Výsledky vyhľadávania - Semi-supervised learning 3D medical image segmentation Class imbalance Data augmentation

  1. 1

    Shape Transformation Driven by Active Contour for Class-Imbalanced Semi-Supervised Medical Image Segmentation Autor Gu, Yuliang, Liu, Yepeng, Sun, Zhichao, Zhu, Jinchi, Xu, Yongchao, Najman, Laurent

    ISSN: 2156-1133
    Vydavateľské údaje: IEEE 03.12.2024
    “…Annotating 3D medical images demands expert knowledge and is time-consuming. As a result, semi-supervised learning (SSL…”
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    When CNN Meet with ViT: Towards Semi-Supervised Learning for Multi-Class Medical Image Semantic Segmentation Autor Wang, Ziyang, Li, Tianze, Jian-Qing Zheng, Huang, Baoru

    ISSN: 2331-8422
    Vydavateľské údaje: Ithaca Cornell University Library, arXiv.org 08.02.2024
    Vydané v arXiv.org (08.02.2024)
    “…Due to the lack of quality annotation in medical imaging community, semi-supervised learning methods are highly valued in image semantic segmentation tasks…”
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    Consistency learning with dynamic weighting and class-agnostic regularization for semi-supervised medical image segmentation Autor Su, Jiawei, Luo, Zhiming, Lian, Sheng, Lin, Dazhen, Li, Shaozi

    ISSN: 1746-8094, 1746-8108
    Vydavateľské údaje: Elsevier Ltd 01.04.2024
    “…Recently, significant progress has been made in consistency regularization-based semi-supervised medical image segmentation…”
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    Journal Article
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    Semi-Supervised Volumetric Medical Image Segmentation via Class Prototype Guided Distribution-Aligned Representation Learning Autor Kong, Xiangyu, Ren, Zeyu, Liu, Lu

    ISSN: 2379-190X
    Vydavateľské údaje: IEEE 14.04.2024
    “…We present SemiCRL, a novel framework for volumetric medical image segmentation that formulates an innovative contrastive learning methodology in a semi-supervised learning setting…”
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  5. 5

    Semi-Supervised Learning for Medical Image Segmentation Autor Li, Ruizhe

    ISBN: 9798283474595
    Vydavateľské údaje: ProQuest Dissertations & Theses 01.01.2023
    “…Medical image segmentation is a fundamental step in many computer aided clinical applications, such as tumour detection and quantification, organ measurement and feature learning, etc…”
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    Dissertation
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    Entropy‐guided contrastive learning for semisupervised medical image segmentation Autor Xie, Junsong, Wu, Qian, Zhu, Renju

    ISSN: 1751-9659, 1751-9667
    Vydavateľské údaje: Wiley 01.02.2024
    Vydané v IET image processing (01.02.2024)
    “…‐consuming and difficult to obtain. As a result, semisupervised learning (SSL) has gained attention as it has the potential to alleviate this challenge by using not only limited labelled data but also a large amount of unlabelled data…”
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    Semisupervised medical image segmentation network based on mutual learning Autor Sun, Junmei, Wang, Tianyang, Wang, Meixi, Li, Xiumei, Xu, Yingying

    ISSN: 0094-2405, 2473-4209, 2473-4209
    Vydavateľské údaje: United States 01.03.2025
    Vydané v Medical physics (Lancaster) (01.03.2025)
    “…Background Semisupervised learning provides an effective means to address the challenge of insufficient labeled data in medical image segmentation tasks…”
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    Multidimensional perturbed consistency learning for semisupervised medical image segmentation Autor Yuan, Enze, Zhao, Bin, Qin, Xiao, Ding, Shuxue

    ISSN: 0899-9457, 1098-1098
    Vydavateľské údaje: Hoboken, USA John Wiley & Sons, Inc 01.05.2024
    “…) for more accurate semisupervised medical image segmentation. Specifically, we develop a multidimensional perturbation by considering the noise itself, the target object and the overall spatial architecture…”
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    Dual Diversity and Pseudo‐Label Correction Learning for SemiSupervised Medical Image Segmentation Autor Du, Guangxing, Wu, Rui, Xu, Jinming, Zeng, Xiang, Xiong, Shengwu

    ISSN: 0899-9457, 1098-1098
    Vydavateľské údaje: Hoboken, USA John Wiley & Sons, Inc 01.09.2025
    “…ABSTRACT Semisupervised medical image segmentation has recently gained increasing research attention as it can reduce the need for large…”
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    Dual‐Region Consistency Learning With Contrastive Refinement for SemiSupervised Medical Image Segmentation Autor Sun, Junmei, Wang, Meixi, Zhao, Jianxiang, Yang, Defu, Bai, Huang, Li, Xiumei

    ISSN: 0899-9457, 1098-1098
    Vydavateľské údaje: Hoboken, USA John Wiley & Sons, Inc 01.05.2025
    “… To address these issues, this paper proposes a novel semisupervised medical image segmentation framework named Dual…”
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    FUSION: Uncertainty‐Guided Federated SemiSupervised Learning for Medical Image Segmentation Autor Raheem, Abdul, Yang, Zhen, Yu, Haiyang, Manan, Malik Abdul, Sabah, Fahad, Ahmed, Shahzad

    ISSN: 1751-9659, 1751-9667
    Vydavateľské údaje: 01.01.2025
    Vydané v IET image processing (01.01.2025)
    “…Federated learning (FL) for medical image segmentation poses critical challenges, including non…”
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    Journal Article
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    Combining contrastive learning and shape awareness for semi-supervised medical image segmentation Autor Chen, Yaqi, Chen, Faquan, Huang, Chenxi

    ISSN: 0957-4174, 1873-6793
    Vydavateľské údaje: Elsevier Ltd 15.05.2024
    Vydané v Expert systems with applications (15.05.2024)
    “… Semi-supervised segmentation (SSL) techniques make extensive use of unlabeled data to address the issue of the high acquisition cost of medically labeled data…”
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    Rectified Mixed-Label Learning for Semi-Supervised Medical Image Segmentation Autor An, Zeyu, Chen, Zichong

    ISSN: 1945-788X
    Vydavateľské údaje: IEEE 30.06.2025
    “…Semi-supervised medical image segmentation (SSMIS) has gained increasing attention due to its potential to alleviate the manual annotation burden…”
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    EPL: Evidential Prototype Learning for Semi-supervised Medical Image Segmentation Autor He, Yuanpeng

    ISSN: 2331-8422
    Vydavateľské údaje: Ithaca Cornell University Library, arXiv.org 09.04.2024
    Vydané v arXiv.org (09.04.2024)
    “…Although current semi-supervised medical segmentation methods can achieve decent performance, they are still affected by the uncertainty in unlabeled data and model predictions, and there is…”
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    Learning Semi-Supervised Medical Image Segmentation from Spatial Registration Autor Liu, Qianying, Henderson, Paul, Gu, Xiao, Dai, Hang, Deligianni, Fani

    ISSN: 2331-8422
    Vydavateľské údaje: Ithaca Cornell University Library, arXiv.org 16.09.2024
    Vydané v arXiv.org (16.09.2024)
    “…Semi-supervised medical image segmentation has shown promise in training models with limited labeled data and abundant unlabeled data…”
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    Model-Heterogeneous Semi-Supervised Federated Learning for Medical Image Segmentation Autor Ma, Yuxi, Wang, Jiacheng, Yang, Jing, Wang, Liansheng

    ISSN: 0278-0062, 1558-254X, 1558-254X
    Vydavateľské údaje: United States IEEE 01.05.2024
    Vydané v IEEE transactions on medical imaging (01.05.2024)
    “…Medical image segmentation is crucial in clinical diagnosis, helping physicians identify and analyze medical conditions…”
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    Journal Article
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    Mixed Prototype Consistency Learning for Semi-supervised Medical Image Segmentation Autor Li, Lijian

    ISSN: 2331-8422
    Vydavateľské údaje: Ithaca Cornell University Library, arXiv.org 16.04.2024
    Vydané v arXiv.org (16.04.2024)
    “…Recently, prototype learning has emerged in semi-supervised medical image segmentation and achieved remarkable performance…”
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    Consistency and adversarial semi-supervised learning for medical image segmentation Autor Tang, Yongqiang, Wang, Shilei, Qu, Yuxun, Cui, Zhihua, Zhang, Wensheng

    ISSN: 0010-4825, 1879-0534, 1879-0534
    Vydavateľské údaje: United States Elsevier Ltd 01.07.2023
    Vydané v Computers in biology and medicine (01.07.2023)
    “… To settle above issue, in this paper, a novel semi-supervised medical image segmentation method is proposed, in which the adversarial training mechanism and the collaborative consistency learning…”
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    Mutual Evidential Deep Learning for Semi-supervised Medical Image Segmentation Autor He, Yuanpeng, Bi, Yali, Li, Lijian, Pun, Chi-Man, Jiao, Wenpin, Jin, Zhi

    ISSN: 2156-1133
    Vydavateľské údaje: IEEE 03.12.2024
    “…Existing semi-supervised medical segmentation co-learning frameworks have realized that model performance can be diminished by the biases in model recognition caused by low-quality pseudo-labels…”
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