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cs.CV20253 cited

Benchmarking Real-World Medical Image Classification with Noisy Labels: Challenges, Practice, and Outlook

Yuan Ma, Junlin Hou, Chao Zhang +4

Learning from noisy labels remains a major challenge in medical image analysis, where annotation demands expert knowledge and substantial inter-observer variability often leads to…

cs.CV2025

A Versatile Foundation Model for AI-enabled Mammogram Interpretation

Fuxiang Huang, Jiayi Zhu, Yunfang Yu +20

Breast cancer is the most commonly diagnosed cancer and the leading cause of cancer-related mortality in women globally. Mammography is essential for the early detection and diagno…

cs.CV2025

A Unified Low-level Foundation Model for Enhancing Pathology Image Quality

Ziyi Liu, Zhe Xu, Jiabo Ma +7

Foundation models have revolutionized computational pathology by achieving remarkable success in high-level diagnostic tasks, yet the critical challenge of low-level image enhancem…

eess.IV2025

Solutions for Mitotic Figure Detection and Atypical Classification in MIDOG 2025

Shuting Xu, Runtong Liu, Zhixuan Chen +2

Deep learning has driven significant advances in mitotic figure analysis within computational pathology. In this paper, we present our approach to the Mitosis Domain Generalization…

cs.CV2025

Segment Anything in Pathology Images with Natural Language

Zhixuan Chen, Junlin Hou, Liqi Lin +6

Pathology image segmentation is crucial in computational pathology for analyzing histological features relevant to cancer diagnosis and prognosis. However, current methods face maj…

cs.CV2025

HMIL: Hierarchical Multi-Instance Learning for Fine-Grained Whole Slide Image Classification

Cheng Jin, Luyang Luo, Huangjing Lin +2

Fine-grained classification of whole slide images (WSIs) is essential in precision oncology, enabling precise cancer diagnosis and personalized treatment strategies. The core of th…