Joint Resource Optimization for Multicell Networks with Wireless Energy Harvesting Relays
Ali A. Nasir, Duy T. Ngo, Xiangyun Zhou, Rodney A. Kennedy, and Salman, Durrani

TL;DR
This paper develops a joint resource allocation scheme for multicell networks with wireless energy harvesting relays, optimizing power and energy splitting to improve throughput and fairness under interference.
Contribution
It introduces a novel iterative convex approximation approach to solve complex nonconvex resource optimization problems in energy-harvesting relay networks.
Findings
Proposed algorithms converge to locally optimal solutions.
Joint optimization significantly outperforms individual parameter optimization.
Decode-and-forward relaying with variable timeslots yields higher throughput.
Abstract
This paper first considers a multicell network deployment where the base station (BS) of each cell communicates with its cell-edge user with the assistance of an amplify-and-forward (AF) relay node. Equipped with a power splitter and a wireless energy harvester, the self-sustaining relay scavenges radio frequency (RF) energy from the received signals to process and forward the information. Our aim is to develop a resource allocation scheme that jointly optimizes (i) BS transmit powers, (ii) received power splitting factors for energy harvesting and information processing at the relays, and (iii) relay transmit powers. In the face of strong intercell interference and limited radio resources, we formulate three highly-nonconvex problems with the objectives of sum-rate maximization, max-min throughput fairness and sum-power minimization. To solve such challenging problems, we propose to…
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