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A Secure Full-Duplex Wireless Circulator Enabled by Non-Reciprocal Beyond-Diagonal RIS

delete2026-03-02
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PRE
AI
Z
Ziang Liu
B
Bruno Clerckx
DOI:10.1109/JSAC.2026.3669470delete
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Abstract

Abstract

En 中文
Beyond-diagonal reconfigurable intelligent surface (BD-RIS) has arisen as a promising technology for enhancing wireless communication systems by enabling flexible and intelligent wave manipulation. This is achieved through the interconnections among the ports of the impedance network, enabling wave reconfiguration when they flow through the surface. Thus, the output wave at one port depends on waves impinging on neighboring ports, allowing non-local control of both phase and magnitude. Non-reciprocal (NR)-BD-RIS further enhances this capability by breaking circuit reciprocity and, consequently, channel reciprocity. In contrast to conventional reciprocal (R)-BD-RIS and diagonal (D)-RIS that are constrained by circuit and channel reciprocity such that they only allow bidirectional communications, i.e., $\text {UE}_{1} \rightleftarrows \text {UE}_{2}$ , NR-BD-RIS can additionally enable uni-directional communications, that is, $\text {UE}_{1} \rightarrow \text {UE}_{2} \rightarrow \text {UE}_{3}$ , hence effectively enabling a wireless circulator. Specifically, this paper introduces a novel application of NR-BD-RIS in full-duplex (FD) wireless circulators, where multiple FD devices communicate via an NR-BD-RIS. This system is particularly beneficial for secure transmission, as it enforces one-way communication among FD devices, suppresses signal from all other users (UE), and thus prevents eavesdropping. In addition, a physics-compliant system model is considered by incorporating structural scattering, also known as specular reflection. By accounting for this effect, the advantages of NR-BD-RIS are further validated. Specifically, we formulate an sum-rate maximization problem and propose an iterative optimization algorithm that employs block coordinate descent (BCD) and penalty dual decomposition (PDD) methods. Numerical evaluations illustrate that NR-BD-RIS outperforms conventional R-BD-RIS and D-RIS in terms of sum-rate and secrecy rate.
Keywords:
BD-RIS
eavesdropping
FD wireless circulator
non-reciprocity
structural scattering
secure transmission

Journal

IEEE Journal on Selected Areas in Communications cover
IEEE Journal on Selected Areas in Communications
IF:
17.2
Papers:
6.4K
Citations:
3.1W

Organization

I
imperial college london
Scholars:
9.5K
Papers: 4.2K
Citations: 0