Bidirectional Copy-Paste for Semi-Supervised Medical Image Segmentation
Yunhao Bai, Duowen Chen, Qingli Li, Wei Shen, Yan Wang
摘要
In semi-supervised medical image segmentation, there exist empirical mismatch problems between labeled and unlabeled data distribution. The knowledge learned from the labeled data may be largely discarded if treating labeled and unlabeled data separately or in an inconsistent manner. We propose a straightforward method for alleviating the problemcopy-pasting labeled and unlabeled data bidirectionally, in a simple Mean Teacher architecture. The method encourages unlabeled data to learn comprehensive common semantics from the labeled data in both inward and outward directions. More importantly, the consistent learning procedure for labeled and unlabeled data can largely reduce the empirical distribution gap. In detail, we copypaste a random crop from a labeled image (foreground) onto an unlabeled image (background) and an unlabeled image (foreground) onto a labeled image (background), respectively. The two mixed images are fed into a Student network and supervised by the mixed supervisory signals of pseudo-labels and ground-truth. We reveal that the simple mechanism of copy-pasting bidirectionally between labeled and unlabeled data is good enough and the experiments show solid gains (e.g., over 21% Dice improvement on ACDC dataset with 5% labeled data) compared with other state-of-the-arts on various semi-supervised medical image segmentation datasets. Code is avaiable at https: //github.com/DeepMed-Lab-ECNU/BCP .
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引用它的顶会 Paper31
- CauSSL: Causality-inspired Semi-supervised Learning for Medical Image SegmentationJuzheng Miao, Cheng Chen, Furui Liu, Hao Wei 等ICCV 2023 · 被引用 88 次
- Towards Generic Semi-Supervised Framework for Volumetric Medical Image SegmentationHaonan Wang, Xiaomeng LiNeurIPS 2023 · 被引用 75 次
- Constructing and Exploring Intermediate Domains in Mixed Domain Semi-supervised Medical Image SegmentationQinghe Ma, Jian Zhang, Lei Qi, Qian Yu 等CVPR 2024 · 被引用 33 次
- DuSSS: Dual Semantic Similarity-Supervised Vision-Language Model for Semi-Supervised Medical Image SegmentationQingtao Pan, Wenhao Qiao, Jingjiao Lou, Bing Ji 等AAAI 2025 · 被引用 13 次
- GapMatch: Bridging Instance and Model Perturbations for Enhanced Semi-Supervised Medical Image SegmentationWei Huang, Lei Zhang, Zizhou Wang, Yan WangAAAI 2025 · 被引用 8 次
它引用的顶会 Paper17
- CutMix: Regularization Strategy to Train Strong Classifiers With Localizable FeaturesSangdoo Yun, Dongyoon Han, Sanghyuk Chun, Seong Joon Oh 等ICCV 2019 · 被引用 5,843 次
- Semi-supervised Medical Image Segmentation through Dual-task ConsistencyXiangde Luo, Jieneng Chen, Tao Song, Guotai WangAAAI 2021 · 被引用 754 次
- Perturbed and Strict Mean Teachers for Semi-supervised Semantic SegmentationYuyuan Liu, Yu Tian, Yuanhong Chen, Fengbei Liu 等CVPR 2022 · 被引用 287 次
- InstaBoost: Boosting Instance Segmentation via Probability Map Guided Copy-PastingHaoshu Fang, Jianhua Sun, Runzhong Wang, Minghao Gou 等ICCV 2019 · 被引用 236 次
- Pixel Contrastive-Consistent Semi-Supervised Semantic SegmentationYuanyi Zhong, Bodi Yuan, Hong Wu, Zhiqiang Yuan 等ICCV 2021 · 被引用 210 次
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