Joint Spatial Division and Coaxial Multiplexing for Downlink Multi-User OAM Wireless Backhaul
Wen-Xuan Long, Rui Chen, Marco Moretti, Jian Xiong, Jiandong Li

TL;DR
This paper introduces a novel multi-user OAM wireless backhaul scheme using uniform circular arrays, enabling interference-free multiplexing and achieving higher spectral and energy efficiencies than traditional MIMO systems.
Contribution
It proposes a joint spatial division and coaxial multiplexing scheme for downlink multi-user OAM wireless backhaul, with a new position estimation method and interference elimination techniques, extending to MU-OAM-MIMO systems.
Findings
Channel matrices depend only on SBS positions, simplifying estimation.
Proposed interference elimination improves spectral efficiency.
Simulation confirms near-ideal performance of the scheme.
Abstract
Orbital angular momentum (OAM) at radio frequency (RF) provides a novel approach of multiplexing a set of orthogonal modes on the same frequency channel to achieve high spectral efficiencies (SEs). However, the existing research on OAM wireless communications is mainly focused on pointto-point transmission in the line-of-sight (LoS) scenario. In this paper, we propose an overall scheme of the downlink multi-user OAM (MU-OAM) wireless backhaul based on uniform circular arrays (UCAs) for broadcasting networks, which can achieve the joint spatial division and coaxial multiplexing (JSDCM). A salient feature of the proposed downlink MU-OAM wireless backhaul systems is that the channel matrices are completely characterized by the position of each small base station (SBS), independent of the numbers of subcarriers and antennas, which avoids estimating large channel matrices required by the…
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Taxonomy
TopicsOrbital Angular Momentum in Optics · Optical Wireless Communication Technologies · Millimeter-Wave Propagation and Modeling
