AI Article Synopsis

  • Light-weight mobile EEG systems are convenient for monitoring brain activity outside of lab settings but are more prone to signal contamination.
  • Artifacts Subspace Reconstruction (ASR) can automatically remove transient-like artifacts, but its effectiveness on low-density EEG has been unclear until now.
  • This study demonstrates that ASR significantly improves SSVEP responses in low-density systems, achieving enhancements of up to 45% with optimal parameters, indicating its robustness for real-world applications.

Article Abstract

Light-weight, minimally-obtrusive mobile EEG systems with a small number of electrodes (i.e., low-density) allow for convenient monitoring of the brain activity in out-of-the-lab conditions. However, they pose a higher risk for signal contamination with non-stereotypical artifacts due to hardware limitations and the challenging environment where signals are collected. A promising solution is Artifacts Subspace Reconstruction (ASR), a component-based approach that can automatically remove non-stationary transient-like artifacts in EEG data. Since ASR has only been validated with high-density systems, it is unclear whether it is equally efficient on low-density portable EEG. This paper presents a complete analysis of ASR performance based on clean and contaminated datasets acquired with BioWolf, an Ultra-Low-Power system featuring only eight channels, during SSVEP sessions recorded from six adults. Empirical results show that even with such few channels, ASR efficiently corrects artifacts, enabling an overall enhancement of up to 40% in SSVEP response. Furthermore, by choosing the optimal ASR parameters on a single-subject basis, SSVEP response can be further increased to more than 45%. These results suggest that ASR is a viable and robust method for online automatic artifact correction with low-density BCI systems in real-life scenarios.

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Source
http://dx.doi.org/10.1109/EMBC46164.2021.9629771DOI Listing

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