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20232025
most citedSurgformer: Surgical Transformer with Hierarchical Temporal Attention for Surgical Phase Recognition

2 citations · 4 across the 3 of their papers we have counts for

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5 papers · 1 filter

cs.CV20241 cited

MG-3D: Multi-Grained Knowledge-Enhanced 3D Medical Vision-Language Pre-training

Xuefeng Ni, Linshan Wu, Jiaxin Zhuang +6

3D medical image analysis is pivotal in numerous clinical applications. However, the scarcity of labeled data and limited generalization capabilities hinder the advancement of AI-e…

cs.CV20242 cited

Surgformer: Surgical Transformer with Hierarchical Temporal Attention for Surgical Phase Recognition

Shu Yang, Luyang Luo, Qiong Wang +1

Existing state-of-the-art methods for surgical phase recognition either rely on the extraction of spatial-temporal features at a short-range temporal resolution or adopt the sequen…

cs.CV2024

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

MiM: Mask in Mask Self-Supervised Pre-Training for 3D Medical Image Analysis

Jiaxin Zhuang, Linshan Wu, Qiong Wang +4

The Vision Transformer (ViT) has demonstrated remarkable performance in Self-Supervised Learning (SSL) for 3D medical image analysis. Masked AutoEncoder (MAE) for feature pre-train…

cs.CV2024

GSCo: Towards Generalizable AI in Medicine via Generalist-Specialist Collaboration

Sunan He, Yuxiang Nie, Hongmei Wang +21

Generalist foundation models (GFMs) are renowned for their exceptional capability and flexibility in effectively generalizing across diverse tasks and modalities. In the field of m…