多任务过程中涉及感觉运动控制的错误相关电位:脑机接口的ERP和离线解码研究。

IF 2.7 3区 医学 Q3 NEUROSCIENCES Frontiers in Human Neuroscience Pub Date : 2025-01-28 eCollection Date: 2025-01-01 DOI:10.3389/fnhum.2025.1516721
Masaki Yasuhara, Isao Nambu
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引用次数: 0

摘要

人类通过对错误的感知和反应来实现有效的行为。错误相关电位(ErrPs)是在感知错误时发生的电生理反应。已经提出利用errp来提高脑机接口(bci)的准确性,利用大脑的自然错误检测过程来提高系统性能。然而,外界和环境因素对errp可检测性的影响仍然知之甚少,特别是在涉及脑机接口操作和感觉运动控制的多任务场景中。在此,我们假设感觉运动控制的困难会导致多任务处理中神经资源的分散,从而导致ErrP特征的减少。为了验证这一点,我们进行了一项实验,在实验中,参与者被要求将一个球保持在黑板上的指定区域内,同时试图通过运动图像控制显示器上的光标。BCI提供的误差反馈随机概率为30%。采用无球(单任务)、轻球(易任务)和重球(难任务)三种场景来表征基于感觉运动控制难度的errp。此外,为了研究多任务处理对ErrP-BCI性能的影响,我们分析了离线的单次试验分类准确性。与我们的假设相反,改变感觉运动控制的难度并没有导致ErrP特征的显著变化。然而,多任务处理显著影响ErrP分类的准确性。事后分析显示,在单任务errp上训练的分类器在硬任务场景下表现出较低的准确性。据我们所知,这项研究首次调查了在多任务环境下errp是如何被调节的,包括在离线框架下的感觉运动控制和脑机接口操作。尽管ErrP特征保持不变,但观察到的准确性变化表明,甚至在实现基于ErrP的实时BCI之前,需要设计考虑任务负载的分类器。
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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Error-related potentials during multitasking involving sensorimotor control: an ERP and offline decoding study for brain-computer interface.

Humans achieve efficient behaviors by perceiving and responding to errors. Error-related potentials (ErrPs) are electrophysiological responses that occur upon perceiving errors. Leveraging ErrPs to improve the accuracy of brain-computer interfaces (BCIs), utilizing the brain's natural error-detection processes to enhance system performance, has been proposed. However, the influence of external and contextual factors on the detectability of ErrPs remains poorly understood, especially in multitasking scenarios involving both BCI operations and sensorimotor control. Herein, we hypothesized that the difficulty in sensorimotor control would lead to the dispersion of neural resources in multitasking, resulting in a reduction in ErrP features. To examine this, we conducted an experiment in which participants were instructed to keep a ball within a designated area on a board, while simultaneously attempting to control a cursor on a display through motor imagery. The BCI provided error feedback with a random probability of 30%. Three scenarios-without a ball (single-task), lightweight ball (easy-task), and heavyweight ball (hard-task)-were used for the characterization of ErrPs based on the difficulty of sensorimotor control. In addition, to examine the impact of multitasking on ErrP-BCI performance, we analyzed single-trial classification accuracy offline. Contrary to our hypothesis, varying the difficulty of sensorimotor control did not result in significant changes in ErrP features. However, multitasking significantly affected ErrP classification accuracy. Post-hoc analyses revealed that the classifier trained on single-task ErrPs exhibited reduced accuracy under hard-task scenarios. To our knowledge, this study is the first to investigate how ErrPs are modulated in a multitasking environment involving both sensorimotor control and BCI operation in an offline framework. Although the ErrP features remained unchanged, the observed variation in accuracy suggests the need to design classifiers that account for task load even before implementing a real-time ErrP-based BCI.

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来源期刊
Frontiers in Human Neuroscience
Frontiers in Human Neuroscience 医学-神经科学
CiteScore
4.70
自引率
6.90%
发文量
830
审稿时长
2-4 weeks
期刊介绍: Frontiers in Human Neuroscience is a first-tier electronic journal devoted to understanding the brain mechanisms supporting cognitive and social behavior in humans, and how these mechanisms might be altered in disease states. The last 25 years have seen an explosive growth in both the methods and the theoretical constructs available to study the human brain. Advances in electrophysiological, neuroimaging, neuropsychological, psychophysical, neuropharmacological and computational approaches have provided key insights into the mechanisms of a broad range of human behaviors in both health and disease. Work in human neuroscience ranges from the cognitive domain, including areas such as memory, attention, language and perception to the social domain, with this last subject addressing topics, such as interpersonal interactions, social discourse and emotional regulation. How these processes unfold during development, mature in adulthood and often decline in aging, and how they are altered in a host of developmental, neurological and psychiatric disorders, has become increasingly amenable to human neuroscience research approaches. Work in human neuroscience has influenced many areas of inquiry ranging from social and cognitive psychology to economics, law and public policy. Accordingly, our journal will provide a forum for human research spanning all areas of human cognitive, social, developmental and translational neuroscience using any research approach.
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