基于相位比较单脉冲雷达的多主体呼吸模式识别及到达方向估计

S. M. Islam, E. Yavari, Ashikur Rahman, V. Lubecke, O. Boric-Lubecke
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引用次数: 21

摘要

介绍了一种可扩展的非接触式呼吸监测方法,用于实际分离和识别多个同时进行的人体呼吸模式,使用24 ghz相位比较单脉冲雷达。该系统演示了一种计算效率高的相位比较单脉冲技术,用于估计来自单个和多个受试者的呼吸运动信号的到达方向(DOA),以确定其角度位置。实验结果表明,单脉冲雷达可以感知和检测三种不同的呼吸模式(正常、快速和缓慢),并且可以在收发器的主波束宽度内估计单个正常呼吸受试者的角度位置,估计精度约为84%,而两个受试者的估计精度接近78%。基于实验结果分析,由于低信噪比(SNR)导致不规则信号的相位测量精度降低,相位比较单脉冲技术的估计精度随着呼吸模式与标称呼吸周期和频率(快/慢呼吸)的偏离而降低。提出的可扩展的24 ghz雷达收发器系统能够基于呼吸信号的识别成功地找到人体目标的方向,在医疗保健和安全监控系统中具有潜在的应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multiple Subject Respiratory Pattern Recognition and Estimation of Direction of Arrival using Phase-Comparison Monopulse Radar
A scalable non-contact respiratory monitoring approach is introduced for the practical separation and recognition of multiple simultaneous human respiratory patterns, using a 24-GHz phase-comparison Monopulse radar. The proposed system demonstrates a computationally efficient phase-comparison Monopulse technique to estimate the direction of arrival (DOA) of respiratory motion signals from single and multiple subjects to determine their angular positions. Experimental results demonstrated that Monopulse radar can sense and detect three different breathing patterns (normal, fast and slow) and can estimate the angular location of a single normally breathing subject within the main beamwidth of the transceiver with an estimation accuracy of approximately 84% whereas, and almost 78% for two subjects. Based on analysis of experimental results, the estimation accuracy of phase-comparison Monopulse technique degrades with the breathing pattern deviations from nominal breathing cycle and rate (fast/slow breathing) due to reduced phase measurement accuracy for the irregular signals resulting from lower signal to noise ratios (SNR). The proposed scalable 24-GHz radar transceiver system can successfully find the direction of the human target based on recognition of respiration signals which can have potential applications in healthcare and security surveillance systems.
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