用于人类移动和活动分析的可穿戴网络传感:系统研究。

Bo Dong, Subir Biswas
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引用次数: 28

摘要

本文介绍了用于人类活动分析的可穿戴传感器网络的实现细节、系统特性和性能。实现了特定的机器学习机制,用于识别具有体外和体内处理安排的目标活动集。从体外处理活动检测精度的角度分析了体上传感器能耗的影响。在人体场景中,有限的处理能力的影响也表现在检测精度方面,通过改变传感器单元的背景处理负载。通过严格的系统研究表明,即使在微小的可穿戴式传感器的能量和加工限制下,也可以设计和运行高效的人体活动分析系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wearable Networked Sensing for Human Mobility and Activity Analytics: A Systems Study.

This paper presents implementation details, system characterization, and the performance of a wearable sensor network that was designed for human activity analysis. Specific machine learning mechanisms are implemented for recognizing a target set of activities with both out-of-body and on-body processing arrangements. Impacts of energy consumption by the on-body sensors are analyzed in terms of activity detection accuracy for out-of-body processing. Impacts of limited processing abilities in the on-body scenario are also characterized in terms of detection accuracy, by varying the background processing load in the sensor units. Through a rigorous systems study, it is shown that an efficient human activity analytics system can be designed and operated even under energy and processing constraints of tiny on-body wearable sensors.

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