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A super resolution target separation and reconstruction approach for single channel sar against deceptive jamming

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摘要 The excellent remote sensing ability of synthetic aperture radar(SAR)will be misled seriously when it encounters deceptive jamming which possesses high fidelity and fraudulence.In this paper,the dynamic synthetic aperture(DSA)scheme is used to extract the difference between the true and false targets.A simultaneous deceptive jamming suppression and target reconstruction method is proposed for a single channel SAR system to guarantee remote sensing ability.The system model is formulated as a sparse signal recovery problem with an unknown parametric dictionary to be estimated.An iterative reweighted method is employed to jointly handle the dictionary parameter learning and target reconstruction problem in an majorization-minimization framework,where a surrogate function majorizing the Gaussian entropy in the objective function is introduced to circumvent its non-convexity.After dictionary parameter learning,the grid mismatching problem in a fixed grid based method is avoided.Therefore,the proposed method can reap a super resolution result.Besides,a simple yet effective DSA section scheme is developed for the SAR data excerpting,in which only two DSAs are required.Experimental results about location error and reconstruction power error reveal that the proposed method is able to achieve a good performance in deceptive jamming suppression.
出处 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2023年第3期164-175,共12页 Defence Technology
基金 supported in part by the National Natural Science Foundation of China under Grants 61801297,62171293,U1713217,U2033213,61971218,61801302,61701528,61601304 in part by the National Science Fund for Distinguished Young Scholars under Grant 61925108 in part by Natural Science Funding of Guangdong Province under Grant 2017A030313336 in part by the Guangdong Basic and Applied Basic Research Foundation under Grant 2019A1515110509 in part by Foundation of Shenzhen City under Grant JCYJ20170302142545828 in part by the Shenzhen University Grant 2019119,2016057 in part by the Fund of State Key Laboratory of Millimeter Waves under Grant K202235 in part by Sichuan Science and Technology Program under Grant 2021YFS0319.
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