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A Spectrum-Based Saliency Detection Algorithm for Millimeter-Wave InSAR Imaging with Sparse Sensing

机译:稀疏传感的毫米波InSAR成像基于频谱的显着性检测算法

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Object detection in millimeter-wave Interferometric Synthetic Aperture Radiometer (InSAR) imaging is always a crucial task. Facing unpredictable and numerous objects, traditional object detection models running after the InSAR system accomplishing imaging suffer from disadvantages such as complex clutter backgrounds, weak intensity of objects, Gibbs ringing, which makes a general purpose saliency detection system for InSAR necessary. This letter proposes a spectrum-based saliency detection algorithm to extract the salient regions from unknown backgrounds cooperating with sparse sensing InSAR imaging procedure. Directly using the interferometric value and sparse information of scenes in the basis of the Discrete Cosine Transform (DCT) domain adopted by InSAR imaging procedure, the proposed algorithm isolates the support of saliency region and then inversely transforms it back to calculate the saliency map. Comparing with other detecting algorithms which run after accomplishing imaging, the proposed algorithm will not be affected by information-loss accused by imaging procedure. Experimental results prove that it is effective and adaptable for millimeter-wave InSAR imaging.
机译:毫米波干涉合成孔径辐射计(InSAR)成像中的目标检测始终是一项关键任务。面对不可预测的大量物体,在InSAR系统完成成像后运行的传统物体检测模型具有以下缺点:杂波背景复杂,物体强度弱,Gibbs振铃,这使得InSAR通用显着性检测系统成为必需。这封信提出了一种基于频谱的显着性检测算法,该算法可与稀疏感测InSAR成像程序协同从未知背景中提取显着区域。在InSAR成像程序采用的离散余弦变换(DCT)域的基础上,直接使用场景的干涉值和稀疏信息,该算法将显着区域的支持隔离,然后将其反向转换回计算显着图。与完成成像后运行的其他检测算法相比,该算法不受成像过程中信息丢失的影响。实验结果证明,该方法对毫米波InSAR成像是有效的和适用的。

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