A Spatially Non-stationary Fading Channel Model for Simulation and (Semi-) Analytical Study of ELAA-MIMO
Jiuyu Liu, Yi Ma, Rahim Tafazolli

TL;DR
This paper introduces a new spatially non-stationary fading channel model for ELAA-MIMO systems, enabling realistic simulations and analytical insights into channel capacity distributions and the effects of non-stationarity on MIMO receiver performance.
Contribution
It proposes a novel non-stationary channel model for ELAA-MIMO that captures key factors affecting spatial non-stationarity and matches measurement data, facilitating advanced capacity analysis.
Findings
Channel capacity follows skew-normal distribution.
Capacity distribution approximates Gaussian or Weibull depending on user location.
Non-stationarity impacts MIMO receiver performance.
Abstract
In this paper, a novel spatially non-stationary fading channel model is proposed for multiple-input multiple-output (MIMO) system with extremely-large aperture service-array (ELAA). The proposed model incorporates three key factors which cause the channel spatial non-stationarity: 1) link-wise path-loss; 2) shadowing effect; 3) line-of-sight (LoS)/non-LoS state. With appropriate parameter configurations, the proposed model can be used to generate computer-simulated channel data that matches the published measurement data from practical ELAA-MIMO channels. Given such appealing results, the proposed fading channel model is employed to study the cumulative distribution function (CDF) of ELAA-MIMO channel capacity. For all of our studied scenarios, it is unveiled that the ELAA-MIMO channel capacity obeys the skew-normal distribution. Moreover, the channel capacity is also found close to the…
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Taxonomy
TopicsAdvanced MIMO Systems Optimization · Advanced Wireless Network Optimization · Millimeter-Wave Propagation and Modeling
