Multi-User Holographic MIMO Surfaces: Channel Modeling and Spectral Efficiency Analysis
Li Wei, Chongwen Huang, George C. Alexandropoulos, Wei E. I. Sha,, Zhaoyang Zhang, Merouane Debbah, Chau Yuen

TL;DR
This paper develops an electromagnetic-compliant channel model for multi-user holographic MIMO surfaces, analyzing spectral efficiency and proposing a hardware-efficient ZF precoder using Neumann series expansion.
Contribution
It extends an EM-compliant channel model to multi-user scenarios and introduces a novel ZF precoder leveraging Neumann series for large antenna arrays.
Findings
The EM-compliant model captures antenna coupling effects.
The proposed ZF precoder reduces computational complexity.
Spectral efficiency analysis shows the effectiveness of the model and precoder.
Abstract
The multi-user Holographic Multiple-Input and Multiple-Output Surface (MU-HMIMOS) paradigm, which is capable of realizing large continuous apertures with minimal power consumption, has been recently considered as an energyefficient solution for future wireless networks, offering increased flexibility in impacting electromagnetic (EM) wave propagation according to the desired communication, localization, and sensing objectives. The tractable channel modeling in MU-HMIMOS wireless systems is one of the most critical research challenges, mainly due to the coupling effect induced by the excessively large number of closely spaced patch antennas. In this paper, we focus on this challenge for the downlink of multi-user MIMO communications and extend an EM-compliant channel model to multiuser case, which is expressed in the wavenumber domain using the Fourier plane wave approximation. Based on…
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