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Research PaperResearchia:202610.07045

Benchmarking Label-Revealed Online Updates for EEG BCI Decoding

Bogdan Kozyrskiy

Abstract

Electroencephalography (EEG) signals drift over time, which can cause static brain-computer interface (BCI) models to degrade in practice. We present a benchmark for online adaptation and compare two widely used pipeline families, Common Spatial Patterns (CSP) and Riemannian covariance-based methods, under time-ordered prequential (test-then-train) evaluation. We examine (i) which pipelines benefit most from label-revealed updates, (ii) whether controlled forgetting of older data improves robust...

Submitted: October 7, 2026Subjects: Neuroscience; Bio-AI Interfaces

Description / Details

Electroencephalography (EEG) signals drift over time, which can cause static brain-computer interface (BCI) models to degrade in practice. We present a benchmark for online adaptation and compare two widely used pipeline families, Common Spatial Patterns (CSP) and Riemannian covariance-based methods, under time-ordered prequential (test-then-train) evaluation. We examine (i) which pipelines benefit most from label-revealed updates, (ii) whether controlled forgetting of older data improves robustness, and (iii) how a minimal-calibration cold start compares with starting from a pretrained model. Across four datasets (three motor-imagery datasets and one movement-decoding dataset), label-revealed online updates improve 13 of 14 model/dataset pairs on the two largest streams, with relative accuracy gains of up to about 18% over a frozen model. A Shapley-based data-valuation analysis over temporal blocks assigns the largest mean value to the most recent block in each of the three analyzed datasets, while older blocks retain positive value.


Source: arXiv:2610.07420v1 - http://arxiv.org/abs/2610.07420v1 PDF: https://arxiv.org/pdf/2610.07420v1 Original Link: http://arxiv.org/abs/2610.07420v1

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Submission Info
Date:
Oct 7, 2026
Topic:
Bio-AI Interfaces
Area:
Neuroscience
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