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Target Recognition of SAR Images Based on Azimuthal Constraint Reconstruction

机译:基于方形约束重建的SAR图像的目标识别

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A synthetic aperture radar (SAR) target classification method has been developed, in the study, based on dynamic target reconstruction. According to SAR azimuthal sensitivity, the truly useful training samples for the reconstructing the test sample are those with approaching azimuths and same labels. Hence, the proposed method performs linear presentation of the test sample on the local dictionary established by several training samples selected from each class under the azimuthal correlation. By properly adjusting the azimuthal correlation constraint, the test sample can be reconstructed at different levels by different scales of training samples. During the classification phase, the reconstruction error vectors from different levels are combined by linear fusion and the label of the test sample is determined based on the fused errors. Experimental conditions are setup on the moving and stationary target acquisition and recognition (MSTAR) dataset to evaluate the proposed method. The results confirm the effectiveness of the proposed method.
机译:在该研究中,基于动态目标重建,开发了一种合成孔径雷达(SAR)目标分类方法。根据SAR方位角灵敏度,重建测试样品的真正有用的训练样品是具有接近方位角和相同标签的测试样本。因此,所提出的方法在由四方相关下的每个类中选择的几个训练样本建立的本地字典上执行线性呈现。通过适当地调整方位角相关约束,可以通过不同的训练样本的不同水平重建测试样品。在分类阶段期间,来自不同级别的重建误差向量通过线性融合组合,并且基于融合误差确定测试样品的标签。在移动和静止目标采集和识别(MSTAR)数据集上设置了实验条件,以评估所提出的方法。结果证实了该方法的有效性。

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