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cs.CV2025

PathBench: A comprehensive comparison benchmark for pathology foundation models towards precision oncology

Jiabo Ma, Yingxue Xu, Fengtao Zhou +23

The emergence of pathology foundation models has revolutionized computational histopathology, enabling highly accurate, generalized whole-slide image analysis for improved cancer d…

cs.CV2025

Label-Efficient Deep Learning in Medical Image Analysis: Challenges and Future Directions

Cheng Jin, Zhengrui Guo, Yi Lin +2

Deep learning has significantly advanced medical imaging analysis (MIA), achieving state-of-the-art performance across diverse clinical tasks. However, its success largely depends…

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…

cs.CV2025

A Large Model for Non-invasive and Personalized Management of Breast Cancer from Multiparametric MRI

Luyang Luo, Mingxiang Wu, Mei Li +8

Breast Magnetic Resonance Imaging (MRI) demonstrates the highest sensitivity for breast cancer detection among imaging modalities and is standard practice for high-risk women. Inte…

cs.CV2024

Self-eXplainable AI for Medical Image Analysis: A Survey and New Outlooks

Junlin Hou, Sicen Liu, Yequan Bie +4

The increasing demand for transparent and reliable models, particularly in high-stakes decision-making areas such as medical image analysis, has led to the emergence of eXplainable…

cs.CV2024

SurgPETL: Parameter-Efficient Image-to-Surgical-Video Transfer Learning for Surgical Phase Recognition

Shu Yang, Zhiyuan Cai, Luyang Luo +3

Capitalizing on image-level pre-trained models for various downstream tasks has recently emerged with promising performance. However, the paradigm of "image pre-training followed b…