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Sparse Auto-Calibration for Radar Coincidence Imaging with Gain-Phase Errors

机译:具有增益相位误差的雷达重合成像的稀疏自动校准

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摘要

Radar coincidence imaging (RCI) is a high-resolution staring imaging technique without the limitation of relative motion between target and radar. The sparsity-driven approaches are commonly used in RCI, while the prior knowledge of imaging models needs to be known accurately. However, as one of the major model errors, the gain-phase error exists generally, and may cause inaccuracies of the model and defocus the image. In the present report, the sparse auto-calibration method is proposed to compensate the gain-phase error in RCI. The method can determine the gain-phase error as part of the imaging process. It uses an iterative algorithm, which cycles through steps of target reconstruction and gain-phase error estimation, where orthogonal matching pursuit (OMP) and Newton’s method are used, respectively. Simulation results show that the proposed method can improve the imaging quality significantly and estimate the gain-phase error accurately.
机译:雷达符合成像(RCI)是一种高分辨率凝视成像技术,不受目标与雷达之间相对运动的限制。稀疏驱动方法通常用于RCI中,而成像模型的先验知识则需要准确知道。然而,作为主要的模型误差之一,增益相位误差通常存在,并且可能导致模型不准确并散焦图像。在本报告中,提出了一种稀疏自动校准方法来补偿RCI中的增益相位误差。该方法可以确定增益相位误差作为成像过程的一部分。它使用一种迭代算法,该算法在目标重构和增益相位误差估计的各个步骤之间进行循环,分别使用正交匹配追踪(OMP)和牛顿法。仿真结果表明,该方法可以显着提高成像质量,准确估计增益相位误差。

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