Circuit-Compliant Optimization of Dynamic Metasurface Antennas for Near-Field Localization
Ioannis Gavras, George C. Alexandropoulos

TL;DR
This paper develops a circuit-compliant optimization framework for dynamic metasurface antennas that improves near-field localization accuracy by accounting for mutual coupling effects and providing efficient hybrid beamforming solutions.
Contribution
It introduces a mutual-coupling-aware optimization framework for DMA-based localization, with novel approximations and closed-form solutions validated through numerical analysis.
Findings
Proposed DMA design outperforms existing multi-antenna architectures.
Introduced first- and second-order approximations for efficient optimization.
Validated the approach with numerical experiments confirming accuracy.
Abstract
This paper presents an optimization framework for near-field localization with Dynamic Metasurface Antenna (DMA) receivers. This metasurface technology offers enhanced angular and range resolution realizing efficient hybrid Analog and Digital (A/D) BeamForming (BF) with sub-wavelength-spaced metamaterials of tunable responses. However, the vast majority of the state-of-the-art DMA designs is based on an idealized model for their reception operation, which neglects several practical aspects, such as the inevitable mutual coupling among the densely deployed metamaterials within a given aperture. Capitalizing on a recent circuit-compliant active metasurface model, we present a novel mutual-coupling-aware framework for localization-optimized hybrid A/D BF weights at the reception DMA. To deal with the intrinsic complexity of the deployed model, we introduce first- and second-order…
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Taxonomy
TopicsAntenna Design and Analysis · Advanced Antenna and Metasurface Technologies · Energy Harvesting in Wireless Networks
MethodsDual Multimodal Attention
