Visualization and workload with implicit fNIRS-based BCI: toward a real-time memory prosthesis with fNIRS.

IF 1.5 Q3 ERGONOMICS
Frontiers in neuroergonomics Pub Date : 2025-05-06 eCollection Date: 2025-01-01 DOI:10.3389/fnrgo.2025.1550629
Matthew Russell, Samuel Hincks, Liang Wang, Amin Babar, Zaiyi Chen, Zachary White, Robert J K Jacob
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Abstract

Functional Near-Infrared Spectroscopy (fNIRS) has proven in recent time to be a reliable workload-detection tool, usable in real-time implicit Brain-Computer Interfaces. But what can be done in terms of application of neural measurements of the prefrontal cortex beyond mental workload? We trained and tested a first prototype example of a memory prosthesis leveraging a real-time implicit fNIRS-based BCI interface intended to present information appropriate to a user's current brain state from moment to moment. Our prototype implementation used data from two tasks designed to interface with different brain networks: a creative visualization task intended to engage the Default Mode Network (DMN), and a complex knowledge-worker task to engage the Dorsolateral Prefrontal Cortex (DLPFC). Performance of 71% from leave-one-out cross-validation across participants indicates that such tasks are differentiable, which is promising for the development of future applied fNIRS-based BCI systems. Further, analyses within lateral and medial left prefrontal areas indicates promising approaches for future classification.

基于隐式近红外光谱的脑机接口的可视化和工作量:面向具有近红外光谱的实时记忆假体。
功能近红外光谱(fNIRS)近年来已被证明是一种可靠的工作负载检测工具,可用于实时隐式脑机接口。但是在前额叶皮层神经测量的应用方面,除了脑力负荷,我们还能做些什么呢?我们训练并测试了记忆假体的第一个原型,利用实时隐式基于fnir的BCI接口,旨在随时呈现适合用户当前大脑状态的信息。我们的原型实现使用了来自两个任务的数据,这些任务旨在与不同的大脑网络交互:一个是旨在参与默认模式网络(DMN)的创造性可视化任务,另一个是旨在参与背外侧前额叶皮层(DLPFC)的复杂知识工作者任务。在参与者之间进行的留一交叉验证中,71%的表现表明这些任务是可微分的,这对于未来应用基于fnir的BCI系统的开发是有希望的。此外,对左侧前额叶外侧和内侧区域的分析表明了未来分类的有希望的方法。
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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