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Radar HRRP recognition based on discriminant deep autoencoders with small training data size

机译:基于训练数据量小的判别式深度自动编码器的雷达HRRP识别

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摘要

A novel radar high resolution range profile (HRRP) recognition method based on discriminant deep autoencoders is proposed to enhance the classification performance with limited training samples. Compared with the conventional models, the proposed method not only extracts high-level feature which can reflect physical structure of HRRP, but also trains HRRP samples globally to reduce the requirement of the training data. The experiment based on the measured data demonstrates the physical meanings of the extracted feature. Moreover, the recognition performance of the proposed method consistently outperforms the conventional models, and the improvement become more significant with smaller training data size.
机译:提出了一种基于判别式深度自动编码器的雷达高分辨率测距(HRRP)识别方法,以提高训练样本数量少的分类性能。与传统模型相比,该方法不仅提取了可以反映HRRP物理结构的高级特征,而且在全局范围内训练HRRP样本,减少了对训练数据的需求。基于实测数据的实验证明了提取特征的物理意义。此外,所提出的方法的识别性能始终优于传统模型,并且在较小的训练数据量的情况下,改进变得更加明显。

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