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Near-Field Multipath MIMO Channel Model for Imperfect Surface Reflection
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Near-field (NF) communications is receiving renewed attention in the context of passive reconfigurable intelligent surfaces (RISs) due to their potentially extremely large dimensions. Although line-of-sight (LOS) links are expected to be dominant in NF scenarios, it is not a priori obvious whether or not the impact of non-LOS components can be neglected. Furthermore, despite being weaker than the LOS link, non-LOS links may be required to achieve multiplexing gains in multi-user multiple-input multiple-output (MIMO) scenarios. In this paper, we develop a generalized statistical NF model for RIS-assisted MIMO systems that extends the widely adopted point-scattering model to account for imperfect reflections at large surfaces like walls, ceilings, and the ground. Our simulation results confirm the accuracy of the proposed model and reveal that in various practical scenarios, the impact of non-LOS components is indeed non-negligible, and thus, needs to be carefully taken into consideration.
Forward citations
Cited by 2 Pith papers
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Near-field Liquid Crystal RIS Phase-Shift Design for Secure Wideband Illumination
A frequency-aware LC-RIS phase-shift design raises simulated worst-case secrecy rate to about 2 bits/symbol over 8 GHz at 60 GHz versus benchmarks that ignore the LC frequency response.
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Temperature-Resilient LC-RIS Phase-Shift Design for Multi-user Downlink Communications
A temperature-constrained phase-shift optimization for multi-user LC-RIS downlinks improves max-min SINR over temperature-neglecting designs in simulation.
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