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Distributed energy-efficiency maximization in energy-harvesting uplink NOMA relay ad-hoc networks: Game-theoretic modeling and analysis

机译:能量收集上行链路中继ad-hoc网络中的分布式能效最大化:游戏理论模型和分析

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In this paper, the problem of distributed energy-efficiency maximization in energy-harvesting uplink non-orthogonal multiple-access (NOMA) relay ad-hoc networks is considered. Particularly, the aim is to allow each user to maximize its energy-efficiency (EE) in a distributed manner over an energy-harvesting amplify-and-forward relay, while satisfying its quality-of-service (QoS) constraint. To this aim, the centralized energy-efficiency maximizing power allocation (C-EE-MAX-PA) problem is formulated as a multi-objective optimization problem, which is NP-complete, and thus is computationally-expensive. In turn, a distributed game-theoretic power control algorithm is proposed, whereby each user iteratively updates its transmit energy such that its EE is maximized, ultimately converging to the unique generalized Nash equilibrium (GNE), and with proven Pareto-optimality. Simulation results are presented to validate the proposed algorithm, which is shown to yield the Pareto-optimal solution of the C-EE-MAX-PA problem; however, at lower computational-complexity, while satisfying the users' QoS constraints. Moreover, light is shed on the effect of the minimum rate requirement as well as the relay harvested energy on the energy-efficiency of the network users. Lastly, this work constitutes a step towards developing sustainable and computationally-efficient algorithmic solutions for EE maximization in NOMA relay ad-hoc networks, and thus, discussions on some of the potential applications as well as practical aspects of the proposed algorithm are given. (c) 2020 Elsevier B.V. All rights reserved.
机译:在本文中,考虑了能量收集上行链路非正交多址(NOMA)中继ad-hoc网络的分布式能效最大化的问题。特别地,目的是允许每个用户以分布式方式在能量收集放大和前进继电器上以分布式方式最大化其能量效率(EE),同时满足其服务质​​量(QoS)约束。为此目的,集中式能效最大化功率分配(C-EE-MAX-PA)问题被制定为多目标优化问题,该问题是NP-Transpers,因此是计算上的。反过来,提出了一种分布式游戏理论功率控制算法,其中每个用户迭代地更新其发射能量,使得其EE最大化,最终会聚到独特的广义纳什均衡(GNE),并且具有经过验证的Pareto-Optimaly。提出了仿真结果以验证所提出的算法,该算法显示为产生C-EE-MAX-PA问题的Pareto-Optimal解决方案;但是,在计算复杂性较低,同时满足用户的QoS约束。此外,光于最小速率要求的效果以及继电器对网络用户的节能收获的能量。最后,这项工作构成了开发可持续和计算高效的算法解决方案,用于在NOMA中继ad-hoc网络中开发EE最大化的算法解决方案,因此给出了关于一些潜在应用以及所提出的算法的实际方面的讨论。 (c)2020 Elsevier B.v.保留所有权利。

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