Beyond Diagonal RIS in Multiuser MIMO: Graph Theoretic Modeling and Optimal Architectures with Low Complexity
Zheyu Wu, Bruno Clerckx

TL;DR
This paper models and identifies low-complexity, optimal architectures for Beyond Diagonal RIS in multiuser MIMO systems using graph theory, achieving performance comparable to fully-connected RIS with significantly reduced circuit complexity.
Contribution
It introduces a graph-theoretic framework to find optimal BD-RIS architectures that balance performance and circuit complexity, including novel designs like band-connected and stem-connected RIS.
Findings
Optimal BD-RIS architectures match fully-connected RIS performance.
Proposed architectures reduce complexity to O(ND) from O(N^2).
Simulation confirms enhanced performance and complexity tradeoffs.
Abstract
Reconfigurable intelligent surfaces (RIS) is regarded as a key enabler of wave/analog-domain beamforming, processing, and computing in future wireless communication systems. Recently, Beyond Diagonal RIS (BD-RIS) has been proposed as a generalization of conventional RIS, offering enhanced design flexibility thanks to the presence of tunable impedances that connect RIS elements. However, increased interconnections lead to high circuit complexity, which poses a significant practical challenge. In this paper, we address the fundamental open question: What is the class of BD-RIS architectures that achieves the optimal performance in a RIS-aided multiuser multi-input multi-output (MIMO) system? By modeling BD-RIS architectures using graph theory, we identify a class of BD-RIS architectures that achieves the optimal performance--matching that of fully-connected RIS--while maintaining low…
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Taxonomy
TopicsAdvanced MIMO Systems Optimization · Cooperative Communication and Network Coding · Advanced Wireless Communication Technologies
