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People Counting Based on an IR-UWB Radar Sensor

机译:基于IR-UWB雷达传感器的人数统计

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In this paper, we propose a people counting algorithm using an impulse radio ultra-wideband radar sensor. The proposed algorithm is based on a strategy of understanding the pattern of the received signal according to the number of people, not detecting each of a large number of people in the radar’s received signal. To understand the pattern of the signal, we detect the major clusters from the signal and find the amplitudes of main pulses having the maximum amplitude among the pulses constituting each cluster. We generate a probability density function of the amplitudes of the main pulses from the major clusters according to the number of people and distances. Then, we derive maximum likelihood (ML) equation for people counting. Using the derived ML equation, real-time people counting is possible with a small amount of computation. In addition, since the proposed algorithm does not detect individual clusters for each person but based on the overall cluster behavior of the signals according to the number of people, it enables people counting even in a dense multipath environment, such as a metal-rich environment. In order to prove that the proposed algorithm can be operated in real time in various environments, we performed experiments in an indoor environment and an elevator with a metal structure. Experimental results show that people counting is performed with an mean absolute error of less than one person on average.
机译:在本文中,我们提出了一种使用脉冲无线电超宽带雷达传感器的人员计数算法。提出的算法基于一种策略,即根据人数了解接收信号的模式,而不是检测雷达接收信号中大量的每个人。为了理解信号的模式,我们从信号中检测出主要簇,并在构成每个簇的脉冲中找到具有最大幅度的主脉冲的幅度。我们根据人数和距离从主要星团中生成主要脉冲幅度的概率密度函数。然后,我们得出用于人数统计的最大似然(ML)方程。使用导出的ML方程,只需少量的计算就可以进行实时人数统计。此外,由于所提出的算法不会针对每个人检测单独的群集,而是根据信号的总体群集行为根据人员的数量进行检测,因此即使在密集的多路径环境(例如,富含金属的环境)中,人员也可以进行计数。为了证明所提出的算法可以在各种环境中实时运行,我们在室内环境和具有金属结构的电梯中进行了实验。实验结果表明,进行计数的人的平均绝对误差平均小于一个人。

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