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High-Resolution Bistatic ISAR Imaging Based on Two-Dimensional Compressed Sensing

机译:基于二维压缩传感的高分辨率双基地ISAR成像

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The theory of compressed sensing (CS) states that an unknown sparse signal can be accurately recovered from a limited number of measurements by solving a sparsity-constrained optimization problem. In this paper, we present a new framework of high-resolution bistatic inverse synthetic aperture radar (Bi-ISAR) imaging based on CS. A phase-preserved CS approach for high-range resolution imaging is proposed. The phase of a Bi-ISAR signal can be extracted by constructing a phase-preserved Fourier basis, which is crucial to azimuth processing of Bi-ISAR imaging. After performing CS reconstruction in range, we present an improved version of CS-based cross-range imaging by combining modified Fourier basis and weighting with CS optimization. Simulated data are used to test the robustness of the Bi-ISAR imaging framework with two-dimensional (2-D) CS method. The results show that the framework is capable of accurate reconstruction of Bi-ISAR image in both range and cross-range.
机译:压缩感测(CS)理论指出,通过解决稀疏约束的优化问题,可以从有限数量的测量中准确恢复未知的稀疏信号。在本文中,我们提出了一个基于CS的高分辨率双基地逆合成孔径雷达(Bi-ISAR)成像的新框架。提出了一种用于高范围分辨率成像的保相CS方法。 Bi-ISAR信号的相位可以通过构造一个保留相位的傅立叶基础来提取,这对于Bi-ISAR成像的方位角处理至关重要。在范围内执行CS重建后,我们结合了改进的Fourier基和加权与CS优化,提出了基于CS的跨范围成像的改进版本。仿真数据用于通过二维(2-D)CS方法测试Bi-ISAR成像框架的鲁棒性。结果表明,该框架能够在范围和跨范围内准确重建Bi-ISAR图像。

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