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The Importance of Visual Feedback Design in BCIs; from Embodiment to Motor Imagery Learning

机译:BCI中视觉反馈设计的重要性;从实施到运动图像学习

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摘要

Brain computer interfaces (BCIs) have been developed and implemented in many areas as a new communication channel between the human brain and external devices. Despite their rapid growth and broad popularity, the inaccurate performance and cost of user-training are yet the main issues that prevent their application out of the research and clinical environment. We previously introduced a BCI system for the control of a very humanlike android that could raise a sense of embodiment and agency in the operators only by imagining a movement (motor imagery) and watching the robot perform it. Also using the same setup, we further discovered that the positive bias of subjects’ performance both increased their sensation of embodiment and improved their motor imagery skills in a short period. In this work, we studied the shared mechanism between the experience of embodiment and motor imagery. We compared the trend of motor imagery learning when two groups of subjects BCI-operated different looking robots, a very humanlike android’s hands and a pair of metallic gripper. Although our experiments did not show a significant change of learning between the two groups immediately during one session, the android group revealed better motor imagery skills in the follow up session when both groups repeated the task using the non-humanlike gripper. This result shows that motor imagery skills learnt during the BCI-operation of humanlike hands are more robust to time and visual feedback changes. We discuss the role of embodiment and mirror neuron system in such outcome and propose the application of androids for efficient BCI training.
机译:大脑计算机接口(BCI)已在许多领域开发和实现,作为人脑与外部设备之间的新通信渠道。尽管它们的快速增长和广泛的普及,但是用户培训的不正确的性能和成本仍然是阻止其在研究和临床环境之外应用的主要问题。我们之前曾介绍过一种BCI系统,用于控制非常人性化的android系统,仅通过想象运动(运动图像)并观看机器人执行运动,就可以提高操作员的包容性和代理感。同样使用相同的设置,我们还发现,受试者表现的积极偏见既增加了他们的表现力,又在短时间内提高了他们的运动成像技能。在这项工作中,我们研究了实施经验和运动图像之间的共享机制。我们比较了两组对象BCI操作不同外观的机器人,非常人性化的android手和一对金属抓手时运动图像学习的趋势。尽管我们的实验并未显示出在一次会议中两组之间学习的显着变化,但是当两组都使用非人类的抓手重复任务时,android组在后续会议中显示出更好的运动成像技能。该结果表明,在仿人手的BCI操作过程中学习的运动图像技能对时间和视觉反馈的变化更稳定。我们讨论了在这种结果中实施方式和镜像神经元系统的作用,并提出了将android用于高效BCI训练的应用。

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