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Application of the fractional Fourier transform to moving target detection in airborne SAR

机译:分数阶傅里叶变换在机载SAR运动目标检测中的应用

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摘要

As a useful signal processing technique, the fractional Fourier transform (FrFT) is largely unknown to the radar signal processing community. In this correspondence, the FrFT is applied to airborne synthetic aperture radar (SAR) slow-moving target detection. For airborne SAR, the echo from a ground moving target can be regarded approximately as a chirp signal, and the FrFT is a way to concentrate the energy of a chirp signal. Therefore, the FrFT presents a potentially effective technique for ground moving target detection in airborne SAR. Compared with the common Wigner-Ville distribution (WVD) algorithm, the FrFT is a linear operator, and will not be influenced by cross-terms even if multiple moving targets exist. Moreover, to solve the problem whereby weak targets are shadowed by the sidelobes of strong ones, a new implementation of the CLEAN technique is proposed based on filtering in the fractional Fourier domain. In this way strong moving targets and weak ones can be detected iteratively. This combined method is demonstrated by using raw clutter data combined with simulated moving targets.
机译:作为一种有用的信号处理技术,分数傅里叶变换(FrFT)在雷达信号处理社区中是非常未知的。在这种对应关系中,FrFT被应用于机载合成孔径雷达(SAR)缓慢移动目标检测。对于机载SAR,可以将来自地面移动目标的回波近似视为rp信号,而FrFT是集中concentrate信号能量的一种方式。因此,FrFT提出了一种潜在的有效技术,用于机载SAR中的地面移动目标检测。与普通的Wigner-Ville分布(WVD)算法相比,FrFT是线性算子,即使存在多个移动目标,也不会受到交叉项的影响。此外,为了解决弱目标被强目标的旁瓣遮蔽的问题,提出了一种基于分数阶傅里叶域滤波的CLEAN技术的新实现。通过这种方式,可以反复地检测强运动目标和弱运动目标。通过将原始杂波数据与模拟移动目标结合使用,可以证明这种组合方法。

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