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Co-Adaptive and Affective Human-Machine Interface for Improving Training Performances of Virtual Myoelectric Forearm Prosthesis

机译:自适应和情感人机界面,可改善虚拟肌电前臂假体的训练性能

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摘要

The real-time adaptation between human and assistive devices can improve the quality of life for amputees, which, however, may be difficult to achieve since physical and mental states vary over time. This paper presents a co-adaptive human-machine interface (HMI) that is developed to control virtual forearm prosthesis over a long period of operation. Direct physical performance measures for the requested tasks are calculated. Bioelectric signals are recorded using one pair of electrodes placed on the frontal face region of a user to extract the mental (affective) measures (the entropy of the alpha band of the forehead electroencephalography signals) while performing the tasks. By developing an effective algorithm, the proposed HMI can adapt itself to the mental states of a user, thus improving its usability. The quantitative results from 16 users (including an amputee) show that the proposed HMI achieved better physical performance measures in comparison with the traditional (nonadaptive) interface ({rm phbox{-}value}<0.001). Furthermore, there is a high correlation (correlation coefficient < 0.9, {rm phbox{-}value} < .01) between the physical performance measures and self-report feedbacks based on the NASA TLX questionnaire. As a result, the proposed adaptive HMI outperformed a traditional HMI.
机译:人类和辅助设备之间的实时适应可以提高被截肢者的生活质量,但是,由于身体和精神状态会随时间变化,因此可能难以实现。本文介绍了一种可在长时间操作中控制虚拟前臂假体的协同自适应人机界面(HMI)。计算所请求任务的直接物理性能指标。使用放置在用户正面区域上的一对电极记录生物电信号,以在执行任务时提取出心理(情感)量度(额头脑电图信号的α波段的熵)。通过开发有效的算法,提出的HMI可以使自己适应用户的心理状态,从而提高其可用性。来自16个用户(包括截肢者)的定量结果表明,与传统(非自适应)界面({rm phbox {-} value} <0.001)相比,拟议的HMI实现了更好的物理性能指标。此外,基于NASA TLX问卷,身体表现指标与自我报告反馈之间存在高度相关性(相关系数<0.9,{rm phbox {-}值} <.01)。结果,提出的自适应HMI优于传统的HMI。

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