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zadetkov: 45
1.
  • Deep Learning for Cardiac I... Deep Learning for Cardiac Image Segmentation: A Review
    Chen, Chen; Qin, Chen; Qiu, Huaqi ... Frontiers in cardiovascular medicine, 03/2020, Letnik: 7
    Journal Article
    Recenzirano
    Odprti dostop

    Deep learning has become the most widely used approach for cardiac image segmentation in recent years. In this paper, we provide a review of over 100 cardiac image segmentation papers using deep ...
Celotno besedilo
Dostopno za: UL

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2.
  • Self-Supervised Learning fo... Self-Supervised Learning for Few-Shot Medical Image Segmentation
    Ouyang, Cheng; Biffi, Carlo; Chen, Chen ... IEEE transactions on medical imaging, 07/2022, Letnik: 41, Številka: 7
    Journal Article
    Odprti dostop

    Fully-supervised deep learning segmentation models are inflexible when encountering new unseen semantic classes and their fine-tuning often requires significant amounts of annotated data. Few-shot ...
Celotno besedilo
Dostopno za: UL
3.
  • Enhancing MR image segmenta... Enhancing MR image segmentation with realistic adversarial data augmentation
    Chen, Chen; Qin, Chen; Ouyang, Cheng ... Medical image analysis, November 2022, 2022-11-00, 20221101, Letnik: 82
    Journal Article
    Recenzirano
    Odprti dostop

    The success of neural networks on medical image segmentation tasks typically relies on large labeled datasets for model training. However, acquiring and manually labeling a large medical image set is ...
Celotno besedilo
Dostopno za: UL
4.
  • Conditional Deformable Image Registration with Spatially-Variant and Adaptive Regularization
    Wang, Yinsong; Qiu, Huaqi; Qin, Chen 2023 IEEE 20th International Symposium on Biomedical Imaging (ISBI), 2023-April-18
    Conference Proceeding

    Deep learning-based image registration approaches have shown competitive performance and run-time advantages compared to conventional image registration methods. However, existing learning-based ...
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Dostopno za: UL
5.
  • Learn2Reg: Comprehensive Mu... Learn2Reg: Comprehensive Multi-Task Medical Image Registration Challenge, Dataset and Evaluation in the Era of Deep Learning
    Hering, Alessa; Hansen, Lasse; Mok, Tony C. W. ... IEEE transactions on medical imaging, 03/2023, Letnik: 42, Številka: 3
    Journal Article
    Odprti dostop

    Image registration is a fundamental medical image analysis task, and a wide variety of approaches have been proposed. However, only a few studies have comprehensively compared medical image ...
Celotno besedilo
Dostopno za: UL
6.
  • CHeart: A Conditional Spati... CHeart: A Conditional Spatio-Temporal Generative Model for Cardiac Anatomy
    Qiao, Mengyun; Wang, Shuo; Qiu, Huaqi ... IEEE transactions on medical imaging, 03/2024, Letnik: 43, Številka: 3
    Journal Article
    Odprti dostop

    Two key questions in cardiac image analysis are to assess the anatomy and motion of the heart from images; and to understand how they are associated with non-imaging clinical factors such as gender, ...
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Dostopno za: UL
7.
  • Learning a Model-Driven Var... Learning a Model-Driven Variational Network for Deformable Image Registration
    Jia, Xi; Thorley, Alexander; Chen, Wei ... IEEE transactions on medical imaging, 2022-Jan., 2022-01-00, 2022-1-00, 20220101, Letnik: 41, Številka: 1
    Journal Article
    Odprti dostop

    Data-driven deep learning approaches to image registration can be less accurate than conventional iterative approaches, especially when training data is limited. To address this issue and meanwhile ...
Celotno besedilo
Dostopno za: UL

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8.
  • MOOD 2020: A Public Benchma... MOOD 2020: A Public Benchmark for Out-of-Distribution Detection and Localization on Medical Images
    Zimmerer, David; Full, Peter M.; Isensee, Fabian ... IEEE transactions on medical imaging, 10/2022, Letnik: 41, Številka: 10
    Journal Article
    Odprti dostop

    Detecting Out-of-Distribution (OoD) data is one of the greatest challenges in safe and robust deployment of machine learning algorithms in medicine. When the algorithms encounter cases that deviate ...
Celotno besedilo
Dostopno za: UL
9.
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10.
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zadetkov: 45

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