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Target aspect angle estimation for synthetic aperture radar automatic target recognition using sparse representation

机译:基于稀疏表示的合成孔径雷达自动目标识别的目标纵横比估计

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Aspect angle estimation of the targets is of great help to computational reduction for template-based synthetic aperture radar (SAR) automation target recognition (ATR) algorithms. An effective aspect angle estimation algorithm of targets in SAR images based on sparse representation is proposed in this paper. The spare vector is firstly obtained under the dictionary which is constructed by all the training samples. And then, taking the characteristic that the SAR image sample is sensitive to the target aspect angles into consideration, the reconstruction error is calculated by each training sample according to the nonzero entry of the sparse vector. The aspect angle of the sample with the smallest reconstruction error is regarded as the final output. And the proposed algorithm does not suffer the 180 degree ambiguity. Experiments carried out on the moving and stationary target acquisition and recognition (MSTAR) datasets validate the effectiveness of the proposed algorithm.
机译:目标的纵横角估计对于减少基于模板的合成孔径雷达(SAR)自动化目标识别(ATR)算法的计算量大有帮助。提出了一种基于稀疏表示的SAR图像目标有效纵横角估计算法。首先在由所有训练样本构成的字典下获得备用向量。然后,考虑到SAR图像样本对目标纵横比敏感的特点,根据稀疏矢量的非零项,由每个训练样本计算出重建误差。具有最小重构误差的样本的纵横角被视为最终输出。所提出的算法不存在180度的歧义。在移动和静止目标获取与识别(MSTAR)数据集上进行的实验验证了该算法的有效性。

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