基于可再生能源基站的HetNets自适应用户关联

Dantong Liu, Yue Chen, K. K. Chai, Tiankui Zhang, Chengkang Pan
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引用次数: 29

摘要

在本文中,我们提出了具有可再生能源供电基站(BSs)的异构网络(HetNets)中的自适应用户关联,其中所有BSs都假设仅由可再生能源收集的能量供电。不同层次的基站在能量收集率、最大发射功率和部署密度方面有所不同。在传统的电网供电的HetNets中,用户关联是基于假设所有的BSs都能以恒定的功率传输,而在可再生能源供电的HetNets中,BSs的发射功率是不同的。将自适应用户关联定义为一个优化问题,其目标是在基站可用能量依赖于某一时间段的收获能量的情况下,使接收的用户设备数量最大化,无线电资源消耗最小化。我们首先提出了一种最优离线算法,其中使用梯度下降法来实现伪最优用户关联解。仿真结果验证了基于梯度下降的用户关联算法的性能。考虑到实际实现,我们进一步提出了一种启发式在线用户关联算法,该算法能够基于剩余可用网络资源对进入的用户进行及时的用户关联决策。仿真结果表明,该算法在ue接受率和关联延迟之间取得了很好的平衡。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Adaptive user association in HetNets with renewable energy powered base stations
In this paper, we propose adaptive user association in the Heterogeneous Networks (HetNets) with renewable energy powered base stations (BSs), where all the BSs are assumed solely powered by the harvested energy from the renewable energy sources. BSs across tiers differ in terms of energy harvesting rate, maximum transmit power and deployment density. In conventional grid-powered HetNets, user association is determined based on the assumption that all the BSs can transmit with constant powers, whereas the transmit powers of BSs vary in the HetNets with renewable energy powered BSs. The adaptive user association is formulated as an optimization problem which aims to maximize the number of accepted user equipments (UEs) and minimize the radio resource consumption in the scenario where the available energy of BSs is dependent on the harvested energy in a certain period of time. We first propose an optimal offline algorithm, where the gradient descent method is used to achieve the pseudo-optimal user association solution. The performance of proposed gradient descent based user association algorithm is verified by simulation results. Considering practical implementation, we further propose a heuristic online user association algorithm which is capable of making timely user association decision for the incoming UEs based on remaining available network resources. Simulation result indicates the proposed online algorithm achieves good tradeoff between UEs acceptance ratio and association delay.
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