biased-average-received-power, and maximize the throughput by optimizing the bias with different energy constraints. Using tools from stochastic geometry and continuous time Markov chain (CTMC), we first formulate the problem as a throughput-optimal and energy-constrained problem with respect to the bias. Then, by solving the optimization problem, we derive the closed expression of the optimal bias maximizing the throughput. Numerical results show that our dynamic bias based user association policy can always outperform that without bias, especially when the RSs are energy-limited.
机译:我们研究了对能量收集的吞吐量优化的用户关联问题(EH)中继辅助蜂窝网络,其中基站(BSS)由网格功率和中继站(RSS)供电,由可再生能量供电。由于Rs的收获能量是随机而且并不总是足够大,因此我们的挑战是如何将用户关联与RS的能量到达率相匹配,以便最大化网络的吞吐量。为此目的,我们提出了一种基于动态的基于偏置的用户关联策略,这意味着用户与提供最强偏置的平均接收功率的BS / RS相关联,并通过优化具有不同能量约束的偏差来最大化吞吐量。使用来自随机几何和连续时间Markov链(CTMC)的工具,首先将问题作为偏向偏差的吞吐量最佳和能量受限问题。然后,通过解决优化问题,我们得出了最大化吞吐量的最佳偏差的封闭表达。数值结果表明,我们的动态偏置基于的用户关联策略总是可以在没有偏差的情况下倾销,特别是当RSS是能量有限的时。

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