Joint Channel Estimation and Beamforming for Reconfigurable Intelligent Surface Aided MIMO Systems: Sparsity-Based Approach
Sung Hyuck Hong, and Junil Choi

TL;DR
This paper introduces a sparsity-based joint channel estimation and beamforming algorithm for RIS-aided MIMO systems, improving spectral efficiency by exploiting angular sparsity in mmWave/THz channels.
Contribution
It presents a novel algorithm that jointly estimates channels and optimizes beamforming in RIS-aided MIMO systems using sparsity, addressing challenges of cascaded channel estimation.
Findings
Significant spectral efficiency improvements demonstrated in simulations.
Effective exploitation of angular sparsity in mmWave/THz channels.
Enhanced channel estimation and passive beamforming performance.
Abstract
Continuous efforts have been devoted to integrate millimeter wave (mmWave) and terahertz (THz) bands into future communication standards in order to overcome the bandwidth shortage problem and achieve high data rates, primarily through developing accompanying technologies that can overcome the severe propagation loss and blockage associated with increased carrier frequency. One of the most notable accompanying technologies is reconfigurable intelligent surface (RIS), which uses a large number of low-cost passive reflecting elements to reconfigure the propagation environments for improved communication performance and coverage. Despite its numerous benefits, RIS can make channel estimation more difficult due to its lack of radio frequency (RF) chains that can perform baseband signal processing. In addition, the cascaded channel structure of RIS-aided communication systems, which differs…
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Taxonomy
TopicsAdvanced Wireless Communication Technologies · Millimeter-Wave Propagation and Modeling · Advanced Antenna and Metasurface Technologies
