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cs.CV2026

CleanPatrick: A Benchmark for Image Data Cleaning

Fabian Gröger, Simone Lionetti, Philippe Gottfrois +12

Robust machine learning depends on clean data, yet current image data cleaning benchmarks rely on synthetic noise or narrow human studies, limiting comparison and real-world releva…

cs.CV2025

Is Hyperbolic Space All You Need for Medical Anomaly Detection?

Alvaro Gonzalez-Jimenez, Simone Lionetti, Ludovic Amruthalingam +4

Medical anomaly detection has emerged as a promising solution to challenges in data availability and labeling constraints. Traditional methods extract features from different layer…

cs.CV2024

Towards Scalable Foundation Models for Digital Dermatology

Fabian Gröger, Philippe Gottfrois, Ludovic Amruthalingam +5

The growing demand for accurate and equitable AI models in digital dermatology faces a significant challenge: the lack of diverse, high-quality labeled data. In this work, we inves…

cs.CV2024

PASSION for Dermatology: Bridging the Diversity Gap with Pigmented Skin Images from Sub-Saharan Africa

Philippe Gottfrois, Fabian Gröger, Faly Herizo Andriambololoniaina +13

Africa faces a huge shortage of dermatologists, with less than one per million people. This is in stark contrast to the high demand for dermatologic care, with 80% of the paediatri…

cs.CV2024

Intrinsic Self-Supervision for Data Quality Audits

Fabian Gröger, Simone Lionetti, Philippe Gottfrois +6

Benchmark datasets in computer vision often contain off-topic images, near duplicates, and label errors, leading to inaccurate estimates of model performance. In this paper, we rev…

cs.CV2024

Hyperbolic Metric Learning for Visual Outlier Detection

Alvaro Gonzalez-Jimenez, Simone Lionetti, Dena Bazazian +4

Out-Of-Distribution (OOD) detection is critical to deploy deep learning models in safety-critical applications. However, the inherent hierarchical concept structure of visual data,…