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An Image-based Approach for Classification of Human Micro-Doppler Radar Signatures

机译:基于图像的人类微多普勒雷达签名分类方法

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With the advances in radar technology, there is an increasing interest in automatic radar-based human gait identification. This is because radar signals can penetrate through most dielectric materials. In this paper, an image-based approach is proposed for classifying human micro-Doppler radar signatures. The time-varying radar signal is first converted into a time-frequency representation, which is then cast as a two-dimensional image. A descriptor is developed to extract micro-Doppler features from local time-frequency patches centered along the torso Doppler frequency. Experimental results based on real data collected from a 24-GHz Doppler radar showed that the proposed approach achieves promising classification performance.
机译:随着雷达技术的进步,对基于雷达的自动步态识别的兴趣日益浓厚。这是因为雷达信号可以穿透大多数介电材料。在本文中,提出了一种基于图像的方法来对人类微多普勒雷达签名进行分类。时变雷达信号首先被转换为时频表示,然后将其转换为二维图像。开发了一个描述符,以从以躯干多普勒频率为中心的局部时频斑块中提取微多普勒特征。根据从24 GHz多普勒雷达收集的真实数据进行的实验结果表明,该方法可实现有希望的分类性能。

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