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Azimuth angular superresolution of real-beam scanning radar for sea-surface target

机译:海面目标实时波束扫描雷达的方位角超分辨率

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This paper presents a deconvolution algorithm based on the Maximum likelihood (ML) criterion to realize azimuth angular superresolution of sea-surface target in the background of sea clutter. Firstly, the received signal of real-beam image in azimuth dimension was modeled as the convolution of antenna pattern and target scattering. Then the ML objective function was built according to the assumption that the sea clutter obeys Rayleigh distribution. Finally, the iterative expression was derived to recover the original scattering of sea-surface target. Compared to Poisson-based ML deconvolution method, the assumption of clutter distribution is more reasonable for the practical background. Simulations are given to verify the effectiveness of the algorithm.
机译:提出了一种基于最大似然(ML)准则的反卷积算法,以在海浪背景下实现海面目标的方位角超分辨率。首先,将真实波束图像在方位角方向上的接收信号建模为天线方向图和目标散射的卷积。然后根据海杂波服从瑞利分布的假设建立ML目标函数。最后,推导了迭代表达式以恢复海面目标的原始散射。与基于泊松的ML反卷积方法相比,杂波分布的假设对于实际背景更为合理。仿真结果证明了该算法的有效性。

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