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Is Segment Anything Model 2 All You Need for Surgery Video Segmentation? A Systematic Evaluation

Authors :
Yuan, Cheng
Jiang, Jian
Yang, Kunyi
Wu, Lv
Wang, Rui
Meng, Zi
Ping, Haonan
Xu, Ziyu
Zhou, Yifan
Song, Wanli
Wang, Hesheng
Dou, Qi
Ban, Yutong
Publication Year :
2024

Abstract

Surgery video segmentation is an important topic in the surgical AI field. It allows the AI model to understand the spatial information of a surgical scene. Meanwhile, due to the lack of annotated surgical data, surgery segmentation models suffer from limited performance. With the emergence of SAM2 model, a large foundation model for video segmentation trained on natural videos, zero-shot surgical video segmentation became more realistic but meanwhile remains to be explored. In this paper, we systematically evaluate the performance of SAM2 model in zero-shot surgery video segmentation task. We conducted experiments under different configurations, including different prompting strategies, robustness, etc. Moreover, we conducted an empirical evaluation over the performance, including 9 datasets with 17 different types of surgeries.

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2501.00525
Document Type :
Working Paper