Fluid Antenna System-Enabled UAV Communications in the Finite Blocklength Regime
Xusheng Zhu, Kai-Kit Wong, Hanjiang Hong, Han Xiao, Hao Xu, Tuo Wu, and Chan-Byoung Chae

TL;DR
This paper presents a detailed performance analysis and optimization framework for fluid antenna system-enabled UAV relaying networks operating in the finite blocklength regime, considering diverse propagation environments and energy efficiency.
Contribution
It introduces a novel methodology for analyzing FAS-enabled UAV links, deriving closed-form BLER expressions, and optimizing system parameters considering practical overheads.
Findings
FAS can significantly improve power efficiency in UAV communications.
Operational overhead impacts the optimal number of antenna ports.
Different deployment strategies are optimal for rural and urban scenarios.
Abstract
This paper develops a comprehensive framework for the performance analysis of fluid antenna system (FAS)-enabled unmanned aerial vehicle (UAV) relaying networks operating in the finite blocklength regime. Our contribution lies in establishing a rigorous methodology for characterizing system reliability under diverse propagation environments. Closed-form expressions for the block error rate (BLER) are derived by employing a tractable eigenvalue-based approximation of the spatially correlated UAV-to-user link, whose underlying independent diversity components are modeled as Nakagami- fading. This approach addresses both line-of-sight (LoS) dominant rural and probabilistic non-line-of-sight (NLoS) urban scenarios. Furthermore, a high signal-to-noise ratio (SNR) asymptotic analysis is developed, revealing the fundamental diversity order of the UAV-to-user link. Based on this, we further…
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Taxonomy
TopicsUAV Applications and Optimization · Air Traffic Management and Optimization · Advanced Wireless Communication Technologies
