RIS-Assisted Interference Mitigation for Uplink NOMA
Paper in proceeding, 2023

Non-orthogonal multiple access (NOMA) has become a promising technology for next-generation wireless communications systems due to its capability to provide access for multiple users on the same resource. In this paper, we consider an uplink power-domain NOMA system aided by a reconfigurable intelligent surface (RIS) in the presence of a jammer that aims to maximize its interference on the base station (BS) uplink receiver. We consider two kinds of RISs, a regular RIS whose elements can only change the phase of the incoming wave, and an RIS whose elements can also attenuate the incoming wave. Our aim is to minimize the total power transmitted by the user terminals under quality-of-service constraints by controlling both the propagation from the users and the jammer to the BS with help of the RIS. The resulting objective function and constraints are both non-linear and non-convex, so we address this problem using numerical optimization. Our numerical results show that the RIS can help to dramatically reduce the per user required transmit power in an interference-limited scenario.

NOMA

Phase shift

RIS

Optimization

Author

Azadeh Tabeshnezhad

Chalmers, Electrical Engineering, Communication, Antennas and Optical Networks

A. Lee Swindlehurst

University of California at Irvine (UCI)

Tommy Svensson

Chalmers, Electrical Engineering, Communication, Antennas and Optical Networks

IEEE Wireless Communications and Networking Conference, WCNC

15253511 (ISSN)

Vol. 2023-March
9781665491228 (ISBN)

2023 IEEE Wireless Communications and Networking Conference, WCNC 2023
Glasgow, United Kingdom,

End-to-end slicing and data-driven automation of next generation cellular networks with mobile edge clouds (SEMANTIC)

European Commission (EC) (EC/H2020/861165), 2020-01-01 -- 2023-12-31.

Areas of Advance

Information and Communication Technology

Subject Categories

Telecommunications

Communication Systems

Signal Processing

DOI

10.1109/WCNC55385.2023.10119107

More information

Latest update

8/9/2024 1