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Through Wall Human Being Detection Based on Stacked Denoising Auto-encoder Algorithm

机译:基于堆叠降噪自动编码算法的穿墙人检测

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The application of ultra-wideband radar in the detection of through wall human being has been relatively mature. In this paper, the algorithm of Stacked Denoising Auto-encoder (SDAE) is applied to identify and classify the through wall human being status. The unsupervised learning method is used to train the autoencoder network in order to obtain more abstract feature of the original data, and then add a classifier at the end of the network. Use the supervised learning method to fine-tuning the network to get the optimization of the model. Finally, on the network model for testing. Experimental results showed that the Stacked Denoising Auto-encoder deep network can effectively classify and identify the through wall human being status.
机译:超宽带雷达在穿墙人员检测中的应用已经比较成熟。本文采用堆叠式降噪自动编码器(SDAE)算法对穿墙人的身份进行识别和分类。无监督学习方法用于训练自动编码器网络,以获取原始数据的更多抽象特征,然后在网络末端添加分类器。使用监督学习方法对网络进行微调以获得模型的优化。最后,对网络模型进行测试。实验结果表明,堆叠式去噪自动编码器深度网络可以有效地分类和识别穿墙人的身份。

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