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Showing 1–1 of 1 results for author: Shulman, J

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  1. arXiv:2608.07287  [pdf, ps, other

    cs.LG

    A foundation-model approach to pediatric headache classification from rs-fMRI

    Authors: Guilherme S. Imai Aldeia, Clara Moon, Julie Shulman, Navil Sethna, Allison Smith, Alyssa Lebel, William G. La Cava, Scott Holmes

    Abstract: Headache is the most common neurological disorder in children and substantially affects quality of life. We investigated whether resting-state functional MRI (rs-fMRI) can support pediatric headache classification using machine learning. We encoded rs-fMRI data using NeuroSTORM, a recent foundation model, and fine-tuned it to distinguish healthy controls from children with headache and subsequentl… ▽ More

    Submitted 7 August, 2026; originally announced August 2026.

    Comments: 22 pages, 6 figures. In Proceedings of Machine Learning Research, Volume 340, 2026 (Machine Learning for Healthcare Conference)