Real-Time Digital Biometric Monitoring during Elite Athletic Competition: System Feasibility with a Wearable Medical-Grade Sensor.

Q1 Computer Science Digital Biomarkers Pub Date : 2021-02-03 eCollection Date: 2021-01-01 DOI:10.1159/000513222
Mark A Gorski, Stanley M Mimoto, Vivek Khare, Viprali Bhatkar, Arthur H Combs
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引用次数: 3

Abstract

Introduction: Real-time digital heart rate (HR) monitoring in sports can provide unique physiological insights into athletic performance. However, most HR monitoring of elite athletes is limited to non-real-time, non-competition settings while utilizing sensors that are cumbersome. The present study was undertaken to test the feasibility of using small, wearable medical-grade sensors, paired with a novel technology system, to capture and process real-time HR data from elite athletes during professional competition.

Methods: We examined the performance of the BioStamp nPoint® sensor compared to the Polar chest strap HR sensor in 15 Professional Squash Association (PSA) tournament matches in 2019-2020. Fourteen male professional squash players volunteered for the study (age = 23.8 ± 4.9 years; height = 177.9 ± 7.1 cm; weight = 71 ± 7.0 kg), which was approved by the PSA in accordance with their Code of General Conduct and Ethics. Algorithms developed by Sports Data Labs (SDL; Detroit, MI, USA) used proprietary data collection, transmission, and signal processing protocols to produce HR values in real-time during matches. We calculated the mean and maximum HR from both sensors and used widely accepted measures of agreement to compare their performance.

Results: The system captured 99.8% of HR data across all matches (range 98.3-100%). The BioStamp's mean HR was 170.4 ± 20.3 bpm, while the Polar's mean HR was 169.4 ± 21.7 bpm. Maximum HR ranged from 182 to 202 bpm (Polar) and 185 to 203 bpm (BioStamp). Spearman's correlation coefficient (r s) was 0.986 (p < 0.001), indicating a strong correlation between the 2 devices. The mean difference (d) in HR was 1.0 bpm, the mean absolute error was 2.2 bpm, and the percent difference was 0.72%, demonstrating high agreement between device measurements.

Conclusions: It is feasible to accurately measure and monitor real-time HR in elite athletes during competition using BioStamp's and SDL's proprietary system. This system facilitates development and understanding of physiological digital biomarkers of athletic performance and physical and psychosocial demands in elite athletic competition.

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精英运动比赛中的实时数字生物识别监测:可穿戴医疗级传感器的系统可行性。
运动中的实时数字心率(HR)监测可以为运动表现提供独特的生理洞察。然而,大多数精英运动员的人力资源监测仅限于非实时、非竞赛设置,同时使用的传感器很麻烦。本研究旨在测试使用小型可穿戴医疗级传感器与新型技术系统相结合的可行性,以捕获和处理专业比赛中优秀运动员的实时人力资源数据。方法:在2019-2020年的15场职业橄榄球协会(PSA)锦标赛中,我们比较了BioStamp nPoint®传感器与Polar胸带HR传感器的性能。14名男性职业壁球运动员自愿参加研究(年龄= 23.8±4.9岁;高度= 177.9±7.1 cm;体重= 71±7.0 kg), PSA根据其一般行为和道德准则批准了该试验。运动数据实验室(SDL)开发的算法;Detroit, MI, USA)使用专有的数据收集、传输和信号处理协议,在比赛期间实时生成HR值。我们计算了两个传感器的平均和最大HR,并使用广泛接受的一致性度量来比较它们的性能。结果:系统在所有匹配中捕获99.8%的HR数据(范围98.3-100%)。BioStamp的平均HR为170.4±20.3 bpm, Polar的平均HR为169.4±21.7 bpm。最大心率范围从182到202 bpm (Polar)和185到203 bpm (BioStamp)。Spearman相关系数(r s)为0.986 (p < 0.001),说明两种器械相关性较强。HR的平均差(d)为1.0 bpm,平均绝对误差为2.2 bpm,百分比差为0.72%,表明设备测量结果高度一致。结论:利用BioStamp和SDL的专有系统,对优秀运动员在比赛期间的HR进行准确的实时测量和监测是可行的。该系统有助于开发和理解运动表现的生理数字生物标志物以及精英运动比赛中的生理和心理需求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Digital Biomarkers
Digital Biomarkers Medicine-Medicine (miscellaneous)
CiteScore
10.60
自引率
0.00%
发文量
12
审稿时长
23 weeks
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