Digital Twin-Based Beamforming for Interference Mitigation in AF Relay MIMO Systems
Alexander Bonora, Anna V. Guglielmi, Davide Scazzoli, Marco Giordani, Maurizio Magarini, Vineeth Teeda, Stefano Tomasin

TL;DR
This paper presents a prediction-assisted optimization framework using digital twins and neural networks to design beamforming in AF relay MIMO systems without full CSI, improving interference mitigation and robustness.
Contribution
Introduces a novel PAO framework combining neural network-based localization and digital twin-guided optimization for beamforming without relying on full CSI.
Findings
Validated with real mmWave measurements
Achieves robust beamforming despite localization errors
Reduces dependence on real-world measurements
Abstract
Beamforming in multiple-input multiple-output (MIMO) systems should take interference mitigation into account. However, for beamform design, accurate channel state information (CSI) is needed, which is often difficult to obtain due to channel variability, feedback overhead, or hardware constraints. For example, amplify-and-forward (AF) relays passively forward signals without measurement, precluding full CSI acquisition to and from the relay. To address these issues, this paper introduces a novel prediction-assisted optimization (PAO) framework for beamform design in AF relay-assisted multiuser MIMO systems. The proposed solution in the AF relay aims at maximizing the signal-plus-interference-to-noise ratio (SINR). Unlike other methods, PAO relies solely on received power measurements, making it suitable for scenarios where CSI is unreliable or unavailable. PAO consists of two stages: a…
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Taxonomy
TopicsMillimeter-Wave Propagation and Modeling · Indoor and Outdoor Localization Technologies · Advanced MIMO Systems Optimization
