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人类运动中的感觉统合:一种基于伽马波段和注意力水平的新型脑机接口,用于控制下肢外骨骼。

Sensory Integration in Human Movement: A New Brain-Machine Interface Based on Gamma Band and Attention Level for Controlling a Lower-Limb Exoskeleton.

作者信息

Ortiz Mario, Ferrero Laura, Iáñez Eduardo, Azorín José M, Contreras-Vidal José L

机构信息

Brain-Machine Interface Systems Lab, Miguel Hernández University of Elche, Elche, Spain.

Laboratory for Non-invasive Brain Machine Interfaces, Department of Electrical and Computer Engineering, University of Houston, Houston, TX, United States.

出版信息

Front Bioeng Biotechnol. 2020 Sep 3;8:735. doi: 10.3389/fbioe.2020.00735. eCollection 2020.

Abstract

Brain-machine interfaces (BMIs) can improve the control of assistance mobility devices making its use more intuitive and natural. In the case of an exoskeleton, they can also help rehabilitation therapies due to the reinforcement of neuro-plasticity through repetitive motor actions and cognitive engagement of the subject. Therefore, the cognitive implication of the user is a key aspect in BMI applications, and it is important to assure that the mental task correlates with the actual motor action. However, the process of walking is usually an autonomous mental task that requires a minimal conscious effort. Consequently, a brain-machine interface focused on the attention to gait could facilitate sensory integration in individuals with neurological impairment through the analysis of voluntary gait will and its repetitive use. This way the combined use of BMI+exoskeleton turns from assistance to restoration. This paper presents a new brain-machine interface based on the decoding of gamma band activity and attention level during motor imagery mental tasks. This work also shows a case study tested in able-bodied subjects prior to a future clinical study, demonstrating that a BMI based on gamma band and attention-level paradigm allows real-time closed-loop control of a Rex exoskeleton.

摘要

脑机接口(BMI)可以改善辅助移动设备的控制,使其使用起来更加直观和自然。对于外骨骼而言,由于通过重复的运动动作和受试者的认知参与增强了神经可塑性,它们还可以辅助康复治疗。因此,用户的认知参与是BMI应用中的一个关键方面,确保心理任务与实际运动动作相关至关重要。然而,行走过程通常是一项自主的心理任务,只需要极少的有意识努力。因此,专注于对步态的注意力的脑机接口可以通过分析自愿步态意愿及其重复使用,促进神经功能受损个体的感觉整合。通过这种方式,BMI与外骨骼的联合使用从辅助转变为恢复。本文提出了一种基于运动想象心理任务期间伽马波段活动解码和注意力水平的新型脑机接口。这项工作还展示了在未来临床研究之前在健全受试者身上进行测试的案例研究,证明基于伽马波段和注意力水平范式的BMI能够实现对Rex外骨骼的实时闭环控制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6b09/7494737/0a9c1cec51d5/fbioe-08-00735-g0001.jpg

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