Near-Field Spatial Correlation for Extremely Large-Scale Array Communications
Zhenjun Dong, Yong Zeng

TL;DR
This paper investigates the near-field spatial correlation in XL-array communications, revealing its dependence on scatterer locations and distances, and introduces a generalized scatterer model to better understand near-field effects.
Contribution
It derives a novel integral expression for near-field spatial correlation considering scatterer locations and proposes a generalized one-ring model for better modeling.
Findings
Near-field correlation depends on scatterer distances and locations.
The derived expression includes the far-field correlation as a special case.
Near-field correlation is generally non-stationary across the array.
Abstract
Extremely large-scale array (XL-array) communications correspond to systems whose antenna sizes are so large that the scatterers and/or users may no longer be located in the far-field region. By discarding the conventional far-field uniform plane wave (UPW) assumption, this letter studies the near-field spatial correlation of XL-array communications, by taking into account the more generic non-uniform spherical wave (NUSW) characteristics. It is revealed that different from the far-field channel spatial correlation which only depends on the power angular spectrum (PAS), the near-field spatial correlation depends on the scattered power distribution not just characterized by their arriving angles, but also by the scatterers' distances, which is termed as power location spectrum (PLS). A novel integral expression is derived for the near-field spatial correlation in terms of the scatterers'…
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Taxonomy
TopicsAntenna Design and Optimization · Antenna Design and Analysis · Electromagnetic Compatibility and Measurements
