身体传感器网络与身体信号处理算法的结合:MyHeart项目的实际案例

J. Luprano, J. Solà, S. Dasen, J. Koller, O. Chételat
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引用次数: 89

摘要

智能服装通过方便传感器的放置和增加测量位置的数量,提高了长期非侵入性监测系统的效率。由于传感器要么与服装集成,要么以一种不显眼的方式嵌入到服装中,因此对受试者舒适度的影响被降到最低。然而,智能服装面临的主要挑战在于信号质量的提升和对皮肤接触变量、运动伪影、传感器定位不准确、采集信号量大等导致的海量数据的管理。本文揭示了欧洲第一项目MyHeart为解决这些问题所采用的策略和解决方案,从身体传感器网络的定义到执行身体ECG增强和运动活动分类的两种嵌入式信号处理技术的描述
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Combination of body sensor networks and on-body signal processing algorithms: the practical case of MyHeart project
Smart clothes increase the efficiency of long-term non-invasive monitoring systems by facilitating the placement of sensors and increasing the number of measurement locations. Since the sensors are either garment-integrated or embedded in an unobtrusive way in the garment, the impact on the subject's comfort is minimized. However, the main challenge of smart clothing lies in the enhancement of signal quality and the management of the huge data volume resulting from the variable contact with the skin, movement artifacts, non-accurate location of sensors and the large number of acquired signals. This paper exposes the strategies and solutions adopted in the European 1ST project MyHeart to address these problems, from the definition of the body sensor network to the description of two embedded signal processing techniques performing on-body ECG enhancement and motion activity classification
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