通过智能手表应用程序,使用身体测量指标和手腕型光电脉搏波信号对消费电子用户的健康状态进行分类

Manuel Eugenio Morocho-Cayamcela, W. Lim, D. Kwon
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引用次数: 2

摘要

可穿戴技术发展势头强劲。一方面是由于物联网市场的扩张,另一方面是由于用户的健康意识,要求可穿戴技术与应用程序的融合,这些应用程序可以跟踪他们白天的活动,并根据人体生命体征提供如何改善他们的消费体验的反馈。大多数智能手表和健身手环上的传感器的可用性,使这种融合成为消费设备行业和利益相关者的先决条件。本文对这些有价值的数据进行了分析利用,并使用可实现的智能手表的嵌入式心率传感器来满足先前的要求,根据身体活动水平对用户进行分类,根据健康状态推荐的卡路里数量,从特定的消费设备可食用目录中做出合适的推荐。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Using body-measurement indices and wrist-type photoplethysmography signals to categorize consumer electronic users' health state through a smartwatch application
The development of wearable technologies has been boosted considerably. On one hand, due to Internet of Things market expansion, and on the other, owing to health awareness on users demanding the convergence of wearable technology with applications that track their activity during the day, providing feedback on how to improve their consuming experience employing human vital signs. The availability of sensors on most of the wrist smartwatches and fitness bands, make this convergence a precondition for consumer devices industry and stakeholders. This article presents an analytical exploitation of this valuable data, and uses the embedded heart rate sensor from an attainable smartwatch to meet the prior requirements, parting the users according to the level of physical activity in pursuance of make a suitable recommendation from a specific consumer device edible catalog, according to the number of calories recommended for a healthy state.
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