4.7 Article

Multi-Parameter Regularization Method for Synthetic Aperture Imaging Radiometers

期刊

REMOTE SENSING
卷 13, 期 3, 页码 -

出版社

MDPI
DOI: 10.3390/rs13030382

关键词

imaging radiometry; synthetic aperture; reconstruction method; multi-parameter regularization

资金

  1. Zhejiang Provincial Natural Science Foundation of China [LY18D060009]
  2. National Natural Science Foundation of China [61672466]
  3. Zhejiang Provincial Natural Science Foundation [LSZ19F010001]
  4. Key Research and Development Program of Zhejiang Province [2020C03060]

向作者/读者索取更多资源

A multi-parameter regularization method is proposed for reconstructing SAIR brightness temperature distribution, which compared with traditional methods, can better preserve detailed information, improve accuracy, and demonstrate superior noise suppression.
Synthetic aperture imaging radiometers (SAIRs) are powerful passive microwave systems for high-resolution imaging by use of synthetic aperture technique. However, the ill-posed inverse problem for SAIRs makes it difficult to reconstruct the high-precision brightness temperature map. The traditional regularization methods add a unique penalty to all the frequency bands of the solution, which may cause the reconstructed result to be too smooth to retain certain features of the original brightness temperature map such as the edge information. In this paper, a multi-parameter regularization method is proposed to reconstruct SAIR brightness temperature distribution. Different from classical single-parameter regularization, the multi-parameter regularization adds multiple different penalties which can exhibit multi-scale characteristics of the original distribution. Multiple regularization parameters are selected by use of the simplified multi-dimensional generalized cross-validation method. The experimental results show that, compared with the conventional total variation, Tikhonov, and band-limited regularization methods, the multi-parameter regularization method can retain more detailed information and better improve the accuracy of the reconstructed brightness temperature distribution, and exhibit superior noise suppression, demonstrating the effectiveness and the robustness of the proposed method.

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