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用于对运动员、工人和新冠肺炎患者进行无伪迹生理跟踪的差分心肺监测系统。

Differential cardiopulmonary monitoring system for artifact-canceled physiological tracking of athletes, workers, and COVID-19 patients.

作者信息

Jeong Hyoyoung, Lee Jong Yoon, Lee KunHyuck, Kang Youn J, Kim Jin-Tae, Avila Raudel, Tzavelis Andreas, Kim Joohee, Ryu Hanjun, Kwak Sung Soo, Kim Jong Uk, Banks Aaron, Jang Hokyung, Chang Jan-Kai, Li Shupeng, Mummidisetty Chaithanya K, Park Yoonseok, Nappi Simone, Chun Keum San, Lee Young Joong, Kwon Kyeongha, Ni Xiaoyue, Chung Ha Uk, Luan Haiwen, Kim Jae-Hwan, Wu Changsheng, Xu Shuai, Banks Anthony, Jayaraman Arun, Huang Yonggang, Rogers John A

机构信息

Querrey Simpson Institute for Bioelectronics, Northwestern University, Evanston, IL 60208, USA.

Sibel Health, Niles, IL 60714, USA.

出版信息

Sci Adv. 2021 May 12;7(20). doi: 10.1126/sciadv.abg3092. Print 2021 May.

Abstract

Soft, skin-integrated electronic sensors can provide continuous measurements of diverse physiological parameters, with broad relevance to the future of human health care. Motion artifacts can, however, corrupt the recorded signals, particularly those associated with mechanical signatures of cardiopulmonary processes. Design strategies introduced here address this limitation through differential operation of a matched, time-synchronized pair of high-bandwidth accelerometers located on parts of the anatomy that exhibit strong spatial gradients in motion characteristics. When mounted at a location that spans the suprasternal notch and the sternal manubrium, these dual-sensing devices allow measurements of heart rate and sounds, respiratory activities, body temperature, body orientation, and activity level, along with swallowing, coughing, talking, and related processes, without sensitivity to ambient conditions during routine daily activities, vigorous exercises, intense manual labor, and even swimming. Deployments on patients with COVID-19 allow clinical-grade ambulatory monitoring of the key symptoms of the disease even during rehabilitation protocols.

摘要

柔软的、与皮肤集成的电子传感器能够持续测量多种生理参数,与人类医疗保健的未来密切相关。然而,运动伪影会干扰记录的信号,尤其是那些与心肺过程的机械特征相关的信号。本文介绍的设计策略通过一对匹配的、时间同步的高带宽加速度计的差分操作来解决这一限制,这对加速度计位于解剖结构中运动特征呈现强烈空间梯度的部位。当安装在跨越胸骨上切迹和胸骨柄的位置时,这些双传感设备能够测量心率和心音、呼吸活动、体温、身体方位和活动水平,以及吞咽、咳嗽、说话和相关过程,在日常活动、剧烈运动、繁重体力劳动甚至游泳期间不受环境条件的影响。在新冠肺炎患者身上进行部署,即使在康复方案期间也能对该疾病的关键症状进行临床级别的动态监测。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/91c8/8115927/75dce62fa8b9/abg3092-F1.jpg

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