MedSAM2: Segment Anything in 3D Medical Images and Videos

核转染 反射减退 关节软骨损伤 妊娠期 食欲不振 TSG101型 肾小管病变 渗滤 癫痫 液化
作者
Ma Jun,Yang, Zongxin,Kim Su-Min,Chen Bihui,Baharoon, Mohammed,Fallahpour, Adibvafa,Asakereh, Reza,Lyu Hongwei,Wang Bo
出处
期刊:Cornell University - arXiv [Cornell University]
标识
DOI:10.48550/arxiv.2504.03600
摘要

Medical image and video segmentation is a critical task for precision medicine, which has witnessed considerable progress in developing task or modality-specific and generalist models for 2D images. However, there have been limited studies on building general-purpose models for 3D images and videos with comprehensive user studies. Here, we present MedSAM2, a promptable segmentation foundation model for 3D image and video segmentation. The model is developed by fine-tuning the Segment Anything Model 2 on a large medical dataset with over 455,000 3D image-mask pairs and 76,000 frames, outperforming previous models across a wide range of organs, lesions, and imaging modalities. Furthermore, we implement a human-in-the-loop pipeline to facilitate the creation of large-scale datasets resulting in, to the best of our knowledge, the most extensive user study to date, involving the annotation of 5,000 CT lesions, 3,984 liver MRI lesions, and 251,550 echocardiogram video frames, demonstrating that MedSAM2 can reduce manual costs by more than 85%. MedSAM2 is also integrated into widely used platforms with user-friendly interfaces for local and cloud deployment, making it a practical tool for supporting efficient, scalable, and high-quality segmentation in both research and healthcare environments.
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