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Design and Implementation of a Multifunction Wearable Device to Monitor Sleep Physiological Signals

机译:多功能可穿戴设备的设计与实现以监测睡眠生理信号

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摘要

We present a wearable device built on an Adafruit Circuit Playground Express (CPE) board and integrated with a photoplethysmographic (PPG) optical sensor for heart rate monitoring and multiple embedded sensors for medical applications—in particular, sleep physiological signal monitoring. Our device is portable and lightweight. Due to the microcontroller unit (MCU)-based architecture of the proposed device, it is scalable and flexible. Thus, with the addition of different plug-and-play sensors, it can be used in many applications in different fields. The innovation introduced in this study is that with additional sensors, we can determine whether there are intermediary variables that can be modified to improve our sleep monitoring algorithm. Additionally, although the proposed device has a relatively low cost, it achieves substantially improved performance compared to the commercially available Philips ActiWatch2 wearable device, which has been approved by the Food and Drug Administration (FDA). To assess the reliability of our device, we compared physiological sleep signals recorded simultaneously from volunteers using both our device and ActiWatch2. Motion and light detection data from our device were shown to be correlated to data simultaneously collected using the ActiWatch2, with correlation coefficients of 0.78 and 0.89, respectively. For 7 days of continuous data collection, there was only one instance of a false positive, in which our device detected a sleep interval, while the ActiWatch2 did not. The most important aspect of our research is the use of an open architecture. At the hardware level, general purpose input/output (GPIO), serial peripheral interface (SPI), integrated circuit (I C), and universal asynchronous receiver-transmitter (UART) standards were used. At the software level, an object-oriented programming methodology was used to develop the system. Because the use of plug-and-play sensors is associated with the risk of adverse outcomes, such as system instability, this study heavily relied on object-oriented programming. Object-oriented programming improves system stability when hardware components are replaced or upgraded, allowing us to change the original system components at a low cost. Therefore, our device is easily scalable and has low commercialization costs. The proposed wearable device can facilitate the long-term tracking of physiological signals in sleep monitoring and related research. The open architecture of our device facilitates collaboration and allows other researchers to adapt our device for use in their own research, which is the main characteristic and contribution of this study.
机译:我们介绍了一个内置于Adafruit电路游戏表演(CPE)板上的可穿戴设备,并与光电电磁体图(PPG)光学传感器集成,用于心率监测和用于医疗应用的多个嵌入式传感器 - 特别是睡眠生理信号监测。我们的设备是便携式轻型的。由于微控制器单元(MCU)基于所提出的设备的架构,它是可扩展且灵活的。因此,随着不同的即插即用传感器的添加,它可以在不同领域的许多应用中使用。本研究中介绍的创新是,通过额外的传感器,我们可以确定是否有中间变量可以修改以提高我们的睡眠监测算法。另外,尽管所提出的装置具有相对较低的成本,但是与商业上可获得的飞利浦Actiwatch2可穿戴装置相比,实现了显着提高的性能,这已经被食品和药物施用(FDA)批准。为了评估我们设备的可靠性,我们使用我们的设备和Actiwatch2比较了从志愿者同时记录的生理睡眠信号。显示来自我们器件的运动和光检测数据与使用ACTIWatch2同时收集的数据相关,其中相关系数分别为0.78和0.89。对于持续的数据收集7天,只有一个实例的假阳性,我们的设备检测到睡眠间隔,而Actiwatch2没有。我们研究的最重要方面是使用开放式架构。在硬件级别,使用通用输入/输出(GPIO),串行外围接口(SPI),集成电路(I C)和通用异步接收器 - 发射器(UART)标准。在软件级别,使用面向对象的编程方法来开发系统。由于使用即插即用传感器与不良结果的风险相关,例如系统不稳定,这项研究大量依赖于面向对象的编程。面向对象的编程在更换或升级硬件组件时提高了系统稳定性,允许我们以低成本更改原始系统组件。因此,我们的设备很容易可扩展,商业化成本低。所提出的可穿戴设备可以促进睡眠监测和相关研究中生理信号的长期跟踪。我们的设备的开放式架构有助于协作,并允许其他研究人员调整我们的设备,以便在自己的研究中使用,这是本研究的主要特征和贡献。

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