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cs.CV2026

Beyond Independent Frames: Latent Attention Masked Autoencoders for Multi-View Echocardiography

Simon Böhi, Irene Cannistraci, Sergio Muñoz Gonzalez +8

Echocardiography is a widely used modality for cardiac assessment due to its non-invasive and cost-effective nature, but the sparse and heterogeneous spatiotemporal views of the he…

cs.CV2025

Leveraging the Structure of Medical Data for Improved Representation Learning

Andrea Agostini, Sonia Laguna, Alain Ryser +7

Building generalizable medical AI systems requires pretraining strategies that are data-efficient and domain-aware. Unlike internet-scale corpora, clinical datasets such as MIMIC-C…

cs.CV2025

Interpretable Diffusion Models with B-cos Networks

Nicola Bernold, Moritz Vandenhirtz, Alice Bizeul +1

Text-to-image diffusion models generate images by iteratively denoising random noise, conditioned on a prompt. While these models have enabled impressive progress in image generati…

cs.CV2025

From Pixels to Perception: Interpretable Predictions via Instance-wise Grouped Feature Selection

Moritz Vandenhirtz, Julia E. Vogt

Understanding the decision-making process of machine learning models provides valuable insights into the task, the data, and the reasons behind a model's failures. In this work, we…

cs.CV2025

Revisiting Automatic Data Curation for Vision Foundation Models in Digital Pathology

Boqi Chen, Cédric Vincent-Cuaz, Lydia A. Schoenpflug +12

Vision foundation models (FMs) are accelerating the development of digital pathology algorithms and transforming biomedical research. These models learn, in a self-supervised manne…

cs.CV2025

RadVLM: A Multitask Conversational Vision-Language Model for Radiology

Nicolas Deperrois, Hidetoshi Matsuo, Samuel Ruipérez-Campillo +12

The widespread use of chest X-rays (CXRs), coupled with a shortage of radiologists, has driven growing interest in automated CXR analysis and AI-assisted reporting. While existing…