Overcoming BS Down-Tilt for Air-Ground ISAC Coverage: Antenna Design, Beamforming and User Scheduling
Lingyi Zhu, Zhongxiang Wei, Fan Liu, Jianjun Wu, Xiao-Wei Tang, Christos Masouros, Shanpu Shen

TL;DR
This paper introduces a novel antenna design with omni-steering capabilities to enable full-space sensing and communication for air-ground systems, optimizing beamforming and user scheduling for enhanced coverage.
Contribution
A new antenna structure with omni-steering plate is proposed, enabling simultaneous air-ground beam steering and full-space sensing and communication.
Findings
Outperforms baseline algorithms in sum mutual information and MSE.
Provides 360-degree sensing coverage.
Effective user scheduling and target alignment demonstrated.
Abstract
Integrated sensing and communication holds great promise for low-altitude economy applications. However, conventional downtilted base stations primarily provide sectorized forward lobes for ground services, failing to sense air targets due to backward blind zones. In this paper, a novel antenna structure is proposed to enable air-ground beam steering, facilitating simultaneous full-space sensing and communication (S&C). Specifically, instead of inserting a reflector behind the antenna array for backlobe mitigation, an omni-steering plate is introduced to collaborate with the active array for omnidirectional beamforming. Building on this hardware innovation, sum S&C mutual information (MI) is maximized, jointly optimizing user scheduling, passive coefficients of the omni-steering plate, and beamforming of the active array. The problem is decomposed into two subproblems: one for…
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Taxonomy
TopicsDirection-of-Arrival Estimation Techniques · UAV Applications and Optimization · Radar Systems and Signal Processing
