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Classification of the quality of wristband-based photoplethysmography signals

机译:基于腕带的光学质量分析信号的分类

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Wearable technologies have made ubiquitous, non-invasive continuous monitoring of vital signs outside of the clinical setting possible. Convenient and user friendly embedded sensors in wearable technologies such as wristbands or watch, unlike cumbersome electrocardiogram Holter monitors, have made long term monitoring possible in normal home/home-care setting. However, such vital sign monitors are highly susceptible to motion artifacts and hence the quality of signal suffers. In order to develop a reliable automated technique to estimate vital signs, it is necessary to understand and estimate the quality of the acquired signal. In this paper, we compare the characteristics of signal corrupted by motion artifact against the artifact-free photoplethysmographic (PPG) signal acquired from an Empatica E4 wristband over 24 hours from 15 participants as the first step toward understanding and quantifying the quality of PPG signals. Using four 10 second segments of artifact-free and clean PPG signal from each participant, features that describe the signal are extracted. Bhattacharyya distance measure is used to rank the features that represent quality of the PPG signal. Using set of highly ranked features, a Nai?ve Bayes classifier is designed to quantify the quality of the PPG signal.
机译:可穿戴技术在可能的临床设定之外的生命体征普遍存在,无侵入性持续监测。与腕带或手表等可穿戴技术的方便和用户友好的嵌入式传感器,与繁忙的心电图监视器不同,在正常的家庭/家庭护理环境中使长期监控成为可能。然而,这种生命体征监视器非常容易受到运动伪影的影响,因此信号的质量受到影响。为了开发一种可靠的自动化技术来估计生命体征,有必要理解和估计所获取信号的质量。在本文中,我们将动作伪影损坏的信号的特性与从15名参与者从15名参与者的24小时内获得的非肌动画伪影(PPG)信号进行比较,因为第一步是理解和量化PPG信号的质量的第一步。使用来自每个参与者的四个10秒的伪影和清洁PPG信号,提取描述信号的功能。 Bhattacharyya距离测量用于对代表PPG信号的质量的特征进行排序。使用一组高度排名功能,Nai ve Bayes分类器旨在量化PPG信号的质量。

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