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用于增强人机交互的被动式脑机接口。

Passive Brain-Computer Interfaces for Enhanced Human-Robot Interaction.

作者信息

Alimardani Maryam, Hiraki Kazuo

机构信息

Department of Cognitive Science and Artificial Intelligence, School of Humanities and Digital Sciences, Tilburg University, Tilburg, Netherlands.

Department of General Systems Studies, Graduate School of Arts and Sciences, The University of Tokyo, Tokyo, Japan.

出版信息

Front Robot AI. 2020 Oct 2;7:125. doi: 10.3389/frobt.2020.00125. eCollection 2020.

Abstract

Brain-computer interfaces (BCIs) have long been seen as control interfaces that translate changes in brain activity, produced either by means of a volitional modulation or in response to an external stimulation. However, recent trends in the BCI and neurofeedback research highlight passive monitoring of a user's brain activity in order to estimate cognitive load, attention level, perceived errors and emotions. Extraction of such higher order information from brain signals is seen as a gateway for facilitation of interaction between humans and intelligent systems. Particularly in the field of robotics, passive BCIs provide a promising channel for prediction of user's cognitive and affective state for development of a user-adaptive interaction. In this paper, we first illustrate the state of the art in passive BCI technology and then provide examples of BCI employment in human-robot interaction (HRI). We finally discuss the prospects and challenges in integration of passive BCIs in socially demanding HRI settings. This work intends to inform HRI community of the opportunities offered by passive BCI systems for enhancement of human-robot interaction while recognizing potential pitfalls.

摘要

长期以来,脑机接口(BCI)一直被视为一种控制接口,它能将通过自主调节或对外部刺激做出反应而产生的大脑活动变化进行转换。然而,BCI和神经反馈研究的最新趋势强调对用户大脑活动进行被动监测,以估计认知负荷、注意力水平、感知到的错误和情绪。从脑信号中提取此类高阶信息被视为促进人类与智能系统之间交互的一个途径。特别是在机器人技术领域,被动BCI为预测用户的认知和情感状态以开发用户自适应交互提供了一个有前景的渠道。在本文中,我们首先阐述被动BCI技术的现状,然后提供BCI在人机交互(HRI)中应用的实例。我们最后讨论在对社交有要求的HRI环境中集成被动BCI的前景和挑战。这项工作旨在让HRI社区了解被动BCI系统为增强人机交互提供的机会,同时认识到潜在的陷阱。

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