Label Consistent K-SVD for sparse micro-Doppler classification

Fraser K. Coutts, D. Gaglione, C. Clemente, Gang Li, I. Proudler, J. Soraghan
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引用次数: 6

Abstract

Secondary motions of targets observed by radar introduce non-stationary returns containing the so-called micro-Doppler information. This is characterizing information that can be exploited to enhance automatic target recognition systems. In this paper, the challenge of classifying the micro-Doppler return of helicopters is addressed. A robust dictionary learning algorithm, Label Consistent K-SVD (LC-KSVD), is applied to identify effectively and efficiently helicopters. The effectiveness of the proposed algorithm is demonstrated on both synthetic and real radar data.
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稀疏微多普勒分类的标签一致K-SVD
雷达观测到的目标二次运动引入了包含所谓微多普勒信息的非平稳回波。这是可以用来增强自动目标识别系统的特征信息。本文研究了直升机微多普勒回波的分类问题。应用鲁棒字典学习算法标签一致K-SVD (LC-KSVD)有效识别直升机。在合成和真实雷达数据上验证了该算法的有效性。
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