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Semi-supervised Medical Image Segmentation with Confidence Calibration

  • Qisen Xu
  • , Qian Wu
  • , Yiqiu Hu
  • , Bo Jin*
  • , Bin Hu
  • , Fengping Zhu
  • , Yuxin Li
  • , Xiangfeng Wang*
  • *此作品的通讯作者
  • East China Normal University
  • Fudan University

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

The lack of high-quality expert labeled data is a common shortfall for medical image segmentation, which promotes semi-supervised learning scheme to an active research topic. The pseudo-labeling technique has been demonstrated to be a powerful module in semi-supervised segmentation framework for leveraging unlabeled data. However, simple generated pseudo labels are inevitably noisy and limited by the introduced confirmation biases, for the reason that the prediction errors of these pseudo labels would enhance the misleading to the segmentation network. In this paper, we propose to estimate the prediction confidence during the training process and further utilize the confidence to calibrate the pseudo label with the purpose to mitigate the confirmation bias problem. To emphasize, the pixel-wise confidence of the prediction results are learned through an adversarial network, while untrustworthy areas could be determined based on the prediction confidence. Rectified pseudo labels on untrustworthy areas are modified and further be utilized for medical image segmentation. The effectiveness on segmentation performance and noisy pseudo label calibration are proved by comparing several supervised or semi-supervised methods on BraTS2015 dataset and other two 3D medical image datasets.

源语言英语
主期刊名IJCNN 2021 - International Joint Conference on Neural Networks, Proceedings
出版商Institute of Electrical and Electronics Engineers Inc.
ISBN(电子版)9780738133669
DOI
出版状态已出版 - 18 7月 2021
活动2021 International Joint Conference on Neural Networks, IJCNN 2021 - Virtual, Online, 中国
期限: 18 7月 202122 7月 2021

出版系列

姓名Proceedings of the International Joint Conference on Neural Networks
2021-July
ISSN(印刷版)2161-4393
ISSN(电子版)2161-4407

会议

会议2021 International Joint Conference on Neural Networks, IJCNN 2021
国家/地区中国
Virtual, Online
时期18/07/2122/07/21

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