Antenna Selection With Beam Squint Compensation for Integrated Sensing and Communications
Ahmet M. Elbir, Asmaa Abdallah, Abdulkadir Celik, Ahmed M. Eltawil

TL;DR
This paper proposes a cost-effective hybrid beamforming architecture with antenna selection for THz-ISAC systems, addressing beam squint effects and reducing computational complexity through manifold optimization and neural network classification.
Contribution
It introduces a novel sparse array architecture and algorithms for antenna selection under beam squint, combining manifold optimization with neural network-based classification.
Findings
Significant reduction in subarray configuration options.
Effective beam squint compensation in hybrid beamforming.
Neural network accurately performs antenna selection.
Abstract
Next-generation wireless networks strive for higher communication rates, ultra-low latency, seamless connectivity, and high-resolution sensing capabilities. To meet these demands, terahertz (THz)-band signal processing is envisioned as a key technology offering wide bandwidth and sub-millimeter wavelength. Furthermore, THz integrated sensing and communications (ISAC) paradigm has emerged jointly access spectrum and reduced hardware costs through a unified platform. To address the challenges in THz propagation, THz-ISAC systems employ extremely large antenna arrays to improve the beamforming gain for communications with high data rates and sensing with high resolution. However, the cost and power consumption of implementing fully digital beamformers are prohibitive. While hybrid analog/digital beamforming can be a potential solution, the use of subcarrier-independent analog beamformers…
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Taxonomy
TopicsMillimeter-Wave Propagation and Modeling · Microwave Engineering and Waveguides · Antenna Design and Optimization
