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    MADE-for-ASD: A multi-atlas deep ensemble network for diagnosing Autism Spectrum Disorder

    Access Status
    In process
    Authors
    Liu, X.
    Hasan, Rakibul
    Gedeon, Tom
    Hossain, Md Zakir
    Date
    2024
    Type
    Journal Article
    
    Metadata
    Show full item record
    Citation
    Liu, X. and Hasan, M.R. and Gedeon, T. and Hossain, M.Z. 2024. MADE-for-ASD: A multi-atlas deep ensemble network for diagnosing Autism Spectrum Disorder. Computers in Biology and Medicine. 182: pp. 109083-.
    Source Title
    Computers in Biology and Medicine
    DOI
    10.1016/j.compbiomed.2024.109083
    ISSN
    0010-4825
    Faculty
    Faculty of Science and Engineering
    Faculty of Science and Engineering
    Faculty of Science and Engineering
    School
    School of Elec Eng, Comp and Math Sci (EECMS)
    School of Elec Eng, Comp and Math Sci (EECMS)
    School of Elec Eng, Comp and Math Sci (EECMS)
    URI
    http://hdl.handle.net/20.500.11937/98342
    Collection
    • Curtin Research Publications
    Abstract

    In response to the global need for efficient early diagnosis of Autism Spectrum Disorder (ASD), this paper bridges the gap between traditional, time-consuming diagnostic methods and potential automated solutions. We propose a multi-atlas deep ensemble network, MADE-for-ASD, that integrates multiple atlases of the brain's functional magnetic resonance imaging (fMRI) data through a weighted deep ensemble network. Our approach integrates demographic information into the prediction workflow, which enhances ASD diagnosis performance and offers a more holistic perspective on patient profiling. We experiment with the well-known publicly available ABIDE (Autism Brain Imaging Data Exchange) I dataset, consisting of resting state fMRI data from 17 different laboratories around the globe. Our proposed system achieves 75.20% accuracy on the entire dataset and 96.40% on a specific subset — both surpassing reported ASD diagnosis accuracy in ABIDE I fMRI studies. Specifically, our model improves by 4.4 percentage points over prior works on the same amount of data. The model exhibits a sensitivity of 82.90% and a specificity of 69.70% on the entire dataset, and 91.00% and 99.50%, respectively, on the specific subset. We leverage the F-score to pinpoint the top 10 ROI in ASD diagnosis, such as precuneus and anterior cingulate/ventromedial. The proposed system can potentially pave the way for more cost-effective, efficient and scalable strategies in ASD diagnosis. Codes and evaluations are publicly available at https://github.com/hasan-rakibul/MADE-for-ASD.

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