首页> 外文期刊>IEEE Geoscience and Remote Sensing Letters >Robust Radial Velocity Estimation Based on Joint-Pixel Normalized Sample Covariance Matrix and Shift Vector for Moving Targets
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Robust Radial Velocity Estimation Based on Joint-Pixel Normalized Sample Covariance Matrix and Shift Vector for Moving Targets

机译:基于联合像素归一化样本协方差矩阵和移动目标的位移矢量的鲁棒径向速度估计

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摘要

The clutter suppression and target radial velocity estimation are essential in the ground moving target indication processing with multichannel synthetic aperture radar (SAR) systems. In reality, the heterogeneous clutter, the image coregistration error, and channel mismatch will remarkably decline the estimation performance of the target radial velocity. To address these issues, a robust radial velocity estimation algorithm is proposed in this letter. Based on the joint-pixel signal model, the joint-pixel normalized sample covariance matrix (JPNSCM) is employed to mitigate the effect of heterogeneous clutter, and the shift vector determined by JPNSCM is used to obtain the actual target steering vector. Then, the adaptive matched filtering algorithm is adopted to estimate the target radial velocity. Compared with traditional estimation algorithms, the proposed method obtains better performance in both simulations and real SAR data experiments.
机译:在多通道合成孔径雷达(SAR)系统的地面移动目标指示处理中,杂波抑制和目标径向速度估计至关重要。实际上,异构杂波,图像核心偏移误差和通道不匹配将显着降低目标径向速度的估计性能。为了解决这些问题,本文提出了一种鲁棒的径向速度估计算法。在联合像素信号模型的基础上,采用联合像素归一化样本协方差矩阵(JPNSCM)来减轻异构杂波的影响,并利用JPNSCM确定的位移矢量获得实际的目标转向矢量。然后,采用自适应匹配滤波算法估计目标径向速度。与传统的估计算法相比,该方法在仿真和实际SAR数据实验中均具有较好的性能。

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