论文标题

使用ballistarcartograghogrohath进行睡眠阶段分类

Using Ballistocardiography for Sleep Stage Classification

论文作者

Liu, Jiebei, Morris, Peter, Nelson, Krista, Boukhechba, Mehdi

论文摘要

当我们开始了解睡眠对人们生活的巨大影响时,一种检测睡眠阶段的实用方法变得更加必要。当前的睡眠阶段检测方法很昂贵,对一个人的睡眠有侵入性,而在现代家庭环境中不实用。尽管通过监测大脑活动,肌肉活动和眼睛运动来检测睡眠阶段的方法,并通过实验室环境中的脑电图提供了检测的黄金标准,但本文旨在研究一种新方法,该方法将允许一个人获得类似的见识和结果,而不会对其正常的睡眠习惯产生无效。胸膜心动图(BCG)是一种非侵入性传感技术,通过测量心脏产生的弹道力来收集信息。使用从BCG提取的功能,例如使用时间,心率,呼吸率,相对中风量和心率变异性,我们建议实现睡眠阶段检测算法,并将其与从Fitbit Sense Smart Watch提取的睡眠阶段进行比较。 BCG的可访问性,易用性和相对低的成本为使用此设备提供了许多应用和优势。通过标准化该设备,人们将能够从BCG中受益,以分析自己的睡眠方式并得出关于睡眠效率的结论。这项工作证明了使用BCG进行准确且非侵入性睡眠监测方法的可行性,该方法可以在一个人的个人睡眠环境中舒适地设置。

A practical way of detecting sleep stages has become more necessary as we begin to learn about the vast effects that sleep has on people's lives. The current methods of sleep stage detection are expensive, invasive to a person's sleep, and not practical in a modern home setting. While the method of detecting sleep stages via the monitoring of brain activity, muscle activity, and eye movement, through electroencephalogram in a lab setting, provide the gold standard for detection, this paper aims to investigate a new method that will allow a person to gain similar insight and results with no obtrusion to their normal sleeping habits. Ballistocardiography (BCG) is a non-invasive sensing technology that collects information by measuring the ballistic forces generated by the heart. Using features extracted from BCG such as time of usage, heart rate, respiration rate, relative stroke volume, and heart rate variability, we propose to implement a sleep stage detection algorithm and compare it against sleep stages extracted from a Fitbit Sense Smart Watch. The accessibility, ease of use, and relatively-low cost of the BCG offers many applications and advantages for using this device. By standardizing this device, people will be able to benefit from the BCG in analyzing their own sleep patterns and draw conclusions on their sleep efficiency. This work demonstrates the feasibility of using BCG for an accurate and non-invasive sleep monitoring method that can be set up in the comfort of a one's personal sleep environment.

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