English

Sparse Fluid Antenna Arrays: Continuous Position Design Beyond Classical DOF Limits

Signal Processing 2026-05-20 v1

Abstract

Fluid antenna system (FAS), which continuously repositions a single physical element across a deployment region [0,D][0, D], breaks this limit by freeing antenna positions from the discrete grid entirely. This paper establishes the theoretical foundations of sparse FAS design for direction-of-arrival (DOA) estimation and shows that continuous position freedom unlocks three compounding advantages over the classical designs. \emph{First}, we derive a universal dual DOF bound and prove that FAS-optimized positions can approach it, growing the DOF linearly with D/λD/\lambda , where λ\lambda is the signal wavelength, rather than saturating at O(N2)O(N^2). \emph{Second}, the CRB scales as O(1/D2L)O(1/D^{2L}) for LL sources, a (D/(N2d0))2L(D/(N^2 d_0))^{2L} improvement over the best grid design, with d0=λ/2d_0 = \lambda/2 and D-optimal positions admitting closed-form solution for single sources and efficient Frank-Wolfe algorithm for multiple sources. \emph{Third}, we propose a two-stage FAS-MUSIC approach that combines coarray MUSIC disambiguation with full-aperture local maximum likelihood (ML) refinement to track the CRB, overcoming the grating-lobe ambiguity inherent in large-aperture non-uniform arrays. Robustness to minimum spacing constraints, mutual coupling, and finite position accuracy is also analyzed. Extensive simulations show that FAS-MUSIC achieves 17.5×17.5\times lower root mean squared error (RMSE) than uniform linear array (ULA) MUSIC and that FAS with 44 antennas outperforms MRA with 88 antennas, gains that are unattainable by any grid-constrained design.

Keywords

Cite

@article{arxiv.2605.19455,
  title  = {Sparse Fluid Antenna Arrays: Continuous Position Design Beyond Classical DOF Limits},
  author = {Tuo Wu and Jie Tang and Ye Tian and Cheng Zeng and Matthew C. Valenti and Hing Cheung So},
  journal= {arXiv preprint arXiv:2605.19455},
  year   = {2026}
}
R2 v1 2026-07-22T07:21:03.497Z