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February 11, 2026Electronics0 citationsOpen Access

Enhanced UWB-FMCW-SAR RFI Suppression via Joint Time–Frequency LRSR-TTV and Coherence Factor Weighting

WLWenjie LiHTHaibo TangYLYuchen Luan

Key Points

  • The central aim is to develop a method for better suppressing radio frequency interference in UWB synthetic aperture radar systems.
  • Proposed a low-rank and sparse representation (LRSR) model in the time-frequency domain
  • Integrated time total variation (TTV) regularization for spectral continuity
  • Utilized incoherence across frequency bands for improved RFI suppression
  • Implemented a sub-band coherence factor weighting technique to mitigate RFI residues
  • The proposed method shows significant improvement over existing RPCA-based techniques
  • Demonstrated enhanced robustness and adaptability in low signal-to-interference-plus-noise ratio conditions
  • Effectively reduced RFI aliasing into target components, leading to clearer images

Abstract

This study addresses the challenge of suppressing radio frequency interference (RFI) in ultra-wideband (UWB) synthetic aperture radar (SAR) operating within complex electromagnetic environments, and proposes an innovative time–frequency signal extraction method. The proposed approach integrates a low-rank and sparse representation (LRSR) model in the time–frequency domain with a time total variation (TTV) constraint. The core contributions are twofold: (1) constructing a time–frequency LRSR model of frequency modulation continuous wave (FMCW) signal, and (2) incorporating spectral continuity as a prior via TTV regularization into a joint low-rank sparse optimization framework. This effectively reduces the aliasing of RFI components into the target components caused by improper hyperparameters, which is particularly pronounced under low signal-to-interference-plus-noise ratio (SINR) conditions. To enhance robustness, the incoherence of interference across frequency bands is exploited, and a sub-band coherence factor (CF) weighting technique is introduced to further suppress RFI residues in the image domain. Experimental results demonstrate that the proposed method significantly outperforms existing robust principal component analysis (RPCA)-based techniques, offering a more adaptive and robust solution for RFI mitigation in UWB SAR systems.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/698c1cd3267fb587c655f921https://doi.org/10.3390/electronics15040735
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