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From the 1 of 15 linked papers with an AI index.

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20242026
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cs.LG2026

S-CEReBrO: Breaking the Memory Barrier in Continuous EEG Monitoring

Glenn Anta Bucagu, Thorir Mar Ingolfsson, Yawei Li +1

The paper introduces S-CEReBrO, a streaming Transformer architecture that uses a windowed alternating attention mechanism to keep memory usage constant during continuous EEG monito…

cs.LG2026

Quantizing Recursive Reasoning Models

Thorir Mar Ingolfsson, Wajeeha Tahir, Anna Tegon +3

Recursive reasoning models solve hard puzzles by applying compact, weight-tied blocks over many refinement steps. Because these blocks are reused many times, quantizing them create…

cs.LG2025

LUNA: Efficient and Topology-Agnostic Foundation Model for EEG Signal Analysis

Berkay Döner, Thorir Mar Ingolfsson, Luca Benini +1

Electroencephalography (EEG) offers a non-invasive lens into human brain activity, but building large-scale models is hampered by topological heterogeneity: each public EEG data de…

cs.LG2025

CEReBrO: Compact Encoder for Representations of Brain Oscillations Using Efficient Alternating Attention

Alexandru Dimofte, Glenn Anta Bucagu, Thorir Mar Ingolfsson +4

Electroencephalograph (EEG) is a crucial tool for studying brain activity. Recently, self-supervised learning methods leveraging large unlabeled datasets have emerged as a potentia…

cs.LG2025

FEMBA: Efficient and Scalable EEG Analysis with a Bidirectional Mamba Foundation Model

Anna Tegon, Thorir Mar Ingolfsson, Xiaying Wang +2

Accurate and efficient electroencephalography (EEG) analysis is essential for detecting seizures and artifacts in long-term monitoring, with applications spanning hospital diagnost…

cs.LG2024

BISeizuRe: BERT-Inspired Seizure Data Representation to Improve Epilepsy Monitoring

Luca Benfenati, Thorir Mar Ingolfsson, Andrea Cossettini +3

This study presents a novel approach for EEG-based seizure detection leveraging a BERT-based model. The model, BENDR, undergoes a two-phase training process. Initially, it is pre-t…