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基于脉冲无线电超宽带雷达的卷积神经网络在睡眠期间对生命体征的实时监测。

Convolutional Neural Networks for the Real-Time Monitoring of Vital Signs Based on Impulse Radio Ultrawide-Band Radar during Sleep.

机构信息

School of Computer and Information Engineering, Kwangwoon University, Seoul 01897, Republic of Korea.

Department of Human-Centered Artificial Intelligence, Sangmyung University, Seoul 03016, Republic of Korea.

出版信息

Sensors (Basel). 2023 Mar 14;23(6):3116. doi: 10.3390/s23063116.

Abstract

Vital signs provide important biometric information for managing health and disease, and it is important to monitor them for a long time in a daily home environment. To this end, we developed and evaluated a deep learning framework that estimates the respiration rate (RR) and heart rate (HR) in real time from long-term data measured during sleep using a contactless impulse radio ultrawide-band (IR-UWB) radar. The clutter is removed from the measured radar signal, and the position of the subject is detected using the standard deviation of each radar signal channel. The 1D signal of the selected UWB channel index and the 2D signal applied with the continuous wavelet transform are entered as inputs into the convolutional neural-network-based model that then estimates RR and HR. From 30 recordings measured during night-time sleep, 10 were used for training, 5 for validation, and 15 for testing. The average mean absolute errors for RR and HR were 2.67 and 4.78, respectively. The performance of the proposed model was confirmed for long-term data, including static and dynamic conditions, and it is expected to be used for health management through vital-sign monitoring in the home environment.

摘要

生命体征为健康和疾病管理提供了重要的生物识别信息,因此在日常家庭环境中长时间监测这些体征非常重要。为此,我们开发并评估了一种深度学习框架,该框架使用非接触式脉冲无线电超宽带 (IR-UWB) 雷达从睡眠期间测量的长期数据中实时估计呼吸率 (RR) 和心率 (HR)。从测量的雷达信号中去除杂波,并使用每个雷达信号通道的标准差检测对象的位置。所选 UWB 通道索引的 1D 信号和应用连续小波变换的 2D 信号被输入到基于卷积神经网络的模型中,该模型然后估计 RR 和 HR。从夜间睡眠期间测量的 30 个记录中,使用 10 个用于训练,5 个用于验证,15 个用于测试。RR 和 HR 的平均绝对误差分别为 2.67 和 4.78。该模型的性能已在长期数据中得到确认,包括静态和动态条件,预计可用于通过家庭环境中的生命体征监测进行健康管理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/436d/10052197/41ac0b6bc636/sensors-23-03116-g001.jpg

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