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Ubiquitous Fall Hazard Identification With Smart Insole

机译:与智能鞋垫无处不在的秋季危险识别

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摘要

Falls are leading causes of nonfatal injuries in workplaces which lead to substantial injury and economic consequences. To help avoid fall injuries, safety managers usually need to inspect working areas routinely. However, it is difficult for a limited number of safety managers to inspect fall hazards instantly especially in large workplaces. To address this problem, a novel fall hazard identification method is proposed in this paper which makes it possible for all workers to report the potential hazards automatically. This method is based on the fact that people use different gaits to get across different floor surfaces. Through analyzing gait patterns, potential fall hazards could be identified automatically. In this research, Smart Insole, an insole shaped wearable system for gait analysis, was applied to measure gait patterns for fall hazard identification. Slips and trips are the focus of this study since they are two main causes of falls in workplaces. Five effective gait features were extracted to train a Support Vector Machine (SVM) model for recognizing slip hazard, trip hazard, and safe floor surfaces. Experiment results showed that fall hazards could be recognized with high accuracy (98.1%).
机译:下跌是工作场所非缺失伤害的主要原因,这导致了大量伤害和经济后果。为了帮助避免伤害,安全管理人员通常需要定期检查工作区域。然而,有限数量的安全管理人员难以检查秋季危险,特别是在大型工作场所。为了解决这个问题,本文提出了一种新的秋季危险识别方法,这使得所有工人可以自动报告潜在的危险。这种方法基于人们使用不同的Gaits来跨越不同的楼层。通过分析步态模式,可以自动识别潜在的秋季危险。在本研究中,智能鞋垫,一种用于步态分析的鞋垫形状可穿戴系统,用于测量落下危险识别的步态模式。 SLIPS和TRIPS是本研究的重点,因为它们是工作场所跌落的两个主要原因。提取五个有效的步态特征以训练支持向量机(SVM)模型,用于识别滑动危险,跳闸危险和安全地板。实验结果表明,秋季危险可以高精度(98.1%)。

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