Analysis and Optimization of an Intelligent Reflecting Surface-assisted System with Interference
Yuhang Jia, Chencheng Ye, and Ying Cui

TL;DR
This paper investigates IRS-assisted wireless systems with interference, analyzing different CSI scenarios, deriving rate expressions, and proposing optimal phase shift designs to enhance system performance.
Contribution
It introduces a comprehensive analysis of IRS-assisted systems with interference, providing optimal phase shift solutions and conditions for performance gains under different CSI assumptions.
Findings
Derived tractable rate expressions for both CSI cases
Proposed globally optimal and iterative phase shift algorithms
Demonstrated significant performance gains through numerical results
Abstract
In this paper, we study an intelligent reflecting surface (IRS)-assisted system where a multi-antenna base station (BS) serves a single-antenna user with the help of a multi-element IRS in the presence of interference generated by a multi-antenna BS serving its own single-antenna user. The signal and interference links via the IRS are modeled with Rician fading. To reduce phase adjustment cost, we adopt quasi-static phase shift design where the phase shifts do not change with the instantaneous channel state information (CSI). We investigate two cases of CSI at the BSs, namely, the instantaneous CSI case and the statistical CSI case, and apply Maximum Ratio Transmission (MRT) based on the complete CSI and the CSI of the Line-of-sight (LoS) components, respectively. Different costs on channel estimation and beamforming adjustment are incurred in the two CSI cases. First, we obtain a…
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Taxonomy
TopicsAdvanced Wireless Communication Technologies · Ocular Disorders and Treatments · UAV Applications and Optimization
