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Unsupervised Joint Alignment Framework for Cross-Site Depression Classification Using fMRI.

Deyi Ren, Youjun Li, Christina Carlisi

    IEEE Journal of Biomedical and Health Informatics
    |April 21, 2026
    PubMed
    Summary
    This summary is machine-generated.

    This study introduces Unsupervised Joint Alignment (UJA), a novel framework for diagnosing major depressive disorder (MDD) using brain imaging. UJA effectively overcomes data inconsistencies across different MRI scanners, improving diagnostic accuracy.

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    Area of Science:

    • Neuroimaging
    • Machine Learning
    • Mental Health Research

    Background:

    • Major Depressive Disorder (MDD) affects over 264 million globally, causing significant burdens.
    • Resting-state functional MRI (rs-fMRI) shows promise for MDD diagnosis.
    • Inter-site heterogeneity in rs-fMRI data hinders generalizable diagnostic models.

    Purpose of the Study:

    • To develop a robust framework for cross-site MDD classification using rs-fMRI.
    • To address the challenge of inter-site heterogeneity in machine learning models for MDD detection.

    Main Methods:

    • Proposed the Unsupervised Joint Alignment (UJA) framework for rs-fMRI data adaptation.
    • Utilized a multi-head self-attention module for feature extraction.
    • Integrated adversarial domain-wise and class-wise alignment using dual classifiers and sliced Wasserstein distance.

    Main Results:

    • UJA significantly outperformed existing methods in cross-site MDD classification on the REST-meta-MDD dataset.
    • Ablation studies confirmed the effectiveness of the dual alignment strategy.
    • Demonstrated the potential for generalizable MDD diagnosis across different imaging sites.

    Conclusions:

    • UJA offers a promising unsupervised approach for adapting rs-fMRI data across sites.
    • The framework enhances the robustness and generalizability of MDD diagnostic models.
    • UJA could serve as a valuable tool for clinical decision support in MDD diagnosis.