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Clutter Suppression for Sar Image Based on Waveform Design Method

机译:基于波形设计方法的SAR图像杂波抑制

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A computational method for suppressing clutter and generating clear microwave images of targets is proposed in this paper. It is suitable of SAR for special applications. The nonlinear recursive model is introduced into the SAR operation principle, and the cubature Kalman filter (CKF) algorithm is used to estimate target and clutter responses in each azimuth position based on their states before, which are both assumed to be Gaussian distributions. Neyman-Pearson criteria based optimal waveforms are designed repeatedly as the sensor flight along its azimuth path and used as the transmitting signals. A clutter suppression filter is then designed and added to suppress the clutter response while maintaining most of the target response. Thus, with fewer disturbances from the clutter response, we can generate the SAR image with traditional azimuth matched filters. Simulations show that the clutter suppression filter significantly reduces the clutter response, and our algorithm greatly improves the signal-to-clutter plus noise ratio (SCNR) of the SAR image based on different clutter suppression filter parameters. As such, this new algorithm may be preferable for special target imaging when prior information on the target is available.
机译:提出了一种抑制杂波并生成清晰的目标微波图像的计算方法。适用于特殊应用的SAR。将非线性递归模型引入到SAR操作原理中,并使用库尔曼卡尔曼滤波(CKF)算法基于之前的状态估计了每个方位位置上的目标和杂波响应,这两个状态均假定为高斯分布。基于Neyman-Pearson标准的最佳波形被反复设计为传感器沿其方位角方向飞行并用作发射信号。然后设计并添加了杂波抑制滤波器,以在保持大多数目标响应的同时抑制杂波响应。因此,在杂波响应引起的干扰较少的情况下,我们可以使用传统的方位角匹配滤波器生成SAR图像。仿真结果表明,杂波抑制滤波器明显降低了杂波响应,并且基于不同的杂波抑制滤波器参数,我们的算法极大地提高了SAR图像的信噪比(SCNR)。这样,当关于目标的先验信息可用时,该新算法对于特殊目标成像可能更可取。

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