Joint Communication and Sensing in RIS-Assisted MIMO System Under Mutual Coupling
Dilki Wijekoon, Amine Mezghani, and Ekram Hossain

TL;DR
This paper investigates a RIS-assisted MIMO system for joint communication and sensing, accounting for mutual coupling effects, and proposes an optimization framework to balance sensing accuracy and communication efficiency.
Contribution
It introduces a physically-consistent model incorporating mutual coupling and develops a joint optimization method for RIS and beamforming to enhance system performance.
Findings
Mutual coupling significantly improves system realism and performance.
A trade-off exists between sensing accuracy and communication efficiency.
Bistatic and monostatic configurations have distinct performance impacts.
Abstract
This paper considers a downlink Reconfigurable Intelligent Surface (RIS)-assisted Joint Communication and Sensing (JCAS) system within a physically-consistent setting, accounting for the effect of mutual coupling between RIS elements arising due to sub-element spacing. The system features a multiple-input multiple-output (MIMO) terrestrial base station (BS) and explores both monostatic and bistatic radar configurations to enable joint communication and sensing. In the monostatic configuration, both the transmitter and receiver are at the same location, while the bistatic configuration separates the transmitter and receiver spatially. System performance is evaluated using Fisher Information (FI) to quantify sensing accuracy and Mutual Information (MI) to measure communication efficiency. To achieve an optimal balance between communication and sensing, the RIS reflective coefficients and…
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Taxonomy
TopicsAdvanced Wireless Communication Technologies · Radar Systems and Signal Processing · Full-Duplex Wireless Communications
