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Penalized Maximum Likelihood Angular Super-Resolution Method for Scanning Radar Forward-Looking Imaging

机译:用于扫描雷达前瞻性成像的惩罚最大可能性角度超分辨率方法

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摘要

Deconvolution provides an efficient technology to implement angular super-resolution for scanning radar forward-looking imaging. However, deconvolution is an ill-posed problem, of which the solution is not only sensitive to noise, but also would be easily deteriorate by the noise amplification when excessive iterations are conducted. In this paper, a penalized maximum likelihood angular super-resolution method is proposed to tackle these problems. Firstly, a new likelihood function is deduced by separately considering the noise in I and Q channels to enhance the accuracy of the noise modeling for radar imaging system. Afterwards, to conquer the noise amplification and maintain the resolving ability of the proposed method, a joint square-Laplace penalty is particularly formulated by making use of the outlier sensitivity property of square constraint as well as the sparse expression ability of Laplace distribution. Finally, in order to facilitate the engineering application of the proposed method, an accelerated iterative solution strategy is adopted to solve the obtained convex optimal problem. Experiments based on both synthetic data and real data demonstrate the effectiveness and superior performance of the proposed method.
机译:Deconvolulate提供了一种有效的技术来实现用于扫描雷达前瞻性成像的角度超分辨率。然而,去卷积是一种不良问题,其中解决方案不仅对噪声敏感,而且在进行过度迭代时,噪声放大也很容易劣化。在本文中,提出了惩罚最大似然角超分辨率方法来解决这些问题。首先,通过单独考虑I和Q通道中的噪声来推断出新的似然函数,以增强雷达成像系统的噪声模拟的准确性。之后,为了征服噪声放大并保持所提出的方法的解决能力,通过利用方形约束的异常灵敏度特性以及拉普拉斯分布的稀疏表达能力来尤其配制联合方拉普拉斯惩罚。最后,为了促进所提出的方法的工程应用,采用加速迭代解决方案策略来解决所获得的凸出的最佳问题。基于合成数据和真实数据的实验证明了该方法的有效性和优异的性能。

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