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Stationary human micro-motion trajectory extraction based on edge detection in through-the-wall radar

机译:基于通过壁雷达边缘检测的固定式人微观运动轨迹提取

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Stationary human micro-motion trajectory in slow time range domain provides more original motion information, including periodical respiration and heart beating, as well as random body movement and sudden body shaking, whose range often outstrips the periodical movement. Phase contour, amplitude contour and peak locus are all the represent of stationary human micro-motion trajectory. Due to the phase sudden change from π to -π, the phase contour is more robust and stable than the other two loci. In this paper, a stationary human micro-motion trajectory extraction approach based on edge detection is presented. Firstly, the stationary human micro-motion model is established and the effect brought by the wall is analyzed. Then the phase contour in slow-time range domain is introduced as a representation of micro-motion trajectory. Finally, the phase contour extraction based on edge detection is presented. Experimental results demonstrate that the proposed approach can extract stationary human trajectory correctly and accurately, after band pass filtering, the vital sign of human breathing can be extracted effectively.
机译:慢速时间范围域中的固定人体微观运动轨迹提供了更多原始的运动信息,包括期刊呼吸和心脏跳动,以及随机的身体运动和突然的身体摇动,其范围通常超出期刊运动。相位轮廓,幅度轮廓和峰值基因座是固定人微观运动轨迹的所有代表。由于从π到-π的相位突然变化,相位轮廓比其他两个基因座更加坚固且稳定。本文介绍了基于边缘检测的固定人微观运动轨迹提取方法。首先,建立了静止人微观运动模型,分析了墙壁带来的效果。然后引入慢速范围域中的相位轮廓作为微观运动轨迹的表示。最后,提出了基于边缘检测的相位轮廓提取。实验结果表明,该方法可以正确且准确地提取静止人轨迹,在带通滤波后,人类呼吸的生命符号可以有效地提取。

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