English

Subspace-Based Super-Resolution Sensing for Bi-Static ISAC with Clock Asynchronism

Signal Processing 2025-05-16 v1

Abstract

Bi-static sensing is an attractive configuration for integrated sensing and communications (ISAC) systems; however, clock asynchronism between widely separated transmitters and receivers introduces time-varying time offsets (TO) and phase offsets (PO), posing significant challenges. This paper introduces a signal-subspace-based framework that estimates decoupled angles, delays, and complex gain sequences (CGS)-- the target-reflected signals -- for multiple dynamic target paths. The proposed framework begins with a novel TO alignment algorithm, leveraging signal subspace or covariance, to mitigate TO variations across temporal snapshots, enabling coherent delay-domain analysis. Subsequently, subspace-based methods are developed to compensate for TO residuals and to perform joint angle-delay estimation. Finally, leveraging the high resolution in the joint angle-delay domain, the framework compensates for the PO and estimates the CGS for each target. The framework can be applied to both single-antenna and multi-antenna systems. Extensive simulations and experiments using commercial Wi-Fi devices demonstrate that the proposed framework significantly surpasses existing solutions in parameter estimation accuracy and delay resolution. Notably, it uniquely achieves a super-resolution in the delay domain, with a probability-of-resolution curve tightly approaching that in synchronized systems.

Keywords

Cite

@article{arxiv.2505.10174,
  title  = {Subspace-Based Super-Resolution Sensing for Bi-Static ISAC with Clock Asynchronism},
  author = {Jingbo Zhao and Zhaoming Lu and J. Andrew Zhang and Jiaxi Zhou and Weicai Li and Tao Gu},
  journal= {arXiv preprint arXiv:2505.10174},
  year   = {2025}
}

Comments

13 pages, 9 figures. This work has been submitted to the IEEE for possible publication

R2 v1 2026-06-28T23:34:17.407Z