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EEG-Xplain framework targets interpretability of EEG foundation models
A new arXiv paper proposes EEG-Xplain, a unified attribution framework intended to make EEG foundation models such as BIOT, LaBraM, and EEGMamba more interpretable. The authors argue that the black-box nature of these models hinders clinical trust and neuroscientific validation. The work aims to provide a common approach for attributing model outputs to neural signal inputs.