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20192026
most citedSemi-Supervised Brain Lesion Segmentation with an Adapted Mean Teacher Model

11 citations · 13 across the 10 of their papers we have counts for

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6 papers · 1 filter

cs.LG2026

Device Passport: Enabling Spatio-Temporal Pretrained Models to Generalize Across Input Layouts

Geeling Chau, Ran Liu, Juri Minxha +5

New device layouts pose a challenging modeling problem due to the lack of large datasets for each specific layout. Biosignal foundation models offer a plausible solution if they ar…

cs.LG2026

Predicting Post-Traumatic Epilepsy from Clinical Records using Large Language Model Embeddings

Wenhui Cui, Nicholas Swingle, Anand A. Joshi +2

Objective: Post-traumatic epilepsy (PTE) is a debilitating neurological disorder that develops after traumatic brain injury (TBI). Early prediction of PTE remains challenging due t…

cs.LG2025

Neural Codecs as Biosignal Tokenizers

Kleanthis Avramidis, Tiantian Feng, Woojae Jeong +4

Neurophysiological recordings such as electroencephalography (EEG) offer accessible and minimally invasive means of estimating physiological activity for applications in healthcare…

cs.LG2025

CPEP: Contrastive Pose-EMG Pre-training Enhances Gesture Generalization on EMG Signals

Wenhui Cui, Christopher Sandino, Hadi Pouransari +7

Hand gesture classification using high-quality structured data such as videos, images, and hand skeletons is a well-explored problem in computer vision. Leveraging low-power, cost-…

cs.LG2023

Neuro-GPT: Towards A Foundation Model for EEG

Wenhui Cui, Woojae Jeong, Philipp Thölke +4

To handle the scarcity and heterogeneity of electroencephalography (EEG) data for Brain-Computer Interface (BCI) tasks, and to harness the power of large publicly available data se…

cs.LG20222 cited

Semi-supervised Learning using Robust Loss

Wenhui Cui, Haleh Akrami, Anand A. Joshi +1

The amount of manually labeled data is limited in medical applications, so semi-supervised learning and automatic labeling strategies can be an asset for training deep neural netwo…