基于MIMO雷达的多人穿墙定位与行为识别

Dongsheng Zhu, Changlong Wang, Chong Han, Jian Guo, Lijuan Sun
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引用次数: 2

摘要

人体定位与行为识别(HLBR)是无线传感和计算机视觉领域的重要研究课题。在现有的工作中,大多数使用摄像头、毫米波雷达等传感器的方法无法解决墙遮挡问题,而使用Wi-Fi的方法可以穿透墙壁,但由于带宽的限制,无法精确定位人。这些都限制了HLBR在现实中的应用。在本文中,我们提出TWLBR,一种实时检测系统,用于从雷达热图推断砖墙后人类的定位和行为。在该系统中,我们设计了1-2 GHz频率范围内的多输入多输出(MIMO)雷达和基于3D卷积神经网络(CNN)和变压器的多特征融合网络。该网络以四张去除背景的雷达热图作为输入,输出目标人的位置和行为。实验表明,TWLBR可以对24 cm砖墙后目标人的行为进行定位和识别,定位精度为6.2 cm,行为识别准确率为96.37%,优于现有方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
TWLBR: Multi-Human Through-Wall Localization and Behavior Recognition Based on MIMO Radar
Human localization and behavior recognition (HLBR) is an important research topic in wireless sensing and computer vision. In existing work, most of the approaches using sensors such as cameras and mmWave radar cannot solve the wall occlusion problem, while the approaches using Wi-Fi can penetrate the wall but cannot locate human precisely due to its bandwidth limitation. All these limit the application of HLBR in reality. In this paper, we propose TWLBR, a real-time detection system for inferring the localization and behavior of human behind brick walls from radar heatmaps. In this system, we design a multiple-input multiple-output (MIMO) radar in the frequency range of 1–2 GHz and a multi-feature fusion network based on a 3D convolutional neural network (CNN) and a transformer. The network takes four radar heatmaps with background removal as input and outputs the location and behavior of the target humans. Our experiments show that TWLBR can locate and recognize the behavior of target humans behind a 24 cm brick wall with a localization accuracy of 6.2 cm and a behavior recognition accuracy of 96.37%, which is better than existing methods.
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