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    SuperCL enhances medical image segmentation pre-training by using novel contrastive learning strategies. This approach improves segmentation accuracy, especially with limited annotated data, outperforming existing methods.

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    Area of Science:

    • Medical Imaging
    • Computer Vision
    • Machine Learning

    Background:

    • Medical image segmentation is crucial but hindered by limited expert-annotated datasets.
    • Existing contrastive learning methods often overlook intra-image pixel relationships and rely on inefficient manual thresholding for pair generation.

    Purpose of the Study:

    • To introduce SuperCL, a novel contrastive learning approach for medical image segmentation pre-training.
    • To address limitations in current methods by exploiting structural priors and pixel correlations.

    Main Methods:

    • SuperCL utilizes superpixel maps for generating pseudo masks to guide supervised contrastive learning.
    • Introduces Intra-image Local Contrastive Pairs (ILCP) and Inter-image Global Contrastive Pairs (IGCP) generation strategies.
    • Incorporates Average SuperPixel Feature Map Generation (ASP) and Connected Components Label Generation (CCL) modules for enhanced structural information exploitation.

    Main Results:

    • SuperCL demonstrated superior performance across 8 medical image datasets compared to 12 existing methods.
    • Achieved significant improvements in Dice Similarity Coefficient (DSC), including 3.15%, 5.44%, and 7.89% higher scores on MMWHS, CHAOS, and Spleen datasets, respectively, with only 10% annotations.
    • Visualization figures confirmed more precise segmentation predictions.

    Conclusions:

    • SuperCL offers an effective solution for medical image segmentation pre-training, particularly in low-data regimes.
    • The proposed contrastive pair generation strategies and structural information exploitation modules significantly advance the state-of-the-art.
    • The open-sourced code facilitates further research and application in medical image analysis.