Deep Learning-Based Human Recognition Through the Wall using UWB radar

Pongpol Assawaroongsakul, Mawin Khumdee, P. Phasukkit, Nongluck Houngkamhang
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引用次数: 1

Abstract

Human activity detection in obscured or invisible area, for instance, human detection through the wall has become an interesting topic because it has potential for security, rescue, activity analysis application, etc. UWB radar, a detection system produces short radio frequency pulses and measures the reflected signals which UWB pulses have high spatial resolution and enable penetration in dielectric materials, was used to collect human activity through the wall signals at the frequency range of 3 GHz in this research. Subsequently, we applied signal data with the Deep Neural Network model to classify 5 classes of human activity including standing, walking, sitting, laying, and no-human gave the F1 score up to 96.94%.
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基于深度学习的超宽带雷达穿墙人体识别
模糊或不可见区域的人体活动检测,如穿墙检测,因其在安全、救援、活动分析等方面的应用潜力而成为一个有趣的话题。超宽带雷达是一种产生短射频脉冲并测量反射信号的探测系统,超宽带脉冲具有高空间分辨率和穿透介质材料的能力,本研究利用超宽带雷达在3ghz频率范围内通过墙壁信号采集人类活动。随后,我们将信号数据与Deep Neural Network模型结合,对站立、行走、坐着、躺着、无人等5类人体活动进行分类,F1得分高达96.94%。
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