arXiv:2502.14731q-bio.NCcs.LG2025-02

用脑电方向性连接追踪运动技能学习,揭示神经机制。

Beyond Performance Scores: Directed Functional Connectivity as a Brain-Based Biomarker for Motor Skill Learning and Retention

  • 基于脑电数据提取方向性功能连接,捕捉神经信息流向。
  • 能有效识别并跟踪学习各阶段变化,六周后仍稳定。
  • 适合手术等需长期精准训练的领域个性化评估。

运动技能习得(如外科、机器人、体育)依赖于反复训练复杂任务序列。传统绩效指标(如执行时间、错误率)无法反映背后的神经机制。本研究首次将方向性功能连接(dFC)作为脑源性生物标志物,用于解析Fitts和Posner运动学习模型的各个阶段,揭示神经适应过程。dFC不仅能衡量神经连接强度,还能捕捉信息传递方向,提供全维度的神经动态图景。分析表明,dFC可有效识别学习进程,并在六周洗脱期后保持稳定。对照组无显著dFC变化,证实其变化源于训练而非外部因素。该方法在群体与个体层面均实现精细化学习监测,有助于开发精准化、个性化的训练方案,提升外科教育等对精度和长期保留要求高的领域的成效。结果凸显了dFC作为稳健生物标志物的价值,可补充传统绩效指标,深化对运动技能学习与保留的理解。

原文摘要 · Abstract (English)

Motor skill acquisition in fields like surgery, robotics, and sports involves learning complex task sequences through extensive training. Traditional performance metrics, like execution time and error rates, offer limited insight as they fail to capture the neural mechanisms underlying skill learning and retention. This study introduces directed functional connectivity (dFC), derived from electroencephalography (EEG), as a novel brain-based biomarker for assessing motor skill learning and retention. For the first time, dFC is applied as a biomarker to map the stages of the Fitts and Posner motor learning model, offering new insights into the neural mechanisms underlying skill acquisition and retention. Unlike traditional measures, it captures both the strength and direction of neural information flow, providing a comprehensive understanding of neural adaptations across different learning stages. The analysis demonstrates that dFC can effectively identify and track the progression through various stages of the Fitts and Posner model. Furthermore, its stability over a six-week washout period highlights its utility in monitoring long-term retention. No significant changes in dFC were observed in a control group, confirming that the observed neural adaptations were specific to training and not due to external factors. By offering a granular view of the learning process at the group and individual levels, dFC facilitates the development of personalized, targeted training protocols aimed at enhancing outcomes in fields where precision and long-term retention are critical, such as surgical education. These findings underscore the value of dFC as a robust biomarker that complements traditional performance metrics, providing a deeper understanding of motor skill learning and retention.

脑机接口运动学习神经生物标志物脑电分析

Thank you to arXiv for use of its open access interoperability. PaperDance 不是 arXiv 官方产品;中文卡片由大模型生成,请以原文为准。