English

Analyzing URA Geometry for Enhanced Spatial Multiplexing and Extended Near-Field Coverage

Signal Processing 2025-06-19 v1

Abstract

With the deployment of large antenna arrays at high frequency bands, future wireless communication systems are likely to operate in the radiative near-field. Unlike far-field beam steering, near-field beams can be focused within a spatial region of finite depth, enabling spatial multiplexing in both the angular and range dimensions. This paper derives the beamdepth for a generalized uniform rectangular array (URA) and investigates how array geometry influences the near-field beamdepth and the limits where near-field beamfocusing is achievable. To characterize the near-field boundary in terms of beamfocusing and spatial multiplexing gains, we define the effective beamfocusing Rayleigh distance (EBRD) for a generalized URA. Our analysis reveals that while a square URA achieves the narrowest beamdepth, the EBRD is maximized for a wide or tall URA. However, despite its narrow beamdepth, a square URA may experience a reduction in multiuser sum rate due to its severely constrained EBRD. Simulation results confirm that a wide or tall URA achieves a sum rate of 3.5 X more than that of a square URA, benefiting from the extended EBRD and improved spatial multiplexing capabilities.

Keywords

Cite

@article{arxiv.2506.15470,
  title  = {Analyzing URA Geometry for Enhanced Spatial Multiplexing and Extended Near-Field Coverage},
  author = {Ahmed Hussain and Asmaa Abdallah and Abdulkadir Celik and Ahmed M. Eltawil},
  journal= {arXiv preprint arXiv:2506.15470},
  year   = {2025}
}
R2 v1 2026-07-01T03:23:38.404Z