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A Wireless Respiratory Monitoring System Using a Wearable Patch Sensor Network

机译:使用可穿戴式贴片传感器网络的无线呼吸监测系统

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Wireless body sensors are increasingly used by clinicians and researchers in a wide range of applications, such as sports, space engineering, and medicine. Monitoring vital signs in real time can dramatically increase diagnosis accuracy and enable automatic curing procedures, e.g., detect and stop epilepsy or narcolepsy seizures. Breathing parameters are critical in oxygen therapy, hospital, and ambulatory monitoring, while the assessment of cough severity is essential when dealing with several diseases, such as chronic obstructive pulmonary disease. In this paper, a low-power wireless respiratory monitoring system with cough detection is proposed to measure the breathing rate and the frequency of coughing. This system uses wearable wireless multimodal patch sensors, designed using off-the-shelf components. These wearable sensors use a low-power nine-axis inertial measurement unit to quantify the respiratory movement and a MEMs microphone to record audio signals. Data processing and fusion algorithms are used to calculate the respiratory frequency and the coughing events. The architecture of each wireless patch-sensor is presented. In fact, the results show that the small$26.67 imes 65.53$mm2patch-sensor consumes around 12–16.2 mA and can last at least 6 h with a miniature 100-mA lithium ion battery. The data processing algorithms, the acquisition, and wireless communication units are described. The proposed network performance is presented for experimental tests with a freely behaving user in parallel with the gold standard respiratory inductance plethysmography.
机译:临床医生和研究人员越来越多地将无线人体传感器用于体育,航天工程和医学等广泛的应用中。实时监测生命体征可以显着提高诊断准确性并启用自动治愈程序,例如检测并停止癫痫或发作性睡病发作。呼吸参数在氧气疗法,医院和门诊监护中至关重要,而在应对多种疾病(例如慢性阻塞性肺疾病)时,评估咳嗽的严重性至关重要。本文提出了一种具有咳嗽检测功能的低功耗无线呼吸监测系统,用于测量呼吸频率和咳嗽频率。该系统使用可穿戴的无线多模式贴片传感器,该传感器使用现成的组件进行设计。这些可穿戴传感器使用低功率九轴惯性测量单元来量化呼吸运动,并使用MEMs麦克风来记录音频信号。数据处理和融合算法用于计算呼吸频率和咳嗽事件。介绍了每个无线贴片传感器的体系结构。实际上,结果表明,小型 n $ 26.67 times 65.53 $ nmm n 2 npatch-sensor小型100mA锂离子电池消耗的电流约为12–16.2 mA,并且可持续至少6小时。描述了数据处理算法,采集和无线通信单元。拟议的网络性能针对具有自由行为的用户进行的实验测试,与金标准呼吸电感体积描记法并行显示。

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