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April 12, 2026Remote Sensing0 citationsOpen Access

DFDP-QuadDiff: A Dual-Frequency Dual-Polarization Quad-Differential Framework for Weak-Echo Ship Target Detection in GNSS-Based Bistatic Synthetic Aperture Radar

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GYGang YangTZTianwen ZhangZCZhen Chen

Key Points

  • The aim is to enhance weak-echo ship target detection in GNSS-based bistatic synthetic aperture radar systems.
  • Developed DFDP-QuadDiff framework for processing complex range-time data.
  • Integrated strong-window suppression and adaptive polarimetric synthesis for signal clarity.
  • Employed cross-frequency registration and Jones drift calibration for accuracy.
  • Utilized a hierarchical processing chain for consolidated signal detection.
  • Median SCR improved from 6.51 dB to 9.04 dB (+2.53 dB).
  • P10 SCR enhanced from -1.76 dB to 3.05 dB (+4.81 dB).
  • Track continuity increased from 0.85 to 0.97.
  • Standard deviation of delay drift reduced from 0.97 bin to 0.29 bin.

Abstract

Weak-echo ship target detection in GNSS-based bistatic synthetic aperture radar is severely limited by the coupled effects of burst-type strong windows and polarization mismatch, cross-frequency mis-registration, and long-sequence chain drift in dual-frequency dual-polarization observations. To address these issues, this paper proposes DFDP-QuadDiff, a dual-frequency dual-polarization quad-differential framework for weak-echo ship target detection using B1/B3 × horizontal–horizontal (HH)/vertical–vertical (VV) four-channel complex range-time data. The proposed framework integrates polarization-consistency-driven strong-window suppression, intra-band adaptive polarimetric synthesis, joint delay–Doppler–phase cross-frequency registration, segment-wise Jones drift calibration, and quality-aware final fusion in a unified hierarchical processing chain. In this way, multi-source inconsistencies are progressively constrained and suppressed from the polarization level to the segment level before final accumulation and detection are performed. Experimental results on self-developed four-channel GNSS-S demonstrate that, relative to the best raw single-channel result, the proposed framework increases the median SCR from 6.51 dB to 9.04 dB (+2.53 dB), improves the P10 SCR from −1.76 dB to 3.05 dB (+4.81 dB), and raises the track continuity from 0.85 to 0.97. In addition, the standard deviation of segment-wise delay drift is reduced from 0.97 bin to 0.29 bin, and positive multi-scale accumulation gains are maintained up to the second-long integration range. These results indicate that the proposed framework not only substantially enhances the stability, continuity, and long-time integrability of weak-target responses under low-SNR maritime conditions, but also maintains robust gains under weak-visibility, interference-dominant, and mismatch-sensitive local conditions in the stratified evaluation, thereby establishing a physically interpretable and implementation-ready solution for collaborative weak-target detection in dual-band dual-polarization GNSS-S.

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Cite This Study

Yang et al. (2026) studied this question.

synapsesocial.com/papers/69db37404fe01fead37c5494https://doi.org/10.3390/rs18081130
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