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Throughput Maximization for IRS-Assisted Wireless Powered Hybrid NOMA and TDMA | IEEE Journals & Magazine | IEEE Xplore

Throughput Maximization for IRS-Assisted Wireless Powered Hybrid NOMA and TDMA


Abstract:

The high reflect beamforming gain of the intelligent reflecting surface (IRS) makes it appealing not only for wireless information transmission but also for wireless powe...Show More

Abstract:

The high reflect beamforming gain of the intelligent reflecting surface (IRS) makes it appealing not only for wireless information transmission but also for wireless power transfer. In this letter, we consider an IRS-assisted wireless powered communication network, where a base station (BS) transmits energy to multiple users grouped into multiple clusters in the downlink, and the clustered users transmit information to the BS in the manner of hybrid non-orthogonal multiple access and time division multiple access in the uplink. We investigate optimizing the reflect beamforming of the IRS and the time allocation among the BS’s power transfer and different user clusters’ information transmission to maximize the throughput of the network, and we propose an efficient algorithm based on the block coordinate ascent, semidefinite relaxation, and sequential rank-one constraint relaxation techniques to solve the resultant problem. Simulation results have verified the effectiveness of the proposed algorithm and have shown the impact of user clustering setup on the throughput performance of the network.
Published in: IEEE Wireless Communications Letters ( Volume: 10, Issue: 9, September 2021)
Page(s): 1944 - 1948
Date of Publication: 08 June 2021

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I. Introduction

Intelligent reflecting surface (IRS) can adaptively tune the phase shifts of its reflected signals by a large number of low-cost reflecting elements integrated on it to achieve high reflect beamforming gain [1], [2]. Therefore, leveraging IRS’s intelligent reflection has been regarded as a promising way to improve the spectrum and energy efficiency of future wireless communication networks [3], [4]. On the other hand, wireless power transfer has been introduced into the rapidly developing Internet-of-Things (IoT) networks to resolve the network devices’ energy limitation problem. Such networks are also called wireless power communication networks (WPCNs) [5], which provide an efficient way to realize sustainable IoT networks. Recently, both the transmit power minimization study in [6] and the weighted sum-rate maximization study in [7] have unveiled that IRSs can achieve high wireless power transfer and information transmission efficiency due to the high reflective beamforming gain. Therefore, integrating IRSs with WPCN is a concrete step toward the realization of low-cost sustainable IoT networks. In [8], the throughput maximization of a two-user IRS-assisted WPCN has been investigated, where IRS reflect beamforming, power allocation and time allocation have been jointly optimized. In [9], joint optimization of IRS reflect beamforming and network resource allocation for throughput maximization have been investigated in a multiuser IRS-assisted WPCN.

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