Assessment of an On-board Classifier for Activity Recognition on an Active Back-Support Exoskeleton

Tommaso Poliero, Stefano Toxiri, S. Anastasi, L. Monica, D. Caldwell, J. Ortiz
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引用次数: 11

Abstract

Despite the growing interest, the adoption of industrial exoskeletons may still be held back by technical limitations. To enhance versatility and promote adoption, one aspect of interest could be represented by the potential of active and quasi-passive devices to automatically distinguish different activities and adjust their assistive profiles accordingly. This contribution focuses on an active back-support exoskeleton and extends previous work proposing the use of a Support Vector Machine to classify walking, bending and standing. Thanks to the introduction of a new feature-forearm muscle activity-this study shows that it is possible to perform reliable online classification. As a consequence, the authors introduce a new hierarchically-structured controller for the exoskeleton under analysis.
基于主动背支撑外骨骼的活动识别分类器评估
尽管人们对外骨骼越来越感兴趣,但由于技术限制,工业外骨骼的采用可能仍然受到阻碍。为了增强多功能性和促进采用,一个有趣的方面可以通过主动和准被动设备的潜力来代表,以自动区分不同的活动并相应地调整其辅助配置文件。这一贡献侧重于主动背部支撑外骨骼,并扩展了先前提出使用支持向量机对行走,弯曲和站立进行分类的工作。由于引入了一个新的特征——前臂肌肉活动——这项研究表明,进行可靠的在线分类是可能的。因此,作者为所分析的外骨骼引入了一种新的分层结构控制器。
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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