Bibliographic Details
| Title: |
Millimeter-Wave Interferometric Synthetic Aperture Radiometer Imaging via Non-Local Similarity Learning. |
| Authors: |
Yang, Jin, Cao, Zhixiang, Li, Qingbo, Li, Yuehua |
| Source: |
Electronics (2079-9292); Sep2025, Vol. 14 Issue 17, p3452, 20p |
| Subject Terms: |
Millimeter waves, Image reconstruction, Imaging systems, Image reconstruction algorithms, Sampling theorem, Signal-to-noise ratio, Signal processing |
| Abstract: |
In this study, we propose a novel pixel-level non-local similarity (PNS)-based reconstruction method for millimeter-wave interferometric synthetic aperture radiometer (InSAR) imaging. Unlike traditional compressed sensing (CS) methods, which rely on predefined sparse transforms and often introduce artifacts, our approach leverages structural redundancies in InSAR images through an enhanced sparse representation model with dynamically filtered coefficients. This design simultaneously preserves fine details and suppresses noise interference. Furthermore, an iterative refinement mechanism incorporates raw sampled data fidelity constraints, enhancing reconstruction accuracy. Simulation and physical experiments demonstrate that the proposed InSAR-PNS method significantly outperforms conventional techniques: it achieves a 1.93 dB average peak signal-to-noise ratio (PSNR) improvement over CS-based reconstruction while operating at reduced sampling ratios compared to Nyquist-rate fast fourier transform (FFT) methods. The framework provides a practical and efficient solution for high-fidelity millimeter-wave InSAR imaging under sub-Nyquist sampling conditions. [ABSTRACT FROM AUTHOR] |
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| Database: |
Complementary Index |