LuMamba: Latent Unified Mamba for Electrode Topology-Invariant and Efficient EEG Modeling
Dana\'e Broustail, Anna Tegon, Thorir Mar Ingolfsson, Yawei Li, Luca Benini

TL;DR
LuMamba is a novel EEG modeling framework that achieves electrode topology invariance and high efficiency by combining topology-invariant encodings with linear-complexity temporal modeling, enabling robust downstream EEG tasks.
Contribution
The paper introduces LuMamba, a self-supervised EEG model that unifies electrode topologies and scales efficiently using state-space models and a novel joint-embedding architecture.
Findings
Achieves 80.99% balanced accuracy on TUAB
State-of-the-art Alzheimer's detection with 0.97 AUPR
Requires 377 times fewer FLOPS than comparable models
Abstract
Electroencephalography (EEG) enables non-invasive monitoring of brain activity across clinical and neurotechnology applications, yet building foundation models for EEG remains challenging due to \emph{differing electrode topologies} and \emph{computational scalability}, as Transformer architectures incur quadratic sequence complexity. As a joint solution, we propose \textbf{LuMamba} (\textbf{L}atent \textbf{U}nified \textbf{Mamba}), a self-supervised framework combining topology-invariant encodings with linear-complexity state-space modeling, using LUNA's learned-query cross-attention mechanism for channel unification~\cite{luna}, and FEMBA's bidirectional Mamba blocks for efficient temporal modeling~\cite{femba}. Within this architecture, we provide the first systematic investigation of the Latent-Euclidean Joint-Embedding Predictive Architecture (LeJEPA) for biosignal learning.…
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Taxonomy
TopicsEEG and Brain-Computer Interfaces · Functional Brain Connectivity Studies · Neural dynamics and brain function
