Skip to content
Preprint

Unlocking Downlink NOMA with FARIS: Joint Clustering and Surface Configuration Design

Aug 2026 · 0 citations · 62 references
Engineering

TL;DR

A network sum-rate maximization problem that jointly optimizes user clustering, NOMA power allocation, FARIS amplification gains, discrete phase shifts, and fluid element selection under quality-of-service, reflected-power, and hardware constraints is formulated.

Abstract

This paper investigates a fluid active reconfigurable intelligent surface (FARIS)-aided downlink non-orthogonal multiple access (NOMA) system. We formulate a network sum-rate maximization problem that jointly optimizes user clustering, NOMA power allocation, FARIS amplification gains, discrete phase shifts, and fluid element selection under quality-of-service, reflected-power, and hardware constraints. To address the resulting nonconvex mixed-integer problem, we develop a two-stage framework comprising distance-based interleaved clustering for constructing successive-interference-cancellation (SIC)-friendly user groups and per-cluster alternating optimization. The resulting subproblems are handled using geometric programming (GP), fractional programming (FP), majorization-minimization (MM) with mixed-integer phase optimization, and the cross-entropy method (CEM). Numerical results demonstrate rapid convergence, near-optimal performance relative to brute-force search (BFS)-based optimum, and consistently outperforms the benchmarks. These results verify the effectiveness of jointly integrating FARIS and NOMA for high-rate downlink transmission.

View source

Similar papers

2026

Power Minimization in Active RIS-Assisted NOMA-MEC Networks

In this letter, we investigate a mobile edge computing (MEC) system enabled by an active reconfigurable intelligent surface (ARIS)-assisted uplink non-orthogonal multiple access (NOMA) transmission. We propose an ARIS-assisted uplink NOMA-MEC scheme, termed as ARIS-NOMA, in which multiple users perform local computatio...

Kang-Ning Zhao, Jia Zhu, Yi-Zhi Li et al. · 0 citations
Preprint Aug 2026

Geometry-Aware DRL for Multi-Subband Scheduling in Satellite-Assisted UAM Networks

GeoSetPPO is proposed, a geometry-aware set-attention proximal policy optimization (PPO) method that outputs per-UAM discrete association and subband decisions with permutation-invariant representations that demonstrates stable convergence, higher returns, and favorable reward and schedule-feasibility performance relat...

Hyung-Joo Moon, Sangha Park, Chan-Byoung Chae et al. · 0 citations
Preprint Aug 2026

Robust Joint Beamforming and Configuration Design in FARIS-Aided Systems

In this paper, we propose a robust transmission design for multi-user systems assisted by a fluid active reconfigurable intelligent surface (FARIS), which enables both active reflection and dynamic port selection and thereby offers enhanced flexibility, under imperfect channel state information (CSI). We formulate a ro...

Hong-Bae Jeon, Yonghwi Kim, Hyung-Joo Moon et al. · 0 citations
Open access Aug 2026

Joint Beamforming and Phase Shifts Design for RIS-Enabled RSMA-ISAC Systems

This letter investigates the sensing-centric design of reconfigurable intelligent surface (RIS)-enabled rate-splitting multiple access-integrated sensing and communication (RSMA-ISAC) systems. Specifically, we propose a new beam-gain approximation method to enhance the sensing beam gain while satisfying communication q...

Xue-Jun Cheng, Qian Zhang, Y. Jiao et al. · 1 citation
Open access Aug 2026

Max-min fair multigroup multicast in an IRS-aided MISO system

IRS has received much attention recently and is envisioned as a revolutionary technology for 6G communication networks. In this paper, we consider a multicast traffic pattern in an IRS-aided single-cell MISO communication system, where an IRS is deployed to assist a multi-antenna AP in transmitting independent data s...

Guo-Dong Zhang, Hao-Jing Zhang, Rui-Fang Wang · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.