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3D Geometry and Motion Estimations of Maneuvering Targets for Interferometric ISAR With Sparse Aperture

机译:具有稀疏光圈的干涉式ISAR的机动目标的3D几何和运动估计

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In the current scenario of high-resolution inverse synthetic aperture radar (ISAR) imaging, the non-cooperative targets may have strong maneuverability, which tends to cause time-variant Doppler modulation and imaging plane in the echoed data. Furthermore, it is still a challenge to realize ISAR imaging of maneuvering targets from sparse aperture (SA) data. In this paper, we focus on the problem of 3D geometry and motion estimations of maneuvering targets for interferometric ISAR (InISAR) with SA. For a target of uniformly accelerated rotation, the rotational modulation in echo is formulated as chirp sensing code under a chirp-Fourier dictionary to represent the maneuverability. In particular, a joint multi-channel imaging approach is developed to incorporate the multi-channel data and treat the multi-channel ISAR image formation as a joint-sparsity constraint optimization. Then, a modified orthogonal matching pursuit (OMP) algorithm is employed to solve the optimization problem to produce high-resolution range-Doppler (RD) images and chirp parameter estimation. The 3D target geometry and the motion estimations are followed by using the acquired RD images and chirp parameters. Herein, a joint estimation approach of 3D geometry and rotation motion is presented to realize outlier removing and error reduction. In comparison with independent single-channel processing, the proposed joint multi-channel imaging approach performs better in 2D imaging, 3D imaging, and motion estimation. Finally, experiments using both simulated and measured data are performed to confirm the effectiveness of the proposed algorithm.
机译:在高分辨率逆合成孔径雷达(ISAR)成像的当前情况下,非合作目标可能具有很强的机动性,这往往会在回波数据中引起时变多普勒调制和成像平面。此外,从稀疏孔径(SA)数据实现机动目标的ISAR成像仍然是一个挑战。在本文中,我们重点关注3D几何问题以及带有SA的干涉ISAR(InISAR)机动目标的运动估计。对于均匀加速旋转的目标,在线性调频傅立叶字典下将回波中的旋转调制公式化为线性调频感测代码,以表示可操作性。特别是,开发了一种联合多通道成像方法,以合并多通道数据并将多通道ISAR图像形成视为联合稀疏约束优化。然后,采用改进的正交匹配追踪(OMP)算法来解决优化问题,以生成高分辨率距离多普勒(RD)图像和线性调频参数估计。使用获取的RD图像和线性调频参数跟踪3D目标几何形状和运动估计。本文提出了一种3D几何与旋转运动的联合估计方法,以实现离群值的消除和误差的减少。与独立的单通道处理相比,提出的联合多通道成像方法在2D成像,3D成像和运动估计中表现更好。最后,使用仿真数据和实测数据进行实验,以验证所提出算法的有效性。

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