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20232025
most citedMIRAGE: Multimodal foundation model and benchmark for comprehensive retinal OCT image analysis

22 citations · 27 across the 8 of their papers we have counts for

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8 papers · 1 filter

cs.CV2025

GARD: Gamma-based Anatomical Restoration and Denoising for Retinal OCT

Botond Fazekas, Thomas Pinetz, Guilherme Aresta +2

Optical Coherence Tomography (OCT) is a vital imaging modality for diagnosing and monitoring retinal diseases. However, OCT images are inherently degraded by speckle noise, which o…

cs.CV202522 cited

MIRAGE: Multimodal foundation model and benchmark for comprehensive retinal OCT image analysis

José Morano, Botond Fazekas, Emese Sükei +7

Artificial intelligence (AI) has become a fundamental tool for assisting clinicians in analyzing ophthalmic images, such as optical coherence tomography (OCT). However, developing…

cs.CV2025

Deep Learning for Retinal Degeneration Assessment: A Comprehensive Analysis of the MARIO Challenge

Rachid Zeghlache, Ikram Brahim, Pierre-Henri Conze +47

The MARIO challenge, held at MICCAI 2024, focused on advancing the automated detection and monitoring of age-related macular degeneration (AMD) through the analysis of optical cohe…

cs.CV2024

Forecasting Disease Progression with Parallel Hyperplanes in Longitudinal Retinal OCT

Arunava Chakravarty, Taha Emre, Dmitrii Lachinov +8

Predicting future disease progression risk from medical images is challenging due to patient heterogeneity, and subtle or unknown imaging biomarkers. Moreover, deep learning (DL) m…

cs.CV2024

Learning Temporally Equivariance for Degenerative Disease Progression in OCT by Predicting Future Representations

Taha Emre, Arunava Chakravarty, Dmitrii Lachinov +3

Contrastive pretraining provides robust representations by ensuring their invariance to different image transformations while simultaneously preventing representational collapse. E…

cs.CV2023

3DTINC: Time-Equivariant Non-Contrastive Learning for Predicting Disease Progression from Longitudinal OCTs

Taha Emre, Arunava Chakravarty, Antoine Rivail +10

Self-supervised learning (SSL) has emerged as a powerful technique for improving the efficiency and effectiveness of deep learning models. Contrastive methods are a prominent famil…