Antenna Combiner for Periodic Broadcast V2V Communication Under Relaxed Worst-Case Propagation
Chouaib Bencheikh Lehocine, Erik G. Str\"om, Fredrik, Br\"annstr\"om

TL;DR
This paper extends the analysis of an analog antenna combining network for V2V communication by modeling time-varying channel parameters and proposing a robust phase slope design to maintain performance under realistic, dynamic highway conditions.
Contribution
It introduces an analytical framework for the ACN sum-SNR with time-varying path parameters and proposes a phase slope design rule that is robust to these variations.
Findings
The phase slope design rule maintains high SNR despite time variations.
Affine models effectively approximate the time-varying channel parameters.
Numerical validation confirms the robustness of the proposed design.
Abstract
The performance of a previously developed analog combining network (ACN) of phase shifters for vehicle-to-vehicle communication is investigated. The original ACN was designed to maximize the sum of the signal-to-noise ratios (SNRs) for consecutive, broadcast, periodic cooperative awareness messages when communication is over a dominant path whose angle of arrival (AOA) is constant over the duration of packets. In this work, we relax this scenario by allowing the dominant path AOA and path-loss (PL) to be time-variant. Assuming a highway scenario with line of sight (LOS) propagation between vehicles, we use affine approximations to model the time variation of different path quantities, including the PL, the relative distance-dependent phase shift between antennas, and the AOA-dependent far-field function of the antennas. Using these approximations, we analytically derive the ACN…
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Taxonomy
TopicsMillimeter-Wave Propagation and Modeling · Advanced MIMO Systems Optimization · Vehicular Ad Hoc Networks (VANETs)
