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Scalable Fluid Antenna Systems: A New Paradigm for Array Signal Processing

  • Tuo Wu
  • , Ye Tian*
  • , Jie Tang
  • , Kangda Zhi
  • , Maged Elkashlan
  • , Kin-Fai Tong
  • , Naofal Al-Dhahir
  • , Chan-Byoung Chae
  • , Matthew C. Valenti
  • , George K. Karagiannidis
  • , Kwai-Man Luk
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Most existing antenna array-based source localization methods rely on fixed-position arrays (FPAs) and strict assumptions about source field conditions (near-field or far-field), which limits their effectiveness in complex, dynamic real-world scenarios where high-precision localization is required. In contrast, this paper introduces a novel scalable fluid antenna system (SFAS) that can dynamically adjust its aperture configuration to optimize performance for different localization tasks. Within this framework, we develop a two-stage source localization strategy based on the exact spatial geometry (ESG) model: the first stage uses a compact aperture configuration for initial direction-of-arrival (DOA) estimation, while the second stage employs an expanded aperture for enhanced DOA and range estimation. The proposed approach eliminates the traditional need for signal separation or isolation to classify source types and enables a single SFAS array to achieve high localization accuracy without field-specific assumptions, model simplifications, or approximations, representing a new paradigm in array-based source localization. Extensive simulations demonstrate the superiority of the proposed method in terms of localization accuracy, computational efficiency, and robustness to different source types. © 2026 IEEE.
Original languageEnglish
Number of pages17
JournalIEEE Journal on Selected Topics in Signal Processing
DOIs
Publication statusOnline published - 13 Mar 2026

Funding

This research work of T. Wu was funded by Hong Kong Research Grants Council under the Area of Excellence Scheme under Grant AoE/E-101/23-N.

Research Keywords

  • exact spatial geometry
  • mixed near-field and far-field localization
  • MUSIC algorithm
  • Scalable fluid antenna systems
  • source localization

RGC Funding Information

  • RGC-funded

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