Radio frequency interference suppression in ultra-wideband synthetic aperture radar using range-azimuth sparse and low-rank model

S. Joy, L. Nguyen, T. Tran
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引用次数: 20

Abstract

Ultra-wideband (UWB) Synthetic Aperture Radars (SAR) operate over a large bandwidth ranging from under 100 MHz to over a few Ghz. They often share spectrum with other systems such as radio, TV and cellular networks. The mitigation of radio frequency interference(RFI) from these sources is an important problem for UWB SAR systems. Traditional RFI suppression techniques such as notch filtering introduce side effects such as large sidelobes or poor peak-to-sidelobe ratio. More recently, methods based on sparsity and compressive sensing that do not have these side effects have been proposed. In particular, a sparse and low-rank method that models SAR data as a linear combination shifted SAR pulses and RFI to be of low-rank has been found to be effective. This model however uses the structure of SAR data in down-range direction only and ignores the structure in azimuth direction. In this paper, we propose to replace the data model with a new sparse model that incorporates structure in azimuth direction as well. We demonstrate that the new model has significantly better performance than the previously proposed model. It performs robustly even in the presence of high level of noise(-20 dB SNR) and does not suppress small targets like the previously proposed model did.
利用距离-方位稀疏低秩模型抑制超宽带合成孔径雷达射频干扰
超宽带(UWB)合成孔径雷达(SAR)工作在100兆赫以下到几Ghz以上的大带宽范围内。它们通常与无线电、电视和蜂窝网络等其他系统共享频谱。对于超宽频SAR系统来说,减少这些源的射频干扰(RFI)是一个重要问题。传统的RFI抑制技术,如陷波滤波引入副作用,如大的旁瓣或差的峰旁瓣比。最近,已经提出了基于稀疏性和压缩感知的方法,这些方法没有这些副作用。特别是,将SAR数据建模为平移的SAR脉冲和低秩RFI的线性组合的稀疏低秩方法被发现是有效的。然而,该模型只使用了SAR数据的降程方向结构,而忽略了方位方向结构。在本文中,我们提出用一种新的包含方位角方向结构的稀疏模型来取代数据模型。我们证明了新模型的性能明显优于先前提出的模型。即使在高水平噪声(-20 dB信噪比)存在的情况下,它也表现出鲁棒性,并且不像以前提出的模型那样抑制小目标。
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