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首页> 外文期刊>EURASIP journal on advances in signal processing >Vital sign sensing method based on EMD in terahertz band
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Vital sign sensing method based on EMD in terahertz band

机译:基于太赫兹频段EMD的生命体征感知方法

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Non-contact respiration and heartbeat rates detection could be applied to find survivors trapped in the disaster or the remote monitoring of the respiration and heartbeat of a patient. This study presents an improved algorithm that extracts the respiration and heartbeat rates of humans by utilizing the terahertz radar, which further lessens the effects of noise, suppresses the cross-term, and enhances the detection accuracy. A human target echo model for the terahertz radar is first presented. Combining the over-sampling method, low-pass filter, and Empirical Mode Decomposition improves the signal-to-noise ratio. The smoothed pseudo Wigner-Ville distribution time-frequency technique and the centroid of the spectrogram are used to estimate the instantaneous velocity of the target's cardiopulmonary motion. The down-sampling method is adopted to prevent serious distortion. Finally, a second time-frequency analysis is applied to the centroid curve to extract the respiration and heartbeat rates of the individual. Simulation results show that compared with the previously presented vital sign sensing method, the improved algorithm enhances the signal-to-noise ratio to 1 dB with a detection accuracy of 80%. The improved algorithm is an effective approach for the detection of respiration and heartbeat signal in a complicated environment.
机译:非接触式呼吸和心跳速率检测可用于发现受困的幸存者,或远程监测患者的呼吸和心跳。这项研究提出了一种改进的算法,可以利用太赫兹雷达提取人类的呼吸和心跳速率,从而进一步减轻噪声的影响,抑制交叉项并提高检测精度。首先提出了太赫兹雷达的人类目标回波模型。将过采样方法,低通滤波器和经验模式分解相结合,可提高信噪比。平滑的伪Wigner-Ville分布时频技术和频谱图的质心用于估计目标心肺运动的瞬时速度。采用下采样方法可防止严重失真。最后,对质心曲线进行第二次时频分析,以提取个人的呼吸和心跳率。仿真结果表明,与以前提出的生命体征传感方法相比,改进算法将信噪比提高到1 dB,检测精度为80%。改进算法是在复杂环境中检测呼吸和心跳信号的有效方法。

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