UAV-Based 3D Spectrum Sensing: Insights on Altitude, Bandwidth, Trajectory, and Effective Antenna Patterns on REM Reconstruction
Mushfiqur Rahman, Sung Joon Maeng, Ismail Guvenc, Chau-Wai Wong, Mihail Sichitiu, Jason A. Abrahamson, Arupjyoti Bhuyan

TL;DR
This paper analyzes how UAV altitude, trajectory, bandwidth, and antenna patterns affect the accuracy of 3D spectrum sensing and REM reconstruction, proposing methods to improve robustness and precision in dynamic conditions.
Contribution
It provides a comprehensive evaluation of REM reconstruction techniques and introduces a framework to improve accuracy considering UAV and environmental factors.
Findings
Simple Kriging and GPR are robust under sparse sampling.
UAV altitude impacts accuracy in a tri-phasic manner.
Antenna pattern calibration enhances REM reconstruction.
Abstract
Spectrum sensing and the generation of 3D Radio Environment Maps (REMs) are essential for enabling spectrum sharing within cognitive radio networks. While Uncrewed Aerial Vehicles (UAVs) offer high-mobility 3D sensing, REM accuracy is challenged by dynamic flight behaviors, where fluctuations in UAV speed and direction introduce measurement inconsistencies. Furthermore, the structural influence of the airframe itself impacts the onboard antenna's radiation characteristics. In this paper, we present a comprehensive analysis of REM reconstruction at various altitudes, using real-world data from a fixed base station tower and a ground-vehicle source. We evaluate diverse reconstruction methodologies, including Kriging (simple, ordinary, and trans-Gaussian), matrix completion, and Gaussian process regression (GPR) for recovery from sparse samples. Our results indicate that simple Kriging and…
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Taxonomy
TopicsUAV Applications and Optimization · Indoor and Outdoor Localization Technologies · Cognitive Radio Networks and Spectrum Sensing
