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20242026
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cs.LG2026

You Only Train Once: Differentiable Subset Selection for Omics Data

Daphné Chopard, Jorge da Silva Gonçalves, Irene Cannistraci +2

Selecting compact and informative gene subsets from single-cell transcriptomic data is essential for biomarker discovery, improving interpretability, and cost-effective profiling.…

cs.LG2026

Benchmarking Machine Learning Architectures for Antimicrobial Stewardship in Pediatric ICUs

Niklas Raehse, Luregn J. Schlapbach, Daphné Chopard

Antimicrobial stewardship (AMS) is critical in pediatric intensive care units (PICUs), where diagnostic uncertainty often drives broad-spectrum antibiotic use, increasing antimicro…

cs.LG2025

Towards Scalable Newborn Screening: Automated General Movement Assessment in Uncontrolled Settings

Daphné Chopard, Sonia Laguna, Kieran Chin-Cheong +4

General movements (GMs) are spontaneous, coordinated body movements in infants that offer valuable insights into the developing nervous system. Assessed through the Prechtl GM Asse…

cs.LG2024

Towards Foundation Models for Critical Care Time Series

Manuel Burger, Fedor Sergeev, Malte Londschien +10

Notable progress has been made in generalist medical large language models across various healthcare areas. However, large-scale modeling of in-hospital time series data - such as…

cs.LG2024

Weakly-Supervised Multimodal Learning on MIMIC-CXR

Andrea Agostini, Daphné Chopard, Yang Meng +5

Multimodal data integration and label scarcity pose significant challenges for machine learning in medical settings. To address these issues, we conduct an in-depth evaluation of t…