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Enhancing the Performance of Event-Related Potential-Based Brain-Computer Interfaces Under Cognitive Distraction: A

Minju Kim, Dojin Heo, Jongsu Kim

    IEEE Transactions on Neural Systems and Rehabilitation Engineering : a Publication of the IEEE Engineering in Medicine and Biology Society
    |April 20, 2026
    PubMed
    Summary
    This summary is machine-generated.

    This study introduces a new multiwindow adaptive model to improve brain-computer interfaces (BCIs) performance. The model enhances event-related potential (ERP)-based BCIs, making them more robust against cognitive distractions during multitasking.

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    Area of Science:

    • Neuroscience
    • Biomedical Engineering
    • Human-Computer Interaction

    Background:

    • Brain-computer interfaces (BCIs) utilizing event-related potentials (ERPs) typically demand high user attention.
    • Real-world BCI applications often involve multitasking and cognitive distractions, which significantly impair ERP amplitudes and overall BCI performance.
    • Existing BCI models struggle to maintain accuracy in distracting environments.

    Purpose of the Study:

    • To develop and validate a novel multiwindow adaptive model for visual ERP-based BCIs.
    • To mitigate the performance degradation caused by cognitive distraction in real-world BCI scenarios.
    • To enhance the robustness and practical applicability of ERP-based BCIs.

    Main Methods:

    • The proposed approach segments poststimulus intervals into multiple overlapping windows.
    • Each window employs dedicated spatial filters and classifiers that are continuously updated via adaptive semi-supervised learning.
    • The model was tested using offline experiments on a dataset collected during concurrent speaking and validated through online experiments.

    Main Results:

    • Offline experiments demonstrated that the multiwindow adaptive model significantly outperformed single-window and fixed models, achieving 91.08% accuracy.
    • Online experiments confirmed the model's effectiveness in restoring BCI performance under cognitive distraction, reaching 93.20% accuracy.
    • The results indicate substantial improvements in BCI performance despite challenging, distracting conditions.

    Conclusions:

    • The multiwindow adaptive model offers a practical solution for enhancing ERP-based BCIs in real-world, distracting environments.
    • Temporally tailored feature extraction and continuous adaptation are crucial for robust BCI performance.
    • This approach enables reliable BCI operation even when users are multitasking or experiencing cognitive load.