Biometric Gait Identification for Exercise Reward System using Smart Earring

Sanghoon Jeon, Hee-Jung Yoon, Y. Lee, S. Son, Y. Eun
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引用次数: 2

Abstract

Wearable systems are commonly used for fitness purpose as these devices provide activity measurements to motivate daily exercise. With aims to promote improved health, healthcare companies are incentivizing their customers with the amount of exercise that is performed and using readings from wearable devices as a way of proving that the individual met the requirements. However, these devices have a risk of user spoofing attacks as an unauthorized individual can utilize the system. To prevent misuse of the product to gain reward and ultimately promote daily exercise for various types of exercise reward systems, we propose a biometric gait identification approach using a smart earring that we design and develop. In this paper, we preliminary train and test the gait identification system by utilizing a transfer learning, which shows a 100% classification performance for eight participants. We expect the proposed gait identification technique will serve as essential building blocks for reliable exercise reward systems.
基于智能耳环的运动奖励系统生物特征步态识别
可穿戴系统通常用于健身目的,因为这些设备提供活动测量来激励日常锻炼。为了促进健康状况的改善,医疗保健公司正在用运动量来激励客户,并使用可穿戴设备的读数来证明个人符合要求。然而,这些设备存在用户欺骗攻击的风险,因为未经授权的个人可以利用该系统。为了防止滥用产品来获得奖励,并最终促进各种运动奖励系统的日常锻炼,我们提出了一种使用我们设计和开发的智能耳环的生物识别步态识别方法。在本文中,我们利用迁移学习对步态识别系统进行了初步训练和测试,该系统对8个参与者的分类性能达到100%。我们期望所提出的步态识别技术将成为可靠的运动奖励系统的基本组成部分。
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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