Joint Beamforming Design for Multiuser MISO Downlink Aided by a Reconfigurable Intelligent Surface and a Relay
Mohanad Obeed, Anas Chaaban

TL;DR
This paper proposes a joint beamforming approach for multi-user MISO downlink systems utilizing both a reconfigurable intelligent surface and a relay, optimizing power efficiency through advanced mathematical techniques.
Contribution
It introduces a novel cooperative system combining RIS and relay, with optimized beamforming strategies for various relay modes and phase shift discretizations, enhancing energy efficiency.
Findings
Full-duplex relay with RIS outperforms other configurations.
RIS with continuous phase shifts yields better performance at high QoS.
Increasing RIS elements improves performance more with a relay present.
Abstract
Reconfigurable intelligent surfaces (RIS) have drawn considerable attention recently due to their controllable scattering elements that are able to direct electromagnetic waves into desirable directions. Although RISs share some similarities with relays, the two have fundamental differences impacting their performance. To harness the benefits of both relaying and RISs, a multi-user communication system is proposed in this paper wherein a relay and an RIS cooperate to improve performance in terms of energy efficiency. Using singular value decomposition (SVD), semidefinite programming (SDP), and function approximations, we propose different solutions for optimizing the beamforming matrices at the base-station (BS), the relay, and the phase shifts at the RIS to minimize the total transmit power subject to quality-of-service (QoS) constraints. The problem is solved in different cases when…
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Taxonomy
TopicsAdvanced Wireless Communication Technologies · Advanced Antenna and Metasurface Technologies · Satellite Communication Systems
