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2
Motion Artifact Reduction in Wearable Photoplethysmography Based on Multi-Channel Sensors with Multiple Wavelengths.基于多波长多通道传感器的可穿戴光电容积脉搏波信号运动伪影的去除。
Sensors (Basel). 2020 Mar 9;20(5):1493. doi: 10.3390/s20051493.
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G-LOC Due to the Push-Pull Effect in a Fatal F-16 Mishap.因F-16致命事故中的推挽效应导致的G-LOC(重力性休克)
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Possible Error in Reflection Pulse Oximeter Readings as a Result of Applied Pressure.可能由于施加压力导致反射式脉搏血氧仪读数出现误差。
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Basic Principles of Cardiac Electrophysiology.心脏电生理学基础。
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A Comparison of Reflective Photoplethysmography for Detection of Heart Rate, Blood Oxygen Saturation, and Respiration Rate at Various Anatomical Locations.用于检测不同解剖位置心率、血氧饱和度和呼吸频率的反射式光电容积脉搏波描记法的比较
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Current progress of photoplethysmography and SPO for health monitoring.用于健康监测的光电容积脉搏波描记法和血氧饱和度的当前进展。
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10
A review on wearable photoplethysmography sensors and their potential future applications in health care.可穿戴光电容积脉搏波传感器及其在医疗保健领域潜在的未来应用综述。
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耳后光体积描记法在动态环境下的心血管监测中优于心电图。

Photoplethysmography behind the Ear Outperforms Electrocardiogram for Cardiovascular Monitoring in Dynamic Environments.

机构信息

Spotlight Labs, 2 Kings Highway West Suite #104, Haddonfield, NJ 08033, USA.

出版信息

Sensors (Basel). 2021 Jul 2;21(13):4543. doi: 10.3390/s21134543.

DOI:10.3390/s21134543
PMID:34283086
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8272005/
Abstract

An increasing proportion of occupational mishaps in dynamic, high-risk operational environments have been attributed to human error, yet there are currently no devices to routinely provide accurate physiological data for insights into underlying contributing factors. This is most commonly due to limitations of commercial and clinical devices for collecting physiological data in environments of high motion. Herein, a novel Photoplethysmography (PPG) sensor device was tested, called SPYDR (Standalone Performance Yielding Deliberate Risk), reading from a behind-the-ear location, specifically designed for high-fidelity data collection in highly dynamic high-motion, high-pressure, low-oxygen, and high-G-force environments. For this study, SPYDR was installed as a functional ear-cup replacement in flight helmets worn by rated US Navy aircrew. Subjects were exposed to reduced atmospheric pressure using a hypobaric chamber to simulated altitudes of 25,000 feet and high G-forces in a human-rated centrifuge up to 9 G acceleration. Data were compared to control devices, finger and forehead PPG sensors, and a chest-mounted 12-lead ECG. SPYDR produced high-fidelity data compared to controls with little motion-artifact controls in the no-motion environment of the hypobaric chamber. However, in the high-motion, high-force environment of the centrifuge, SPYDR recorded consistent, accurate data, whereas PPG controls and ECG data were unusable due to a high-degree-motion artifacts. The data demonstrate that SPYDR provides an accurate and reliable system for continuous physiological monitoring in high-motion, high-risk environments, yielding a novel method for collecting low-artifact cardiovascular assessment data important for investigating currently inaccessible parameters of human physiology.

摘要

在动态、高风险作业环境中,越来越多的职业事故可归因于人为错误,但目前尚无设备能够常规提供准确的生理数据,以深入了解潜在的促成因素。这主要是由于商业和临床设备在高运动环境中收集生理数据的局限性所致。在此,测试了一种新型的光体积描记法(PPG)传感器设备,称为 SPYDR(独立性能产生蓄意风险),它从耳后位置读取数据,专门设计用于在高动态、高运动、高压力、低氧和高 G 力环境中进行高保真数据采集。在这项研究中,SPYDR 被安装在经过评级的美国海军航空兵飞行头盔中的功能耳罩中。研究对象被放置在减压室中,模拟海拔 25000 英尺的高度和高达 9G 加速度的载人离心机中的高 G 力。将数据与控制设备、手指和前额 PPG 传感器以及胸部佩戴的 12 导联心电图进行比较。与控制设备相比,SPYDR 在减压室无运动环境中产生的运动伪影较小,可提供高保真数据。然而,在离心机的高运动、高力环境中,SPYDR 记录了一致、准确的数据,而 PPG 控制设备和 ECG 数据由于运动伪影过高而无法使用。数据表明,SPYDR 为高运动、高风险环境中的连续生理监测提供了准确可靠的系统,为收集重要的低伪影心血管评估数据提供了一种新方法,这些数据对于研究目前无法获取的人类生理学参数很重要。